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首页> 外文期刊>Shock and vibration >Stress Response and Damage Characteristics of Local Members of a Structure due to Tunnel Blasting Vibrations Based on the High-Order Local Modal Analysis
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Stress Response and Damage Characteristics of Local Members of a Structure due to Tunnel Blasting Vibrations Based on the High-Order Local Modal Analysis

机译:基于高阶局部模态分析的隧道爆破振动引起的结构应力响应和局部成员的损伤特征

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Damage characteristics and dynamic stress response of aging masonry structures for blast-induced ground motion were performed using high-order local modal analysis method. A complete investigation of damage types and locations of aging masonry buildings due to tunnel blasting vibration were performed by on-site survey. A typical 2-storey aging masonry building located above a tunnel was selected for dynamic response analysis. The experimental dynamic characteristics of the structure were determined by using the operational modal analysis (OMA) method. Finite element models for the masonry structures were updated by modifying material parameters based on OMA results. The first five natural frequencies of the updated finite element models ranged from 8.80–24.99?Hz, and the first five modes were global modes. The sixth to twentieth natural frequencies ranged from 26.10–36.34?Hz, and the sixth to twentieth modes were local modes whose deformation was greater than the global deformation. Since the principal frequencies of the tunnel blast vibration were mostly higher than the natural global modes’ frequencies and were much closer to the natural frequencies of local members, local members experienced more intensive vibrations compared to the main body structure. The principal compressive stress (PCS) and principal tensile stress (PTS) of local members were several times greater than that of the main body structure. Therefore, local members of the masonry building suffered most from the tunnel blasting vibration. Corners due to stress concentration, the contact area between brick and concrete, local members, and precast floor seams are prone to damage during tunnel blasting. With the vibration velocity increasing, the PCS and PTS of local members gradually increase. But, the PTS ratio of local members decreases with the increase of peak particle velocities. The dynamic response analysis result and the damage locations using high-order local modal analysis method are in accordance with the damage found at the site.
机译:采用大阶局部模态分析法进行损伤砌体结构老化砌体结构的损伤特性和动态应力响应。通过现场调查进行了由于隧道爆破振动引起的损伤类型和老化砌体建筑物的完整调查。选择一个典型的2层老化砖石建筑,位于隧道之上的隧道以进行动态响应分析。通过使用操作模态分析(OMA)方法确定结构的实验动态特性。通过根据OMA结果修改材料参数更新用于砖结构结构的有限元模型。最新的有限元模型的前五个自然频率范围为8.80-24.99?Hz,前五种模式是全球模式。第六至二十自然频率范围从26.10-36.34℃,第六到第二十种模式是当地模式,其变形大于全球变形。由于隧道爆炸振动的主要频率大多高于天然全球模式的频率,并且与当地成员的自然频率更接近,与主体结构相比,当地成员经历了更加密集的振动。局部构件的主要压缩应力(PC)和主拉伸应力(PTS)比主体结构的几倍大。因此,砌体建筑的当地成员遭受隧道爆破振动的大部分。由于应力集中,砖和混凝土,局部构件和预制底部接缝之间的接触面积在隧道爆破期间易损。随着振动速度的增加,局部成员的PC和PTS逐渐增加。但是,局部成员的PTS比率随着峰值粒子速度的增加而降低。使用高阶局部模态分析方法的动态响应分析结果和损坏位置符合站点发现的损坏。

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