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Coupling-Fluid Heated Bubble Pump Generators for Low-Temperature Fully Thermally Activated Single Pressure Absorption Systems

机译:低温全热活化单压吸收系统的耦合流体加热气泡泵发生器

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Single-pressure absorption heat pumps enable refrigeration using solely thermal input, and are ideal candidates for distributed and passive cooling applications, such as vaccine refrigeration in developing countries. Liquid circulation in single-pressure systems has conventionally been achieved with a gas-fired bubble-pump generator (BPG) - a vertical tube in which intense localized heat from a flame desorbs refrigerant. The buoyancy of rising refrigerant bubbles lifts solution to an upper reservoir, which feeds flow through other system components. While this method of refrigerant separation and fluid circulation is mechanically simple, it necessitates a source of high-grade fuel, and thus cannot be employed in waste-heat recovery applications or many remote settings. In this investigation, a novel full-length coupling-fluid heated BPG design is investigated. In this implementation, heating fluid is circulated through an annular jacket around the bubble-pump tube. Because the heat transfer area is much larger than in conventional spot-heated BPGs, relatively low temperature thermal sources can be employed. Results are presented from an experimental study of a 7.8 mm internal diameter BPG with water-steam working fluid over a wide range of operating conditions. This BPG can operate with thermal input as low as 11 K above the fluid saturation temperature. This investigation demonstrates that coupling-fluid heated BPGs are a promising alternative to conventional gas-fired implementations, and can enable passively-driven refrigeration using widely available low-grade thermal energy sources.
机译:单压吸收式热泵仅使用热输入即可实现制冷,并且是分布式和被动制冷应用(例如发展中国家的疫苗制冷)的理想选择。传统上,单压力系统中的液体循环是通过燃气气泡泵发生器(BPG)来实现的,该气泡发生器是一种垂直管,火焰中强烈的局部热量使制冷剂解吸。上升的制冷剂气泡的浮力将溶液提升到上部储液罐,该储液罐将流量供入其他系统组件。尽管这种制冷剂分离和流体循环的方法在机械上很简单,但它需要一种高级燃料,因此不能用于废热回收应用或许多远程设置中。在这项研究中,研究了一种新颖的全长耦合流体加热BPG设计。在该实施方式中,加热流体通过围绕气泡泵管的环形夹套循环。因为传热面积比传统的点加热BPG大得多,所以可以采用相对较低温度的热源。结果来自于在宽范围的工作条件下使用水蒸汽工作流体对7.8 mm内径BPG进行的实验研究。该BPG可以在比流体饱和温度高11 K的热输入下运行。这项研究表明,耦合流体加热的BPG是传统燃气实施的有希望的替代方法,并且可以使用广泛使用的低等级热能源实现被动驱动的制冷。

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