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An Empirical Study of Communication Infrastructures Towards the Smart Grid: Design, Implementation, and Evaluation

机译:面向智能电网的通信基础设施的实证研究:设计,实施和评估

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The smart grid features ubiquitous interconnections of power equipments to enable two-way flows of electricity and information for various intelligent power management applications, such as accurate relay protection and timely demand response. To fulfill such pervasive equipment interconnects, a full-fledged communication infrastructure is of great importance in the smart grid. There have been extensive works on disparate layouts of communication infrastructures in the smart grid by surveying feasible wired or wireless communication technologies, such as power line communications and cellular networks. Nevertheless, towards an operable, cost-efficient and backward-compatible communication solution, more comprehensive and practical understandings are still urgently needed regarding communication requirements, applicable protocols, and system performance. Through such comprehensive understandings, we are prone to answer a fundamental question, how to design, implement and integrate communication infrastructures with power systems. In this paper, we address this issue in a case study of a smart grid demonstration project, the Future Renewable Electric Energy Delivery and Management (FREEDM) systems. By investigating communication scenarios, we first clarify communication requirements implied in FREEDM use cases. Then, we adopt a predominant protocol framework, Distributed Network Protocol 3.0 over TCP/IP (DNP3 over TCP/IP), to practically establish connections between electric devices for data exchanges in a small-scale FREEDM system setting, Green Hub. Within the real-setting testbed, we measure the message delivery performance of the DNP3-based communication infrastructure. Our results reveal that diverse timing requirements of message deliveries are arguably primary concerns in a way that dominates viabilities of protocols or schemes in the communication infrastructure of the smart grid. Accordingly, although DNP3 over TCP/IP is widely considered as a smart grid co- munication solution, it cannot satisfy communication requirements in some time-critical scenarios, such as relay protections, which claim a further optimization on the protocol efficiency of DNP3.
机译:智能电网具有电力设备无处不在的互连功能,可实现双向的电力和信息流,以实现各种智能电源管理应用,例如精确的继电保护和及时的需求响应。为了实现这种普遍的设备互连,完善的通信基础设施在智能电网中至关重要。通过调查可行的有线或无线通信技术(例如电力线通信和蜂窝网络),在智能电网中的通信基础设施的不同布局方面已进行了广泛的工作。然而,对于可操作的,成本有效的和向后兼容的通信解决方案,仍然迫切需要关于通信要求,适用协议和系统性能的更全面和实用的理解。通过这种全面的了解,我们倾向于回答一个基本问题,即如何设计,实现和集成通信基础设施与电力系统。在本文中,我们通过一个智能电网示范项目“未来可再生电能输送和管理(FREEDM)系统”的案例研究解决了这个问题。通过调查通信方案,我们首先阐明了FREEDM用例中暗含的通信要求。然后,我们采用一个主要的协议框架,即基于TCP / IP的分布式网络协议3.0(基于TCP / IP的DNP3),以在小型FREEDM系统设置Green Hub中实际建立电气设备之间的连接以进行数据交换。在真实设置的测试平台中,我们测量基于DNP3的通信基础结构的消息传递性能。我们的结果表明,在控制智能电网的通信基础架构中协议或方案的可行性方面,消息传递的各种时序要求可以说是首要关注的问题。因此,尽管基于TCP / IP的DNP3被广泛认为是一种智能电网通信解决方案,但它不能满足某些时间紧迫的情况下的通信要求,例如继电保护,这要求对DNP3的协议效率进行进一步优化。

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