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1、个人网站设计毕业论文 制冷设计毕业论文 导读:就爱阅读网友为您分享以下“制冷设计毕业论文”的资讯,希望对您有所帮助,感谢您对92to 的支持!Effect of hot water temperature Figure 3 shows the effect of the temperature of the hot water on the coefficient of performance (COP). It is clear that the two-stage LiBr absorption refrigeration cannot be operated if the outlet
2、temperature of the LiBr aqueous solution, Th4 or Tl4, in the HP generator and LP generator is below 58C, under the condition when the temperature of chilled water is 7c and that of the condenser cooling water is 32c. If the temperature difference between the inlet temperature of the hot water and th
3、e outlet temperature of the LiBr aqueous solution, Th4 or T14, in the HP generator and LP generator is assumed to be 15C, then a two-stage LiBr/H20 absorption refrigeration system cannot be operated when the temperature of the hot water Thi, is under 73 C. The COP of a two-stage LiBr/H20 absorption
4、refrigeration system increases with the temperature of the hot water, but when the temperature Thi, is above 87 C, or Th4 and T14 are above 72 C, the increase of COP is very small. Because the heat loss increases when the temperature of the heat source, Thi, is increased, the temperature of the heat
5、 source Thi above 87 C is not advantageous for a two-stage LiBr/H20 absorption refrigeration system. Figure 3 shows that the best temperature range of the heat source is between 75 C and 87 C for a two-stage LiBr/H20 absorption refrigeration system. Effect of chilled water temperature, Tch o The inf
6、luence of different chilled water temperature Tcho on the COP of a two-stage LiBr/H20 absorption refrigeration system is shown in Figure 4. A two-stage LiBr/H20 absorption refrigeration system is more suitable for supplying chilled water of over 9 C for air conditioning or other applications. If the
7、 temperature of the chilled water is under 7 C, the COP is very small when the temperature of the cooling water is 32 C. Effect of the temperature of cooling water, Twi The temperature of the condenser cooling water, Twi, is one of the factors affecting the COP of a two-stage LiBr/H20 absorption ref
8、rigeration system. The COP of a two-stage LiBr/H20 absorption refrigeration system decreases with increase of the temperature of the cooling water (Figure 5). Comparison with preliminary experimental results Preliminary experimental results for a two-stage LiBr absorption refrigeration system were o
9、btained on a 6 kW experimental prototype, whose schematic is identical to that shown in Figure 1. The design parameters as were listed in Table 1. From Figure 6, as compared with the preliminary experimental results, the COP obtained from the theoretical analysis is 10-13% larger. It is believed tha
10、t the main reason for this might be that heat losses were ignored in the analysis. After adding these heat losses, the computed results are in good agreement with the experimental results, as indicated by the dashed line in Figure 6. Other possible reasons for the discrepancy might be in part due to
11、 some assumptions in the calculation, which could however be identified when sufficient experimental data are available. Temperature differences in various heat exchangers were also in agreement with those used in the theoretical analysis. The comparison with the preliminary experimental results ind
12、icated that the theoretical analysis for such a two-stage LiBr/H20 absorption system could represent the real system with a reasonable accuracy. This analysis is expected to be further improved with more available experimental data from continued experimental work. Nevertheless, the analysis present
13、ed is useful in understanding the complex heat and mass transfer taking place in a two-stage 38 absorption refrigeration system, and in system design in order to achieve the maximum system efficiency. Conclusions The theoretical analysis for a two-stage LiBr/H20 absorption refrigeration system drive
14、n by a low temperature source is presented, and the analysis results are compared with the preliminary results from a 6 kW experimental prototype. It is concluded that the analysis can represent a real system with a reasonable accuracy and is useful for future research development work of two-stage
15、absorption refrigeration machines. While the experimental work is continuing, the theoretical analysis presented will be subject to further experiment validation. Figure 5 The effect of cooling water temperature on COP 39 Figure 1 Schematic description of a two-stage absorption refrigeration system:
16、 C, condenser; Gh, high-pressure generator; Ah, high-pressure absorber; Gb low-pressure generator; At, low-pressure absorber; E, evaporator; HEXL, low-pressure solution exchanger; HEXH, high-pressure solution exchanger Figure 3 The effect of hot-water temperature on COP for a two-stage LiBr absorpti
17、on refrigeration system when the outlet chilled water temperature Tch o = 7C and the cooling water temperature Twi = 32C 40 郑州大学电气工程学院06届毕业生倾情奉献! 电气、电气、电气! 感谢郑州大学化工学院制冷专业 同学奉献此论文! 摘 要 随着社会生产力的发展和人们生活水平的提高,人们对生产和生活环境的要求也越来越高。伴随着人们环境意识的不断提高,溴化锂吸收式制冷运行时以其无噪音,振动小,无污染,可以利用各种废热等优点,已逐步取代氟制冷成为主流发展趋势,因此,研究溴化
18、锂吸收式制冷意义重大,溴化锂制冷具有广阔的发展前景,也一定会在未来得到长足的发展。本文主要根据教学和制冷实验的需要,依据溴化锂吸收式制冷的工作原理和特点,对溴化锂吸收式制冷实验装置进行设计,主要完成其结构布局,各换热器计算和设计,设计结构图,最后对整个系统进行性能测定,并根据其优缺点分析得出其具体的节能措施和主要用途。同时依据系统的控制和保护,对整个制冷系统进行完善和修正。 关键词:溴化锂;吸收;制冷;设计。 I Abstract With the development of social productive force and peoples growth in the living s
19、tandard,. Peoples require in produce and living environment is also increasingly higher and higher. accompany with peoples consciousness of environment is increased, lithium bromide absorption refrigeration have many advantages, such as noise-free, small vibration ,less pollution and utilizing diffe
20、rent kinds of waste heat and so on, which is already gradually substituted the fluorine refrigeration and predominate the trend of development. Wherefore, research of the lithium bromide absorption refrigeration is of great moment. Lithium bromide absorption refrigeration has extensive long term pot
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