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Development and Validation of a Numerical Thermal Simulation Model for Compressed Hydrogen Gas Storage Tanks

机译:压缩氢气储罐数值热仿真模型的开发与验证

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The fueling of hydrogen vehicles in three minutes enabling ranges above 500 km offers a significant advantage over other types of electric powertrain vehicles. SAE J2601, published in 2010, offers the first and only worldwide guideline to standardize fueling methodology. Due to the properties of hydrogen and compressed storage, each type and geometry tank heats up differently. Therefore, a hydrogen fueling methodology needs to take into account the range of storage anticipated from all automakers. This paper will describe a simulation tool developed in order to be able to assist in the development of a fueling procedure for GM; SAE J2601 team and the validation thereof. A reduced numerical simulation model has been developed that simulates the thermal response of a compressed gas storage tank operated under transient conditions. The stored gas is represented as a lumped mass with a spatially uniform temperature and pressure distribution inside the cylinder; a real gas model is employed to calculate the gas properties. The heat transfer through the cylinder wall is modeled by one-dimensional heat conduction in radial direction. The heat transfer coefficient from stored gas to the inner cylinder wall was provided by detailed three-dimensional transient computational fluid dynamics (CFD) simulations. These CFD simulations resolved all solid material layers as well the gas volume utilizing a real gas model. An instrumented tank with thermocouples inside both gas and cylinder walls was built and tested over a wide range of operating conditions to evaluate the quality of the simulation results. The test series included refueling and defueling at hydrogen gas flow rates ranging from 0.5 to 30 g/s at ambient temperatures from -40 to +40℃. The reduced simulation model predicts the average gas temperature evolution during refueling to an accuracy of approximately 1℃.
机译:与其他类型的动力总成车辆相比,在三分钟内为500公里以上的氢能车辆加油提供了显着的优势。 SAE J2601于2010年发布,为标准化加油方法提供了全球首个也是唯一的指南。由于氢气和压缩存储的特性,每种类型和几何形状的储罐加热的方式都不同。因此,加氢方法需要考虑所有汽车制造商预期的存储范围。本文将描述一种仿真工具,该仿真工具旨在协助开发通用汽车的加油程序。 SAE J2601团队及其验证。已经开发了简化的数值模拟模型,可以模拟在瞬态条件下运行的压缩气体储罐的热响应。所存储的气体表示为集总质量,在气缸内温度和压力分布在空间上均一。使用真实气体模型来计算气体性质。通过气缸壁的传热是通过径向的一维热传导来模拟的。通过详细的三维瞬态计算流体动力学(CFD)模拟,可以提供从存储气体到气缸内壁的传热系数。这些CFD模拟利用真实的气体模型解析了所有固体材料层以及气体体积。建造了一个在燃气和钢瓶内都装有热电偶的仪表罐,并在各种运行条件下进行了测试,以评估仿真结果的质量。测试系列包括在-40至+40℃的环境温度下以0.5至30 g / s的氢气流量进行加油和加油。简化的模拟模型可预测加油过程中平均气体温度的变化,其准确度约为1℃。

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