|
|
Calculation Formula for the Pullout Force of Uniaxial Geogrid-reinforced Expansive Soil |
WAN Liang1,2, YANG He-ping1 |
1. Key Laboratory of Road Structure and Material Ministry of Communications, Changsha University of Science and Technology, Changsha Hunan 410076, China;
2. Anhui State Farms Group Co., Ltd., Hefei Anhui 230000, China |
|
|
Abstract To obtain the action force between the reinforcing material and filler in reinforced soil, many scholars at home and abroad have conducted pullout tests, which are limited by the testing apparatus. Most of them have studied the pullout force between a biaxial geogrid and sand. The pullout force formula is generally believed to be composed of the surface friction and lateral resistance of transverse ribs, and uniaxial geogrids have rarely been researched experimentally on the basis of the pullout force between them and the expansive soil filler due to the large distance among transverse ribs. This study draws on existing methods to determine the pullout force, conducts a preliminary analysis, proposes a formula for calculating the maximum pullout force, uses a self-developed large-scale CNC pullout test system, and utilizes its large size, bidirectional airbag loading, and ability to eliminate side wall friction. The design of the test scheme is optimized to obtain two important calculation parameters in the formula:one is to cut grids of different lengths to provide lateral resistance and then implement them to obtain the coefficient of sliding friction between grid and fill; the other is to develop different numbers of horizontal ribs in the pullout test of a grille, and the lateral resistance of the end bearing of a single transverse rib is measured. The results of the lateral resistance of the end bearing based on the analysis of the three mechanisms of shear, punching, and Prandtl failures are compared. The lateral resistance of the lateral rib end bearing measured from the test is proven reasonable. Two types of expansive soils reinforced by different types and sizes of grids are analyzed with the calculation formula of the maximum pullout force, and the coefficient of pullout friction is determined to be rational. The research results can be used to guide the design and construction of uniaxial geogrid-reinforced expansive soil and the modification and upgrading of products by grid manufacturers.
|
Received: 28 December 2020
|
Fund:Supported by the National Natural Science Foundation of China (Nos.50978035, 51608053), the Open Fund Project of Key Laboratory of Road Structure and Material Transportation Industry(No.kfj100208) |
Corresponding Authors:
WAN Liang
E-mail: cscuyang@163.com
|
|
|
|
[1] MEGOWN A, ANDRAWES K Z, KABIR M H. Load Extension Testing of Geotextiles Confined in Soil[C]//Proceedings of the 2nd International Conference on Geotextiles. Las Vegas:Industrial Fabrics Association International, 1982:793-798.
[2] SCHLOSSER F, LONG N T. Recent Results in French Research on Reinforced Earth[J]. Journal of the Construction Division, 1974, 100(CO3):223-237.
[3] SL 235-2012, Specification for Test and Measurement of Geosynthetics[S]. (in Chinese)
[4] MORACI N, GIOFFRE D. A Simple Method to Evaluate the Pullout Resistance of Extruded Geogrids Embedded in a Compacted Granular Soil[J]. Geotextiles and Geomembranes, 2006, 24(2):116-128.
[5] WANG Jia-quan, ZHOU Yue-fu, XIA Yu, et al. Development and Application of New Visual Pullout Test Apparatus for Geosynthetics[J]. Chinese Journal of Geotechnical Engineering, 2016, 48(4):718-725. (in Chinese)
[6] ZHANG Zheng, LIU Zhen-hua. Study on the Interaction Mechanism between the Geogrid and Loess[J]. Journal of Lanzhou Institute of Technology, 2018, 25(1):1-6. (in Chinese)
[7] ZHENG Jun-jie, ZHOU Yan-jun, LAI Han-jiang, et al. DEM Analysis of Characteristic of Interface between Geogrid and Sand in Pull-out Test[J]. Journal of Huazhong University of Science and Technology:Natural Science Edition, 2014, 42(8):104-108. (in Chinese)
[8] XU Chao, LIAO Xing-yue. Researches on Interaction Mechanism between Geogrid and Sand by Pull-out Tests[J]. Rock and Soil Mechanics, 2011, 32(2):423-428. (in Chinese)
[9] BAO Cheng-gang. Study on Interface Behavior of Geosynthetics and Soil[J]. Chinese Journal of Geotechnical Engineering, 2006, 25(9):1735-1744. (in Chinese)
[10] WILSON-FAHMY R F, KOERNER R M, SANSONE L J. Experimental Behavior of Polymeric Geogrids in Pullout[J]. Journal of Geotechnical Engineering, 1994, 120(4):661-667.
[11] KOERNER R M, WAYNE M H, CARROLL R G. Analytic Behavior of Geogrid Anchorage[C]//Proceedings of Geosynthetics'89 Conference. San Diego:[s. n.], 1989:525-536.
[12] JEWELL R A, MILLIGAN G W E, SARSBY R W, et al. Interaction between Soil and Geogrids[C]//Proceedings of a Conference on Polymer Grid Reinforcement. London:Thomas Telford, 1984:18-30.
[13] YANG Guang-qing, LI Guang-xin, ZHANG Bao-jian. Experimental Studies on Interface Friction Characteristics of Geogrids[J]. Chinese Journal of Geotechnical Engineering, 2006, 28(8):948-952. (in Chinese)
[14] CAI Chun, ZHANG Meng-xi, ZHAO Gang-fei, et al. Pull-out Test of Uniaxial Geogrid with Strengthening Ribs[J]. Rock and Soil Mechanics, 2012, 33(1):53-64. (in Chinese)
[15] WANG Jia-quan, LU Meng-liang, ZHOU Yue-fu, et al. Bearing Characteristics of Reinforced Soil with Longitudinal and Transverse Ribs of Geogrids[J]. Chinese Journal of Geotechnical Engineering, 2018, 40(1):186-193. (in Chinese)
[16] YANG He-ping, WAN Liang, ZHENG Jian-long. Development and Application of Large Scale Numerical Control Pullout Test System[J]. Chinese Journal of Geotechnical Engineering, 2007, 29(7):1080-1084. (in Chinese)
[17] TGE40-2007, Test Methods of Soils for Highway Engineering[S]. (in Chinese)
[18] PETERSON L M, ANDERSON L R. Pullout Resistance of Welded Wire Mesh Embeded in Soil[R]. Logan:Civil and Environmental Engineering Department, Utah State University, 1980.
[19] CHEN Rong, HAO Dong-xue, LUAN Mao-tian, et al. Reinforcement Mechanism of Transverse and Longitudinal Geogrid Ribs[J]. Journal of Building Materials, 2013, 16(3):544-548. (in Chinese)
[20] CARDILE G, GIOFFRE D, MORACI N, et al. Modelling Interference Between the Geogrid Bearing Members Under Pullout Loading Conditions[J]. Geotextiles and Geomembranes, 2017, 45:169-177. |
|
|
|