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Unitized Regenerative Fuel Cell System Gas Storage/Radiator Development

机译:单位化再生燃料电池系统气体储存/散热器开发

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High energy density regenerative fuel cell systems that are used for energy storage require novel approaches to integrating components in order to preserve mass and volume. A lightweight Unitized Regenerative Fuel Cell (URFC) Energy Storage System concept is being developed at the NASA Glenn Research Center (GRC). This Unitized Regenerative Fuel Cell System (URFCS) minimizes mass by using the surface area of the hydrogen and oxygen storage tanks as radiating heat surfaces for overall thermal control of the system. The waste heat generated by the URFC stack during charging and discharging is transferred from the cell stack to the surface of each tank by loop heat pipes, which are coiled around each tank and covered with a thin layer of thermally conductive carbon composite. The thin layer of carbon composite acts as a fin structure that spreads the heat away from the heat pipe and across the entire tank surface. Two different-sized commercial grade composite tanks were constructed with integral heat pipes and tested in a thermal vacuum chamber to examine the feasibility of using the storage tanks as system radiators. The storage tank/radiators were subjected to different steady-state heat loads and varying heat load profiles. The surface emissivity and specific heat capacity of each tank were calculated. The results will be incorporated into a model that simulates the performance of similar radiators using lightweight, space-rated carbon composite tanks.
机译:用于储能的高能量密度再生燃料电池系统需要新颖的方法来整合部件以保持质量和体积。在NASA Glenn Research Center(GRC)开发了轻量级的整体再生燃料电池(URFC)储能系统概念。该单元化再生燃料电池系统(URFC)通过使用氢气和氧气储罐的表面积最小化质量,因为辐射热表面以进行系统的总热控制。 URFC叠层在充电和排出期间产生的废热通过环热管从电池堆转移到每个罐的表面,它们在每个罐周围盘绕并用薄的导热碳复合材料覆盖。薄层碳复合材料作为翅片结构,将热量远离热管和整个罐表面延伸。两个不同尺寸的商业级复合罐用整体热管构建,并在热真空室中进行测试,以检查使用储罐作为系统辐射器的可行性。储罐/辐射器经受不同的稳态热载和变化的热负荷轮廓。计算每个罐的表面发射率和特定热容量。结果将结合到模型中,模拟使用轻型,空间额定碳复合罐模拟类似散热器的性能。

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