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Evaluation of the resource effectiveness of circular economy strategies through multilevel Statistical Entropy Analysis

机译:通过多级统计熵分析评估循环经济策略资源效率

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In a circular economy (CE), materials, components and products should be kept at the highest level of functionality, while phenomena like dilution, mixing and contamination, often referred to as the loss of resources, should be avoided. One method that can assess the performance of systems to concentrate or avoid dilution of resources is Statistical Entropy Analysis (SEA). Up till now, the method has been applied on the substance level (elements and compounds) only, but showed its applicability to various scales and a variety of systems. Further development of the method allowed to consider information on the product, component and material levels, which makes the method applicable to different combinations of CE strategies, both destructive (e.g. recycling) and non-destructive (e.g. reuse). The method is demonstrated on a simplified vehicle life-cycle, which is modeled through four component groups and six materials. It shows that the method allows to evaluate different CE strategies and identify critical stages which lead to the most severe resource and functionality losses. Based on the methods results, it is possible to determine a perfect circularity reference level, representing a system state that preserves functionality and avoids resource losses. The introduction of a circularity reference level enables the establishment of a framework for resource effectiveness in which diluting and concentrating effects of activities (e.g. sorting) are quantified. The distance of a system to an ideal circular state determines the deviation from a resource-effective system that maintains the original product functionality over a maximum period of time, with minimal efforts.
机译:在循环经济(CE),材料,组件和产品应保持在最高级别的功能,而应该避免像稀释,混合和污染的现象,通常被称为资源损失。一种可以评估系统性能以集中或避免稀释资源的方法是统计熵分析(海)。到目前为止,该方法仅应用于物质水平(元素和化合物),但显示其对各种尺度和各种系统的适用性。进一步发展该方法的进一步发展允许考虑产品,组分和材料水平的信息,这使得该方法适用于CE策略的不同组合,既有破坏性(例如回收)和非破坏性(例如重用)。该方法在简化的车辆寿命周期上证明,其通过四个组分组和六种材料进行建模。它表明该方法允许评估不同的CE策略并确定导致最严重的资源和功能损失的关键阶段。基于方法结果,可以确定完美的圆形参考电平,表示保留功能并避免资源损耗的系统状态。循环参考水平的引入使得能够建立资源有效性的框架,其中量化活动的稀释和集中效应(例如分选)。系统到理想圆形状态的距离确定了与资源有效系统的偏差,该系统在最长时间内保持原始产品功能,其努力最小。

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