多尺度时间变率下化工能源系统设计的通用优化框架

IF 3.9 2区 工程技术 Q2 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Nicholas N. Kalamaris , Christos T. Maravelias
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引用次数: 0

摘要

我们提出了一个通用的优化框架,用于设计在多个时间尺度上经历可变性的化学和能源系统。受脱碳制造的环境需求的推动,我们试图了解化学和能源系统在物理和经济条件下的时间变化的可行性。我们的框架是基于一个系统特定的上层结构和一组单元模型,它包括一个代表性的时间结构和相应的数学程序,用于操作知情设计。该框架可用于确定单元操作的基本配置和设计,灵活操作的物料和能量流动的相关时间概况,以及相关的热力学变量(如温度和压力)。它还使我们能够确定最佳设计如何随着时间的推移而演变。理解这些行为是设计在可变性下成功运行的系统的关键。我们应用我们的框架来研究绿色氨合成,并确定在小时、季节和(多)年时间尺度上具有不同操作行为的最佳设计。这包括储能的充放电决策、大规模储罐的行为以及能源的季节性购买/销售。在考虑不同电网的情况下,我们还观察了设计中的过渡点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A general optimization framework for designing chemical & energy systems subject to multi-scale temporal variability

A general optimization framework for designing chemical & energy systems subject to multi-scale temporal variability
We present a general optimization framework for designing chemical and energy systems that experience variability at multiple timescales. Motivated by an environmental need to decarbonize manufacturing, we seek to understand the viability of chemical and energy systems subject to temporal variability in physical and economic conditions. Our framework is based on a system specific superstructure and set of unit models, and it includes a representative time structure and the corresponding mathematical program for operation-informed design. The framework can be applied to determine the basic configuration and design of unit operations, associated time profiles of material and energy flows for flexible operation, and relevant thermodynamic variables (like temperature and pressure). It also allows us to identify how optimal design evolves over time. Understanding these behaviors is key to designing systems that successfully operate under variability. We apply our framework to study green ammonia synthesis, and identify optimal designs with distinct operational behavior at hourly, seasonal, and (multi-)yearly timescales. This includes charge/discharge decisions for energy storage, the behavior of mass storage tanks, and the seasonal purchase/sale of energy. We also observe transition points in design when considering different power grids.
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来源期刊
Computers & Chemical Engineering
Computers & Chemical Engineering 工程技术-工程:化工
CiteScore
8.70
自引率
14.00%
发文量
374
审稿时长
70 days
期刊介绍: Computers & Chemical Engineering is primarily a journal of record for new developments in the application of computing and systems technology to chemical engineering problems.
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