High operating pressure increases gas density and changes mist eliminator pressure drop, droplet behavior, and re-entrainment limits. A velocity acceptable at atmospheric conditions should not be applied directly to pressurized service without recalculating the hydraulic basis.
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Pingxiang Daier Separation TechSep 20, 20266 min read
How High Operating Pressure Changes Mist Eliminator Hydraulic Behavior
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Sep 20, 20265 min read
How to Read and Compare a Mist Eliminator Datasheet Without Being Misled
Mist eliminator datasheets should be compared by process basis, gas-flow condition, performance definition, wet or dry pressure drop, active thickness, mesh or vane geometry, material, supports, and segmentation. Similar-looking specifications may represent different technical scopes.
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Sep 20, 20265 min read
Why Intermittent Liquid Slugs Are Different From Normal Mist Loading
Intermittent liquid slugs can saturate a mist eliminator far faster than ordinary continuous mist loading, causing sudden pressure-drop spikes, flooding, re-entrainment, and possible mechanical movement. Average liquid loading alone does not describe slugging duty.
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Sep 20, 20265 min read
Why Upflow and Downflow Mist Eliminators Need Different Drainage Logic
Upflow, downflow, and horizontal mist eliminators experience different relationships between gas force and gravity. Flow direction affects drainage, re-entrainment, support requirements, and vane orientation, so separator geometry must match the actual installation.
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Sep 20, 20265 min read
How to Select a Mist Eliminator When Droplet Size Is Unknown
When droplet size is unknown, mist eliminator selection can begin from the droplet-generation mechanism, liquid loading, fouling condition, gas flow, downstream sensitivity, and existing operating history. Unknown data should remain identified as uncertainty rather than replaced by an arbitrary assumed micron value.