The choice between active and passive harmonic filters comes down to one question more than any other: how variable is the load you are trying to correct? Passive filters are well suited to stable, predictable loads where the harmonic content stays broadly consistent. Active filters handle variable loads, adapt in real time, and suit sites where the operating profile shifts throughout the day. Most of what follows will help you work out which description fits your site.
Harmonics themselves are not a complicated concept, but the decision between filter types can seem opaque from the outside. This is a straightforward guide to both, without a preference for either, and with the practical detail needed to make an informed choice before speaking to a specialist.
Modern electrical equipment does not draw power in a clean, smooth wave. Variable speed drives, large motors, rectifiers, UPS systems, welding equipment and other non-linear loads distort the current waveform as they operate. These distortions are harmonics: frequencies above the fundamental 50Hz supply frequency that appear as a byproduct of the way the equipment draws current. For sites with significant harmonic filters in industrial plants, the picture is rarely simple, because multiple sources of distortion interact with one another on the same network.
The practical consequences of uncorrected harmonic distortion are well established. Transformers and cables carry more current than their real power load would suggest, which means more heat and more loss. Protective equipment such as fuses and circuit breakers can trip at loads they should tolerate, because the distorted waveform pushes peak currents above the threshold. Power factor degrades, which can add to reactive charges on the bill alongside the direct efficiency losses. Sensitive equipment, including programmable controllers and metering, can malfunction when the supply voltage is sufficiently distorted.
Harmonic distortion and power factor correction are related but distinct problems. Capacitor banks installed for power factor correction can interact with harmonics in ways that create resonance if the system is not properly engineered. A power quality survey will assess both and confirm whether one or both need addressing.
A passive harmonic filter uses fixed capacitors and inductors, tuned at the design stage to target specific harmonic frequencies. The filter provides a low-impedance path for those frequencies, diverting the harmonic current away from the supply and reducing distortion on the network.
Passive filters are mature technology. They are simpler in construction than active alternatives, have fewer components to fail, and carry a lower capital cost for a given installation. Where the harmonic content of a site’s load is stable and predictable, a well-engineered passive filter will perform reliably over a long service life.
Where passive filters work well:
The limitations to understand:
An active harmonic filter works on a fundamentally different principle. Rather than providing a passive path for harmonic current, it continuously measures the distortion on the network and injects an equal and opposite current to cancel it. The result is that the supply current is cleaned up in real time, regardless of what the load is doing at any given moment.
Active filters respond dynamically. As the load profile changes, the filter adjusts. This makes them the correct solution for sites where the harmonic content varies, which covers a large proportion of industrial and commercial sites with multiple variable speed drives, process equipment that cycles on and off, or a mixed load profile across shifts.
Where active filters work well:
The limitations to understand:
The table below summarises the main differences. Neither type is universally better. The right choice depends on the site.
| Â | Passive Filter | Active Filter |
| How it works | Fixed capacitors and inductors tuned to specific harmonic frequencies | Real-time electronics that measure and cancel distortion continuously |
| Best suited to | Stable, predictable loads with consistent harmonic content | Variable loads where harmonic profile changes throughout the day |
| Performance on variable loads | Degrades as load changes; fixed tuning may not match actual distortion | Maintains performance across changing conditions |
| Compliance tightness | Adequate for many industrial applications | Better where strict harmonic limits apply (G5/5, EN 61000) |
| Capital cost | Lower upfront | Higher upfront |
| Footprint | Larger; passive components take more space | More compact for equivalent performance |
| Maintenance | Low; fewer moving parts | Higher; electronics require periodic servicing |
| Risk of resonance | Possible; requires careful engineering to avoid | None; active control eliminates resonance risk |
Start with these questions before any other conversation about filter type.
How variable is the load? If the main harmonic sources run at a consistent level and the operating profile is stable day to day, a passive filter is worth considering seriously. If loads cycle, shift patterns change, or multiple VSDs operate at different levels throughout the day, an active filter is likely the more reliable solution.
What is the harmonic spectrum? A power quality survey will measure the actual harmonic content on the network and identify which frequencies are dominant. This is the data a filter needs to be specified against. Without it, any filter recommendation is partly a guess.
What compliance standard applies? Some sites, particularly those connected to the distribution network at higher voltages or subject to specific planning or grid connection conditions, have defined harmonic limits to meet. G5/5 applies in the UK for equipment connected above 1kV. Where a defined limit applies, the filter needs to be sized to meet it consistently, which often points towards active technology.
Is there existing power factor correction on site? If capacitor banks are already installed, a harmonic survey should check for resonance between those capacitors and the supply impedance before any additional passive components are added. This is a common source of problems on sites that have added non-linear loads since their PFC system was installed.
A power quality survey is the practical starting point for all of these questions. It will measure the existing distortion, identify the sources, and provide the data needed to specify a filter that is correctly sized and of the right type. Powerdown220 offers this at no charge for UK commercial and industrial sites.
If your site has variable speed drives, large motors, or other non-linear loads and you have not had a harmonic assessment, a free power quality survey is the right place to start. It will measure the distortion on your network, identify the sources, and provide the data to determine whether a filter is needed and which type fits your load profile. Find out more about Powerdown220’s active harmonic filters or get in touch to arrange a site assessment.