| 1. Match the medium to the particles and required efficiency. | Polypropylene (PP) | About 90–100°C, depending on grade and construction | Low-density fibers can form lightweight media. Naturally hydrophobic fibers suit many aqueous and oily filtration tasks. | Limited heat resistance; compatibility can be poor with strong oxidizing agents and some solvents. Efficiency depends on web structure and treatment. | Liquid cartridges, prefilters, dust collection, and general-purpose filtration. |
| 2. Check temperature and dimensional stability. | Polyester (PET) | About 130–150°C, depending on grade and construction | Good strength and abrasion resistance; widely available in spunbond and needle-punched nonwoven structures. | Prolonged exposure to hot moisture or strong alkaline conditions can cause degradation. Actual limits depend on finish and support layers. | Industrial dust collection, liquid filtration, and general-purpose filter bags. |
| 3. Consider wet strength and chemical compatibility. | Polyamide (Nylon) | Often about 100–120°C, depending on nylon grade | Good toughness, abrasion resistance, and flexibility; can be useful where repeated handling or particle abrasion is expected. | Absorbs more moisture than PP or PET, which can affect dimensions and performance. Check compatibility with acids and the specific process fluid. | Liquid filter media, screens, and applications requiring durable, flexible media. |
| 4. Evaluate fine-particle capture and the complete media construction. | Glass microfiber | Fiber can tolerate high heat; the finished medium is limited by its binder and support layers | Fine fibers can provide high particle-capture capability and high dust-holding capacity in appropriately designed media. | Can be brittle and sensitive to flexing or abrasion. Binder, moisture exposure, and handling affect performance and temperature limits. | High-efficiency air filtration, HVAC filters, and selected hot-gas filtration systems. |
| 5. Check whether moisture resistance is essential. | Cellulose | Typically used at moderate temperatures; exact limits depend on treatment and construction | Economical, readily formed into porous media, and effective for many dry-particle applications. | Untreated cellulose has limited resistance to moisture and can lose strength when wet. Water-resistant treatments may change permeability or compatibility. | Dry dust collection, intake filtration, and general-purpose air filtration. |
| 6. For aggressive process conditions, confirm chemical resistance and filter design. | Polyphenylene sulfide (PPS) | Often used around 180–190°C, subject to grade and operating conditions | Offers useful heat and chemical resistance in demanding industrial dust-filtration environments. | Performance depends on the gas chemistry; strong oxidizing conditions can limit service life. Media cost and availability may be higher than common fibers. | Industrial hot-gas and boiler dust collection where the process chemistry is compatible. |
| 7. Validate the full assembly, not just the fiber name. | Aramid (meta-aramid) | Often used around 200–220°C, depending on grade and finish | Good heat resistance and mechanical strength for demanding dry filtration applications. | Long-term exposure to moisture, acids, or alkaline conditions can reduce service life. Temperature capability alone does not determine suitability. | High-temperature industrial dust collection and selected hot-gas filtration systems. |