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Theoretical investigation on heat leakage distribution between vapor and liquid in liquid hydrogen tanks

机译:液氢罐中汽液间热泄漏分布的理论研究

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As a key factor affecting thermal behaviors of liquid hydrogen (LH2) tanks, heat leakage plays an important role in accurate prediction of pressure build-up for safe storage and transportation of LH2. Uniform heat flux between vapor and liquid in LH2 tanks is widely adopted as thermal boundary condition in predicting pressure build-up process. However, a distribution of heat flux between vapor and liquid was observed during the self -pressurization process in the experimental test. In light of this, an analytically theoret-ical model of revealing the energy exchange process among the vapor, liquid and inner wall is proposed to investigate the heat leakage distribution ratio (HDR) between vapor and liquid in LH2 tanks. The feasibility of the model is validated by the experimental results from NASA. In the whole self-pressurization process of 25,000 s, HDR reduces from 0.803 to 0.235 under a liquid fill ratio of 90 and a total heat leakage of 71.3 W. The results show that the existence of inner wall and different thermal properties between the vapor and liquid make the heat leakage flux non-uniformly distributed into the vapor and liquid. And the geometric structure of tank, thermal properties and initial states of the vapor and liquid have a significant effect on HDR. When coupling the model with thermal multi-zone model, the relative error in pressure prediction is reduced by 61.8 against experimental results. Benefiting from the coupled model, the relative error in pressure prediction caused by the uniform heat flux boundary condition reduces from 90.16 to 8.15. The present work establishes theoretical foundation on analyzing heat leakage distribution between the vapor and liquid for LH2 tanks, and provides useful guidance on modifying boundary conditions in accurately predicting thermal behaviors of LH2 tanks.(c) 2023 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:作为影响液氢(LH2)储罐热行为的关键因素,漏热在准确预测LH2安全储存和运输的压力积聚方面发挥着重要作用。LH2储罐中蒸汽和液体之间的均匀热通量被广泛用作预测压力积聚过程的热边界条件。然而,在实验试验中,在自加压过程中观察到蒸汽和液体之间的热通量分布。有鉴于此,该文提出一种揭示气、液和内壁间能量交换过程的解析理论模型,以研究LH2储罐中汽液之间的热漏分布比(HDR)。NASA的实验结果验证了该模型的可行性。在25,000 s的整个自加压过程中,在充液率为90%和总漏热量为71.3 W的情况下,HDR从0.803降至0.235。结果表明,内壁的存在和蒸汽与液体之间的不同热性能使得漏热通量不均匀地分布到蒸汽和液体中。罐体的几何结构、热性质以及蒸气和液体的初始状态对HDR有显著影响。将模型与热多区模型耦合时,压力预测的相对误差比实验结果降低了61.8%。受益于耦合模型,均匀热流边界条件引起的压力预测相对误差从90.16%降低到8.15%。本工作为分析LH2储罐的蒸汽和液体之间的热泄漏分布奠定了理论基础,并为修改边界条件以准确预测LH2储罐的热行为提供了有益的指导。(c) 2023 Hydrogen Energy Publications LLC. 由 Elsevier Ltd. 出版。保留所有权利。

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