课题基金 / 基金详情

Smart Composite Material for Advanced Building Fenestration to Enhance Energy Efficiency

Smart Composite Material for Advanced Building Fenestration to Enhance Energy Efficiency
用于先进建筑门窗的智能复合材料可提高能源效率
批准号:
EP/T025875/1
负责人:
ASIF TAHIR
金额:
$170.51万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2020
资助国家:
英国
项目状态:
未结题
起止时间:
2020 至 --

项目摘要

项目成果

ASIF TAHIR的其他基金

相似基金

相关文献

中文摘要
翻译
建筑物用于供暖、制冷和照明所消耗的能源占二氧化碳排放量的40%以上。然而,在保持热舒适性和视觉舒适性的同时,由于我们无法通过透明的建筑围护结构(主要是窗户和幕墙)控制能量的进出,因此损失了相当大一部分能量。如果不控制能源通过建筑物的进出,英国政府到2050年实现零排放的雄心勃勃的目标就无法实现。到2050年,现有建筑存量的85%仍在使用中,这表明建筑围护结构的翻新是必不可少的。在其他建筑围护结构中,窗户和立面的能效最低,但很容易更换。玻璃技术在确定建筑物的能量性能方面发挥着重要作用,需要通过传导对流、太阳和内外环境之间的长波辐射来调节热传递,同时通过允许自然光的透射率来保持舒适的日光环境,减少对辅助电气照明的需求。窗户和立面也发挥着重要的美学功能,为居住者提供了与外部环境的视觉联系,并影响了建筑的外观。因此,开发新的用于窗户和幕墙的智能玻璃技术,以调节进入室内空间的进出热量,以减少建筑能量负荷,同时提供视觉舒适性,是至关重要的。拟议的项目旨在开展一项雄心勃勃的创新研究计划,开发新技术,以可接受的成本显著减少建筑环境的能源需求。这一目标将通过减少热量损失、控制进入的太阳辐射以最大限度地获得太阳辐射、最大限度地减少冬季的热量损失和在夏季通过翻转窗户来扭转热量损失,同时确保最佳的自然采光条件而实现。能源效率和视觉舒适性的首要目标将通过智能复合材料实现,其中复合材料的每个元素都将带来独特的性能,并有助于提高窗户和立面的能源效率。在冬季,TIA将吸收外部的IR辐射并将热量传递到PCM进行存储,PCM将被释放回建筑,复合材料中的TIM将阻止长波热辐射的热损失,IR反射涂层将通过将IR反射回房间来防止热损失。在夏天,方位会被翻转,以减少冷负荷。在反转情况下,红外增热将通过红外反射层来阻止,而Tcm将调节透明度来控制室内温度常数。在本研究项目中开发的多折叠智能复合材料。这将使先进的玻璃技术能够实现U值降至0.4W/m2K1,同时保持舒适的日光环境,并将建筑物的年能耗降低30%-40%。这项研究的结果将使我们能够创造技术途径,在英国实现积极能源建筑。
英文摘要
Energy consumed by buildings for heating, cooling, and lighting needs, accounts for more than 40% CO2 emissions. However, while keeping the thermal and visual comfort, a substantial portion of energy is lost due to our inability to control the ingress and egress of energy through transparent building envelope - mainly windows and facades. The UK government's ambitious target of reaching zero emission by 2050 cannot be achieved without controlling ingress and egress of energy through buildings. By 2050, 85% of the existing building stock will still be in use which indicates that retrofitting of building envelope is indispensable. Among the other building envelope, windows and facades are the least energy efficient but are easily replaceable. Glazing technology plays an important role in determining a building's energy performance, required to perform multiple roles of regulating heat transfer by conduction convection, solar and long wave radiation between internal and external environments while maintaining comfortable daylight environments by allowing the transmittance of natural daylight; reducing the need for supplementary electric lighting. The windows and facades also play an important aesthetic function by providing occupants a visual link to the external environment and influencing the appearance of buildings. Thus, developing new smart glazing technology for windows and facades to modulate the incoming and outgoing heat into indoor space to reduce building energy load, while at the same time providing visual comfort, is crucial.The proposed project aims to undertake an ambitious innovative research program of developing new technology to significantly reduce energy demand in the built environment at an acceptable cost. The goal will be achieved by reducing heat loss, controlling incoming solar radiation to maximise solar gain, minimise heat loss in winter and reverse it by flipping windows in summer while ensuring the best natural lighting conditions with no glare.The overarching goal of energy efficacy and visual comfort will be achieved by smart composite material in which each elements of composite will bring a unique property and contribute to enhance energy efficiency of windows and facades. In winter, the TIA will absorb external IR radiations and transfer heat to PCM for storage, which will be released back to the building, the TIM in composite will forbid heat loss through longwave thermal radiation and the IR reflective coating will prevent heat loss by reflecting IR back to room. In summer, the orientation will be flipped around to reduce cooling load. In the flipped case, heat gain by IR will be prevented by IR reflective layer while the TCM will regulator the transparency to control the indoor temperature constant. The multi-fold smart composite developed in this research program. This will enable advanced glazing technology to achieve U-values down to 0.4 W/m2K1 while maintaining comfortable daylight environments and reduce annual energy consumption by 30-40% for buildings. The outcome of this research will enable us to create technological pathways towards achieving energy positive buildings in the UK.
期刊论文(9)
专著(0)
科研奖励(0)
会议论文
DOI: 10.3390/nano13132011
发表时间: 2023-07-05
期刊: NANOMATERIALS
影响因子: 5.3
作者: [Al-Fartoos, Mustafa Majid Rashak, Roy, Anurag, Mallick, Tapas K., Tahir, Asif Ali]
通讯作者: Tahir, Asif Ali
DOI: 10.3390/en14185688
发表时间: 2021-09
期刊: Energies
影响因子: 3.2
作者: [Khawaja Haider Ali;M. Sigalo;Saptarshi Das;E. Anderlini;A. Tahir;M. Abusara]
通讯作者: Khawaja Haider Ali;M. Sigalo;Saptarshi Das;E. Anderlini;A. Tahir;M. Abusara
DOI: 10.3390/nano14030259
发表时间: 2024-02-01
期刊: NANOMATERIALS
影响因子: 5.3
作者: [Alhabradi,Mansour, Yang,Xiuru, Tahir,Asif Ali]
通讯作者: Tahir,Asif Ali
DOI: 10.1016/j.enconman.2021.114442
发表时间: 2021-07-03
期刊: ENERGY CONVERSION AND MANAGEMENT
影响因子: 10.4
作者: [Chanchangi, Yusuf N., Roy, Anurag, Mallick, Tapas K.]
通讯作者: Mallick, Tapas K.
High-Throughput Fabrication and Characterisation for Discovery of Novel Energy Materials
  • 批准号:
    EP/V049046/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $25.81万
  • 财政年份:
    2021
  • 负责人:
    ASIF TAHIR
  • 依托单位:
海外基金