Finite Element Analysis of the Influence of Implant Tilting and the Direction of Loading on the Displacement and Micromotion of Immediately Loaded Implants

Author:

Sahoo Nihar Ranjan1,Sahany Subrat Kumar2,Pandey Vijayendra3,Das Abhaya Chandra4,Choudhury Purobi56,Panda Saurav4,Sahoo Rashmita7

Affiliation:

1. Associate Professor, Department of Dentistry, MKCG Medical College and Hospital, Berhampur, Odisha, India

2. Assistant Professor, Department of Dental Surgery, M.K.C.G. Medical College & Hospital, Brahmapur, Odisha, India

3. Professor and HOD, Department of Dentistry, Manipal Tata Medical College, Manipal Academy of Higher Education, Manipal, Karnataka, India

4. Professor, Department of Periodontics and Oral Implantology, Institute of Dental Sciences, Siksha ‘O’ Anusandhan (Deemed to be University), Khandagiri Square, Bhubaneswar, Odisha, India

5. Professor Department of Dentistry, Silchar Medical College and Hospital, Attached faculty of Government Dental College, Silchar, Assam, India

6. Department of Periodontics, SrimantaSankardeva University of Health Science’s, Assam, India

7. Tutor, Dept of Oral Medicine and Radiology, Institute of Dental Sciences, Siksha ‘O’ Anusandhan (Deemed to be University), Khandagiri Square, Bhubaneswar, Odisha, India

Abstract

ABSTRACT Objectives: To investigate the outcome of the loading direction and implant tilting on the micromotion and displacement of immediately placed implants with finite element analysis (FEA). Materials and Method: Eight blocks of synthetic bone were created. Eight screw-type implants were inserted, four axially and four slanted, each measuring 11 mm in length and 4.5 mm in diameter. The axial implants and the tilted implants were distally inclined by 30°. The top of the abutment was subjected to 180 N vertical and mesiodistal oblique (45° angle) loads, and the displacement of the abutment was measured. The abutment displacement and micromotion were estimated, and nonlinear finite element models simulating the in vitro experiment were built. In vitro studies and FEA data on abutment displacement were compared, and the reliability of the finite element model was assessed. Result: Under oblique stress, abutment displacement was larger than under axial loading, and it was also greater for tilted implants than for axial implants. The consistency of the in vitro and FEA data was satisfactory. Under vertical stress, the highest micromotion values in the axial and tilted implants were extremely near Conclusion: Under mesiodistal oblique stress, tilted implants may have a smaller maximum amount of micromotion than axial implants. The loading direction had a significant impact on the highest micromotion values. The abutment displacement values were not reflected in the maximum micromotion measurements.

Publisher

Medknow

Reference5 articles.

1. Effects of implant tilting and the loading direction on the displacement and micromotion of immediately loaded implants: an in vitro experiment and finite element analysis;Sugiura;J Periodontal Implant Sci,2017

2. Finite element analysis of stress concentration between surface coated implants and non surface coated implants - An in vitro study;Satyanarayana;J Clin Exp Dent,2019

3. Effect of model parameters on finite element analysis of micromotions in implant dentistry;Winter;J Oral Implantol,2013

4. Biomechanical finite element analysis of a single implant threaded in anterior and posterior regions of maxilla bone;Sabri;J Dent Res,2020

5. Finite Element Analysis of a dental implant;Huang;Biomedical Engineeringapplications, Basis & Communications,2003

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