| 1. Start with the actual fluid. | Petroleum oils, lubricants, and many hydrocarbon fuels | Nitrile rubber (NBR); hydrogenated nitrile rubber (HNBR) for some higher-temperature or more demanding service | NBR is commonly used around −30 to 100 °C; the usable range varies by compound and exposure. | Check the exact fluid formulation, additives, and expected exposure time. NBR generally has limited resistance to ozone and weathering; do not assume all fuels or oils behave alike. | Specify the complete compound callout, hardness, and any required suffix tests. Confirm that the selected grade has fluid-immersion data for the actual fluid. |
| 2. Choose EPDM for suitable water-based service. | Water, many dilute aqueous solutions, and some glycol-based fluids | Ethylene propylene diene rubber (EPDM) | Many EPDM compounds serve approximately −40 to 150 °C; limits depend on the compound, fluid, and pressure. | EPDM is generally a poor choice for petroleum oils, fuels, and many hydrocarbon-based fluids. Check concentration, temperature, and whether steam or hot-water exposure is continuous or intermittent. | Review the full ASTM D2000 callout and the compound’s test results. The polymer family alone does not specify heat resistance, hardness, or additional requirements. |
| 3. Consider FKM for many hot oil and fuel applications. | Many petroleum oils, fuels, and hydrocarbon chemicals | Fluorocarbon rubber (FKM) | Many FKM compounds are used around −20 to 200 °C, with the exact range depending on formulation and exposure. | Compatibility varies across FKM types and fluid blends. Check cold-start requirements and verify suitability for hot water, steam, and specific polar chemicals rather than relying on the generic material name. | Match the complete D2000 callout to the required temperature, hardness, tensile properties, and suffix requirements; verify the grade against the target fluid. |
| 4. Use silicone when temperature flexibility is important. | Air, many dry environments, and selected static sealing applications | Silicone rubber (VMQ) | Many silicone compounds cover approximately −55 to 200 °C; some formulations differ substantially. | Silicone can offer a broad temperature range but often has lower tear and abrasion resistance than other common elastomers. It is generally not the first choice for many fuels, oils, or high-wear dynamic seals. | Confirm the exact D2000 properties and any special tests needed for the application. Check mechanical requirements as well as temperature capability. |
| 5. Look at HNBR for combined heat and mechanical demands. | Selected oils, fuels, and applications involving elevated temperature or wear | Hydrogenated nitrile rubber (HNBR) | Many compounds are used around −30 to 150 °C; formulation and operating conditions determine the actual limit. | HNBR may provide improved heat, ozone, and wear performance over conventional NBR in appropriate grades. Confirm compatibility with the specific fluid, additives, and any sour-gas or chemical exposure. | Request the compound’s full specification and supporting test data. Check that any required aging, compression-set, or low-temperature properties are covered. |
| 6. Check weathering and ozone exposure. | Outdoor equipment, ozone exposure, and weather-exposed static seals | EPDM for compatible fluids; FKM or another qualified compound where fluid compatibility governs | Temperature limits depend on the chosen compound and the combined effects of weather, fluid, and mechanical load. | Do not select by weather resistance alone. EPDM resists weathering well but is generally unsuitable for petroleum oils; verify the complete service environment. | Check applicable D2000 suffix requirements and test data for aging or other specified properties. Ensure the selected callout applies to the exact compound being supplied. |
| 7. Validate the complete operating envelope. | Any application involving pressure, motion, temperature cycling, or changing fluids | Select from NBR, HNBR, EPDM, FKM, silicone, or another qualified family based on test data | Use the compound-specific limits, not a generic polymer range; account for temperature peaks, cold starts, and cycling. | Consider pressure, squeeze, gland design, extrusion gaps, motion, chemical concentration, and exposure duration. Test the finished seal when failure risk or fluid uncertainty is high. | ASTM D2000 is a material specification system, not a universal fluid-compatibility chart. Verify the complete callout, current specification requirements, and compound-specific documentation. |