| Dielectric material | Metallized polypropylene (PP) commonly provides low dielectric loss, high insulation resistance, and strong pulse capability. Metallized polyester (PET) generally offers smaller size and lower cost but higher dielectric loss. | Higher dielectric loss increases internal heating, especially under high frequency or high ripple current. | Prefer PP for power conversion, resonant, pulse, DC-link, and high-ripple applications. Consider PET where compact size and moderate frequency are more important than minimum loss. |
| Capacitance and tolerance | Common capacitance tolerances are ±5% and ±10%; tighter tolerances may be available for timing, filtering, and resonant circuits. | Capacitance changes with temperature, frequency, aging, and applied voltage. Excessive tolerance can shift resonant frequency or filter performance. | Set the tolerance from the circuit requirement rather than choosing the tightest tolerance automatically. Confirm capacitance at the actual operating frequency and temperature. |
| Rated voltage | Film capacitors are commonly specified from tens of volts to several kilovolts DC. AC-rated parts are specified separately because RMS voltage, peak voltage, and frequency affect stress. | Voltage surges, polarity reversal, switching spikes, and DC bias can produce localized dielectric stress and premature breakdown. | Select voltage using the maximum repetitive peak plus transient margin. Do not substitute a DC-only part into an AC or across-the-line position without an appropriate safety approval. |
| Voltage derating | A practical design target is often 70–80% or less of the rated voltage for continuous service, depending on temperature, ripple, pulse conditions, and the component specification. | Operating close to the rating reduces margin against transients, contamination, humidity, and manufacturing variation. | Apply a documented derating curve. Use additional margin in high-altitude, high-humidity, high-temperature, or high-reliability equipment. |
| Operating temperature | Common upper-category temperatures include 85°C, 105°C, 110°C, and 125°C; some specialized designs support higher temperatures. | Temperature accelerates dielectric aging, metallization loss, seal degradation, and electrical parameter drift. | Calculate the capacitor hot-spot temperature, not only ambient temperature. Keep a clear margin below the category temperature when long service life is required. |
| Humidity and condensation | Outdoor and industrial equipment may experience high relative humidity, condensation, rapid temperature cycling, and pollution containing dust or corrosive gases. | Moisture can reduce insulation resistance, increase surface leakage, promote corrosion, and weaken terminal insulation. | Use a suitable climatic category, sealed construction, conformal coating, enclosure protection, or controlled heating where condensation is possible. Verify performance through damp-heat testing. |
| Ripple current and self-heating | Internal loss is approximately proportional to ESR × ripple current². Ripple-current capability decreases as frequency, ambient temperature, or component temperature rises. | Excessive self-heating shortens life and may cause seal damage, capacitance loss, or open-circuit failure. | Check the ripple-current rating at the actual frequency and temperature. Provide airflow, spacing, and thermal paths; avoid placing the capacitor beside heat sources. |
| Frequency and dielectric loss | Polypropylene film typically has a dissipation factor around 0.02–0.10% at 1 kHz, while polyester is commonly higher and strongly dependent on temperature and frequency. | Loss increases thermal stress and may reduce efficiency in switching, resonant, and high-frequency circuits. | Use the supplier’s impedance, ESR, and dissipation-factor curves at the operating frequency instead of relying only on a nominal 1 kHz value. |
| Pulse capability and dV/dt | Pulse-rated film capacitors may specify dV/dt from a few volts per microsecond to several hundred volts per microsecond, depending on construction and voltage rating. | High dV/dt produces high peak current and localized heating in the metallized layers and internal connections. | Verify both peak current and dV/dt. Choose a pulse-specific construction for snubbers, resonant converters, discharge circuits, and high-frequency switching. |
| Self-healing behavior | Metallized film capacitors can isolate a small dielectric fault by vaporizing a limited area of metallization around the defect. | Repeated self-healing events gradually reduce active electrode area and may increase capacitance loss or dissipation factor. | Treat self-healing as a reliability feature, not permission to exceed voltage, temperature, surge, or pulse limits. Monitor end-of-life capacitance and loss requirements. |
| Safety classification | Across-the-line capacitors are generally classified as Class X; line-to-earth capacitors are generally classified as Class Y. X and Y classes have different failure and impulse-test requirements. | A capacitor connected to the mains must fail in a manner appropriate to its position so that electric-shock and fire risks remain controlled. | Use only the safety class intended for the circuit position. Confirm applicable certification, impulse category, creepage, clearance, and installation requirements. |
| Flammability and case material | Plastic cases and encapsulants may be evaluated for flame behavior, commonly using UL 94 classifications such as V-0, V-1, or V-2. | Overheating, arcing, or nearby ignition sources can create a fire hazard if the enclosure material is not suitable. | Specify the required flammability rating and abnormal-operation behavior for the finished product, not only for the capacitor body. |
| Insulation resistance | High-quality film capacitors commonly specify insulation resistance in the thousands of megohm-microfarad range or with a minimum time constant, depending on capacitance and test method. | Low insulation resistance increases leakage current, standby power, dielectric heating, and shock risk in some applications. | Review the minimum insulation-resistance requirement after humidity, temperature, and endurance testing, not only at room temperature. |
| Mechanical and vibration stress | Radial-lead and axial-lead parts have different mounting constraints; larger film bodies may require clamps, adhesive, or vibration-resistant terminals. | Vibration and thermal expansion can fatigue leads, loosen internal connections, or crack encapsulation. | Define vibration level, shock level, lead-bending limits, board support, and minimum spacing. Avoid transferring board stress directly to the capacitor body. |
| Expected service life | Film-capacitor life is strongly influenced by hot-spot temperature, voltage stress, ripple current, humidity, and the number of electrical pulses. | A small reduction in operating temperature can significantly improve lifetime, while repeated overloads can accelerate degradation. | Use a supplier-supported lifetime model and define end-of-life limits, such as maximum capacitance decrease, dissipation-factor increase, or insulation-resistance decrease. |
| Standards and verification | Relevant standards may include IEC 60384-1 for fixed capacitors, IEC 60384-14 for interference-suppression capacitors, and IEC 61071 for capacitors used in power electronic applications. | A component that meets a general electrical specification may still be unsuitable for mains safety, automotive vibration, medical equipment, or industrial pollution levels. | Match the capacitor’s tested standard and environmental category to the end-product standard. Request test reports for endurance, damp heat, vibration, impulse, and abnormal operation when required. |