A Case Study of Reaction Time Reduction of Vehicle Brake System

被引:0
|
作者
Gupta, Anshuman [1 ]
Bisen, Badal G. [1 ]
机构
[1] Tata Motors Ltd, Bombay, Maharashtra, India
关键词
Braking system - Differential pressures - Overall reactions - Pressure switches - Stopping distance - Testing conditions - Time reduction - Vehicle brakes;
D O I
10.4271/2011-01-2379
中图分类号
U [交通运输];
学科分类号
08 ; 0823 ;
摘要
There has to be a good co-relation/relationship between the pedal effort applied, pedal travel, deceleration level achieved and stopping distance for "good brake feel". Brake feel also depend upon the time lag between the force applied on brake pedal and the response of braking system. Hence "brake feel" can be improved by reducing the response time of the brake system. Many vehicles are having "poor brake feel" complaints, pertaining to the above mentioned reasons. This paper relates to an improved brake system for automobile in which reduction in reaction time was done by artificially increasing differential pressure head across vacuum booster diaphragm. Brake booster is given an input of compressed air to the valve body during actuation, thereby increasing the differential pressure across the diaphragm. The compressed air is bled from turbocharger-intercooler of the vehicle which is stored in a reservoir, with one way valve, while cruising. However, same compressed air is utilized by the brake booster during brake application. Additionally, the compressed air reservoir acts as a cooler for stored air. By virtue of this mechanism, the overall reaction time of the brake booster reduces significantly for the same testing conditions. The whole circuit is provided with a pressure switch which detects any failure in the compressed air circuit and opens it up to the atmosphere, making booster work to its conventional capability. Using this concept on vehicle, marked reduction in stopping distance with improvement in "brake feel" was observed.
引用
收藏
页码:1432 / 1436
页数:5
相关论文
共 50 条
  • [21] Study of a Method for Improving the Anti-lock Brake System of Electic Vehicle
    Chu, Liang
    Yao, Liang
    Zhao, Ziliang
    Wei Wenruo
    Zhang, Yongsheng
    MECHATRONICS AND APPLIED MECHANICS, PTS 1 AND 2, 2012, 157-158 : 542 - +
  • [22] Time reduction of the Dynamic Programming computation in the case of hybrid vehicle
    Vinot, Emmanuel
    INTERNATIONAL JOURNAL OF APPLIED ELECTROMAGNETICS AND MECHANICS, 2017, 53 : S213 - S227
  • [23] Evaluation and dynamic forecast of reliability on vehicle brake system based on time-dependent theory
    Shi, Boqiang, 1600, Chinese Society of Agricultural Engineering (30):
  • [24] Regarding "Reaction Time and Brake Pedal Depression After Arthroscopic Hip Surgery in a Prospective Case-Control Study"
    Rai, Ankit
    Kuroda, Yuichi
    Khanduja, Vikas
    ARTHROSCOPY-THE JOURNAL OF ARTHROSCOPIC AND RELATED SURGERY, 2020, 36 (04): : 928 - 929
  • [25] Mathematical models of element of vehicle pneumatic brake system
    Aladjev, V.
    Bogdevicius, M.
    Rozyte, B.
    TRANSPORT MEANS 2007, PROCEEDINGS, 2007, : 47 - 52
  • [26] Contribution to the Thermal Stress Solution of a Vehicle Brake System
    Cornak, S.
    Neumann, V.
    Veverka, J.
    TRANSPORT MEANS 2011, 2011, : 116 - +
  • [27] The development of the software of designing and analyzing vehicle brake system
    Wang, L.
    Zeng, X.
    Yu, P.
    1600, Nanjing University of Science and Technology (25):
  • [28] Intelligent System of Vehicle Brake on Ice and Snow Road
    Zhang, Lei
    Lei, Liping
    2017 NINTH INTERNATIONAL CONFERENCE ON INTELLIGENT HUMAN-MACHINE SYSTEMS AND CYBERNETICS (IHMSC 2017), VOL 1, 2017, : 248 - 251
  • [29] Vehicle hydraulic brake energy storage system design
    Zhang, Yu Bao
    Jin, Meng
    MECHANICAL ENGINEERING, MATERIALS AND ENERGY II, 2013, 281 : 197 - 200
  • [30] Rapid Design of a Light Vehicle Hydraulic Brake System
    Anselma, Pier Giuseppe
    Patil, Shirish Padmakar
    Belingardi, Giovanni
    2017 2ND IEEE INTERNATIONAL CONFERENCE ON INTELLIGENT TRANSPORTATION ENGINEERING (ICITE), 2017, : 30 - 35