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CFD analysis of a diaphragm free-piston Stirling cryocooler

机译:隔膜式无活塞斯特林制冷机的CFD分析

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This paper presents a Computational Fluid Dynamics (CFD) analysis of a novel free-piston Stirling cryocooler that uses a pair of metal diaphragms to seal and suspend the displacer. The diaphragms allow the displacer to move without rubbing or moving seals. When coupled to a metal diaphragm pressure wave generator, the system produces a complete Stirling cryocooler with no rubbing parts in the working gas space. Initial modelling of this concept using the Sage modelling tool indicated the potential for a useful cryocooler. A proof-of-concept prototype was constructed and achieved cryogenic temperatures. A second prototype was designed and constructed using the experience gained from the first. The prototype produced 29 W of cooling at 77 K and reached a no-load temperature of 56 K. The diaphragm's large diameter and short stroke produces a significant radial component to the oscillating flow fields inside the cryocooler which were not modelled in the one-dimensional analysis tool Sage that was used to design the prototypes. Compared with standard pistons, the diaphragm geometry increases the gas-to wall heat transfer due to the higher velocities and smaller hydraulic diameters. A Computational Fluid Dynamics (CFD) model of the cryocooler was constructed to understand the underlying fluid-dynamics and heat transfer mechanisms with the aim of further improving performance. The CFD modelling of the heat transfer in the radial flow fields created by the diaphragms shows the possibility of utilizing the flat geometry for heat transfer, reducing the need for, and the size of, expensive heat exchangers. This paper presents details of a CFD analysis used to model the flow and gas-to-wall heat transfer inside the second prototype cryocooler, including experimental validation of the CFD to produce a robust analysis. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文介绍了一种新颖的自由活塞式斯特林低温冷却器的计算流体动力学(CFD)分析,该冷却器使用一对金属膜片密封并悬挂了置换器。隔膜允许置换器移动而不会摩擦或移动密封件。当与金属膜片压力波发生器耦合时,该系统将产生一个完整的斯特林低温冷却器,在工作气体空间中没有摩擦部件。使用Sage建模工具对该概念进行的初始建模表明了有用的低温制冷器的潜力。构建了概念验证原型,并达到了低温。利用从第一个原型获得的经验来设计和构造第二个原型。该原型在77 K时产生29 W的冷却,并达到56 K的空载温度。膜片的大直径和短冲程对冷冻冷却器内部的振荡流场产生了重要的径向分量,而在一维模型中没有进行建模。分析工具Sage用于设计原型。与标准活塞相比,隔膜的几何形状由于较高的速度和较小的液压直径而增加了气体到壁的热传递。构造了冷却器的计算流体动力学(CFD)模型,以了解潜在的流体动力学和传热机制,目的是进一步提高性能。由隔膜产生的径向流场中的传热的CFD模型表明,可以利用扁平的几何形状进行传热,从而减少了对昂贵热交换器的需求和尺寸。本文介绍了CFD分析的详细信息,该模型用于对第二台原型低温冷却器内部的流动和气体到壁的热传递进行建模,包括对CFD进行实验验证以产生可靠的分析。 (C)2016 Elsevier Ltd.保留所有权利。

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