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首页> 外文期刊>International Journal of Heat and Mass Transfer >Self-Heating In A Bioreactor: Coupling Of Heat And Mass Transfer With Turbulent Convection
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Self-Heating In A Bioreactor: Coupling Of Heat And Mass Transfer With Turbulent Convection

机译:生物反应器中的自加热:传热和传质与湍流对流的耦合

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摘要

Thermochemical materials, particularly salt hydrates, have significant potential for use in thermal energy storage applications. When a salt hydrate is heated to a threshold temperature, a chemical reaction is initiated to dissociate it into its anhydrous form and water vapor. The anhydrous salt stores the sensible energy that was supplied for dehydration, which can be later extracted by allowing cooler water or water vapor to flow through the salt, transforming the stored energy into sensible heat. We model the heat release that occurs during a thermochemical hydration reaction using relations for mass and energy conservation, and for chemical kinetics and stoichiometry. A set of physically significant dimensionless parameters reduces the number of design variables. Through a robust sensitivity analysis, we identify those parameters from this group that more significantly influence the performance of the heat release process, namely a modified Damkdhler number, the thermochemical heat capacity, and the heat flux and flowrate. There is a strong nonlinear relationship between these parameters and the process efficiency. The optimization of the efficiency with respect to the parameters provides guidance for designing engineering solutions in terms of material selection and system properties.
机译:热化学材料,特别是盐水合物,在热能存储应用中具有巨大的潜力。当将水合物盐加热到阈值温度时,化学反应会启动,使其分解成无水形式和水蒸气。无水盐存储为脱水提供的显性能量,随后可通过使较冷的水或水蒸气流过盐来提取该能量,从而将存储的能量转换为显热。我们使用质量和能量守恒关系以及化学动力学和化学计量关系对热化学水合反应过程中发生的放热建模。一组物理上重要的无量纲参数减少了设计变量的数量。通过可靠的灵敏度分析,我们从该组中识别出那些对放热过程的性能有更大影响的参数,即修改的Damkdhler数,热化学热容以及热通量和流量。这些参数与过程效率之间存在很强的非线性关系。关于参数的效率优化为材料选择和系统特性方面的工程设计解决方案提供了指导。

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