论文标题

DC/AC转换器对同步机的网格友好匹配控制

Grid-friendly Matching Control of Synchronous Machines by DC/AC Converters in Bulk Power Networks

论文作者

Jouini, Taouba

论文摘要

一个基于逆变器的微电网是异质DC能源资源的集合,例如光伏阵列,燃料电池和能量存储设备,连接到交流分布网络,并独立于大量功率系统操作。能量转换通常由电压源逆变器中的电力电子设备管理。从批量功率系统中同步机的控制中得出,最近采用了不同的控制方案,以实现稳定的网络操作。绝大多数的学术和工业努力在实时运营期间选择了这些策略。 从动态平均DC/AC转换器模型开始,我们通过分析和通过模拟介绍其主要范围来审查不同的控制器。接下来,我们通过将传统同步机匹配的新替代方案来控制批量功率系统中的直流/交流转换器,并强调DC电路在控制体系结构中可以扮演的角色,这通常在传统策略中被忽略。与标准仿真方法相比,我们的控制器仅依赖于随时可用的直流侧测量值,并考虑到天然直流和交流存储元件。结果,我们的控制器通常更快,较不容易受到延迟和测量不准确的影响。我们还提供了对所建议的控制,闭环的各种插件特性的洞察力解释,例如稳态功率流量分析,与DC和AC端口相对于DC和AC端口,稳定性证明以及高级控制体系结构有助于增强控制器性能和进一步的控制目标,我们在分析和仿真方面都说明了这一点。

An islanded inverter-based microgrid is a collection of heterogeneous DC energy resources, e.g., photovoltaic arrays, fuel cells, and energy-storage devices, interfaced to an AC distribution network and operated independently from the bulk power system. Energy conversion is typically managed by power electronics in voltage source inverters. Drawing from the control of synchronous machines in bulk power systems, different control schemes have been recently adopted in order to achieve a stable network operation. The vast majority of academic and industrial efforts opt for these strategies during real-time operation. Starting with a dynamical averaged DC/AC converter model, we review different controllers by presenting their main scope analytically and through simulations. Next, we explore a new alternative of controlling DC/AC converters in bulk power systems by matching traditional synchronous machines with emphasis on the role that DC-circuit can play in control architecture, usually neglected in conventional strategies. Compared to standard emulation methods, our controller relies solely on readily available DC-side measurements and takes into account the natural DC and AC storage elements. As a result, our controller is generally faster and less vulnerable to delays and measurement inaccuracies. We additionally provide insightful interpretations of the suggested control, various plug-and-play properties of the closed-loop, such as steady-state power flow analysis, passivity with respect to the DC and AC ports, stability proof as well as high-level control architectures contributing to enhancing the controller performance and attaining further control goals, which we illustrate in both analysis and simulation.

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