EN IEC 60825-4:2024
(Main)Safety of laser products - Part 4: Laser guards
Safety of laser products - Part 4: Laser guards
IEC 60825-4:2022 is available as IEC 60825-4:2022 RLV which contains the International Standard and its Redline version, showing all changes of the technical content compared to the previous edition. IEC 60825-4:2022 deals with basic issues concerning laser guards, including human access, interlocking and labelling, and gives general guidance on the design of protective housings and enclosures for high-power lasers. Laser guards may also comply with standards for laser protective eyewear, but such compliance is not necessarily sufficient to satisfy the requirements of this document. This part of IEC 60825 specifies the requirements for laser guards, permanent and temporary (for example for service), that enclose the process zone of a laser processing machine, and specifications for proprietary laser guards. This document applies to all component parts of a guard including clear (visibly transmitting) screens and viewing windows, panels, laser curtains and walls. In addition, this document indicates - how to assess and specify the protective properties of a laser guard, and - how to select a laser guard.
Sicherheit von Lasereinrichtungen - Teil 4: Laserschutzwände
Sécurité des appareils à laser - Partie 4: Protecteurs pour lasers
IEC 60825-4:2022 est disponible sous forme de IEC 60825-4:2022 RLV qui contient la Norme internationale et sa version Redline, illustrant les modifications du contenu technique depuis l'édition précédente. L’IEC 60825-4:2022 traite de questions fondamentales concernant les protecteurs pour laser, y compris l’accès humain, les dispositifs d'interverrouillage et l’étiquetage, et fournit des recommandations générales relatives à la conception de capots et d’enceintes de protection pour les lasers de forte puissance. Les protecteurs pour laser peuvent également être conformes aux normes pour les protecteurs oculaires contre le rayonnement laser, mais une telle conformité n’est pas nécessairement suffisante pour satisfaire aux exigences du présent document. La présente partie de l’IEC 60825 spécifie les exigences relatives aux protecteurs pour laser, permanents et temporaires (par exemple, pour l’entretien), qui protègent la zone de traitement d’une machine à laser, ainsi que les spécifications pour les protecteurs d'origine pour laser. Le présent document s’applique à tous les composants d’un protecteur, y compris les écrans clairs (visiblement transmetteurs) et les fenêtres d’observation, les panneaux, les rideaux pour laser et les parois. De plus, le présent document indique - comment évaluer et spécifier les propriétés de protection d’un protecteur pour laser, et - comment sélectionner un protecteur pour laser.
Varnost laserskih izdelkov - 4. del: Zaščitna oprema za laserje
Ta del standarda IEC 60825 določa zahteve za zaščitno opremo za laserje, trajno in začasno (npr. za servisiranje), ki obdaja obdelovalno območje stroja za lasersko obdelavo, ter specifikacije za lastniško zaščitno opremo za laserje.
Ta dokument se uporablja za vse sestavne dele zaščitne opreme, vključno s prosojnimi pregradami (viden prenos svetlobe), kontrolnimi okenci, ploščami, laserskimi zavesami in stenami.
V tem dokumentu je poleg tega navedeno:
a) kako oceniti in določiti zaščitne lastnosti zaščitne opreme za laserje;
b) kako izbrati zaščitno opremo za laserje.
OPOMBA: Zahteve za komponente poti laserskega žarka, zaustavitve žarka in druge dele zaščitnega ohišja laserskega izdelka, ki ne obdajajo obdelovalnega območja, so navedene v standardu IEC 60825-1.
Ta dokument obravnava samo zaščito pred laserskim sevanjem. Nevarnosti zaradi sekundarnega sevanja, do katerih lahko pride med obdelavo materiala, niso obravnavane.
General Information
- Status
- Published
- Publication Date
- 12-Dec-2024
- Technical Committee
- CLC/TC 76 - Optical radiation safety and laser equipment
- Drafting Committee
- IEC/TC 76 - IEC_TC_76
- Current Stage
- 6060 - Document made available - Publishing
- Start Date
- 13-Dec-2024
- Completion Date
- 13-Dec-2024
Relations
- Effective Date
- 22-Jan-2023
- Effective Date
- 19-Jul-2016
- Effective Date
- 19-Jul-2016
Overview
EN IEC 60825-4:2024 - Safety of laser products - Part 4: Laser guards (published by CLC/CENELEC, based on IEC 60825-4:2022) specifies requirements and guidance for permanent and temporary laser guards that enclose the process zone of laser equipment. The standard covers all guard components (clear screens, viewing windows, panels, laser curtains, walls) and explains how to assess and specify the protective properties of a guard and how to select an appropriate guard for laser processing machines.
Key topics and technical requirements
- Scope and applicability: Applies to guards for high‑power lasers, including proprietary and temporary service guards.
- Design and performance requirements: General design, construction, mechanical strength, environmental and maintenance considerations to limit access and contain laser radiation.
- Interlocking and human access: Requirements for interlocks, access control and safety-related control systems to prevent accidental exposure.
- Labelling and user information: Mandatory marking, warnings and documentation for safe installation, operation and maintenance.
- Protective properties and assessment: Guidance on assessing protective exposure limits (PEL) and foreseeable exposure limits (FEL), reflections, and exposure durations to determine guard performance.
- Validation and testing: Test procedures (including normative Annex D) for proprietary guards, and validation of guard integrity under foreseeable fault conditions.
- Guidance annexes: Informative annexes provide risk assessment aids, installation/arrangement guidance, selection checklists, and examples (Annexes A–G).
Practical applications and users
Who uses EN IEC 60825-4:2024:
- Laser system manufacturers (OEMs) designing enclosures and machine guards.
- Safety engineers and integrators specifying protective housings, viewing windows, curtains and interlocks.
- Machine builders and service personnel implementing temporary service guards and verifying safe access procedures.
- Regulatory compliance teams and notified bodies assessing conformity with EU Machinery Directive (see Annex ZZ) and other national requirements.
- Test laboratories performing guard performance and validation testing.
Practical uses:
- Selecting appropriate guard materials and configurations for laser processing machines.
- Designing interlocks and safety circuitry to meet functional and performance expectations.
- Producing user documentation and labels to support safe operation and maintenance.
- Demonstrating conformity for machinery safety assessments and procurement.
Related standards
Relevant cross‑references and standards for integrated safety:
- EN/IEC 60825-1 (Equipment classification & requirements)
- ISO 11553-1 (Safety of laser processing machines)
- ISO 12100, ISO 13849-1 (machine safety, risk assessment and control systems)
- EN IEC 61496-2, EN 60204-1, EN ISO 14120 (electrical safety, protective devices, guards)
EN IEC 60825-4:2024 is essential for anyone responsible for the safe design, selection, installation and validation of laser guards in industrial and research settings. Keywords: EN IEC 60825-4:2024, laser guards, laser safety standard, laser processing machine safety, interlocking, protective housings.
Frequently Asked Questions
EN IEC 60825-4:2024 is a standard published by CLC. Its full title is "Safety of laser products - Part 4: Laser guards". This standard covers: IEC 60825-4:2022 is available as IEC 60825-4:2022 RLV which contains the International Standard and its Redline version, showing all changes of the technical content compared to the previous edition. IEC 60825-4:2022 deals with basic issues concerning laser guards, including human access, interlocking and labelling, and gives general guidance on the design of protective housings and enclosures for high-power lasers. Laser guards may also comply with standards for laser protective eyewear, but such compliance is not necessarily sufficient to satisfy the requirements of this document. This part of IEC 60825 specifies the requirements for laser guards, permanent and temporary (for example for service), that enclose the process zone of a laser processing machine, and specifications for proprietary laser guards. This document applies to all component parts of a guard including clear (visibly transmitting) screens and viewing windows, panels, laser curtains and walls. In addition, this document indicates - how to assess and specify the protective properties of a laser guard, and - how to select a laser guard.
IEC 60825-4:2022 is available as IEC 60825-4:2022 RLV which contains the International Standard and its Redline version, showing all changes of the technical content compared to the previous edition. IEC 60825-4:2022 deals with basic issues concerning laser guards, including human access, interlocking and labelling, and gives general guidance on the design of protective housings and enclosures for high-power lasers. Laser guards may also comply with standards for laser protective eyewear, but such compliance is not necessarily sufficient to satisfy the requirements of this document. This part of IEC 60825 specifies the requirements for laser guards, permanent and temporary (for example for service), that enclose the process zone of a laser processing machine, and specifications for proprietary laser guards. This document applies to all component parts of a guard including clear (visibly transmitting) screens and viewing windows, panels, laser curtains and walls. In addition, this document indicates - how to assess and specify the protective properties of a laser guard, and - how to select a laser guard.
EN IEC 60825-4:2024 is classified under the following ICS (International Classification for Standards) categories: 31.260 - Optoelectronics. Laser equipment. The ICS classification helps identify the subject area and facilitates finding related standards.
EN IEC 60825-4:2024 has the following relationships with other standards: It is inter standard links to EN 60825-4:2006, EN 60825-4:2006/A1:2008, EN 60825-4:2006/A2:2011. Understanding these relationships helps ensure you are using the most current and applicable version of the standard.
EN IEC 60825-4:2024 is associated with the following European legislation: EU Directives/Regulations: 2006/42/EC, 2014/35/EU, 2014/53/EU; Standardization Mandates: M/396, M/511. When a standard is cited in the Official Journal of the European Union, products manufactured in conformity with it benefit from a presumption of conformity with the essential requirements of the corresponding EU directive or regulation.
You can purchase EN IEC 60825-4:2024 directly from iTeh Standards. The document is available in PDF format and is delivered instantly after payment. Add the standard to your cart and complete the secure checkout process. iTeh Standards is an authorized distributor of CLC standards.
Standards Content (Sample)
SLOVENSKI STANDARD
SIST EN 60825-4:2025
01-marec-2025
Nadomešča:
SIST EN 60825-4:2008
Varnost laserskih izdelkov - 4. del: Zaščitna oprema za laserje
Safety of laser products - Part 4: Laser guards
Sicherheit von Lasereinrichtungen - Teil 4: Laserschutzwände
Sécurité des appareils à laser - Partie 4: Protecteurs pour lasers
Ta slovenski standard je istoveten z: EN IEC 60825-4:2024
ICS:
31.260 Optoelektronika, laserska Optoelectronics. Laser
oprema equipment
SIST EN 60825-4:2025 en
2003-01.Slovenski inštitut za standardizacijo. Razmnoževanje celote ali delov tega standarda ni dovoljeno.
SIST EN 60825-4:2025
SIST EN 60825-4:2025
EUROPEAN STANDARD EN IEC 60825-4
NORME EUROPÉENNE
EUROPÄISCHE NORM December 2024
ICS 31.260 Supersedes EN 60825-4:2006; EN 60825-
4:2006/A1:2008; EN 60825-4:2006/A2:2011
English Version
Safety of laser products - Part 4: Laser guards
(IEC 60825-4:2022)
Sécurité des appareils à laser - Partie 4: Protecteurs pour Sicherheit von Lasereinrichtungen - Teil 4:
lasers Laserschutzwände
(IEC 60825-4:2022) (IEC 60825-4:2022)
This European Standard was approved by CENELEC on 2022-08-26. CENELEC members are bound to comply with the CEN/CENELEC
Internal Regulations which stipulate the conditions for giving this European Standard the status of a national standard without any alteration.
Up-to-date lists and bibliographical references concerning such national standards may be obtained on application to the CEN-CENELEC
Management Centre or to any CENELEC member.
This European Standard exists in three official versions (English, French, German). A version in any other language made by translation
under the responsibility of a CENELEC member into its own language and notified to the CEN-CENELEC Management Centre has the
same status as the official versions.
CENELEC members are the national electrotechnical committees of Austria, Belgium, Bulgaria, Croatia, Cyprus, the Czech Republic,
Denmark, Estonia, Finland, France, Germany, Greece, Hungary, Iceland, Ireland, Italy, Latvia, Lithuania, Luxembourg, Malta, the
Netherlands, Norway, Poland, Portugal, Republic of North Macedonia, Romania, Serbia, Slovakia, Slovenia, Spain, Sweden, Switzerland,
Türkiye and the United Kingdom.
European Committee for Electrotechnical Standardization
Comité Européen de Normalisation Electrotechnique
Europäisches Komitee für Elektrotechnische Normung
CEN-CENELEC Management Centre: Rue de la Science 23, B-1040 Brussels
© 2024 CENELEC All rights of exploitation in any form and by any means reserved worldwide for CENELEC Members.
Ref. No. EN IEC 60825-4:2024 E
SIST EN 60825-4:2025
European foreword
The text of document 76/704/FDIS, future edition 3 of IEC 60825-4, prepared by TC 76 "Optical
radiation safety and laser equipment" was submitted to the IEC-CENELEC parallel vote and approved
by CENELEC as EN IEC 60825-4:2024.
The following dates are fixed:
• latest date by which the document has to be implemented at national (dop) 2025-12-31
level by publication of an identical national standard or by endorsement
• latest date by which the national standards conflicting with the (dow) 2027-12-31
document have to be withdrawn
This document supersedes EN 60825-4:2006 and all of its amendments and corrigenda (if any).
Attention is drawn to the possibility that some of the elements of this document may be the subject of
patent rights. CENELEC shall not be held responsible for identifying any or all such patent rights.
This document has been prepared under a standardization request addressed to CENELEC by the
European Commission. The Standing Committee of the EFTA States subsequently approves these
requests for its Member States.
For the relationship with EU Legislation, see informative Annex ZZ, which is an integral part of this
document.
Any feedback and questions on this document should be directed to the users’ national committee. A
complete listing of these bodies can be found on the CENELEC website.
Endorsement notice
The text of the International Standard IEC 60825-4:2022 was approved by CENELEC as a European
Standard without any modification.
In the official version, for Bibliography, the following notes have to be added for the standard indicated:
IEC 60204-1 NOTE Approved as EN 60204-1
IEC 61310-3 NOTE Approved as EN 61310-3
IEC 61496-2 NOTE Approved as EN IEC 61496-2
ISO/TR 7250-2 NOTE Approved as CEN ISO/TR 7250-2
ISO 10218-1 NOTE Approved as EN ISO 10218-1
ISO 14120 NOTE Approved as EN ISO 14120
SIST EN 60825-4:2025
Annex ZA
(normative)
Normative references to international publications
with their corresponding European publications
The following documents are referred to in the text in such a way that some or all of their content
constitutes requirements of this document. For dated references, only the edition cited applies. For
undated references, the latest edition of the referenced document (including any amendments)
applies.
NOTE 1 Where an International Publication has been modified by common modifications, indicated by (mod),
the relevant EN/HD applies.
NOTE 2 Up-to-date information on the latest versions of the European Standards listed in this annex is
available here: www.cencenelec.eu.
EN/HD
Publication Year Title Year
IEC 60825-1 2014 Safety of laser products – Part 1: Equipment EN 60825-1 2014
classification and requirements
IEC 61508 series Functional safety of EN 61508-1:2010 2010
electrical/electronic/programmable electronic
EN 61508-2:2010 2010
safety-related systems
EN 61508-3:2010 2010
EN 61508-4:2010 2010
EN 61508-5:2010 2010
EN 61508-6:2010 2010
EN 61508-7:2010 2010
ISO 11553-1 - Safety of machinery – Laser processing EN ISO 11553-1:2020 2020
machines – Safety requirements
+ A11 2020
ISO 12100 - Safety of machinery - General principles for EN ISO 12100 2010
design - Risk assessment and risk reduction
ISO 13849-1 - Safety of machinery – Safety-related parts of EN ISO 13849-1 2023
control systems – Part 1: General principles
for design
SIST EN 60825-4:2025
Annex ZZ
(informative)
Relationship between this European Standard and the essential
requirements of Directive 2006/42/EC aimed to be covered
This European Standard has been prepared under a Commission’s standardization request “M/396
Mandate to CEN and CENELEC for Standardisation in the field of machinery" to provide one voluntary
means of conforming to essential requirements of Directive 2006/42/EC of the European Parliament
and of the Council of 17 May 2006 on machinery, and amending Directive 95/16/EC (recast)
Once this standard is cited in the Official Journal of the European Union under that Directive,
compliance with the normative clauses of this standard given in Table ZZ.1 confers, within the limits of
the scope of this standard, a presumption of conformity with the corresponding essential requirements
of that Directive, and associated EFTA regulations.
Table ZZ.1 — Correspondence between this European Standard and Annex I of Directive
2006/42/EC
The relevant Essential Clause(s)/sub-clause(s) Remarks/Notes
Requirements of Directive of this EN
2006/42/EC
1.5.12 Clause 4.1 General design requirements
1.5.12 Clause 4.2 General performance requirements
1.5.12 Clause 4.3 Validation
1.5.12 Clause 4.4 User information
1.5.12 Clause 5.1 Special design requirements
1.5.12 Clause 5.2 Special performance requirements
1.5.12 Clause 5.3 Specification requirements
1.5.12 Clause 5.4 Testing and evaluation requirements
1.5.12 Clause 5.5 Labelling requirements
1.5.12 Clause 5.6 Additional user documentation
1.5.12 Appendix D (normative) Test specifications
WARNING 1 — Presumption of conformity stays valid only as long as a reference to this European
Standard is maintained in the list published in the Official Journal of the European Union. Users of this
standard should consult frequently the latest list published in the Official Journal of the European
Union.
WARNING 2 — Other Union legislation may be applicable to the product(s) falling within the scope of
this standard.
SIST EN 60825-4:2025
IEC 60825-4 ®
Edition 3.0 2022-07
INTERNATIONAL
STANDARD
NORME
INTERNATIONALE
colour
inside
Safety of laser products –
Part 4: Laser guards
Sécurité des appareils à laser –
Partie 4: Protecteurs pour laser
INTERNATIONAL
ELECTROTECHNICAL
COMMISSION
COMMISSION
ELECTROTECHNIQUE
INTERNATIONALE
ICS 31.260 ISBN 978-2-8322-3985-8
SIST EN 60825-4:2025
– 2 – IEC 60825-4:2022 © IEC 2022
CONTENTS
FOREWORD . 5
INTRODUCTION . 7
1 Scope . 8
2 Normative references . 8
3 Terms and definitions . 8
4 Requirements for laser guards . 11
4.1 Requirement . 11
4.2 Design requirements . 12
4.3 Performance requirements . 12
4.4 Validation . 12
4.5 User information . 13
5 Proprietary laser guards . 13
5.1 General . 13
5.2 Design requirements . 13
5.3 Performance requirements . 13
5.4 Specification requirements . 14
5.5 Test requirements . 14
5.6 Labelling requirements . 14
5.7 User information . 15
Annex A (informative) General guidance on the design and selection of laser guards . 16
A.1 Design of laser guards . 16
A.2 Selection of laser guards . 16
Annex B (informative) Assessment of foreseeable exposure limit (FEL) . 18
B.1 General . 18
B.2 Reflection of laser radiation . 19
B.3 Examples of assessment conditions . 19
B.4 Exposure duration . 22
Annex C (informative) Elaboration of defined terms . 25
C.1 Distinction between FEL and PEL . 25
C.2 Active guard parameters . 25
Annex D (normative) Proprietary laser guard testing . 27
D.1 General . 27
D.2 Test conditions . 27
D.3 Protection time corresponding to the specified protective exposure limit
(PEL) . 31
D.4 Information supplied by the manufacturer. 31
Annex E (informative) Guidelines on the arrangement and installation of laser guards . 33
E.1 Overview. 33
E.2 General . 33
E.3 Risk assessment . 34
E.4 Examples of risk assessment . 36
E.5 Aids to risk assessment . 39
Annex F (informative) Guideline for assessing the suitability of laser guards . 42
F.1 Identification of hazards . 42
F.2 Risk assessment and integrity . 42
SIST EN 60825-4:2025
IEC 60825-4:2022 © IEC 2022 – 3 –
F.3 General design . 45
F.4 Selection of safeguards . 46
F.5 Guard design and construction . 46
F.6 Guard construction and materials . 48
F.7 Other safety devices . 50
F.8 Interlocking considerations . 51
F.9 Environmental considerations . 55
F.10 Installation consideration – Environmental factors – Services . 56
F.11 Maintenance and service considerations . 56
Annex G (normative) Guided beam delivery systems . 67
G.1 General . 67
G.2 General requirements . 67
G.3 Verification of safety requirements or protective measures . 69
G.4 Information for users . 69
G.5 Examples of risk assessments . 70
Bibliography . 75
Figure B.1 – Calculation of diffuse reflections . 19
Figure B.2 – Calculation of specular reflections . 19
Figure B.3 – Some examples of a foreseeable fault condition . 20
Figure B.4 – Four examples of errant laser beams that might have to be contained by a
temporary guard under service conditions . 21
Figure B.5 – Illustration of laser guard exposure during repetitive machine operation . 22
Figure B.6 – Two examples of assessed duration of exposure . 23
Figure B.7 – Assessed duration of exposure for a machine with no safety monitoring . 24
Figure C.1 – Illustration of guarding around a laser processing machine . 25
Figure C.2 – Illustration of active laser guard parameters . 26
Figure D.1 – Simplified diagram of the test arrangement . 29
Figure D.2 – Simplified diagram of the ventilation for the guard under test . 29
Figure F.1 – Damage resistance of 1 mm thick zinc coated steel sheet derived from
10 s exposure to a defocused beam during experiments using a CW CO laser . 57
Figure F.2 – Damage resistance of 1 mm thick zinc coated steel sheet derived from
100 s exposure to a defocused beam during experiments using a CW CO laser . 58
Figure F.3 – Damage resistance of 2 mm thick zinc coated steel sheet derived from 10
s exposure to a defocused beam during experiments using a CW CO laser . 58
Figure F.4 – Damage resistance of 2 mm thick zinc coated steel sheet derived from
100 s exposure to a defocused beam during experiments using a CW CO laser . 58
Figure F.5 – Damage resistance of 3 mm thick zinc coated steel sheet derived from 10
s exposure to a defocused beam during experiments using a CW CO laser . 59
Figure F.6 – Damage resistance of 3 mm thick zinc coated steel sheet derived from
100 s exposure to a defocused beam during experiments using a CW CO laser . 59
Figure F.7 – Damage resistance of 2 mm thick aluminium sheet derived from 10 s
exposure to a defocused beam during experiments using a CW CO laser . 59
Figure F.8 – Damage resistance of 2 mm thick aluminium sheet derived from 100 s
exposure to a defocused beam during experiments using a CW CO laser . 60
SIST EN 60825-4:2025
– 4 – IEC 60825-4:2022 © IEC 2022
Figure F.9 – Damage resistance of 1 mm thick stainless steel sheet derived from 10 s
exposure to a defocused beam during experiments using a CW CO laser . 60
Figure F.10 – Damage resistance of 1 mm thick stainless steel sheet derived from 100
s exposure to a defocused beam during experiments using a CW CO laser . 60
Figure F.11 – Damage resistance of 6 mm thick polycarbonate sheet derived from 10 s
exposure to a defocused beam during experiments using a CW CO laser . 61
Figure F.12 – Damage resistance of 6 mm thick polycarbonate sheet derived from 100
s exposure to a defocused beam during experiments using a CW CO laser . 61
Figure F.13 – Damage resistance of 1 mm thick zinc coated steel sheet derived from
10 s exposure to a defocused beam during experiments using a CW Nd:YAG laser . 62
Figure F.14 – Damage resistance of 1 mm thick zinc coated steel sheet derived from
100 s exposure to a defocused beam during experiments using a CW Nd:YAG laser . 62
Figure F.15 – Damage resistance of 2 mm thick zinc coated steel sheet derived from
10 s exposure to a defocused beam during experiments using a CW Nd:YAG laser . 63
Figure F.16 – Damage resistance of 2 mm thick zinc coated steel sheet derived from
100 s exposure to a defocused beam during experiments using a CW Nd:YAG laser . 63
Figure F.17 – Damage resistance of 3 mm thick zinc coated steel sheet derived from
10 s exposure to a defocused beam during experiments using a CW Nd:YAG laser . 64
Figure F.18 – Damage resistance of 3 mm thick zinc coated steel sheet derived from
100 s exposure to a defocused beam during experiments using a CW Nd:YAG laser . 64
Figure F.19 – Damage resistance of 2 mm thick aluminium sheet derived from 10 s
exposure to a defocused beam during experiments using a CW Nd:YAG laser . 65
Figure F.20 – Damage resistance of 2 mm thick aluminium sheet derived from 100 s
exposure to a defocused beam during experiments using a CW Nd:YAG laser . 65
Figure F.21 – Damage resistance of 1 mm thick stainless steel sheet derived from 10 s
exposure to a defocused beam during experiments using a CW Nd:YAG laser . 66
Figure F.22 – Damage resistance of 1 mm thick stainless steel sheet derived from
100 s exposure to a defocused beam during experiments using a CW Nd:YAG laser . 66
Table D.1 – Laser guard test classification . 30
Table F.1 – Application of ALARP . 45
Table G.1 – Beam delivery systems using free space beam delivery systems . 70
Table G.2 – Beam delivery systems using fibre optic cables . 72
SIST EN 60825-4:2025
IEC 60825-4:2022 © IEC 2022 – 5 –
INTERNATIONAL ELECTROTECHNICAL COMMISSION
____________
SAFETY OF LASER PRODUCTS –
Part 4: Laser guards
FOREWORD
1) The International Electrotechnical Commission (IEC) is a worldwide organization for standardization comprising
all national electrotechnical committees (IEC National Committees). The object of IEC is to promote international
co-operation on all questions concerning standardization in the electrical and electronic fields. To this end and
in addition to other activities, IEC publishes International Standards, Technical Specifications, Technical Reports,
Publicly Available Specifications (PAS) and Guides (hereafter referred to as “IEC Publication(s)”). Their
preparation is entrusted to technical committees; any IEC National Committee interested in the subject dealt with
may participate in this preparatory work. International, governmental and non-governmental organizations liaising
with the IEC also participate in this preparation. IEC collaborates closely with the International Organization for
Standardization (ISO) in accordance with conditions determined by agreement between the two organizations.
2) The formal decisions or agreements of IEC on technical matters express, as nearly as possible, an international
consensus of opinion on the relevant subjects since each technical committee has representation from all
interested IEC National Committees.
3) IEC Publications have the form of recommendations for international use and are accepted by IEC National
Committees in that sense. While all reasonable efforts are made to ensure that the technical content of IEC
Publications is accurate, IEC cannot be held responsible for the way in which they are used or for any
misinterpretation by any end user.
4) In order to promote international uniformity, IEC National Committees undertake to apply IEC Publications
transparently to the maximum extent possible in their national and regional publications. Any divergence between
any IEC Publication and the corresponding national or regional publication shall be clearly indicated in the latter.
5) IEC itself does not provide any attestation of conformity. Independent certification bodies provide conformity
assessment services and, in some areas, access to IEC marks of conformity. IEC is not responsible for any
services carried out by independent certification bodies.
6) All users should ensure that they have the latest edition of this publication.
7) No liability shall attach to IEC or its directors, employees, servants or agents including individual experts and
members of its technical committees and IEC National Committees for any personal injury, property damage or
other damage of any nature whatsoever, whether direct or indirect, or for costs (including legal fees) and
expenses arising out of the publication, use of, or reliance upon, this IEC Publication or any other IEC
Publications.
8) Attention is drawn to the Normative references cited in this publication. Use of the referenced publications is
indispensable for the correct application of this publication.
9) Attention is drawn to the possibility that some of the elements of this IEC Publication may be the subject of patent
rights. IEC shall not be held responsible for identifying any or all such patent rights.
IEC 60825-4 has been prepared by IEC technical committee 76: Optical radiation safety and
laser equipment. It is an International Standard.
This third edition cancels and replaces the second edition published in 2006,
Amendment 1:2008 and Amendment 2:2011. This edition constitutes a technical revision.
This edition includes the following significant technical changes with respect to the previous
edition:
a) Significant amendments have been included and this edition has been prepared for user
convenience.
SIST EN 60825-4:2025
– 6 – IEC 60825-4:2022 © IEC 2022
The text of this International Standard is based on the following documents:
Draft Report on voting
76/704/FDIS 76/711/RVD
Full information on the voting for its approval can be found in the report on voting indicated in
the above table.
The language used for the development of this International Standard is English.
This document was drafted in accordance with ISO/IEC Directives, Part 2, and developed in
accordance with ISO/IEC Directives, Part 1 and ISO/IEC Directives, IEC Supplement, available
at www.iec.ch/members_experts/refdocs. The main document types developed by IEC are
described in greater detail at www.iec.ch/standardsdev/publications.
The committee has decided that the contents of this document will remain unchanged until the
stability date indicated on the IEC website under webstore.iec.ch in the data related to the
specific document. At this date, the document will be
• reconfirmed,
• withdrawn,
• replaced by a revised edition, or
• amended.
IMPORTANT – The "colour inside" logo on the cover page of this document indicates that it
contains colours which are considered to be useful for the correct understanding of its
contents. Users should therefore print this document using a colour printer.
SIST EN 60825-4:2025
IEC 60825-4:2022 © IEC 2022 – 7 –
INTRODUCTION
At low levels of irradiance or radiant exposure, the selection of material and thickness for
shielding against laser radiation is determined primarily by a need to provide sufficient optical
attenuation. However, at higher levels, an additional consideration is the ability of the laser
radiation to remove guard material – typically by melting, oxidation or ablation; processes that
could lead to laser radiation penetrating a normally opaque material.
IEC 60825-1 deals with basic issues concerning laser guards, including human access,
interlocking and labelling, and gives general guidance on the design of protective housings and
enclosures for high-power lasers.
Laser guards may also comply with standards for laser protective eyewear, but such compliance
is not necessarily sufficient to satisfy the requirements of this document.
Where the term "irradiance" is used, the expression "irradiance or radiant exposure, as
appropriate" is implied.
SIST EN 60825-4:2025
– 8 – IEC 60825-4:2022 © IEC 2022
SAFETY OF LASER PRODUCTS –
Part 4: Laser guards
1 Scope
This part of IEC 60825 specifies the requirements for laser guards, permanent and temporary
(for example for service), that enclose the process zone of a laser processing machine, and
specifications for proprietary laser guards.
This document applies to all component parts of a guard including clear (visibly transmitting)
screens and viewing windows, panels, laser curtains and walls.
In addition, this document indicates
a) how to assess and specify the protective properties of a laser guard, and
b) how to select a laser guard.
NOTE Requirements for beam path components, beam stops and those other parts of a protective housing of a
laser product which do not enclose the process zone are contained in IEC 60825-1.
This document deals with protection against laser radiation only. Hazards from secondary
radiation that may arise during material processing are not addressed.
2 Normative references
The following documents are referred to in the text in such a way that some or all of their content
constitutes requirements of this document. For dated references, only the edition cited applies.
For undated references, the latest edition of the referenced document (including any
amendments) applies.
IEC 60825-1:2014, Safety of laser products – Part 1: Equipment classification and requirements
IEC 61508 (all parts), Functional safety of electrical/electronic/programmable electronic safety-
related systems
ISO 11553-1, Safety of machinery – Laser processing machines – Laser safety requirements
ISO 12100, Safety of machinery – General principles for design – Risk assessment and risk
reduction
ISO 13849-1, Safety of machinery – Safety-related parts of control systems – Part 1: General
principles for design
3 Terms and definitions
For the purposes of this document, the terms and definitions given in IEC 60825-1 and the
following apply.
SIST EN 60825-4:2025
IEC 60825-4:2022 © IEC 2022 – 9 –
ISO and IEC maintain terminological databases for use in standardization at the following
addresses:
• IEC Electropedia: available at http://www.electropedia.org/
• ISO Online browsing platform: available at http://www.iso.org/obp
3.1
access panel
panel which when removed or displaced gives human access to laser radiation
Note 1 to entry: Sheathing around a fibre, tubing used as an enclosure component or any device serving the function
of a removable or displaceable panel, can also be an "access panel" within the terms of this definition.
3.2
active guard protection time
minimum time for a given laser exposure of the front (incident) surface of an active laser guard,
measured from the issue of an active guard termination signal, for which the active laser guard
can safely prevent laser radiation accessible at its rear surface from exceeding the Class 1 AEL
3.3
active guard termination signal
signal issued by an active guard in response to an excess exposure of its front surface to laser
radiation and which is intended to lead to automatic termination of the laser radiation
Note 1 to entry: The action of a safety interlock becoming open circuit is considered a "signal" in this context.
3.4
active laser guard
laser guard which is part of a safety-related control system whereby failure of the front surface
of the laser guard triggers a termination signal
3.5
beam delivery system
system comprised of all those components, including all optical beam components and potential
beam paths and their enclosures, which when combined, transfer laser radiation emitted from
the laser radiation generator (the laser) to the workpiece
Note 1 to entry: These components may include all elements for guiding, shaping and switching the laser beam as
well as the enclosure of and support for the beam path components. See Annex G for detail on guided beam delivery
systems.
3.6
beam diameter
d
diameter of the smallest circular aperture in a plane perpendicular to the beam axis that contains
86 % of the total laser power (or energy)
Note 1 to entry: In the case of a Gaussian beam (TEM ), d corresponds to the point where the irradiance (radiant
exposure) falls to 1/e of its central peak value and the second order moments of the power density distribution
(ISO 11146-1:2005 3.2).
3.7
beam path component
optical component which lies on a defined beam path
Note 1 to entry: Examples of a beam path component include a beam steering mirror, a focus lens or a fibre optic
cable connector.
[SOURCE: IEC 60825-1:2014, 3.16, modified — Example has been removed and Note 1 to
entry has been added.]
SIST EN 60825-4:2025
– 10 – IEC 60825-4:2022 © IEC 2022
3.8
beam shaping component
optical component introduced in the beam path to transform the profile or cross-section of the
laser beam by means of apertures, or reflective, refractive or diffractive optical components
3.9
beam switching component
optical component or an assembly of components introduced in the beam path to direct or divert,
under external control, the beam path along predetermined direction(s) with the external control
allowing the beam path to be switched from one predetermined direction to another
3.10
fibre optic cable
optical beam guiding component that enables the transmission of laser radiation along a
transparent medium
Note 1 to entry: A fibre optic cable may have a glass or other core that carries the laser radiation and be surrounded
by cladding. The outside of the fibre is protected by cladding and may be further protected by additional layers of
other material such as a polymer or a metal to protect the fibre from mechanical deformation, the ingress of water,
etc. This term also includes other forms of transmission devices such as waveguides.
3.11
foreseeable exposure limit
FEL
maximum laser exposure on the front surface of the laser guard, within the maintenance
inspection interval, assessed under normal and reasonably foreseeable fault conditions
Note 1 to entry: The full specification of an FEL comprises different elements, including irradiance and exposure
duration. More details are given in Annex B.
3.12
front surface
face of the laser guard intended for exposure to laser radiation
3.13
laser guard
physical barrier which limits the extent of a danger zone by preventing laser radiation accessible
at its rear surface from exceeding the Class 1 AEL
3.14
laser processing machine
machine which uses a laser to process materials and is within the scope of ISO 11553-1
3.15
laser termination time
maximum time taken, from generation of an active guard termination signal, for the laser
radiation to be terminated
Note 1 to entry: Laser termination time does not refer to the response of an active laser guard but to the response
of the laser processing machine, in particular the laser safety shutter.
3.16
maintenance inspection interval
time between successive safety maintenance inspections of a laser guard
3.17
passive guard protection time
minimum time determined for a laser exposure equal to a specified protective exposure limit
(PEL) at the front (incident) surface of a passive laser guard for which the passive laser guard
can reliably prevent laser radiation accessible at its rear surface from exceeding the class 1
AEL
SIST EN 60825-4:2025
IEC 60825-4:2022 © IEC 2022 – 11 –
3.18
passive laser guard
laser guard which relies for its operation on its physical properties only
3.19
process zone
zone where the laser beam interacts with the material to be processed
3.20
proprietary laser guard
passive or active laser guard, offered by a manufacturer of laser guards as an independent
product placed on the market with a specified protective exposure limit
3.21
protective exposure limit
PEL
maximum laser exposure of the front surface of a laser guard which prevents laser radiation
accessible at its rear surface from exceeding the Class 1 AEL for the determined passive or
active guard detection time
Note 1 to entry: In practice, there may be more than one maximum laser exposure.
Note 2 to entry: Different PELs may be assigned to different regions of a laser guard if these regions are clearly
identifiable (for example, a viewing window forming an integral part of a laser guard).
Note 3 to entry: See 5.3 for the performance requirements and 5.4 for the full specification. The full specification of
a PEL comprises different elements, including irradiance and exposure duration.
3.22
rear surface
surface of a laser guard that is remote from the associated laser radiation and usually
accessible to the user
3.23
reasonably foreseeable
credible and whose likelihood of occurrence or existence cannot be
disregarded
3.24
safety maintenance inspection
documented inspection performed in accordance with manufacturer’s instructions
3.25
temporary laser guard
substitute or supplementary active or passive laser guard intended to limit the extent of the
danger zone during some service operations of the laser processing machine
4 Requirements for laser guards
4.1 Requirement
Clause 4 specifies the requirements for laser guards that enclose the process zone and are
supplied by the laser processing machine manufacturer.
SIST EN 60825-4:2025
– 12 – IEC 60825-4:2022 © IEC 2022
4.2 Design requirements
4.2.1 Guard requirement
A laser guard shall satisfy ISO 12100 with respect to the general requirements for guards and
also the more specific requirements with regard to its location and method of fixture. In addition,
the following specific laser requirements shall be met for a laser guard.
4.2.2 General requirements
A laser guard, in its intended location, shall not give rise to any associated hazard at or beyond
its rear surface when exposed to primary laser radiation or secondary optical radiation up to
the foreseeable exposure limit. Annex F provides guidance on assessing the suitability of laser
guards.
NOTE 1 Examples of associated hazards include high temperature, plasma, excessive ultra-violet radiation, the
release of toxic materials, fire, explosion, and electricity.
NOTE 2 See Annex B for assessment of foreseeable exposure limit.
4.2.3 Consumable parts of laser guards
Provision shall be made for the replacement of parts of a laser guard prone to damage by laser
radiation.
NOTE An example of such a part would be a sacrificial or interchangeable screen.
4.3 Performance requirements
4.3.1 General
When the front (incident) surface of a laser guard is subjected to exposure to laser radiation at
the foreseeable exposure limit, the laser guard shall prevent laser radiation accessible at its
rear surface from exceeding the Class 1 AEL at any time over the period of the maintenance
inspection interval. For automated laser processing machines intended for unattended and/or
unsupervised operation, the minimum value of the maintenance inspection interval shall be 8 h.
This requirement shall be satisfied over the intended lifetime of the laser guard under expected
conditions of operation.
NOTE 1 This requirement implies both low transmission of laser radiation and resistance to laser-induced damage.
NOTE 2 Some materials can lose their protective properties due to ageing, exposure to ultraviolet radiation, certain
gases, temperature, humidity and other environmental conditions. Additionally, some materials will transmit laser
radiation under high-intensity laser exposure, even if there is no visible damage (i.e. reversible bleaching).
4.3.2 Active laser guards
a) The active guard protection time shall exceed the laser termination time up to the
foreseeable exposure limits.
b) If an active guard detects an excessive exposure, i.e. is triggered, it shall give rise to a
visible or audible warning. A manual reset is required before laser emission can
recommence.
NOTE See Annex C for an elaboration of terms.
4.4 Validation
4.4.1 General guard validation
If the laser processing machine manufacturer chooses to make a laser guard, the manufacturer
shall confirm that the guard complies with the design requirements and can satisfy the
performance requirements set out in 4.3.
SIST EN 60825-4:2025
IEC 60825-4:2022 © IEC 2022 – 13 –
NOTE See Annex A for guidance on the design and selection of laser guards.
4.4.2 Validation of performance
4.4.2.1 The complete laser guard, or an appropriate sample of the material of construction
of the laser guard, shall be tested at each FEL identified.
It is intended that a table of predetermined PELs for common combinations of lasers and
guarding materials, together with suitable testing procedures, will be issued as an informative
annex in a future amendment to this document. This could provide a simple alternative to direct
testing for the majority of cases.
NOTE See Annex B for the assessment of FEL and Annex C for further elaboration of the terms PEL and FEL.
4.4.2.2 For testing purposes, the FEL exposure shall be achieved either:
a) by calculating or measuring the exposure and reproducing the conditions; or
b) without quantifying the FEL, by creating the machine conditions under which the FEL is
produced.
The condition of the laser guard or sample shall be such as to replicate those physical
conditions of the front surface permitted within the scope of the routine inspection instructions
and within the service life of the guard, which minimize the laser radiation protective properties
of the laser guard (for example, wear and tear and surface contamination) (see 4.5.2).
4.5 User information
4.5.1 The manufacturer shall document and provide to the user the maintenance inspection
interval for the laser guard, and details of inspection and test procedures, cleaning, replacement
or repair of damaged parts, together with any restrictions of use.
4.5.2 The manufacturer shall document and provide to the user instructions that after any
actuation of the safety control system of an active guard, the cause shall be investigated, and
checks shall be made for damage. The instructions shall also include the necessary remedial
action to be taken before resetting the control system.
5 Proprietary laser guards
5.1 General
Clause 5 specifies the requirements to be satisfied by suppliers of proprietary laser guards.
5.2 Design requirements
A proprietary laser guard shall not create any associated hazard at or beyond its rear surface
when exposed to laser radiation up to the specified PEL when used as specified in the user
information (see 5.7).
5.3 Performance requirements
The accessible laser radiation at the rear surface of the laser guard shall not exceed the
Class 1 AEL when its front surface is subjected to laser radiation at the specified PEL at least
during the passive guard protection time. For an active laser guard, this requirement shall apply
to laser radiation accessible over the period of the active guard protection time, measured from
the moment an active guard termination signal is issued.
This requirement shall be satisfied over the intended lifetime of the guard under expected
service conditions.
...
SLOVENSKI STANDARD
01-marec-2025
Nadomešča:
SIST EN 60825-4:2008
Varnost laserskih izdelkov - 4. del: Zaščitna oprema za laserje
Safety of laser products - Part 4: Laser guards
Sicherheit von Lasereinrichtungen - Teil 4: Laserschutzwände
Sécurité des appareils à laser - Partie 4: Protecteurs pour lasers
Ta slovenski standard je istoveten z: EN IEC 60825-4:2024
ICS:
31.260 Optoelektronika, laserska Optoelectronics. Laser
oprema equipment
2003-01.Slovenski inštitut za standardizacijo. Razmnoževanje celote ali delov tega standarda ni dovoljeno.
EUROPEAN STANDARD EN IEC 60825-4
NORME EUROPÉENNE
EUROPÄISCHE NORM December 2024
ICS 31.260 Supersedes EN 60825-4:2006; EN 60825-
4:2006/A1:2008; EN 60825-4:2006/A2:2011
English Version
Safety of laser products - Part 4: Laser guards
(IEC 60825-4:2022)
Sécurité des appareils à laser - Partie 4: Protecteurs pour Sicherheit von Lasereinrichtungen - Teil 4:
lasers Laserschutzwände
(IEC 60825-4:2022) (IEC 60825-4:2022)
This European Standard was approved by CENELEC on 2022-08-26. CENELEC members are bound to comply with the CEN/CENELEC
Internal Regulations which stipulate the conditions for giving this European Standard the status of a national standard without any alteration.
Up-to-date lists and bibliographical references concerning such national standards may be obtained on application to the CEN-CENELEC
Management Centre or to any CENELEC member.
This European Standard exists in three official versions (English, French, German). A version in any other language made by translation
under the responsibility of a CENELEC member into its own language and notified to the CEN-CENELEC Management Centre has the
same status as the official versions.
CENELEC members are the national electrotechnical committees of Austria, Belgium, Bulgaria, Croatia, Cyprus, the Czech Republic,
Denmark, Estonia, Finland, France, Germany, Greece, Hungary, Iceland, Ireland, Italy, Latvia, Lithuania, Luxembourg, Malta, the
Netherlands, Norway, Poland, Portugal, Republic of North Macedonia, Romania, Serbia, Slovakia, Slovenia, Spain, Sweden, Switzerland,
Türkiye and the United Kingdom.
European Committee for Electrotechnical Standardization
Comité Européen de Normalisation Electrotechnique
Europäisches Komitee für Elektrotechnische Normung
CEN-CENELEC Management Centre: Rue de la Science 23, B-1040 Brussels
© 2024 CENELEC All rights of exploitation in any form and by any means reserved worldwide for CENELEC Members.
Ref. No. EN IEC 60825-4:2024 E
European foreword
The text of document 76/704/FDIS, future edition 3 of IEC 60825-4, prepared by TC 76 "Optical
radiation safety and laser equipment" was submitted to the IEC-CENELEC parallel vote and approved
by CENELEC as EN IEC 60825-4:2024.
The following dates are fixed:
• latest date by which the document has to be implemented at national (dop) 2025-12-31
level by publication of an identical national standard or by endorsement
• latest date by which the national standards conflicting with the (dow) 2027-12-31
document have to be withdrawn
This document supersedes EN 60825-4:2006 and all of its amendments and corrigenda (if any).
Attention is drawn to the possibility that some of the elements of this document may be the subject of
patent rights. CENELEC shall not be held responsible for identifying any or all such patent rights.
This document has been prepared under a standardization request addressed to CENELEC by the
European Commission. The Standing Committee of the EFTA States subsequently approves these
requests for its Member States.
For the relationship with EU Legislation, see informative Annex ZZ, which is an integral part of this
document.
Any feedback and questions on this document should be directed to the users’ national committee. A
complete listing of these bodies can be found on the CENELEC website.
Endorsement notice
The text of the International Standard IEC 60825-4:2022 was approved by CENELEC as a European
Standard without any modification.
In the official version, for Bibliography, the following notes have to be added for the standard indicated:
IEC 60204-1 NOTE Approved as EN 60204-1
IEC 61310-3 NOTE Approved as EN 61310-3
IEC 61496-2 NOTE Approved as EN IEC 61496-2
ISO/TR 7250-2 NOTE Approved as CEN ISO/TR 7250-2
ISO 10218-1 NOTE Approved as EN ISO 10218-1
ISO 14120 NOTE Approved as EN ISO 14120
Annex ZA
(normative)
Normative references to international publications
with their corresponding European publications
The following documents are referred to in the text in such a way that some or all of their content
constitutes requirements of this document. For dated references, only the edition cited applies. For
undated references, the latest edition of the referenced document (including any amendments)
applies.
NOTE 1 Where an International Publication has been modified by common modifications, indicated by (mod),
the relevant EN/HD applies.
NOTE 2 Up-to-date information on the latest versions of the European Standards listed in this annex is
available here: www.cencenelec.eu.
EN/HD
Publication Year Title Year
IEC 60825-1 2014 Safety of laser products – Part 1: Equipment EN 60825-1 2014
classification and requirements
IEC 61508 series Functional safety of EN 61508-1:2010 2010
electrical/electronic/programmable electronic
EN 61508-2:2010 2010
safety-related systems
EN 61508-3:2010 2010
EN 61508-4:2010 2010
EN 61508-5:2010 2010
EN 61508-6:2010 2010
EN 61508-7:2010 2010
ISO 11553-1 - Safety of machinery – Laser processing EN ISO 11553-1:2020 2020
machines – Safety requirements
+ A11 2020
ISO 12100 - Safety of machinery - General principles for EN ISO 12100 2010
design - Risk assessment and risk reduction
ISO 13849-1 - Safety of machinery – Safety-related parts of EN ISO 13849-1 2023
control systems – Part 1: General principles
for design
Annex ZZ
(informative)
Relationship between this European Standard and the essential
requirements of Directive 2006/42/EC aimed to be covered
This European Standard has been prepared under a Commission’s standardization request “M/396
Mandate to CEN and CENELEC for Standardisation in the field of machinery" to provide one voluntary
means of conforming to essential requirements of Directive 2006/42/EC of the European Parliament
and of the Council of 17 May 2006 on machinery, and amending Directive 95/16/EC (recast)
Once this standard is cited in the Official Journal of the European Union under that Directive,
compliance with the normative clauses of this standard given in Table ZZ.1 confers, within the limits of
the scope of this standard, a presumption of conformity with the corresponding essential requirements
of that Directive, and associated EFTA regulations.
Table ZZ.1 — Correspondence between this European Standard and Annex I of Directive
2006/42/EC
The relevant Essential Clause(s)/sub-clause(s) Remarks/Notes
Requirements of Directive of this EN
2006/42/EC
1.5.12 Clause 4.1 General design requirements
1.5.12 Clause 4.2 General performance requirements
1.5.12 Clause 4.3 Validation
1.5.12 Clause 4.4 User information
1.5.12 Clause 5.1 Special design requirements
1.5.12 Clause 5.2 Special performance requirements
1.5.12 Clause 5.3 Specification requirements
1.5.12 Clause 5.4 Testing and evaluation requirements
1.5.12 Clause 5.5 Labelling requirements
1.5.12 Clause 5.6 Additional user documentation
1.5.12 Appendix D (normative) Test specifications
WARNING 1 — Presumption of conformity stays valid only as long as a reference to this European
Standard is maintained in the list published in the Official Journal of the European Union. Users of this
standard should consult frequently the latest list published in the Official Journal of the European
Union.
WARNING 2 — Other Union legislation may be applicable to the product(s) falling within the scope of
this standard.
IEC 60825-4 ®
Edition 3.0 2022-07
INTERNATIONAL
STANDARD
NORME
INTERNATIONALE
colour
inside
Safety of laser products –
Part 4: Laser guards
Sécurité des appareils à laser –
Partie 4: Protecteurs pour laser
INTERNATIONAL
ELECTROTECHNICAL
COMMISSION
COMMISSION
ELECTROTECHNIQUE
INTERNATIONALE
ICS 31.260 ISBN 978-2-8322-3985-8
– 2 – IEC 60825-4:2022 © IEC 2022
CONTENTS
FOREWORD . 5
INTRODUCTION . 7
1 Scope . 8
2 Normative references . 8
3 Terms and definitions . 8
4 Requirements for laser guards . 11
4.1 Requirement . 11
4.2 Design requirements . 12
4.3 Performance requirements . 12
4.4 Validation . 12
4.5 User information . 13
5 Proprietary laser guards . 13
5.1 General . 13
5.2 Design requirements . 13
5.3 Performance requirements . 13
5.4 Specification requirements . 14
5.5 Test requirements . 14
5.6 Labelling requirements . 14
5.7 User information . 15
Annex A (informative) General guidance on the design and selection of laser guards . 16
A.1 Design of laser guards . 16
A.2 Selection of laser guards . 16
Annex B (informative) Assessment of foreseeable exposure limit (FEL) . 18
B.1 General . 18
B.2 Reflection of laser radiation . 19
B.3 Examples of assessment conditions . 19
B.4 Exposure duration . 22
Annex C (informative) Elaboration of defined terms . 25
C.1 Distinction between FEL and PEL . 25
C.2 Active guard parameters . 25
Annex D (normative) Proprietary laser guard testing . 27
D.1 General . 27
D.2 Test conditions . 27
D.3 Protection time corresponding to the specified protective exposure limit
(PEL) . 31
D.4 Information supplied by the manufacturer. 31
Annex E (informative) Guidelines on the arrangement and installation of laser guards . 33
E.1 Overview. 33
E.2 General . 33
E.3 Risk assessment . 34
E.4 Examples of risk assessment . 36
E.5 Aids to risk assessment . 39
Annex F (informative) Guideline for assessing the suitability of laser guards . 42
F.1 Identification of hazards . 42
F.2 Risk assessment and integrity . 42
IEC 60825-4:2022 © IEC 2022 – 3 –
F.3 General design . 45
F.4 Selection of safeguards . 46
F.5 Guard design and construction . 46
F.6 Guard construction and materials . 48
F.7 Other safety devices . 50
F.8 Interlocking considerations . 51
F.9 Environmental considerations . 55
F.10 Installation consideration – Environmental factors – Services . 56
F.11 Maintenance and service considerations . 56
Annex G (normative) Guided beam delivery systems . 67
G.1 General . 67
G.2 General requirements . 67
G.3 Verification of safety requirements or protective measures . 69
G.4 Information for users . 69
G.5 Examples of risk assessments . 70
Bibliography . 75
Figure B.1 – Calculation of diffuse reflections . 19
Figure B.2 – Calculation of specular reflections . 19
Figure B.3 – Some examples of a foreseeable fault condition . 20
Figure B.4 – Four examples of errant laser beams that might have to be contained by a
temporary guard under service conditions . 21
Figure B.5 – Illustration of laser guard exposure during repetitive machine operation . 22
Figure B.6 – Two examples of assessed duration of exposure . 23
Figure B.7 – Assessed duration of exposure for a machine with no safety monitoring . 24
Figure C.1 – Illustration of guarding around a laser processing machine . 25
Figure C.2 – Illustration of active laser guard parameters . 26
Figure D.1 – Simplified diagram of the test arrangement . 29
Figure D.2 – Simplified diagram of the ventilation for the guard under test . 29
Figure F.1 – Damage resistance of 1 mm thick zinc coated steel sheet derived from
10 s exposure to a defocused beam during experiments using a CW CO laser . 57
Figure F.2 – Damage resistance of 1 mm thick zinc coated steel sheet derived from
100 s exposure to a defocused beam during experiments using a CW CO laser . 58
Figure F.3 – Damage resistance of 2 mm thick zinc coated steel sheet derived from 10
s exposure to a defocused beam during experiments using a CW CO laser . 58
Figure F.4 – Damage resistance of 2 mm thick zinc coated steel sheet derived from
100 s exposure to a defocused beam during experiments using a CW CO laser . 58
Figure F.5 – Damage resistance of 3 mm thick zinc coated steel sheet derived from 10
s exposure to a defocused beam during experiments using a CW CO laser . 59
Figure F.6 – Damage resistance of 3 mm thick zinc coated steel sheet derived from
100 s exposure to a defocused beam during experiments using a CW CO laser . 59
Figure F.7 – Damage resistance of 2 mm thick aluminium sheet derived from 10 s
exposure to a defocused beam during experiments using a CW CO laser . 59
Figure F.8 – Damage resistance of 2 mm thick aluminium sheet derived from 100 s
exposure to a defocused beam during experiments using a CW CO laser . 60
– 4 – IEC 60825-4:2022 © IEC 2022
Figure F.9 – Damage resistance of 1 mm thick stainless steel sheet derived from 10 s
exposure to a defocused beam during experiments using a CW CO laser . 60
Figure F.10 – Damage resistance of 1 mm thick stainless steel sheet derived from 100
s exposure to a defocused beam during experiments using a CW CO laser . 60
Figure F.11 – Damage resistance of 6 mm thick polycarbonate sheet derived from 10 s
exposure to a defocused beam during experiments using a CW CO laser . 61
Figure F.12 – Damage resistance of 6 mm thick polycarbonate sheet derived from 100
s exposure to a defocused beam during experiments using a CW CO laser . 61
Figure F.13 – Damage resistance of 1 mm thick zinc coated steel sheet derived from
10 s exposure to a defocused beam during experiments using a CW Nd:YAG laser . 62
Figure F.14 – Damage resistance of 1 mm thick zinc coated steel sheet derived from
100 s exposure to a defocused beam during experiments using a CW Nd:YAG laser . 62
Figure F.15 – Damage resistance of 2 mm thick zinc coated steel sheet derived from
10 s exposure to a defocused beam during experiments using a CW Nd:YAG laser . 63
Figure F.16 – Damage resistance of 2 mm thick zinc coated steel sheet derived from
100 s exposure to a defocused beam during experiments using a CW Nd:YAG laser . 63
Figure F.17 – Damage resistance of 3 mm thick zinc coated steel sheet derived from
10 s exposure to a defocused beam during experiments using a CW Nd:YAG laser . 64
Figure F.18 – Damage resistance of 3 mm thick zinc coated steel sheet derived from
100 s exposure to a defocused beam during experiments using a CW Nd:YAG laser . 64
Figure F.19 – Damage resistance of 2 mm thick aluminium sheet derived from 10 s
exposure to a defocused beam during experiments using a CW Nd:YAG laser . 65
Figure F.20 – Damage resistance of 2 mm thick aluminium sheet derived from 100 s
exposure to a defocused beam during experiments using a CW Nd:YAG laser . 65
Figure F.21 – Damage resistance of 1 mm thick stainless steel sheet derived from 10 s
exposure to a defocused beam during experiments using a CW Nd:YAG laser . 66
Figure F.22 – Damage resistance of 1 mm thick stainless steel sheet derived from
100 s exposure to a defocused beam during experiments using a CW Nd:YAG laser . 66
Table D.1 – Laser guard test classification . 30
Table F.1 – Application of ALARP . 45
Table G.1 – Beam delivery systems using free space beam delivery systems . 70
Table G.2 – Beam delivery systems using fibre optic cables . 72
IEC 60825-4:2022 © IEC 2022 – 5 –
INTERNATIONAL ELECTROTECHNICAL COMMISSION
____________
SAFETY OF LASER PRODUCTS –
Part 4: Laser guards
FOREWORD
1) The International Electrotechnical Commission (IEC) is a worldwide organization for standardization comprising
all national electrotechnical committees (IEC National Committees). The object of IEC is to promote international
co-operation on all questions concerning standardization in the electrical and electronic fields. To this end and
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Standardization (ISO) in accordance with conditions determined by agreement between the two organizations.
2) The formal decisions or agreements of IEC on technical matters express, as nearly as possible, an international
consensus of opinion on the relevant subjects since each technical committee has representation from all
interested IEC National Committees.
3) IEC Publications have the form of recommendations for international use and are accepted by IEC National
Committees in that sense. While all reasonable efforts are made to ensure that the technical content of IEC
Publications is accurate, IEC cannot be held responsible for the way in which they are used or for any
misinterpretation by any end user.
4) In order to promote international uniformity, IEC National Committees undertake to apply IEC Publications
transparently to the maximum extent possible in their national and regional publications. Any divergence between
any IEC Publication and the corresponding national or regional publication shall be clearly indicated in the latter.
5) IEC itself does not provide any attestation of conformity. Independent certification bodies provide conformity
assessment services and, in some areas, access to IEC marks of conformity. IEC is not responsible for any
services carried out by independent certification bodies.
6) All users should ensure that they have the latest edition of this publication.
7) No liability shall attach to IEC or its directors, employees, servants or agents including individual experts and
members of its technical committees and IEC National Committees for any personal injury, property damage or
other damage of any nature whatsoever, whether direct or indirect, or for costs (including legal fees) and
expenses arising out of the publication, use of, or reliance upon, this IEC Publication or any other IEC
Publications.
8) Attention is drawn to the Normative references cited in this publication. Use of the referenced publications is
indispensable for the correct application of this publication.
9) Attention is drawn to the possibility that some of the elements of this IEC Publication may be the subject of patent
rights. IEC shall not be held responsible for identifying any or all such patent rights.
IEC 60825-4 has been prepared by IEC technical committee 76: Optical radiation safety and
laser equipment. It is an International Standard.
This third edition cancels and replaces the second edition published in 2006,
Amendment 1:2008 and Amendment 2:2011. This edition constitutes a technical revision.
This edition includes the following significant technical changes with respect to the previous
edition:
a) Significant amendments have been included and this edition has been prepared for user
convenience.
– 6 – IEC 60825-4:2022 © IEC 2022
The text of this International Standard is based on the following documents:
Draft Report on voting
76/704/FDIS 76/711/RVD
Full information on the voting for its approval can be found in the report on voting indicated in
the above table.
The language used for the development of this International Standard is English.
This document was drafted in accordance with ISO/IEC Directives, Part 2, and developed in
accordance with ISO/IEC Directives, Part 1 and ISO/IEC Directives, IEC Supplement, available
at www.iec.ch/members_experts/refdocs. The main document types developed by IEC are
described in greater detail at www.iec.ch/standardsdev/publications.
The committee has decided that the contents of this document will remain unchanged until the
stability date indicated on the IEC website under webstore.iec.ch in the data related to the
specific document. At this date, the document will be
• reconfirmed,
• withdrawn,
• replaced by a revised edition, or
• amended.
IMPORTANT – The "colour inside" logo on the cover page of this document indicates that it
contains colours which are considered to be useful for the correct understanding of its
contents. Users should therefore print this document using a colour printer.
IEC 60825-4:2022 © IEC 2022 – 7 –
INTRODUCTION
At low levels of irradiance or radiant exposure, the selection of material and thickness for
shielding against laser radiation is determined primarily by a need to provide sufficient optical
attenuation. However, at higher levels, an additional consideration is the ability of the laser
radiation to remove guard material – typically by melting, oxidation or ablation; processes that
could lead to laser radiation penetrating a normally opaque material.
IEC 60825-1 deals with basic issues concerning laser guards, including human access,
interlocking and labelling, and gives general guidance on the design of protective housings and
enclosures for high-power lasers.
Laser guards may also comply with standards for laser protective eyewear, but such compliance
is not necessarily sufficient to satisfy the requirements of this document.
Where the term "irradiance" is used, the expression "irradiance or radiant exposure, as
appropriate" is implied.
– 8 – IEC 60825-4:2022 © IEC 2022
SAFETY OF LASER PRODUCTS –
Part 4: Laser guards
1 Scope
This part of IEC 60825 specifies the requirements for laser guards, permanent and temporary
(for example for service), that enclose the process zone of a laser processing machine, and
specifications for proprietary laser guards.
This document applies to all component parts of a guard including clear (visibly transmitting)
screens and viewing windows, panels, laser curtains and walls.
In addition, this document indicates
a) how to assess and specify the protective properties of a laser guard, and
b) how to select a laser guard.
NOTE Requirements for beam path components, beam stops and those other parts of a protective housing of a
laser product which do not enclose the process zone are contained in IEC 60825-1.
This document deals with protection against laser radiation only. Hazards from secondary
radiation that may arise during material processing are not addressed.
2 Normative references
The following documents are referred to in the text in such a way that some or all of their content
constitutes requirements of this document. For dated references, only the edition cited applies.
For undated references, the latest edition of the referenced document (including any
amendments) applies.
IEC 60825-1:2014, Safety of laser products – Part 1: Equipment classification and requirements
IEC 61508 (all parts), Functional safety of electrical/electronic/programmable electronic safety-
related systems
ISO 11553-1, Safety of machinery – Laser processing machines – Laser safety requirements
ISO 12100, Safety of machinery – General principles for design – Risk assessment and risk
reduction
ISO 13849-1, Safety of machinery – Safety-related parts of control systems – Part 1: General
principles for design
3 Terms and definitions
For the purposes of this document, the terms and definitions given in IEC 60825-1 and the
following apply.
IEC 60825-4:2022 © IEC 2022 – 9 –
ISO and IEC maintain terminological databases for use in standardization at the following
addresses:
• IEC Electropedia: available at http://www.electropedia.org/
• ISO Online browsing platform: available at http://www.iso.org/obp
3.1
access panel
panel which when removed or displaced gives human access to laser radiation
Note 1 to entry: Sheathing around a fibre, tubing used as an enclosure component or any device serving the function
of a removable or displaceable panel, can also be an "access panel" within the terms of this definition.
3.2
active guard protection time
minimum time for a given laser exposure of the front (incident) surface of an active laser guard,
measured from the issue of an active guard termination signal, for which the active laser guard
can safely prevent laser radiation accessible at its rear surface from exceeding the Class 1 AEL
3.3
active guard termination signal
signal issued by an active guard in response to an excess exposure of its front surface to laser
radiation and which is intended to lead to automatic termination of the laser radiation
Note 1 to entry: The action of a safety interlock becoming open circuit is considered a "signal" in this context.
3.4
active laser guard
laser guard which is part of a safety-related control system whereby failure of the front surface
of the laser guard triggers a termination signal
3.5
beam delivery system
system comprised of all those components, including all optical beam components and potential
beam paths and their enclosures, which when combined, transfer laser radiation emitted from
the laser radiation generator (the laser) to the workpiece
Note 1 to entry: These components may include all elements for guiding, shaping and switching the laser beam as
well as the enclosure of and support for the beam path components. See Annex G for detail on guided beam delivery
systems.
3.6
beam diameter
d
diameter of the smallest circular aperture in a plane perpendicular to the beam axis that contains
86 % of the total laser power (or energy)
Note 1 to entry: In the case of a Gaussian beam (TEM ), d corresponds to the point where the irradiance (radiant
exposure) falls to 1/e of its central peak value and the second order moments of the power density distribution
(ISO 11146-1:2005 3.2).
3.7
beam path component
optical component which lies on a defined beam path
Note 1 to entry: Examples of a beam path component include a beam steering mirror, a focus lens or a fibre optic
cable connector.
[SOURCE: IEC 60825-1:2014, 3.16, modified — Example has been removed and Note 1 to
entry has been added.]
– 10 – IEC 60825-4:2022 © IEC 2022
3.8
beam shaping component
optical component introduced in the beam path to transform the profile or cross-section of the
laser beam by means of apertures, or reflective, refractive or diffractive optical components
3.9
beam switching component
optical component or an assembly of components introduced in the beam path to direct or divert,
under external control, the beam path along predetermined direction(s) with the external control
allowing the beam path to be switched from one predetermined direction to another
3.10
fibre optic cable
optical beam guiding component that enables the transmission of laser radiation along a
transparent medium
Note 1 to entry: A fibre optic cable may have a glass or other core that carries the laser radiation and be surrounded
by cladding. The outside of the fibre is protected by cladding and may be further protected by additional layers of
other material such as a polymer or a metal to protect the fibre from mechanical deformation, the ingress of water,
etc. This term also includes other forms of transmission devices such as waveguides.
3.11
foreseeable exposure limit
FEL
maximum laser exposure on the front surface of the laser guard, within the maintenance
inspection interval, assessed under normal and reasonably foreseeable fault conditions
Note 1 to entry: The full specification of an FEL comprises different elements, including irradiance and exposure
duration. More details are given in Annex B.
3.12
front surface
face of the laser guard intended for exposure to laser radiation
3.13
laser guard
physical barrier which limits the extent of a danger zone by preventing laser radiation accessible
at its rear surface from exceeding the Class 1 AEL
3.14
laser processing machine
machine which uses a laser to process materials and is within the scope of ISO 11553-1
3.15
laser termination time
maximum time taken, from generation of an active guard termination signal, for the laser
radiation to be terminated
Note 1 to entry: Laser termination time does not refer to the response of an active laser guard but to the response
of the laser processing machine, in particular the laser safety shutter.
3.16
maintenance inspection interval
time between successive safety maintenance inspections of a laser guard
3.17
passive guard protection time
minimum time determined for a laser exposure equal to a specified protective exposure limit
(PEL) at the front (incident) surface of a passive laser guard for which the passive laser guard
can reliably prevent laser radiation accessible at its rear surface from exceeding the class 1
AEL
IEC 60825-4:2022 © IEC 2022 – 11 –
3.18
passive laser guard
laser guard which relies for its operation on its physical properties only
3.19
process zone
zone where the laser beam interacts with the material to be processed
3.20
proprietary laser guard
passive or active laser guard, offered by a manufacturer of laser guards as an independent
product placed on the market with a specified protective exposure limit
3.21
protective exposure limit
PEL
maximum laser exposure of the front surface of a laser guard which prevents laser radiation
accessible at its rear surface from exceeding the Class 1 AEL for the determined passive or
active guard detection time
Note 1 to entry: In practice, there may be more than one maximum laser exposure.
Note 2 to entry: Different PELs may be assigned to different regions of a laser guard if these regions are clearly
identifiable (for example, a viewing window forming an integral part of a laser guard).
Note 3 to entry: See 5.3 for the performance requirements and 5.4 for the full specification. The full specification of
a PEL comprises different elements, including irradiance and exposure duration.
3.22
rear surface
surface of a laser guard that is remote from the associated laser radiation and usually
accessible to the user
3.23
reasonably foreseeable
credible and whose likelihood of occurrence or existence cannot be
disregarded
3.24
safety maintenance inspection
documented inspection performed in accordance with manufacturer’s instructions
3.25
temporary laser guard
substitute or supplementary active or passive laser guard intended to limit the extent of the
danger zone during some service operations of the laser processing machine
4 Requirements for laser guards
4.1 Requirement
Clause 4 specifies the requirements for laser guards that enclose the process zone and are
supplied by the laser processing machine manufacturer.
– 12 – IEC 60825-4:2022 © IEC 2022
4.2 Design requirements
4.2.1 Guard requirement
A laser guard shall satisfy ISO 12100 with respect to the general requirements for guards and
also the more specific requirements with regard to its location and method of fixture. In addition,
the following specific laser requirements shall be met for a laser guard.
4.2.2 General requirements
A laser guard, in its intended location, shall not give rise to any associated hazard at or beyond
its rear surface when exposed to primary laser radiation or secondary optical radiation up to
the foreseeable exposure limit. Annex F provides guidance on assessing the suitability of laser
guards.
NOTE 1 Examples of associated hazards include high temperature, plasma, excessive ultra-violet radiation, the
release of toxic materials, fire, explosion, and electricity.
NOTE 2 See Annex B for assessment of foreseeable exposure limit.
4.2.3 Consumable parts of laser guards
Provision shall be made for the replacement of parts of a laser guard prone to damage by laser
radiation.
NOTE An example of such a part would be a sacrificial or interchangeable screen.
4.3 Performance requirements
4.3.1 General
When the front (incident) surface of a laser guard is subjected to exposure to laser radiation at
the foreseeable exposure limit, the laser guard shall prevent laser radiation accessible at its
rear surface from exceeding the Class 1 AEL at any time over the period of the maintenance
inspection interval. For automated laser processing machines intended for unattended and/or
unsupervised operation, the minimum value of the maintenance inspection interval shall be 8 h.
This requirement shall be satisfied over the intended lifetime of the laser guard under expected
conditions of operation.
NOTE 1 This requirement implies both low transmission of laser radiation and resistance to laser-induced damage.
NOTE 2 Some materials can lose their protective properties due to ageing, exposure to ultraviolet radiation, certain
gases, temperature, humidity and other environmental conditions. Additionally, some materials will transmit laser
radiation under high-intensity laser exposure, even if there is no visible damage (i.e. reversible bleaching).
4.3.2 Active laser guards
a) The active guard protection time shall exceed the laser termination time up to the
foreseeable exposure limits.
b) If an active guard detects an excessive exposure, i.e. is triggered, it shall give rise to a
visible or audible warning. A manual reset is required before laser emission can
recommence.
NOTE See Annex C for an elaboration of terms.
4.4 Validation
4.4.1 General guard validation
If the laser processing machine manufacturer chooses to make a laser guard, the manufacturer
shall confirm that the guard complies with the design requirements and can satisfy the
performance requirements set out in 4.3.
IEC 60825-4:2022 © IEC 2022 – 13 –
NOTE See Annex A for guidance on the design and selection of laser guards.
4.4.2 Validation of performance
4.4.2.1 The complete laser guard, or an appropriate sample of the material of construction
of the laser guard, shall be tested at each FEL identified.
It is intended that a table of predetermined PELs for common combinations of lasers and
guarding materials, together with suitable testing procedures, will be issued as an informative
annex in a future amendment to this document. This could provide a simple alternative to direct
testing for the majority of cases.
NOTE See Annex B for the assessment of FEL and Annex C for further elaboration of the terms PEL and FEL.
4.4.2.2 For testing purposes, the FEL exposure shall be achieved either:
a) by calculating or measuring the exposure and reproducing the conditions; or
b) without quantifying the FEL, by creating the machine conditions under which the FEL is
produced.
The condition of the laser guard or sample shall be such as to replicate those physical
conditions of the front surface permitted within the scope of the routine inspection instructions
and within the service life of the guard, which minimize the laser radiation protective properties
of the laser guard (for example, wear and tear and surface contamination) (see 4.5.2).
4.5 User information
4.5.1 The manufacturer shall document and provide to the user the maintenance inspection
interval for the laser guard, and details of inspection and test procedures, cleaning, replacement
or repair of damaged parts, together with any restrictions of use.
4.5.2 The manufacturer shall document and provide to the user instructions that after any
actuation of the safety control system of an active guard, the cause shall be investigated, and
checks shall be made for damage. The instructions shall also include the necessary remedial
action to be taken before resetting the control system.
5 Proprietary laser guards
5.1 General
Clause 5 specifies the requirements to be satisfied by suppliers of proprietary laser guards.
5.2 Design requirements
A proprietary laser guard shall not create any associated hazard at or beyond its rear surface
when exposed to laser radiation up to the specified PEL when used as specified in the user
information (see 5.7).
5.3 Performance requirements
The accessible laser radiation at the rear surface of the laser guard shall not exceed the
Class 1 AEL when its front surface is subjected to laser radiation at the specified PEL at least
during the passive guard protection time. For an active laser guard, this requirement shall apply
to laser radiation accessible over the period of the active guard protection time, measured from
the moment an active guard termination signal is issued.
This requirement shall be satisfied over the intended lifetime o
...
SIST EN IEC 60825-4:2025は、レーザー製品の安全性に関する非常に重要なスタンダードであり、特にレーザーガードに関する要件を詳述しています。この文書は、レーザー処理機械のプロセスゾーンを囲むための永久的および一時的なレーザーガードに対する基準を設定しており、設計や素材に関する具体的な指針を提供しています。 このスタンダードの範囲は、レーザーガードに関する基本的な問題に取り組んでおり、特に人間のアクセス、インターロッキング、ラベリングに重点を置いています。これにより、安全な作業環境を確保するための重要なガイダンスが提供されます。また、レーザーガードはレーザー保護眼鏡の基準に適合することも求められていますが、これのみではこの文書の要件を満たすには不十分であることが明記されています。 さらに、SIST EN IEC 60825-4:2025は、クリアスクリーンや視認窓、パネル、レーザーカーテンおよび壁を含む、ガードの全ての構成要素に適用される仕様を示しています。これにより、ユーザーはレーザーガードの設計や選定において、十分な保護特性を評価し、特定する方法を理解できるようになっています。 このスタンダードは、レーザー技術の進化に対応し、特に高出力レーザーの使用が増加する中で、その安全性を確保するために不可欠な要素です。全体として、SIST EN IEC 60825-4:2025は、レーザーガードに関する要求事項を明確に定義し、実用的なガイダンスを提供している点で、その重要性と関連性が高いと言えます。
Die Norm EN IEC 60825-4:2024 beschäftigt sich mit der Sicherheit von Laserprodukten, insbesondere im Hinblick auf Laser-Schutzvorrichtungen. Ihr Umfang ist umfassend und behandelt nicht nur grundlegende Aspekte wie den menschlichen Zugang, die Verriegelung und die Kennzeichnung, sondern bietet auch allgemeine Leitlinien für die Gestaltung von schützenden Gehäusen und Einschlüssen für Hochleistungs-Laser. Diese Norm ist besonders relevant für alle, die mit Laserbearbeitungsmaschinen arbeiten, da sie spezifische Anforderungen an permanente und temporäre Laser-Schutzvorrichtungen festlegt. Die Stärke der Norm liegt in ihrer detaillierten Beschreibung, wie die schützenden Eigenschaften von Laser-Schutzvorrichtungen zu bewerten und zu spezifizieren sind. Zudem bietet sie wertvolle Hinweise zur Auswahl geeigneter Laser-Schutzvorrichtungen. Ein weiterer wichtiger Aspekt ist, dass die Norm klarstellt, dass die Einhaltung der Standards für laserprotective eyewear nicht unbedingt ausreicht, um die Anforderungen dieser Norm zu erfüllen. Die EN IEC 60825-4:2024 ist von zentraler Bedeutung für die Gewährleistung der Sicherheit im Umgang mit Laserproduktionstechnologien und trägt dazu bei, Risiken für die Benutzer zu minimieren. Durch die umfassende Abdeckung aller Komponenten von Schutzvorrichtungen, einschließlich transparenter Bildschirme, Sichtfenster, Paneele, Laser-Vorhänge und -Wände, bietet diese Norm eine solide Grundlage für die Entwicklung und Implementierung sicherer Lasersysteme.
EN IEC 60825-4:2024 표준은 레이저 제품의 안전성을 다루는 중요한 지침을 제공합니다. 이 표준은 레이저 가드의 설계 및 기능에 대한 기본 원칙을 상세히 설명하며, 인간의 접근, 인터록킹, 라벨링 등 핵심 요소들을 포함합니다. 특히 고출력 레이저를 위한 보호 하우징과 인클로저의 설계에 대한 일반적인 가이드를 제공하여, 산업 현장에서의 안전성을 높이는 데 기여합니다. 표준의 강점은 레이저 가드의 요구 사항을 명확히 규정하고, 영구적이거나 임시적인 가드(예: 서비스용)와 관련된 사양을 포함한다는 점입니다. 이는 레이저 가공 기계의 프로세스 영역을 효과적으로 감싸고, 빛을 투과하는 투명한 스크린, 패널, 레이저 커튼 및 벽 등의 구성 요소에 적용되며, 이러한 요소들의 보호 특성을 평가하고 명세하는 방법도 제공합니다. 또한, 레이저 가드는 레이저 보호 안경과의 호환성을 고려할 수 있으나, 이 문서의 요구 사항을 충족하는 데는 충분하지 않을 수 있음을 명시하고 있습니다. 따라서 EN IEC 60825-4:2024는 레이저 가드의 설계 및 운용을 위한 포괄적인 프레임워크를 제공, 관련 산업의 안전 규정을 준수하는 데 매우 중요한 역할을 합니다. 이 표준은 레이저 안전 규정의 진화를 반영하고 있으며, 업계 전문가들에게 최신 정보를 제공하여, 레이저 제품의 안전성을 더욱 강화할 수 있도록 돕습니다. 다양한 레이저 응용 분야에서 필수적인 기준이 되는 만큼, EN IEC 60825-4:2024는 현대 레이저 기술에서의 안전 관리에 있어 그 중요성이 더욱 커지고 있는 문서입니다.
Le document SIST EN 60825-4:2025, intitulé "Sécurité des produits laser - Partie 4 : Garde laser", représente une avancée significative dans le domaine de la sécurité laser. Sa portée est clairement définie, puisqu'il s'applique à tous les dispositifs de protection destinés à encadrer les zones de travail des machines de traitement au laser. Les points forts de cette norme incluent son approche exhaustive concernant les gardes laser, en abordant des aspects fondamentaux tels que l'accès humain, les systèmes d'interverrouillage et le marquage. En fournissant des orientations générales sur la conception des enceintes et des housses protectrices pour les lasers de forte puissance, cette norme assure une sécurité accrue dans les environnements industriels. L'inclusion de dispositifs permanents et temporaires dans les exigences des gardes laser reflète également la flexibilité nécessaire pour répondre aux besoins variés des applications industrielles. De plus, le document propose des directives sur l'évaluation et la spécification des propriétés protectrices d'une garde laser, ce qui est crucial pour garantir la sécurité dans des contextes où les lasers sont utilisés à des fins de traitement. La conformité des gardes laser avec cette norme, ainsi que leur alignement potentiel avec d'autres normes de protection pour les lunettes laser, souligne l'importance d'une approche intégrée pour le développement de solutions de sécurité intégrales. En ce sens, la norme IEC 60825-4:2022 constitue une référence incontournable pour les concepteurs et les fabricants de systèmes de sécurité laser, soulignant ainsi sa pertinence dans le secteur. Dans l’ensemble, le document SIST EN 60825-4:2025 pose les bases d’une sécurité renforcée et d’une meilleure régulation des environnements impliquant des lasers, garantissant ainsi une protection appropriée contre les risques associés à l'utilisation de ces technologies.
標準EN IEC 60825-4:2024は、レーザープロダクツの安全性に関する重要なガイドラインを提供しています。この標準は、レーザーガードに特化しており、基本的な問題、具体的には人間のアクセス、インターロッキング、ラベリングに関して詳細に取り扱っています。これにより、ユーザーは高出力レーザーのための保護ハウジングやエンクロージャーの設計について一般的な指針を得ることができます。 EN IEC 60825-4の強みは、レーザー加工機のプロセスゾーンを囲むための永久的および一時的なレーザーガードの要件を明確に定義している点です。この規格は、レーザーガードのすべての構成部品、例えば透明なスクリーン、ビューウィンドウ、パネル、レーザーカーテン、壁などに適用されます。これにより、さまざまな状況下での安全性が保証されるため、産業界での適用が期待されます。 また、この文書ではレーザーガードの保護特性を評価し、指定する方法や、レーザーガードを選択するための基準を示しているため、実務に役立つ情報が盛り込まれています。特に、レーザー保護用眼鏡とのコンプライアンスに関する注意喚起も含まれており、これは適切な安全対策を講じる上で重要です。 EN IEC 60825-4:2024は、レーザー技術の進化に伴う新たなリスクに対応するためのものであり、すべてのレーザー関連の権限に従う必要があります。このため、標準の全体的な関連性は非常に高く、レーザー安全管理の向上に貢献します。
Die Norm EN IEC 60825-4:2024 befasst sich umfassend mit der Sicherheit von Laserprodukten und insbesondere mit den Anforderungen an Laserwächter. Der Umfang dieser Norm ist sowohl auf permanente als auch temporäre Laserwächter anwendbar, die den Prozessbereich von Maschinen zur Laserbearbeitung umschließen. Die klare Definition und die umfassenden Anforderungen an Laserwächter bieten einen wichtigen Rahmen für die Entwicklung und Gestaltung schützender Gehäuse und Umhüllungen für Hochleistungslaser. Ein wesentlicher Stärke der Norm ist ihre detailreiche Anleitung zu grundlegenden Themen wie dem Zugang für Menschen, der Verriegelungssysteme und der Kennzeichnung. Diese Aspekte sind entscheidend, um die Sicherheit im Umgang mit Lasertechnologie zu gewährleisten und mögliche Gefahren durch unsachgemäßen Zugriff zu minimieren. Zudem hebt die Norm die Notwendigkeit hervor, dass Laserwächter zwar auch den Standards für laserprotective eyewear entsprechen können, dies jedoch nicht ausreicht, um die Anforderungen dieser Norm vollständig zu erfüllen. Die Norm liefert außerdem umfassende Richtlinien zur Bewertung und Spezifizierung der Schutzeigenschaften von Laserwächtern. Dies ist entscheidend für die Auswahl geeigneter Laserwächter, die sowohl transparentes Sichtmaterial als auch Schutzwände und Vorhänge umfassen können. Durch die klare Struktur und die detaillierten Anforderungen ist die Norm ein unverzichtbares Dokument für Anbieter von Lasersicherheitstechnik und Fachleuten, die im Bereich der Laserverarbeitung tätig sind. Die EN IEC 60825-4:2024 bleibt also ein relevantes und zeitgemäßes Regelwerk, das den aktuellen Herausforderungen in der Lasertechnologie gerecht wird und gleichzeitig die Sicherheit von Anwendern und Maschinen gewährleistet. Die Integration dieser Norm in tägliche Praxis ist für die Entwicklung sicherer und effektiver Lasersysteme von großer Bedeutung.
The EN IEC 60825-4:2024 standard is a crucial document in the realm of laser safety, specifically addressing the safety of laser products through its focus on laser guards. The scope of this standard is comprehensive, covering various aspects essential for safeguarding individuals from potential hazards associated with laser systems. By providing guidelines on human access, interlocking mechanisms, and proper labeling, this standard ensures that all relevant safety measures are considered in the design and implementation of laser guards. One of the notable strengths of EN IEC 60825-4:2024 is its detailed guidance on the design of protective housings and enclosures for high-power lasers. This aspect is particularly significant as it delineates the requirements for both permanent and temporary laser guards, catering to diverse applications, including those used during maintenance and service. This flexibility allows for a wide range of protective solutions tailored to specific operational needs. Furthermore, the standard addresses the compatibility of laser guards with protective eyewear, emphasizing that compliance with eyewear standards alone may not fulfill the comprehensive safety requirements stipulated within this document. This clarification is vital, as it guides manufacturers and operators to consider a holistic approach to laser safety. The standard further elaborates on how to assess and specify the protective properties of laser guards. This assists in the informed selection of appropriate guards, ensuring that all component parts-including screens, panels, laser curtains, and walls-meet the strict safety requirements. The inclusion of proprietary laser guards in the standard enhances its applicability across various industrial and research settings. Overall, EN IEC 60825-4:2024 is highly relevant for organizations using laser technology, providing essential frameworks and guidelines for the safe deployment of laser systems. Its focus on detailed requirements, design considerations, and protective features firmly aligns with the best practices necessary for maintaining a safe working environment involving laser applications.
The EN IEC 60825-4:2024 standard comprehensively addresses the safety of laser products, focusing specifically on the critical area of laser guards. The scope of this standard is notably broad and includes provisions for both permanent and temporary laser guards, which are essential for protecting users in various operational environments. By detailing requirements for protective housing and enclosures around high-power lasers, the standard serves to enhance safety protocols significantly in sectors that rely on laser technology. One of the key strengths of this standard lies in its clarity and specificity, particularly regarding the design and functionality of laser guards. The guidance on human access control, interlocking mechanisms, and appropriate labelling practices ensures a robust framework for safety that can be universally applied across industries utilizing lasers. Furthermore, the standard delineates the necessary specifications for various component parts of a guard, including clearly defined requirements for visibly transmitting screens, viewing windows, laser curtains, and walls. This level of detail enables manufacturers and operators to comply effectively with safety regulations tailored to their specific applications. Another noteworthy aspect of the EN IEC 60825-4:2024 is its emphasis on the evaluation of protective properties within laser guards. As the document specifies assessment methods to gauge the effectiveness of these guards, it provides a vital tool for ensuring compliance with safety norms. Additionally, the incorporation of advice on selecting appropriate laser guards brings further relevance to industries that may be unfamiliar with the intricacies of laser safety measures. In summary, EN IEC 60825-4:2024 stands out as a vital resource for those involved in the design, implementation, and operation of laser guard systems. Its strengths lie in its detailed guidelines, comprehensive scope, and practical relevance in enhancing safety across diverse applications of laser technology.
La norme SIST EN IEC 60825-4:2025 traite de la sécurité des produits laser et se concentre particulièrement sur les dispositifs de protection laser, appelés "laser guards". Son champ d'application est bien défini, englobant les aspects fondamentaux concernant la conception, l'interlockage, le marquage, ainsi que les recommandations générales pour les logements et les enceintes de protection destinés à des lasers de haute puissance. Parmi les points forts de cette norme, on remarque qu'elle précise les exigences pour les dispositifs de protection laser, qu'il s'agit de protections permanentes ou temporaires, y compris celles utilisées lors de la maintenance des machines de traitement laser. Cela témoigne d'une attention particulière aux différents contextes d'utilisation, renforçant ainsi la sécurité des opérateurs et des personnes à proximité. La norme englobe tous les éléments constitutifs d'un dispositif de protection laser, mentionnant des composants variés comme des écrans transparents, des fenêtres de visualisation, des panneaux, des rideaux et des murs laser. Cela montre la pertinence de la norme dans divers secteurs d'application où la sécurité est primordiale. Par ailleurs, elle fournit des directives sur la manière d'évaluer et de spécifier les propriétés protectrices d'un dispositif de sécurité laser, ainsi que des conseils pour le choix du type de protection appropriée. L'interaction avec d'autres normes sur les lunettes de protection laser est également abordée, soulignant que la conformité à ces normes ne suffit pas nécessairement à satisfaire les exigences de la norme SIST EN IEC 60825-4:2025. Cela renforce l'importance de cette norme en tant que document central régissant les précautions à prendre vis-à-vis de l'utilisation des lasers dans des environnements potentiellement dangereux. En conclusion, la norme SIST EN IEC 60825-4:2025 s'affirme comme un document essentiel pour tous les acteurs du secteur du traitement laser, offrant des directives claires et des spécifications précises pour assurer la sécurité des utilisateurs tout en facilitant l'intégration des technologies laser dans les processus industriels.
SIST EN 60825-4:2025 표준은 레이저 제품의 안전성을 보장하는 중요한 문서로, 레이저 가드에 관한 명확한 지침을 제공합니다. 이 표준은 주로 레이저 가드의 설계와 관련된 기본적인 문제들을 다루고 있으며, 인간 접근, 인터록킹 및 라벨링과 같은 요소들을 포함합니다. 이러한 접근은 레이저 프로세싱 기계의 과정 영역을 둘러싼 영구 및 임시 레이저 가드의 요구 사항을 명시합니다. 이 표준의 강점 중 하나는 레이저 가드를 설계할 때의 일반적인 지침을 제공한다는 점입니다. 레이저 가드는 강력한 레이저에 대한 보호 하우징과 인클로저의 설계를 위한 기본 기준을 제시하여 사용자가 안전성을 최대한 극대화할 수 있도록 돕습니다. 또한 이 문서는 레이저 가드의 보호 특성을 평가하고 지정하는 방법, 그리고 레이저 가드를 선택하는 방법에 대한 명확한 규정을 제공합니다. SIST EN 60825-4:2025 표준은 레이저 보호 안경을 포함한 다양한 보호 장치와의 호환성을 고려하나, 이는 이 문서의 요구사항을 충족시키기에 충분치 않을 수 있음을 강조합니다. 이로 인해, 사용자는 레이저 가드와 관련된 다양한 구성 요소를 포함하여 최적의 보호 솔루션을 선택할 수 있는 기회를 가집니다. 표준의 적용 범위는 커버 스크린, 패널, 레이저 커튼 및 벽 등 가드의 모든 구성 요소에 국한되지 않으며, 이러한 포괄적인 접근은 레이저 안전성의 중요성을 강조하고 있습니다. EN IEC 60825-4:2024 표준은 레이저 보호의 글로벌 스탠다드를 준수하기 위한 매우 필수적인 문서로서, 모든 분야에서 레이저 관련 작업의 안전성을 높이는 데 기여할 것입니다.














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