ASTM E2908-12(2018)
(Guide)Standard Guide for Fire Prevention for Photovoltaic Panels, Modules, and Systems
Standard Guide for Fire Prevention for Photovoltaic Panels, Modules, and Systems
SIGNIFICANCE AND USE
5.1 Photovoltaic modules are electrical dc sources. dc sources have unique considerations with regards to arc formation and interruption, as once formed, the arc is not automatically interrupted by an alternating current. Solar modules are energized whenever modules in the string are illuminated by sunlight, or during fault conditions.
5.2 With the rapid increase in the number of photovoltaic system installations, this guide attempts to increase awareness of methods to reduce the risk of fire from photovoltaic systems.
5.3 This guide is intended for use by module manufacturers, panel assemblers, system designers, installers, and specifiers.
5.4 This guide may be used to specify minimum requirements. It is not intended to capture all conditions or scenarios which could result in a fire.
SCOPE
1.1 This guide describes basic principles of photovoltaic module design, panel assembly, and system installation to reduce the risk of fire originating from the photovoltaic source circuit.
1.2 This guide is not intended to cover all scenarios which could lead to fire. It is intended to provide an assembly of generally-accepted practices.
1.3 This guide is intended for systems which contain photovoltaic modules and panels as dc source circuits, although the recommended practices may also apply to systems utilizing ac modules.
1.4 This guide does not cover fire suppression in the event of a fire involving a photovoltaic module or system.
1.5 This guide does not cover fire emanating from other sources.
1.6 This guide does not cover mechanical, structural, electrical, or other considerations key to photovoltaic module and system design and installation.
1.7 This guide does not cover disposal of modules damaged by a fire, or other material hazards related to such modules.
1.8 Units—The values stated in SI units are to be regarded as standard. No other units of measurement are included in this standard.
1.9 This standard does not purport to address all of the safety concerns, if any, associated with its use. It is the responsibility of the user of this standard to establish appropriate safety, health, and environmental practices and determine the applicability of regulatory limitations prior to use.
1.10 This international standard was developed in accordance with internationally recognized principles on standardization established in the Decision on Principles for the Development of International Standards, Guides and Recommendations issued by the World Trade Organization Technical Barriers to Trade (TBT) Committee.
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Designation: E2908 − 12 (Reapproved 2018) An American National Standard
Standard Guide for
Fire Prevention for Photovoltaic Panels, Modules, and
Systems
This standard is issued under the fixed designation E2908; the number immediately following the designation indicates the year of
original adoption or, in the case of revision, the year of last revision. A number in parentheses indicates the year of last reapproval. A
superscript epsilon (´) indicates an editorial change since the last revision or reapproval.
1. Scope mendations issued by the World Trade Organization Technical
Barriers to Trade (TBT) Committee.
1.1 This guide describes basic principles of photovoltaic
module design, panel assembly, and system installation to
2. Referenced Documents
reduce the risk of fire originating from the photovoltaic source
2.1 ASTM Standards:
circuit.
E772 Terminology of Solar Energy Conversion
1.2 This guide is not intended to cover all scenarios which
E2481 Test Method for Hot Spot Protection Testing of
could lead to fire. It is intended to provide an assembly of
Photovoltaic Modules
generally-accepted practices.
2.2 Other Standards and Documents:
1.3 This guide is intended for systems which contain pho-
IEC 61215 Crystalline silicon terrestrial photovoltaic (PV)
tovoltaic modules and panels as dc source circuits, although the
modules—Design qualification and type approval
recommended practices may also apply to systems utilizing ac
IEC 61730 Photovoltaic (PV) module safety qualification
modules.
North American Board of Certified Energy Practitioners
(NABCEP), Study Guide for Photovoltaic System Install-
1.4 This guide does not cover fire suppression in the event
ers
of a fire involving a photovoltaic module or system.
NFPA 70 US National Electrical Code (article 690)
1.5 This guide does not cover fire emanating from other
UL 1703 Standard for Flat-Plate Photovoltaic Modules and
sources.
Panels
1.6 This guide does not cover mechanical, structural,
UL 1741 Inverters, Converters, and Controllers for Use in
electrical, or other considerations key to photovoltaic module
Independent Power Systems
and system design and installation.
3. Terminology
1.7 This guide does not cover disposal of modules damaged
3.1 Definitions of terms used in this standard may be found
by a fire, or other material hazards related to such modules.
in Terminology E772.
1.8 Units—The values stated in SI units are to be regarded
3.2 Definitions:
as standard. No other units of measurement are included in this
3.2.1 ground fault, n—a condition where there is an unin-
standard.
tended electrical connection between the active PV circuit and
1.9 This standard does not purport to address all of the
ground.
safety concerns, if any, associated with its use. It is the
responsibility of the user of this standard to establish appro-
4. Summary of Practice
priate safety, health, and environmental practices and deter-
4.1 Photovoltaic modules and panels should be designed to
mine the applicability of regulatory limitations prior to use.
minimize the risk of fire and should be assembled with good
1.10 This international standard was developed in accor-
quality-control practices.
dance with internationally recognized principles on standard-
ization established in the Decision on Principles for the
4.2 Photovoltaic systems should be designed to minimize
Development of International Standards, Guides and Recom- the risk of fire, and installed with fire safety in mind. Installers
should be aware of PV-related fires that have occurred and the
cause of those fires.
This test method is under the jurisdiction of ASTM Committee E44 on Solar,
Geothermal and Other Alternative Energy Sources and is the direct responsibility of
Subcommittee E44.09 on Photovoltaic Electric Power Conversion. For referenced ASTM standards, visit the ASTM website, www.astm.org, or
Current edition approved May 1, 2018. Published May 2018. Originally contact ASTM Customer Service at service@astm.org. For Annual Book of ASTM
approved in 2012. Last previous edition approved in 2012 as E2908-12. DOI: Standards volume information, refer to the standard’s Document Summary page on
10.1520/E2908-12R18. the ASTM website.
Copyright © ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United States
E2908 − 12 (2018)
5. Significance and Use 7. PV Modules and Panels
5.1 Photovoltaic modules are electrical dc sources. dc
7.1 Design Against Arcing—Modules shall be designed to
sources have unique considerations with regards to arc forma-
reduce the risk of arcing.
tion and interruption, as once formed, the arc is not automati-
7.1.1 Modules shall meet the spacing requirements of IEC
cally interrupted by an alternating current. Solar modules are
61730 or UL 1703 to reduce the occurrence of arcing under
energized whenever modules in the string are illuminated by
both normal operating conditions and fault conditions.
sunlight, or during fault conditions.
7.1.2 Materials and processes used in the manufacture of PV
5.2 With the rapid increase in the number of photovoltaic modules shall be designed to be durable and reliable over the
system installations, this guide attempts to increase awareness entire service life of the PV module.
of methods to reduce the risk of fire from photovoltaic systems.
7.1.3 Failure mechanisms, such as mismatch of thermal
expansion coefficients, metal fatigue, corrosion or vibration,
5.3 This guide is intended for use by module manufacturers,
shall be considered during the selection of materials, module
panel assemblers, system designers, installers, and specifiers.
lay-out, and assembly.
5.4 This guide may be used to specify minimum require-
7.1.4 Material selection shall include consideration of the
ments. It is not intended to capture all conditions or scenarios
operating temperatures of the material and aging characteristics
which could result in a fire.
of the material.
6. Arcing
7.2 Design for Arc and Fire Suppression:
6.1 dc Arcing:
7.2.1 Materials in close contact to potential arc sources,
6.1.1 An electrical arc can form where an electric potential
such as junction boxes, shall have a minimum arc and
exists between two neighboring conductors. Unlike ac arcs
flammability rating in accordance with IEC 61730 or UL 1703.
which may be extinguished during the alternating-cycle of
This helps to reduce the risk of fire in the event of an arcing
current, a dc arc will be maintained indefinitely until inter-
event.
rupted. A dc arc will be sustained until the voltage potential is
7.2.2 According to the 2011 National Electrical Code, an
reduced, an arc-detection device disrupts the flow of current, or
arc-detection device is required to disconnect the current flow
the effective distance between the conductors becomes too
in the event of arcing. Depending on the location of the device,
large to sustain the arc. Even once the arc is eliminated, the arc
it may protect an individual module or an entire string.
may have been sufficient to cause burning or ignition of
Consideration shall be given to the reliability of such devices,
surrounding materials.
to avoid nuisance trips and costly servicing.
6.1.2 An arc may propagate across the surface of the module
7.3 Operating Temperature:
(for example, along the gap between rows of cells) as materials
7.3.1 A PV module converts a portion of the sun’s energy
are burned away.
into electrical energy. The portion of the sun’s energy that is
6.1.3 The arc may extinguish and re-ignite under variable
not converted into electrical energy is either reflected, trans-
environmental conditions or with expansion and contraction of
mitted through the module, or transformed into heat energy.
affected materials, and may also extinguish at night and restart
Therefore, a PV module usually operates at a temperature
the next day.
hotter than the surrounding ambient temperature.
6.1.4 Common sources of arcs in PV modules:
7.3.2 Operating Temperature Considerations—The exact
6.1.4.1 Cracks in solar cells (crystalline or thin film).
operating temperature of a module, and of any given compo-
6.1.4.2 Inadequate spacing between parts of different volt-
nent within a module, depends on a variety of factors.
age potentials.
6.1.4.3 Improper bonding of interconnects to cells. 7.3.2.1 Environmental Factors—Wind speed, wind
direction, ambient temperature, solar irradiance, and cloud
6.1.4.4 Improper bonding of interconnects to bus bar.
6.1.4.5 Improper bonding of bus bar to wiring terminal or cover.
connector.
7.3.2.2 Installation Factors—Angle of installation, rack
6.1.4.6 Insufficient allowance for thermal expansion and
type, module spacing, location, wind obstructions, tracking
contraction of materials, which leads to mechanical fatigue.
versus non-tracking, ventilation, shading events.
Common examples include cell interconnects and expansion
7.3.2.3 Module Factors—Cell mismatch (leading to non-
joints in conduits.
uniform heat generation), insulated sections (e.g. junction
6.1.4.7 Insufficient strain relief between parts; especially
boxes), color, framing, transparency, material thermal
field wiring terminations, solder joints, and internal conduc-
conductivity, thermal convection characteristics, current-
tors.
carrying limits of live parts.
6.2 ac Arcing: 7.3.3 Shading—Shading events can cause shaded cells to act
6.2.1 Both ac and dc circuits may be present in a solar as power sinks (resistors) as opposed to power generators.
photovoltaic system, and both circuits contain potential arc Therefore, shaded cells can run much hotter than neighboring
sources. A dc arc may be sustained over a larger distance and cells. Although modules are designed to operate in un-shaded
longer duration than an ac arc due to the one-directional flow conditions, some degree of localized shading is inevitable in
of the dc current, which is not easily interrupted. The current in most installations. Refer to Test Method E2481 for additional
an ac arc always goes to zero twice per cycle. information.
E2908 − 12 (2018)
7.3.3.1 The amount of heating of a cell depends on the shunt the extreme and nominal conditions expected throughout the
and series resistance characteristics of the shaded cells, the module lifetime. The means for connection shall be in accor-
current flowing through the cell, and whether the cells are dance with the module and connector Installation Guides or
partially illuminated. any applicable local codes. Wiring shall be mechanically
7.3.3.2 Material Combustion—Materials in contact with secured, if required, to prevent strain on the electrical
cells shall be able to withstand temperatures under the shaded connections, with adequate slack to allow for thermal expan-
condition without exceeding material ignition temperature sion and contraction of the wiring.
ratings. The design may be tested to assess material suitability
8.1.3 Other Wiring—All other wiring in the PV system shall
per UL 1703, Section 19, Temperature Test.
be suitable for the intended application and secured if required,
7.3.3.3 Modules shall have adequate protection in the event
with consideration given to the same factors as described for
of shading.
module-to-module wiring. Wiring securement means must be
7.3.3.4 Diodes—A common method for providing shading
able to withstand outdoor conditions, including UV radiation,
protection is through bypass diodes connected in parallel with
over the expected service life of the system, and should be
the cells to be protected. As the forward and reverse charac-
checked routinely as part of regular system maintenance. If
teristics of a PV cell are different, the diodes shall be sized to
wiring is in metallic conduit, particular attention should be
activate in the event of shading of part or all of one or more of
given to proper installation and wire management techniques to
the cells to prevent the formation of localized hot spots. The
reduce the possibility of ground faults.
diodes must be able to safely handle the string current.
8.1.4 dc Disconnects—dc disconnects shall be used to allow
Activation of the diode during a cell shading event shall not
safe disconnection of a dc string from an inverter, combiner
result in overheating of the diode, nor materials surrounding
box, charge controller or other electrical components in the
the diode. The diode shall be mounted and connected using a
system. The disconnect shall be rated appropriately for the dc
robust and reliable method, including strain relief as appropri-
current and voltage of the system, in accordance with local
ate. Diode quality and the mounting method should be evalu-
codes. Note that an ac-only disconnect may or may not be
ated for durability. If diodes are mounted mechanically, they
suitable for a dc circuit, as it relies on the alternating-nature of
should be tested under simulated field conditions to ensure that
ac current to disrupt the current flow.
adequate contact is maintained over time.
8.1.5 Inverters—Inverters shall be appropriately sized for
7.4 Documentation: the intended location, be approved to the local standard, such
7.4.1 Recognition—The module should be certified by an
as UL 1741, and meet local code requirements for connection
approved organization to meet a minimum level of safety. Two to the grid. Inverters may have built-in arc-detection capability,
standards that are commonly used to assess a minimum safety
which disconnects the system in the event of an arc to reduce
level are UL 1703 and IEC 61730. damage to the system and supporting structures.
7.4.2 Quality System—The PV manufacturer shall have an
8.1.6 Ground Fault Protection—Consideration shall be
established quality system to ensure all modules manufactured
given to the grounding scheme, to minimize arcing and
meet a basic level of quality from a fire safety standpoint.
potential current pathways between live parts and ground
Sources of dc arcing shall be given specific attention, as well as
potential.
any material or process steps critical to module operating
8.2 Operating Temperature:
temperature.
8.2.1 The operating temperature of a PV module is highly
7.4.3 Installation Guide—Any limitations on installation
dependent upon the installation location and installation meth-
location or conditions critical to the safe operating state of a PV
ods used.
system shall be indicated in the Installation Guide. This may
8.2.2 The design of a PV system shall be such that the
include ambient conditions, mounting configuration, wiring
requirements, over-current protection devices and fuse ratings. operating temperatures of the PV modules and all components
fall within the rated values. Materials suitable for the installa-
8.
...
This document is not an ASTM standard and is intended only to provide the user of an ASTM standard an indication of what changes have been made to the previous version. Because
it may not be technically possible to adequately depict all changes accurately, ASTM recommends that users consult prior editions as appropriate. In all cases only the current version
of the standard as published by ASTM is to be considered the official document.
Designation: E2908 − 12 E2908 − 12 (Reapproved 2018)
Standard Guide for
Fire Prevention for Photovoltaic Panels, Modules, and
Systems
This standard is issued under the fixed designation E2908; the number immediately following the designation indicates the year of
original adoption or, in the case of revision, the year of last revision. A number in parentheses indicates the year of last reapproval. A
superscript epsilon (´) indicates an editorial change since the last revision or reapproval.
1. Scope
1.1 This guide describes basic principles of photovoltaic module design, panel assembly, and system installation to reduce the
risk of fire originating from the photovoltaic source circuit.
1.2 This guide is not intended to cover all scenarios which could lead to fire. It is intended to provide an assembly of
generally-accepted practices.
1.3 This guide is intended for systems which contain photovoltaic modules and panels as dc source circuits, although the
recommended practices may also apply to systems utilizing ac modules.
1.4 This guide does not cover fire suppression in the event of a fire involving a photovoltaic module or system.
1.5 This guide does not cover fire emanating from other sources.
1.6 This guide does not cover mechanical, structural, electrical, or other considerations key to photovoltaic module and system
design and installation.
1.7 This guide does not cover disposal of modules damaged by a fire, or other material hazards related to such modules.
1.8 Units—The values stated in SI units are to be regarded as standard. No other units of measurement are included in this
standard.
1.9 This standard does not purport to address all of the safety concerns, if any, associated with its use. It is the responsibility
of the user of this standard to establish appropriate safety safety, health, and healthenvironmental practices and determine the
applicability of regulatory limitations prior to use.
1.10 This international standard was developed in accordance with internationally recognized principles on standardization
established in the Decision on Principles for the Development of International Standards, Guides and Recommendations issued
by the World Trade Organization Technical Barriers to Trade (TBT) Committee.
2. Referenced Documents
2.1 ASTM Standards:
E772 Terminology of Solar Energy Conversion
E2481 Test Method for Hot Spot Protection Testing of Photovoltaic Modules
2.2 Other Standards and Documents:
IEC 61215 Crystalline silicon terrestrial photovoltaic (PV) modules—Design qualification and type approval
IEC 61730 Photovoltaic (PV) module safety qualification
North American Board of Certified Energy Practitioners (NABCEP), Study Guide for Photovoltaic System Installers
NFPA 70 US National Electrical Code (article 690)
UL 1703 Standard for Flat-Plate Photovoltaic Modules and Panels
UL 1741 Inverters, Converters, and Controllers for Use in Independent Power Systems
This test method is under the jurisdiction of ASTM Committee E44 on Solar, Geothermal and Other Alternative Energy Sources and is the direct responsibility of
Subcommittee E44.09 on Photovoltaic Electric Power Conversion.
Current edition approved Dec. 1, 2012May 1, 2018. Published December 2012May 2018. DOI: 10.1520/E2908-12.Originally approved in 2012. Last previous edition
approved in 2012 as E2908-12. DOI: 10.1520/E2908-12R18.
For referenced ASTM standards, visit the ASTM website, www.astm.org, or contact ASTM Customer Service at service@astm.org. For Annual Book of ASTM Standards
volume information, refer to the standard’s Document Summary page on the ASTM website.
Copyright © ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United States
E2908 − 12 (2018)
3. Terminology
3.1 Definitions of terms used in this standard may be found in Terminology E772.
3.2 Definitions:
3.2.1 ground fault, n—a condition where there is an unintended electrical connection between the active PV circuit and ground.
4. Summary of Practice
4.1 Photovoltaic modules and panels should be designed to minimize the risk of fire and should be assembled with good
quality-control practices.
4.2 Photovoltaic systems should be designed to minimize the risk of fire, and installed with fire safety in mind. Installers should
be aware of PV-related fires that have occurred and the cause of those fires.
5. Significance and Use
5.1 Photovoltaic modules are electrical dc sources. dc sources have unique considerations with regards to arc formation and
interruption, as once formed, the arc is not automatically interrupted by an alternating current. Solar modules are energized
whenever modules in the string are illuminated by sunlight, or during fault conditions.
5.2 With the rapid increase in the number of photovoltaic system installations, this guide attempts to increase awareness of
methods to reduce the risk of fire from photovoltaic systems.
5.3 This guide is intended for use by module manufacturers, panel assemblers, system designers, installers, and specifiers.
5.4 This guide may be used to specify minimum requirements. It is not intended to capture all conditions or scenarios which
could result in a fire.
6. Arcing
6.1 dc Arcing:
6.1.1 An electrical arc can form where an electric potential exists between two neighboring conductors. Unlike ac arcs which
may be extinguished during the alternating-cycle of current, a dc arc will be maintained indefinitely until interrupted. A dc arc will
be sustained until the voltage potential is reduced, an arc-detection device disrupts the flow of current, or the effective distance
between the conductors becomes too large to sustain the arc. Even once the arc is eliminated, the arc may have been sufficient to
cause burning or ignition of surrounding materials.
6.1.2 An arc may propagate across the surface of the module (for example, along the gap between rows of cells) as materials
are burned away.
6.1.3 The arc may extinguish and re-ignite under variable environmental conditions or with expansion and contraction of
affected materials, and may also extinguish at night and restart the next day.
6.1.4 Common sources of arcs in PV modules:
6.1.4.1 Cracks in solar cells (crystalline or thin film).
6.1.4.2 Inadequate spacing between parts of different voltage potentials.
6.1.4.3 Improper bonding of interconnects to cells.
6.1.4.4 Improper bonding of interconnects to bus bar.
6.1.4.5 Improper bonding of bus bar to wiring terminal or connector.
6.1.4.6 Insufficient allowance for thermal expansion and contraction of materials, which leads to mechanical fatigue. Common
examples include cell interconnects and expansion joints in conduits.
6.1.4.7 Insufficient strain relief between parts; especially field wiring terminations, solder joints, and internal conductors.
6.2 ac Arcing:
6.2.1 Both ac and dc circuits may be present in a solar photovoltaic system, and both circuits contain potential arc sources. A
dc arc may be sustained over a larger distance and longer duration than an ac arc due to the one-directional flow of the dc current,
which is not easily interrupted. The current in an ac arc always goes to zero twice per cycle.
7. PV Modules and Panels
7.1 Design Against Arcing—Modules shall be designed to reduce the risk of arcing.
7.1.1 Modules shall meet the spacing requirements of IEC 61730 or UL 1703 to reduce the occurrence of arcing under both
normal operating conditions and fault conditions.
7.1.2 Materials and processes used in the manufacture of PV modules shall be designed to be durable and reliable over the entire
service life of the PV module.
7.1.3 Failure mechanisms, such as mismatch of thermal expansion coefficients, metal fatigue, corrosion or vibration, shall be
considered during the selection of materials, module lay-out, and assembly.
7.1.4 Material selection shall include consideration of the operating temperatures of the material and aging characteristics of the
material.
E2908 − 12 (2018)
7.2 Design for Arc and Fire Suppression:
7.2.1 Materials in close contact to potential arc sources, such as junction boxes, shall have a minimum arc and flammability
rating in accordance with IEC 61730 or UL 1703. This helps to reduce the risk of fire in the event of an arcing event.
7.2.2 According to the 2011 National Electrical Code, an arc-detection device is required to disconnect the current flow in the
event of arcing. Depending on the location of the device, it may protect an individual module or an entire string. Consideration
shall be given to the reliability of such devices, to avoid nuisance trips and costly servicing.
7.3 Operating Temperature:
7.3.1 A PV module converts a portion of the sun’s energy into electrical energy. The portion of the sun’s energy that is not
converted into electrical energy is either reflected, transmitted through the module, or transformed into heat energy. Therefore, a
PV module usually operates at a temperature hotter than the surrounding ambient temperature.
7.3.2 Operating Temperature Considerations—The exact operating temperature of a module, and of any given component
within a module, depends on a variety of factors.
7.3.2.1 Environmental Factors—Wind speed, wind direction, ambient temperature, solar irradiance, and cloud cover.
7.3.2.2 Installation Factors—Angle of installation, rack type, module spacing, location, wind obstructions, tracking versus
non-tracking, ventilation, shading events.
7.3.2.3 Module Factors—Cell mismatch (leading to non-uniform heat generation), insulated sections (e.g. junction boxes),
color, framing, transparency, material thermal conductivity, thermal convection characteristics, current-carrying limits of live parts.
7.3.3 Shading—Shading events can cause shaded cells to act as power sinks (resistors) as opposed to power generators.
Therefore, shaded cells can run much hotter than neighboring cells. Although modules are designed to operate in un-shaded
conditions, some degree of localized shading is inevitable in most installations. Refer to Test Method E2481 for additional
information.
7.3.3.1 The amount of heating of a cell depends on the shunt and series resistance characteristics of the shaded cells, the current
flowing through the cell, and whether the cells are partially illuminated.
7.3.3.2 Material Combustion—Materials in contact with cells shall be able to withstand temperatures under the shaded condition
without exceeding material ignition temperature ratings. The design may be tested to assess material suitability per UL 1703,
Section 19, Temperature Test.
7.3.3.3 Modules shall have adequate protection in the event of shading.
7.3.3.4 Diodes—A common method for providing shading protection is through bypass diodes connected in parallel with the
cells to be protected. As the forward and reverse characteristics of a PV cell are different, the diodes shall be sized to activate in
the event of shading of part or all of one or more of the cells to prevent the formation of localized hot spots. The diodes must be
able to safely handle the string current. Activation of the diode during a cell shading event shall not result in overheating of the
diode, nor materials surrounding the diode. The diode shall be mounted and connected using a robust and reliable method,
including strain relief as appropriate. Diode quality and the mounting method should be evaluated for durability. If diodes are
mounted mechanically, they should be tested under simulated field conditions to ensure that adequate contact is maintained over
time.
7.4 Documentation:
7.4.1 Recognition—The module should be certified by an approved organization to meet a minimum level of safety. Two
standards that are commonly used to assess a minimum safety level are UL 1703 and IEC 61730.
7.4.2 Quality System—The PV manufacturer shall have an established quality system to ensure all modules manufactured meet
a basic level of quality from a fire safety standpoint. Sources of dc arcing shall be given specific attention, as well as any material
or process steps critical to module operating temperature.
7.4.3 Installation Guide—Any limitations on installation location or conditions critical to the safe operating state of a PV system
shall be indicated in the Installation Guide. This may include ambient conditions, mounting configuration, wiring requirements,
over-current protection devices and fuse ratings.
8. PV Systems
8.1 System Design Considerations:
8.1.1 Series Fuse Protection—In most cases where two or more strings of photovoltaic modules are connected in parallel, the
branch or sub-string shall be protected by a fuse. The fuse protects the modules and other electrical components in the system from
over-current in the event of a fault condition. The total available current and fuse rating shall not exceed that recommended by the
module or panel manufacturer.
8.1.2 Module-to-Module Connections—All wiring and connectors used shall be of the type and sizing recommended by the
module manufacturer and in accordance with local codes. Wiring shall be suitable for the intended application, including
temperature range, wire gauge, UV resistance, water resistance, and system voltage. Consideration shall be given to the extreme
and nominal conditions expected throughout the module lifetime. The means for connection shall be in accordance with the module
and connector Installation Guides or any applicable local codes. Wiring shall be mechanically secured, if required, to prevent strain
on the electrical connections, with adequate slack to allow for thermal expansion and contraction of the wiring.
E2908 − 12 (2018)
8.1.3 Other Wiring—All other wiring in the PV system shall be suitable for the intended application and secured if required,
with consideration given to the same factors as described for module-to-module wiring. Wiring securement means must be able
to withstand outdoor conditions, including UV radiation, over the expected service life of the system, and should be checked
routinely as part of regular system maintenance. If wiring is in metallic conduit, particular attention should be given to proper
installation and wire management techniques to reduce the possibility of ground faults.
8.1.4 dc Disconnects—dc disconnects shall be used to allow safe disconnection of a dc string from an inverter, combiner box,
charge controller or other electrical components in the system. The disconnect sha
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