FOAM CONCENTRATE
FOAM CONCENTRATE
Learn what Foam Concentrate is, how it works, its different types, applications, mixing ratios, storage requirements, maintenance, and NFPA 11 standards for foam fire suppression systems.
What Is Foam Concentrate?
- Foam Concentrate is a specially formulated firefighting agent that is mixed with water in a predetermined ratio to produce firefighting foam. The resulting foam suppresses flammable liquid fires by forming a stable blanket over the fuel surface, preventing oxygen from reaching the fire, suppressing flammable vapors, cooling the fuel, and helping prevent re-ignition. Foam concentrates are an essential component of modern foam fire suppression systems used in industries such as oil & gas, petrochemical plants, aviation, marine terminals, and chemical processing facilities.
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Quick Facts
| Item | Description |
|---|---|
| Equipment Name | Foam Concentrate |
| Equipment Type | Fire Suppression Agent |
| Primary Function | Produces Firefighting Foam When Mixed With Water |
| Typical Mixing Ratios | 1%, 3%, 6% |
| Fire Classes | Class A & Class B |
| Common Types | AFFF, AR-AFFF, Fluoroprotein, Protein, Synthetic |
| Storage Method | Atmospheric Tanks, Bladder Tanks, Foam Tanks |
| Applicable Standards | NFPA 11, UL 162, FM Approval, ISO 7203 |
| Typical Applications | Tank Farms, Refineries, Petrochemical Plants, Aircraft Hangars, Marine Facilities |
For price inquiries or to receive specialized consultation from imacofire, please contact us at +98-2188220617.
Overview
transport flammable and combustible liquids. Conventional water-based fire suppression systems are highly effective for many Class A fires involving ordinary combustible materials such as wood, paper, and textiles. However, water alone is generally ineffective against Class B fires involving hydrocarbon fuels, solvents, alcohols, and other flammable liquids. In many cases, applying water directly to burning fuel can spread the fire rather than extinguish it.
To overcome this challenge, the fire protection industry developed Foam Concentrates—specialized chemical formulations that, when mixed with water and aerated through a discharge device, produce a stable blanket of firefighting foam. This foam separates the fuel from oxygen, suppresses flammable vapors, cools the fuel surface, and significantly reduces the risk of reignition.
Foam Concentrates are not used directly on a fire. Instead, they are stored in dedicated tanks such as Bladder Tanks, atmospheric storage tanks, or foam pump systems and are proportioned into the fire water supply using specialized foam proportioning equipment. The resulting foam solution is then discharged through devices such as Foam Monitors, Foam Chambers, Foam Makers, Foam Pourers, and Foam-Water Sprinklers, where it expands into finished firefighting foam.
Modern Foam Concentrates are available in a variety of formulations, each developed for specific fuel types, environmental conditions, and firefighting objectives. Selecting the correct foam concentrate is one of the most critical engineering decisions in the design of an effective foam fire suppression system.
Why Foam Concentrates Are Needed
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Flammable liquid fires behave very differently from ordinary combustible fires. Because fuels such as gasoline, diesel, crude oil, jet fuel, ethanol, and solvents float on water or react differently to water application, conventional firefighting methods may fail to extinguish the fire effectively.
Foam Concentrates solve this problem by producing a foam blanket that covers the fuel surface and interrupts the fire triangle.
The primary reasons for using Foam Concentrates include:
- Rapid suppression of Class B flammable liquid fires.
- Vapor suppression to reduce the release of flammable gases.
- Prevention of fire re-ignition after extinguishment.
- Cooling of burning fuel and surrounding equipment.
- Reduction of radiant heat exposure.
- Improved firefighter safety.
- Protection of valuable industrial assets.
- Compliance with international fire protection standards.
- Effective firefighting using significantly less water than water-only systems.
- Enhanced fire control in large storage tank fires and fuel spill incidents.
Foam Concentrates are widely used in industries where the consequences of a flammable liquid fire can be catastrophic, including oil refineries, petrochemical complexes, aviation fuel storage, marine terminals, chemical plants, power stations, and bulk fuel depots.
Working Principle
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Foam Concentrate does not extinguish a fire in its original form. Instead, it is a specially formulated liquid that must be proportioned with water and discharged through suitable firefighting equipment to produce finished firefighting foam.
The entire firefighting process can be divided into the following stages.
Step 1 – Foam Concentrate Storage
Foam Concentrate is stored in dedicated containers or tanks until it is required during a fire emergency.
Depending on the fire protection system design, the concentrate may be stored in:
- Bladder Tanks
- Atmospheric Storage Tanks
- Foam Pump Skids
- Portable Foam Containers
- Intermediate Bulk Containers (IBCs)
- Drums or Pails
The storage system must protect the concentrate from contamination, excessive temperatures, and prolonged exposure to sunlight.
Step 2 – Foam Proportioning
When the fire protection system is activated, the foam concentrate is introduced into the fire water supply through a foam proportioning device.
Common proportioning methods include:
- Bladder Tank Proportioners
- Balanced Pressure Proportioners
- Inline Foam Inductors
- Around-the-Pump Proportioners
- Foam Pump Systems
The proportioner accurately injects the required amount of foam concentrate into the water stream.
Typical mixing ratios include:
- 1%
- 3%
- 6%
Accurate proportioning is essential because insufficient concentrate may result in poor extinguishing performance, while excessive concentrate increases operating costs without improving fire suppression effectiveness.
Step 3 – Formation of Foam Solution
After proportioning, the water and foam concentrate combine to create a homogeneous mixture known as Foam Solution.
At this stage, the solution does not yet possess the characteristics of finished firefighting foam.
Instead, it serves as the intermediate fluid that will later be transformed into foam through air aspiration.
Maintaining the correct concentration throughout the system is critical to ensure consistent firefighting performance.
Step 4 – Air Aspiration
The foam solution then passes through a discharge device designed to entrain atmospheric air into the liquid stream.
Typical discharge devices include:
- Foam Chambers
- Foam Makers
- Foam Monitors
- Foam Nozzles
- Foam Pourers
- Foam-Water Sprinklers
As air mixes with the foam solution, millions of stable bubbles are generated, creating finished firefighting foam.
The foam expansion ratio depends on both the foam concentrate formulation and the discharge device used.
Step 5 – Foam Application
The finished foam is applied directly onto the burning fuel surface or protected hazard.
Rather than mixing with the fuel, the foam spreads gently across the liquid surface, forming a continuous blanket.
This blanket performs several critical firefighting functions simultaneously.
It:- Separates oxygen from the fuel.
- Suppresses the release of flammable vapors.
- Cools the fuel surface.
- Reduces radiant heat.
- Prevents reignition after extinguishment.
The effectiveness of the foam blanket depends on proper application techniques and maintaining adequate foam coverage until the fuel has cooled sufficiently.
Step 6 – Fire Extinguishment
Once a continuous foam blanket has been established, the fire gradually loses access to oxygen while vapor production is significantly reduced.
Without sufficient oxygen and flammable vapor, combustion ceases.
Unlike water alone, which may spread certain fuel fires, properly applied firefighting foam provides both extinguishment and long-term protection against re-ignition.
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Chemical Composition
Foam Concentrates are carefully engineered chemical formulations consisting of several ingredients, each serving a specific purpose in foam generation, stability, and fire suppression performance.
Although the exact formulation varies among manufacturers and foam types, most modern Foam Concentrates contain the following components.
1. Water
Water acts as the primary carrier for the chemical ingredients during manufacturing.
It provides the liquid medium necessary for maintaining solution stability and facilitating proportioning within the fire protection system.
2. Surfactants
Surfactants are the most important active ingredients in Foam Concentrates.
They reduce the surface tension of water, allowing it to spread rapidly over burning fuel surfaces and generate stable foam bubbles.
Surfactants are responsible for:
- Rapid foam generation
- Improved fuel coverage
- Vapor suppression
- Enhanced wetting characteristics
- Increased extinguishing efficiency
3. Foam Stabilizers
Foam stabilizers strengthen the foam blanket and increase its resistance to heat and mechanical breakdown.
These additives improve:
- Foam drainage time
- Bubble stability
- Burn-back resistance
- Foam blanket durability
4. Solvents
Solvents help dissolve and evenly distribute the chemical ingredients within the concentrate.
They also improve low-temperature performance and maintain consistent viscosity during storage.
5. Corrosion Inhibitors
Because Foam Concentrates remain in storage for extended periods, corrosion inhibitors are added to protect:
- Storage tanks
- Piping
- Pumps
- Valves
- Foam proportioning equipment
These additives help extend the service life of the fire protection system.
6. Preservatives
Preservatives prevent biological growth, bacterial contamination, and chemical degradation during long-term storage.
Proper preservation helps maintain foam performance throughout the product's service life.
7. Performance Additives
Depending on the foam type, manufacturers may include specialized additives to enhance:
- Fuel resistance
- Alcohol compatibility
- Freeze protection
- Environmental performance
- Foam expansion
- Burn-back resistance
- Drainage characteristics
These additives are one of the primary differences between various types of Foam Concentrates.
Engineering Insight
Many people assume that all Foam Concentrates are interchangeable, but this is not the case.
A foam concentrate designed for hydrocarbon fuels (such as gasoline or diesel) may perform poorly—or even fail—when used on polar solvent fuels like ethanol or methanol. Polar solvents can rapidly destroy conventional foam blankets by absorbing water from the foam.
For this reason, selecting the correct foam concentrate based on the fuel type, hazard classification, and applicable standards is one of the most important engineering decisions in any foam fire suppression system.
Types of Foam Concentrates
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Different fire hazards require different types of Foam Concentrates. Each formulation is specifically engineered to perform under particular fire conditions, fuel characteristics, and operational requirements.
Selecting the correct foam concentrate is critical for achieving effective fire suppression while complying with international fire protection standards.
The following are the most widely used types of Foam Concentrates in industrial fire protection systems.
1. AFFF (Aqueous Film Forming Foam)
AFFF is one of the most widely used synthetic foam concentrates for protecting hydrocarbon fuel fires.
It contains fluorinated surfactants that enable the foam solution to spread rapidly across the fuel surface, forming a thin aqueous film that suppresses flammable vapors and accelerates fire extinguishment.
Typical Applications
- Gasoline Storage
- Diesel Fuel
- Jet Fuel
- Crude Oil
- Tank Farms
- Airports
- Refineries
- Marine Terminals
Advantages
- Rapid fire knockdown
- Excellent fluidity
- Fast vapor suppression
- Easy application
- Effective cooling
- Compatible with most foam discharge devices
Limitations
- Not suitable for polar solvents unless specifically formulated.
- Increasing environmental restrictions in many countries due to fluorinated compounds.
2. AR-AFFF (Alcohol-Resistant AFFF)
AR-AFFF is specially formulated for both hydrocarbon fuels and polar solvent fires.
Unlike conventional AFFF, AR-AFFF forms a protective polymer membrane when it contacts alcohol-based fuels, preventing the foam blanket from breaking down.
Suitable Fuels
- Ethanol
- Methanol
- Isopropanol
- Acetone
- MTBE
- Hydrocarbon Fuels
Advantages
- Protects both hydrocarbon and polar solvent fires
- Excellent burn-back resistance
- Strong foam blanket
- Versatile application
Typical Industries
- Chemical Plants
- Biofuel Facilities
- Pharmaceutical Plants
- Ethanol Storage
- Aviation Fuel Facilities
3. Protein Foam
Protein Foam is produced from hydrolyzed natural proteins.
It creates a dense and durable foam blanket with excellent heat resistance.
Although slower than AFFF during initial fire attack, Protein Foam provides outstanding long-term protection.
Advantages
- Excellent heat resistance
- Strong foam blanket
- High burn-back resistance
- Long drainage time
Limitations
- Slower extinguishment
- Higher viscosity
- Limited fluidity
Typical Applications
- Large Crude Oil Tanks
- Petrochemical Facilities
- Tank Farms
4. Fluoroprotein Foam
Fluoroprotein Foam combines the durability of Protein Foam with the rapid spreading characteristics of fluorinated surfactants.
It provides improved extinguishing performance while maintaining excellent resistance to fuel contamination.
Advantages
- Better fluidity than Protein Foam
- Excellent fuel tolerance
- High heat resistance
- Long-lasting foam blanket
Applications
- Aviation Fuel
- Marine Terminals
- Refineries
- Offshore Platforms
5. Film Forming Fluoroprotein Foam (FFFP)
FFFP combines fluoroprotein technology with film-forming capabilities.
This formulation provides rapid fire knockdown while maintaining a durable foam blanket.
Advantages
- Fast extinguishment
- Excellent burn-back resistance
- Improved foam stability
- Long application time
Typical Applications
- Aircraft Hangars
- Fuel Depots
- Tank Farms
- Petrochemical Plants
6. Synthetic Foam
Synthetic Foams are manufactured using synthetic surfactants rather than natural proteins.
They are commonly used where rapid foam generation and high expansion are required.
Advantages
- Lightweight foam
- Rapid expansion
- Good wetting ability
- Suitable for high-expansion systems
Applications
- Warehouses
- Tunnels
- Underground Facilities
- Building Protection
7. Class A Foam
Class A Foam is designed specifically for ordinary combustible materials.
It improves water penetration into porous materials and significantly reduces water consumption.
Suitable Fires
- Wood
- Paper
- Cotton
- Rubber
- Vegetation
- Forest Fires
Applications
- Municipal Fire Departments
- Wildland Firefighting
- Warehouses
- Commercial Buildings
8. Class B Foam
Class B Foam is designed for flammable and combustible liquid fires.
It is commonly used with:
- Gasoline
- Diesel
- Crude Oil
- Aviation Fuel
- Solvents
- Chemicals
Most industrial foam systems installed in refineries and petrochemical plants use Class B Foam Concentrates.
Comparison of Foam Concentrate Types
Foam Type Hydrocarbon Fuels Polar Solvents Film Forming Burn-back Resistance Typical Application AFFF ★★★★★ ✘ ✔ ★★★☆☆ Refineries, Airports AR-AFFF ★★★★★ ★★★★★ ✔ ★★★★★ Chemical Plants, Biofuel Protein Foam ★★★★☆ ✘ ✘ ★★★★★ Crude Oil Storage Fluoroprotein ★★★★★ Limited Partial ★★★★★ Marine & Petrochemical FFFP ★★★★★ Limited ✔ ★★★★★ Aviation Facilities Synthetic Foam ★★★☆☆ Depends ✘ ★★★☆☆ High Expansion Systems Class A Foam ✘ ✘ ✘ N/A Ordinary Combustibles Class B Foam ★★★★★ Depends on Formulation Depends ★★★★★ Flammable Liquid Fires
Selection Guide
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Hazard Recommended Foam Type Gasoline Storage AFFF Diesel Storage AFFF Crude Oil Tanks Protein or Fluoroprotein Ethanol Tanks AR-AFFF Methanol Storage AR-AFFF Chemical Plants AR-AFFF Aircraft Hangars AFFF or FFFP Marine Terminals Fluoroprotein Offshore Platforms Fluoroprotein Forest Fires Class A Foam
💡 Engineering Insight
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Selecting a foam concentrate based only on price can lead to serious consequences. The foam must be compatible with the fuel, the proportioning equipment, the discharge devices, and the applicable standards. An incorrect foam type may fail to suppress vapors effectively, resulting in delayed extinguishment or even re-ignition.
For critical industrial facilities, foam selection should always be based on a comprehensive engineering assessment rather than cost alone.


