首页> 外文会议>ES2011;International conference on energy sustainability >AN INTEGRATED ENERGY STORAGE SCHEME FOR A DISPATCHABLE SOLAR AND WIND POWERED ENERGY SYSTEM AND ANALYSIS OF DYNAMIC PARAMETERS
【24h】

AN INTEGRATED ENERGY STORAGE SCHEME FOR A DISPATCHABLE SOLAR AND WIND POWERED ENERGY SYSTEM AND ANALYSIS OF DYNAMIC PARAMETERS

机译:可分配太阳能和风能系统的集成储能方案及动态参数分析

获取原文

摘要

The intermittency of wind and solar power and the mismatch between when they are available and when demand is high have hindered the expansion of these two primary renewable resources. The goal of this research is to analyze an integrated energy system (named DSWiSS for dispatchable solar wind storage system) that includes a novel configuration of wind and solar together with compressed air energy storage (CAES) that is driven from excess nighttime wind energy and thermal storage energized by concentrated solar power in order to make these sources dispatchable during peak demand. Notably, existing CAES facilities use natural gas for heating the compressed air before its expansion through a turbine; the system described in this paper replaces the use of natural gas with solar energy and thermal storage, thereby obviating the need for fossil fuels and yielding a dispatchable system powered completely by renewable sources. This paper builds off prior published work for the DSWiSS configuration with an analysis of temporally-resolved parameters, including wind and solar resources, which are important to the operation of DSWiSS. This analysis uses actual historical meteorological data for West Texas solar insolation, telemetry data for wind power in West Texas, and recorded electricity demand data of the ERCOT grid to assess system performance. We examined how the daily variation of these parameters could affect the operation of an energy storage facility such as DSWiSS. We found that the daily fluctuations were most pronounced in the summer when demand is highest and wind velocity is lowest. However, because all seasons show a time-of-day phase mismatch between demand and wind velocity, we expect that a load leveling energy storage technology would be useful to the electric grid. Research to be completed soon will attempt to use control strategies along with the existing thermodynamic model of the DSWiSS power system to determine how DSWiSS would be operated differently under the different seasonal situations.
机译:风能和太阳能的间歇性以及何时可用和需求高时之间的不匹配,阻碍了这两种主要可再生资源的发展。这项研究的目的是分析一个集成能源系统(称为可调度太阳能风力存储系统的DSWiSS),该系统包括风能和太阳能的新颖配置以及由过量夜间风能和热能驱动的压缩空气储能(CAES)集中太阳能供电的储能系统,以便在高峰需求期间可调度这些资源。值得注意的是,现有的CAES设施使用天然气来加热压缩空气,然后再通过涡轮膨胀。本文所述的系统用太阳能和热能存储代替了天然气的使用,从而消除了对化石燃料的需求,并产生了完全由可再生资源提供动力的可调度系统。本文通过分析时间分辨参数(包括风能和太阳能)来建立DSWiSS配置的先前已发表工作,这些参数对于DSWiSS的运行非常重要。该分析使用西得克萨斯州日照的实际历史气象数据,西得克萨斯州风能的遥测数据以及ERCOT电网的已记录电力需求数据来评估系统性能。我们研究了这些参数的每日变化如何影响诸如DSWiSS的储能设施的运行。我们发现,在需求最高,风速最低的夏季,每日波动最为明显。但是,由于所有季节都显示出需求和风速之间的一天中的时间阶段不匹配,因此我们预计负载均衡能量存储技术将对电网有用。即将完成的研究将尝试使用控制策略以及DSWiSS电力系统的现有热力学模型来确定DSWiSS在不同季节情况下将如何进行不同的操作。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号