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고속철도차량의 EMB 적용을 위한 3상 IPMSM의 설계 및 제동압부력 제어

A Design Method of Three-phase IPMSM and Clamping Force Control of EMB for High-speed Train

  • 백승구 (한국철도기술연구원 차세대철도차량본부) ;
  • 오혁근 (한국철도기술연구원 차세대철도차량본부) ;
  • 곽민호 (한국철도기술연구원 차세대철도차량본부) ;
  • 김석원 (한국철도기술연구원 차세대철도차량본부)
  • Baek, Seung-Koo (Advanced Railroad Vehicle Division, Korea Railroad Research Institute) ;
  • Oh, Hyuck-Keun (Advanced Railroad Vehicle Division, Korea Railroad Research Institute) ;
  • Kwak, Min-ho (Advanced Railroad Vehicle Division, Korea Railroad Research Institute) ;
  • Kim, Seog-Won (Advanced Railroad Vehicle Division, Korea Railroad Research Institute)
  • 투고 : 2018.01.22
  • 심사 : 2018.04.06
  • 발행 : 2018.04.30

초록

본 논문은 고속철도차량에 전기기계제동장치(EMB : Electric Mechanical Brake)를 적용하기 위한 주요 구성품인 3상 매입형영구자석동기전동기(IPMSM : Interior Permanent Magnet Synchronous Motor)의 설계방법과 이를 이용한 인버터 제어시스템의 압부력제어 시뮬레이션 방법을 제안한다. 최근 자동차에서 주로 사용하는 유압식 제동장치는 유압을 발생시키기 위해 필요한 오일류와 유압 라인의 관리, 유지보수성 및 유압펌프의 동작으로 인한 효율성 등이 문제로 제기되면서 EMB에 대한 관심이 높아지고 있으나 비용증가 및 안전측면의 보완이 지속적으로 요구되고 있다. 공압식 제동장치를 주로 사용하는 철도차량은 EMB 시스템을 적용할 경우 차량 하부에 큰 공간을 차지하는 공기압축기, 제동공기통 및 연결 배관 등의 부품이 필요하지 않으므로 50% 이상의 소형화가 가능하며 인버터를 적용한 전동기 구동방식으로 인하여 상대적으로 빠른 응답속도와 정밀제어를 통해 공주거리를 단축시킬 수 있는 장점을 갖는다. 또한, 철도차량은 다수의 제동장치가 제동력을 분담하는 구조로 설계되어 자동차와 비교하여 EMB 적용이 안전측면에서 유리하다. 본 논문에서는 JMAG을 활용하여 고속철도의 제동 캘리퍼와 제동력 출력에 적합한 모터설계 및 전자계해석을 수행하였다. 제동 압부력 제어 시뮬레이션을 위해 기계구동부는 기존 EMB 시스템에 주로 적용된 볼스크류 형태의 동작방식과는 달리 고속철도차량에 적용된 편심축 회전을 이용한 구동방식으로 모델링하였다. IPMSM 제어를 통한 제동압부력 및 제동력 출력결과는 Matlab/Simulink를 활용하여 JMAG의 IPMSM 모델과 co-simulation을 통해 보였으며 결과의 타당성은 차세대고속철도(HEMU-430X)의 제동사양과의 비교를 통해 검증하였다.

This paper proposes a design method for a 3-phase interior permanent magnet synchronous motor (IPMSM) and clamping force control method for an electro-mechanical brake (EMB) using co-simulation for a high-speed train (HST). A traditional pneumatic brake system needs much space for the compressor, brake reservoir, and air pipe. However, an EMB system uses up to 50% less space due to the use of a motor and electric wires for controlling the brake caliper. In addition, it can reduce the latency time for brake control because of the fast response and precise control. A train that has many brakes is advantageous for safety because of the control by sharing the braking force. In this paper, a driving method for a cam-shaft-type EMB is modeled. It is different from the ball-screw-type brakes that are widely used in automobiles. In addition, a co-simulation method is proposed using JMAG and Matlab/Simulink. The IPMSM was designed and analyzed with the JMAG tool, and the control system was simulated using Matlab/Simulink. The effectiveness of the co-simulation results of the mechanical clamping force and braking force was verified by comparison with the clamping force specifications of a HEMU-430X HST.

키워드

참고문헌

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