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Frequency response analysis for the determination of thermal conductivity and water transport in MOF adsorbent coatings for heat transformation

机译:频率响应分析,用于测定MOF吸附剂涂料中的热导率和水运输的热变换

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摘要

In this paper we focus on the differentiation and quantification of different heat and mass transfer phenomena governing the overall sorption dynamics, for the example of a binder-based aluminium fumarate (Alfum) coating for heat transformation applications with water as refrigerant. The methodological emphasis is on extending the volume swing frequency response (FR) method to problems with strong heat transfer limitation. The heat and mass transfer parameters are mapped to the sample temperature and loading state, in order to be able to reproduce the strongly non-linear behaviour exhibited under application conditions. Based on a model with discretised heat transfer and linear driving force (LDF)-simplified micropore diffusion, the thermal conductivity of the samples was identified as about 0.07 W/(m K), and the LDF time constant between 0.1 and 3 s~(-1) at 40°C with a U-shaped loading dependency and an Arrhenius-type temperature dependency. The method is validated by comparing a measured large temperature jump experiment to the results from a non-linear simulation informed solely by these parameters obtained from the new FR-based method.
机译:在本文中,我们专注于控制整体吸附动力学的不同热量和传质现象的分化和定量,用于将粘合剂的铝富马酸铝(Alfum)涂层的实例用于加热作为制冷剂的热变换应用。方法强调在强大的传热限制的情况下将体积摆频响应(FR)方法延伸到延伸到问题。热量和传质参数映射到样品温度和加载状态,以便能够再现在施用条件下表现出的强烈非线性行为。基于具有离散的传热和线性驱动力(LDF)的模型 - 纤细的微孔扩散,将样品的导热率鉴定为约0.07W /(k),并且LDF时间常数在0.1和3 s之间〜( -1)在40°C下,具有U形负载依赖性和Arrhenius型温度依赖性。通过将测量的大型温度跳转实验与来自基于新的FR基方法获得的这些参数的非线性模拟的测量的大温度跳转实验进行比较来验证。

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