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Municipal solid waste management and greenhouse gas emission control through an inexact optimization model under interval and random uncertainties

机译:在间隔和随机不确定性下,通过不准确的优化模型进行市政固体废物管理和温室气体排放控制

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摘要

Rapid increases in the amounts of untreated municipal solid waste (MSW) and discharged greenhouse gases (GHGs) from waste treatment processes have caused great challenges to urban development and environmental protection. This study aimed to develop an integrated interval-stochastic optimization model to support regional MSW management in China, where the parameters which show large variations were expressed as birandom variables, whereas the parameters with small fluctuation were assumed to be interval numbers. The main objective of this optimization model was to minimize the total cost with simultaneous considerations of MSW treatment and GHG control requirements. The stochastic equilibrium-based chance constrained programming technique and interactive two-step algorithms were used to solve this model. Among many types of solutions with various constraint-violation levels, the solutions with balanced characteristics were recommended as the decision basis. Compared with existing management schemes, the model solutions showed advantages in cost reduction and climate-change impact mitigation.
机译:从废物处理过程中,未经处理的市政固体废物(MSW)和排出的温室气体(GHG)迅速增加,对城市发展和环境保护产生了巨大挑战。本研究旨在开发一个综合间隔 - 随机优化模型,以支持中国的区域MSW管理,其中显示大变化的参数表示为Birandom变量,而假设具有小波动的参数是间隔数。该优化模型的主要目的是最大限度地减少总成本,同时考虑MSW处理和温室气体控制要求。使用随机均衡的机会约束规划技术和交互式两步算法来解决该模型。在许多类型的解决方案中,具有各种约束违规水平的解决方案,建议使用平衡特性的解决方案作为决策。与现有管理计划相比,模型解决方案在降低成本和气候变化影响下表现出优势。

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