| MOQ: | 1 Sets |
| Price: | 10000 USD |
| Delivery Period: | 2 months |
| Payment Method: | L/C,T/T |
| Supply Capacity: | 200 sets / days |
An industrial oil-water separator (OWS) is a specialized mechanical treatment vessel engineered to isolate and extract suspended hydrocarbons, oils, and greasy sludges from industrial process water or stormwater runoff before discharge.
The primary purpose of an OWS is environmental compliance and resource recovery. By reducing the oil concentration in wastewater to regulatory limits (typically less than 15 parts per million), these systems prevent the contamination of municipal sewer lines and natural waterways while protecting downstream membrane filtration systems from organic fouling.
Mechanical oil-water separation relies fundamentally on the difference in specific gravity (density contrast) between water and non-polar hydrocarbons. Because oil is less dense than water, un-emulsified oil droplets naturally rise to the surface over time.
The terminal rising velocity (vp) of an isolated oil droplet through a continuous water phase is mathematically calculated using Stokes' Law:
Engineering Takeaway: According to the formula, droplet diameter (d^2) has the most significant impact on rising speed. If the oil droplet size is too small or if the oil is chemically emulsified, the rising velocity drops to near zero, requiring alternative treatment solutions.
Industrial wastewater streams require different processing mechanisms depending on whether the oil is present as large, free-floating globules or tiny, stabilized droplets.
Designed according to American Petroleum Institute guidelines, these large, horizontal wastewater basins rely purely on gravity. They are highly reliable for handling massive volumetric flow rates containing large free oil droplets greater than 150 microns. However, they require a substantial physical plant footprint and cannot separate smaller droplets.
To save space and capture smaller droplets down to 20 microns, engineers utilize coalescing plates. These systems direct wastewater through a series of closely spaced, corrugated plastic or stainless steel plates. As the water flows through the channels, small oil droplets hit the undersides of the plates, instantly clustering together into larger droplets that quickly float to the top.
Separator Classification |
Targeted Droplet Size |
Footprint Requirement |
Primary Application Field |
Maintenance Profiling |
API Gravity Basin |
150 microns |
Very Large |
Refinery primary treatment, heavy tank washwater |
Low (Manual or automated skimmers) |
Coalescing Plate (CPS) |
20 microns |
Compact |
Stormwater runoff, manufacturing wash bays, bilge water |
Moderate (Requires periodic plate cleaning) |
Dissolved Air Flotation (DAF) |
20 microns |
Moderate |
Food processing, chemical plants, emulsified oil loops |
High (Requires chemical dosing/flocculants) |
Because oil-water separators process highly variable fluids—often containing acidic rain runoff, chemical detergents, or abrasive grit—the selection of durable structural materials is paramount.
Stainless Steel 316L (SS316L): Specially engineered for aggressive process environments where high chemical corrosion resistance is mandatory. It prevents localized chloride pitting and organic acid degradation.
High-Density Polyethylene (HDPE): Excellent for underground stormwater retention structures. It offers total resistance to microbial induced corrosion, rust, and chemical degradation up to moderate operating temperatures.
Fluoropolymer Internal Coatings: In cases where high-temperature industrial effluents contain highly aggressive organic solvents or strong mineral acids, structural steel shells are internally protected with high-build coatings like PTFE or PVDF to provide a complete chemical barrier.
Are you sizing a separation loop for an industrial wash bay, or do you need to comply with specific local municipal discharge regulations?