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输电线路榫卯与节点板混凝土装配式基础在复合荷载作用下的承载力研究

Study on bearing capacity of Mortise-tenon and joint-flange concrete assembled foundation of transmission line under combined load.

作者信息

Hu Xin, Xi Xiaojuan, Zheng Yuesong, Xiang Zijun, Zhang Han

机构信息

State Grid Henan Economic Research Institute, Zhengzhou, Henan Province, China.

College of Electrical Engineering and New Energy, China Three Gorges University, Yichang, Hubei, China.

出版信息

PLoS One. 2025 Aug 1;20(8):e0327965. doi: 10.1371/journal.pone.0327965. eCollection 2025.

Abstract

Mortise-tenon and joint-flange assembled foundation has excellent application as a new type of slab concrete assembled foundation, but there is a lack of research on its bearing capacity. In order to explore the mechanical characteristics and bearing capacity of this type of foundation under combined load (uplift-horizontal load), which is different from the traditional cast-in-place foundation, the uplift bearing model of mortise-tenon and joint-flange assembled foundation and the uplift model of cast-in-place foundation with the same specification were established based on the actual geological environment by finite element software. The stress distribution, vertical and horizontal displacements, and uplift and horizontal bearing capacities of the foundations were simulated and calculated. This study found that the bearing capacity of the Mortise-tenon and joint-flange assembled foundation has not been fully utilized. Specifically, the deformation of the foundation mainly concentrates on the main column, and the load is unable to be transmitted to the lower structure through the flange. Under combined loading (uplift-horizontal load), the load-displacement relationship curve can be roughly divided into three stages: linear slow rise stage, plastic accelerated rise stage, and linear failure stage. During the pull-out process, the foundation demonstrates stress characteristics of segmented load transmission. After the concrete upper column yields, the mortise-tenon and joint-flange connection node receives the load transmitted by the upper column, and continues to transmit the load to the lower column of the foundation after the displacement of the node reaches its limit. When the uplift cumulative displacement of the foundation reaches approximately 13 mm and the horizontal cumulative displacement reaches around 10 mm, the foundation reaches its ultimate state. At this point, its ultimate bearing capacity surpasses that of the cast-in-place foundation of the same specification, with significant improvement. The ultimate uplift bearing capacity increases by 33.34%, while the ultimate horizontal bearing capacity increases by 48.09%.

摘要

榫卯与节点板装配式基础作为一种新型的板式混凝土装配式基础具有良好的应用前景,但目前对其承载能力的研究尚显不足。为探究该类型基础在与传统现浇基础不同的组合荷载(上拔-水平荷载)作用下的力学特性与承载能力,基于实际地质环境,利用有限元软件建立了榫卯与节点板装配式基础的上拔受力模型以及相同规格现浇基础的上拔模型。对基础的应力分布、竖向与水平位移以及上拔和水平承载能力进行了模拟计算。研究发现,榫卯与节点板装配式基础的承载能力尚未得到充分发挥。具体表现为,基础变形主要集中在主柱,荷载无法通过节点板传递至下部结构。在组合荷载(上拔-水平荷载)作用下,荷载-位移关系曲线大致可分为三个阶段:线性缓慢上升阶段、塑性加速上升阶段和线性破坏阶段。在拔出过程中,基础呈现出分段传力的应力特征。混凝土上部柱体屈服后,榫卯与节点板连接节点承接上部柱体传递的荷载,节点位移达到极限后继续将荷载传递至基础下部柱体。当基础的上拔累计位移达到约13mm且水平累计位移达到约10mm时,基础达到极限状态。此时,其极限承载能力超过相同规格的现浇基础,有显著提升。极限上拔承载能力提高了33.34%,极限水平承载能力提高了48.09%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f00a/12316259/89cd93b6fe93/pone.0327965.g001.jpg

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