Research on the automotive braking performance
DOI:
https://doi.org/10.54097/hset.v73i.12846Keywords:
Braking performance; disc brake; drum brake; friction material.Abstract
Due to the rise in vehicle usage, the number of car accidents and the population of injured users have been increasing by years. In order to reduce these problems, this paper has deeply investigated the current development of the optimization of vehicle braking performance. There are two main focuses in this paper - brake type and material selection. Firstly, in terms of brake type, the comparison of two different types, disc brake and drum brake, it is found that disc brakes are the better one regarding properties of wear rate, braking stability and performance at high temperatures. Moreover, the study on different materials shows ceramic composite materials show better performances than copper fiber materials, which are illustrated in the analysis of braking stability, abrasion resistance, and the impact on the environment. Overall, this study provides the deep understanding of the current automobile brake system, contributing to the future development of new generation of brake system.
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References
By 2027, the global car modification market will exceed 370 billion euros., 2022. http://www.evinchina.com/newsshow-984.html
Hsiao, Y.Y., Chang, W.C. and Chen, S.L. A mathematic model of thermoelectric module with applications on waste heat recovery from automobile engine. Energy, 2010, 35(3): 1447–1454.
Taylor, C.M. Automobile engine tribology—design considerations for efficiency and durability. Wear, 1998, 221(1): 1-8.
Mohanty, A.R. and Fatima, S. An overview of automobile noise and Vibration Control. Noise & Vibration Worldwide, 2013, 44(6): 10–19.
Li, Y., Lin, Z., Jiang, A., Chen, G. Use of high strength steel sheet for lightweight and Crashworthy Car Body. Materials & Design, 2003, 24(3): 177–182.
Gao, Y. and Ehsani, M. Electronic braking system of EV and Hev---integration of regenerative braking, automatic braking force control and ABS. SAE Technical Paper Series [Preprint]. 2001.
Development overview and technical trend of automobile brake system, 2022. http://www.chebrake.com/tech/2022/06/20/24278.html
https://en.wikipedia.org/wiki/Disc_brake#cite_note-hemmings1-3
Kinkaid, N.M., O’Reilly, O.M. and Papadopoulos, P. Automotive disc brake squeal. Journal of Sound and Vibration, 2003, 267(1): 105–166.
Irjmets.com www.irjmets.com @International Research Journal of Modernization in Engineering, technology and science [1702] UPI- the growth and its impact on digital transactions. International Research Journal of Modernization in Engineering Technology and Science [Preprint], 2022.
Drexler, C. and Leiter, R. ‘Brake Systems, an Overview. Encyclopedia of Automotive Engineering, 2014:. 1 – 22.
By A7N8X - Own work, CC BY-SA 4.0, https://commons.wikimedia.org/w/index.php?curid=41622256
Parker, R.C. and Newcomb, T.P. The performance and characteristics of the disc brake. SAE Technical Paper Series [Preprint], 1964.
Kumar N., Bharti A., Goyal H.S., Patel K.K. The evolution of brake friction materials: a review. Materials Physics and Mechanics, 2021, V. 47. N. 5. P.: 796-815.
Barros, L.Y., Polette, J.C., Neis, P.D., Ferreira, N.F., Peirera, C.H.S. Influence of copper on automotive brake performance. Wear, 2019a: 426–427. 741–749.
Österle, W., Prietzel, C., Kloß, Η., Δμιτριεω, Α.Ι. On the role of copper in brake friction materials. Tribology International, 2010, 43(12): 2317–2326.
Li, W., Yang, X., Wang, S., Xiao, J., Hou, Q. Research and prospect of ceramics for automotive disc-brakes. Ceramics International, 2021, 47(8): 10442–10463.
[18] Han, Y., Tian, X. and Yin, Y. Effects of ceramic fiber on the friction performance of automotive brake lining materials. Tribology Transactions, 2008, 51(6): 779–783.
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