Stackpole Introduces 1400A Busbar Shunt Resistors

Stackpole Electronics has introduced the HCC series of high current over 1400A busbar shunt resistors, targeting current measurement in battery electric and hybrid vehicle power systems.

These chassis‑mount shunt resistors provide a direct, linear way to monitor very high currents in critical functions such as battery management, DC bus monitoring, and inverter output control, offering an alternative to Hall effect sensors in modern xEV architectures.

Key features and benefits

Summary of key electrical parameters

The available standard resistance values directly define the current range and power dissipation for each HCC shunt variant. Exact current ratings, temperature coefficients, and derating behavior should be taken from the manufacturer datasheet for the specific part number.

ParameterStandard options / notes
Resistance values100 micro‑ohm, 50 micro‑ohm, 25 micro‑ohm
Max current capabilityMore than 1400 A (depending on variant)
ConstructionAll‑welded busbar shunt, chassis mount
CustomizationCustom sizes, shapes, resistance values

Values such as allowable temperature rise, continuous vs. peak current, and tolerance are defined per part and should be verified in the official datasheet according to the manufacturer documentation.

Typical applications

The HCC series is aimed primarily at the electrified vehicle market, where accurate high current sensing is required across multiple subsystems.

Technical highlights

From an engineering perspective, the HCC series combines very low resistance with a mechanically robust chassis‑mount package that integrates naturally into busbar‑based power distribution.

The manufacturer notes that detailed performance parameters such as tolerance, temperature coefficient, and maximum temperature rise are defined in the datasheet and should be consulted when finalizing a design.

Shunt selection and I²R loss considerations

In practical designs, the voltage drop and power dissipation across the shunt must be evaluated for the expected current range. The power loss scales with the square of current times resistance, so even micro‑ohm values can generate significant heat at several hundred amps. Engineers should ensure that the chosen HCC shunt value provides sufficient measurement signal while staying within thermal limits specified in the manufacturer documentation.

Design‑in notes for engineers

When implementing the HCC busbar shunt in an xEV powertrain, several practical aspects deserve attention beyond the headline resistance value.

By addressing these aspects early in the design process, engineers can leverage the HCC series to achieve accurate, reliable high current measurement while meeting automotive safety, EMC, and reliability expectations.

Source

This article is based on information provided by Stackpole Electronics in their official press release for the HCC High Current Chassis Mount Shunt Resistor series and related manufacturer documentation.

References

  1. Stackpole Electronics press release – HCC High Current Busbar Shunts for xEV Battery Management, Monitoring, and Control
  2. Stackpole Electronics – official website
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