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基于开关频率调制的VSG基频结温主动热控制方法
Active Thermal Control With Switching Frequency Modulation for Fundamental Frequency Junction Temperature of the VSG
| 作者 | Yiming Cao · Yingzhou Peng · Chongyu Zhao · Quanjie Wang · Zhikang Shuai |
| 期刊 | IEEE Journal of Emerging and Selected Topics in Power Electronics |
| 出版日期 | 2024年10月 |
| 技术分类 | 储能系统技术 |
| 技术标签 | 储能系统 IGBT 虚拟同步机VSG 可靠性分析 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | 虚拟同步发电机 IGBT 有源热控制 开关频率调制 结温波动 |
语言:
中文摘要
随着可再生能源的广泛应用,具备自同步并网能力的虚拟同步发电机(VSG)受到广泛关注。作为功率转换核心器件,IGBT因易发生故障而影响系统可靠性与寿命,成为研究重点。现有主动热控制(ATC)方法虽可调控IGBT芯片结温并延长寿命,但多需改动模块结构或导致电能质量下降,且忽视基频电流引起的长期热循环对周期性结温波动的影响。为此,本文提出一种基于开关频率调制的VSG内部IGBT主动热控制方法,有效降低IGBT平均结温及周期性结温波动。仿真与实验验证了该方法的有效性。
English Abstract
With the widespread utilization of renewable energy sources, the virtual synchronous generator (VSG) with self-synchronization grid-connection capability has received significant attention. As the core component for power conversion, IGBTs have been a focal point of research due to their susceptibility to failure, affecting reliability and lifespan. Existing studies have managed to control internal IGBT chip junction temperature and extend lifespan through appropriate active thermal control (ATC) methods. However, these methods either alter the structure of the original IGBT module or fail to compensate for the degradation in power quality. In addition, they neglect the impact of long-term thermal cycling induced by fundamental frequency current on periodic junction temperature fluctuations. Therefore, this article proposes an ATC method for internal IGBTs in VSG based on switching frequency modulation. This method reduces the average junction temperature of the IGBT and additionally periodic junction temperature fluctuation to some extent. Finally, the proposed method is validated through simulation and experimentation. The experimental results prove the effectiveness of the proposed method.
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SunView 深度解读
该基于开关频率调制的VSG热控制技术对阳光电源储能与光伏产品线具有重要应用价值。针对ST系列储能变流器和PowerTitan大型储能系统,该方法可在不改动IGBT模块结构的前提下,通过动态调节开关频率有效降低功率器件平均结温及基频热循环引起的周期性温度波动,直接提升系统可靠性与寿命。对于阳光电源已广泛应用的构网型GFM控制和VSG技术,该热管理策略可与现有控制算法深度融合,在保证电能质量的同时实现IGBT热应力优化。技术可扩展至SG系列光伏逆变器和车载OBC等高功率密度产品,结合iSolarCloud平台实现预测性热管理,为功率器件全生命周期管理提供新思路。