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May 1, 2026Energies0 citationsOpen Access

Characteristic Analysis of Eddy Current Braking System with AC Excitation and Auxiliary Capacitor

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XNXu NiuBKBaoquan KouLZLu Zhang

Key Points

  • This research aims to analyze a novel eddy current braking system using AC excitation and an auxiliary capacitor to improve energy efficiency and reduce rail heating.
  • Developed a 2D subdomain model to solve magnetic field distribution
  • Derived an equivalent circuit from the subdomain results to analyze braking characteristics and power flow
  • Implemented and tested an optimal auxiliary capacitor of 134 μF to assess inverter capacity reduction
  • The proposed system generates controllable braking force and converts kinetic energy into storable electrical energy
  • The implementation of the optimal auxiliary capacitor reduces the required inverter capacity compared to inverter-only conditions
  • Overall, the system effectively mitigates secondary rail heating, enhancing energy efficiency.

Abstract

The eddy current braking system (ECBS) is a crucial non-contact technology for high-speed railway. Conventional DC-excited systems face significant challenges such as excessive rail heating and high-capacity power supply requirements. This paper proposes a novel ECBS with AC excitation and auxiliary capacitor to achieve integrated energy recovery and power supply optimization. To evaluate its performance, a rigorous analytical framework is developed. First, a 2D subdomain model is established by incorporating the longitudinal end effect to solve the magnetic field distribution. Subsequently, an equivalent circuit is derived from the subdomain results to investigate steady-state braking characteristics and power flow. Analysis results demonstrate that the proposed system not only generates controllable braking force but also converts a portion of kinetic energy into storable electrical energy, effectively mitigating secondary rail heating. Most significantly, the implementation of an optimal auxiliary capacitor (134 μF) is found to reduce the required inverter capacity compared to inverter-only conditions. These findings provide a theoretical foundation and a practical design tool for developing high-performance, energy-efficient braking systems in high-speed transportation.

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Cite This Study

Niu et al. (2026) studied this question.

synapsesocial.com/papers/69f44390967e944ac5566cfdhttps://doi.org/10.3390/en19092118
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