双向输电多端高压直流联络线区域现货市场结算模型

Yaping Hu, Huafeng Zhou, Shuhao Sun, Yubin He, Jialei Wang, Cheng Dong, Jie Liu
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引用次数: 0

摘要

中国的资源和负荷中心反向分布,利用高压直流(HVDC)技术在最大范围内优化资源配置。多端高压直流电力可以自由控制,其双向传输、传输过程中的网损、输变电限制、相邻时段的变电限制等特点,对电力系统新环境下的现货市场结算模式提出了挑战。为此,本文提出了一种考虑双向传输和输电网损耗的高压直流联络线模型。在此基础上,本文进一步提出了考虑现货市场上并网输电价格的区域现货市场清算模型。该模型以区域总成本最小为目标,以直流联络线功率、机组通断状态和机组功率为决策变量,引入整数和非负连续变量对联络线传输方向进行优化和确定。然后在保证区域电网安全的前提下,得到区域电网的直流联络线输电功率计划、交流联络线输电功率计划、机组启停计划和机组功率计划。该模型最终实现了该地区风、太阳能、水、火资源的协同作用。采用三区域IEEE RTS-96系统进行计算,结果验证了所提模型的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Regional Spot Market Clearing Model for Multi-terminal High Voltage Direct Current Tie- Line with Bidirectional Transmission
China's resources and load centers are distributed in reverse, and high voltage direct current (HVDC) technology is utilized to optimize the allocation of resources in the maximum range. Multi-terminal HVDC power can be freely controlled, and its characteristics of bidirectional transmission, network losses in the transmission process, power transmission restrictions, and power change restrictions in adjacent periods bring challenges to the spot market clearing model in the new power system environment. So, this paper proposes a HVDC tie-line model considering the characteristics including bidirectional transmission and transmission network loss. On this basis, this paper further proposes a regional spot market clearing model that also considers the transmission price of the tie-line in the spot market. With the goal of minimizing the overall cost of the region, the DC tie-line power, unit on and off state, and unit power are used as decision variables in the proposed model, and integer and nonnegative continuous variables are introduced to optimize and determine the tie-line transmission direction. Then the DC tie-line transmission power schedule, the AC tie-line transmission power schedule, unit start-up and shutdown schedule, and unit power schedule of the regional power grid are obtained on the premise of ensuring the security of the regional power grid. The proposed model finally realizes the synergy of wind, solar, water, and fire resources in the region. The three-region IEEE RTS-96 system is used for calculation, and the results verify the validity of the proposed model.
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