Research of the vacuum brake booster working process

N.V Sklyarov, A.I. Shapovalov, P.V. Chernenko, A.V Korniev, A.A. Kashkanov, V.A. Kashkanov, V. Kucheruk
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Abstract

The creation of a laboratory installation was carried out with an aim to ensure the study of the working processes and characteristics of vacuum boosters as a part of hydraulic brake drives for vehicles with a gross weight of up to 3.5 tons for civilian usage, and armored vehicles with a gross weight of up to 8.5 tons designated for service and combat missions. Theoretical researches in this direction have been previously carried out by a number of scientists of the Department of “Automobiles” named after prof. Gredeskul A.B. in Kharkiv National Automobile and Road University, the results of which have been highlighted in a number of scientific papers. Comparison of the results of theoretical studies with the experimental ones, received on the laboratory setup and suggested in this paper, according to the experimental method described in the article, using the created electronic signal processing complex and sensor unit, made it possible to establish a discrepancy between theoretical and experimental studies within 6%. This complex for experimental research was created for the first time, thus allowing to obtain the results that confirm the theoretical studies of the vacuum boosters of the brake drive of cars, as well as revealed a number of dependencies between the weight and overall parameters of the under research unit, along with the number of functional relationships between the structural components of the vacuum boosters, which enables to significantly optimize its design.
真空制动助力器工作过程研究
实验室设备的建立是为了确保对真空助推器的工作过程和特性进行研究,真空助推器是液压制动驱动装置的一部分,用于总重量不超过 3.5 吨的民用车辆和总重量不超过 8.5 吨的服役和作战装甲车辆。以 Gredeskul A.B. 教授的名字命名的 "汽车 "系的多位科学家此前已进行了这方面的理论研究。哈尔科夫国立汽车与公路大学以 Gredeskul A.B. 教授命名的 "汽车 "系的多位科学家先前已进行了这方面的理论研究,其成果已在多篇科学论文中作了重点介绍。根据文章中描述的实验方法,利用创建的电子信号处理综合体和传感器装置,将实验室设备上获得的理论研究结果与本文建议的实验结果进行比较,结果表明理论研究与实验研究之间的差异不超过 6%。这种用于实验研究的复合装置是首次创建,因此能够获得证实汽车制动驱动真空助力器理论研究的结果,并揭示了所研究装置的重量和整体参数之间的一些相关性,以及真空助力器结构组件之间的一些功能关系,从而能够显著优化其设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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