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Magneto-Caloric-Effect-Based Quasi-Static Cooling System

机译:基于磁热效应的准静电冷却系统

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This project aims at building a quasi-static cooling system that utilizes the magneto-caloric characteristics of Gadolinium. The proposed technique presents itself as an attractive choice for smart cities and a better alternative to the vapor-compression-based cooling systems used in the industry today. With its electromagnet-based novel static design feature, the system does not use any refrigerant or moving parts (except for the needed air pump and valves), hence featuring environment friendliness, suppression of vibration, noise as well as wear-out, extended lifetime, and eventually reduced cost. A novel cycle of operation was tailored in order to accommodate the usage of an impressively compact custom-designed 0.45T electromagnet as the source of magnetic field, hence omitting the usual need of rotating machines. Computer simulations estimated the system to deliver about 2°C of cooling from an ambient 20.4°C to 18.68°C; and in heating mode, about 3 degrees of heating, from 20.4 to 23.33°C. The experimental testing resulted in errors around 40% in cooling mode and 65% in heating. By using more efficient composite magneto-calorific materials (e.g. LaFeSi) and a stronger magnetic field,, the merits of the proposed cooling system become more apparent contributing to the quiet, sustainable, and healthy environment characterizing smart cities.
机译:该项目旨在建立一种用于糖碱的磁热量特性的准静态冷却系统。该拟议的技术将自身呈现为智能城市的有吸引力的选择,以及当今行业中使用的蒸气压缩的冷却系统更好的替代方案。凭借其基于电磁铁的新型静态设计特征,系统不使用任何制冷剂或运动部件(所需的空气泵和阀除外),因此具有环境友好性,抑制振动,噪音以及磨损,延长寿命,最终降低了成本。为适应令人印象紧凑的定制0.45T电磁铁作为磁场源的令人印象非常紧凑的定制0.45T电磁扫描的新颖循环,因此省略了旋转机器的平常需求。计算机模拟估计系统从环境温度20.4°C到18.68°C的冷却约2°C;在加热模式下,约3度加热,从20.4至23.33℃。实验测试在冷却模式下导致误差为40%,加热65%。通过使用更高效的复合磁热材料(例如Lafesi)和更强的磁场,所提出的冷却系统的优点变得更加明显,这是对智能城市的安静,可持续和健康的环境的贡献。

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