Elastocaloric Cooling: System Design, Simulation, and Realization

F. Welsch, Susanne-Marie Kirsch, Nicolas Michaelis, Paul Motzki, Marvin Schmidt, A. Schütze, S. Seelecke
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引用次数: 2

Abstract

Elastocaloric cooling is a novel environment-friendly alternative to vapor compression-based cooling systems. This solid-state cooling technology uses NiTi shape memory alloys (SMAs) as cooling medium. SMAs are well known for lightweight actuator systems and biomedical applications, but in addition, these alloys exhibit excellent cooling properties. Due to the high latent heats activated by mechanical loading/unloading, large temperature changes can be generated in the material. Accompanied by a small required work input, this also leads to a high coefficient of performance superior to vapor compression-based systems. In order to access the potential of these alloys, the development of suitable thermodynamic cooling cycles and an efficient system design are required. This paper presents a model-based design process of an elastocaloric air-cooling device. The device is divided into two parts, a mechanical system for continuously loading and unloading of multiple SMA wire bundles by a rotary motor and a heat transfer system. The heat transfer system enables an efficient heat exchange between the heat source and the SMA wires as well as between the SMA wires and the environment. The device operates without any additional heat transfer medium and cools the heat source directly, which is an advantage in comparison to conventional cooling systems. The design of this complex device in an efficient manner requires a model approach, capable of predicting the system parameters cooling power, mechanical work and coefficient of performance under various operating conditions. The developed model consists of a computationally efficient, thermo-mechanically coupled and energy based SMA model, a model of the system kinematics and a heat transfer model. With this approach, the complete cooling system can be simulated, and the required number of SMA wires as well as the mechanical power can be predicted in order to meet the system requirements. Based on the simulation results a first prototype of the elastocaloric cooling system is realized.
弹性热冷却:系统设计、仿真与实现
弹性热冷却是一种新型的环境友好型替代蒸汽压缩冷却系统。这种固态冷却技术采用NiTi形状记忆合金(sma)作为冷却介质。sma以轻质致动器系统和生物医学应用而闻名,但除此之外,这些合金还具有出色的冷却性能。由于机械装卸所激活的高潜热,物料内部会产生较大的温度变化。伴随着所需的小功输入,这也导致了高性能系数优于基于蒸汽压缩的系统。为了发挥这些合金的潜力,需要开发合适的热力学冷却循环和有效的系统设计。本文介绍了一种基于模型的弹热风冷装置的设计过程。该设备分为两个部分,一个是通过旋转电机连续加载和卸载多个SMA线束的机械系统,另一个是传热系统。传热系统能够在热源和SMA钢丝之间以及SMA钢丝和环境之间进行有效的热交换。该装置无需任何额外的传热介质,直接冷却热源,与传统冷却系统相比,这是一个优势。这种复杂装置的高效设计需要一种模型方法,能够预测各种工况下的系统参数、冷却功率、机械功和性能系数。该模型包括一个计算效率高、热机耦合和基于能量的SMA模型、一个系统运动学模型和一个传热模型。利用该方法,可以对整个冷却系统进行仿真,并可以预测所需的SMA丝数和机械功率,以满足系统的要求。在仿真结果的基础上,实现了弹热冷却系统的第一个样机。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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