Design of Instrumentation and Control Components of Power Distribution Systems

Yuri A. Klimenko, Y. E. Lvovich, Andrey P. Preobrazhensky, Klimenko YuA, Lvovich YaE, AP Preobrazhensky, Юлія Клименко, Я.Е. Львович, Андрей Петрович Преображенский
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Abstract

Introduction. In recent years, the development of high-voltage power systems has received a boost due to the need for infrastructural support for priority development areas. Universal models and algorithms are required to implement processes in power components and identify their optimal parameters. However, there are no such solutions. Accordingly, there are no ready-made subsystems with control and optimization algorithms adequate to the tasks under consideration. The objective of the presented research is to develop an optimization subsystem for the design of control and measurement components of power distribution systems.Materials and Methods. Methods for constructing automated design systems, optimization, system analysis, mathematical modeling, and adaptive control were used. When selecting methods, we proceeded from the fact that the components of power distribution systems consisted of a finite number of elements. The synthesis of a power system includes tens or hundreds of sequential operations. This was taken into account in the developed models and algorithms.Results. The possibilities of managing and monitoring manufacturing processes (MP) for the production of components of low-voltage power distribution systems were shown in terms of checking the operability and correct functioning of processing equipment. A modular structure was created to allow the integration of CAD output files into the manufacturing processes of energy distribution system components. A functional diagram of a subsystem for control and monitoring of the manufacturing processes of the production of components of power distribution systems was developed. The proposed schematic diagram of production control showed how the data collection subsystem, management system, and operating mechanisms were involved in the control of operations. The multi-level optimization module model created within the framework of this research sequentially optimized the service intensity of the i-th block, the input flow separation coefficients, and the priorities of the original data flows that form the input flow of the i-th block.Discussion and Conclusion. The combined application of modeling, system analysis, and optimization methods maintains control of the accuracy of the generated power components. The algorithm for controlling electrical loads opens up opportunities for creating a mathematical model of a power supply system that combines management, control, and monitoring, which ultimately leads to an improvement in the quality of electric power. The solution can be in demand in the development of power systems of priority development areas.
配电系统仪表和控制组件的设计
导言。近年来,由于优先发展领域需要基础设施支持,高压电力系统的发展得到了推动。需要通用的模型和算法来实现电力元件的工艺流程并确定其最佳参数。然而,目前还没有这样的解决方案。因此,也没有现成的具有控制和优化算法的子系统来完成所考虑的任务。本研究的目标是为配电系统控制和测量组件的设计开发一个优化子系统。我们使用了构建自动设计系统、优化、系统分析、数学建模和自适应控制的方法。在选择方法时,我们从配电系统组件由有限数量的元素组成这一事实出发。电力系统的合成包括数十或数百个连续操作。我们在开发模型和算法时考虑到了这一点。通过检查加工设备的可操作性和正确功能,展示了管理和监控低压配电系统组件生产过程 (MP) 的可能性。创建了一个模块化结构,以便将 CAD 输出文件集成到能源分配系统组件的生产过程中。绘制了用于控制和监测配电系统组件生产过程的子系统功能图。拟议的生产控制原理图显示了数据收集子系统、管理系统和运行机制如何参与操作控制。在该研究框架内创建的多级优化模块模型依次优化了第 i 个区块的服务强度、输入流分离系数以及构成第 i 个区块输入流的原始数据流的优先级。建模、系统分析和优化方法的综合应用保持了对发电功率成分精度的控制。控制电力负载的算法为创建集管理、控制和监测于一体的供电系统数学模型提供了机会,最终可提高电力质量。该解决方案可满足优先发展地区电力系统的发展需求。
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