Showing posts with label FM approval. Show all posts
Showing posts with label FM approval. Show all posts

Monday, January 1, 2024

UL Listed and FM Approvals for Fire Protection Under NFPA 13?

UL Listed and FM Approvals for Fire Protection Under NFPA 13? 

Listings are required for all essential system components but acceptance of specific approvals—UL listed, FM approved, or otherwise—is determined by local code officials.

“UL listed” and “FM approval”—along with their lesser-mentioned cousin, “certified”—are terms that circulate freely in the world of fire protection. Fire pumps, fire sprinklers, pipes, extinguishers, and a vast array of other products regularly undergo rigorous, third-party testing according to the standards of groups like FM Global and UL (formerly known as Underwriters Laboratories). But for many consumers, what remains unclear is the matter of which certifications to use and when they’re required.

In this article, we bring some clarity to the subject of listings and approvals. We explain what terms like these mean and who decides when a particular organization—be it UL, FM Global/Approvals, or another group—has the credibility needed to certify specific types of fire protection products. Finally, we present readers with an overview of products requiring these certifications in NFPA 13: Standard for the Installation of Sprinkler Systems.

UL-listed and/or FM-approved residential and commercial fire sprinkler heads, check valves, hose angle valves, CPVC pipe, pipe hangers, and fire extinguishers are just part of our vast catalog of certified equipment—just take a look.

UL listed and FM approval act as industry synonyms for “listed” or “certified”—but the different terms have distinct definitions under NFPA codes and standards

Manufacturers, retailers, and consumers often describe fire protection products as “UL-listed,” “FM-approval,” and even “UL and FM approved.” But as Bruce Rose at CUI Insights notes, there’s really no such thing as “UL-approved”—and for good reason. “[I]f you look at their website, the only mention of ‘approvals’ is in examples of incorrect terms. UL avoids the word as a way of indicating that it really is the manufacturer’s responsibility to ensure safety and that UL only acts as an auditor[.]”

While this shorthand is popular (including, at times, in our own products), there’s another good reason to understand the difference between “listed” and “approved:” the NFPA draws a sharp distinction between those products or installations that are listed and those that are approved.

From the 2019 edition of NFPA 13

3.2.1* Approved. Acceptable to the authority having jurisdiction.

3.2.3* Listed. Equipment, materials, or services included in a list published by an organization that is acceptable to the authority having jurisdiction and concerned with evaluation of products or services, that maintains periodic inspection of production of listed equipment or materials or periodic evaluation of services, and whose listing states that either the equipment, material, or service meets appropriate designated standards or has been tested and found suitable for a specified purpose.

A.3.2.3 Listed. The means for identifying listed equipment may vary for each organization concerned with product evaluation; some organizations do not recognize equipment as listed unless it is also labeled. The authority having jurisdiction should utilize the system employed by the listing organization to identify a listed product.

Code officials decide what’s approved, but it takes third-party evaluation to make a product listed. Based on tests assessing durability, longevity, and proper function—along with audits of manufacturers’ processes—listings from organizations like UL and FM Approvals provide stakeholders with a measure of confidence in products’ performance that’s not otherwise possible.

And here’s where it gets even more confusing: FM Approvals (the name of the independent testing branch of the FM Global insurance company) spurs the description “FM Approved.” This is NOT an “approval” according to the NFPA definitions above, as only the authority having jurisdiction can approve something (more on who that authority is in a second).

Thus, when you see either “UL listed” or “FM approved,” it essentially means it was tested by the safety organizations for a specific application and “listed,” aka “certified.”

Are all listings equal? Only if the AHJ says so

A wide variety of organizations test and attest to the suitability of fire protection equipment. But even listed equipment must be “acceptable to the authority having jurisdiction,” or AHJ (NFPA 13 2019, 3.2.3). But who—or what—is an AHJ?

From the 2019 edition of NFPA 13

3.2.2* Authority Having Jurisdiction (AHJ). An organization, office, or individual responsible for enforcing the requirements of a code or standard, or for approving equipment, materials, an installation, or a procedure.

According to the NFPA 13 Handbook, the AHJ is often a fire marshal or building code official. But the term can cover a variety of public and private people or entities tasked with enforcing standards. In some instances, even an insurance company or corporate safety officer could be an AHJ.

Applied haphazardly, AHJs’ authority to decide which listings are acceptable—and which aren’t—could cause some rather arbitrary problems. However, while some contractors claim to have encountered this exact problem, Michael Johnston at Electrical Contractor suggests that AHJs in the world of electrical work, for example, often rely on lists of testing laboratories—published by the Occupational Safety and Health Administration (OSHA)—for the sake of “consistency.”

Those lists are provided as part of OSHA’s Nationally Recognized Testing Laboratory (NRTL) program. The NTRL “[r]ecognizes private sector organizations” that evaluate products for compliance with various standards. In fact, federal regulations require some products to have approval from an NRTL, including:

  • Automatic fire sprinkler systems
  • Portable fire extinguishers
  • Fire doors (self-closing and not)
  • Fixed extinguishing systems
  • Automatic fire detection devices and equipment

In the world of fire protection, thankfully, an authority having jurisdiction is often your local or state fire official or government inspector, and they usually put great stock in items that are tested and listed by UL, FM, and other companies recognized by the Nationally Recognized Testing Laboratory program.

A handful of nationally recognized testing laboratories, including UL and FM, are responsible for a wide variety of listed fire protection products.

OSHA’s list of NRTLs, then, is a likely starting point for local fire officials. The quick-reference guide below provides a current list of laboratories that test fire equipment ranging from fire sprinklers to amplifiers for fire alarms. While our list is extensive, it isn’t comprehensive—a single laboratory may be recognized for work with hundreds of standards. For more options, check out the current list of NRTLs available at OSHA.

Otherwise, review this select list:

Fire Protection Products in the OSHA list of Nationally Recognized Testing Laboratories (August 2019)

Testing Laboratory

Products

CSA Group Testing and Certification

Fire pumps and electrical accessories

Control units, cables, and amplifiers for fire alarm and protection systems

FM Approvals

Automatic and ESFR fire sprinklers

Plastic pipe and fittings for fire protection service

Foam, dry chemical, and carbon dioxide fire extinguishers

Heat detectors

Fire alarm control panels, signaling devices, and detection products

Intertek Testing Services NA, Inc.

Thermoplastic pipe and gasketed joints for fire protection service

Foam and carbon dioxide fire extinguishers

Fire doors

Alarm valves for fire protection

Detectors, boxes, and accessories for fire alarm systems

Foam fire extinguishers

Fire pumps and controllers

NSF International

PVC and thermoplastic pipe and fittings for fire protection service

QAI Laboratories, LTD

Fire door assemblies

Southwest Research Institute

Plastic pipe for fire protection service

Fire doors and dampers

Flame arrestors

Underwriters Laboratories Inc.

Fire sprinklers, including residential and ESFR

Sprinkler system pipe (metal, thermoplastic, and underground), flexible fittings, and adjustable nipples

Alarm, pressure-reducing, check, and fire pump relief valves

Fire alarm system signalling, power, amplification

Dry chemical, foam, and carbon dioxide fire extinguishers

Fire doors

Fire pumps and accessories

Indicating pressure gauges for fire protection

One overarching rule guides NFPA 13’s requirements for system components and hardware: listings are required for any product that impacts a sprinkler system’s ability to control fires.

From the 2019 edition of NFPA 13

7.1.1.2 Unless the requirements of 7.1.1.3, 7.1.1.4, or 7.1.1.5 are met, all materials and devices essential to successful system operation shall be listed.

7.1.1.2.1 Valve components (including valve trim, internal parts, gaskets, and the like) shall not be required to be individually listed.

7.1.1.3 Equipment as permitted in Table 7.3.1.1 and Table 7.4.1 [select aboveground pipes and fittings discussed below] shall not be required to be listed.

7.1.1.3.1 Nonmetallic pipe and fittings included in Table 7.3.1.1 and Table 7.4.1 shall be listed.

7.1.1.4 Materials meeting the requirements of 17.1.2, 17.1.6.2, 17.1.6.3, and 17.1.7.3 shall not be required to be listed.

7.1.1.5* Components that do not affect system performance shall not be required to be listed.

The NFPA 13 Handbook clarifies that “system performance” pertains only to a sprinkler system’s ability to discharge water as designed. Thus, signs, drains, and pressure gauges don’t need to be listed—but fire sprinklers and pipe hangers do. That said, NFPA and local governments also prescribe specific requirements for signs, drains, and pressure gauges; thus, any component used in a system must meet these enforced standards, and the local requirements (specified in fire codes) dominate.

Because this fire sprinkler points down, the spur-shaped deflector should be convex rather than concave. That’s a tell-tale sign that this is an upright fire sprinkler—which isn’t listed for this use. Source: Fire Protection Deficiencies

Before we get to NFPA 13’s listing requirements, it’s worthwhile to remember that listed products stay listed only when properly installed. In the example above, the fire sprinkler—which may otherwise be perfectly fine—isn’t listed for use in the pendent (hanging) orientation. The deflector, which distributes water as it flows from the pipes, won’t give the water the proper shape, putting areas nearby at risk.

Underground pipes and fittings (private fire service mains)

Underground pipes for fire service mains are a good example of an “either-or” scenario. These underground pipes must either meet one of several manufacturing standards listed in section 6.1.1.1 or they must be listed.

If it doesn’t meet the specific manufacturing standards in 6.1.1.1, a pipe otherwise listed specifically for use as part of a fire service main may be used instead, so long as it’s installed in accordance with its listings (6.1.1.2, 6.1.1.2.1). Likewise, the underground fittings listed in section 6.2 may comply with either specific manufacturing guidelines for cast iron, ductile iron, or malleable iron, or be specifically listed for this use. FM Global offers approvals (listings) for both underground fittings and pipes, including those made from iron, polyvinyl chloride (PVC), and polyethylene.

Aboveground pipes and fittings

All aboveground pipe and tube must meet or exceed certain standards for metallic piping or, in the case of CPVC, nonmetallic piping.

CPVC pipe, however, must also be listed for installation in sprinkler systems (7.3.2.1), as must other types of nonmetallic pipe (7.3.2.1.1).

Select types of steel, brass, and copper pipes do not require sprinkler-system-specific listings if they are made in accordance with the standards of table 7.3.1.1. However, all metallic pipes not meeting the standards presented in table 7.3.1.1 must be listed (7.3.3.1).

Aboveground metal pipes are listed either to UL 852 or, in the case of steel pipe, to FM 1630. Similarly, thermoplastic pipes, including CPVC, are listed to UL 1821 or to FM 1635.

Thermoplastic CPVC couplings are one of many fittings that require listings under NFPA 13.

Devices connected to these pipes also require listings under NFPA 13, including:

  • Nonmetallic pipe fittings (7.4.3)
  • Fittings connecting threaded steel pipes, when those pipes have wall thicknesses less than Schedule 30 or Schedule 40 (7.5.1.2)
  • Welded fittings not meeting standards provided in table 7.4.1 (7.5.2.3.1)
  • Joining methods not specifically described in NFPA 13 (7.5.5.1)

One notable exception to these listing requirements is the grooved coupling, which must only be “dimensionally compatible” with pipes, valves, or fittings (7.5.3.1). However, listings are required when those couplings don’t comply with the standard dimensions provided in ANSI/UL 213 (7.5.3.1.1).

Finally, grooved couplings must always be listed when used with dry pipe systems (7.5.3.2). The reason: due to reduced fire endurance and increased exposure to temperature extremes, grooved couplings serving dry pipe systems tend to degrade faster than their counterparts on wet-pipe systems.

Many other parts require listings, including fire sprinklers, accessories, and valves

Fire sprinklers

The standard for most fire sprinklers is UL 199, Automatic Sprinklers for Fire Protection Service. But sprinklers may be approved for more specific applications, including:

  • Control mode sprinklers, which produce large droplets at low pressures. These are often approved (listed) under FM 2000
  • Residential sprinklers (UL 1626, FM 2030), used in settings ranging from apartment complexes to family homes
  • Early-suppression fast-response (ESFR) heads, listed in accordance with UL 1767 and/or FM 2008

The following fire sprinkler accessories also require listings:

  • Nonmetallic hole-covering plates or escutcheons for fire sprinklers (2019 edition of NFPA 13: 7.2.6)
  • Escutcheons for recessed, flush, or concealed sprinklers (7.2.6.2)
  • Fire sprinkler cover plates (7.2.6.3)

It’s worth noting that metallic escutcheons don’t require listings for non-recessed pendent or horizontal sidewall sprinklers—but all other types do.

Valves

Valves that let contractors test the system or drain water during renovations don’t need to be listed (16.9.1.1). However, valves designed to control water supplies do (16.9.3.1.1 – 16.9.3.1.2). According to section 16.9.3.2, these valves—called listed indicating valves—always require third-party listings, with one exception: wrench-operated outdoor valves installed under a road box.

Other types of valves requiring listings include:

  • Alarm (check) valves
  • Dry pipe valves
  • Pressure reducing valves
  • Deluge valves
  • Preaction valves

So many listings, so little time

We’ve barely scratched the surface of the listings required by NFPA’s various standards—to say nothing of the range of certifications offered by third-party organizations. Organizations like FM Approvals and UL have had more than a century to define what makes some products more reliable, effective, and safer than others, and their influence can be felt throughout the fire protection industry.

When in doubt about what’s appropriate, contact your local authority having jurisdiction and a professional fire protection installer.

If you’re looking for listed and approved fire protection products, take a look at QRFS’s selection. We carry a variety of products tested to rigorous standards, including:

  • Residential fire sprinklers
  • Commercial fire sprinklers
  • Brand-name recessed escutcheons
  • Hose angle valves
  • CPVC pipe fittings

The Victaulic V3405 is just one of many UL-listed and FM-approved fire sprinklers in stock now.


Monday, May 1, 2023

Fire hazardous area classification in O&GC

Fire hazardous area classification in O&GC

A hazardous area classification chart is a graphical representation of the classification of hazardous areas according to the types of hazardous materials present and their potential for ignition. The chart typically includes a legend that describes the various types of hazardous materials and the criteria used to classify them.

The hazardous area classification chart is used to identify and evaluate the risks associated with the presence of flammable or explosive materials in a particular area. The chart provides a visual reference for the classification of the area and the associated safety measures that must be implemented.

The chart typically includes several zones, which are defined by the probability of the presence of flammable materials and the duration of their presence. The zones are used to determine the type of equipment and safety measures that must be used in each area. For example, Zone 0 is an area where flammable materials are present continuously or for long periods of time, while Zone 2 is an area where flammable materials are present only intermittently or in small quantities.

The hazardous area classification chart is an important tool in the design, construction, and maintenance of facilities where flammable or explosive materials are present. It helps to ensure that appropriate safety measures are implemented to protect personnel and equipment from potential hazards. 

The oil and gas industry involves the handling and processing of flammable and explosive materials, which can create hazardous areas. Some examples of hazardous areas in the oil and gas industry are:

·        Drilling platforms: Drilling platforms are offshore structures where oil and gas exploration and extraction take place. These platforms have several areas that are classified as hazardous, such as drilling areas, storage areas, and processing equipment.

·        Refineries: Refineries are facilities that process crude oil into various petroleum products. The processing equipment, storage tanks, and pipelines in refineries are all potentially hazardous areas.

·        Oil and gas pipelines: Pipelines are used to transport crude oil, natural gas, and petroleum products over long distances. The pipelines and their associated equipment, such as pumps, valves, and compressors, can be classified as hazardous areas.

·        Gas processing plants: Gas processing plants are facilities that separate natural gas into its component gases and remove impurities. The processing equipment, storage tanks, and pipelines in gas processing plants can all be classified as hazardous areas.

·        LNG facilities: LNG facilities are used to liquefy natural gas for transportation and storage. The liquefaction process, storage tanks, and associated equipment in LNG facilities are all potentially hazardous areas.

These are just a few examples of hazardous areas in the oil and gas industry. It’s important to identify and classify these areas properly to ensure the safety of personnel and equipment.

The three classes of hazardous locations are defined by the National Electric Code (NEC) in the United States. They are:

·        Class I: Locations where flammable gases or vapors are present in the air in sufficient quantities to produce explosive or ignitable mixtures. Class I locations are further divided into Division 1 and Division 2, depending on the likelihood and duration of the presence of these materials.

·        Class II: Locations where combustible dust is present in sufficient quantities to produce explosive or ignitable mixtures. Class II locations are also divided into Division 1 and Division 2.

·        Class III: Locations where easily ignitable fibers or materials producing combustible flyings are handled, stored, or processed. Class III locations are not divided into divisions.

The classification of a hazardous location is important for determining the appropriate electrical equipment and wiring methods that can be used in that location. This helps to reduce the risk of ignition and explosion caused by electrical equipment.

Hazardous area classification has several advantages in ensuring the safety of personnel and equipment in areas where flammable or explosive materials are present. Some of the advantages are:

·        Increased safety: Hazardous area classification helps to identify and evaluate the risks associated with the presence of flammable or explosive materials. By identifying the hazards, appropriate safety measures can be implemented to prevent accidents and protect personnel and equipment.

·        Compliance with regulations: Many countries have regulations and standards that require hazardous area classification in certain industries, such as oil and gas or chemical manufacturing. Compliance with these regulations can help to avoid fines and legal issues.

·        Cost-effective design: Hazardous area classification can help to optimize the design of facilities and equipment by identifying areas that require special protection measures. This can help to reduce costs associated with over-design or unnecessary safety measures.

·        Effective emergency response: Hazardous area classification helps to ensure that emergency response plans are appropriate for the risks present in the area. This can help to minimize the impact of accidents and improve the effectiveness of response efforts.

·        Improved communication: Hazardous area classification provides a common language for communication between designers, engineers, and safety professionals. This can help to ensure that all parties have a clear understanding of the hazards and appropriate safety measures.

Overall, hazardous area classification is a critical process in ensuring the safety of personnel and equipment in areas where flammable or explosive materials are present. By properly identifying and evaluating the risks, appropriate safety measures can be implemented to minimize the risk of accidents and protect personnel and equipment.

Following are the general steps for hazardous area classification:

·        All potential leak sources in the area under review are determined like vents, pump seals, flanges, sample points, instruments, etc.

·        For each potential leak source the grade of release is determined (that is no. of hours per annum that the leak of flammable material can be expected to occur.

·        The degree of ventilation in the area around the potential leak source is established (whether there is adequate ventilation or not).

·        Together it is the grade of release and the degree of ventilation near the potential leak source that determine the type of hazardous zone around the leak source.

·        The hazard radius around the potential leak source is determined from the category of fluid leaking. The hazard radius forms a horizontal circle around the potential leak and is valid at the elevation of the leak.

·        From the hazard radius and based on whether the release is lighter or heavier than air and the presence/absence of platforms – the extent of the three-dimensional hazardous zone around the potential leak source is determined.

·        In a similar way, the hazardous zones from all potential leak sources are determined and superimposed. This gives contours of hazardous areas for the concerned facility both in the horizontal and vertical planes.

Hazardous Area Zone Classification

The Zone system of hazardous area classification, defines the probability of the hazardous material, gas, or dust, being present in sufficient quantities that can generate explosive or ignitable mixtures. Refer to Fig.1 which shows the hazardous area zone classification based on hazardous gas release grade. There are three zones, Zone 0, Zone 1, and Zone 2..

The grade of release determines the designation of hazardous zones in the immediate vicinity of the release. In open-air situations with adequate ventilation, a secondary grade release will lead to Zone 2, a primary grade release will lead to Zone 1 and a continuous grade release will lead to Zone 0.

Fig. 1: Hazardous area zones

Zone classification will be influenced by ventilation also. IEC 60079-10 categorizes ventilation degrees as High, medium, and low. Poor ventilation may push the zone higher by one level. Poor ventilation may result in a more stringent zone while with high ventilation, the converse will be true. A secondary grade source of release may give rise to Zone 1 if local ventilation is restricted. (Example in a sump).

Adequate Ventilation is defined as ventilation sufficient to avoid a flammable atmosphere within a sheltered or enclosed area. This will normally be achieved by a uniform ventilation rate of 12 air changes per hour with no stagnant areas.

Depending on the presence of combustible dust or ignitable fibers and flyings, the hazardous area is classified into three zones: Zone 20, Zone 21, and Zone 22.

In both the above zone classification, the probability of explosion severity reduces when we move from zone 0 (or zone 20) to zone 2 (zone 22).

The extent of the Hazardous area zone          

Distance in any direction from the source of release to the point where the gas/air mixture has been diluted by air to a value below the lower explosive limit. Refer to Fig. 1 above that shows a typical example of a hazardous area zone extent.

·        Pressure breathing valve (Fig. 1) in the open air, from the process vessel.

·        A fixed process mixing vessel (Fig. 1); liquids are piped into and out of the vessel through all-welded pipework flanged at the vessel.

For a given release the extent of the zone will vary with the vaporizing potential of the fluid release, the ventilation rate, and the buoyancy of the vapor. The 3rd edition of IP 15 provides three methods for determining the extent of hazardous zones:

·        Direct Example Approach– limited to common facilities in open areas

·        Point Source Approach– release rates are dependent on process conditions

·        Risk-based Approach– an optional rigorous methodology that may reduce the hazardous area determined by the point source approach

Fluid Category of Petroleum Products

The hazard radius for each point of release is a function of fluid characteristics (vapor forming potential) under the circumstances of the release, the release rate, and the rate of vaporization. Hydrocarbon fluids are classified into four fluid categories based on their vaporizing potential.

Fluid Category

Description

A

A flammable liquid that on release would vaporize rapidly and substantially. This category includes:
(a)Any LPG or lighter flammable liquid;
(b)Any flammable liquid at a temperature sufficient to produce, on release, more than 40% vol. vaporization with no heat input other than from surrounding.

B

A flammable liquid, not in category A, but at a temperature sufficient for boiling to occur on release.

C

A flammable liquid, not in Category A and B, but which can on release be at a temperature above its flash point or form a flammable mist or spray.

D

Flammable gas or vapor (Natural Gas, Hydrogen, etc)

 Table: Fluid Category of Petroleum Products

With the fluid category leaking from the particular leak source established, now the extent of vapor travel (radii) around the leak source can be determined. 

Hazardous Area Classification Drawing

The hazardous area classification drawings are of sufficient scale to show all the main items of equipment and all the buildings in both plan and elevation. The boundaries of all hazardous areas and zones present shall be clearly marked using the clear shading convention for Zone 0, Zone 1, and Zone 2.

It has to be recognized that however, well-protected electrical equipment may be, there will always be a residual risk if it is placed in areas where explosive atmospheres may occur.

Electrical Equipment Selection in Hazardous Area Classification

Once the Hazardous Area classification of a facility is determined, it is used as a basis for selecting suitable electrical equipment. To reach the intended level of safety, equipment must then be installed correctly, operated within its design envelope, and maintained adequately.

As a general policy, electrical equipment should not be located in a hazardous area if it is possible to place it in a non-hazardous area, nor should be placed in Zone 1 if it can be placed in Zone 2. The installation and maintenance requirements for electrical equipment in Zone 1 locations are more stringent than for Zone 2 locations and Zone 0 are more stringent than Zone 1 locations.

ATEX directives for electrical apparatus for hazardous areas distinguish between two equipment groups as listed below:

·        Group I – For use in mines (Methane)

·        Group II – Other than mines

Sub-divisions in group II based on ignition energy requirement

·        IIA – Atmospheres containing acetone, ammonia, ethyl, alcohol, gasoline, methane, propane, or similar gases

·        IIB – Atmospheres containing ethylene, acetaldehyde, or similar gases

·        IIC – Atmospheres containing acetylene, hydrogen, or similar gases


Standards for Hazardous Area Classification

Codes and standards define minimum electrical design and installation requirements for electrical equipment to be used in hazardous areas. The following are some of the codes and standards that are commonly used for hazardous area classification

·        National Fire Protection Association (NFPA) 70, National Electric Code (NEC): This standard provides guidelines for electrical installations in hazardous locations, including classification of hazardous areas, selection, and installation of electrical equipment, and wiring methods.

·        American Petroleum Institute (API) RP 500 and RP 505: These standards provide guidance for the classification of hazardous locations in petroleum facilities, including refineries, petrochemical plants, and onshore and offshore production facilities.

·        International Electrotechnical Commission (IEC) 60079 series: This series of standards provide guidelines for the design, installation, and maintenance of electrical equipment in hazardous areas. The standards cover equipment protection methods, zone classification, and explosion prevention.

·        Occupational Safety and Health Administration (OSHA) 29 CFR 1910.307: This regulation provides requirements for electrical installations in hazardous locations, including classification of hazardous areas, equipment selection and installation, and wiring methods.

·        Canadian Standards Association (CSA) C22.1, Canadian Electrical Code: This standard provides requirements for electrical installations in hazardous locations in Canada, including classification of hazardous areas, selection, and installation of electrical equipment, and wiring methods.

·        IECEx Scheme: This is an international certification scheme for equipment used in explosive atmospheres. The scheme provides a framework for conformity assessment of equipment and systems, including testing, certification, and ongoing surveillance.

·        IP 15

·        DEP 80.00.10.10 

·        ATEX – EU Directives

The hazardous area classification and location of equipment must be ascertained before the choice of appropriately certified electrical equipment is made.

 

References and Further Reading

·        https://www.emerson.com/documents/automation/product-bulletin-hazardous-area-classifications-protections-en-123358.pdf

·        Mr. Anup Kumar Dey Guidance.