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Dual Power Hardware-in-the-Loop Simulation of Energy Storage Systems for Shipboard Applications

机译:舰船应用储能系统的双电源硬件在环仿真

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摘要

Energy storage will play an increasingly important role in future surface combatants as specialized loads are introduced on shipboard power systems. These loads may present short-term power consumption and ramps in power that exceed conventional plant capabilities and limits specified in present military standards. This paper discusses experimentation with a Flywheel Energy Storage System (FESS) and the capacitor-based Adaptive Power System (APS) developed at the Johns Hopkins University Applied Physics Laboratory (JHU/APL) to explore the synergistic effects of this combination on the dynamics imposed on the AC source, as well as the resulting bus transients seen by the loads, during pulsating load events. The emphasis of this paper is the novel approach of using two Hardware-In-the-Loop (HIL) simulation interfaces for simultaneously testing two different hardware technologies that originally were not designed with a common interface in mind. Interface stability, including effects of the HIL interfaces, is also evaluated to ensure system stability will be maintained when the full system is integrated. Selected results will illustrate the positive impacts of using multiple energy storage systems to temper the impact of extreme dynamic loads on the power plant. This includes examination of the bus impedance of the full system to gain insight on the system performance as a function of each subsystem's characteristics. Moreover, the results demonstrate the benefit of the APS to significantly reduce the required DC link capacitance of the FESS, thereby reducing overall size and weight of the total energy storage required in the system.
机译:随着舰载动力系统的特殊负载,能量存储将在未来的水面战斗机中扮演越来越重要的角色。这些负载可能会导致短期功耗和功率上升,其超出常规工厂的能力和当前军事标准中规定的限制。本文讨论了由约翰·霍普金斯大学应用物理实验室(JHU / APL)开发的飞轮储能系统(FESS)和基于电容器的自适应功率系统(APS)的实验,以探索这种组合对施加的动力学的协同作用。在脉动负载事件期间,交流电源上的电压,以及负载所产生的母线瞬变。本文的重点是一种新颖的方法,该方法使用两个硬件在环(HIL)仿真接口来同时测试最初设计时没有考虑通用接口的两种不同硬件技术。还评估了接口稳定性,包括HIL接口的影响,以确保在集成整个系统时将保持系统稳定性。选定的结果将说明使用多个储能系统来缓和极端动态负载对发电厂的影响。这包括检查整个系统的总线阻抗,以了解作为每个子系统特性的系统性能。此外,结果证明了APS的好处是可以显着减少FESS所需的DC链路电容,从而减小系统所需的总能量存储的整体尺寸和重量。

著录项

  • 来源
    《Naval engineers journal》 |2018年第2期|119-128|共10页
  • 作者单位

    FSU Ctr Adv Power Syst, Tallahassee, FL 32310 USA;

    FSU Ctr Adv Power Syst, Tallahassee, FL 32310 USA;

    FSU Ctr Adv Power Syst, Tallahassee, FL 32310 USA;

    FSU Ctr Adv Power Syst, Tallahassee, FL 32310 USA;

    JHU Appl Phys Lab, Laurel, MD USA;

    JHU Appl Phys Lab, Laurel, MD USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 01:41:10

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