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Designing a Robust Gasoline Blending Recipe Via Scenario-based Optimization

机译:通过基于方案的优化设计鲁棒的汽油调合配方

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A scenario-based optimization approach is proposed to design a robust gasoline blending recipe under uncertainties. The proposed scheme considers the nonlinear behavior of blended octane, Monte Carlo simulation to generate a number of scenarios, and a sequential algorithm to converge to the optimal solution. This framework offers three advantages: First, incorporating the nonlinear functions into the optimization will provide a more realistic representation of the blending process. Second, the Monte Carlo sampling approach is capable of characterizing uncertainties with any probability distribution. Third, the sequential algorithm determines a near-global optimal solution in a significantly shorter time than directly using state-of-the-art optimization software. A case study with nine feedstocks and two products is presented to demonstrate the effectiveness of the proposed method.
机译:提出了一种基于场景的优化方法来设计不确定性下的鲁棒汽油调合配方。所提出的方案考虑了混合辛烷的非线性行为,通过蒙特卡洛模拟生成了许多场景,并采用了顺序算法收敛到最优解。该框架具有三个优点:首先,将非线性函数合并到优化中将提供更真实的混合过程表示。其次,蒙特卡洛采样方法能够以任何概率分布来表征不确定性。第三,与直接使用最新的优化软件相比,顺序算法在短得多的时间内确定了近乎全局的最佳解决方案。提出了一种以九种原料和两种产品为例的案例研究,以证明所提方法的有效性。

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