共查询到20条相似文献,搜索用时 187 毫秒
1.
2.
某车型分别装配固定式前悬置、液压式前悬置驾驶室,在沥青路面以50km/h、60km/h、70km/h的速度,沙石路面以20km/h的速度进行平顺性试验,使用FlexPro8.0软件对试验数据进行分析处理,得出两种驾驶室悬置对整车平顺性的影响。 相似文献
3.
基于ADAMS软件,建立了某全浮式驾驶室重型卡车的整车非线性多体动力学系统模型,模型考虑了驾驶室悬置、前后悬架、转向系统、动力总成、稳定杆及附件的详细几何结构参数,以及连接处的橡胶衬套、弹簧及阻尼器的非线性特性,轮胎采用Magic Formula模型。最后利用所设计的系统对该车进行了平顺性仿真,结果表明驾驶室悬置系统能够有效地改善整车平顺性。 相似文献
4.
基于ADAMS软件,建立了某全浮式驾驶室重型卡车的整车非线性多体动力学系统模型,模型考虑了驾驶室悬置、前后悬架、转向系统、动力总成、稳定杆及附件的详细几何结构参数,以及连接处的橡胶衬套、弹簧及阻尼器的非线性特性,轮胎采用Magic Formula模型。最后利用所设计的系统对该车进行了平顺性仿真,结果表明驾驶室悬置系统能够有效地改善整车平顺性。 相似文献
5.
笔者曾在此前多个文献中分别研究了半挂牵引车全浮式驾驶室悬置系统平顺性和悬置参数优化性问题,并进行了驾驶室悬置系统刚柔性限位能力分析,为全浮式驾驶室悬置系统设计提供了有意义的参考。驾驶室悬置弹簧在一些特殊情况下可能会存在失效的可能,项目委托企业需要了解在悬置系统失效的情况下驾驶室的安全性问题。因此,本文面向驾驶室安全性问题建立了全浮式驾驶室主体结构非线性有限元分析模型,并分别针对驾驶室后悬置失效、前悬置失效和模拟跌落冲击的情况,对驾驶室进行了动态仿真分析,得到了结构的应力和变形,分析了结构失效的部位和形式,并提出了改进设计建议,为企业掌握其产品的安全性能提供了所需的参考。 相似文献
6.
7.
8.
针对红岩金刚车全浮式驾驶室悬置系统的损坏和隔振差情况,对该车型进行道路试验,测试驾驶室的平顺性。并分析驾驶室悬置的隔振性能,最后通过对悬置的力学计算分析提出整改方案。建立三维模型进行装配可行性分析。并最终在整车上试装成功。此测试、分析、计算方法可供重型车驾驶室悬置工程师参考。 相似文献
9.
针对红岩金刚车全浮式驾驶室悬置系统的损坏和隔振差情况,对该车型进行道路试验,测试驾驶室的平顺性,并分析驾驶室悬置的隔振性能,最后通过对悬置的力学计算分析提出整改方案,建立三维模型进行装配可行性分析,并最终在整车上试装成功.此测试、分析、计算方法可供重型车驾驶室悬置工程师参考. 相似文献
10.
11.
12.
13.
14.
15.
Mohamed M. ELMADANY 《Vehicle System Dynamics: International Journal of Vehicle Mechanics and Mobility》1988,17(4):193-210
Stochastic optimal control and estimation theories are used to design an active suspension system for a cab ride in a tractor-semitrailer vehicle. A discrete-continuous vehicle model with eleven degrees of freedom is augmented by a stochastic road excitation model and a human perception of vibration shape filter. Both perfect measurement and estimated state cases are considered. The impact of the measurement noise on the design of the optimal controller is demonstrated. The performance of the optimally controlled system is compared with an optimal passive system. It is shown that significant improvements in ride comfort can be achieved through the use of actively controlled cab suspensions. 相似文献
16.
Leilei Zhao Yuewei Yu Fuxing Yang 《Vehicle System Dynamics: International Journal of Vehicle Mechanics and Mobility》2016,54(5):667-688
For the complex structure and vibration characteristics of coupling driver-seat-cab system of trucks, there is no damping optimisation theory for its suspensions at present, which seriously restricts the improvement of vehicle ride comfort. Thus, in this paper, the seat suspension was regarded as ‘the fifth suspension’ of cab, the ‘Five-suspensions’ for this system was proposed. Based on this, using the mechanism modelling method, a 4 degree-of-freedom coupling driver-seat-cab system model was presented; then, by the tested cab suspensions excitation and seat acceleration response, its parameters identification mathematical model was established. Based on this, taking optimal ride comfort as target, its damping collaborative optimisation mathematical model was built. Combining the tested signals and a simulation model with the mathematical models of parameters identification and damping collaborative optimisation, a complete flow of hybrid modelling and damping collaborative optimisation of Five-suspensions was presented. With a practical example of seat and cab system, the damping parameters were optimised and validated by simulation and bench test. The results show that the model and method proposed are correct and reliable, providing a valuable reference for the design of seat suspension and cab suspensions. 相似文献
17.
针对某车辆在行驶试验时,在车速57 km/h时出现低频5.4 Hz的驾驶室异常振动的现象,振动形式为俯仰振动,人体乘坐舒适性主观感觉很差。先后采用多种常规振动分析试验方法对该车进行振动分析,也未能分析出引起驾驶室异常振动的原因。最后对该车的车架和驾驶室进行模态试验分析,分析判断得出该车在行驶时驾驶室异常振动的频率与车架整体一阶弯曲时的接近,由此判断该车驾驶室异常振动是由车架整体-阶弯曲引起的。根据试验分析结果,文章最后对某车问题的改进方案综合评价后提出了合理的改进方案。 相似文献
18.
19.
For the complex structure and vibration characteristics of the seat and cab system of truck, there is no reliable theoretical model for the suspensions design at present, which seriously restricts the improvement of ride comfort. In this paper, a 4 degree-of-freedom seat-cab coupled system model was presented; using the mechanism modeling method, its vibration equations were built; then, by the tested cab suspensions excitations and seat acceleration response, its parameters identification mathematical model was established. Combining the tested signals and a simulation model with the parameters identification mathematical model, a new method of hybrid modeling of seat-cab coupled system was presented. With a practical example of seat and cab system, the parameters values were identified and validated by simulation and test. The results show that the model and method proposed are correct and reliable, and lay a good foundation for the optimal design of seat suspension and cab suspensions to improve ride comfort. 相似文献