从污染障碍到健康缓冲器:在气候变化下重新考虑建筑的密闭性
Nuodi Fu1, Ruijun Zhang1, Fariborz Haghighat2
1School of Architecture, Southeast University, 2 Sipailou, Nanjing, 210096, China; Jiangsu Province Engineering Research Center of Urban Heat and Pollution Control, Southeast University, 2 Sipailou, Nanjing, 210096, China.
Journal of environmental management
|November 18, 2025
概括
改善建筑物密闭性可以减少室内PM2.5污染和COPD死亡,特别是在城市化地区. 为了更健康,更节能的建筑物,需要具体的气候标准.
科学领域:
- 环境科学环境科学
- 公共卫生 公共卫生
- 建筑科学 建筑科学
背景情况:
- 气候变化改变了室内室外空气污染的动态.
- 建筑标准往往忽略了这些转变,特别是在PM2.5.5高的城市化地区.
- 建筑气密性是减少室内污染暴露的关键但未得到充分利用的策略.
研究的目的:
- 分析建筑空气密度对室内PM2.5水平和中国城市COPD死亡率的影响.
- 确定影响气密性有效性的气候特异性因素.
- 为更健康的城市环境提供建筑标准和改造战略的信息.
主要方法:
- 分析了五个气候区36个中国城市的建筑气密性,室内PM2.5和COPD死亡率数据.
- 考虑气候变量如压差等透收益和损失的建模.
- 在最佳实践密闭水平下,室内PM2.5和COPD死亡减少的计算.
主要成果:
- 改善建筑物密闭性显著降低室内PM2.5度,并减少COPD相关的死亡率.
- 确定了一个气密有效性过渡区,受到季风边界的影响.
- 最佳实践的气密性导致室内PM2.5减少10.6%,COPD死亡率减少6.2%,在寒冷的气候中效益最大.
结论:
- 气候特定的建筑气密性目标,再加上通风和过,对于减轻室内污染至关重要.
- 应优先考虑改造漏水和脆弱的住房.
- 联合能源健康指标可以引导资金用于城市化地区更健康,更节能的建筑.
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