DOI QR코드

DOI QR Code

HILS기반 상용차 디젤엔진용 연료펌프의 전기구동 시스템 적용에 관한 연구

Study on the Application of the Electric Drive System of Fuel Pump for Diesel Engine of Commercial Vehicle using HILS

  • 고영진 (전북자동차기술원 선행기술연구팀)
  • Ko, Youngjin (Advanced Technology Research Team, Jeonbuk Institute of Automotive Technology)
  • 투고 : 2013.09.27
  • 심사 : 2013.12.16
  • 발행 : 2014.03.01

초록

Fuel injection pressure has steadily increased in diesel engines for the purpose of improving fuel efficiency and cleaning exhaust gas, but it has now reached a point, where the cost for higher pressure does not warrant additional gains. Common rail systems on modern diesel engines have fuel pumps that are mechanically driven by crankshaft. The pumps actually house two pumping module inside: a low pressure pump component and a high pressure pump component. Part of the fuel compressed by the low pressure component returns to the tank in the process of maintaining the pressure in the common rail. Since the returning fuel represents pumping loss, fuel economy improves if the returned fuel can be eliminated by using a properly controled electrical fuel pump. As the first step in developing an electrical fuel pump the fuel supply system on a 6 liter diesel engine was modeled with AMESim to analyze the workload and the fuel feed rate of the injection pump, and the results served as basis for selecting a suitable servo motor and a reducer to drive the pump. A motor controller was built using a DSP and a program which controls the common rail pressure using a proportional control method based on the target fuel pressure information from the engine ECU. A test rig to evaluate performance of the fuel pump is implemented and used to show that the newly developed electrically driven fuel pump can satisfy the fuel flow demand of the engine under various operating conditions when the rotational speed of the pump is adequately controlled.

키워드

참고문헌

  1. W. Boehner and K. Hummel, "Common Rail Injection System for Commercial Diesel Vehicles," SAE 970345, 1997.
  2. Robert Bosch, Automotive Handbook, 7th Edn., John Wiley & Sons, New York, pp.582-587, 2007.
  3. AMESim IFP-Engine Library Manual, Ver.9, Imagine, Roanne, France, 2009.
  4. O. Chiavola and P. Giulianelli, "Modelling and Simulation of Common Rail Systems," SAE 2001-01-3183, 2001.
  5. M. Kim, G. Lee, J. Lee, J. Lee, H. Yoo and M. Kim, "Analysis of Hydraulic Characteristics and Modelling of Piezo Actuator for High Pressure Fuel Injection," KSAE11-B0057, pp.315-319, 2011.
  6. I. Jo, J. Lee and J. Lee, "Characteristic Evaluation of Analytic Model Based on AMESim for CRDI Injector," KSAE Annual Conference Proceedings, pp.321-326, 2011.
  7. R. N. Kunkel, "New Fuel Pump Technology," SAE 1999-01-0331, 1999.
  8. J. W. Chang and D. Y. Yoon, "Sensorless Starting Method and Fuel Pressure Control of BLDC Motor for Fuel Pump of Vehicle," Transactions of KSAE, Vol.21, No.2, pp.114-121, 2013. https://doi.org/10.7467/KSAE.2013.21.2.114
  9. Y. J. Ko, T. J. Kim, K. M. Park, Y. S. Ro, N. S. Moon and S. Y. Oh, "Evaluation System Development for a Fuel Economy and Exhaust Emissions of Commercial Vehicle Appling Engine ECU_ILS Technology," KSAE Annual Conference Proceedings, pp.489-494, 2010.

피인용 문헌

  1. A Study on Failsafe Algorithm for Wheel Speed Sensor of Micro-mobility vol.25, pp.6, 2017, https://doi.org/10.7467/KSAE.2017.25.6.778