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Pareto Optimal Design of Thermal Conductivity and Viscosity of NDCo3O4 Nanofluids by MOPSO and NSGA II Using Response Surface Methodology

机译:MOPSO和NSGA II使用响应表面方法的Pareto热导率和NdCO3O4纳米流体粘度的最佳设计

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Background: Achieving a nanofluid with optimal thermal conductivity and viscosity is one of the main problems of applications of nanofluids in industries. Methods: There are experimental and theoretical methods to reach an applicable nanofluids with mentioned characteristics. Surely,experimental methods are not optimal in time and cost($) aspects. So, in the present study multi-objective optimization of nanofluids ND-Co3O4 is done to find the optimal solid volume fraction for having maximum thermal conductivity and minimum viscosity. The response surface methodology(RSM) is used to model target functions using empirical data. The improved non- dominated sorting method and multi-objective particle swarm optimization are used as powerful tools for optimization. In order to implement the optimization process, the obtained target function model is joinedto multi-objective particle swarm algorithm and it is used in each step of the target function evaluation. Results: The obtained results of these two algorithms are presented in the form of Pareto front. Also, a comparison between them is provided. According to the optimal results, MOPSOhas a better performance that the other one. Conclusion: It will be shown that the highest thermal conductivity and the lowest viscosity occur at the maximum temperature. By investigating obtained optimum results, the optimal point with highest thermal conductivity and lowest viscositywas found at about 60 °C and 0.1 to 0.11 of solid volume fraction.
机译:背景:实现具有最佳导热性的纳米流体,粘度是纳米流体在行业中的应用的主要问题之一。方法:有实验性和理论方法,可达到具有提到的特征的适用的纳米流体。当然,实验方法在时间和成本($)方面不是最佳的。因此,在本研究中,纳米流体Nd-Co3O4的多目标优化是为了找到最大导热性和最小粘度的最佳固体体积馏分。响应面方法(RSM)用于使用经验数据来模拟目标函数。改进的非主导排序方法和多目标粒子群优化用作优化的强大工具。为了实现优化过程,所获得的目标函数模型是加入多目标粒子群算法的,它用于目标函数评估的每个步骤中。结果:这两种算法的所得结果以帕累托前线的形式呈现。此外,提供了它们之间的比较。根据最佳结果,MOPSOHA是更好的性能,另一个。结论:将表明,最高导热率和最低粘度在最高温度下发生。通过研究获得的最佳结果,具有最高导热性和最低粘度的最佳点,在约60℃和0.1至0.11的固体体积分数中发现。

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