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611.
介绍了国内干混砂浆运输车的产品结构形式及主要结构部件,并介绍了前顶式干混砂浆运输车的设计思路、关键部件罐体、管路及液压系统的设计,分析了设计时各主要总成的注意要点。 相似文献
612.
圆锥指数法(WES)是一种用来快速判断车辆通过性的方法。江苏沿海滩涂风力资源丰富,但滩涂土壤松软,普通车辆难以行驶,为保证风电开发施工设备在江苏沿海滩涂安全行驶通过而不发生陷车,三一电气有限责任公司自行设计了一种圆锥指数仪,用以测量滩涂土壤圆锥指数,判断车辆通过性。对响水滩涂T4风机位附近土壤的圆锥指数进行测量,得到了该区域扰动和非扰动两种情况下的土壤圆锥指数曲线,并对滩涂履带运输车的车辆圆锥指数进行了理论计算,根据试验和理论计算的结果进行了滩涂履带运输车实地行驶试验。试验表明,该型运输车在此区域通过性良好。该试验也为评估其它各种车辆在该地区的行驶通过性提供了数据参考。 相似文献
613.
阐述采用MSC1210Y3单片机控制汽车电动助力转向系统的工作原理、硬软件开发,对电机的双H桥驱动电路硬件以及车速和发动机转速测量软件等进行重点介绍。 相似文献
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《Vehicle System Dynamics: International Journal of Vehicle Mechanics and Mobility》2012,50(12):1967-1979
Dynamic game theory brings together different features that are keys to many situations in control design: optimisation behaviour, the presence of multiple agents/players, enduring consequences of decisions and robustness with respect to variability in the environment, etc. In the presented methodology, vehicle stability is represented by a cooperative dynamic/difference game such that its two agents (players), namely the driver and the direct yaw controller (DYC), are working together to provide more stability to the vehicle system. While the driver provides the steering wheel control, the DYC control algorithm is obtained by the Nash game theory to ensure optimal performance as well as robustness to disturbances. The common two-degrees-of-freedom vehicle-handling performance model is put into discrete form to develop the game equations of motion. To evaluate the developed control algorithm, CarSim with its built-in nonlinear vehicle model along with the Pacejka tire model is used. The control algorithm is evaluated for a lane change manoeuvre, and the optimal set of steering angle and corrective yaw moment is calculated and fed to the test vehicle. Simulation results show that the optimal preview control algorithm can significantly reduce lateral velocity, yaw rate, and roll angle, which all contribute to enhancing vehicle stability. 相似文献
618.
《Vehicle System Dynamics: International Journal of Vehicle Mechanics and Mobility》2012,50(4):539-561
In this paper, vehicle stability control and fuel economy for a 4-wheel-drive hybrid vehicle are investigated. The integrated controller is designed within three layers. The first layer determines the total yaw moment and total lateral force made by using an optimal controller method to follow the desired dynamic behaviour of a vehicle. The second layer determines optimum tyre force distribution in order to optimise tyre usage and find out how the tyres should share longitudinal and lateral forces to achieve a target vehicle response under the assumption that all four wheels can be independently steered, driven, and braked. In the third layer, the active steering, wheel slip, and electrical motor torque controllers are designed. In the front axle, internal combustion engine (ICE) is coupled to an electric motor (EM). The control strategy has to determine the power distribution between ICE and EM to minimise fuel consumption and allowing the vehicle to be charge sustaining. Finally, simulations performed in MATLAB/SIMULINK environment show that the proposed structure could enhance the vehicle stability and fuel economy in different manoeuvres. 相似文献
619.
《Vehicle System Dynamics: International Journal of Vehicle Mechanics and Mobility》2012,50(10):1229-1252
The paper derives analytical solutions for the global optimum of the ride comfort and tyre grip performance measures for a quarter-car vehicle model optimised both individually and in combination. The solutions are derived for six simple suspension networks comprising one or two springs, one damper and possibly one inerter. The solutions are functions of four vehicle parameters: the sprung mass, the unsprung mass, the tyre stiffness and the static stiffness, of the suspension. 相似文献
620.
《Vehicle System Dynamics: International Journal of Vehicle Mechanics and Mobility》2012,50(5):547-565
In this paper, a new method is presented for estimating the current sprung mass inertial parameters of a vehicle, such as the mass, pitch and roll mass moments of inertia, and lateral and longitudinal centre of gravity locations. The method measures the sprung mass response when the vehicle is driven over an unknown and unmeasured random road profile. From these measurements, the equivalent free-decay responses are extracted and modal analysis techniques used to estimate the sprung mass natural frequencies, damping ratios and mode shapes. This information is combined with a simplified vehicle estimation model, least squares analysis and known equivalent stiffness parameters to estimate the vehicles’ inertial parameters. The results obtained from several simulation examples show that estimates of the inertial parameters generally have small relative errors. 相似文献