信息技术的应用前景和智能自动化系统的原理,以管理智慧城市能源供应对象的安全状态

A. M. Karasevich, I. Tutnov, G. Baryshev
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引用次数: 5

摘要

本文重点介绍了一种设计高度自动化软硬件综合体的方法,旨在控制支持智能城市集中供热和电力系统的电网和单元的安全性。我们将这种情况理解为智能城市的任何能源消费者将随时提供其生活所需的能源和燃料,包括可能发生技术和自然灾害的时期。所介绍的方法的基础是两个主要的科学原理。一是通过合理选择智慧城市燃料-能量平衡的不同发电源比例,包括大型燃料发电厂和小功率自主发电机,分散智慧城市能源安全风险。例如,它们可以是太阳能集热器、热管等风能机械。第二个原则是智慧城市的能源效率和节能。在我们的案例中,这一原则是通过为智慧城市的消费者提供热量、热水和电力的能源系统和综合体的安全状态监测和运行的高度自动化,以及对可能发生的紧急情况的预防性警报和所有能源设施的高可靠性来实现的。我们制定了管理智能软硬件综合体建设的主要原则,用于保持对与电源和输电网功能相关的风险的高度自动化控制。该原则适用于开放块架构,包括高度自治的测量信息主注册、数据分析和自动化操作系统的块模块。它还描述了用于控制智能城市能源供应风险的一般It工具,并展示了一个高度自动化系统的结构,该系统旨在为智能城市的能源供应系统选择技术和管理解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The prospects of application of information technologies and the principles of intelligent automated systems to manage the security status of objects of energy supply of smart cities
The paper focuses on one of the methods of designing a highly-automated hardware-software complex aimed at controlling the security of power grids and units that support both central heating and power systems of smart cities. We understand this condition as a situation when any energy consumers of smart cities will be provided with necessary for their living amounts of energy and fuel at any time, including possible periods of techno genic and natural hazards. Two main scientific principles lie in the base of the approach introduced. The first one is diversification of risks of energy security of smart cities by rational choosing the different energy generation sources ratio for fuel-energy balance of a smart city, including large fuel electric power plants and small power autonomous generators. For example, they can be wind energy machinery of sun collectors, heat pipes, etc. The second principle is energy efficiency and energy saving of smart cities. In our case this principle is realized by the high level of automation of monitoring and operation of security status of energy systems and complexes that provide the consumers of smart cities with heat, hot water and electricity, as well as by preventive alert of possible emergencies and high reliability of functioning of all energy facilities. We formulate the main principle governing the construction of a smart hardware-software complex used to maintain a highly-automated control over risks connected with functioning of both power sources and transmission grids. This principle is for open block architecture, including highly autonomous block-modules of primary registration of measuring information, data analysis and systems of automated operation. It also describes general IT-tools used to control the risks of supplying smart cities with energy and shows the structure of a highly-automated system designed to select technological and managerial solutions for a smart city's energy supply system.
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