外文翻译--汽车ABS.doc

汽车ABS系统及控制系统设计【6张图纸】【优秀】

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汽车ABS系统及控制系统设计

84页 13000字数+说明书+任务书+外文翻译+6张CAD图纸【详情如下】

A0-ABS总电路图.dwg

A0-ABS总装图.dwg

A1-制动主缸与真空助力器.dwg

A1-制动器安装图.dwg

A1-制动液压系统.dwg

A3-制动盘.dwg

任务书.doc

参考文献.doc

外文翻译--汽车ABS.doc

摘要.doc

汽车ABS系统及控制系统设计说明书.doc

目    录

1 防抱死制动系统概述1

1.1  ABS的功能1

1.2  防抱死制动系统的发展历史2

1.3  防抱死制动系统的发展趋势3

1.4  国内ABS系统研究的理论状态和具有代表的ABS产品公司5

2 防抱死制动系统基本原理7

2.1  制动时汽车的运动7

2.1.1 制动时汽车受力分析7

2.1.2 车轮抱死时汽车运动情况8

2.2  滑移率定义10

2.3  滑移率与附着系数关系10

2.4  制动时车轮运动方程12

2.5  采用防抱死制动的必要性13

2.6  防抱死制动系统的基本工作原理14

3 防抱死制动系统硬件设计18

3.1  防抱死制动系统的布置形式与组成18

3.1.1防抱死制动系统的布置形式18

3.1.2防抱死制动系统的基本组成21

3.2  80C196KC最小系统23

3.2.1 CPU简介24

3.2.2 时钟电路设计28

3.3  防抱死制动系统轮速传感器选择29

3.3.1霍尔传感器的设计32

3.3.2霍尔开关电路的选择32

3.3.3传感器齿盘的设计34

3.4  防抱死制动调压系统工作过程935

3.5  电源设计39

3.6  信号输入电路设计39

3.7  电磁阀驱动电路的设计40

3.8  泵电机驱动电路的设计43

3.9  ABS系统报警LED灯设计44

3.10 EPROM和RAM的扩展45

3.11故障诊断硬件电路设计47

3.12硬件抗干扰设计48

3.13车轮制动器的选择52

4 防抱死制动系统软件设计54

4.1  控制方案和控制参数的选取55

4.2  控制参数及其计算56

4.2.1门限减速度的求取56

4.2.2门限加速度的求取58

4.2.3路面识别技术58

4.2.4车身参考速度的确定58

4.3  控制过程62

4.4  程序设计65

5 结论与展望67

5.1  研究工作总结67

5.2  防抱死制动系统发展方向67

参考文献70

英文翻译68

附录77

致谢84


摘  要

   ABS系统可以显著提高或改善汽车紧急制动时的操控性和稳定性,缩短了制动距离,是一种新型的汽车电子控制产品,并得到了越来越广泛的应用。

   本文以轿车为研究对象,展开对汽车ABS的研究。主要完成了以下的工作:

   通过对单个车轮时的受力分析确定了影响车轮附着系数的主要因素;

   通过比较电磁感应式轮速传感器和霍尔效应传感器的性能优缺点,采用并设计了霍尔效应式轮速传感器;

   通过对控制结构的分析设计了以INTEL公司生产的80C196KC单片机为核心的实时控制系统,包括信号输入电路、控制输出电路、驱动电路等硬件部分;

   经比较各种控制方案,确定了“逻辑门限制法”作为控制方案,并选用加速度和滑移率的组合作为控制参数。采用事件门限来计算车轮的转速。

   本文通过学习比较根据所学只是设计了ABS控制系统。从理论上实现了ABS的控制功能,完成了设计要求。在设计过程中对汽车制动理论和制动装置有了较为深入的了解,扩大了自己的知识面,自己解决问题的能力也得到了提高。

关键词:防抱死制动系统   电子控制单元   门限值滑移率   轮速传感器


内容简介:
第5页本科生毕业设计英文翻译:英文:ABS is in the present world the universal recognition enhances one of automobile secure effective actions, may enhance the automobile to apply the brake in the process operation stability and reduces the stopping distance. Automobile examination profession in recent years along with automobile manufacture technology and examination technology progress, also unceasingly grows strong, is playing the extremely vital role in the automobile movement control section dynamic surveillance automobile technology condition aspect. Specially along with our country highway construction and the path shipping industry rapid development, the road traffic security problem more and more is also prominent, the request further takes and strengthens the motor vehicle security technology condition examination to become the maintenance society stability an important topic. This article involves the ABS performance examination, is divided software and the hardware two parts, complements one another completes the examination together. Equipped the ABS automobile to carry on applies the brake the effect, the ABS performance appraisal and the analysis. Computer based on Visual Basic translation development corresponding application procedure. The examination equipment sensor installs in has ABS in the experimental automobile automobile and debugs, completes goes each kind of information gathering to the vehicles. Software completes the data the collection and processing through the man-machine dialogue, realizes to this ABS performance examination and the appraisal.With increase of public interest in vehicle performance of safety, emission and ride comfort, vehicle electronic control systems have been developed in generations for the purpose of enhancing overall dynamic behaviors by almost all automakers and parts suppliers for decades. The development of anti-lock braking system (ABS), for improving vehicle braking and handling performance, involves mechanism electronics, hydraulics, hardware and software design and field test validation, and also requires repeated field tests on various road conditions, which are not easily available. In the very beginning of product development for vehicle ABS, a huge amount of vehicle field tests are required to investigate the control laws by a great number of repeated modifications. Moreover, even in most repeatable test environments, the road conditions for field tests cannot be controlled exactly to be identical. This inevitably leads to increase of both development cost and cycle time for ABS product. Because of fierce competition in todays business environment automotive industries suffer constantly increasing pressure of reduction in the development cost and time of new vehicle electronic products to meet the demands of market and urgent effective approaches to innovation of sophisticated vehicle electronic products.In this paper, a new rapid development method is proposed to develop and test ABS control system efficiently in laboratory environment, which covers the whole process of concept and function design, system modeling, off-line simulation, code automatic generation, real-time hardware-in-the-loop (HiL) simulation and final vehicle test validation. This economical ABS rapid development system characterized by a parallel rather than a serial development process is built up with friendly interface for implementation of the present development procedure. The rapid development system is based on HiL simulation technology, and function of sensors and actuators of the control system are replaced by software to simulate a field test environment in a controllable situation. Therefore, consistently reproducible test conditions are provided and critical safety issues may be solved in the stage of electronic product development prior to in-vehicle tests. The present rapid development system is successfully employed in the ABS control system development and the developed control algorithm has been validated in the vehicle filed test. According to the test measures, the control precise is close to that of the original one. It is proved that the method and the rapid development system are effective and efficient in the laboratory for reduction of expenses in field tests and development cycle.By considering a given precision requirement of real-time simulation, a vehicle system dynamic model for ABS should be presented as one important part of the ABS rapid development system, which has strong effect on the efficiency and effectiveness of the controller to be developed. The vehicle system dynamic model consists of vehicle model, neuro-tire model, brake model and hydraulic system model. The scheme for tests to build up and validate the subsystem model has been drawn up. Further, validation of the vehicle dynamic system model integrated by the sub-system model is made for the future research and the vehicle field test without the ABS has also been performed for verification of the precision of the built-up model under three conditions of pure braking, pure steering and braking while steering, respectively. By experimental results, it is shown that the vehicle system dynamic model for the ABS is correct and accurate, and can be used in the rapid development system.The design of the rapid development system and the way to realize its functions in the real-time simulation environment are presented. Under the direction of the proposed scheme, details of construction process of the ABS rapid development system including the software part, hardware part and interface part are discussed with consideration of its functions extended. The whole procedure of rapid development for ABS, i.e., off-line simulation, generic real-time simulation, real-time hardware-in-the-loop simulation and the validation of the vehicle field test, based on this powerful development system, is further investigated by the ABS rapid development system.Use is made of the present method and the ABS rapid development system for research and development of the ABS controller systematically. The practical algorithm for the ABS control variables is presented, and based on the previous research achievements, the ABS controller is designed and embedded seamlessly in the rapid development system. The development procedure has been carried on according to the proposed method, and the developed ABS controller is then applied in the vehicle field test for validation and further modification. The effectiveness of refined ABS control logic is proved to match the original product by results obtained in the vehicle field tests by the two controllers mentioned above.Furthermore, the most advanced vehicle control system, i.e., vehicle stability control system is studied by using the extended ABS rapid development system. By the direct yaw moment control by regulation of braking forces, the vehicle dynamic stability may be improved. The controller makes the vehicle follow the desired dynamic model by feed forward regulation of side slip angle and the state feedback of both the yaw rate and side slip angle. By taking the J-turn and single lane change at the vehicle high speed, for example, the control law has been implemented by the extended ABS rapid development system. By the HiL real-time simulation results it is shown that the present control law is quite effective and robust in keeping the vehicle to follow the desired trajectories quickly and exactly even some parameters changing in the system, such as steering angle input, road friction and vehicle speed. It is demonstrated by theoretical and experimental results that the ABS rapid development system is an extended powerful tool for the development of vehicle electronic controllers.The real-time hardware-in-the-loop simulation technology is becoming increasingly important as a tool for the development of high level and quality vehicle electronic controllers with a lot of complexities and sophistication. In this paper, a rapid and economical development method for the vehicle ABS control system is presented and the development procedure of the vehicle ABS leads to faster development and more efficient parameter adjustment in comparison with the in-vehicle development in the sense of development period and cost. The self-developed control algorithm is testified through vehicle field tests, which is significant and satisfactory vehicle braking performance is observed. Successful application of both the rapid development procedure and the rapid development system established for the ABS control system development has shown that the present research supplies an efficient way to develop vehicle electronic system for local automotive industries.中文: ABS是目前世界上普遍公认的提高汽车安全性的有效措施之一,可以提高汽车制动过程中的操纵稳定性和缩短制动距离。汽车检测行业在近年来随着汽车制造技术和检测技术的进步,也不断发展壮大,在汽车运行管理部门动态监督汽车技术状况方面发挥着极其重要的作用。特别是随着我国公路建设和道路运输业的飞速发展,道路交通安全问题也越来越突出,要求进一步重视和加强机动车辆安全技术状况检测已成为维护社会安定的一个重要课题。 本文涉及的ABS性能的检测,分软件和硬件两个部分,相辅相成共同完成检测。对一台装备了ABS的汽车进行制动效果,ABS性能的评价和分析。计算机基于Visual Basic编译开发相应的应用程序。检测装备传感器安装在一台具有ABS的实验汽车汽车里并调试,完成对车辆行驶各种信息的采集。软件完成数据的收集和处理通过人机对话,实现对该ABS性能的检测和评价。随着高等级公路的不断增加,车辆平均行驶速度有了显著提高。一方面车辆技术向高速性趋势发展,但另一方面汽车保有量的迅速增加导致了行车密度的加大。因此,人们对汽车行驶安全性提出越来越高的要求。作为主动安全系统代表车防抱死制动系统(ABS是在这种背景提出和发展起来的。这种先进的汽的气塾吻声盼”动系缤协矍卿是在这种背景提出和发展起来的。这种汽车电子控制制动可以提高车辆制动过程中的操纵稳定性和制动强度,改善车辆高速行驶的安全性,减少交通事故的发生。车辆ABS电子控制系统的开发,涉及到机械、电子、液压技术、计算机软硬件开发,以及试验技术等方面。在ABS开发的初期,由于受计算机技术发展的限制,一般靠大量道路试验来摸索控制规律,耗费大量人力、物力和财力,开发周期比较长。在市场激烈竞争和资金周转困难的情况下系统开发手段已经不能适应汽车工业,特别是汽车电子工业高速发展的需要。)针对国内汽车工业发展现状,本文系统提出了一种高质量、低成本、高效率的车辆电子控制系统快速开发方法,并建立了相应的快速开发系统。该开发系统可以最大限度的模拟实际车辆在各种工况下的运行状态,在实验室条件下实现对ABS控制系统的快速开发。整个开发过程包括控制系统概念设计,系统建模, 系统离线仿真,代码自动生成,硬件在环实时仿真以及最终产品试验。由于开发平台是统一的,各个开发阶段之间紧密相连,实现交互式的并行交流,大大克服了多余的中间环节,节约了时间和成本。 实时仿真需要反映问题本质的ABS动力学系统模型,它是车辆ABS决速开发系统中的最重要的组成部分,直接关系到控制器的开发效率和精度。ABS动力学系统模型主要包括整车模型,轮胎神经网络模型,液压系统模型以及制动器模型。对轮胎神经网络模型的深入研究,为获得轮胎神经网络模型学习样本的实车试验方案做出了贡献,并进行了相应的试验
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本文标题:汽车ABS系统及控制系统设计【6张图纸】【优秀】
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