Impact of uncertainty from load-based reserves and renewables on dispatch costs and emissions

Bowen Li, Spencer D. Maroukis, Yashen Lin, J. Mathieu
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引用次数: 7

Abstract

Aggregations of controllable loads are considered to be a fast-responding, cost-efficient, and environmental-friendly candidate for power system ancillary services. Unlike conventional service providers, the potential capacity from the aggregation is highly affected by factors like ambient conditions and load usage patterns. Previous work modeled aggregations of controllable loads (such as air conditioners) as thermal batteries, which are capable of providing reserves but with uncertain capacity. A stochastic optimal power flow problem was formulated to manage this uncertainty, as well as uncertainty in renewable generation. In this paper, we explore how the types and levels of uncertainty, generation reserve costs, and controllable load capacity affect the dispatch solution, operational costs, and CO2 emissions. We also compare the results of two methods for solving the stochastic optimization problem, namely the probabilistically robust method and analytical reformulation assuming Gaussian distributions. Case studies are conducted on a modified IEEE 9-bus system with renewables, controllable loads, and congestion. We find that different types and levels of uncertainty have significant impacts on dispatch and emissions. More controllable loads and less conservative solution methodologies lead to lower costs and emissions.
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负荷储备和可再生能源的不确定性对调度成本和排放的影响
可控负载聚合被认为是一种快速响应、经济高效、环境友好的电力系统辅助服务。与传统的服务提供商不同,聚合的潜在容量受到环境条件和负载使用模式等因素的高度影响。以前的工作将可控负载(如空调)的聚集建模为热电池,热电池能够提供储备,但容量不确定。提出了一个随机最优潮流问题来管理这种不确定性,以及可再生能源发电的不确定性。在本文中,我们探讨了不确定性的类型和水平、发电储备成本和可控负荷能力如何影响调度方案、运行成本和二氧化碳排放。我们还比较了两种解决随机优化问题的方法的结果,即概率鲁棒方法和假设高斯分布的解析重公式。在可再生能源、可控负载和拥塞情况下,对改进的IEEE 9总线系统进行了案例研究。研究发现,不同类型和水平的不确定性对调度和排放有显著影响。更可控的负载和更保守的解决方案方法可以降低成本和排放。
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