The Effect of Green Stormwater Infrastructures on Urban-Tier Human Thermal Comfort—A Case Study in High-Density Urban Blocks

IF 4.7 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-05-15 DOI:10.3390/f15050862
Haishun Xu, Jianhua Liao, Yating Hong
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Abstract

Green stormwater infrastructure (GSI) is a key approach to greening and cooling high-density blocks. Previous studies have focused on the impact of a single GSI on thermal comfort on sunny days, ignoring rainwater’s role and GSI combinations. Therefore, based on measured data of a real urban area in Nanjing, China, this study utilized 45 single-GSI and combination simulation scenarios, as well as three local climate zone (LCZ) baseline scenarios to compare and analyze three high-density blocks within the city. Among the 32 simulations specifically conducted in LCZ1 and LCZ2, 2 of them were dedicated to baseline scenario simulations, whereas the remaining 30 simulations were evenly distributed across LCZ1 and LCZ2, with 15 simulations allocated to each zone. The physiological equivalent temperature (PET) was calculated using the ENVI-met specification to evaluate outdoor thermal comfort. The objective of this research was to determine the optimal GSI combinations for different LCZs, their impact on pedestrian thermal comfort, GSI response to rainwater, and the effect of GSI on pedestrian recreation areas. Results showed that GSI combinations are crucial for improving thermal comfort in compact high-rise and mid-rise areas, while a single GSI suffices in low-rise areas. In extreme heat, rainfall is vital for GSI’s effectiveness, and complex GSI can extend the thermal comfort improvement time following rainfall by more than 1 h. Adding shading and trees to GSI combinations maximizes thermal comfort in potential crowd activity areas, achieving up to 54.23% improvement. Future GSI construction in high-density blocks should focus on different combinations of GSI based on different LCZs, offering insights for GSI planning in Southeast Asia.
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绿色雨水基础设施对城市层人体热舒适度的影响--高密度城市街区案例研究
绿色雨水基础设施(GSI)是绿化和冷却高密度街区的关键方法。以往的研究主要关注单一 GSI 对晴天热舒适度的影响,忽略了雨水的作用和 GSI 组合。因此,本研究基于中国南京实际城市区域的测量数据,利用 45 种单一 GSI 和组合模拟情景,以及三种当地气候区(LCZ)基线情景,对南京市内的三个高密度街区进行了比较和分析。在专门针对 LCZ1 和 LCZ2 进行的 32 次模拟中,有 2 次专门用于基线情景模拟,而其余 30 次模拟则平均分布于 LCZ1 和 LCZ2,每个区域各分配 15 次模拟。采用 ENVI-met 规范计算生理当量温度 (PET),以评估室外热舒适度。这项研究的目的是确定不同 LCZ 的最佳 GSI 组合、其对行人热舒适度的影响、GSI 对雨水的响应以及 GSI 对行人休闲区的影响。研究结果表明,GSI 组合对于改善紧凑型高层和中层区域的热舒适度至关重要,而在低层区域,单一的 GSI 就足够了。在极端高温条件下,降雨对 GSI 的有效性至关重要,复合 GSI 可将降雨后的热舒适度改善时间延长 1 小时以上。在 GSI 组合中添加遮阳和树木可最大限度地改善潜在人群活动区的热舒适度,改善幅度高达 54.23%。未来高密度街区的 GSI 建设应重点关注基于不同低密度区的不同 GSI 组合,为东南亚地区的 GSI 规划提供启示。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
期刊介绍: ACS Applied Bio Materials is an interdisciplinary journal publishing original research covering all aspects of biomaterials and biointerfaces including and beyond the traditional biosensing, biomedical and therapeutic applications. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrates knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important bio applications. The journal is specifically interested in work that addresses the relationship between structure and function and assesses the stability and degradation of materials under relevant environmental and biological conditions.
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