论文标题

超级省力的能量负载的超级量化集合以减少需求响应扰动后的同步

Super-relaxation of space-time-quantized ensemble of energy loads to curtail their synchronization after demand response perturbation

论文作者

Luchnikov, Ilia, Métivier, David, Ouerdane, Henni, Chertkov, Michael

论文摘要

恒温控制载荷(TCL)的合奏为系统操作员平衡电网提供了重要的需求响应储备。但是,这也导致整体内各个设备的寄生同步,从而在整体的综合能源消耗中产生了长时间的后响应振荡。同步最终被波动破坏,从而导致(需求前响应)稳态。但是,这种天然的非同步或对统计稳定状态的放松太长。该问题的解决方案在于测量整体的瞬时消耗,并将其用作反馈以反馈在on-和off-状态之间整体设备的随机切换。简化的连续时间模型表明,经过精心调整的非线性反馈会导致集成能量消耗的快速(超级)放松。由于状态信息和控制信号都是离散的,因此对实际的TCL设备操作进行了量化,因此必须考虑实现现实的TCL集合建模。在这里,假设状态的特征是室内温度(量化舒适度)和空调制度(打开,关闭),我们基于状态过渡的概率描述构建了一个离散模型。我们证明了超级释放在这样更现实的环境中,并且虽然它在量化模型的随机矩阵中稳定,但它仍然对时间离散化方案敏感。为了在超级放松和客户的舒适度之间达到平衡,我们分析了超级放松对时空量化细节的依赖性,并提供了一个简单的分析标准,以避免消费中的不良振荡。

Ensembles of thermostatically controlled loads (TCL) provide a significant demand response reserve for the system operator to balance power grids. However, this also results in the parasitic synchronization of individual devices within the ensemble leading to long post-demand-response oscillations in the integrated energy consumption of the ensemble. The synchronization is eventually destructed by fluctuations, thus leading to the (pre-demand response) steady state; however, this natural desynchronization, or relaxation to a statistically steady state, is too long. A resolution of this problem consists in measuring the ensemble's instantaneous consumption and using it as a feedback to stochastic switching of the ensemble's devices between on- and off- states. A simplified continuous-time model showed that carefully tuned nonlinear feedback results in a fast (super-) relaxation of the ensemble energy consumption. Since both state information and control signals are discrete, the actual TCL devices operation is space-time quantized, and this must be considered for realistic TCL ensemble modelling. Here, assuming that states are characterized by indoor temperature (quantifying comfort) and air conditioner regime (on, off), we construct a discrete model based on the probabilistic description of state transitions. We demonstrate that super-relaxation holds in such a more realistic setting, and that while it is stable against randomness in the stochastic matrix of the quantized model, it remains sensitive to the time discretization scheme. Aiming to achieve a balance between super-relaxation and customer's comfort, we analyze the dependence of super-relaxation on details of the space-time quantization, and provide a simple analytical criterion to avoid undesirable oscillations in consumption.

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