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首页> 外文期刊>Journal of Volcanology and Geothermal Research >Structural resistance of reinforced concrete buildings under pyroclastic flows: a study of the Vesuvian area
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Structural resistance of reinforced concrete buildings under pyroclastic flows: a study of the Vesuvian area

机译:火山碎屑流下钢筋混凝土建筑物的结构阻力:Vesuvian地区的研究

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The analysis of the effects of pyroclastic flows on humans and on buildings represents the main tool to define the boundary of the most hazardous area around an active volcano such as Somma-Vesuvius. Estimation of the lateral pressure on buildings derived from analogies with the damages observed after a nuclear explosion [Valentine (1998) J. Volcanol. Geotherm. Res. 87, 117-140] lead to pressure values and/or structural resistance which are not realistic (too high). Recent evidence [Baxter (2000) Human and Structural Vulnerability Assessment for Emergency Planning in a Future Eruption of Vesuvius. Final Report EC Project ENV4-CT98-0699; Young et al. (1997) EOS, Trans. Am. Geophys. Union, 78, 401] have shown that beyond 2-3 km from the vent, even after a great eruption, resistance to collapse of buildings affected by a pyroclastic flow is still possible. Neri et al. [(2000) Numerical simulation of pyroclastic flows. In: Human and Human and Structural Vulnerability Assessment for Emergency Planning in a Future Eruption of Vesuvius. Final Report EC Project ENV4-CT98-0699], by means of a numerical model of a collapsing column, show that the peak overpressures of the pyroclastic flows range from 1 to 2 kPa at a distance from the vent of about 4-5 km, where important historical centres of the Vesuvian area are located. A detailed analysis of urban settlement of the area [Cherubini et al. (2001) Vulnerabilita' Sismica dell'Area Vesuviana. Gruppo Nazionale per la Difesa dai Terremoti, CNR, Roma] has shown that most of the people live in reinforced concrete (r.c.) structures, not designed to resist horizontal seismic actions. The present work is aimed at analyzing the collapse limit load of r.c. structures to horizontal pressure for different structural design typologies (strong aseismic, weak aseismic, strong non-aseismic, weak non-aseismic). The simulations performed have also taken into account the specific features of the r.c. structures of the area (local building practice). The limits of resistance for each typology, in case of regular and irregular buildings, are provided. Such limits of resistance are in good agreement with the literature data coming from collapse simulation of buildings under seismic actions.
机译:分析火山碎屑流对人类和建筑物的影响是确定活火山(如索马-维苏威火山)周围最危险区域边界的主要工具。估算建筑物上的横向压力的方法类似于核爆炸后观察到的破坏[Valentine(1998)J. Volcanol。地热。 Res。 [87,117-140]导致压力值和/或结构阻力不切实际(太高)。最近的证据[Baxter(2000)在维苏威火山未来爆发中的应急计划的人与结构脆弱性评估。最终报告EC项目ENV4-CT98-0699; Young等。 (1997)EOS,Trans。上午。地理学。 Union,78,401]显示,距离喷口2-3公里以外,即使喷发很大,仍可能抵抗受火山碎屑流影响的建筑物倒塌。 Neri等。 [(2000)火山碎屑流的数值模拟。在:《维苏威火山未来爆发中的应急计划中人与人与结构的脆弱性评估》中。 [最终报告EC项目ENV4-CT98-0699]通过折叠柱的数值模型显示,火山碎屑流的峰值超压在距通风口约4-5 km的范围内为1至2 kPa,维苏威地区重要历史中心所在的位置。该地区城市居住区的详细分析[Cherubini等。 (2001)Vulnerabilita'Sismica dell'Area Vesuviana。罗马CNR的Gruppo Nazionale指出,大多数人居住在钢筋混凝土结构中,而这些结构并非旨在抵抗水平地震作用。目前的工作旨在分析钢筋混凝土的倒塌极限荷载。结构针对不同结构设计类型(强抗震,弱抗震,强非抗震,弱非抗震)的水平压力。进行的仿真还考虑了RC的特定功能。该区域的结构(本地建筑实践)。提供了对于常规和不规则建筑物的每种类型的抵抗极限。这样的抵抗极限与地震作用下建筑物倒塌模拟的文献数据非常吻合。

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