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Approximate solution of non-linear dynamic energy model for multiple effect evaporator using fourier series and metaheuristics

机译:使用傅里叶系列和茂化法对多效蒸发器非线性动态能量模型的近似解

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This article presents the approximate solution of non-linear dynamic energy model of multiple effect evaporator (MEE) using Fourier series and metaheuristics. The dynamic model of MEE involves first-order simultaneous ordinary differential equations (SODEs). Prior to solving the dynamic model, the non-linear steady-state model is solved to obtain the optimum steady-state process parameters. These process parameters serve as the initial conditions (constraints) for the SODEs. The SODEs are exemplified as an optimization problem by the weighted residual function to produce their approximate solutions. The optimization task is to find the best estimates of unknown coefficients in the Fourier series expansion using two preeminent metaheuristic approaches: Particle swarm optimization and harmony search. Besides, the influence of the number of approximation terms in Fourier series expansion on the accuracy of the approximate solutions has been investigated. The solution of the dynamic model assists in the investigation of open-loop dynamics of the MEE. Moreover, the acquired results may assist in designing suitable controllers to ensure energy-efficient performance of MEE and to monitor the product quality. The optimization results reveal that both the metaheuristic approaches offer minimum violation of the constraints and, therefore, validate their efficiency in solving such complex non-linear energy models.
机译:本文介绍了使用傅里叶系列和半导体的多效蒸发器(MEE)的非线性动态能量模型的近似解。 Mee的动态模型涉及一阶的同时常规方程(节目)。在求解动态模型之前,解决了非线性稳态模型以获得最佳稳态过程参数。这些进程参数用作节目的初始条件(约束)。通过加权残差函数作为优化问题,以产生其近似解决方案的节目。优化任务是使用两种卓越的成像方法找到傅立叶系列扩展中未知系数的最佳估计值:粒子群优化和和声搜索。此外,研究了傅里叶级数扩展对近似解决方案精度的近似术语数量的影响。动态模型的解决方案有助于调查MEE的开环动态。此外,所获得的结果可以帮助设计合适的控制器,以确保MEE的节能性能并监测产品质量。优化结果表明,成群质培养方法都提供了最小违反约束的行为,因此验证了求解这些复杂的非线性能源模型的效率。

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