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Position Control Optimization of Aerodynamic Brake Device for High-speed Trains 被引量:2

Position Control Optimization of Aerodynamic Brake Device for High-speed Trains
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摘要 The aerodynamic braking is a clean and non-adhesion braking, and can be used to provide extra braking force during high-speed emergency braking. The research of aerodynamic braking has attracted more and more attentions in recent years. However, most researchers in this field focus on aerodynamic effects and seldom on issues of position control of the aerodynamic braking board. The purpose of this paper is to explore position control optimization of the braking board in an aerodynamic braking prototype. The mathematical models of the hydraulic drive unit in the aerodynamic braking system are analyzed in detail, and the simulation models are established. Three control functions--constant, linear, and quadratic--are explored. Two kinds of criteria, including the position steady-state error and the acceleration of the piston rod, are used to evaluate system performance. Simulation results show that the position steady state-error is reduced from around 12-2 mm by applying a linear instead of a constant function, while the acceleration is reduced from 25,71-3.70 m/s2 with a quadratic control function. Use of the quadratic control function is shown to improve system performance. Experimental results obtained by measuring the position response of the piston rod on a test-bench also suggest a reduced position error and smooth movement of the piston rod. This implies that the acceleration is smaller when using the quadratic function, thus verifying the effectiveness of control schemes to improve to system performance. This paper proposes an effective and easily implemented control scheme that improves the position response of hydraulic cylinders during position control. The aerodynamic braking is a clean and non-adhesion braking, and can be used to provide extra braking force during high-speed emergency braking. The research of aerodynamic braking has attracted more and more attentions in recent years. However, most researchers in this field focus on aerodynamic effects and seldom on issues of position control of the aerodynamic braking board. The purpose of this paper is to explore position control optimization of the braking board in an aerodynamic braking prototype. The mathematical models of the hydraulic drive unit in the aerodynamic braking system are analyzed in detail, and the simulation models are established. Three control functions--constant, linear, and quadratic--are explored. Two kinds of criteria, including the position steady-state error and the acceleration of the piston rod, are used to evaluate system performance. Simulation results show that the position steady state-error is reduced from around 12-2 mm by applying a linear instead of a constant function, while the acceleration is reduced from 25,71-3.70 m/s2 with a quadratic control function. Use of the quadratic control function is shown to improve system performance. Experimental results obtained by measuring the position response of the piston rod on a test-bench also suggest a reduced position error and smooth movement of the piston rod. This implies that the acceleration is smaller when using the quadratic function, thus verifying the effectiveness of control schemes to improve to system performance. This paper proposes an effective and easily implemented control scheme that improves the position response of hydraulic cylinders during position control.
出处 《Chinese Journal of Mechanical Engineering》 SCIE EI CAS CSCD 2014年第2期287-295,共9页 中国机械工程学报(英文版)
基金 supported by National Natural Science Foundation of China(Grant No.61004077) Fundamental Research Funds for the Central Universities of China(Grant No.2860219022) Foundation of Traction Power State Key Laboratory of Southwest Jiaotong University,China(Grant No.TPL1308)
关键词 high-speed train aerodynamic brake HYDRAULIC position control optimization. high-speed train, aerodynamic brake, hydraulic, position control, optimization.
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  • 1田春,吴萌岭,任利惠,王孝延.空气动力制动研究初探[J].铁道车辆,2009,47(3):10-12. 被引量:19
  • 2ZUO Jianyong,CHEN Zhongkai.Antiskid Control of Railway Train Braking Based on Adhesion Creep Behavior[J].Chinese Journal of Mechanical Engineering,2012,25(3):543-549. 被引量:7
  • 3AMITANTE R, INNONE A, CATALANO L A. Boosted PWM open loop control of hydraulic proportional valves[J]. Energy Conversion and Management, 2008, 49(8): 2225-2236.
  • 4YU Bo, SHI Yang, HUANG Ji. Modified generalized predictive control of networked systems with application to a hydraulic position control system[J]. Journal of Dynamic System, Measurement, and Control, 2011, 133(3): 1-9.
  • 5HAN Heyong, HUANG Qingxue, MA Lifeng, et al. Research on the hydraulic system of hydraulic rolling shear[J]. Journal of Sichuan University, 2011, 43(3): 239 243.
  • 6YOSHIMURA M, SAITO S, HOSAKA S, et al. Characteristics of the aerodynamic brake of the vehicle on the Yamanashi maglev test line[J]. Quarterly Report of Railway Technical Research Institute, 2000, 41(2): 7478.
  • 7KAZUMASA O, YOSHIMURA M. Development of aerodynamic brake of maglev vehicle for emergency use[J]. Quarterly Report of Railway Technical Research Institute, 1989, 37(2): 60-65.
  • 8TIAN Chun, WU Mengling, FEI Weiwei, et al. Rule of aerodynamic braking force in longitudinal different position of high-speed train[J]. Journal of Tongji University, 2011, 39(5): 705-709.
  • 9CHO S H, BURTON R. Position control of high performance hydrostatic actuation system using a simple adaptive control(SAC) method[J]. Mechatronics, 2011, 21 (1): 109-115.
  • 10ALFAYAD S, OUEZDOU F B, NAMOUN F, et al. High performance integrated electro-hydraulic actuator for robotics: partII: theoretical modelling, simulation, control & comparison with real measurements[J]. Sensor and Actuator-A Physical, 2011, 169(1): 124-132.

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