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Hydrodynamic and Structural Response Modeling of a Prototype Floating Membrane Reservoir System for Pumped Storage Hydropower

机译:泵送储存水电站原型浮动膜储层系统的流体动力学与结构响应建模

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摘要

Hydrodynamic, computational fluid dynamics, and finite-element modeling were performed for a novel floating membrane reservoir system design for closed-loop pumped storage hydropower application. The conceptual design, which is now protected under an invention disclosure with a patent pending, offers a potential low-cost, low-impact solution to address the high costs, long investment return periods, and environmental disruptions encountered with traditional pumped storage development while offering modularity to enable replication at many locations. Prior to physical tests on a prototype, this paper documents the response analysis and modeling completed to simulate hydraulic and structural performance under different reservoir deployment and alignment arrangements, evaluate system stability, and refine the conceptual design. The results indicate that the excitation frequency from vortex shedding is at least an order of magnitude lower than the water sloshing frequencies in the reservoir, the structural natural frequency of the entire reservoir, and the vibrational frequencies of the side membranes, although excitation frequencies from other sources could cause mechanical resonance under certain conditions. To control destabilizing effects and prevent rocking motion and vibration, the authors conclude that the design could be improved by including a support structure around the floating reservoir, which could also provide floating-membrane containment, improve safety, and facilitate vertical reservoir movement. These conclusions, based on hydrodynamic and structural response modeling, help define specifications for upcoming full-scale prototype construction, deployment, and testing. This study demonstrates standard modeling technique application to an innovative design for which similar applications have not been previously evaluated. The refined design is capable of improving the scalability and feasibility of pumped storage hydropower in the United States and will be considered for commercialization following prototype testing. (c) 2019 American Society of Civil Engineers.
机译:对闭环泵送储存水电应用的新型浮动膜储层系统设计进行了流体动力学,计算流体动力学和有限元建模。概念设计现在受到申请的专利披露,提供了潜在的低成本,低冲击解决方案,以解决具有传统抽水存储开发的高成本,长的投资回报期和环境中断,同时提供模块化可以在许多位置启用复制。在原型的物理测试之前,本文记录了响应分析和建模,以模拟不同的水库部署和对准布置下的液压和结构性,评价系统稳定性,并优化概念设计。结果表明,来自涡流的激发频率比储存器中的水晃动频率低,整个储存器的结构固有频率和侧膜的振动频率,虽然来自其他副膜的振荡频率,但是来源可能在某些条件下引起机械共振。为了控制稳定的效果和防止摇摆运动和振动,作者得出结论,通过在浮动贮存器周围包括支撑结构,可以提高设计,这也可以提供浮动膜遏制,提高安全性,并促进垂直储层运动。这些结论基于流体动力学和结构响应建模,有助于定义即将到来的全面原型建设,部署和测试的规范。本研究表明,标准建模技术应用于创新设计,以前未以前评估了类似应用的应用。精致的设计能够提高美国泵送储存水电的可扩展性和可行性,并将考虑在原型测试后进行商业化。 (c)2019年美国土木工程学会。

著录项

  • 来源
    《Journal of Hydraulic Engineering》 |2019年第9期|04019032.1-04019032.13|共13页
  • 作者单位

    Oak Ridge Natl Lab Div Environm Sci POB 2008 Oak Ridge TN 37831 USA;

    Liberty Univ Sch Engn Lynchburg VA 24515 USA;

    Liberty Univ Sch Engn Lynchburg VA 24515 USA;

    Oak Ridge Natl Lab Div Environm Sci POB 2008 Oak Ridge TN 37831 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 21:39:24

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