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Local digital control of power electronic converters in a dc microgrid based on a-priori derivation of switching surfaces.

机译:直流微电网中基于开关表面的先验推导的电力电子转换器的本地数字控制。

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摘要

In power electronic basedmicrogrids, the computational requirements needed to implement an optimized online control strategy can be prohibitive. The work presented in this dissertation proposes a generalized method of derivation of geometric manifolds in a dc microgrid that is based on the a-priori computation of the optimal reactions and trajectories for classes of events in a dc microgrid. The proposed states are the stored energies in all the energy storage elements of the dc microgrid and power flowing into them. It is anticipated that calculating a large enough set of dissimilar transient scenarios will also span many scenarios not specifically used to develop the surface. These geometric manifolds will then be used as reference surfaces in any type of controller, such as a sliding mode hysteretic controller.;The presence of switched power converters in microgrids involve different control actions for different system events. The control of the switch states of the converters is essential for steady state and transient operations. A digital memory look-up based controller that uses a hysteretic sliding mode control strategy is an effective technique to generate the proper switch states for the converters.;An example dcmicrogrid with three dc-dc boost converters and resistive loads is considered for this work. The geometric manifolds are successfully generated for transient events, such as step changes in the loads and the sources. The surfaces corresponding to a specific case of step change in the loads are then used as reference surfaces in an EEPROM for experimentally validating the control strategy. The required switch states corresponding to this specific transient scenario are programmed in the EEPROM as a memory table. This controls the switching of the dc-dc boost converters and drives the system states to the reference manifold. In this work, it is shown that this strategy effectively controls the system for a transient condition such as step changes in the loads for the example case.
机译:在基于电力电子的微电网中,实现优化的在线控制策略所需的计算要求可能会令人望而却步。本文提出的工作是基于直流微电网中事件类别的最优反应和轨迹的先验计算,提出了直流微电网中几何流形的一种通用推导方法。提议的状态是直流微电网的所有储能元件中存储的能量以及流入其中的功率。可以预期,计算足够多的不相似瞬态场景集也将涵盖许多未专门用于开发表面的场景。这些几何歧管随后将在任何类型的控制器(例如滑模滞回控制器)中用作参考面。微电网中开关功率转换器的存在涉及针对不同系统事件的不同控制动作。转换器的开关状态的控制对于稳态和瞬态操作至关重要。使用滞后滑模控制策略的基于数字内存查找的控制器是一种为转换器生成正确开关状态的有效技术。;本文以具有三个dc-dc升压转换器和阻性负载的dcmicrogrid为例。可以成功地为瞬态事件(例如,载荷和源中的阶跃变化)生成几何歧管。然后,将与负载中阶跃变化的特定情况相对应的表面用作EEPROM中的参考表面,以通过实验验证控制策略。对应于此特定瞬态情况的所需开关状态在EEPROM中作为存储表进行编程。这将控制dc-dc升压转换器的开关,并将系统状态驱动到参考歧管。在这项工作中,表明了该策略有效地控制了系统的瞬态条件,例如示例情况中负载的阶跃变化。

著录项

  • 作者

    Banerjee, Bibaswan.;

  • 作者单位

    Michigan Technological University.;

  • 授予单位 Michigan Technological University.;
  • 学科 Engineering Electronics and Electrical.;Energy.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 208 p.
  • 总页数 208
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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