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首页> 外文期刊>Journal of Thermal Engineering >Response Surface Based Optimization of Ribbed Isosceles Triangular Twisted Tape Heat Exchanger using Entropy Augmentation Generation Number with Al2O3 Nano Working Fluid
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Response Surface Based Optimization of Ribbed Isosceles Triangular Twisted Tape Heat Exchanger using Entropy Augmentation Generation Number with Al2O3 Nano Working Fluid

机译:基于响应面的Al2O3纳米工作液熵增生成数优化肋等腰三角扭带换热器。

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In this work, a combination of passive techniques like providing ribs on the duct surface, inserting twisted tapes were employed at different configurations and analysed using ANSYS Fluent 17.2. The enhancement is probed by placing ribs on the duct surfaces at various angles. Twisted tape inserts were used in conjunction with ribs on the duct and an output parameter, Entropy Augmentation Generation Number (EAGN) is analysed when having an Al2O3 nanofluid (?=3%) as working medium. In furtherance, tapes of isosceles triangular projections with variable configuration, such as rib angles (300α 900), Internal angle (300β900) and projection distance (1mm x 5mm) were also inserted in place of plain twisted tape inserts to verify the enhancement promised by this alteration. As expected, rate of heat transfer due to the presence of isosceles triangle projections gave decent augmentation. Later Response Surface based optimization was employed with non-parametric regression and genetic algorithm to make an investigative search of all the modified parameters so as to suggest best blend of inputs for low Entropy Augmentation Generation Number. Optimum performance was obtained at rib angle of 300, projection distance of 2.1mm and Internal angle of 44.40 with entropy augmentation number value of 0.77. The performance of Genetic Algorithm was compared with Micro Genetic Algorithm; it shows that optimized result is obtained less than half the time using Micro Genetic Algorithm.
机译:在这项工作中,采用了多种被动技术的组合,例如在管道表面上设置肋骨,插入扭曲的胶带,并采用了不同的配置,并使用ANSYS Fluent 17.2进行了分析。通过在管道表面上以各种角度放置肋来探测这种增强。将扭曲的带状插入件与管道上的肋条结合使用,并在使用Al2O3纳米流体(α= 3%)作为工作介质时分析输出参数熵增强生成数(EAGN)。此外,还插入了具有可变构造的等腰三角形投影带,例如肋角(300 <α<900),内角(300 <β<900)和投影距离(1mm

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