在资源受限的环境中实现微观层面的需求侧网格灵活性

D. P. D. L. Baridó, Javier Rosa, S. Suffian, E. Brewer, D. Kammen
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引用次数: 6

摘要

不确定和可变的可再生能源渗透的增加对资源和运行电网提出了各种挑战。微观层面(家庭和小型商业)需求侧电网灵活性可能是整合风能和太阳能高渗透率的一种成本效益策略,但探索必要的信息和通信技术(ict)的文献和现场部署很少。本文提出了一个探索性框架,通过物联网(IoT)实现信息驱动的电网灵活性,以及一个概念验证无线传感器网关(FlexBox),以收集必要的参数,以充分监测和驱动微观层面的需求侧。2015年夏季,在尼加拉瓜马那瓜市部署了30个传感器网关,为不久的将来小规模需求响应试点实施制定基线。FlexBox现场数据已经开始揭示环境温度与负载能耗之间的关系,负载和建筑围护结构能效挑战,延迟通信网络挑战,以及参与现有需求侧用户行为模式的机会。信息驱动的网格灵活性策略为开发新技术、系统架构和实现方法提供了巨大的机会,这些新技术、系统架构和实现方法可以轻松地跨地区、跨收入和跨发展水平进行扩展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enabling Micro-level Demand-Side Grid Flexiblity in Resource Constrained Environments
The increased penetration of uncertain and variable renewable energy presents various resource and operational electric grid challenges 1 . Micro-level (household and small commercial) demand-side grid flexibility could be a cost-effective strategy to integrate high penetrations of wind and solar energy, but literature and field deployments exploring the necessary information and communication technologies (ICTs) are scant. This paper presents an exploratory framework for enabling information driven grid flexibility through the Internet of Things (IoT), and a proof-of-concept wireless sensor gateway (FlexBox) to collect the necessary parameters for adequately monitoring and actuating the micro-level demand-side. In the summer of 2015, thirty sensor gateways were deployed in the city of Managua (Nicaragua) to develop a baseline for a near future small-scale demand response pilot implementation. FlexBox field data has begun shedding light on relationships between ambient temperature and load energy consumption, load and building envelope energy efficiency challenges, latency communication network challenges, and opportunities to engage existing demand-side user behavioral patterns. Information driven grid flexibility strategies present great opportunity to develop new technologies, system architectures, and implementation approaches that can easily scale across regions, incomes, and levels of development.
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