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Engineering and Validating Cyber-Physical Energy Systems: Needs, Status Quo, and Research Trends

机译:工程和验证网络物理能源系统:需求,现状和研究趋势

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A driving force for the realization of a sustainable energy supply is the integration of renewable energy resources. Due to their stochastic generation behaviour, energy utilities are confronted with a more complex operation of the underlying power grids. Additionally, due to technology developments, controllable loads, integration with other energy sources, changing regulatory rules, and the market liberalization, the system's operation needs adaptation. Proper operational concepts and intelligent automation provide the basis to turn the existing power system into an intelligent entity, a cyber-physical energy system. The electric energy system is therefore moving from a single system to a system of systems. While reaping the benefits with new intelligent behaviors, it is expected that system-level developments, architectural concepts, advanced automation and control as well as the validation and testing will play a significantly larger role in realizing future solutions and technologies. The implementation and deployment of these complex systems of systems are associated with increasing engineering complexity resulting also in increased engineering costs. Proper engineering and validation approaches, concepts, and tools are partly missing until now. Therefore, this paper discusses and summarizes the main needs and requirements as well as the status quo in research and development related to the engineering and validation of cyber-physical energy systems. Also research trends and necessary future activities are outlined.
机译:实现可持续能源供应的驱动力是可再生能源的整合。由于其随机的发电行为,能量公用事业面临着底层电网的更复杂操作。此外,由于技术开发,可控载荷,与其他能源集成,不断变化的监管规则,以及市场自由化,系统的操作需要适应。适当的操作概念和智能自动化提供了将现有电力系统转换为智能实体,网络物理能源系统的基础。因此,电能系统从单个系统移动到系统系统。在获得新的智能行为中的好处的同时,预计系统级开发,架构概念,先进的自动化和控制以及验证和测试将在实现未来的解决方案和技术方面发挥显着更大的作用。这些复杂系统的实施和部署与增加的工程复杂性同样增加了工程成本。到目前为止,概念和验证方法适当的工程和验证方法和工具部分缺少。因此,本文讨论并总结了与网络 - 物理能源系统的工程和验证有关的研发的主要需求和要求以及现状。还概述了研究趋势和必要的未来活动。

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