Energy and Water Co-Optimization for the Resilient Neighborhood of Future

Govind Joshi, S. Mohagheghi
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引用次数: 1

Abstract

Electrical microgrids are small-scale energy systems that can operate in both grid-connected and standalone modes. The capability to island from the grid during disturbances and continue supplying the loads locally helps improve the reliability and resilience of the network. This concept can also be extended to water micronets that, upon need, can disconnect from the main water distribution network and utilize locally available water resources. The scheme can be implemented both for rural communities where the centralized municipal water distribution network is not available due to geographical or cost limitations, as well as for small-scale communities whose water network is temporarily out-of-service as a result of natural or manmade disasters such as earthquakes, water contamination, flooding, etc. This paper proposes a framework and a solution for co-optimization of energy and water networks for a neighborhood of residential units, with the goal of maximizing sustainability, i.e. utilizing local energy and water resources as much as possible. It is assumed that distributed energy resources along with demand response are employed to meet energy demands, while a wastewater treatment plant (WWTP) built in the community is used to treat and recycle wastewater. The objective of this paper is to demonstrate mathematically how a self-contained community can schedule available energy and water resources optimally so that both energy and water demands are met with minimal external support. The problem is modeled as a multi-objective mixed-integer optimization model. A case study is presented as proof of concept.
未来弹性社区的能源和水协同优化
微电网是一种小型能源系统,既可以并网运行,也可以独立运行。在干扰期间从电网隔离并继续在本地供应负载的能力有助于提高网络的可靠性和弹性。这个概念也可以扩展到水微粒,在需要时,可以从主要的配水网络断开,并利用当地可用的水资源。该方案既适用于由于地理或成本限制而无法获得集中市政配水网络的农村社区,也适用于由于地震、水污染、洪水等自然或人为灾害而导致供水网络暂时中断的小规模社区。本文提出了一个框架和解决方案,用于住宅单元社区的能源和水网络的协同优化,目标是最大限度地实现可持续性,即尽可能地利用当地的能源和水资源。假设利用分布式能源和需求响应来满足能源需求,同时利用社区内建设的污水处理厂(WWTP)来处理和回收废水。本文的目的是用数学方法证明一个自给自足的社区如何以最佳方式安排可用的能源和水资源,以便在最小的外部支持下满足能源和水的需求。将该问题建模为多目标混合整数优化模型。提出了一个案例研究作为概念的证明。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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