Graded-density wire mesh demisters use different mesh structures through the pad thickness so that open upstream layers handle heavy liquid loading while denser downstream layers provide finer polishing. The design can improve hydraulic balance compared with one uniform mesh grade.
P
Pingxiang Daier Separation TechSep 20, 20266 min read
Why Graded-Density Wire Mesh Demisters Can Perform Better Than a Uniform Mesh Pad
P
Sep 20, 20265 min read
Why the K-Factor Is Not a Universal Mist Eliminator Velocity Limit
The K-factor in mist eliminator velocity calculations is separator- and service-dependent, not universal. Mesh or vane geometry, liquid loading, drainage, fouling, orientation, and operating margin all affect the practical allowable velocity.
P
Sep 20, 20265 min read
Why Nm³/h and Actual m³/h Are Not Interchangeable in Mist Eliminator Sizing
Nm³/h, Sm³/h, and actual m³/h can represent very different volumetric flows. Mist eliminator velocity should be calculated from actual gas flow at operating temperature and pressure, with the flow basis clearly defined.
P
Sep 20, 202610 min read
Why Air-Water Mist Eliminator Test Data Cannot Be Applied Directly to Every Process
A mist eliminator specification should define outlet carryover, inlet liquid loading, droplet-size basis, operating cases, and allowable pressure drop rather than relying only on a generic percentage efficiency. This creates a measurable and comparable performance requirement.
P
Sep 20, 20266 min read
How Packed-Bed Flooding Changes the Load on a Mist Eliminator
Packed-bed flooding can greatly increase and destabilize the liquid load reaching a mist eliminator. High downstream carryover may therefore originate from excessive gas/liquid loading, packing fouling, or maldistribution below the demister rather than from the separator itself.