In my years serving manufacturing and process plants, I’ve learned that the main pump filter can decide downtime or uptime. As a High-Quality Supplier, I source corrosion‑resistant housings, robust seals, and filtration media that consistently perform under demanding conditions. This filter delivers steady flow, strong contaminant removal, and straightforward maintenance, helping your pumps run longer between cleanings. It can be customized by connection size, micron rating, and installation orientation to fit your system, whether you’re using vertical or horizontal pumps. Installation is simple, with clear labeling and readily available spare parts. With my support, you’ll experience lower downtime, longer pump life, and a better total cost of ownership. If you’re replacing worn filters, I’ll help you select the right main pump filter for your application and ensure reliable delivery from stock. Partner with me for a dependable supply chain and practical filtration solutions that keep your operations moving.
Across global pumping applications, the main pump filter protects critical components, maintains steady flow, and extends service life. Staying Ahead of the Curve means delivering filtration with precise efficiency, durable media, and tight production controls. Rooted in a Deyang-based engineering heritage, this approach turns lab-tested specs into field-proven reliability that resists harsh fluids and temperature swings while cutting downtime and maintenance costs. Core features include controlled pore size, robust housings, and compatibility with common oils, fuels, and coolants. Pleated or depth-media options, modular designs, and surface treatments optimize clog resistance and serviceability. Strict traceability and QA processes ensure consistent performance batch to batch, while scalable production supports global projects with reliable lead times and availability. For global buyers, value means more than price: filtration efficiency, material compatibility, regulatory compliance, and responsive after-sales support. A partner with deep regional engineering experience can offer design flexibility, quick customization, and dependable logistics to keep projects on schedule. With unmatched quality and steady delivery, filtration becomes a durable competitive advantage.
| Parameter | Specification | Test Method / Standard | Test Result / Value |
|---|---|---|---|
| Filtration rating (nominal) | 10 μm (micron) | Gravimetric particle sizing, laboratory | 10 μm |
| Absolute filtration rating | Beta(c)10 ≥ 2000 (captures ≥99.95% of particles ≥10 μm) | ISO 16889 hydraulic filter test | β10 ≥ 2000 / 99.95% |
| Flow capacity (continuous) | Rated for continuous flow up to 100 L/min at nominal conditions | Flow bench, calibrated volumetric measurement | 100 L/min @ ΔP ≤ 0.8 bar |
| Initial pressure drop | Measured across clean element at rated flow | ISO 3968 equivalent bench test | 0.08 bar @ 100 L/min |
| Maximum operating pressure | Designed for continuous operation up to 16 bar (g) | Hydrostatic pressure test | 16 bar (g) |
| Burst pressure (housing) | Structural integrity verification | Pressure ramp test to failure | ≥ 60 bar |
| Operating temperature range | Suitable for -20 °C to +120 °C continuous service | Material specification and thermal cycling | -20 °C to +120 °C |
| Element media | Multi-layer glass fiber with hydrophobic PTFE outer layer for water handling | Material composition analysis | Glass fiber + PTFE |
| Housing material | Corrosion-resistant stainless steel construction (seam-welded) | Metallurgical inspection | Austenitic stainless steel |
| Particulate removal efficiency by size | Measured removal percentage at common particle sizes | Laser particle counter following ISO 11171 procedure | ≥99.99% @ 25 μm; ≥99.95% @ 10 μm; ≥85% @ 4 μm |
| Contaminant capture capacity | Mass of particulate retained before recommended element change | Laboratory endurance run with calibrated contamination feed | ≈ 120 g of soot/sediment (dependent on particle mix) |
| Typical service life (operational) | Under recommended operating conditions and cleanliness control | Field data projection and bench cycling | ~ 2000 operating hours (variable) |
| Maintenance interval | Suggested element inspection/change cadence | Condition monitoring / differential pressure | Inspect every 3–6 months; change at ΔP rise of 0.6–0.8 bar |
| Dimensions (external) | Compact inline design for pump-to-system mounting | Mechanical drawing verification | Ø 140 mm × 315 mm length |
| Weight (assembled) | Includes standard element and housing | Weighing on calibrated scale | ≈ 4.2 kg |
| Compatibility (fluid types) | Hydraulic oils, mineral oils, synthetic esters, and specified water-glycol blends | Material compatibility screening | Mineral & synthetic hydraulic fluids; limited water content |
| Operating cleanliness target | Recommended particle count target for system health | ISO 4406 cleanliness code guidance | ISO 4406: 16/14/11 or cleaner when possible |
| Quality & test standards referenced | Applicable test standards used during validation | Standards list | ISO 16889, ISO 11171, ISO 4406, hydraulic bench tests |
| Typical failure modes | Clogging, structural fatigue, bypass valve activation | Field failure-mode analysis | Clogging > ΔP limit; element collapse if misinstalled |
| Notes / Special considerations | Installation orientation, by-pass valve set point, and cleanliness at assembly are critical | Operational best practices | Ensure pre-fill filtration and follow differential-pressure indicators |