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An improved method for measuring the compactness factor in a porous medium

机译:一种测量多孔介质中致密因子的改进方法

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The motivation for the research was to determine if reducing the thickness of the wire screens in a stacked-screen regenerator, thereby reducing the dead volume, could be accomplished without adversely affecting the compactness factor (j/sub H//f). During the course of this research an improved method for determining the heat transfer and pressure drop characteristics of a porous medium regenerator was developed. The focus of this paper is to describe this improved approach. The approach integrates experimental data/data reduction with a numerical model to study the flow of helium through a series of stacked, wire-screen regenerators of different geometries and a range of Reynolds numbers typically found in the operation of Stirling cycle cryocoolers. The experimental component is based on the classical transient, step-change temperature technique. The data reduction employs MATLAB to filter, parameterize, and assemble a data file for use with a FORTAN program. The numerical model is an explicit, finite-difference scheme for incompressible flow in a one-dimensional porous medium. The model includes: (1) the measured inlet temperature trace rather than an idealized one, (2) the important effect of energy exchange between the gas and the tube surrounding the regenerator matrix, and (3) an algorithm for choosing the heat transfer coefficient based on the "sponge effect delay time".
机译:该研究的动机是确定是否可以在不对紧凑度系数(j / sub H // f)产生不利影响的情况下,实现减少叠网式蓄热室中金属丝网的厚度,从而减少死体积。在研究过程中,开发了一种确定多孔介质蓄热器传热和压降特性的改进方法。本文的重点是描述这种改进的方法。该方法将实验数据/数据归约与数值模型相结合,以研究氦流通过一系列堆叠的,不同几何形状的线筛再生器以及在斯特林循环低温冷却器运行中通常会发现的一系列雷诺数。实验组件基于经典的瞬变,阶跃变化温度技术。数据精简采用MATLAB来过滤,参数化和组合一个数据文件,以供FORTAN程序使用。数值模型是一维多孔介质中不可压缩流动的显式有限差分方案。该模型包括:(1)测得的入口温度曲线而不是理想的曲线;(2)气体与围绕再生器矩阵的管之间的能量交换的重要作用;以及(3)选择传热系数的算法基于“海绵效应延迟时间”。

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