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Cyber security requirements engineering for low-voltage distribution smart grid architectures using threat modeling

机译:使用威胁建模的低压配电智能电网架构的网络安全需求工程

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摘要

Incorporating renewable energy into a grid still poses a challenge, that can only be tackled with precise measurement and control. Transferring power from producer to consumer as locally as possible in order to maximize efficiency requires measurement and control functions to be present on the low-voltage grid level. This can only be achieved by massively interconnected, ICT-enhanced sensors and actuators. Interconnecting the former, in turn exposes the grid to various threats from cyberattacks. This creates the need for a holistic, structured and comprehensive approach to engineering a low-voltage smart grid architecture that allocates its resources in such a way that cyber security is preserved. While known previous work either lacks a risk-based approach, comprehensiveness or best practices, this article provides a smart grid-specific methodology that combines risk assessment and threat modeling to generate a holistic set of security requirements. Furthermore, it presents best practices to secure an archetypal smart low-voltage grid architecture based on a concrete example. It considers threats on the architectural, protocol, and device level, while also considering environmental constraints to assure security using mainly state-of-the-art mitigation measures.
机译:将可再生能源并入电网仍然构成挑战,只有通过精确的测量和控制才能解决。为了使效率最大化,从生产者到本地的电力传输尽可能地本地化,这需要在低压电网水平上具有测量和控制功能。这只能通过大规模互连,ICT增强的传感器和执行器来实现。互连前者又使网格面临来自网络攻击的各种威胁。这就需要一种整体,结构化和综合的方法来设计低压智能电网架构,该架构以维护网络安全的方式分配资源。尽管以前的已知工作缺乏基于风险的方法,全面性或最佳实践,但是本文提供了一种针对特定电网的智能方法,该方法结合了风险评估和威胁建模以生成整体的安全要求。此外,它基于一个具体示例提供了保护原型智能低压电网架构的最佳实践。它考虑了体系结构,协议和设备级别的威胁,同时还考虑了环境约束,主要使用最新的缓解措施来确保安全性。

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