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类矩形盾构隧道纵向等效抗弯刚度解析解
引用本文:梁荣柱,王凯超,黄亮,孙廉威,李忠超,张莉,吴小建. 类矩形盾构隧道纵向等效抗弯刚度解析解[J]. 岩土工程学报, 2022, 44(2): 212-223. DOI: 10.11779/CJGE202202002
作者姓名:梁荣柱  王凯超  黄亮  孙廉威  李忠超  张莉  吴小建
作者单位:中国地质大学(武汉)工程学院;中山大学土木工程学院;上海建工集团股份有限公司;武汉市市政建设集团有限公司;清华大学土木水利学院
基金项目:国家自然科学基金项目(41807262);上海市科学技术委员会扬帆人才计划项目(19YF1421000);武汉市市政集团科研项目(wszky202013)。
摘    要:结合类矩形盾构隧道截面特点,分别对中性轴位于截面上部边缘(环缝完全闭合)、截面上拱部、截面腰部和截面下拱部4种情况进行分析,并进一步考虑螺栓预紧力和环缝影响范围,推导得到类矩形盾构隧道的纵向等效抗弯刚度解析解,并对影响纵向等效刚度的相关因素进行探究.研究表明:当施加弯矩小于环缝启动弯矩时,环缝全部闭合,等效纵向抗弯刚度...

关 键 词:类矩形盾构隧道  等效抗弯刚度  等效抗弯刚度有效率  螺栓预紧力  中性轴

Analytical solution for longitudinal equivalent bending stiffness of quasi-rectangular shield tunnels
LIANG Rong-zhu,WANG Kai-chao,HUANG Liang,SUN Lian-wei,LI Zhong-chao,ZHANG Li,WU Xiao-jian. Analytical solution for longitudinal equivalent bending stiffness of quasi-rectangular shield tunnels[J]. Chinese Journal of Geotechnical Engineering, 2022, 44(2): 212-223. DOI: 10.11779/CJGE202202002
Authors:LIANG Rong-zhu  WANG Kai-chao  HUANG Liang  SUN Lian-wei  LI Zhong-chao  ZHANG Li  WU Xiao-jian
Affiliation:1. Faculty of Engineering, China University of Geoscicences, Wuhan 430074, China;2. School of Civil Engineering, Sun Yat-sen University, Guangzhou 519082, China;3. Shanghai Construction Group Co., Ltd., Shanghai 200080, China;4. Wuhan Municipal Construction Group Co., Ltd., Wuhan 430023, China;5. School of Civil Engineering, Tsinghua University, Beijing100084, China
Abstract:According to the sectional characteristics of quasi-rectangular shield tunnels,the neutral axes located at four different positions,the upper section edge(the ring joint is completely closed),the section vault,the section waist and the section invert,are analyzed,respectively.The analytical solution for the equivalent longitudinal bending stiffness of quasi-rectangular shield tunnels is then derived by further considering the pretightening force of bolts and the influence range of circumferential joints.The relative influencing factors on the longitudinal equivalent stiffness are also investigated.It is shown that when the applied bending moment is smaller than the activating one,the circumferential joint is completely closed,the effective efficiency of equivalent bending stiffness is 1,and the neutral axis is located at the upper edge of the section.By further increasing the applied bending moment,the circumferential joint starts to partially separate.Simultaneously,the position of the neutral axis moves down gradually.The equivalent longitudinal bending stiffness decreases with the increase of the applied bending moment.The effective efficiency of the equivalent longitudinal bending stiffness decreases first rapidly and then slowly with the increase of the coefficient of circumferential seam action zone.The greater the pretightening force of bolts is,the larger the equivalent longitudinal bending stiffness is.Subsequently,the position of the neutral axis moves up.With the increase of width-height ratio,the effective efficiency of the equivalent bending stiffness decreases gradually,the position of the neutral axis moves down subsequently,and a turning point appears when the position angle of the neutral axis is equal to the center angle of small arc.
Keywords:quasi-rectangular shield tunnel  equivalent bending stiffness  effective efficiency of equivalent bending stiffness  pretightening force of bolt  neutral axis
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