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Commande par mode glissant de paliers magnétiques actifs économes en énergie : une approche sans modèle

机译:节能有源电磁轴承的滑模控制:无模型方法

摘要

Abstract : Over the past three decades, various fields have witnessed a successful application of active magnetic bearing (AMB) systems. Their favorable features include supporting high-speed rotation, low power consumption, and rotor dynamics control. Although their losses are much lower than roller bearings, these losses could limit the operation in some applications such as flywheel energy storage systems and vacuum applications. Many researchers focused their efforts on boosting magnetic bearings energy efficiency via minimizing currents supplied to electromagnetic coils either by a software solution or a hardware solution. According to a previous study, we adopt the hardware solution in this thesis. More specifically, we investigate developing an efficient and yet simple control scheme for regulating a permanent magnet-biased active magnetic bearing system. The control objective here is to suppress the rotor vibrations and reduce the corresponding control currents as possible throughout a wide operating range. Although adopting the hardware approach could achieve an energy-efficient AMB, employing an advanced control scheme could achieve a further reduction in power consumption. Many advanced control techniques have been proposed in the literature to achieve a satisfactory performance. However, the complexity of the majority of control schemes and the potential requirement of powerful platform could discourage their application in practice. The motivation behind this work is to improve the closed-loop performance without the need to do model identification and following the conventional procedure for developing a model-based controller. Here, we propose applying the hybridization concept to exploit the classical PID control and some nonlinear control tools such as first- and second-order sliding mode control, high gain observer, backstepping, and adaptive techniques to develop efficient and practical control schemes. All developed control schemes in this thesis are digitally implemented and validated on the eZdsp F2812 control board. Therefore, the applicability of the proposed model-free techniques for practical application is demonstrated. Furthermore, some of the proposed control schemes successfully achieve a good compromise between the objectives of rotor vibration attenuation and control currents minimization over a wide operating range.
机译:摘要:在过去的三十年中,有源电磁轴承(AMB)系统在各个领域的成功应用。它们的有利功能包括支持高速旋转,低功耗和转子动力学控制。尽管它们的损耗远低于滚动轴承,但这些损耗可能会限制某些应用(例如飞轮储能系统和真空应用)的运行。许多研究人员致力于通过最小化软件解决方案或硬件解决方案提供给电磁线圈的电流来提高电磁轴承的能效。根据先前的研究,本文采用了硬件解决方案。更具体地说,我们研究开发一种有效且简单的控制方案来调节永磁偏置主动式磁轴承系统。在此,控制目的是在较大的工作范围内抑制转子振动并尽可能减小相应的控制电流。尽管采用硬件方法可以实现节能的AMB,但采用先进的控制方案可以进一步降低功耗。在文献中已经提出了许多先进的控制技术来达到令人满意的性能。然而,大多数控制方案的复杂性和强大平台的潜在需求可能会阻碍其在实践中的应用。这项工作的动机是在无需进行模型识别以及遵循开发基于模型的控制器的常规过程的情况下提高闭环性能。在这里,我们提出使用混合概念来开发经典的PID控制和一些非线性控制工具,例如一阶和二阶滑模控制,高增益观测器,反推以及自适应技术,以开发高效实用的控制方案。本文中所有已开发的控制方案均在eZdsp F2812控制板上进行了数字化实现和验证。因此,证明了所提出的无模型技术在实际应用中的适用性。此外,一些提出的控制方案成功地实现了转子振动衰减的目标和在较宽的工作范围内使控制电流最小化之间的良好折衷。

著录项

  • 作者

    Kandil Mohamed Salah;

  • 作者单位
  • 年度 2016
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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