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基于Vxworks的PCI-RapidIO桥驱动设计

基于Vxworks的PCI-RapidIO桥驱动设计
基于Vxworks的PCI-RapidIO桥驱动设计

解放CA1092货车双级主减速器驱动桥毕业设计

摘要 本次设计的题目是中型货车驱动桥设计。驱动桥一般由主减速器、差速器、半轴及桥壳四部分组成,其基本功用是增大由传动轴或直接由变速器传来的转矩,将转矩分配给左、右车轮,并使左、右驱动车轮具有汽车行驶运动学所要求的差速功能;此外,还要承受作用于路面和车架或车厢之间的铅垂力、纵向力和横向力。 本文首先论述了驱动桥的总体结构,在分析驱动桥各部分结构型式、发展过程,及其以往形式的优缺点的基础上,确定了总体设计方案:采用整体式驱动桥,主减速器的减速型式采用双级减速器,主减速器齿轮采用螺旋锥齿轮,差速器采用普通对称式圆锥行星齿轮差速器,半轴型式采用全浮式,桥壳采用铸造整体式桥壳。在本次设计中,主要完成了双级减速器、圆锥行星齿轮差速器、全浮式半轴、桥壳的设计工作。 关键词:驱动桥;主减速器;全浮式半轴;桥壳;差速器

目录 摘要............................................................................................ ................ (2) 第1章绪论 (4) 1.1 课题研究的目的和意义 (4) 1.2 课题研究现状 (4) 1.2.1主减速器型式及其现状 (5) 1.2.差速器形式发展现状............................................................................................................. .4 1.2.半轴形式发展现状............................................................ .................. . (5) 1.2.桥壳形式发展现状......................................................... .................. . (5) 1.3 设计主要内容 (9) 第2章设计方案的确定 (7) 2.1 基本参数的选择 (7) 2.2 主减速比的计算 (7) 2.3 主减速器结构方案的确定 (8) 2.4差速器的选择 (8) 2.5半轴型式的确定 (9) 2.6桥壳型式的确定 (9) 2.7本章小结 (9) 第3章主减速器的基本参数选择与设计计算 (13) 3.1 主减速齿轮计算载荷的计算 (13) 3.2 主减速器齿轮参数的选择 (14) 3.3 主减速器螺旋锥齿轮的几何尺寸计算与强度计算 (15) 3.3.1 主减速器螺旋锥齿轮的几何尺寸计算 (15) 3.3.2 主减速器螺旋锥齿轮的强度计算 (16) 3.4 主减速器齿轮的材料及热处理 (19) 3.5 第二级斜齿圆柱齿轮基本参数的选择 (19) 3.6 第二级斜齿圆柱齿轮校核 (21) 3.7 主减速器轴承的计算 (19) 3.8 主减速器的润滑 (22) 3.9 本章小结 (26) 第4章差速器设计 (27) 4.1 差速器的作用 (27) 4.2 对称式圆锥行星齿轮差速器 (27) 4.2.1 差速器齿轮的基本参数选择 (28)

驱动桥差速器设计说明书

摘要 汽车驱动桥是汽车的主要部件之一,其基本的功用是增大由传动轴或直接由变速器传来的转矩,再将转矩分配给左右驱动车轮,并使左右驱动车轮具有汽车行驶运动所要求的差速功能。汽车差速器位于驱动桥内部,为满足汽车转弯时内外侧车轮或两驱动桥直接以不同角度旋转,并传递扭矩的需求,在传递扭矩时应能够根据行驶的环境自动分配扭矩,提高了汽车通过性。其质量,性能的好坏直接影响整车的安全性,经济性、舒适性、可靠性。 随着汽车技术的成熟,轻型车的不断普及,人们根据差速器使用目的的不同,设计出多种类型差速器。与国外相比,我国的车用差速器开发设计不论在技术上,还是在成本控制上都存在不小的差距,尤其是目前兴起的三维软件设计方面,缺乏独立开发与创新能力,这样就造成设计手段落后,新产品上市周期慢,材料品质和工艺加工水平也存在很多弱点。 本文认真地分析了国内外驱动桥中差速器设计的现状及发展趋势,在论述汽车驱动桥的基本原理和运行机理的基础上,提炼出了在差速器设计中应掌握的满足汽车行驶的平顺性和通过性、降噪技术的应用及零件的标准化、部件的通用化、产品的系列化等关键技术;阐述了汽车差速器的基本原理并进行了系统分析;根据经济、适用、舒适、安全可靠的设计原则和分析比较,确定了轻型车差速器总成及半轴的结构型式;轻型车差速器的结构设计强度计算运用了理论分析成果;最后运用CATIA软件对汽车差速器进行建模设计,提升了设计水平,缩短了开发周期,提高了产品质量,设计完全合理,达到了预期的目标。 关键词:驱动桥;差速器;半轴;结构设计;

Automobile driving axle is one of the main components of cars, its basic function is increased by the transmission shaft or directly by coming from torque, again will torque distribution to drive wheels, and make about driving wheel has about vehicle movement required differential function. Auto differential drive to meet internal, located in car wheel or when turning inside and outside two axles directly with different point of view, and transfer the rotating torque transmission torque in demand, according to the environment should be driving torque, improve the automatic assignment car through sex. Its quality, performance will have a direct impact on the security of the vehicle, economy, comfort and reliability. As car technology maturity, the increasing popularity of small, people of different purposes according to differential, the design gives a variety of types differential. Compared with foreign countries, China's automotive differential development design whether in technology, or in the cost control there are large gap, especially at present the rise of 3d software design, lack of independent development and innovation ability, thus causing design means backward, new products listed cycle slow, materials quality and craft processing level also has many weaknesses. This paper conscientiously analyzes the differential drive axle design at home and abroad in the present situation and development trend of automobile driven axle, this basic principle and operation mechanism, carry on the basis of the differential practiced a meet the design should be mastered in smooth and automobile driving through sexual, noise reduction technology application and parts of standardization, parts of generalization, serialization of products, and other key technology; Expounds the basic principle and automotive differential system analysis; According to economic, applicable, comfortable, safe and reliable design principles and analysis comparison, determine the small differential assembly and half shaft structure type; Small differential structure design strength calculation using theoretical analysis results; Finally using CATIA software modeling design of automotive differential, promoted design level, shorten the development cycle, improve the product quality, design completely reasonable, can achieve the desired goals. Key words:Differential mechanism;Differential gear;Planetary gear;Semiaxis;

驱动桥外文翻译

驱动桥设计 随着汽车对安全、节能、环保的不断重视,汽车后桥作为整车的一个关键部件,其产品的质量对整车的安全使用及整车性能的影响是非常大的,因而对汽车后桥进行有效的优化设计计算是非常必要的。 驱动桥处于动力传动系的末端,其基本功能是增大由传动轴或变速器传来的转矩,并将动力合理地分配给左、右驱动轮,另外还承受作用于路面和车架或车身之间的垂直力力和横向力。驱动桥一般由主减速器、差速器、车轮传动装置和驱动桥壳等组成。 驱动桥作为汽车四大总成之一,它的性能的好坏直接影响整车性能,而对于载重汽车显得尤为重要。驱动桥设计应当满足如下基本要求: 1、符合现代汽车设计的一般理论。 2、外形尺寸要小,保证有必要的离地间隙。 3、合适的主减速比,以保证汽车的动力性和燃料经济性。 4、在各种转速和载荷下具有高的传动效率。 5、在保证足够的强度、刚度条件下,力求质量小,结构简单,加工工艺性 好,制造容易,拆装,调整方便。 6、与悬架导向机构运动协调,对于转向驱动桥,还应与转向机构运动协调。智能电子技术在汽车上得以推广使得汽车在安全行驶和其它功能更上一层楼。通过各种传感器实现自动驾驶。除些之外智能汽车装备有多种传感器能充分感知交通设施及环境的信息并能随时判断车辆及驾驶员是否处于危险之中,具备自主寻路、导航、避撞、不停车收费等功能。有效提高运输过程中的安全,减少驾驶员的操纵疲劳度,提高乘客的舒适度。当然蓄电池是电动汽车的关键,电动汽车用的蓄电池主要有:铅酸蓄电池、镍镉蓄电池、钠硫蓄电池、钠硫蓄电池、锂电池、锌—空气电池、飞轮电池、燃料电池和太阳能电池等。在诸多种电池中,燃料电池是迄今为止最有希望解决汽车能源短缺问题的动力源。燃料电池具有高效无污染的特性,不同于其他蓄电池,其不需要充电,只要外部不断地供给燃料,就能连续稳定地发电。燃料电池汽车(FCEV)具有可与内燃机汽车媲美的动力性能,在排放、燃油经济性方面明显优于内燃机车辆。

江淮帅铃汽车驱动桥设计说明书

第1章绪论 1.1 本课题的目的和意义 本课题是对江淮帅铃货车驱动桥的结构设计。通过此次毕业设计,训练学生的实际工作能力。掌握汽车零部件设计与生产技术是开发我国自主品牌汽车产品的重要基础,汽车驱动桥时传动系统的重要部件。设计汽车驱动桥,需要综合考虑多方面的因素。设计时需要综合运用所学的知识,熟悉实际设计过程,提高设计能力。驱动桥的设计,由驱动桥的结构组成、功用、工作特点及设计要求讲起,详细地分析了驱动桥总成的结构形式及布置方法;全面介绍了驱动桥车轮的传动装置和桥壳的各种结构形式与设计计算方法。 汽车驱动桥位于传动系的末端。其基本功用首先是增扭,降速,改变转矩的传递方向,即增大由传动轴或直接从变速器传来的转矩,并将转矩合理的分配给左右驱动车轮;其次,驱动桥还要承受作用于路面或车身之间的垂直力,纵向力和横向力,以及制动力矩和反作用力矩等。驱动桥一般由主减速器,差速器,车轮传动装置和桥壳组成。 对于重型载货汽车来说,要传递的转矩较乘用车和客车,以及轻型商用车都要大得多,以便能够以较低的成本运输较多的货物,所以选择功率较大的发动机,这就对传动系统有较高的要求,而驱动桥在传动系统中起着举足轻重的作用。汽车驱动桥是汽车的重大总成,承载着汽车的满载簧荷重及地面经车轮、车架及承载式车身经悬架给予的铅垂力、纵向力、横向力及其力矩,以及冲击载荷;驱动桥还传递着传动系中的最大转矩,桥壳还承受着反作用力矩。汽车的经济性日益成为人们关心的话题,这

不仅仅只对乘用车,对于载货汽车,提高其燃油经济性也是各商用车生产商来提高其产品市场竞争力的一个法宝,因为重型载货汽车所采用的发动机都是大功率,大转矩的,装载质量在四吨以上的载货汽车的发动机,最大功率在99KW,最大转矩也在350N·m 以上,百公里油耗是一般都在30升左右。为了降低油耗,不仅要在发动机的环节上节油,而且也需要从传动系中减少能量的损失。这就必须在发动机的动力输出之后,在从发动机—传动轴—驱动桥这一动力输送环节中寻找减少能量在传递的过 程中的损失。驱动桥是将动力转化为能量的最终执行者。因此,在发动机相同的情况下,采用性能优良且与发动机匹配性比较高的驱动桥便成了有效节油的措施之一。所以设计新型的驱动桥成为新的课题。 目前我国正在大力发展汽车产业,采用后轮驱动汽车的平衡性和操作性都将会有很大的提高。后轮驱动的汽车加速时,牵引力将不会由前轮发出,所以在加速转弯时,司机就会感到有更大的横向握持力,操作性能变好。维修费用低也是后轮驱动的一个优点,尽管由于构造和车型的不同,这种费用将会有很大的差别。 1.2 驱动桥的分类 1.2.1 非断开式驱动桥 普通非断开式驱动桥,由于结构简单、造价低廉、工作可靠,广泛用在各种家庭乘用车、客车和公共汽车上,在多数的越野汽车和部分轿车上也采用这种结构。他们的具体结构、特别是桥壳结构虽然各不相同,但是有一个共同特点,即桥壳是一根支承在左右驱动车轮上的刚性空心梁,齿轮及半轴等传动部件安装在其中。这时整个驱动桥、驱动车轮及部分传动轴均属于簧下质量,汽车簧下质量较大,这是它的一个缺点。 驱动桥的轮廓尺寸主要取决于主减速器的型式。在汽车轮胎尺寸和驱动桥下的最

汽车设计课设驱动桥设计

汽车设计课程设计说明书 题目:BJ130驱动桥部分设计验算与校核 姓名: 学号: 专业名称:车辆工程 指导教师: 目录 一、课程设计任务书 (1) 二、总体结构设计 (2) 三、主减速器部分设计 (2) 1、主减速器齿轮计算载荷的确定 (2) 2、锥齿轮主要参数选择 (4) 3、主减速器强度计算 (5) 四、差速器部分设计 (6) 1、差速器主参数选择 (6) 2、差速器齿轮强度计算 (7) 五、半轴部分设计 (8) 1、半轴计算转矩Tφ及杆部直径 (8) 2、受最大牵引力时强度计算 (9) 3、制动时强度计算 (9) 4、半轴花键计算 (9) 六、驱动桥壳设计 (10) 1、桥壳的静弯曲应力计算 (10) 2、在不平路面冲击载荷作用下的桥壳强度计算 (11) 3、汽车以最大牵引力行驶时的桥壳强度计算 (11) 4、汽车紧急制动时的桥壳强度计算 (12)

5、汽车受最大侧向力时的桥壳强度计算 (12) 七、参考书目 (14) 八、课程设计感想 (15)

一、课程设计任务书 1、题目 《BJ130驱动桥部分设计验算与校核》 2、设计内容及要求 (1)主减速器部分包括:主减速器齿轮的受载情况;锥齿轮主要参数选择;主减速器强度计算;齿轮的弯曲强度、接触强度计算。 (2)差速器:齿轮的主要参数;差速器齿轮强度的校核;行星齿轮齿数和半轴齿轮齿数的确定。 (3)半轴部分强度计算:当受最大牵引力时的强度;制动时强度计算。 (4)驱动桥强度计算:①桥壳的静弯曲应力 ②不平路载下的桥壳强度 ③最大牵引力时的桥壳强度 ④紧急制动时的桥壳强度 ⑤最大侧向力时的桥壳强度 3、主要技术参数 轴距L=2800mm 轴荷分配:满载时前后轴载1340/2735(kg) 发动机最大功率:80ps n:3800-4000n/min 发动机最大转矩17.5kg﹒m n:2200-2500n/min 传动比:i1=7.00; i0=5.833 轮毂总成和制动器总成的总重:g k=274kg

驱动桥5000字外文翻译文献

As the bearing cage rotates, read the value 7. indicated on the scale. Preload normally is specified as torque re-8. quired to rotate the pinion bearing cage, so take a reading only when the cage is rotating. Starting torque will give a false reading. To calculate the preload torque, measure the 9. diameter of the bearing cage where the cord was wound. Divide this dimension in half to get the radius. 10. U se the following procedure to calculate the bearing preload torque:Standard. Pull (lb) 3 radius (inches) 5 preload (lb-in.)or Preload (lb-in.) 3 0.113 (a conversion constant) 5 preload (N .m) Install the yoke, flat washer, and nut. Tighten 6. the nut snugly. Tap the end of the input shaft lightly to seat the bearings. Measure the input shaft endplay again with 7. the dial indicator. If endplay is still incorrect, repeat steps 3 through 7. With the endplay correct, seal the shim pack 8. to prevent lube leakage. Then torque the i nput shaft nut and cover capscrews to the correct value. 24.5 A XLE ADJUSTMENTS AND CHECKS This section introduces the differential carrier adjust-ments, checks, and tests that the truck technician must be capable of performing; some have been r eferred to previously in the text. For the most part, the procedures described here are general in nature. The truck technician should refer to OEM service l iterature for specific procedures.PINION BEARING PRELOAD Most differential carriers are provided with a press-fit outer bearing on the drive pinion gear. Some older rear drive axles use an outer bearing, which slips over the drive pinion. The procedures for adjusting both types follow. Press-Fit Method Adjustment To adjust the pinion bearing preload using the press-fit method, use the following procedure: Assemble the pinion bearing cage, bearings, 1. spacer, and spacer washer (without drive pin-ion or oil seal). Center the bearing spacer and spacer washer between the two bearing cones (Figure 24–49). When a new gear set or pinion bearings are 2. used, select a nominal size spacer based on OEM specifications. If original parts are used, use a spacer removed during disassembly of the drive. Place the drive pinion and cage assembly in a 3. press, with the gear teeth toward the bottom.Apply and hold the press load to the pinion 4. bearing. As pressure is applied, rotate the bearing cage several times so that the bear-ings make normal contact. While pressure is held against the assembly, wind 5. a cord around the bearing cage several times.Attach a spring scale to the end of the cord 6. (Figure 24–50). Pull the cord with the scale on a horizontal line. FIGURE 24–49 Assembly of the pinion bearing cage. (Courtesy of Dana Corporation) FIGURE 24–50 Cage in press to check bearing p reload. Sleeve must apply

汽车车辆类驱动桥的设计外文文献翻译、外文翻译、中英文翻译

附录I Drive axle powertrain at the end of their basic function is to increase the transmission came from the drive shaft or torque, and a reasonable distribution of power to the left and right wheel, in addition to acting on the road and under the frame or body legislation between the vertical, longitudinal and lateral force. General from the main drive axle reducer, differential, gear wheels and drive axle housings and other components. The design of the Drive axle: Drive axle should be designed to meet the basic requirements are as follows: 1. Select the main reduction ratio should be able to ensure the car has the best power and fuel economy. 2. Smaller size, to ensure that the necessary ground clearance. 3. Gear and other pieces of the work of a smooth transmission,and small noise. 4. In a variety of speed and load with a high transmission efficiency. 5. In ensuring adequate strength and stiffness conditions, should strive for the quality of small, especially under the mass-spring should be as small as possible in order to improve vehicle ride comfort. 6. And suspension movement-oriented coordination of steering drive axle, but also with the coordination of steering movement. 7. The structure of simple, good processing, manufacturing, easy disassembly, to facilitate adjustment. Drive axle classification -1-

车辆工程毕业设计14CA1040轻型货车驱动桥设计

本科学生毕业设计 CA1040轻型货车驱动桥设计 学院名称:汽车与交通工程学院 专业班级:车辆工程 学生姓名: 指导教师: 职称:实验师

摘要 驱动桥位于传动系末端,其基本功用是增矩、降速,承受作用于路面和车架或车身之间的作用力。它的性能好坏直接影响整车性能,而对于载重汽车显得尤为重要。轻型货车在商用货运汽车生产中占有很大的比重,为满足目前当前载货汽车的高速度、高效率、高效益的需要,必须要搭配一个高效、可靠的驱动桥。因此设计出结构简单、工作可靠、造价低廉的驱动桥,能大大降低整车生产的总成本,推动汽车经济的发展,并且通过对汽车驱动桥的学习和设计实践,可以更好的学习并掌握现代汽车设计与机械设计的全面知识和技能,所以本课题设计一款结构优良的轻型货车驱动桥具有一定的实际意义。 驱动桥设计应主要保证汽车在给定的条件下具有最佳的动力性和燃油经济性。本设计根据给定的参数,按照传统设计方法并参考同类型车确定汽车总体参数,再确定主减速器、差速器、半轴和桥壳的结构类型,最后进行参数设计并对主减速器主、从动齿轮、半轴齿轮和行星齿轮进行强度以及寿命的校核。驱动桥设计过程中基本保证结构合理,符合实际应用,总成及零部件的设计能尽量满足零件的标准化、部件的通用化和产品的系列化及汽车变型的要求,修理、保养方便,机件工艺性好,制造容易。 关键词:驱动桥;单级主减速器;差速器;半轴;桥壳

ABSTRACT Drive axle is at the end of the power train, and its basic function is increasing the torque and reducing the speed, bearing the force between the road and the frame or body. Its performance will have a direct impact on automobile performance .Because using the big power engine with the big driving torque satisfied the need of high speed,heavy-loaded,high efficiency,high benefit today’ heavy truck,must exploiting the high driven efficiency single reduction final drive axle is becoming the heavy truck’ developing tendency. Because using the big power engine with the big driving torque satisfied the need of high speed, heavy-loaded, high efficiency, high benefit today` truck, must exploiting the high driven efficiency single reduction final drive axle is becoming the trucks’ developing tendency. Design a simple, reliable, low cost of the drive axle, can greatly reduce the total cost of vehicle production, and promote the economic development of automobile and automotive drive axle of the study and design practice, can better learn and to master modern automotive design and mechanical design of a comprehensive knowledge and skills, so the title of the fine structure of the design of a pickup vehicle drive axle has a certain practical significance. According to the design parameters given ,firstly determine the overall vehicle parameters in accordance with the traditional design methods and reference the same vehicle parameters, then identify the main reducer, differential, axle and axle housing structure type, finally design the parameters of the main gear, the driven gear of the final drive, axle gears and spiral bevel gear and check the strength and life of them. In design process of the drive axle, we should ensure a reasonable structure, practical applications, the design of assembly and parts as much as possible meeting requirements of the standardization of parts, components and products’ universality and the serialization and change , convenience of repair and maintenance, good mechanical technology, being easy to manufacture. Key words: Drive axle; Single reduction final drive; Differential; Axle; Drive Axle housing

商用车驱动桥设计说明书

商用车驱动桥设计 摘要 驱动桥作为汽车四大总成之一,它的性能的好坏直接影响整车性能。当采用大功率发动机输出大的转矩以满足目前载重汽车的快速、重载的高效率的需要时,必须要搭配一个高效、可靠的驱动桥。本文参照传统驱动桥的设计参数;然后参考类似驱动桥的结构,确定出总体设计方案;最后对主,从动锥齿轮,差速器圆锥行星齿轮,半轴齿轮,全浮式半轴和整体式桥壳的强度进行校核以及对支撑轴承进行了寿命校核。本文还是采用传统的锥齿轮作为商用车的主减速器。 关键词:商用车,驱动桥,主减速器,螺旋锥齿轮

THE DESIGNING OF BUSINESS AUTOMOBILE REAR DRIVE AXLES ABSTRACT Drive axle is one of automobile four important assemblies. Its performance directly influence on the entire automobile, especially for the heavy truck. When using the big power engine with the big driving torque to satisfy the need of high speed, heavy-loaded, high efficiency, high benefit. Today heavy truck must exploit the high driven efficiency single reduction final drive axle. Becoming the heavy traditional designing method of the drive axle: first, make up the main parts structure and the key designing parameters; then reference to the similar driving axle structure, decide the entire designing project; finally check the strength of the axle drive bevel pinion, bevel gear wheel, the differential planetary pinion, differential side gear, full-floating axle shaft and the banjo axle housing, and the life expection of carrier bearing. The designing takes spiral bevel gear as the gear type of business automobile’ final drive. KEY WORDS: business automobile, drive axle, final drive , spiral bevel gear

驱动桥设计_毕业设计论文

驱动桥设计 摘要 现代工程车辆技术追求高效节能、高舒适性和高安全性等目标。前一项目标与环境保护密切相关,是当代全球性热门话题,后两项目标是车辆朝着高性能化方向发展必须研究和解决的重要课题。转向系统的高性能化是指其能够根据车辆的运行状况和驾驶员的要求实行多目标控制,以获得良好的转向轻便性、较好的路感和较快的响应性。 汽车转向系统是影响汽车操纵稳定性、行驶安全性和驾驶舒适性的关键部分。在追求高效节能\高舒适性和高安全性的今天,电控液压助力转向系统作为一种新的汽车动力转向系统,以其节能、环保、更佳的操纵特性和转向路感,成为动力转向技术研究的焦点。 本文通过查阅相关的文献,介绍了EHPS系统的结构组成和工作原理,在参考现有车型的结构数据的基础上,设计计算转向系的主要参数,确定转向器的结构参数和动力转向部分结构参数,在分析其助力特性的基础上,设计合理的助力特性曲线,并通过MATLAB作出助力特性图,同时提出一种基于车速和转向盘转动角速度的控制策略,根据EHPS系统的特点,通过AMESim和Simulink建立整个系统的模型。通过联合仿真可以得出EHPS系统比HPS系统能提供更好的助力特性和转向路感。 关键词:EHPS;助力特性;结构设计;AMESim与Simulink建模 ABSTRACT

High effective energy saving,high comfort performance and high security are thegoals of contemporary.The first goal closely concerns with environment protecting,is also the popular topic around the world.The last two goals are the important subjects must be researched and solved in making automobile high performance.To make the steering system high performance is that the system can carry out mufti-goals control according to the vehicle states and drive requirements to acquire the steering handiness,better road feeling,better anti-interfering performance and faster response. The motor turing system is the essential part which affects the automobile operation stability,the travel security and the driving comfortablet.Nowadays we pursue highly effective energy conservation,the high comforrtableness and high secure.The electrically hydraulic power steering (EHPS) taking as one kind of new automobile power steering system,it takes the power steering engineering research the focal point by its energy conservation,the environmental protection,the better handling characteristic and changes the road feeling. According to consult relevant literature, this paper introduces the structure and the principle of EHPS, bases the further study of EHPS on the structural parameter date of a certain type of the light lorry, calculates the main parameters of steering system and power steering and devises the hydraulic circuit of EHPS. On the basis of the analysis of EHPS, this paper designs a reasonable EHPS power curve, including plotting the curve with the technique of MATLAB. Taking into account the steady steering and emergency steering, it advances the control strategy plan based on speed, steering wheel angle velocity, the steering wheel torque. Based on the structural characteristics of EHPS, this paper proposed AMESIM and SIMULINK joint simulation of the entire EHPS system. Accord to the result we can know that EHPS can offer more secure handle, more saving energy and way feeling. Key words:EHPS;Characteristics of power; Structure design; AMESim and Simulink Modeling

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