Last Updated: 2026-09-18
power supply derating for industrial control cabinets means using a supply below its maximum rating when heat, airflow, input voltage, altitude, mounting, or continuous load reduces usable output. Start with the real load, then check the product derating curve, cabinet temperature, cooling path, wiring loss, and startup current before selecting the final wattage.

power supply derating starts with heat

power supply derating is the practice of reducing the usable output below the maximum rating when real operating conditions are harsher than the test condition printed in the data sheet. The nameplate wattage is only a starting point. Cabinet temperature, airflow, mounting direction, input voltage, altitude, and load profile all decide how much output is actually safe.
Many power supply problems begin when a design treats rated wattage as available wattage in every enclosure. A 450W supply may not be suitable for a continuous 430W load inside a sealed cabinet near drives, relays, heaters, or warm ambient air. If heat cannot leave the case, internal components age faster and protection circuits may trip at the worst moment.
For WEHO selection, start with the approved WEHO enclosed switching power supply category and confirm the exact model data sheet. If the design uses an LRS-style enclosed supply, check the specific output voltage, cooling method, installation clearance, and derating curve before deciding final load.
Read the derating curve before choosing wattage

A derating curve shows how usable load changes as a condition changes. The most common curve is ambient temperature versus load percentage. For example, a supply may allow full load up to one temperature, then require reduced load as ambient temperature rises. Some products also have input-voltage derating or altitude derating.
Do not copy a derating percentage from another product family. A fan-cooled enclosed supply, a convection-cooled DIN rail module, a waterproof LED driver, and a compact adapter can all have different thermal paths. Use the exact WEHO model documentation for the final calculation.
The practical method is simple:
- Find the real continuous load.
- Add startup and peak load checks.
- Estimate cabinet ambient temperature near the power supply, not room temperature.
- Confirm whether the supply has free air, restricted air, or forced air.
- Apply the model-specific derating curve.
- Leave service margin for dust, filter aging, and future load additions.
Calculate continuous load and peak load separately
Continuous load is the output current the supply must deliver for long periods. Peak load is the short demand caused by motors, relays, solenoids, lamps, capacitive input stages, or communication modules starting together. Derating mainly protects continuous operation, but peak behavior still matters because a supply near its thermal limit has less room for transients.
For a 24V system, calculate watts from volts times amps. A 24V load drawing 12A needs 288W before margin. If the same cabinet may later add more I/O, lamps, fans, or sensors, include that planned load instead of sizing only for today.
Low input voltage can also change the thermal condition. When the input is near the low end of the allowed AC range, current and losses can increase inside the supply. If the product data gives a reduced load at low input, apply it before signing off the design.
Cabinet installation changes the usable load

The best derating calculation can fail if the cabinet layout blocks cooling. Enclosed switching power supplies need space around ventilation slots and a path for warm air to rise or be removed. Mounting the supply too close to a wire duct, side wall, relay bank, or heat-producing drive can make the local ambient temperature much higher than expected.
Measure temperature where the supply actually sits. A cabinet can be 25°C outside and much warmer near the top rail or beside a drive. If the supply runs continuously, check temperature after the machine reaches stable operating conditions, not immediately after startup.
Vent filters, cabinet fans, and heat exchangers need maintenance. A clean new panel may pass a factory test, while a dusty field cabinet reaches higher internal temperatures months later. This is why conservative power supply derating is a reliability decision, not only a sizing formula.
Verify derating under a realistic load

Before release, test the power supply with a load close to the real application. Confirm output voltage, case temperature, fan operation if present, input voltage, and surrounding cabinet temperature. If the product is intended for 24/7 duty, a short no-load test does not prove the thermal margin.
Record the test condition with the final equipment file. Include ambient temperature, load current, input voltage, cabinet fan status, and whether doors or filters were in their normal operating condition. This makes later service easier because the technician can compare field symptoms with the original design assumption.
If a supply runs hot, do not only move to a larger wattage. Check blocked airflow, wrong mounting orientation, overloaded branches, excessive cable drop, poor cabinet ventilation, and low input voltage. Sometimes the correct fix is improved cooling or load separation rather than a larger unit in the same hot location.
Selection mistakes to avoid
Avoid these common mistakes when applying power supply derating:
- Using room temperature instead of cabinet temperature.
- Treating rated wattage as usable wattage in every installation.
- Ignoring input-voltage derating.
- Blocking ventilation slots with ducts or cable bundles.
- Forgetting startup current and simultaneous loads.
- Reusing another model’s derating curve.
- Skipping field conditions such as dust, filters, and fan failure.
For purchasing, specify output voltage, continuous load, expected peak load, input voltage range, ambient temperature, mounting orientation, airflow condition, and required service margin. This helps engineering and purchasing choose the right WEHO model instead of comparing only price and watts.
Key Takeaways
- power supply derating converts nameplate wattage into safe usable output under real heat and airflow conditions.
- Cabinet ambient temperature near the supply matters more than room temperature.
- Use the exact WEHO model derating curve; do not borrow a curve from another product family.
- Continuous load, peak load, low input voltage, and cooling path should be checked together.
- Good clearance, ventilation, and test records reduce field failures.
Faqs
O que significa a redução do fornecimento de energia?
A redução da fonte de alimentação significa operar a fonte abaixo de sua saída máxima quando o calor, o fluxo de ar, a tensão de entrada, a altitude, a montagem ou o ciclo de trabalho reduzem a carga contínua segura.
Por que a temperatura ambiente afeta a derrapagem?
A temperatura ambiente mais alta deixa menos margem térmica para os componentes internos. Se o gabinete estiver quente ou mal ventilado, a fonte de alimentação pode precisar de uma carga contínua menor do que a potência nominal.
Uma fonte de alimentação de 450W é sempre segura para uma carga de 400W?
Uma carga contínua de 400W ainda pode ser muito alta se a fonte for instalada em um gabinete quente, tiver fluxo de ar restrito, baixa tensão de entrada, alta altitude ou surtos repetidos de inicialização.
Quanta margem de derrapagem devo deixar?
Use the exact product derating curve first. When conditions are uncertain, leave practical margin for cabinet temperature, cable loss, startup current, and long service life instead of sizing only from nameplate watts.
Does forced air cooling reduce derating?
Forced air can improve usable output when the product data allows it, but the airflow path must be real. Blocked vents, dirty filters, or crowded cabinets can remove that benefit.
Which WEHO product family should I check for derating?
For enclosed AC-DC supplies, start with the WEHO enclosed switching power supply category and then verify the exact model data sheet, installation orientation, cooling requirement, and derating curve.
The FAQ section below summarizes practical derating questions for selection, installation, and field service checks.
Conclusão
power supply derating is a practical reliability check. Start with the real load, confirm the exact product curve, measure cabinet conditions, and leave enough margin for heat, airflow, startup demand, and long service life. For enclosed AC-DC supplies, review the WEHO enclosed switching power supply category, confirm the final model data, or contact [[email protected]](mailto:[email protected]) through the WEHO contact page before release.
Review the relevant WEHO product category, email [email protected], or contact WEHO with the input voltage, output load, ambient temperature, and installation details.



