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熱管式兩級熱電冷水機性能分析與優化

Performance analysis and optimization of two-stage heat pipe-cooled thermoelectric chiller

  • 摘要: 針對熱管良好的散熱能力和兩級熱電制冷器能達到更大的制冷溫差的特性,提出了一種基于熱管散熱的兩級熱電冷水機模型。基于有限時間熱力學和非平衡熱力學,考慮包括湯姆遜效應在內的各種熱電效應,用數值模擬的方法分析了恒溫熱源下工作電流、熱電單元分配比以及熱管幾何參數(熱管外徑、蒸發段長度和吸液芯厚度)對裝置制冷率、制冷系數和極限制冷溫差的影響。在熱電單元總對數一定的約束條件下,分別以制冷率和制冷系數最大為目標,以電流和熱電單元分配比為優化變量,優化了裝置性能,并分析了關鍵參數對最優變量和最優性能的影響,得到了協調制冷率和制冷系數的最優區間。通過優化熱電單元分配比和電流,裝置制冷率和制冷系數有了較大的提升。當\Delta T\text=\text20?Kx = 0.6,I = 2.5 A時,優化后的制冷率和制冷系數分別達到23.42 W和1.53,較優化前分別提高了12.11%和218.75%。

     

    Abstract: When compared with the traditional refrigeration method that uses a refrigerant as a working medium, thermoelectric refrigeration is a new type of solid-state active environmental protection refrigeration method. This method is based on the Peltier effect of semiconductor thermoelectric materials, which directly converts electrical energy into a temperature gradient. Thermoelectric refrigeration has the advantages of simple structure, compact structure, rapid cooling, and accurate control of refrigeration temperature. When compared with a single-stage thermoelectric cooler, a two-stage thermoelectric cooler can ensure greater cooling temperature difference and efficiency. A heat pipe is a heat transfer component that uses liquid-phase transition to transfer heat. It has good isothermal stability, efficient thermal conductivity, and small size. For good heat dissipation capacity of heat pipes and higher cooling temperature difference in two-stage thermoelectric coolers, a two-stage thermoelectric chiller model based on heat pipe heat dissipation is proposed. Based on finite-time and nonequilibrium thermodynamics, various thermoelectric effects, including the Thomson effect, are considered. The effects of working current, distribution ratio of thermoelectric elements, and heat pipe geometric parameters (heat pipe outer diameter, evaporating section length, and wick thickness) on the device-cooling load, coefficient of performance (COP), and extreme cooling temperature difference are analyzed by the numerical simulation method. Under a certain total logarithm constraint of the thermoelectric unit, the cooling load and the COP are taken as the targets. The working current and distribution ratio of thermoelectric elements are used as the variables to optimize device performance. The influence of key parameters on the optimal variables and optimal performance is analyzed, and the optimal interval of the coordinated cooling load and COP is obtained. By optimizing the distribution ratio and current of thermoelectric elements, the cooling load and COP of the device significantly improved. When \Delta T\text\text=\text\text20?K, x = 0.6, I = 2.5 A, the optimized cooling load and COP reach 23.42 W and 1.53, respectively, which are 12.11% and 218.75% higher than those before optimization.

     

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