Thermally Conductive Epoxy for High-Voltage Relays and Contactors
A high-voltage relay that arcs internally rarely fails quietly — but the thermal stress that leads up to that failure often builds for months inside a bond line nobody inspects until the contactor stops closing reliably. Why Relay and Contactor Bonding Is a Different Problem High-voltage relays and contactors — used across EV charging infrastructure, industrial switchgear, and power distribution equipment — combine two demands that make adhesive selection harder than in most electronics assemblies. The internal components generate localized heat during switching events, particularly under high current loads, and that heat needs a path out through the housing. At the same time, the epoxy bonding internal components to the housing has to maintain electrical isolation across the voltage gradients present in high-voltage switching gear, since any conductive path compromises the entire safety design of the device. Balancing Thermal Transfer and Dielectric Integrity The core engineering challenge is that most fillers used to boost thermal conductivity in epoxy formulations are, by nature, somewhat electrically conductive at high enough loading — which is exactly the wrong property for a component operating near high-voltage circuitry. Formulating a thermally conductive epoxy that also holds strong dielectric properties requires careful filler selection (aluminum oxide and aluminum nitride are common choices precisely because they conduct heat while remaining electrically insulating) rather than simply maximizing filler content for a thermal conductivity headline number. Specification Targets for High-Voltage Applications For relay and contactor housing bonding, prioritize: Thermal conductivity around 1.5–1.9 W/mK, sufficient for typical relay housing geometries without pushing filler loading so high that dielectric strength suffers. High dielectric strength, confirmed independently of the thermal conductivity spec, since these are not automatically correlated properties in a filled epoxy system. Tensile shear strength above 1,400 psi for a robust, permanent bond, given that relays and contactors are rarely serviced once installed in switchgear. A stable operating range of roughly −65°C to 205°C, covering both cold storage conditions and the localized heating from repeated switching cycles. Incure's Epo-Weld™ thermally conductive epoxy line includes formulations engineered specifically to hold dielectric strength alongside thermal conductivity, rather than trading one for the other as filler content increases. Application Notes for Switchgear Assembly Housing bonding for relays and contactors typically involves bonding to metal or high-temperature engineering plastic substrates, both of which need surface preparation appropriate to the material — light abrasion and solvent wipe for metals, and in some cases a primer or surface treatment for lower-surface-energy plastics to achieve reliable adhesion. Bond line thickness should be controlled carefully in this application specifically because dielectric strength is partly a function of bond line thickness — too thin a bond line under high voltage stress can reduce the safety margin the design relies on. If you're specifying bond line thickness for a new relay housing design, Email Us — this is a common enough question that our technical team can walk through the trade-offs directly. Failure Modes Specific to Switching Components Two failure patterns show up more often in high-voltage relay applications than…