Demisting units for droplet separation and mist elimination

Their effectiveness, however, depends strictly on how well they are integrated into the overall Air Pollution Control strategy, rather than on separation media alone.

What we mean by Demisting Units

Demisting units refer to air pollution control equipment designed to physically separate liquid droplets, mist and aerosols from gas streams.
They operate downstream of wet processes where liquid entrainment is unavoidable, such as scrubbers, spray towers or saturated gas treatment stages.
Their role is not chemical removal, but mechanical separation, ensuring that liquids remain within the process and do not propagate downstream.
When correctly designed, demisters provide predictable and stable performance across a defined range of operating conditions.

Operating principle

The operating principle of demisting units is based on inertial separation, interception and coalescence mechanisms that force droplets to deviate from the gas flow and be collected.
Separation efficiency depends on the interaction between gas velocity, droplet size distribution and internal geometry.
Key influencing parameters include:

  • Gas velocity and flow distribution
  • Droplet size and aerosol concentration
  • Gas temperature and saturation level
  • Drainage and liquid removal efficiency
Demisting units showing structured separation media for droplet and aerosol removal

Defined operating window

Demisting units operate efficiently only within a clearly defined operating window.
Key assumptions that must be respected include:

  • Known and stable gas flow rate
  • Controlled gas velocity profile
  • Droplet load compatible with separator geometry
  • Proper drainage and liquid removal
  • Proper drainage and liquid removal
Primary separation stage for entrained droplets downstream of wet scrubbers
Flux division between Acid and Alkali separated stages
Stabilisation unit within multi-stage APC treatment plants
Protection stage before fans, stacks or polishing units

Role within an Air Pollution Control strategy

Within an Air Pollution Control plant, demisting units may serve different roles depending on process layout and constraints.


They are often decisive in preventing secondary problems that are incorrectly attributed to scrubber chemistry or fan design.

Key design considerations

Neglecting any of these aspects often results in systems that perform well on paper but fail under real industrial conditions.

  • Gas velocity distribution
  • Risk of re-entrainment
  • Materials of construction and fouling behaviour
  • Access for inspection, cleaning and maintenance
  • Integration with condensate management systems
Mesh-type demisters
Vane-type droplet separators
High-efficiency aerosol separators
Custom hybrid configurations

Aether demisting unit configuration

Demisting units can be implemented using different internal architectures, selected based on process conditions rather than catalogue labels.

Each configuration involves specific trade-offs in terms of pressure drop, separation efficiency, fouling resistance and maintenance requirements.

Configuration selection should always be driven by real operating data, not by nominal flow rates alone.

When droplet separation is an appropriate solution

Demisting units are an appropriate solution when liquid entrainment or aerosol carryover represents a limiting factor for system reliability.

They are particularly effective when gas streams are saturated, chemically aggressive or subject to variability that cannot be eliminated upstream.

Demisting units are typically installed downstream of wet scrubbing equipment within Air Pollution Control treatment plants.

Process-driven demisting unit design

At Aether, demisting units are engineered starting from process data rather than from predefined separator layouts.
Gas composition, aerosol load, operating temperature and interaction with upstream and downstream equipment are evaluated before selecting the appropriate separation principle.
This approach ensures stable performance over time and avoids the hidden costs associated with improperly applied standard solutions.

Droplet separation performance depends on defined and stable process conditions.