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Li Bingqi, Zhang Zhenyu, Li Bin, Liu Xiaonan, Yang Xuhui. STUDY ON DEBONDING FAILURE MODEL OF POLYUREA-BASED COATING WITH HIGH VELOCITY WATER FLOW BASED ON COHESIVE ZONE MODEL[J]. Chinese Journal of Theoretical and Applied Mechanics, 2020, 52(5): 1538-1546. DOI: 10.6052/0459-1879-20-064
Citation: Li Bingqi, Zhang Zhenyu, Li Bin, Liu Xiaonan, Yang Xuhui. STUDY ON DEBONDING FAILURE MODEL OF POLYUREA-BASED COATING WITH HIGH VELOCITY WATER FLOW BASED ON COHESIVE ZONE MODEL[J]. Chinese Journal of Theoretical and Applied Mechanics, 2020, 52(5): 1538-1546. DOI: 10.6052/0459-1879-20-064

STUDY ON DEBONDING FAILURE MODEL OF POLYUREA-BASED COATING WITH HIGH VELOCITY WATER FLOW BASED ON COHESIVE ZONE MODEL

  • Received Date: March 03, 2020
  • The surface of the flood discharge building is usually sprayed with polyurea-based coating to improve the impact resistance. However, the research on the debonding failure mechanism of the anti-wear polyurea-based coating under the action of high-speed water flow velocity is still blank. Based on the flow pattern of high-velocity water flow, the mechanical model of high-velocity water flow to flood-discharge building was determined, and the load on flood discharge building caused by high-velocity water flow mainly includes drag force, impact force, fluctuating force and lifting force. The cohesive zone model was used to characterize the debonding failure process of the interface between polyurea-based coating and flood-reducing building, and the debonding failure model of polyurea-coating with high-speed water flow was established, and the finite element formal equations, constitutive relationship, damage initiation principle, evolution principle and contact and collision model of the model are given. The relationship between stress-displacement in the process of debonding failure was obtained by the debonding failure tests, and the variation law between peeling failure stress and inclination angle of interface was obtained. According to the peeling failure test, the parameters of debonding failure model were obtained, and the model was also verified. The test results were in good agreement with the model calculation results, which provides a theoretical basis for the anti-shock and wear-resistant design of flood discharge building.
  • [1] 林继镛, 王光纶. 水工建筑物. 北京: 中国水利水电出版社(第5版), 2009
    [1] ( Lin Jiyong, Lin Guanglun. Hydraulic Structure. Beijing: China Water and Power Press (5th Edition), 2009 (in Chinese))
    [2] 赵朝云. 水工建筑物的运行与维护. 北京: 中国水利水电出版社, 2005
    [2] ( Zhao Chaoyun. Operation and Maintenance of Hydraulic Structure. Beijing: China Water and Power Press, 2009 (in Chinese))
    [3] 徐小伟, 范增柏. 抗冲耐磨混凝土在向家坝水电站中的应用. 水利水电技术, 2015,46(S1):67-70
    [3] ( Xu Xiaowei, Fan Zengbai. Application of anti-erosion and anti-wear concrete in xiangjiaba hydropower station. Water Resources and Hydropower Engineering, 2015,46(S1):67-70 (in Chinese))
    [4] 信玉良, 侍克斌, 努尔开力依孜特罗甫 等. 钢渣高性能混凝土抗冲耐磨性能试验. 水利水电科技进展, 2014,34(6):40-44
    [4] ( Xin Yuliang, Shi Kebin, Nuerkaili Yiziteluofu, et al. Study on the abrasion resistant properties of high performance concrete with steel slag powder. Advances in Science and Technology of Water Resources, 2014,34(6):40-44 (in Chinese))
    [5] 陈亮, 汪在芹, 冯菁 等. 水利水电工程抗冲磨材料与应用. 北京: 科学出版社, 2017
    [5] ( Chen Liang, Wang Zaiqin, Feng Jing, et al. Anti-abrasion Material for Water Conservancy and Hydropower Engineering and Its Application. Beijing: Science Press, 2017 (in Chinese))
    [6] Urgessa GS, Esfandiari M. Review of polymer coatings used for blast strengthening of reinforced concrete and masonry structures. International Congress on Polymers in Concrete, 2018: 713-719
    [7] Buchan PA, Chen JF. Blast resistance of FRP composites and polymer strengthened concrete and masonry structures. Composites:Part B, 2007,38:509-522
    [8] Buckley ML, Wei Y, Jaffe BE, et al. Inverse modeling of velocities and inferred cause of overwash that emplaced inland fields of boulders at anegada, british virgin islands. Natural Hazards, 2012,63(1):133-149
    [9] Schüttrumpf H., Oumeraci H. Layer thicknesses and velocities of wave overtopping flow at seadikes. Coastal Engineering, 2005,52(6):473-495
    [10] Bomers A, Lopez JPA, Warmink JJ, et al. Modelling effects of an asphalt road at a dike crest on dike cover erosion onset during wave overtopping. Natural Hazards Journal of the International Society for the Prevention & Mitigation of Natural Hazards, 2018,93(1):1-30
    [11] 张寅寅. 纤维混凝土在高流速输水渠道防冲耐磨衬砌中的设计与应用. 水利规划与设计, 2019(4):104-106
    [11] ( Zhang Yanyan. Design and application of fiber reinforced concrete in anti-erosion and wear-resistant lining of high-speed water conveyance channel. Water Resources Planning and Dsign, 2019(4):104-106 (in Chinese))
    [12] 张振忠, 汪在芹, 陈亮. 改性环氧砂浆抗冲磨材料性能研究. 水力发电, 2016,42(6):95-98
    [12] ( Zhang Zhenzhong, Wang Zaiqin, Chen Liang. Reaearch on the property of anti-abrasion modified epoxy mortar. Water Power, 2016,42(6):95-98 (in Chinese))
    [13] 蔡荣. 澜沧江丁坝局部冲刷试验及其防护研究. [硕士论文]. 重庆: 重庆交通大学, 2012
    [13] ( Cai Rong. Local scour experiments and protection of spur dike on the Lancang river. [Master Thesis]. Chongqing: Chongqing Jiaotong University, 2012 (in Chinese))
    [14] 邹鹏飞. 挑流冲坑内的水流脉动特性及冲刷机理研究. [硕士论文]. 武汉: 武汉大学, 2004
    [14] ( Zou Pengfei. Research on the characteristics of fluctuating pressures and the mechanism of its scouring in the scour pit. [Master Thesis]. Wuhan: Wuhan University, 2004 (in Chinese))
    [15] Dugdale DS. Yielding of steel sheets containing slits. Journal of the Mechanics & Physics of Solids, 1960,8(2):100-104
    [16] Barenblatt GI. The formation of equilibrium cracks during brittle fracture. General ideas and hypotheses. Axially-symmetric cracks. Journal of Applied Mathematics & Mechanics, 1959,23(3):622-636
    [17] Zhang Z, Paulino GH. Cohesive zone modeling of dynamic failure in homogeneous and functionally graded materials. International Journal of Plasticity, 2005,21(6):1195-1254
    [18] 宿树达, 任成祖, 李远辰. 三点弯曲模式下C/SiC复合材料界面脱粘强度的数值模拟. 材料科学与工程学报, 2019,37(1):77-81
    [18] ( Su Shuda, Ren Chenzu, Li Yuanchen. Numerical simulation of interfacial debonding strength of C/SiC composites in three-point bending mode. Journal of Materials Science and Engineering, 2019,37(1):77-81 (in Chinese))
    [19] Long H, Liang LH, Wei YG. Failure characterization of solid structures based on an equivalence of cohesive zone model. International Journal of Solid and Structures, 2019,163(2019):194-210
    [20] 胡振虎. 基于内聚力模型的复合材料胶接接头界面失效机理研究. [硕士论文]. 杭州: 浙江大学, 2018
    [20] ( Hu Zhenhu. Research on interface failure mechanisms of composite adhesive joints based on the cohesive model. [Mater Thesis]. Hangzhou: Zhejiang University, 2018 (in Chinese))
    [21] Caprio FD, Saputo S, Sellitto A. Numerical-experimental correlation of interlaminar damage growth in composite structures: setting cohesive zone model parameters. Advances in Materials Science and Engineering, 2019(1):1-16
    [22] 李炳奇, 张宇弛, 李泽阳 等. 水压和变形下嵌缝材料设计及黏接层破坏机理研究. 水利学报, 2017,48(7):858-865, 873
    [22] ( Li Bingqi, Zhang Yuchi, Li Zeyang, et al. Study on the design of joint sealing material and failure mechanism of adhesive layer under water pressure and deformation. Shui Li Xue Bao, 2017,48(7):858-865, 873 (in Chinese))
    [23] Roham R, Amin G. Investigating interaction between CNT and polymer using cohesive zone model. Polymer Composites, 2018,39(11):3903-3911
    [24] Amol R, Prashant KMK. Analysis of the failure of bonded interface between aluminium skin and FRP patch using cohesive zone model. Journal of The Institution of Engineers (India): Series C, 2019, 869-878
    [25] Schoneboom T, Aberle J, Dittrich A. Spatial Variability, Mean Drag Forces, and Drag Coefficients in an Array of Rigid Cylinders. Experimental Methods in Hydraulic Research, 2011
    [26] Raúl AL, Martín R. Pressure and velocity fluctuations in stilling basins// Advances in Water Resources & Hydraulic Engineering Iahr-apd Congress and Symposium of Iahr-ishs, 2008
    [27] Batchelor GK. Pressure fluctuations in isotropic turbulence. Mathematical Proceedings of the Cambridge Philosophical Society, 1951,47(2):16
    [28] Anderson JD. Introduction to Flight (5th edn.), McGraw-Hill, 257, ISBN 0-07-282569-3, 2004
    [29] Yoon J. Mach Number and Similarity Parameters. http:// Aerospaceweb.org, 2003-12-28
    [30] Steinhauser MO. Computational Mutiscale Modeling of Fluids and Solids: Theory and Applications. Berlin, Heidelberg: Springer, 2008
    [31] 林孟达, 崔桂香, 张兆顺 等. 飞机尾涡演变及快速预测的大涡模拟研究. 力学学报, 2017,49(6):1185-1200
    [31] ( Lin Mengda, Cui Guixiang, Zhang Zhaoshun, et al. Large eddy simulation on the evolution and the fast-time prediction of aircraft wake vortices. Chinese Journal of Theoretical and Applied Mechanics, 2017,49(6):1185-1200 (in Chinese))
    [32] 陈少林, 柯小飞, 张洪翔. 海洋地震工程流固耦合问题统一计算框架. 力学学报, 2019,51(2):594-606
    [32] ( Chen Shaolin, Ke Xiaofei, Zhang Hongxiang. A unified computational framework for fluid-solid coupling in marine earthquake engineering. Chinese Journal of Theoretical and Applied Mechanics, 2019,51(2):594-606 (in Chinese))
    [33] 何涛. 基于ALE 有限元法的流固耦合强耦合数值模拟. 力学学报, 2018,50(2):395-404
    [33] ( He Tao. A partitioned strong couping algorith for fluid-structure interaction using arbitrary lagrangian-eulerian finite element forulation. Chinese Journal of Theoretical and Applied Mechanics, 2018,50(2):395-404 (in Chinese))
    [34] Abaqus Analysis User's Guide 6.14, ABAQUS Inc., 2014, 827-915
    [35] Munjiza A. The Combined Finite-Discrete Element Method. Wiley, 2004, 35-129
    [36] 李炳奇, 张宇弛, 刘小楠 等. 伸缩缝防渗结构聚脲基涂层剥离破坏研究. 水利学报, 2017,48(1):70-77
    [36] ( Li Bingqi, Zhang Yuchi, Liu Xiaonan, et al. Study on the polyurea-coat debonding failure of impervious structurein contraction joints. Shui Li Xue Bao, 2017,48(1):70-77 (in Chinese))
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