Mathematical models for determining limit operating modes in electrical networks with distributed generation plants

Yuri Bulatov, A. Kryukov, A. Cherepanov
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Abstract

Decentralization of electricity generation based on distributed generation plants is an important segment of the new technology platform for the power industry. On the basis of this approach, significant positive effects can be obtained, which consist in reducing financial costs of energy supply, increasing the uninterrupted power supply, improving the quality of electricity and stimulating the use of renewable energy sources. Effective use of distributed generation in electric power systems requires the development of methods and tools that provide coordinated management of normal, emergency and post-emergency modes. Of particular relevance is the problem of determining the limit operating modes of networks, at the nodal points of which relatively low power generators are connected. In some situations, for example, when using small hydraulic stations, groups of such generators can be located at significant distances for 6-10-20 kV distribution networks from consumption centers. In this case there will be a noticeable limitation of the regions of static aperiodic stability. The article presents the results of developments aimed at implementing methods for determining the limit operating modes by static aperiodic stability in networks with distributed generation plants. The proposed approach is based on the limit modes equations which provide the formation of effective algorithms for the operational finding of points belonging to the boundaries of stability regions. The results of the construction of the indicated areas for a 6 kV electric network with distributed generation plants based on low-power hydraulic stations are presented. Additionally, the transient processes in the studied electric power system were simulated in the Matlab system for various space points of the controlled mode parameters.
分布式发电厂电网极限运行模式确定的数学模型
基于分布式发电厂的分散式发电是电力行业新技术平台的重要组成部分。在此基础上,可以获得显著的积极效果,即降低能源供应的财务成本,增加不间断电力供应,提高电力质量,促进可再生能源的使用。有效利用分布式发电在电力系统中需要的方法和工具的发展提供正常的协调管理,紧急情况和事故后模式。特别相关的问题是确定网络的极限运行模式,在节点上连接着功率相对较低的发电机。在某些情况下,例如,当使用小型液压站时,这种发电机组可以位于距离消费中心很远的6-10-20千伏配电网络。在这种情况下,静态非周期稳定区域将有明显的限制。本文介绍了分布式发电网络中通过静态非周期稳定性确定极限运行模式方法的研究进展。该方法以极限模态方程为基础,提供了求解稳定区域边界点的有效算法。介绍了基于小功率水工站的6kv分布式电站电网的指示区建设结果。此外,在Matlab系统中对被控模式参数的各个空间点进行了电力系统暂态过程仿真。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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