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Fast Load Shedding Scheme for Enhancing Reliability and Stability of Expanded Liquified Gas Plant

机译:提高扩建液化气装置可靠性和稳定性的快速减载方案

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A grid-isolated Liquefied Natural Gas (LNG) import terminal has been expanded to include liquefaction and export capabilities. The new electrical system contains two 65MW steam turbine generators and 30 load feeders with two intertie breakers connecting the generation systems of the import and export facilities. To prevent loss of power to the plant, during contingency, it is important to perform load-generation balance within 100ms. In addition, the system frequency should be maintained within the 95% of the nominal frequency to prevent system instability. An IEC 61850 based Fast Load Shedding (FLS) scheme is deployed in this new plant to operate for loss-of-power condition, either from the generators or from the existing intertie connections. Protection relays with communication capabilities to exchange IEC 61850 Generic Object-Oriented System Event (GOOSE) were used over redundant communication networks utilizing Parallel Redundancy Protocol (PRP) for high-speed communications within the plant. Two redundant FLS Controllers exchange GOOSE messages with feeder, motor, transformer and generator relays to capture breaker status and power flow information for reliable operation. In addition, compressor-loading interlocks over the same IEC 61850 PRP network are implemented using motor protection relays to ensure the availability of at least one fuel gas compressor at all times. This paper presents lessons learned from the design and deployment of the FLS scheme by utilizing the available protection relays and adding FLS Controllers. The design strategies, such as IEC 61850 GOOSE communications between relays and Controllers, redundant PRP networks, network quality of service, etc. are discussed. The challenges to integrate non-IEC 61850 devices into the scheme are also discussed. The FLS initiation logic (to arm and disarm the scheme), and adaptive load-generation balance design are presented with test results, with the objective of sharing experiences from the design and deployment of a FLS scheme that guarantees plant’s availability and stability.
机译:一个电网隔离的液化天然气(LNG)进口终端已经扩大,包括液化和出口能力。新电气系统包括两台65MW汽轮发电机和30条负载馈线,带有两个连接进出口设施发电系统的串联断路器。为防止电厂断电,在应急期间,重要的是在100ms内进行发电负荷平衡。此外,系统频率应保持在标称频率的95%以内,以防止系统不稳定。这座新电厂采用了基于IEC 61850的快速减载(FLS)方案,以在发电机或现有互联网络断电的情况下运行。保护继电器具有交换IEC 61850通用面向对象系统事件(GOOSE)的通信能力,可在冗余通信网络上使用,利用并行冗余协议(PRP)在电厂内进行高速通信。两个冗余FLS控制器与馈线、电机、变压器和发电机继电器交换GOOSE信息,以捕获断路器状态和功率流信息,从而实现可靠运行。此外,同一IEC 61850 PRP网络上的压缩机加载联锁通过电机保护继电器实现,以确保始终至少有一台燃气压缩机可用。本文介绍了通过利用现有保护继电器和添加FLS控制器,从FLS方案的设计和部署中吸取的经验教训。讨论了继电器和控制器之间的IEC 61850 GOOSE通信、冗余PRP网络、网络服务质量等设计策略。还讨论了将非IEC 61850设备集成到该方案中所面临的挑战。FLS启动逻辑(用于对方案进行防护和解除防护)和自适应负载生成平衡设计与测试结果一起提供,目的是分享FLS方案设计和部署的经验,以确保电厂的可用性和稳定性。

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