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Dynamic Rating of Transmission Lines for Improved Wind Energy Integration in Complex Terrain

机译:复杂地形中改善风能集成的输电线路动态额定值

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摘要

Transmission congestion is a growing concern that could limit integration on new renewable energy projects to the electricity grid. Because construction of new transmission lines is a long and expensive process, transmission service providers are investigating dynamic line rating (DLR) mehtods that could potentially increase capacity of existing transmission lines. DLR is a smart-grid technology that enables rating of power lines based on real-time conductor temperature that is dependent on local weather conditions. whereas conventional practice relies on a static rating, which is based on conservative local weather assumptions to limit transmission line sag.With todays improved wind and weather models, communication systems, and computing hardware, a computational approach to DLR is a possibility. Current thesis research investigates year-long wind patterns over a large test bed area in southern Idaho, in collaboration with Idaho National Laboratory and Idaho Power Company. To instil further confidence in the DLR approach, as proposed in IEEE Standard 738, the ordinary differential equation model that governs conductor temperature change in time, has been first validated by coupled computational fluid dynamics (CFD) and heat transfer analysis. Both steady-state and transient thermal rating assumptions have been evaluated using field measurements and high order numerical methods. Under low-wind conditions it is found that the steady-state thermal-rating assumption can cause unnecessary curtailments of power.To better model the variation of temperature along the path of a transmission line, a large-eddy simulation (LES) of winds over the moderately complex terrain of the test bed area has been performed using clusters of graphics processing units (GPU). LES results indicate that wind speed as well as direction relative to the transmission line is a critical factor in determining the conductor temperature, which implies that numerical wind models need to provide accurate estimates of wind speed and direction in regions of complex terrain.
机译:输电拥堵是一个日益严重的问题,可能会限制新可再生能源项目与电网的整合。由于新传输线的建设是一个漫长且昂贵的过程,因此传输服务提供商正在研究可能会增加现有传输线容量的动态线路额定值(DLR)方法。 DLR是一种智能电网技术,可根据实时导体温度(取决于当地天气状况)对电源线进行评级。常规方法依靠静态等级,该等级基于保守的当地天气假设来限制输电线路的垂度。随着当今风和天气模型,通信系统和计算硬件的改进,DLR的计算方法成为可能。当前的论文研究是与爱达荷州国家实验室和爱达荷州电力公司合作,对爱达荷州南部一个大型试验台上长达一年的风型进行调查。为了进一步增强对DLR方法的信心,如IEEE标准738中所述,控制导体温度随时间变化的普通微分方程模型已首先通过耦合计算流体动力学(CFD)和传热分析进行了验证。稳态和瞬态热额定值假设均已通过现场测量和高阶数值方法进行了评估。在低风条件下,发现稳态热额定值假设会导致不必要的功率削减。为了更好地模拟沿传输线路径的温度变化,对风的大涡模拟(LES)测试平台区域的中等复杂地形已使用图形处理单元(GPU)集群执行。 LES结果表明,风速以及相对于传输线的方向是确定导体温度的关键因素,这意味着数值风模型需要提供复杂地形区域中风速和风向的准确估计。

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    Phillips Tyler Bennett;

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