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首页> 外文期刊>High Temperature Material Processes >INVESTIGATING THE USE OF PHASE-CHANGE MATERIALS FOR TEMPERATURE CONTROL DURING FAST FILLING OF HYDROGEN CYLINDERS
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INVESTIGATING THE USE OF PHASE-CHANGE MATERIALS FOR TEMPERATURE CONTROL DURING FAST FILLING OF HYDROGEN CYLINDERS

机译:研究氢气缸快速填充期间使用相变材料进行温度控制

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This paper explores the use of phase-change materials in the process of fast filling of hydrogen cylinders in order to limit the rise in the gas temperature by enhancing heat transfer from the gas. It is necessary to limit the temperature rise because the structural performance of the cylinder materials can be degraded at higher temperatures. Initially, two computational approaches for modeling the fast filling of hydrogen cylinders are presented and validated; the first is an axisymmetric computational fluid dynamics simulation and the second is a single-zone approach with one-dimensional conjugate heat transfer through the cylinder walls. The models are applied to study fast filling of a hydrogen-powered passenger car. The predictions show that the minimum safe fill time for Type III cylinders with aluminum liners is generally shorter than for Type IV cylinders with plastic liners, for given ambient and precooling temperatures. Alternatively, Type III cylinders require less precooling for a given fill time. Introduction of a phase-change material heat sink is assessed as a means of reducing the fill time for Type IV cylinders. Paraffin-based phase-change materials are considered. The predictions show that the use of pure paraffin wax does not help in reducing the gas temperature due to its low thermal conductivity, however materials with improved thermal conductivity, for example, mixtures of paraffin wax and graphite, can facilitate reduced fill times. Without use of phase-change material it is not possible to reduce the fill time of Type IV cylinders below three minutes unless the gas supply is precooled. While the fill time can be reduced by precooling the gas supply, the phase-change material reduces the degree of precooling required for a given fill time by 10–20 K, and reduces the minimum theoretical power consumption of the cooler by 50–100%, depending on the ambient temperature.
机译:本文探讨了在快速填充氢气缸的过程中使用相变材料,以便通过增强来自气体的热传递来限制气体温度的上升。有必要限制温度上升,因为气缸材料的结构性能可以在较高温度下降解。最初,提出并验证了两个用于建模氢气缸的快速填充的计算方法;第一是轴对称计算流体动力学模拟,第二是通过气缸壁的一维共轭热传递的单个区域方法。该模型用于研究氢气动力乘用车的快速填充。预测表明,具有铝合金衬里的III型气缸的最小安全填充时间通常短于具有塑料衬垫的IV型气缸,用于给定环境和预冷温度。或者,III型汽缸对于给定的填充时间需要更少的预冷。将相变材料引入散热器被评估为减少IV型气缸填充时间的手段。考虑基于石蜡的相变材料。预测表明,使用纯石蜡蜡由于其低导热率而没有有助于降低气体温度,但是具有改善的导热率的材料,例如石蜡和石墨的混合物,可以促进减少填充时间。如果不使用相变材料,则不可能减少在三分钟以下的IV型气缸的填充时间,除非是气体供应预处理。虽然通过预冷的气体供应可以减少填充时间,但相变材料将给定填充时间所需的预冷却程度降低10-20k,并降低了冷却器的最小理论功率消耗50-100% ,取决于环境温度。

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