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Q-PLUS Intelligent Building energy management system utilising energy storage

Q-PLUS Intelligent Building energy management system utilising energy storage
利用储能的Q-PLUS智能建筑能源管理系统
批准号:
133463
负责人:
金额:
$37.34万
依托单位:
依托单位国家:
英国
项目类别:
Feasibility Studies
财政年份:
2018
资助国家:
英国
项目状态:
已结题
起止时间:
2018 至 --

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中文摘要
翻译
“与英国住宅市场相比,商业地产中可再生能源系统的采用率一直较低,原因是补贴和上网电价的减少,使得投资该技术在财务上对业主没有吸引力。”然而,这种情况需要改变,因为预计可再生能源发电将在使英国实现至少在1990年水平上减少80%的雄心勃勃的减排目标方面发挥重要作用。其他有助于降低排放的技术是电动汽车和热泵,尽管这两种技术都会进一步增加电力系统的负荷。迫切需要创新的解决方案来利用现有资产,同时将储能资产整合到电力系统中,以确保供应安全,同时为这些资产的所有者提供长期节省和新的收入来源。该项目是QBOTS技术有限公司和曼彻斯特大学(UoM)之间的合作项目,将为商业建筑设计和验证一个决策支持能源管理框架,该框架将优化多种性能标准,包括本地可再生能源的自我消耗、储能系统的使用、电网支持服务的提供、负载塑造、经济成本和舒适度。以及控制室内空气质量和热环境的标准目标。决策支持框架将使用曼彻斯特大学现有的资产进行验证,以形成一个测试平台(使用高保真实时数字模拟器(RTDS)系统的实时仿真建模,以模拟适当的保真可再生系统模型和建筑电力架构)。通过将商用240千瓦180千瓦时西门子SieStorage电池储能系统连接到RTDS,从而使决策支持框架能够在各种商业建筑运行时间表上进行评估。”
英文摘要
"The adoption of renewable energy systems in commercial properties has been low in comparison to the residential market in the UK, due to reductions in subsidies and feed-in-tariffs which make investing in the technology financially unattractive to building owners. There is however a need for this situation to change as renewable generation sources are anticipated to play a significant role in enabling the UK to meet the ambitious emission reduction target of at least 80% of the 1990 level. Other technologies proposed to help lower emissions are electric vehicles and heat pumps, though both of these will further increase the load on the power system. There is an urgent need for innovative solutions to utilise existing assets while integrating energy storage asset in the power system to ensure security of supply while providing the owners of these assets with long-term savings and new revenue streams.This project, a collaboration between QBOTS Technology Ltd and The University of Manchester (UoM), will design and validate a decision-support energy management framework for commercial buildings that will optimise multiple performance criteria, including self-consumption from local renewable generation sources, usage of energy storage systems, provision of grid support services, load shaping, economic costs and comfort, together with the standard objectives of controlling the indoor air quality and thermal environment. The decision-support framework will be validated using existing assets available at The University of Manchester to form a test platform (a blend of real-time simulation modelling using a high-fidelity Real Time Digital Simulator (RTDS) system to emulate appropriate fidelity renewable system models and the building power architecture, together with hardware-in-the-loop by interfacing a commercial 240 kW 180 kWh Siemens SieStorage battery energy storage system to the RTDS to enable the decision-support framework to be evaluated over a diverse range of commercial building operating schedules."
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Intelligent Patent Analysis for Optimized Technology Stack Selection:Blockchain BusinessRegistry Case Demonstration
  • 批准号:
    --
  • 项目类别:
    外国学者研究基金项目
  • 资助金额:
    --
  • 批准年份:
    2024
  • 负责人:
    USHARANI HAREESH GOVINDARA JAN
  • 依托单位: