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A Methodological Study for Optimizing Material Selection in Sustainable Product Design

机译:可持续产品设计中优化材料选择的方法论研究

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摘要

A computational intelligence-based identification of the properties of maximally sustainable materials for a given application, as derived from key properties of existing candidate materials, is put forward. The correlation surface between material properties (input) and environmental impact (EI) values (output) of the candidate materials is initially created using general regression (GR) artificial neural networks (ANNs). Genetic algorithms (GAs) are subsequently employed for swiftly identifying the minimum point of the correlation surface, thus exposing the properties of the maximally sustainable material. The ANN is compared to and found to be more accurate than classic polynomial regression (PR) interpolation/prediction, with sensitivity and multicriteria analyses further confirming the stability of the proposed methodology under variations in the properties of the materials as well as the relative importance values assigned to the input properties. A nominal demonstration concerning material selection for manufacturing maximally sustainable liquid containers is presented, showing that by appropriately picking the pertinent input properties and the desired material selection criteria, the proposed methodology can be applied to a wide range of material selection tasks.
机译:提出了一种基于计算智能的,针对特定应用的最大可持续材料特性的识别方法,该方法从现有候选材料的关键特性中得出。最初使用通用回归(GR)人工神经网络(ANN)创建候选材料的材料特性(输入)和环境影响(EI)值(输出)之间的相关面。遗传算法(GA)随后用于快速识别相关曲面的最小点,从而暴露了最大程度可持续材料的特性。与ANN进行比较,发现比经典多项式回归(PR)插值/预测更准确,敏感性和多准则分析进一步证实了所提出方法论在材料特性和相对重要性值变化下的稳定性。分配给输入属性。提出了有关制造最大可持续性液体容器的材料选择的名义演示,表明通过适当地选择相关的输入属性和所需的材料选择标准,可以将所提出的方法应用于广泛的材料选择任务。

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