具有熵生成的时变卡罗纳米流体流动的响应面技术:一个统计模型

Q1 Chemical Engineering
Pradeep Kumar , Ajaykumar A․R․ , Felicita Almeida , Qasem Al-Mdallal , Rudraswamy N․G․
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引用次数: 0

摘要

优化流体流动的传热速率对工业和生物医学领域都有重要意义。本文采用响应面法,将响应以努塞尔数的形式包含在卡罗纳米流体的传热统计分析中。考虑了自然对流和强迫对流的非线性混合对流。热生成过程采用Cattaneo-Christov传热模型。此外,还考虑了熵产法来分析流动系统中的热失序量。通过数学表达式对问题进行建模后,得到了解的图形。结果表明,非定常参数越高,表面摩擦越小,混合对流系数越低。当非定常参数保持较低时,热松弛参数值越高,传热率越大。随着非定常参数的增大,努塞尔数减小8 ~ 10%。散热参数在Eckert数低、中、高水平上表现为负灵敏度,热松弛参数表现为正灵敏度。在响应面法的实验设置中,获得了较好的相关系数100%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Response surface technique for time-dependent Carreau nanofluid flow with entropy generation: A statistical modelling
Optimizing the heat transfer rate for the flow of fluid is fruitful for the industries as well as in the biomedical field. The current study is focused on statistical analysis of heat transmission of the Carreau nanofluid flow by the inclusion of the responses in terms of Nusselt number through response surface methodology. Nonlinear mixed convection is considered to study the natural as well as forced convection. Cattaneo-Christov heat transmission model is employed along with heat generation. Also, entropy generation is considered to analyze the amount of heat disorder in the flow system. After modelling the problem through mathematical expressions, graphs of solutions have been obtained. Results demonstrated that the lower skin friction for higher unsteadiness parameter while keeping the mixed convection factor at its lowest value. Larger rate of heat transmission is obtained for higher value of the thermal relaxation parameter when the unsteadiness parameter is kept low. The Nusselt number decreases by 8-10 % for increasing unsteadiness parameter. Heat dissipation parameter show negative sensitivity at low, medium and high level of Eckert number and positive sensitivity is exhibited by thermal relaxation parameter. For the experimental setup by response surface methodology, the better correlation coefficient is 100 % attained.
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来源期刊
International Journal of Thermofluids
International Journal of Thermofluids Engineering-Mechanical Engineering
CiteScore
10.10
自引率
0.00%
发文量
111
审稿时长
66 days
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