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An Evolutionary Optimization Approach for Bulk Material Blending Systems

机译:散装物料混合系统的进化优化方法

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Bulk material blending systems still mostly implement static and non-reactive material blending methods like the well-known Chevron stacking. The optimization potential in the existing systems which can be made available using quality analyzing methods as online X-ray fluorescence measurement is inspected in detail in this paper using a multi-objective optimization approach based on steady state evolutionary algorithms. We propose various Baldwinian and Lamarckian repair algorithms, test them on real world problem data and deliver optimized solutions which outperform the standard techniques.
机译:散装物料混合系统仍主要采用静态和非反应性物料混合方法,例如众所周知的雪佛龙堆垛。本文使用基于稳态进化算法的多目标优化方法,详细研究了可以使用质量分析方法进行在线X射线荧光测量的现有系统中的优化潜力。我们提出各种Baldwinian和Lamarckian修复算法,对现实世界中的问题数据进行测试,并提供优于标准技术的优化解决方案。

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