• • • COVER STORY • • •
surge, protecting contactors and the capacitors themselves. Poor-quality resistors may overheat, drift in resistance, or fail catastrophically under such stresses. Discharge resistors bleed off the residual charge from capacitors after disconnection. This is essential for maintenance safety. High-quality resistors ensure consistent and reliable discharge over many operating cycles. In dynamic or staged PFC systems, resistors are
Key requirements for a high-quality PFC choke:
1. Low parasitic capacitance Poorly designed chokes can exhibit unwanted parasitic capacitance, which alters the intended resonance characteristics of the detuned circuit. This may cause unintentional resonance at higher frequencies and lead to unintended problems.
2. Low flux density to prevent magnetic saturation
A high-quality choke is designed to operate at a low magnetic flux density, typically well below the material’s saturation point. This ensures the inductor can maintain its inductance even under high current or harmonic loading. Operating too close to saturation can cause a reduction of inductance, distortion of current waveforms and increased core heating.
3.Stable inductance across operating conditions A high-quality choke maintains its inductance over a wide range of temperatures and load currents. Cheaper alternatives may drift under thermal stress or magnetic saturation, compromising system performance.
4. Minimal core losses and noise
Quality chokes use precision-wound coils and optimised core materials (e.g. low-loss iron or ferrite) to reduce heating, mechanical noise and magnetic leakage, ensuring consistent performance and long service life.
5. Mechanical robustness and low vibration Industrial PFC systems often operate in environments with electrical noise, vibration and temperature fluctuations. A mechanically sound choke reduces the risk of loosened windings, noise and mechanical failure.
6.High thermal class and fire safety Chokes in detuned systems are often subject to elevated temperatures due to harmonic loading.
electricalengineeringmagazine.co.uk ELECTRICAL ENGINEERING • APRIL 2025 9
Using materials and designs rated for higher thermal classes improves fire resistance and operational lifespan.
Choosing a high-quality choke ensures accurate detuning, reliable harmonic mitigation and prolonged life of the choke and associated capacitor banks. In contrast, substandard inductors can introduce unpredictable behaviour, reduce system reliability and entirely negate the benefits of PFC.
The supporting role of high-quality resistors
While inductors handle detuning and harmonic protection, resistors are essential for transient control and system safety. Critical Applications of Resistors in Detuned PFC Systems include inrush current limiting and system damping. When a capacitor bank is switched in, it can draw a very high initial current. Resistors limit this
often paired with switching elements (e.g. thyristors or IGBTs) to manage voltage transients and reduce or dampen the oscillations that can occur in a circuit containing capacitance and inductance, known as ‘ringing.’ Robust resistors with overload resistance and thermal stability are vital here, ensuring predictable switching and protecting semiconductors from overvoltage. Just like inductors, resistors in PFC systems must be sized correctly, thermally stable and mechanically robust. A failure in one resistor can compromise the entire capacitor stage, leading to downtime or even hazardous failures. The best resistors for this application tend to be aluminium-clad, reducing the effects of environmental issues. It is essential to ensure that the resistors used in this application can withstand continuous use and will ‘fail-safe’. The best aluminium-clad resistors have an internal lining to eliminate the chance of a fault condition where the ‘live’ winding touches the earthed housing, this lining should be tested to ensure isolation at least 1200 degrees C.
In detuned PFC systems, the selection and quality of chokes and resistors directly affect performance, reliability and safety. High-quality chokes ensure accurate detuning, low parasitic effects and stable inductance. In contrast, robust resistors provide essential protection during inrush, discharge and switching events. With the rise in non-linear loads and harmonics in modern industrial environments, cutting corners on passive components is no longer an option. The price differential between low and high quality components is relatively small and doesn’t offset the potential for downtime and catastrophic failure.
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