{"title":"金属片状吸收体太阳能空气加热集热器的热效率","authors":"M. Uzbekov, Azamat G. Tukhtasinov","doi":"10.17516/1999-494x-0260","DOIUrl":null,"url":null,"abstract":"It is known that one of the main issues of heat transfer in complex designs of solar air-heating collectors is the problem of determining the coefficient of convective heat transfer in some parts of absorbers. The article studies the processes of heat transfer occurring in a solar air-heating collector with an absorber, which is a system of metal flow chips and a V-shaped surface. A description of the design of a solar air-heating collector with a metal chip absorber is given. The absorber allows us to increase the contact surface between the coolant and the absorber. The experimental procedure and the results are presented. The experiments have shown that within the range of 850 – 950 W / m2 of direct incident solar radiation density, the average heating of coolant is 17.5 °C; within the range of 650 – 750 W / m2, it is 14.1 °C; within the range of 450 – 550 W / m2, it measures 10.1 °C. The maximum coolant heating is 27 °C which is equal to the output collector temperature 60 °C. The average heating of the coolant is 14 °C, which corresponds to the average output temperature of 45 °C. According to the data obtained in the experiment, empirical formulas are concluded. They are presented in the form of the dependence Nu = f (Re), it is aimed at determining the heat transfer coefficient of flow metal chips and V-shaped absorbers of a solar air-heating collector. The dependence of the absorbers heat transfer from metal flow chips and the V-shaped surface of the solar air-heating collector on the Re numbers within the range of 103÷104 is shown. A formula is derived that allows us to compare the effectiveness of absorbers of various types with a flat absorber of a solar air-heating collector.","PeriodicalId":17206,"journal":{"name":"Journal of Siberian Federal University: Engineering & Technologies","volume":"46 1","pages":"712-720"},"PeriodicalIF":0.0000,"publicationDate":"2020-09-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Thermal Efficiency of a Solar Air-Heating Collector with a Metal Chip Absorber\",\"authors\":\"M. Uzbekov, Azamat G. Tukhtasinov\",\"doi\":\"10.17516/1999-494x-0260\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"It is known that one of the main issues of heat transfer in complex designs of solar air-heating collectors is the problem of determining the coefficient of convective heat transfer in some parts of absorbers. The article studies the processes of heat transfer occurring in a solar air-heating collector with an absorber, which is a system of metal flow chips and a V-shaped surface. A description of the design of a solar air-heating collector with a metal chip absorber is given. The absorber allows us to increase the contact surface between the coolant and the absorber. The experimental procedure and the results are presented. The experiments have shown that within the range of 850 – 950 W / m2 of direct incident solar radiation density, the average heating of coolant is 17.5 °C; within the range of 650 – 750 W / m2, it is 14.1 °C; within the range of 450 – 550 W / m2, it measures 10.1 °C. The maximum coolant heating is 27 °C which is equal to the output collector temperature 60 °C. The average heating of the coolant is 14 °C, which corresponds to the average output temperature of 45 °C. According to the data obtained in the experiment, empirical formulas are concluded. They are presented in the form of the dependence Nu = f (Re), it is aimed at determining the heat transfer coefficient of flow metal chips and V-shaped absorbers of a solar air-heating collector. The dependence of the absorbers heat transfer from metal flow chips and the V-shaped surface of the solar air-heating collector on the Re numbers within the range of 103÷104 is shown. 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引用次数: 0
摘要
众所周知,在复杂的太阳能空气集热器设计中,传热的主要问题之一是确定吸收体某些部分的对流换热系数问题。本文研究了带吸收体的太阳能空气加热集热器的传热过程,该集热器是由金属流片和v形表面组成的系统。介绍了一种带金属片式吸收体的太阳能空气加热集热器的设计。吸收剂允许我们增加冷却剂和吸收剂之间的接触面。给出了实验过程和实验结果。实验表明,在850 ~ 950 W / m2的太阳直接入射辐射密度范围内,冷却剂的平均加热温度为17.5℃;650 ~ 750w / m2范围内为14.1℃;在450 - 550 W / m2范围内,测量10.1°C。冷却液最大加热温度为27℃,等于输出集热器温度60℃。冷却液的平均升温为14℃,对应的平均输出温度为45℃。根据实验得到的数据,得出了经验公式。它们以依赖关系Nu = f (Re)的形式表示,旨在确定太阳能空气加热集热器的流动金属片和v形吸收器的传热系数。结果表明,在103÷104范围内,金属流片和太阳能空气加热集热器v形表面对吸收体传热的影响与Re数的关系。导出了一个公式,使我们能够比较不同类型的吸收体与太阳能空气加热集热器的平板吸收体的有效性。
Thermal Efficiency of a Solar Air-Heating Collector with a Metal Chip Absorber
It is known that one of the main issues of heat transfer in complex designs of solar air-heating collectors is the problem of determining the coefficient of convective heat transfer in some parts of absorbers. The article studies the processes of heat transfer occurring in a solar air-heating collector with an absorber, which is a system of metal flow chips and a V-shaped surface. A description of the design of a solar air-heating collector with a metal chip absorber is given. The absorber allows us to increase the contact surface between the coolant and the absorber. The experimental procedure and the results are presented. The experiments have shown that within the range of 850 – 950 W / m2 of direct incident solar radiation density, the average heating of coolant is 17.5 °C; within the range of 650 – 750 W / m2, it is 14.1 °C; within the range of 450 – 550 W / m2, it measures 10.1 °C. The maximum coolant heating is 27 °C which is equal to the output collector temperature 60 °C. The average heating of the coolant is 14 °C, which corresponds to the average output temperature of 45 °C. According to the data obtained in the experiment, empirical formulas are concluded. They are presented in the form of the dependence Nu = f (Re), it is aimed at determining the heat transfer coefficient of flow metal chips and V-shaped absorbers of a solar air-heating collector. The dependence of the absorbers heat transfer from metal flow chips and the V-shaped surface of the solar air-heating collector on the Re numbers within the range of 103÷104 is shown. A formula is derived that allows us to compare the effectiveness of absorbers of various types with a flat absorber of a solar air-heating collector.