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Use of Exergy Analysis to Quantify the Effect of Lithium Bromide Concentration in an Absorption Chiller

机译:利用(火用)分析量化吸收式冷水机组中溴化锂浓度的影响。

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Absorption chillers present opportunities to utilize sustainable fuels in the production of chilled water. An assessment of the steam driven absorption chiller at the University of Idaho, was performed to quantify the current exergy destruction rates. Measurements of external processes and flows were used to create a mathematical model. Using engineering equation solver to analyze and identify the major sources of exergy destruction within the chiller. It was determined that the absorber, generator and condenser are the largest contribution to the exergy destruction at 30%, 31% and 28% of the respectively. The exergetic efficiency is found to be 16% with a Coefficient of performance (COP) of 0.65. Impacts of weak solution concentration of lithium bromide on the exergy destruction rates were evaluated using parametric studies. The studies reveled an optimum concentration that could be obtained by increasing the weak solution concentration from 56% to 58.8% a net decrease in 0.4% of the exergy destruction caused by the absorption chiller can be obtained. The 2.8% increase in lithium-bromide concentration decreases the exergy destruction primarily within the absorber with a decrease of 5.1%. This increase in concentration is shown to also decrease the maximum cooling capacity by 3% and increase the exergy destruction of the generator by 4.9%. The study also shows that the increase in concentration will change the internal temperatures by 3 to 7 °C. Conversely, reducing the weak solution concentration results is also shown to increase the exergetic destruction rates while also potentially increasing the cooling capacity.
机译:吸收式冷水机组为在冷水生产中利用可持续燃料提供了机会。对爱达荷大学的蒸汽吸收式制冷机进行了评估,以量化当前的火用破坏率。外部过程和流程的度量用于创建数学模型。使用工程方程求解器分析和确定冷水机内主要的火用破坏源。已确定吸收器,发电机和冷凝器对本能破坏的贡献最大,分别为30%,31%和28%。发现运动效率为16%,而性能系数(COP)为0.65。使用参数研究评估了弱浓度的溴化锂溶液对本能破坏速率的影响。这些研究揭示了一种最佳浓度,该浓度可以通过将稀溶液的浓度从56%增加到58.8%来获得,而吸收式制冷机造成的火用破坏的净减少量则可以净减少0.4%。溴化锂浓度增加2.8%时,主要是在吸收塔内减少了本能破坏,降低了5.1%。浓度的增加也显示出最大冷却能力降低了3%,发电机的火用破坏增加了4.9%。研究还表明,浓度的增加会使内部温度变化3至7°C。相反,降低弱溶液浓度的结果也显示出增加了高能破坏速率,同时还潜在地提高了冷却能力。

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