- 480 - 28,380 SCFM
- Maximum Operating Pressure: 900 PSIG
- Ideal for food and pharmaceutical applications
- 5 Grades of Filtration ( 3 micron - .01 micron, .008) available

High Pressure Filters
Water droplets are formed by the condensed water vapor present in the ambient air. Solid particles come from ambient air contaminants like dust and from rusted, oxidized pipework. Liquid oil and oil vapors are introduced by compressor coolants and hydrocarbon vapors present in ambient air. Because FHP Series Filters offer 5 Grades of high pressure filtration, you can count on the quality removal of water droplets, solid particles, oil and oil vapors within your compressed air system. The high pressure filtration in the FHP Series will meet the needs of both the application and the environment in which you are in.
Benefits
- Ideal for high pressure applications
- Great compliment to the RHP Series High Pressure Refrigerated Dryer
- 5 Grades of filtration for superior removal of contaminants
Specifications
Inlet Pressure | 80°F (27°C) | 90°F (32°C) | 100°F (38°C) | 110°F (43°C) | 120°F (49°C) |
|---|---|---|---|---|---|
300 psig to MWP | 1.49 | 1.19 | 1.00 | 0.83 | 0.72 |
Ambient Temperature | Capacity Adjustment Factor |
|---|---|
80°F (27°C) | 1.12 |
90°F (32°C) | 1.06 |
100°F (38°C) | 1.00 |
110°F (43°C) | 0.94 |
Water-cooled (85°F, 27°C Cooling Water) | 1.15 |
Dew Point | ISO 8573.1 Class | Factor |
|---|---|---|
38°F (3°C) | 4 | 1.0 |
45°F (7°C) | 5 | 1.2 |
50°F (10°C) | 6 | 1.3 |
Correction Factor for Electrical Frequency | |
|---|---|
60 Hz | 1.00 |
50 Hz | 0.83 |
Model Number | Max | Max Flow @ MOP SCFM (M³/H) | Flow @ 100 PSIG SCFM (M³/H) | In/Out Conn. | Dimensions in (mm) | Weight | FHP Series Replacement Elements | ||||
|---|---|---|---|---|---|---|---|---|---|---|---|
|
|
|
|
| A* | B | C |
| Grade B | Grades | Qty |
FHP12 | 900 | 480 | 60 | 1" | 4.00 | 16.00 | 7 | 6 | FHP12BE | FHP12 | 1 |
FHP14 | 900 | 800 | 100 | 1" | 4.00 | 16.00 | 7 | 6 | FHP14BE | FHP14 | 1 |
FHP16 | 900 | 2000 | 250 | 1" | 5.13 | 32.44 | 7 | 21 | FHP16BE | FHP16 | 1 |
FHP18 | 500 | 2805 | 625 | 3" | 10.25 | 40.63 | 24 | 37 | FHP18BE | FHP18 | 1 |
FHP20 | 700 | 4000 | 625 | 3" | 10.25 | 39.69 | 24 | 128 | FHP20BE | FHP20 | 1 |
FHP22 | 450 | 4050 | 1000 | 3" | 16.00 | 46.88 | 24 | 270 (122.0) | FHP22BE | FHP22 | 2 |
FHP24 | 450 | 5060 | 1250 | 3" | 16.00 | 46.88 | 24 | 270 (122.0) | FHP24BE | FHP24 | 2 |
FHP26 | 450 | 7595 (12790) | 1875 | 3" | 16.25 | 54.13 | 24 | 294 (133.0) | FHP26BE | FHP26 | 3 |
FHP28 | 440 | 9900 (16870) | 2500 | 4" | 20.00 | 55.50 | 24 | 403 (183.0) | FHP28BE | FHP28 | 4 |
FHP30 | 440 | 12375 (21075) | 3125 | 4" | 20.00 | 55.50 | 24 | 405 (184.0) | FHP30BE | FHP30 | 5 |
FHP32 | 360 | 16350 (27770) | 5000 | 6" | 24.00 | 55.88 | 24 | 524 (238.0) | FHP32BE | FHP32 | 8 |
FHP34 | 330 | 20695 (35110) | 6875 (11670) | 6" | 28.00 | 63.88 | 24 | 693 (314.0) | FHP34BE | FHP34 | 11 |
FHP36 | 330 (23) | 26340 (44680) | 8750 (14850) | 6" | 28.00 | 63.88 | 24 | 700 (318.0) | FHP36BE | FHP36 | 14 |
FHP38 | 260 | 28380 (48370) | 11875 (20175) | 8" | 33.00 | 66.25 | 24 | 980 (445.0) | FHP38BE | FHP38 | 19 |
NOTE: Dimensions and weights are for reference only. Request certified drawings for construction purposes.
Minimum Inlet Pressure (PSIG) | 100 | 150 | 200 | 250 | 300 | 350 | 400 | 450 | 500 | 550 | 600 | 700 | 800 | 900 |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
Minimum Inlet Pressure (Bar) | 6.9 | 10.3 | 13.8 | 17.2 | 20.7 | 24.1 | 27.6 | 31.0 | 34.5 | 37.9 | 41.1 | 48.3 | 55.2 | 62.1 |
Correction Factor | 1.00 | 1.44 | 1.87 | 2.31 | 2.74 | 3.18 | 3.62 | 4.05 | 4.49 | 4.92 | 5.36 | 6.23 | 7.10 | 7.97 |
* Models FHP28 and larger delivered with flange Example: To size a filter for 1000 scfm at a pressure of 500 psi: 1. Choose approximate filter size, FHP16 (grade B,C,E,F,G). 2. Multiply the rated flow at 100 psi by the correction factor (250 scfm x 4.49 = 1,122 scfm) 3. Compare maximum calculated flow (1,122 scfm) to the required flow (1,000 scfm) 4. If the calculated flow is greater than the required flow, the filter can be used. If the calculated flow is less than the required flow, repeat the sizing process with a larger filter.




