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Experimental investigation of an ammonia-water-hydrogen diffusion absorption refrigerator

机译:氨水氢扩散吸收式制冷机的实验研究

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Diffusion absorption refrigeration (DAR) is a small-scale cooling technology that can be driven purely by thermal energy without the need for electrical or mechanical inputs. In this work, a detailed experimental evaluation was undertaken of a newly-proposed DAR unit with a nominal cooling capacity of 100 W, aimed at solar-driven cooling applications in warm climates. Electrical cartridge heaters were used to provide the thermal input which was varied in the range 150-700 W, resulting in heat source temperatures of 175-215 degrees C measured at the generator. The cooling output during steady-state operation was determined from the power consumed by an electric heater used to maintain constant air temperature in an insulated box constructed around the evaporator. Tests were performed with the DAR system configured with the default manufacturer's settings (22 bar charge pressure and 30% ammonia concentration). The measured cooling output (to air) across the range of generator heat inputs was 24-108 W, while the coefficient of performance (COP) range was 0.11-0.26. The maximum COP was obtained at a generator heat input of 300 W. Results were compared to performance predictions from a steady-state thermodynamic model of the DAR cycle, showing a reasonable level of agreement at the nominal design point of the system, but noteworthy deviations at part-load/off-design conditions. Temperature measurements from the experimental apparatus were used to evaluate assumptions used in the estimation of the model state point parameters and examine their influence on the predicted system performance.
机译:扩散吸收式制冷(DAR)是一种小型冷却技术,可以完全由热能驱动,而无需电气或机械输入。在这项工作中,对新提议的标称制冷量为100 W的DAR装置进行了详细的实验评估,旨在在温暖气候下使用太阳能驱动制冷。使用电插装式加热器提供的热输入在150-700 W的范围内变化,从而在发电机处测得的热源温度为175-215摄氏度。稳态运行期间的冷却输出由电加热器消耗的功率确定,该电加热器用于在蒸发器周围构造的绝缘箱中保持恒定的空气温度。使用配置有默认制造商设置(22巴进料压力和30%氨浓度)的DAR系统进行测试。在发电机热量输入范围内测得的(对空气)冷却输出为24-108 W,而性能系数(COP)范围为0.11-0.26。在300 W的发电机热量输入下获得最大COP。将结果与DAR循环的稳态热力学模型的性能预测进行了比较,显示出在系统标称设计点的合理水平的一致性,但存在明显的偏差在部分负载/非设计条件下。实验设备的温度测量值用于评估模型状态点参数估计中使用的假设,并检查它们对预测系统性能的影响。

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