具有先进电网支持的HVDC混合智能换流变压器

Moazzam Nazir, J. Enslin
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引用次数: 2

摘要

高压直流输电系统通常用于长距离电力传输,因为它们具有诸如损耗最小的大容量电力传输、先进的控制特性和连接异步交流网络的能力等优点。在两种最常见的高压直流技术中;电压源变换器HVDC (vcs -HVDC)和线路整流变换器HVDC (lc -HVDC),前者具有增强的控制特性以及不依赖同步电机进行整流。然而,由于涉及高速开关,它的损耗较高,涉及复杂的栅极驱动电路,过载能力较弱,由于元件数量较多,在较高额定值下不可用,可靠性较低。本文的重点是通过在逆变侧变压器中性点和换流站地之间集成基于电力电子的模块,将逆变侧变压器转换为智能变压器,从而提高逆变侧变压器的可靠性,同时降低控制复杂性。该模块使传统的换流变压器能够进行电压调节,谐波隔离,电压和阻抗平衡。这增强了lc - hvdc对换相故障的鲁棒性,最大限度地减少了直流电源恢复时间,并保护其免受干扰,如太阳风暴和高海拔核爆炸。所提出的方法也被描述为引入功率流控制能力,在交流线路并联交流/直流传输。利用PSCAD/EMTDC在CIGRE基准模型上对所提出的方法进行了评估,结果验证了它是解决多个HVDC问题的有希望的解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hybrid Smart Converter Transformer for HVDC with Advanced Grid Support
The HVDC systems are typically utilized for long distance power transmission due to their advantages like minimal-loss bulk power transmission, advanced control features and capability to interconnect asynchronous AC networks. Among the two most common HVDC technologies; voltage source converter HVDC (VSC-HVDC) and line commutated converter HVDC (LCC-HVDC), the former has enhanced control features along with non-dependence upon synchronous machines for commutation. However, it suffers from higher losses due to the involvement of high-speed switching, involves sophisticated gate-driver circuitry, has a weak overload capability, suffers from non-availability in higher ratings and lower reliability due to higher component count. This paper is focused on enhancing the reliability along with reduced control complexity of the highly mature LCC-HVDC technology by converting the inverter-side transformer into smart one through integration of a power electronics-based module between its neutral and converter-station ground. The module enables the conventional converter transformer to perform voltage regulation, harmonics isolation, voltage and impedance balancing. This leads to enhanced robustness of LCC-HVDC against commutation failure, minimization of DC power recovery time and protection against disturbances, such as, solar storms and high-elevation nuclear explosions. The proposed approach is also depicted to introduce power flow control capabilities in AC-tie lines for parallel AC/DC transmission. The PSCAD/EMTDC is utilized to evaluate the proposed approach on the CIGRE benchmark model and the results verify it as a promising solution to multiple HVDC problems.
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