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Stochastic optimization of carbon mitigation path in Shenzhen based on uncertainty of power demand

机译:基于电力需求不确定性的深圳碳缓解路径随机优化

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The core elements of urban carbon emission mitigation optimization path include structural adjustment, low energy supply, technological innovation, and enhanced energy demand management and improvement. How to optimize the combination of these factors to achieve the city’s emission mitigation goals at the lowest cost is very important to study the path of urban low-carbon development. Due to many factors involved, it is difficult to solve this problem by building a mathematical optimization model that includes all the elements. This paper minimizes the total cost of emission mitigations in various departments in Shenzhen, combines the uncertainty of parameters and constraints, and uses mathematically standardized method to establish a stochastic optimization model for urban carbon emissions paths. Considering the uncertainty of energy demand, the optimal promotion rate of technical measures of the city’s various departments in the stochastic optimization model during the planning period can be obtained, and the optimal solution of the city’s low-carbon development optimization path can be formed.
机译:城市碳排放减缓优化路径的核心要素包括结构调整,低能源供应,技术创新,增强能源需求管理和改进。如何优化这些因素的组合,以实现城市的排放缓解目标,最低成本对于研究城市低碳发展的道路非常重要。由于涉及许多因素,难以通过构建包括所有元素的数学优化模型来解决这个问题。本文最大限度地减少了深圳各部门排放减压总成本,结合了参数和约束的不确定性,并使用数学上标准化的方法为城市碳排放路径建立了随机优化模型。考虑到能源需求的不确定性,可以获得规划期间城市各部门各部门技术措施的最佳推广率,可以形成城市低碳发展优化路径的最佳解决方案。

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