气候变化引起的热应力对本世纪末净零碳木材建筑中工作场所生产率的影响

IF 6.1 1区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY
Deepak Amaripadath, Mattheos Santamouris, Shady Attia
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引用次数: 0

摘要

不断变化的气候加剧了热应力,导致内部热质量较低的木质办公建筑工作场所生产率下降的风险增大。气候变化引起的热暴露对木结构办公楼室内工作场所生产率的影响尚未得到广泛研究。因此,需要进一步调查,以减少本世纪末工作能力的下降。在此,我们采用一种可重复的比较方法,对比利时布鲁塞尔附近一栋净零碳木材建筑中的热暴露进行了评估,该建筑具有不同的内部热质量水平。分析表明,增加热质量的策略能更有效地限制热暴露对工作场所生产率的影响。中度和高度热质量策略可将当前、中期和未来的工作场所生产力损失分别降至 0.1%、0.3% 和 0.2%,以及 4.9% 和 3.9%。相比之下,低热质量基线则分别下降了 2.3%、3.3% 和 8.2%。与低热质量基线相比,中热质量和高热质量策略的最高和最低湿球温度变化也较小。研究结果有助于制定设计指南、找出研究空白点并为今后的工作提出建议。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Climate change induced heat stress impact on workplace productivity in a net zero-carbon timber building towards the end of the century

Changing climate intensifies heat stress, resulting in a greater risk of workplace productivity decline in timber office buildings with low internal thermal mass. The impact of climate change induced heat exposure on indoor workplace productivity in timber office buildings has not been extensively researched. Therefore, further investigation to reduce the work capacity decline towards the end of the century is needed. Here, heat exposure in a net zero-carbon timber building near Brussels, Belgium, was evaluated using a reproducible comparative approach with different internal thermal mass levels. The analysis indicated that strategies with increased thermal mass were more effective in limiting the effects of heat exposure on workplace productivity. The medium and high thermal mass strategies reduced workplace productivity loss to 0.1% in the current, 0.3% and 0.2% in the midfuture, and 4.9% and 3.9% for future scenarios. In comparison, baseline with low thermal mass yielded a decline of 2.3%, 3.3%, and 8.2%. The variation in maximum and minimum wet-bulb globe temperatures were also lower for medium and high thermal mass strategies than for low thermal mass baseline. The study findings lead to the formulation of design guidelines, identification of research gaps, and recommendations for future work.

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来源期刊
Building Simulation
Building Simulation THERMODYNAMICS-CONSTRUCTION & BUILDING TECHNOLOGY
CiteScore
10.20
自引率
16.40%
发文量
0
审稿时长
>12 weeks
期刊介绍: Building Simulation: An International Journal publishes original, high quality, peer-reviewed research papers and review articles dealing with modeling and simulation of buildings including their systems. The goal is to promote the field of building science and technology to such a level that modeling will eventually be used in every aspect of building construction as a routine instead of an exception. Of particular interest are papers that reflect recent developments and applications of modeling tools and their impact on advances of building science and technology.
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