在建筑的多灾害可持续设计中整合弹性

S. Bianchi
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引用次数: 0

摘要

最近发生的自然灾害和气候变化引发的极端事件强调,迫切需要通过解决建筑物可能面临的各种危险来增强社会的整体复原力。目前的设计方法认识到需要进行综合风险评估,但研究主要集中在现有建筑和单一危害上,忽视了多重危害的影响和弹性量化。然而,从新建筑的早期设计和改造干预措施中寻求有效的解决方案,至关重要的是要考虑多灾害情景,量化经济、环境和恢复力损失。本文提出了一种实用的多标准方法来支持设计决策,以增强建筑物的安全性、可持续性和抗地震和热浪的弹性。提出的方法应用于具有各种抗震和节能立面的商业建筑。进行非线性地震评估,以预测设计级地震对修复成本、碳排放和恢复力损失的潜在影响。此外,还进行了全生命周期分析和动态能源模拟,以计算电力消耗造成的财务和碳损失,以及建筑在极端高温下保持能源效率的能力。最后,采用基于综合经济、环境和弹性损失的多矩阵决策方法指导设计选择。结果表明,抗震外墙可以显著减少50%以上的经济损失,抗震弹性在最终决策中起着至关重要的作用。这种方法为建设项目提供了更有效的投资决策,使减少整体潜在损失的综合战略的有效性得以量化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Integrating resilience in the multi-hazard sustainable design of buildings
Recent natural disasters and climate change-induced extremes emphasize the urgent need to enhance the overall resilience of society by addressing the various hazards that buildings may face. Current design approaches recognize the need for integrated risk assessments, but studies primarily focus on existing buildings and single hazards, neglecting the impact of multiple hazards and resilience quantifications. However, it is crucial to consider multi-hazard scenarios and quantify economic, environmental, and resilience losses to pursue effective solutions from the early-stage design of both new buildings and retrofitting interventions. This paper presents a practical multi-criteria approach to support design decisions for enhanced safety, sustainability, and resilience of buildings against earthquakes and heatwaves. The proposed approach is applied to a commercial building with various seismic-resistant and energy-efficient facades. Non-linear seismic assessments are conducted to predict the potential impact concerning repair costs, carbon emissions, and the resilience loss at the design-level earthquake. Additionally, a whole life-cycle analysis and dynamic energy simulations are performed to calculate the financial and carbon losses resulting from power consumption and the ability of the building to maintain energy efficiency under extreme heat. Finally, the study employs a multi-matrix decision-making approach based on integrated economic, environmental, and resilience losses to guide the design selection. The results demonstrate that earthquake-resistant facades can significantly reduce financial losses by over 50%, with seismic resilience playing a crucial role in the final decision. This approach facilitates more effective investment decisions for building projects, enabling the quantification of the effectiveness of integrated strategies in reducing overall potential losses.
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