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Energy evaluation method and its optimization models for process planning with stochastic characteristics: A case study in disassembly decision-making

机译:具有随机特征的过程计划的能量评估方法及其优化模型:以拆卸决策为例

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摘要

Disassembly is not only a premise of products recycling, but also an important link of products reman-ufacturing. However, used products suffer from the influence of a variety of uncertainties. The randomness of disassembly process is a significant feature. In this paper, a disassembly network is established, in which lengths of arc are stochastic variables with a specified power subject to specified distributions and denote removal times of parts, the energy evaluation method integrating two or more uncertain variables is proposed. According to different disassembly decision-making criteria, three types of typical stochastic programming models of a disassembly process are developed, namely the minimum expected value model, the maximum energy disassemblability degree model and D'-minimum energy model. The energy probability distributions are determined through the application of stochastic linear programming and maximum entropy principle. Synchronously, based on obtained theoretical probability distributions, the quantitative evaluation and stochastic programming of a disassembly process are realized. The simulation results show that the proposed method is feasible and effective to solve the stochastic programming issue with time-varying stochastic characteristics.
机译:拆卸不仅是产品回收的前提,还是产品再制造的重要环节。但是,二手产品受到各种不确定性的影响。拆卸过程的随机性是一个重要特征。本文建立了一个拆卸网络,其中电弧的长度是具有指定功率的随机变量,服从指定的分布并表示零件的去除时间,提出了一种将两个或多个不确定变量相结合的能量评估方法。根据不同的拆卸决策标准,建立了三种典型的拆卸过程随机规划模型,即最小期望值模型,最大能量可分解度模型和D'-最小能量模型。能量概率分布是通过随机线性规划和最大熵原理确定的。同步地,基于获得的理论概率分布,实现了拆卸过程的定量评估和随机规划。仿真结果表明,该方法对于解决具有时变随机特征的随机规划问题是可行和有效的。

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