论文标题

队列:异质恒温控制负载的协调,以提高需求灵活性

COHORT: Coordination of Heterogeneous Thermostatically Controlled Loads for Demand Flexibility

论文作者

Chen, Bingqing, Francis, Jonathan, Pritoni, Marco, Kar, Soummya, Bergés, Mario

论文摘要

需求灵活性对于电网越来越重要。仔细协调恒温控制的负载(TCLS)可以调节能源需求,降低运营成本并提高电网弹性。我们提出了一个新型的分布式控制框架,以协调异质住宅恒温控制载荷(队列)。队列是一种实用,可扩展和多功能的解决方案,可协调TCL的总体以共同优化网格级别的目标,同时满足每个TCL的最终用途要求和操作约束。为此,我们将网格尺度问题分解为子问题,并协调其解决方案,以使用乘数的交替方向方法(ADMM)找到全局最优值。 TCLS的本地问题分布在每个TCL上并并行计算,从而使队列具有高度可扩展性和隐私性。尽管每个TCL都构成组合和非凸约限制,但我们将这些约束特征为通过放松设置的凸,从而使同时在远程计划范围内可行地计算可行。协调后,每个TCL都负责自己的控制权,并以其首选的策略来跟踪商定的权力轨迹。在这项工作中,我们使用脉冲宽度调制将连续功率转换回离散的开/关驱动。队列可以推广到广泛的网格目标,我们通过三种不同的用例证明了这一点:生成以下,最大程度地减少升压和峰值负载减少。在一个著名的实验中,我们通过硬件中的模拟验证了我们的方法,包括通过智能恒温器控制的现实世界空调(AC),以及以现实世界数据痕迹建模的ACS的模拟实例。在15天的实验期间,队列平均每日峰值载荷减少12.5%,并保持舒适的温度。

Demand flexibility is increasingly important for power grids. Careful coordination of thermostatically controlled loads (TCLs) can modulate energy demand, decrease operating costs, and increase grid resiliency. We propose a novel distributed control framework for the Coordination Of HeterOgeneous Residential Thermostatically controlled loads (COHORT). COHORT is a practical, scalable, and versatile solution that coordinates a population of TCLs to jointly optimize a grid-level objective, while satisfying each TCL's end-use requirements and operational constraints. To achieve that, we decompose the grid-scale problem into subproblems and coordinate their solutions to find the global optimum using the alternating direction method of multipliers (ADMM). The TCLs' local problems are distributed to and computed in parallel at each TCL, making COHORT highly scalable and privacy-preserving. While each TCL poses combinatorial and non-convex constraints, we characterize these constraints as a convex set through relaxation, thereby making COHORT computationally viable over long planning horizons. After coordination, each TCL is responsible for its own control and tracks the agreed-upon power trajectory with its preferred strategy. In this work, we translate continuous power back to discrete on/off actuation, using pulse width modulation. COHORT is generalizable to a wide range of grid objectives, which we demonstrate through three distinct use cases: generation following, minimizing ramping, and peak load curtailment. In a notable experiment, we validated our approach through a hardware-in-the-loop simulation, including a real-world air conditioner (AC) controlled via a smart thermostat, and simulated instances of ACs modeled after real-world data traces. During the 15-day experimental period, COHORT reduced daily peak loads by an average of 12.5% and maintained comfortable temperatures.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源