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Experimental investigation of demand response potential of buildings:Combined passive thermal mass and active storage

机译:建筑物需求响应潜力的实验研究:无源热质量和主动存储

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摘要

Heating, ventilation, and air conditioning (HVAC) systems, combined with the internal thermal mass of buildings, have been deemed to be promising means of providing demand response (DR) resources, particularly for buildings with active energy storage systems. DR resources, such as peak-load reduction potential, can provide grid-responsive support resulting in a high degree of grid involvement and high flexible electricity demand. In the DR field, the potential of HVAC load flexibility has been considered in buildings. In the future smart buildings, it is important to take advantage of demand-side resources to achieve real-time energy supply-demand balance sustainably. In this context, DR potential and characteristics of buildings play a pivotal role in DR programs. However, few studies have investigated the internal thermal mass's heat release and DR characteristics of buildings. Thus, a systematic experiment is conducted to study the DR potential and characteristics of internal thermal mass and active storage systems. The DR resources include the passive cooling storage from furniture, building envelope and an active water storage tank. Two DR control strategies, including pre-cooling and temperature resetting, are analyzed in this study. The experimental results show that the strategies are effective for short-term (0.5 h) and intermediate-term (2 h) DR programs. For a long-term DR program, active energy storage technology such as a water storage tank is required to satisfy the occupant's comfort requirements. Hence, we conclude that passive thermal mass and active storage systems should be simultaneously considered in practical DR programs for better DR implementation.
机译:加热,通风和空调(HVAC)系统与内部热量建筑物相结合,已被认为是提供需求响应(DR)资源的承诺手段,特别是对于具有有源能量存储系统的建筑物。诸如峰值负载降低电位的博士资源,可以提供电网响应支持,从而高度的电网受累和高柔性电量需求。在DR场中,在建筑物中考虑了HVAC负荷柔韧性的潜力。在未来的智能建筑中,利用需求侧资源来实现可持续的实时能源供需平衡非常重要。在这种情况下,建筑物潜力和建筑物的特征在DR计划中发挥着关键作用。然而,很少有研究已经研究了内部热质量的热释放和建筑物的博士特征。因此,进行系统实验以研究内部热质量和有源存储系统的DR电位和特性。 DR资源包括家具,建筑物包络和有源储水箱的被动冷却储存。在本研究中分析了两种DR控制策略,包括预冷却和温度重置。实验结果表明,该策略对短期(0.5小时)和中期(2小时)博士计划有效。对于长期DR程序,需要储水箱等活跃的能量存储技术来满足乘员的舒适要求。因此,我们得出结论,在实用的DR程序中应该同时考虑被动热质量和有源存储系统,以便更好地实现DR实施。

著录项

  • 来源
    《Applied Energy》 |2020年第15期|115956.1-115956.10|共10页
  • 作者单位

    Univ Shanghai Sci & Technol Sch Energy & Power Engn Shanghai 200093 Peoples R China;

    Tongji Univ Sch Mech & Energy Engn Shanghai 201804 Peoples R China;

    Tongji Univ Sch Mech & Energy Engn Shanghai 201804 Peoples R China;

    Tongji Univ Sch Mech & Energy Engn Shanghai 201804 Peoples R China;

    Tongji Univ Sch Mech & Energy Engn Shanghai 201804 Peoples R China;

    Beijing Univ Technol Coll Architecture & Civil Engn Beijing 100124 Peoples R China|Beijing Univ Technol Beijing Key Lab Green Built Environm & Energy Eff Beijing 100124 Peoples R China;

    Tongji Univ Sino German Coll Appl Sci Shanghai 201804 Peoples R China;

    Qingjian Grp Co Ltd Qingdao 266071 Peoples R China;

    Qingjian Grp Co Ltd Qingdao 266071 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Thermal building mass; Energy storage; HVAC system; Demand response; Energy flexibility;

    机译:热建筑物质量;储能;HVAC系统;需求响应;能量灵活性;

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