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Experimental Setup and Methodology on Active Mechanisms for Enhancing Heat and Mass Transfer in Sorption Fluids

机译:吸附流体中传热和传质主动机制的实验装置和方法学

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摘要

Enhancement of heat and mass transfer in sorption fluids could improve the overall performance of absorption chillers. Active mechanisms are proposed as a potential effective means to achieve this goal. A testing facility is needed to evaluate the impact on the performance of the chiller after adding an active mechanism. The challenges of this project include the fulfillment ofmechanism motion to drive extra heat and mass transfer in an absorber, the measurement of related variables, and the stability and repeatability of findings. These challenges come from the fact that absorption chillers are closed-loop systems with large heat exchangers, have low inside pressures, andean sustain only small pressure drops along the refrigerant loop. Measures are needed to prevent the impact of vibration on untargeted components in the system. In this paper, we introduce the details of the lab construction methodology, including the vibration table, the auxiliary water loop system, and the measuring instruments. Then, we present several examples to show the operation and testing procedure and stability of the test system. Last, the experiment plan matrix and analysis methodology are presented, which will be applied in the next-phase experiment. The fulfillment of active mechanism and test methodology with a closed absorption chiller for performance analysis can be references in similar thermal applications.
机译:吸收液中传热和传质的增强可以改善吸收式冷却器的整体性能。主动机制被认为是实现这一目标的潜在有效手段。添加主动机制后,需要测试设备来评估对冷却器性能的影响。该项目的挑战包括实现机械运动以驱动吸收器中的额外热量和质量传递,相关变量的测量以及结果的稳定性和可重复性。这些挑战来自以下事实:吸收式制冷机是具有大型热交换器的闭环系统,内部压力低,并且仅能沿制冷剂环路承受很小的压降。需要采取措施来防止振动对系统中非目标组件的影响。在本文中,我们介绍了实验室构建方法的详细信息,包括振动台,辅助水回路系统和测量仪器。然后,我们提供一些示例来说明测试系统的操作和测试过程以及稳定性。最后,给出了实验计划矩阵和分析方法,将在下一阶段的实验中应用。封闭式吸收式制冷机用于性能分析的主动机制和测试方法的实现可以在类似的热应用中作为参考。

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  • 来源
    《ASHRAE Transactions》 |2016年第2期|122-133|共12页
  • 作者单位

    Durham School of Architectural Engineering and Construction, University of Nebraska-Lincoln, Omaha, NE;

    Durham School of Architectural Engineering and Construction, University of Nebraska-Lincoln, Omaha, NE;

    Durham School of Architectural Engineering and Construction, University of Nebraska-Lincoln, Omaha, NE;

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