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How Does a Flame Arrester Work? A Practical Engineering Breakdown

Why Flame Arresters Are Used

Flame arresters protect systems subject to explosion Explosion Abrupt oxidation or decomposition reaction producing an increase in temperature, pressure, or in both simultaneously. hazards. They sit at the opening of an enclosure or on the connecting pipe of a system of enclosures. Their job is simple, which is to allow flow but prevent the transmission of flame.

Potentially explosive gas / air mixtures can form around tanks and processing equipment Equipment Machines, appliances, fixed or mobile devices, control parts and accessories, and warning and prevention systems, whether separate or combined, intended for the generation, transfer, storage, measurement, control, and conversion of energy, and for the processing of materials, which have their own potential source of ignition and may cause an explosion. . They could ignite. Protective devices are required for safe handling in dangerous atmospheres across industrial applications.

In modern process plants, vapours need to be disposed of in an environmentally friendly manner. They are incinerated according to air pollution control regulations, and explosive mixtures are sent to an ignition source Source d‘inflammation Toute source contenant suffisamment d‘énergie pour déclencher une combustion. during operation. These are particular hazards that must be countered with special measures.

 

How PROTEGO® Flame Arresters Were Developed

Early flame protection used gravel pots on fuel tanks. The gravel stopped explosions Explosion Abrupt oxidation or decomposition reaction producing an increase in temperature, pressure, or in both simultaneously. from entering storage tanks or connected lines. However, it had two serious drawbacks: non-reproducible flame-arresting capability and high pressure Pressure (gauge pressure) Pressure for which the value is equal to the algebraic difference between the absolute pressure and the atmospheric pressure. losses.

In 1929, a new development replaced loose gravel with wound corrugated metal strips. Combined with a patented shock absorber Amortisseur de choc A shock absorber is a device that reduces the kinetic energy of a detonation. , this design stopped detonative combustion processes in the pipe with the lowest possible pressure loss. This became the PROTEGO® Detonation Detonation Explosion propagating at supersonic velocity and characterized by a shock wave. Flame Arrester Flame arrester Device fitted to the opening of an enclosure, or to the connecting pipe work of a system of enclosures, and whose intended function is to allow flow but prevent the transmission of a flame. , developed by Robert Leinemann. He went on to found Braunschweiger Flammenfilter GmbH in 1954.

How Does a Flame Arrester Work?

Working principle of Flame Arresters

PROTEGO® Flame Arresters operate on the principle of flame quenching Extinction Refroidissement d’un fluide par addition d’un autre fluide à température inférieure. in narrow gaps.
When a mixture ignites in a gap between two walls, the flame spreads towards the non-combusted mixture. The expansion in volume of the combusted mixture pre-compresses the non-combusted mixture and accelerates the flame. Heat is then dissipated in the boundary layer and transferred to the large surface of the gap length compared to the gap width. By cooling the product Product Includes equipment, protective systems, devices, components and combinations of these. below its ignition temperature Température d'allumage Lowest temperature (of a hot surface) at which ignition of a flammable gas or vapor in a mixture with air or air/inert gas occurs under specified test conditions. , the flame is extinguished.

Why Gap Width and Gap Length Matter

The gap width and gap length of the flame arrester element determine its extinguishing ability:

  • The narrower and longer the gap, the greater the extinguishing effectiveness
  • The wider and shorter the gap, the lower the pressure loss

PROTEGO® designs balance these two conditions. Special design features such as the patented Shock Wave Guide Tube Effect (SWGTE) and the shock absorber Shock absorber A shock absorber is a device that reduces the kinetic energy of a detonation. enable superior flow with minimum pressure loss.
 

How PROTEGO® Flame Arrester Units Are Constructed

The PROTEGO® Flame Arrester Unit PROTEGO® flame arrester unit The PROTEGO® flame arrester unit is the main component of a flame arrester. It prevents flame propagation. is a part of a Flame Arrester with the main task of preventing flame transmission. It is built from several FLAMEFILTER® components, together with spacers and a surrounding casing.

The FLAMEFILTER® is made of wound, corrugated metal strips and forms the flame arrester element. Gaps can be manufactured with consistently reproducible flame quenching Quenching Cooling of a fluid by mixing it with another fluid of a lower temperature. capability. The gap size can be adjusted according to the flashback Flashback Phenomenon occurring in a flammable mixture of air and gas when the local velocity of the combustible mixture becomes less than the flame velocity, causing the flame to travel back to the point of mixture. capability of the explosive mixture.

Combustion Processes - Flame Arresters Control

Deflagration Deflagration Explosion propagating at subsonic velocity. is an explosion Explosion Abrupt oxidation or decomposition reaction producing an increase in temperature, pressure, or in both simultaneously. that propagates at subsonic velocity. Three types exist:

 

Stabilised burning is the even, steady burning of a flame stabilised at or close to the flame arrester element. Short-time burning lasts for a specific period. Endurance burning Endurance burning Stabilized burning for an unlimited time. continues for an unlimited period.



 

Types of PROTEGO® Flame Arresters

Flame Arresters are categorised by combustion process and installation type:
 

Installation Location

Selection Considerations

Explosion Groups and MESG

Different gases have different flame propagation capacities. They are categorised into explosion Explosion Abrupt oxidation or decomposition reaction producing an increase in temperature, pressure, or in both simultaneously. groups according to their hazard level. The standard for this is the MESG, or Maximum Experimental Safe Gap. It is a characteristic number measured in the laboratory for the flame propagation ability of the product. Explosion Explosion Abrupt oxidation or decomposition reaction producing an increase in temperature, pressure, or in both simultaneously. groups use reference substances including methane, propane, ethene, and hydrogen.

Operating Pressure and Temperature

Flame arresters tested under standard conditions are approved for use at temperatures up to 60°C (140°F) and a pressure of 1.1 bar (15.9 psi). Higher operating temperatures or pressures require special examination.

L/D Ratio for In-Line Deflagration Flame Arresters

For in-line deflagration flame arresters Arrête-flammes antidéflagration Flame arrester designed to prevent the transmission of a deflagration. It can be an end-of-line flame arrester or an in-line flame arrester. , the allowable L/D must not be exceeded. L is the distance between the ignition source and the installation location. D is the pipe diameter. The flame arrester must not be installed too far from the ignition source. If it is, it may be subject to detonation due to a long starting distance. The allowable L/D is stated in the manufacturer's manual.

FAQs on Flame Arresters

It allows flow but prevents the transmission of flame. It is installed at the opening of an enclosure or on a connecting pipe.

Deflagration propagates at subsonic velocity. Detonation propagates at supersonic velocity and is characterised by a shock wave.

The Maximum Experimental Safe Gap. It is used to categorise gases into explosion Explosion Abrupt oxidation or decomposition reaction producing an increase in temperature, pressure, or in both simultaneously. groups by flame propagation capability.