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Development of semi-active damper for heavy off-road military vehicles.

机译:开发用于重型越野军车的半主动减震器。

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摘要

Most conventional automotive vehicle suspensions utilize passive shock absorbers to provide damping of the vehicle suspension. These shock absorbers convert mechanical energy in the suspension to heat which is then dissipated. Passive shock absorbers rely on mechanical means to control this energy dissipation and do not receive energy other than that provided by the movement of the suspension.; Semi-active dampers or shock absorbers use an actively powered valve, flow restriction, or other technology which allows the damping of the shock absorber to be changed and externally controlled. Mechanical energy is not added to the damper but the dissipation of that energy can be controlled by a powered actuator.; Semi-active damper technology allows vehicle suspension systems to be designed which can provide greater improvements in the areas of vehicle ride quality and handling and stability than can be provided by traditional passive hydraulic shock absorbers. Several different technologies have been identified or developed for use in semi-active dampers such as magnetorheological fluids and solenoid valves. The application of semi-active suspension technology to heavy off-road military vehicles has the potential to vastly improve the performance of such vehicles.; The objective of this thesis is to evaluate appropriate technologies for use in semiactive suspensions of heavy off-road military vehicles, and to examine the development and testing of new valve designs created for that purpose.; In this work a prototype solenoid valve actuated semi-active twin-tube shock absorber with a piston mounted solenoid valve is developed and tested. The damping capabilities of the prototype are measured and the semi-active piston valve is instrumented in order to measure its performance during varying forcing conditions.; A parametric mathematical model of the twin-tube shock absorber is developed which includes fluid compressibility and a poppet style foot valve. This model is numerically simulated and matched to the results of the prototype damper tests.; A second semi-active damper concept is developed which uses a piloted magnetorheological fluid actuated valve installed in the shock absorber piston. The unique magnetorheological fluid actuator is analyzed and optimized using finite element method software to simulate its magnetic field. A prototype actuator is constructed and tested to measure the generated force. The test results are compared to the predicted force obtained using the magnetic simulation.; The test results show that the solenoid valve design is able to provide greater control over damping than the MR actuator. The solenoid valve damper provides between 20 and 30 kN of damping force at 1 m/s with a solenoid providing up to 230 N of force whereas the MR actuator prototype was only able to provide up to 30 N of force in dynamic testing.
机译:大多数常规的汽车悬架利用被动减震器来提供对车辆悬架的阻尼。这些减震器将悬架中的机械能转化为热量,然后将其散发。被动减震器依靠机械手段来控制这种能量耗散,并且除了悬挂系统的运动所提供的能量外,不吸收其他能量。半主动减震器或减震器使用主动阀,流量限制器或其他技术来改变减震器的阻尼并从外部进行控制。机械能量未添加到风门,但是该能量的耗散可以由电动执行器控制。半主动减震器技术允许设计车辆悬架系统,与传统的被动液压减震器相比,该系统可以在车辆行驶质量,操纵和稳定性方面提供更大的改进。已经确定或开发了用于半主动阻尼器的几种不同技术,例如磁流变液和电磁阀。半主动悬架技术在重型越野军车上的应用有可能极大地改善这类车辆的性能。本文的目的是评估适用于重型越野军车半主动悬架的合适技术,并检验为此目的而开发的新阀门设计的开发和测试。在这项工作中,开发并测试了原型电磁阀驱动的半主动双管减震器,该减震器带有安装在活塞上的电磁阀。测量样机的阻尼能力,并测量半主动活塞阀,以测量其在变化的受力条件下的性能。建立了双管减震器的参数数学模型,该模型包括流体可压缩性和提动式底脚阀。对该模型进行了数值模拟,并与原型阻尼器测试的结果相匹配。第二个半主动阻尼器的概念得到发展,它使用了安装在减震器活塞中的先导磁流变流体致动阀。使用有限元方法软件对独特的磁流变流体执行器进行分析和优化,以模拟其磁场。构建并测试了原型执行器,以测量所产生的力。将测试结果与使用磁模拟获得的预测力进行比较。测试结果表明,电磁阀设计比MR执行器能够更好地控制阻尼。电磁阀阻尼器以1 m / s的速度提供20到30 kN的阻尼力,而电磁阀提供的最大力为230 N,而MR执行器原型只能在动态测试中提供最大30 N的力。

著录项

  • 作者

    Gillespie, Thomas.;

  • 作者单位

    University of Waterloo (Canada).;

  • 授予单位 University of Waterloo (Canada).;
  • 学科 Engineering Mechanical.
  • 学位 M.A.Sc.
  • 年度 2006
  • 页码 140 p.
  • 总页数 140
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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