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Voltage collapse in complex power grids

机译:复杂电网中的电压崩溃

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摘要

A large-scale power grid's ability to transfer energy from producers to consumers is constrained by both the network structure and the nonlinear physics of power flow. Violations of these constraints have been observed to result in voltage collapse blackouts, where nodal voltages slowly decline before precipitously falling. However, methods to test for voltage collapse are dominantly simulation-based, offering little theoretical insight into how grid structure influences stability margins. For a simplified power flow model, here we derive a closed-form condition under which a power network is safe from voltage collapse. The condition combines the complex structure of the network with the reactive power demands of loads to produce a node-by-node measure of grid stress, a prediction of the largest nodal voltage deviation, and an estimate of the distance to collapse. We extensively test our predictions on large-scale systems, highlighting how our condition can be leveraged to increase grid stability margins.
机译:大型电网将能量从生产者传递到消费者的能力受到网络结构和潮流非线性物理的制约。已经观察到违反这些约束条件会导致电压崩溃停电,其中节点电压在急剧下降之前会缓慢下降。但是,测试电压崩溃的方法主要是基于仿真的,因此对电网结构如何影响稳定裕度的理论了解很少。对于简化的潮流模型,在此我们得出一个封闭形式的条件,在该条件下电网可以避免电压崩溃。该条件将网络的复杂结构与负载的无功功率需求结合在一起,以产生逐节点的电网应力测量,最大节点电压偏差的预测以及崩溃距离的估计。我们在大型系统上广泛测试了我们的预测,强调了如何利用我们的条件来提高电网稳定性。

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