论文标题
自主和可扩展SLE的网络物理组件
Cyber-physical components of an autonomous and scalable SLES
论文作者
论文摘要
将可再生能源和存储单元添加到电网中,导致了能源的产生和计费方式的变化。如果没有能源系统及其组件的统一观点,就无法管理这种转变。这种统一的视图是在智能本地能源系统(SLE)的想法中捕获的。当前,提出了各种孤立的控制和市场要素来解决网络约束,需求侧响应和实用性优化。他们依靠拓扑估计,预测和故障检测方法来完成其任务。这种脱节的设计导致大多数系统能够仅履行单个角色或对功能的变化和扩展具有抵抗力。通过向有限系统分配角色,功能责任和技术要求可以实现更统一的能量系统观点。通过将能源系统表示为分布式点对点(P2P)环境,这是可能的,在该环境中,每个单独的仪表上需求能量资源(DER)是仪表的消费者一侧的责任,负责其网络的一部分,并可以促进与包括网格在内的众多实体进行贸易。控制工程,市场和服务的进步,例如预测,拓扑识别和网络安全可以使这种交易和沟通能够安全,坚固。但是,为了实现这一优势,我们需要重新定义如何查看智能本地能源系统(SLE)中的子系统和互连的设计。在本文中,我们描述了一种通过将控制,市场和分析集成到每个系统中来实现整个系统设计的方法。我们建议使用物理,控制,市场和服务层来创建系统表示系统。
Adding renewable energy sources and storage units to an electric grid has led to a change in the way energy is generated and billed. This shift cannot be managed without a unified view of energy systems and their components. This unified view is captured within the idea of a Smart Local Energy System (SLES). Currently, various isolated control and market elements are proposed to resolve network constraints, demand side response and utility optimisation. They rely on topology estimations, forecasting and fault detection methods to complete their tasks. This disjointed design has led to most systems being capable of fulfilling only a single role or being resistant to change and extensions in functionality. By allocating roles, functional responsibilities and technical requirements to bounded systems a more unified view of energy systems can be achieved. This is made possible by representing an energy system as a distributed peer-to-peer (P2P) environment where each individual demand energy resource (DER) on the consumer's side of the meter is responsible for their portion of the network and can facilitate trade with numerous entities including the grid. Advances in control engineering, markets and services such as forecasting, topology identification and cyber-security can enable such trading and communication to be done securely and robustly. To enable this advantage however, we need to redefine how we view the design of the sub-systems and interconnections within smart local energy systems (SLES). In this paper we describe a way in which whole system design could be achieved by integrating control, markets and analytics into each system. We propose the use of physical, control, market and service layers to create system of systems representation.