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Towards accurate modeling of dynamic startup/shutdown and ramping processes of thermal units in unit commitment problems

机译:对单元承诺问题中的热力单元的动态启动/关闭和升温过程进行精确建模

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摘要

The unit commitment problem is fundamental to the optimal operation of power systems, which is solved by Independent System Operators routinely in day-ahead markets to guarantee operational security and economics. Continuously enhancing the unit commitment model to improve modeling accuracy in response to future market challenges and participants' requests has always been one of Independent System Operators' main tasks, for deriving physically feasible and operationally reliable unit commitment and dispatch schedules that can render better economic efficiency. Thermal units account for 68% of the total installed electricity generation capacity and supply 63% of total electricity consumption in U.S.. Startup time of thermal units could vary from hours to days, and the corresponding startup cost could be 100 times different and as high as $500,000 per startup. To this end, this paper accurately accesses detailed startup and shutdown procedures of thermal units by simulating dynamic unit temperature evolution and modeling sequential unit operation stages. In addition, dynamic ramping and forbidden zones are also considered to further enhance the modeling accuracy. A modified IEEE 118-bus system is adopted to validate and evaluate the proposed models. (C) 2019 Elsevier Ltd. All rights reserved.
机译:机组承诺问题是电力系统最佳运行的基础,独立系统运营商通常会在日前市场中定期解决此问题,以确保运行安全性和经济性。不断增强单位承诺模型以响应未来的市场挑战和参与者的要求来提高建模精度一直是独立系统运营商的主要任务之一,目的是得出物理上可行且操作可靠的单位承诺和调度时间表,从而提高经济效益。热能装置占美国总装机容量的68%,供应量占总用电量的63%,热能装置的启动时间可能从数小时到数天不等,相应的启动成本可能相差100倍,甚至高达每个创业公司500,000美元。为此,本文通过模拟动态单元温度变化并为顺序的单元运行阶段建模,来准确访问热单元的详细启动和关闭程序。此外,还考虑了动态斜坡和禁区,以进一步提高建模精度。采用改进的IEEE 118总线系统来验证和评估所提出的模型。 (C)2019 Elsevier Ltd.保留所有权利。

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