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Primary and backup protection for fault current limited MVDC shipboard power systems

机译:故障电流受限的MVDC船用电源系统的主保护和备用保护

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Robust management of short-circuit faults in MVDC systems must rely on a combination of communication-dependent and communication-independent methods. In one approach, an MVDC system is designed to operate without breakers [1], so both methods rely on coordinated control of power converters and non-fault-breaking mechanical disconnect switches to effect the fault clearance process-fault detection and localization, complete de-energizing of the system, isolation of faulted branch and re-energizing of the system. The Centralized Fault Management (CFM) method depends on communication between distributed sensors and a central decision-making authority to achieve fastest primary protection. It is backed up by a local response function, Localized Fault Management (LFM), that takes over in case of failure in the primary method. To validate not only that the CFM and LFM can work independently but also that they can perfectly integrate and are compatible with each other, an overall shipboard power system was first modeled and simulated within a MATLAB-Simulink environment and partially implemented in a Hardware in Loop (HIL) environment.
机译:MVDC系统中短路故障的鲁棒管理必须依赖于通信相关方法和通信独立方法的组合。在一种方法中,MVDC系统被设计为在不使用断路器的情况下运行[1],因此这两种方法都依赖于电源转换器和无故障机械断路开关的协调控制,以实现故障清除过程,故障检测和定位,完整的故障诊断和定位。 -为系统通电,隔离故障分支并为系统重新通电。集中式故障管理(CFM)方法取决于分布式传感器与中央决策机构之间的通信,以实现最快的初级保护。它由本地响应功能“本地故障管理”(LFM)进行备份,该功能可以在主要方法发生故障的情况下接管工作。为了不仅验证CFM和LFM可以独立工作,而且还可以验证它们可以完美集成并彼此兼容,首先在MATLAB-Simulink环境中对整个舰船动力系统进行了建模和仿真,并部分地在“硬件在环”中实现(HIL)环境。

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