Experimental and analytical investigation on an automobile radiator with CuO/EG-water based nanofluid as coolant

被引:4
|
作者
Maisuria, Mahendra B. [1 ]
Sonar, Devendraprasad M. [1 ]
Rathod, Manish K. [1 ]
Bhatt, Manhar K. [1 ]
机构
[1] Sardar Vallabhbhai Natl Inst Technol, Mech Engn Dept, Surat 395007, Gujarat, India
来源
HEAT TRANSFER-ASIAN RESEARCH | 2019年 / 48卷 / 06期
关键词
CuO; EG-water nanofluids; heat transfer enhancement; radiator; tube finned heat exchanger; HEAT-TRANSFER; GLYCOL-WATER;
D O I
10.1002/htj.21516
中图分类号
O414.1 [热力学];
学科分类号
摘要
In the present study, experimental and analytical thermal performance of automobile radiator using nanofluids is investigated and compared with performance obtained with conventional coolants. Effect of operating parameters and nanoparticle concentration on heat transfer rate are studied for water as well as CuO/EG-water based nanofluid analytically. The results are presented in the form of graphs showing variations of net heat transfer rate for various coolant flow rate, air velocity, and source temperature for various CuO/EG-water based nanofluids. Experimental results indicate that with the increase in coolant flow rate and air velocity, heat transfer rate increases, reaches maximum and then decreases. Experimental investigation of a radiator is carried out using CuO/EG-water based nanofluids. Results obtained by experimental work and analytical MATLAB code are almost the same. Maximum absolute error in water and air side is within 12% for all flow condition and coolant fluids. Nusselt number of nanofluid is calculated using equation number 33[9]. The results obtained from experimental work using 0.2% volume CuO/EG-water based nanofluids are compared with the results obtained from MATLAB code. The results show that the maximum error in the outlet temperature of the coolant and air is 12% in each case. Thus MATLAB code can be used for different concentration of nanofluids to study the effect of operating parameters on heat transfer rate. Thus MATLAB code developed is valid for given heat exchanger applications. From the results obtained by already validated MATLAB code, it is concluded that increase in coolant flow rate, air velocity, and source temperature increases the heat transfer rate. Addition of nanoparticles in the base fluid increases the heat transfer rate for all kind of base fluids. Among all the nanofluid analyzed in this study, water-based nanofluid gives highest value of heat transfer rate and is recommended for the heat exchanger applications under normal operating conditions. Maximum enhancement is observed for ethylene glycol-water (4:6) mixture for 1% volume concentration of CuO is almost equal to 20%. As heat transfer rate increases with the use of nanofluids, the heat transfer area of the radiator can be minimized.
引用
收藏
页码:2596 / 2612
页数:17
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