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Development of hybrid electromagnetic dampers for vehicle suspension systems.

机译:开发用于车辆悬架系统的混合电磁阻尼器。

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摘要

Vehicle suspension systems have been extensively explored in the past decades, contributing to ride comfort, handling and safety improvements. The new generation of powertrain and propulsion systems, as a new trend in modern vehicles, poses significant challenges to suspension system design. Consequently, novel suspension concepts are required, not only to improve the vehicle's dynamic performance, but also to enhance the fuel economy by utilizing regeneration functions. However, the development of new-generation suspension systems necessitates advanced suspension components, such as springs and dampers. This Ph.D. thesis, on the development of hybrid electromagnetic dampers is an Ontario Centres of Excellence (OCE) collaborative project sponsored by Mechworks Systems Inc. The ultimate goal of this project is to conduct feasibility study of the development of electromagnetic dampers for automotive suspension system applications.;Hybrid electromagnetic dampers, which are proposed in this Ph.D. thesis, are potential solutions to high weight, high cost, and fail-safety issues of an active suspension system. The hybrid electromagnetic damper utilizes the high performance of an active electromagnetic damper with the reliability of passive dampers in a single package, offering a fail-safe damper while decreasing weight and cost. Two hybrid damper designs are proposed in this thesis. The first one operates based on hydraulic damping as a source of passive damping, while the second design employs the eddy current damping effect to provide the passive damping part of the system. It is demonstrated that the introduction of the passive damping can reduce power consumption and weight in an active automotive suspension system.;The ultimate objective of this thesis is to employ existing suspension system and damper design knowledge together with new ideas from electromagnetic theories to develop new electromagnetic dampers. At the same time, the development of eddy current dampers, as a potential source for passive damping element in the final hybrid design, is considered and thoroughly studied. For the very first time, the eddy current damping effect is introduced for the automotive suspension applications. The eddy current passive damper, as a stand-alone unit, is designed, modeled, fabricated and successfully tested. The feasibility of using passive eddy current dampers for automotive suspension applications is also studied. The structure of new passive eddy current dampers is straightforward, requiring no external power supply or any other electronic devices. Proposed novel eddy current dampers are oil-free and non-contact, offering high reliability and durability with their simplified design.;To achieve the defined goals, analytical modeling, numerical simulations, and lab-based experiments are conducted. A number of experimental test-beds are prepared for various experimental analyses on the fabricated prototypes as well as off-the-shelf dampers. Various prototypes, such as eddy current and electromagnetic dampers, are manufactured, and tested in frequency/time domains for verification of the derived analytical and numerical models, and for proof of concept. In addition, fluid and heat transfer analyses are done during the process of the feasibility study to ensure the durability and practical viability of the proposed hybrid electromagnetic dampers.;With new improvements in power electronics and magnetic materials, electromagnetic dampers are forging the way as a new technology in vibration isolation systems such as vehicle suspension systems. The use of electromagnetic dampers in active vehicle suspension systems has drawn considerable attention in the recent years, attributed to the fact that active suspension systems have superior performance in terms of ride comfort and road-handling performances compared to their passive and semi-active counterparts in automotive applications. As a response to the expanding demand for superior vehicle suspension systems, this thesis describes the design and development of a new electromagnetic damper as a customized linear permanent magnet actuator to be used in active suspension systems. The proposed electromagnetic damper has energy harvesting capability. Unlike commercial passive/semi-active dampers that convert the vibration kinetic energy into heat, the dissipated energy in electromagnetic dampers can be regenerated as useful electrical energy. Electromagnetic dampers are used in active suspension systems, where the damping coefficient is controlled rapidly and reliably through electrical manipulations. Although demonstrating superb performance, active suspensions still have some issues that must be overcome. They have high energy consumption, weight, and cost, and are not fail-safe in case of a power break-down. Since the introduction of the electromagnetic dampers, the challenge was to address these drawbacks.;The presented study is only a small portion of the growing research in this area, and it is hoped that the results obtained here will lead to the realization of a safer and more superior automotive suspension system.
机译:在过去的几十年中,对车辆悬架系统进行了广泛的研究,从而为乘坐舒适性,操控性和安全性做出了贡献。作为现代车辆的新趋势,新一代动力总成和推进系统对悬架系统设计提出了重大挑战。因此,需要新颖的悬架概念,不仅要改善车辆的动态性能,而且要通过利用再生功能来提高燃油经济性。但是,新一代悬架系统的发展需要先进的悬架组件,例如弹簧和减震器。本博士论文中,关于混合电磁阻尼器的开发是由Mechworks Systems Inc.发起的安大略省卓越中心(OCE)协作项目。该项目的最终目标是对开发用于汽车悬架系统的电磁阻尼器进行可行性研究。混合电磁阻尼器,在本博士中提出。论文是主动悬挂系统高重量,高成本和故障安全问题的潜在解决方案。混合型电磁阻尼器利用有源电磁阻尼器的高性能以及单个封装中无源阻尼器的可靠性,在降低重量和成本的同时,提供了故障安全型阻尼器。本文提出了两种混合阻尼器设计。第一种基于液压阻尼作为被动阻尼的来源进行操作,而第二种设计则利用涡流阻尼效应来提供系统的被动阻尼部分。证明了被动阻尼的引入可以减少主动式汽车悬架系统的功耗和重量。本论文的最终目标是利用现有的悬架系统和阻尼器设计知识以及电磁理论的新思想来开发新的系统。电磁阻尼器。同时,对涡流阻尼器的开发作为最终混合设计中无源阻尼元件的潜在来源也进行了考虑和深入研究。首次将涡流阻尼效应引入汽车悬架应用。涡流无源阻尼器作为独立单元,经过设计,建模,制造和成功测试。还研究了将无源涡流阻尼器用于汽车悬架应用的可行性。新型无源涡流阻尼器的结构简单明了,无需外部电源或任何其他电子设备。拟议的新型涡流阻尼器是无油且非接触式的,其简化的设计提供了高可靠性和耐用性。为了实现所定义的目标,进行了分析建模,数值模拟和基于实验室的实验。为制造的原型以及现成的阻尼器准备了许多实验测试台,用于各种实验分析。制造各种原型,例如涡流和电磁阻尼器,并在频/时域中进行测试,以验证派生的分析模型和数值模型,并进行概念验证。此外,在可行性研究过程中还进行了流体和传热分析,以确保所提出的混合电磁阻尼器的耐用性和实用性。随着功率电子学和磁性材料的新改进,电磁阻尼器正在逐步发展成为一种振动隔离系统(如车辆悬架系统)中的新技术。近年来,在主动车辆悬架系统中使用电磁阻尼器已经引起了广泛的关注,这是由于主动悬架系统在行驶舒适性和道路处理性能方面比被动和半主动系统要优越。汽车应用。为了满足对高级车辆悬架系统不断增长的需求,本文描述了一种新型电磁阻尼器的设计和开发,该电磁阻尼器是一种用于主动悬架系统的定制线性永磁执行器。所提出的电磁阻尼器具有能量收集能力。不同于将振动动能转化为热的商用无源/半有源阻尼器,电磁阻尼器中的耗散能量可以再生为有用的电能。电磁阻尼器用于主动悬架系统,在该系统中,阻尼系数可通过电气操作快速可靠地控制。尽管表现出了出色的性能,但主动悬挂仍然有一些必须克服的问题。它们具有很高的能耗,重量和成本,并且在发生电源故障时也不具备故障保护功能。自从引入电磁阻尼器,目前的挑战是解决这些问题。本研究只是该领域不断发展的研究的一小部分,希望这里获得的结果将导致实现更安全,更优越的汽车悬架系统。

著录项

  • 作者

    Ebrahimi, Babak.;

  • 作者单位

    University of Waterloo (Canada).;

  • 授予单位 University of Waterloo (Canada).;
  • 学科 Engineering Automotive.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 192 p.
  • 总页数 192
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:38:08

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