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输电线路负载能力:基于HVAC绝缘电缆和架空线路实验功率测量的能力图验证
Transmission Line Loadability: Capability Charts Validation by Experimental Power Measurements on HVAC Insulated Cables, and Overhead Lines
| 作者 | R. Benato · L. Rusalen |
| 期刊 | IEEE Transactions on Power Delivery |
| 出版日期 | 2025年9月 |
| 技术分类 | 储能系统技术 |
| 技术标签 | 储能系统 SiC器件 DAB |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | 电力线路 能力图 实验验证 定义更新 解析验证 |
语言:
中文摘要
针对各类输电线路,能力图是在P-Q平面上描述其可传输功率范围的图形化工具。本文通过为期三年的实际功率测量数据,对连接意大利与马耳他的最长HVAC海底绝缘电缆及意大利至奥地利的Soverzene-Lienz架空线路进行实验验证。为实现准确对比,本文改进并拓展了原有能力图,纳入了物理可行性、电压降、电压限值和最大功角偏移等先前未考虑的运行约束,并基于Ossanna定理对新模型进行了解析验证。该能力图可直观展示含串并联补偿装置的任意线路负载能力。
English Abstract
For any power line, the capability charts are graphical tools in the P-Q (active-reactive power) plane defining all its possible transmittable power. Their first formulation dates back to 2005, however, in this paper they are experimentally validated by means of long-term (3 years) measurements of the transmitted complex powers of one of the longest HVAC submarine insulated cable (IC) interconnecting Italy and Malta and of a HVAC overhead line (OHL) interconnecting Italy and Austria called Soverzene-Lienz. In order to allow these comparisons, improvement and generalization of the above-mentioned capability charts are necessary. Therefore, the paper presents an updated and enriched capability chart definition including all the possible operational constraints, not considered before, i.e., physical feasibility, voltage drop, voltage limits, and maximum shift angle. Then, an analytical validation of this novel capability charts is presented by exploiting an application of the Ossanna's theorem. The power of these capability charts lays in the immediate visualization of the loadability of any power line, even equipped with compensation systems (both series and shunt).
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SunView 深度解读
该输电线路负载能力评估技术对阳光电源大型储能系统并网具有重要应用价值。研究提出的改进能力图方法可直接应用于PowerTitan储能系统的并网规划,通过考虑电压降、功角偏移等约束,优化ST系列储能变流器的有功无功协调控制策略。特别是对含串并联补偿装置线路的建模方法,可指导储能系统在弱电网场景下的GFM构网型控制参数整定,提升电压支撑能力。该P-Q平面可视化工具可集成至iSolarCloud平台,实现储能电站传输能力的实时评估与预测性维护,为大规模储能接入电网提供理论支撑,降低并网风险。