Cooled air is driven directly through dry transformer winding channels, avoiding guide plates, turbulence, and bulky housing layouts.
A cooling jacket and distributed gap core let a toroidal inductor filter 50-100 kHz harmonics with lower losses and less overheating.
A metal plate adds a second heat path from the reactor to the cooler, improving cooling, raising output, and damping vibration.
A sepiolite, aluminium hydroxide, and silicone resin potting improves transformer heat dissipation while preserving sealed assembly integrity.
Dielectric fluid channels cool both windings and core, improving dry-type transformer heat dissipation across medium and high voltages.
Copper-plated external electrodes and parylene insulation prevent shield-can shorting while improving coupling strength in power inductors.
A cold plate and heat-spreading bracket cool both planar inductor cores while clamping the upper core to reduce ferrite overheating.
A closed-open core layout tunes leakage inductance for 160-300 kHz operation while adding heat dissipation to limit transformer temperature rise.
A grooved, nested magnetic core layout improves contactless power transfer in medical equipment by reducing leakage and easing manufacture.
Integrated ducts inside a ferrimagnetic core remove heat during operation and reflow soldering, reducing losses and external cooling needs.
Continuous humidity, pressure, and temperature sensing stops transformer drying at moisture equilibrium to avoid overheating and delays.
A thermally conductive insulating bottom lets compact electronic components dissipate heat efficiently without added insulation spacing or parts.
A cross-flow jet disturbs the outlet air stream to cool transformer oil-air heat exchangers more uniformly with lower noise and power use.
A mobile heating, adsorption, filtration, and vacuum degassing process removes water and polar impurities from bio-sourced oils for dielectric use.
Alternating narrow and wide flow passages boost cooling in high-loss inductive charging zones while limiting pressure loss and package size.
Humidity-controlled airflow uses the Bernoulli effect to boost transformer heat exchanger cooling with less noise, weight, and footprint.
A three-column core and split winding layout enables negative coupling, lower impedance, and better heat dissipation in compact VRMs.