使用基于模拟的测试方法对杜克能源自动化项目进行现场验收测试

Robert Wang, C. Pritchard, S. Cooper, P. Hoffman, John Hart, Erich Keller, Bob Westphal
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摘要

作为未来配电方案概念验证的一部分,杜克能源公司已经完成了罗利中央商务区地下系统配电系统馈线项目的第二阶段。馈线由两条径向运行的12kV地下电路组成。在一期工程中,在9个网络拱顶安装了集成可见断路的固体介质真空开关。为实现中央商务区高电力可用性,开发了通信辅助高速保护系统。其独特的通信架构采用IEC 61850 GOOSE消息传递和并行串行通信,使继电器能够在项目完成后通过九个保险库开关中断,隔离和恢复电力。验收测试的一个重要方面是测试保护和控制方案。在这个方案中,18个中继和两种通信技术作为一个系统一起工作。由于网络保护系统及其组件的相互依赖性,将每个组件作为系统的一部分进行测试至关重要。通过描述电力系统的初始状态、事故故障以及系统发生中断、隔离和恢复后的预期状态,定义了多个验收准则。通过使用计算测试集输出的电力系统模型,将验收标准直接配置到测试环境中。一台PC机总共控制9个测试集,根据选定的测试用例同时注入所有信号。安装后将保护系统投入实际操作的要求是完成现场验收测试。现场验收测试包括调试期间对单个交换节点的测试,随后是涉及所有交换机的一系列同步网络系统响应测试。本文讨论了网络安装、现场验收测试计划、计划中发现的测试突发事件以及现场验收测试的结果。
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Site acceptance testing of a Duke Energy automation project utilizing a simulation based test approach
As part of a proof of concept for future distribution schemes, Duke Energy has completed the second phase of a project on a distribution system feeder for the Raleigh Central Business District underground system. The feeder consists of two radially operated 12kV underground circuits. Solid dielectric vacuum switches with integrated visible break were installed in nine network vaults during phase 1 of the project. To achieve high electric service availability for the central business district, a communications-assisted, high-speed protection system was developed. Its unique communication architecture utilizes IEC 61850 GOOSE messaging and serial based communications in parallel, enabling the relays to interrupt, isolate and restore power via the nine vault switches once the project is completed. An important aspect of the acceptance test was testing the protection and control scheme. In this scheme 18 relays and two communication technologies are working together as a system. Due to the interdependency of the network protection system and its components, it was critical to test every component as part of a system. Multiple acceptance criteria were defined by describing the initial state of the power system, the incident fault and the expected system state after the interruption, isolation and restoration of the system had taken place. The acceptance criteria were directly configured into the test environment by using a power system model that calculated the test set outputs. A single PC controlled a total of nine test sets, simultaneously injecting all signals according to the selected test case. A requirement for placing the protection system into live operation after installation was the completion of field site acceptance testing. Site acceptance testing included testing the individual switching nodes during commissioning followed by a series of simultaneous network system response testing involving all of the switches. This paper discusses the network installation, site acceptance test planning, testing contingencies discovered during planning, and the outcomes of the site acceptance testing.
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