VFD Derating Due to Temperature, Altitude, and Switching Frequency

The rated power shown on a Variable Frequency Drive does not always represent the power that will be continuously available under every operating condition.

High ambient temperature, installation altitude, increased switching frequency, restricted ventilation, and the installation of multiple drives inside the same enclosure can reduce the continuous output current that the VFD can safely provide.

This reduction is known as derating.

Ignoring derating may cause repeated overtemperature trips, reduced service life, unexpected shutdowns, or premature failure of the drive’s electronic components.

What Is VFD Derating?

VFD derating is the intentional reduction of the drive’s allowable output current or power when it operates outside its standard rated conditions.

A VFD may be rated for a specific output current under defined conditions such as:

A specified ambient temperature

A maximum installation altitude

A standard switching frequency

Adequate ventilation

Required clearances around the drive

A defined load duty

When the actual operating conditions exceed these limits, the drive may no longer be able to deliver its full nameplate current continuously.

The available current must therefore be calculated using the derating data provided by the manufacturer.

Rated Power Does Not Always Mean Available Power

Two VFDs with the same kilowatt rating may not provide the same usable output under real installation conditions.

The correct selection should be based primarily on:

Motor nameplate current

Load type

Required overload capacity

Ambient temperature

Installation altitude

Switching frequency

Panel ventilation

Installation clearances

Number of drives inside the enclosure

The motor current must remain within the drive’s available output current after all required derating factors have been considered.

Why Does a VFD Generate Heat?

A VFD contains power electronic components that generate losses during operation.

The main sources of heat include:

Rectifier losses

DC bus losses

Inverter transistor switching losses

Conduction losses

Control circuit losses

Internal fan and auxiliary losses

The generated heat must be transferred from the internal components to the surrounding air.

When the surrounding air becomes hotter or less dense, the cooling system becomes less effective and the drive may need to operate at a reduced current.

  1. Ambient Temperature Derating

Every VFD has a specified ambient temperature range.

The manufacturer may allow the drive to operate at full rated current up to a certain temperature, such as 40°C or 50°C, depending on the model and installation method.

Above the specified full-load temperature, the allowable output current may need to be reduced.

For example, a manufacturer may require the current to be reduced by a certain percentage for every degree above the rated temperature.

The exact derating rate is not universal and must be taken from the drive’s technical manual.

Why Does High Temperature Reduce VFD Capacity?

Higher ambient temperature reduces the temperature difference between the drive’s heat sink and the surrounding air.

This decreases the ability of the heat sink and cooling fans to remove heat.

As the internal temperature rises, thermal stress increases on components such as:

IGBT or power transistor modules

DC bus capacitors

Rectifier modules

Control boards

Cooling fans

Insulation materials

Continuous operation at high temperature can significantly reduce component life, especially the life of electrolytic capacitors and cooling fans.

Practical Actions for High-Temperature Locations

Provide adequate panel ventilation

Use filtered ventilation fans when appropriate

Install an enclosure air conditioner when necessary

Maintain the clearances specified by the manufacturer

Avoid installing the VFD close to transformers, braking resistors, or other heat sources

Remove dust from filters and heat sinks

Measure the actual temperature inside the panel

Apply the manufacturer’s temperature derating curve

Select a larger VFD when the available current becomes lower than the motor requirement

  1. Altitude Derating

Air density decreases as altitude increases.

Lower air density reduces the cooling capability of the surrounding air and may also affect electrical insulation performance.

Many drives can operate at their full rating up to a specified altitude, often around 1,000 metres above sea level, although the exact limit depends on the manufacturer.

Above this altitude, output current derating may be required.

Why Does Altitude Affect the VFD?

At higher altitude:

The air removes less heat from the heat sink

Fan cooling becomes less effective

Internal component temperatures may rise

Electrical clearances and insulation performance become more critical

The exact altitude derating percentage must be taken from the drive manual.

Some manufacturers specify a current reduction per additional 100 metres above the rated altitude, while others provide a derating curve or table.

Additional High-Altitude Considerations

Check the maximum permitted installation altitude

Review both thermal and insulation limitations

Check whether input voltage restrictions apply

Apply the manufacturer’s altitude derating factor

Consider the combined effect of altitude and ambient temperature

Verify the performance of panel fans and cooling equipment

  1. Switching Frequency Derating

The switching frequency determines how frequently the VFD output transistors switch to create the motor voltage waveform.

A higher switching frequency can reduce audible motor noise and improve current waveform quality in some applications.

However, increasing the switching frequency also increases switching losses inside the VFD.

Effects of Increasing the Switching Frequency

Higher internal heat generation

Reduced continuous output-current capability

Possible need for drive derating

Increased common-mode and leakage currents

Higher stress on the motor insulation

Greater sensitivity to motor cable length

Possible increase in electromagnetic interference

When Is a Higher Switching Frequency Used?

Noise-sensitive applications

Applications requiring smoother motor current

Low-speed operation where audible noise is important

Specific motor-control requirements

The switching frequency should not be increased simply to make the motor quieter without checking the drive derating table.

In many drives, the full output current is only available at the standard factory switching frequency.

  1. Installation Inside Electrical Panels

The temperature around the drive is not always equal to the room temperature.

For example, the room temperature may be 35°C while the temperature inside the electrical panel reaches 50°C or more.

The VFD must be selected according to the actual temperature surrounding the drive inside the enclosure.

Factors That Increase Panel Temperature

Multiple VFDs installed in the same panel

Insufficient ventilation

Blocked air filters

Small enclosure dimensions

Direct sunlight

High ambient temperature

Braking resistors installed inside the panel

Transformers or reactors installed close to the drives

Incorrect drive spacing

Hot air recirculation inside the enclosure

Recommended Installation Practices

Maintain the required top, bottom, and side clearances

Arrange the airflow from the bottom of the panel to the top

Prevent hot exhaust air from one VFD from entering another

Install braking resistors outside the enclosure when appropriate

Separate major heat-producing components

Use thermostatically controlled fans

Calculate the total panel heat losses

Measure the internal temperature during full-load operation

  1. Installing Multiple VFDs Side by Side

Some VFDs can be installed side by side without spacing, while others require a minimum separation.

Side-by-side installation may reduce the ability of the drive to dissipate heat.

The manufacturer may therefore require:

Additional spacing

Reduced output current

Lower ambient temperature

Reduced switching frequency

Forced ventilation

The installation manual must be reviewed before using a compact side-by-side arrangement.

  1. Dust, Contamination, and Cooling Performance

Dust accumulation can reduce cooling performance even when the room temperature is within the permitted range.

Dust may block:

Air filters

Cooling fan openings

Heat sink passages

Internal air channels

Conductive or corrosive contamination may also damage electronic components.

Maintenance should include:

Cleaning or replacing panel filters

Inspecting cooling fans

Cleaning heat sinks according to manufacturer instructions

Checking fan alarms

Measuring the panel temperature

Keeping ventilation openings unobstructed

  1. Combining Multiple Derating Factors

Temperature, altitude, switching frequency, and installation conditions may affect the same drive at the same time.

The factors must not be considered independently if the installation is affected by more than one condition.

The manufacturer may provide:

A combined derating table

Separate correction factors

A selection software tool

A requirement to choose the next drive size

Do not automatically multiply all derating factors unless the manufacturer’s instructions allow this method.

Practical Example

Assume that a VFD has a rated output current of 100 A.

The manufacturer specifies:

Temperature factor: 0.90

Altitude factor: 0.95

If the manufacturer permits the factors to be multiplied:

Available output current = 100 × 0.90 × 0.95

Available output current = 85.5 A

If the connected motor has a rated current of 90 A, this VFD would not provide sufficient continuous current under the stated conditions.

A larger drive or an improvement in the installation conditions would be required.

This example is for explanation only. Actual derating must always follow the manufacturer’s technical data.

  1. Derating Versus Oversizing

Derating and oversizing are related but different concepts.

Derating determines how much current the selected VFD can safely provide under the actual conditions.

Oversizing means selecting a drive with a higher current rating than the motor requires.

Oversizing should not be used randomly.

The correct process is:

Determine the motor rated current

Identify the load duty

Check the required overload capacity

Apply all manufacturer derating requirements

Calculate the available drive current

Select a drive whose derated current remains above the motor requirement

  1. Normal Duty and Heavy Duty Ratings

Many VFDs have more than one rating.

Normal Duty is generally intended for loads with lower overload requirements, such as many centrifugal pumps and fans.

Heavy Duty is generally intended for constant-torque or high-overload applications such as:

Conveyors

Mixers

Crushers

Extruders

Positive-displacement pumps

The same VFD model may have different kilowatt and current ratings under Normal Duty and Heavy Duty operation.

Always compare the motor current and load duty with the correct VFD rating.

  1. Common Selection Mistakes

Selecting the VFD by motor kilowatts only

Ignoring the motor nameplate current

Using room temperature instead of panel temperature

Ignoring installation altitude

Increasing switching frequency without checking derating

Installing several drives with insufficient spacing

Placing braking resistors inside a poorly ventilated panel

Ignoring blocked filters and failed fans

Using the Normal Duty rating for a Heavy Duty application

Multiplying derating factors without checking the manufacturer’s method

Selecting the next kilowatt size without checking its output current

  1. Information Required Before Selecting the VFD

Motor rated power

Motor nameplate current

Supply voltage

Motor frequency

Load type

Required starting torque

Required overload capacity

Minimum and maximum operating speed

Ambient temperature

Expected panel temperature

Installation altitude

Selected switching frequency

Motor cable length

Number of drives inside the panel

Enclosure dimensions

Ventilation or air-conditioning method

Installation clearances

Presence of reactors, filters, or braking resistors

  1. Practical Selection Procedure

Step 1

Record the motor nameplate current.

Step 2

Classify the load as Normal Duty or Heavy Duty.

Step 3

Determine the required overload capacity.

Step 4

Identify the maximum temperature around the VFD.

Step 5

Identify the installation altitude.

Step 6

Select the required switching frequency.

Step 7

Check enclosure ventilation and drive clearances.

Step 8

Apply the manufacturer’s derating data.

Step 9

Compare the derated VFD current with the motor rated current.

Step 10

Select a larger drive or improve the installation conditions when necessary.