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钢模块单元承插式柱-柱节点弯剪承载力研究
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Research on Bending-shear Capacity of Socketed Column-column Joints of Modular Steel Structure
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    摘要:

    提出一种新型承插式柱-柱节点,采用内外套筒作为上下钢管柱的拼接构件,仅通过高强对穿螺栓拼装,可以满足建筑结构装配化的需求. 针对其在弯剪作用下的承载性能,设计并制作了三个足尺试件进行静力加载试验,获得了节点的受力特征、破坏模式、极限承载力和应变分布等. 建立数值模型,在验证数值模型正确性的基础上,对节点进行参数化分析,探讨了套筒灌浆、内套筒厚度、节点长度对节点极限承载力的影响. 试验和数值模拟研究结果表明:内套筒近端板处至第一根竖向螺栓前是节点域传力的关键部位;套筒灌浆和减小节点长度能够延缓节点核心区应变发展,但影响程度有限;当保证节点长度和内外套筒相对抗弯刚度比一定时,套筒灌浆可使连接受力性能更优,极限承载力提高19.3%;控制其他参数相同,节点长度越大,“杠杆效应”越强,抗弯承载力也随之提高,节点长度由300 mm增加至600 mm,极限承载力提高15.1%;内套筒厚度越大,截面承载力的安全储备越高,内套筒厚度由8 mm增加至12 mm,极限承载力提高31.4%. 基于“有限塑性发展强度准则”和“杠杆效应”理论提出了节点的抗弯承载力计算公式,通过和数值计算结果的对比,验证了计算式的准确性.

    Abstract:

    To fulfill the requirements for the assembly of building structures, this paper proposes a new type of socketed column-column joints, which uses internal and external sleeves as the splicing members of the upper and lower steel tube columns and is assembled only through high-strength bolts. To study its load-bearing performance under bending-shear action, three specimens were designed and studied by static tests. The load transfer mechanism, failure mode, ultimate bearing capacity, and strain development of the joints were obtained. The finite element models were established, and based on verification of the accuracy of these models, a parametric analysis of the joints was carried out. The effects of the sleeve grouting, the inner sleeve thickness, and the joint length on the ultimate bearing capacity were analyzed. The results show that the inner sleeve near the plate to the first vertical bolt is the key area for load transmission in the joint domain. The sleeve grouting and joint length reduction can retard the joint strain development, but the influence is limited. When the length of the joint and the relative bending stiffness of the inner and outer sleeves are unchanged, sleeve grouting can make the connection force performance better, and the ultimate bearing capacity is increased by 19.3%. When other parameters are unchanged, the greater the length of the node, the greater the level-hold effect. The ultimate bearing capacity is increased by 15.1% as the length of the joint is increased from 300 mm to 600 mm. The greater the thickness of the inner sleeve, the higher the load-bearing capacity safety reserve of the section. The ultimate bearing capacity is increased by 31.4% as the inner sleeve thickness is increased from 8 mm to 12 mm. Based on the finite plastic development strength criterion and level-hold effect, a formula for calculating the flexural capacity of the joints was presented. The accuracy of the calculation formula is verified by comparing experimental results with numerical predictions.

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周凌宇 ?,魏宏远 ,陈浩 ,王其良 ,张明亮 ,彭琳娜 ,王关朝 ,贺学军 .钢模块单元承插式柱-柱节点弯剪承载力研究[J].湖南大学学报:自然科学版,2025,52(1):93~107

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  • 在线发布日期: 2025-01-22
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