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An investigation of vibration isolation systems using active, semiactive and tunable passive mechanisms with applications to vehicle suspensions.

机译:使用主动,半主动和可调被动机制的振动隔离系统的研究,并应用于车辆悬架。

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摘要

In this dissertation, an analytical investigation on active, semi-active and passive vibration control mechanisms is presented in order to achieve improved shock and vibration isolation of mechanical systems, especially ground vehicle applications.; A hybrid active vibration isolation system, incorporating an electro-magnetic force generator along with passive damping and spring elements, is mathematically modeled based on fundamental physical laws and taking into account the generator dynamics. Complete vibration isolation characteristics of the hybrid active control system are evaluated for various feedback variables and control schemes, using numerical simulations. Influence of the force generator dynamics on vibration isolation performance is illustrated through the simulation results.; A concept of tunable pressure limiting modulation is proposed in hydraulic damper systems. A hydraulic orifice damper is modified by using the proposed tunable pressure limiting modulation to achieve variable damping in vibration isolation systems, without requiring any external energy source, sophisticated control devices and feedback instrumentation that are essential for active and semi-active isolators. The fluid flow equations are employed to develop the nonlinear mathematical model of the hydraulic damper, incorporating the fluid and mechanical compliance, and the dynamics of the pressure limiting mechanism. The computer simulation reveals that the shock and vibration isolation performance of the tunable pressure limited hydraulic damper systems is comparable to that of the semi-active 'on-off' vibration control systems.; A generalized harmonic linearization technique, based on a principle of energy similarity of dynamic elements, is proposed to derive equivalent linear representations of both nonlinear damping and spring elements, in the frequency domain. An analysis of the nonlinear in-plane vehicle model, with air-springs, orifice damping and pressure limiting modulation due to tunable hydraulic shock absorbers, is carried out to establish the stochastic response to random road inputs in terms of power spectral density, and to illustrate the improved vehicle ride performance due to tunable shock absorbers.; An interconnected hydro-pneumatic suspension with tunable pressure limiting mechanism is presented to achieve improved vehicle ride and handling performance. Analysis of a roll plane model of a vehicle employing the tunable interconnected suspension shows that the connections of fluid flow within the interconnected suspension provide an enhanced static roll stability; while the tunable pressure limiting modulation between the strut and the accumulator of each suspension unit offers an improved vehicle ride performance.
机译:本文对主动,半主动和被动振动控制机制进行了分析研究,以期改善机械系统,特别是地面车辆应用的冲击和振动隔离。基于基本物理定律并考虑了发电机的动力学,对包含电磁力发生器以及被动阻尼和弹簧元件的混合主动隔振系统进行了数学建模。使用数值模拟,针对各种反馈变量和控制方案评估了混合动力主动控制系统的完整隔振特性。仿真结果说明了力发生器动力学对隔振性能的影响。在液压阻尼器系统中提出了可调压力限制调制的概念。通过使用建议的可调压力限制调制对液压节流孔阻尼器进行了修改,从而在隔振系统中实现了可变阻尼,而无需任何对有源和半有源隔离器必不可少的外部能源,复杂的控制设备和反馈仪表。流体流动方程式用于开发液压阻尼器的非线性数学模型,并结合了流体和机械柔量以及限压机构的动力学特性。计算机仿真表明,可调压力限制液压阻尼器系统的冲击和振动隔离性能可与半主动式“开-关”振动控制系统相媲美。提出了一种基于动态元素能量相似性原理的广义谐波线性化技术,以在频域中导出非线性阻尼和弹簧元素的等效线性表示。进行了非线性平面车辆模型的分析,该模型具有可调谐液压减震器的空气弹簧,节流孔阻尼和压力限制调制,以建立随机道路输入在功率谱密度方面的随机响应。展示了由于可调减震器带来的车辆行驶性能的改善。提出了一种具有可调压力限制机构的相互连接的油气悬架,以提高车辆的行驶和操纵性能。对采用可调互连悬架的车辆的侧倾平面模型的分析表明,互连悬架内的流体流的连接提供了增强的静态侧倾稳定性。同时,每个悬架单元的支柱和蓄能器之间的可调压力限制调制提供了改善的车辆行驶性能。

著录项

  • 作者

    Su, Hong.;

  • 作者单位

    Concordia University (Canada).;

  • 授予单位 Concordia University (Canada).;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 1990
  • 页码
  • 总页数
  • 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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