R. Deepa, G. Kumar, C. S. Babu, S. Shetty, Kr Jnandev, P. Rohit, Mohammed Fayaz Pasha, L. Mahesh
{"title":"牙合力对预载牙种植基牙螺钉应力分布影响的有限元分析研究","authors":"R. Deepa, G. Kumar, C. S. Babu, S. Shetty, Kr Jnandev, P. Rohit, Mohammed Fayaz Pasha, L. Mahesh","doi":"10.5005/JP-JOURNALS-10012-1087","DOIUrl":null,"url":null,"abstract":"Purpose: The aim of the study is to determine stress distribution on preloaded implant-abutment screws in three different implant systems under simulated occlusal loads. Materials and methods: Three abutments to implant internal hex joint systems were simulated by using the 3-dimensional finite element analysis; (1) Nobel Biocare replace tapered (2) Uniti (3) Lifecare self-threaded tapered cement retained abutments. Thermal load and contact analysis were used to simulate preload resulting from the torque in implant screw joint assemblies. The simulated preload implants were then loaded with three static occlusal loads (10N horizontal; 35N vertical; 70N oblique) onto the crown into the implant complex. Results: Under preload and static occlusal forces, maximum Von-Mises stresses were concentrated at the lower portion of abutment for all systems. Maximum stresses were concentrated at lower threaded portion of abutment screw in Nobel Biocare, Uniti but in Lifecare system, stresses were concentrated at the middle threaded portion. Maximum stresses were concentrated at middle threaded portion of implant in Nobel Biocare, Uniti but at the upper threaded portion in Lifecare. Stresses increased under static occlusal forces in abutment screw in Nobel Biocare and Uniti but were more under oblique forces. In Lifecare stresses decreased under horizontal forces and increased in vertical and oblique forces. Conclusion: Although, an increase or decrease was demonstrated for the maximum calculated stress values in preloaded screws. After occlusal loads, these maximum stress values were well below the yield stress of abutment screw systems tested.","PeriodicalId":303737,"journal":{"name":"International Journal of Oral Implantology and Clinical Research","volume":"24 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2013-01-15","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"4","resultStr":"{\"title\":\"Influence of Occlusal Forces on Stress Distribution on Preloaded Dental Implant Abutment Screws: A Finite Element Analysis Study\",\"authors\":\"R. Deepa, G. Kumar, C. S. Babu, S. Shetty, Kr Jnandev, P. Rohit, Mohammed Fayaz Pasha, L. Mahesh\",\"doi\":\"10.5005/JP-JOURNALS-10012-1087\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Purpose: The aim of the study is to determine stress distribution on preloaded implant-abutment screws in three different implant systems under simulated occlusal loads. Materials and methods: Three abutments to implant internal hex joint systems were simulated by using the 3-dimensional finite element analysis; (1) Nobel Biocare replace tapered (2) Uniti (3) Lifecare self-threaded tapered cement retained abutments. Thermal load and contact analysis were used to simulate preload resulting from the torque in implant screw joint assemblies. The simulated preload implants were then loaded with three static occlusal loads (10N horizontal; 35N vertical; 70N oblique) onto the crown into the implant complex. Results: Under preload and static occlusal forces, maximum Von-Mises stresses were concentrated at the lower portion of abutment for all systems. Maximum stresses were concentrated at lower threaded portion of abutment screw in Nobel Biocare, Uniti but in Lifecare system, stresses were concentrated at the middle threaded portion. Maximum stresses were concentrated at middle threaded portion of implant in Nobel Biocare, Uniti but at the upper threaded portion in Lifecare. Stresses increased under static occlusal forces in abutment screw in Nobel Biocare and Uniti but were more under oblique forces. In Lifecare stresses decreased under horizontal forces and increased in vertical and oblique forces. Conclusion: Although, an increase or decrease was demonstrated for the maximum calculated stress values in preloaded screws. 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引用次数: 4
摘要
目的:本研究的目的是确定三种不同种植体系统在模拟咬合负荷下预载种植体-基台螺钉的应力分布。材料与方法:采用三维有限元方法模拟了3个基台种植内六角关节系统;(1) Nobel Biocare取代锥形(2)uniiti (3) Lifecare自螺纹锥形水泥保留基台。采用热负荷分析和接触分析方法模拟了植入体螺钉关节组件中扭矩产生的预负荷。然后对模拟预载种植体施加三个静态咬合载荷(水平10N;35 n垂直的;70N斜)到冠上进入种植体复合体。结果:在预紧力和静咬合力作用下,各系统的最大Von-Mises应力均集中在基牙下部。在Nobel Biocare、Uniti系统中,最大应力集中在基牙螺钉的下螺纹部分,而在Lifecare系统中,应力集中在中螺纹部分。在Nobel Biocare, Uniti中,最大应力集中在种植体的中螺纹部分,而在Lifecare中,最大应力集中在上螺纹部分。Nobel Biocare和Uniti的基牙螺钉在静咬合力作用下应力增大,而在斜咬合力作用下应力增大。在Lifecare中,应力在水平力作用下减小,在垂直和斜向力作用下增大。结论:虽然预压螺钉的最大计算应力值会增加或减少。在咬合载荷后,这些最大应力值远低于测试的基台螺钉系统的屈服应力。
Influence of Occlusal Forces on Stress Distribution on Preloaded Dental Implant Abutment Screws: A Finite Element Analysis Study
Purpose: The aim of the study is to determine stress distribution on preloaded implant-abutment screws in three different implant systems under simulated occlusal loads. Materials and methods: Three abutments to implant internal hex joint systems were simulated by using the 3-dimensional finite element analysis; (1) Nobel Biocare replace tapered (2) Uniti (3) Lifecare self-threaded tapered cement retained abutments. Thermal load and contact analysis were used to simulate preload resulting from the torque in implant screw joint assemblies. The simulated preload implants were then loaded with three static occlusal loads (10N horizontal; 35N vertical; 70N oblique) onto the crown into the implant complex. Results: Under preload and static occlusal forces, maximum Von-Mises stresses were concentrated at the lower portion of abutment for all systems. Maximum stresses were concentrated at lower threaded portion of abutment screw in Nobel Biocare, Uniti but in Lifecare system, stresses were concentrated at the middle threaded portion. Maximum stresses were concentrated at middle threaded portion of implant in Nobel Biocare, Uniti but at the upper threaded portion in Lifecare. Stresses increased under static occlusal forces in abutment screw in Nobel Biocare and Uniti but were more under oblique forces. In Lifecare stresses decreased under horizontal forces and increased in vertical and oblique forces. Conclusion: Although, an increase or decrease was demonstrated for the maximum calculated stress values in preloaded screws. After occlusal loads, these maximum stress values were well below the yield stress of abutment screw systems tested.