What Is ATEX? A Guide to Explosive Atmospheres and Ex Equipment Selection
All steps involved in the selection and certification of safe equipment for explosive atmospheres, from zone classification to ATEX categories, and from Ex marking to conformity assessment modules.
In many sectors – chemicals, paint, textiles, flour and grain, pharmaceuticals, petrochemicals and energy – explosive atmospheres can form from flammable gases, vapours, mists or dusts. Choosing the wrong Ex equipment for these environments – often referred to in the field as “exproof” – creates a serious risk to both personnel and plant safety. In this article we explain, step by step, what an explosive atmosphere is, how hazardous areas are classified, how equipment is selected and certified under ATEX (2014/34/EU), and the employer’s legal obligations.
An explosive atmosphere is one in which a flammable gas, vapour, mist or dust mixes with air and, once ignited, combustion spreads through the entire mixture. Areas are divided into Zone 0, 1, 2 for gas and Zone 20, 21, 22 for dust.
The equipment’s category and protection level (EPL) must match the zone; the product must carry Ex marking alongside the CE mark and must have passed conformity assessment under 2014/34/EU.
The workplace-side responsibility lies with the employer: to assess the risk, classify the hazardous areas and prepare the Explosion Protection Document.
01How Does an Explosive Atmosphere Form?
For an explosion to occur, three elements must come together at the same time; this relationship is explained by the “fire triangle”: a sufficient quantity of fuel (gas, vapour, mist or dust), oxygen (air) in the environment, and an ignition source. An explosion occurs when the fuel mixes with air within a certain concentration range (the lower/upper explosion limits – LEL/UEL) and meets an ignition source with enough energy.
Ignition sources are not only open flames. A spark in electrical equipment, hot surfaces, static electricity, mechanical friction sparks, electromagnetic waves and even an unsuitable flashlight can all cause ignition. For this reason, every piece of equipment used in explosive atmospheres must be designed to keep potential ignition sources under control.
The most common ignition scenarios in the field
The situations below are habits that seem harmless on their own but can end in an explosion in an environment where fuel is present.
Using an ordinary hand tool in a paint boothSolvent vapour builds up inside the booth; a spark from the drill’s commutator starts the ignition.
Cleaning a silo or elevator with compressed airSettled flour or sugar dust is thrown into the air; the dilute layer suddenly enters the explosive range.
A plastic can during fuel fillingThe static charge built up during flow discharges as a spark; with no earthing, the charge has nowhere to go.
A phone or flashlight in an Ex areaEven if it looks low-energy, the battery and circuit of an uncertified device can produce a spark sufficient for ignition.
Not sweeping surfaces in a dusty environmentThe dust layer on equipment acts as thermal insulation; the surface temperature rises above the ignition temperature.
Opening the enclosure while energisedA flameproof enclosure’s protection is only valid while it is closed; opening it energised removes the protection entirely.
02Classification of Hazardous Areas (Zones)
Work areas are classified as hazardous areas according to the likelihood and duration of an explosive atmosphere occurring. Zone 0-1-2 is used for gases, vapours and mists, and Zone 20-21-22 for combustible dusts. The more hazardous the area, the higher the level of protection required from the equipment used there.
| Zone | Medium | Frequency of the explosive atmosphere |
|---|---|---|
| Zone 0 | Gas / vapour / mist | Present continuously, for long periods or frequently |
| Zone 1 | Gas / vapour / mist | Likely to occur occasionally in normal operation |
| Zone 2 | Gas / vapour / mist | Not expected normally; if it occurs, only for a short time |
| Zone 20 | Combustible dust | Present continuously, for long periods or frequently |
| Zone 21 | Combustible dust | Likely to occur occasionally in normal operation |
| Zone 22 | Combustible dust | Not expected normally; if it occurs, only for a short time |
Area classification is carried out according to EN 60079-10-1 (gas) and EN 60079-10-2 (dust).
03Equipment Groups, Categories and EPL
2014/34/EU divides equipment into two groups: Group I is used for underground mines and facilities where firedamp is a hazard; Group II is used for all other surface industries. The letter G next to the category number indicates a gas environment and D a dust environment. The Equipment Protection Level (EPL) determines which zone the equipment may enter.
| Zone | ATEX Category | EPL | Protection Level |
|---|---|---|---|
| Zone 0 | II 1G |
Ga | Very high – safe even with two independent faults |
| Zone 1 | II 2G |
Gb | High – safe under expected faults |
| Zone 2 | II 3G |
Gc | Normal – safe in normal operation |
| Zone 20 | II 1D |
Da | Very high – top protection for dust environments |
| Zone 21 | II 2D |
Db | High – dust environment |
| Zone 22 | II 3D |
Dc | Normal – dust environment |
Equipment of a higher category can be used in a less hazardous area, but not the other way around. For example, equipment certified for Zone 0 (Cat. 1G) can also be used in Zone 1 and Zone 2, but Zone 2 equipment cannot enter Zone 0.
04How to Read Ex Marking
A product to be used in an explosive atmosphere carries a standard Ex marking showing the conditions it is suitable for. Let us break down an example marking piece by piece:
Module B alone is not sufficient to place a product on the market. Depending on the product category, one of the routes B+D, B+F, B+C1 or B+E is completed, or Module G unit verification is applied. Once the relevant process is completed and the EU Declaration of Conformity is issued, the CE mark is affixed. Next to the CE mark is the identification number of the notified body involved under module D, E, F, C1 or G. Under Module A, the CE mark is used without a notified body number.
05Types of Protection
The type of protection shows the principle by which the equipment prevents ignition. The lower-case letters (a/b/c) indicate the protection level: “a” is the highest and “c” the lowest.
| Code | Method | Principle | Typical zone |
|---|---|---|---|
Ex d/db |
Flameproof enclosure | Contains an internal explosion within the enclosure, preventing spread outside | Zone 1 |
Ex e/eb |
Increased safety | Reduces the risk of sparks/overheating by design | Zone 1 |
Ex ia/ib/ic |
Intrinsic safety | Limits circuit energy below the ignition threshold | ia:Z0 · ib:Z1 · ic:Z2 |
Ex p |
Pressurisation | Feeds clean gas into the enclosure | Zone 1 / 2 |
Ex m |
Encapsulation | Surrounds the spark source with cast resin | Zone 0/1/2 |
Ex n |
Non-sparking | Produces no ignition source in normal operation | Zone 2 |
Ex t |
Dust protection by enclosure | Limits dust ingress and surface temperature | Zone 20/21/22 |
06Gas/Dust Groups and Temperature Classes
The suitability of equipment is determined not only by the zone but also by the ignition properties of the substance present. The two key parameters are the gas/dust group and the temperature class.
Gas groups (Group II)
IIA propane, petrol · IIB ethylene · IIC hydrogen, acetylene (the most demanding; IIC also covers the lower subgroups).
Dust groups (Group III)
IIIA combustible flyings · IIIB non-conductive dust · IIIC conductive/metal dust (the most demanding).
The maximum surface temperature of the equipment must be lower than the ignition temperature of the substance present. For example, for a substance with an ignition temperature of 150 °C, at most class T4 (≤135 °C) can be selected.
Methane
Ethanol
Petrol, diesel
Diethyl ether
Rarely needed
Carbon disulfide
The colour indicates temperature, not danger: T6 is the class that stays coolest and therefore has the widest range of use.
For dusts, the temperature is stated directly as the maximum surface temperature (e.g. T135 °C) rather than as a class.
07ATEXvsIECExCoCKey Differences
These two systems, often confused in practice, complement each other but differ in legal nature. Both are largely based on the same IEC 60079 family of standards. ATEX is mandatory for placing products on the Turkish and EU market; an IECEx certificate provides additional ease of acceptance for export, but does not replace the ATEX obligation.
| ATEX (2014/34/EU) | IECEx | |
|---|---|---|
| Nature | Legal requirement (EU/Turkey) | Voluntary international scheme |
| Geography | EU and Turkish market | International (participating countries) |
| Marking | CE + Ex marking | IECEx certificate (CoC) |
08Scope of ATEX (2014/34/EU) and CE + Ex Marking
ATEX takes its name from the expression “ATmosphères EXplosibles”. In Turkey, the product rules are set out in the Regulation on Equipment and Protective Systems Intended for Use in Potentially Explosive Atmospheres (2014/34/EU). For a product to bear the CE mark, the ATEX obligations must also be fulfilled, and the appropriate Ex marking – and, where required, the notified body number – must appear alongside the CE mark. The manufacturer’s essential obligations are:
- Design and manufacture in accordance with the essential health and safety requirements (Annex II),
- Preparation and retention of the technical file,
- Application of the conformity assessment procedure appropriate to the product category,
- Drawing up the EU Declaration of Conformity and affixing the CE + Ex marking,
- Provision of instructions for use and traceability information.
09Conformity Assessment Modules
The procedure to be applied varies according to the equipment’s category and type (electrical/non-electrical). As the risk increases, so does the involvement of the notified body.
Note: Although manufacturer self-declaration is possible for Category 3 gas equipment, there are type-specific rules – such as depositing the technical file with a notified body for non-electrical Category 2 equipment. The module to be applied is determined by the product’s category and type.
10Components, Cable Glands and Installation
The Ex protection chain is not limited to the main equipment alone. The cable gland through which every cable enters the enclosure, along with blanking plugs and reducers, must also be Ex-certified and suitable for the same type of protection and group. A wrong gland can completely invalidate the protection of a flameproof (Ex d) enclosure.
In Ex d enclosures, compatibility of the gland type (barrier/compound), thread length and cable diameter is critical. Fitting an uncertified gland to a certified device makes the installation non-compliant and creates liability for the employer.
11Inspection and Maintenance (Continued Compliance)
Selecting the right equipment is not enough on its own; you must make sure that Ex installations maintain their protection throughout their service life. Under EN 60079-17, periodic inspections are defined at three levels – visual, close and detailed. An initial inspection is carried out at commissioning; periodic inspection then continues at intervals determined by the level of risk.
12The Employer’s Obligation: Explosion Protection Document
ATEX has not only a product side but also a workplace side. In Turkey, under the Regulation on the Protection of Workers from the Risks of Explosive Atmospheres (based on 1999/92/EC), the employer is obliged to assess explosion risks, classify hazardous areas (zones), select equipment of the appropriate category for those areas, and prepare and keep up to date the Explosion Protection Document (EPD).
The EPD is a legal document showing that explosion risks have been identified, hazardous areas classified and the necessary measures taken. It must be updated when the workplace changes or a new process is added. Correct equipment selection depends directly on the zone classification defined in the EPD.
13Selecting the Right Ex Equipment: Step by Step
14Common Mistakes
Safety in explosive atmospheres is achieved by combining correct zone classification, selection of equipment of the appropriate category with the correct marking, and a complete certification chain. A gap in any link of this chain means both legal non-compliance and a serious safety risk.
15Frequently Asked Questions
Is an ATEX certificate mandatory?
Equipment, protective systems and components placed on the market for explosive atmospheres must, if they fall within the scope of 2014/34/EU, pass conformity assessment and carry Ex marking together with the CE mark. In addition, it is a legal requirement for the employer to prepare an Explosion Protection Document for workplaces where an explosive atmosphere is possible.
What is the relationship between the Zone and the ATEX category?
Category 1G is used for Zone 0, 2G for Zone 1 and 3G for Zone 2. For dusts, Zone 20 → 1D, Zone 21 → 2D, Zone 22 → 3D apply. Equipment of a higher category can be used in a less hazardous area; the reverse is not valid.
Is the CE mark enough on its own?
No. For explosive-atmosphere products, the appropriate Ex marking and, where required, the notified body’s identification number must appear alongside the CE mark.
What is the difference between ATEX and IECEx?
ATEX is legally mandatory legislation in the EU and Turkey. IECEx, on the other hand, is a voluntary, international certification scheme; both are largely based on the same IEC 60079 standards.
What do Ex db, Ex e and Ex i mean?
They are methods of protection that prevent ignition. Ex d/db denotes a flameproof enclosure, Ex e increased safety, and Ex i an intrinsically safe circuit.
What is the temperature class (T1-T6)?
It indicates the maximum surface temperature the equipment can reach: T1 ≤450°C, T2 ≤300°C, T3 ≤200°C, T4 ≤135°C, T5 ≤100°C, T6 ≤85°C.
EST Teknik Belgelendirme Hizmetleri A.Ş.
As a TÜRKAK-accredited body (TS EN ISO/IEC 17065), we provide ATEX (2014/34/EU) conformity assessment and product certification services for equipment and protective systems used in explosive atmospheres.
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