Experimental Evaluation and Finite Element Analysis of Stress Distribution in 3D-Printed Dental Implants to Validate the Optimal Thread Pitch

被引:0
|
作者
Irudhayam, Jackson S. [1 ]
Venkatesan, Hariram [1 ]
机构
[1] Hindustan Inst Technol & Sci, Dept Mech Engn, Chennai 603103, Tamil Nadu, India
来源
REVUE DES COMPOSITES ET DES MATERIAUX AVANCES-JOURNAL OF COMPOSITE AND ADVANCED MATERIALS | 2024年 / 34卷 / 02期
关键词
photoelasticity test FEA; design CFR PEEK; dental implant; stress distribution; BONE; DIAMETER; LENGTH;
D O I
10.18280/rcma.340215
中图分类号
TB33 [复合材料];
学科分类号
摘要
Objective: As an alternative method of prosthetic rehabilitation, the dental implant serves as one of the solutions that may be used to restore a missing tooth over a lengthy period of time. In order to achieve stress concentration in 3D printed 30% CFR PEEK dental implants, the finite element approach and the experimental photoelasticity test are applied. This is done in order to find the optimal thread pitch for a 3D printed 30% CFR PEEK implant and its impact on the bone implant interface. Materials and methods: Three-dimensional models were generated for the one-piece implant and bone structures. The models were created by introducing variations of 0.8mm, 1mm, and 1.2mm in the thread pitch while maintaining a fixed implant length of 13mm. SolidWorks software was employed for the creation of these models. Subsequently, the stress distribution of the models was simulated under axial load using ANSYS software. An experimental model was created utilizing 3D printing technology, and further experimental tests were conducted to assess the stress concentration in dental implants -bone interfaces. These evaluations were performed using the photoelasticity test method. Results: As a result of the findings, it seems that the implant, cortical, and cancellous bones all exhibit different levels of stress intensity. A thorough analysis of the stress intensity is used to establish the optimal configuration for the pitch of the components and the behavior of 3D printed implant in cancellous bone. Conclusions: After careful consideration, it has been shown that the current finite element model adequately forecasts the stress concentration pattern of dental implants. In light of the fact that the findings of the FEM test are more accurate than those of the photoelasticity test, it is recommended that computation techniques be used in medical practice since they have tremendous potential for new research. This research suggested that the optimum ranges for the length and pitch of the 3D printed 30% CFR PEEK implant are determined to be 13mm and 0.8mm, respectively and a low implant thread pitch results in a reduction in stress concentration at the implantcancellous bone interface.
引用
收藏
页码:257 / 267
页数:11
相关论文
共 50 条
  • [1] Finite element analysis and experimental evaluation on stress distribution and sensitivity of dental implants to assess optimum length and thread pitch
    Pirmoradian, Mostafa
    Naeeni, Hamed Ajabi
    Firouzbakht, Masih
    Toghraie, Davood
    Khabaz, Mohamad Khaje
    Darabi, Reza
    COMPUTER METHODS AND PROGRAMS IN BIOMEDICINE, 2020, 187
  • [2] A 3D Finite Element Analysis Of Dental Implants With Varying Thread Angles
    NarendraKumar, U.
    Mathew, Arun Tom
    Iyer, Nikhil
    Rahman, Febin
    Manjubala, I.
    MATERIALS TODAY-PROCEEDINGS, 2018, 5 (05) : 11900 - 11905
  • [3] Fatigue life of 3D-printed porous titanium dental implants predicted by validated finite element simulations
    Vautrin, Antoine
    Aw, Jensen
    Attenborough, Ed
    Varga, Peter
    FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2023, 11
  • [4] Impact of Dental and Zygomatic Implants on Stress Distribution in Maxillary Defects: A 3-Dimensional Finite Element Analysis Study
    Korkmaz, Fatih Mehmet
    Korkmaz, Yavuz Tolga
    Yalug, Suat
    Korkmaz, Turan
    JOURNAL OF ORAL IMPLANTOLOGY, 2012, 38 (05) : 557 - 568
  • [5] Comparison of 3D-Printed Dental Implants with Threaded Implants for Osseointegration: An Experimental Pilot Study
    Li, Ling
    Lee, Jungwon
    Ben Amara, Heithem
    Lee, Jun-Beom
    Lee, Ki-Sun
    Shin, Sang-Wan
    Lee, Yong-Moo
    Kim, Byoungkook
    Kim, Pangyu
    Koo, Ki-Tae
    MATERIALS, 2020, 13 (21) : 1 - 10
  • [6] Effect of peri-implantitis associated horizontal bone loss on stress distribution around dental implants - A 3D finite element analysis
    Gupta, Shipra
    Goyal, Parveen
    Jain, Ashish
    Chopra, Priyanka
    MATERIALS TODAY-PROCEEDINGS, 2020, 28 : 1503 - 1509
  • [7] Evaluation of Stress Levels of Dental Implants in Different Macrogeometry in Type 2 Bone: A Finite Element Analysis
    Dere, Kadriye Ayca
    Akkocaoglu, Murat
    CLINICAL AND EXPERIMENTAL HEALTH SCIENCES, 2022, 12 (01): : 87 - 93
  • [8] Finite Element Analysis and Experimental Investigations on Stress Distribution of Dental Implants around Implant-Bone Interface
    Dhatrak, Pankaj
    Shirsat, Uddhav
    Sumanth, S.
    Deshmukh, Vijay
    MATERIALS TODAY-PROCEEDINGS, 2018, 5 (02) : 5641 - 5648
  • [9] Effect of surface treatment on stress distribution in immediately loaded dental implants-A 3D finite element analysis
    Bahrami, Babak
    Shahrbaf, Shirin
    Mirzakouchaki, Behnam
    Ghalichi, Farzan
    Ashtiani, Mohammed
    Martin, Nicolas
    DENTAL MATERIALS, 2014, 30 (04) : E89 - E97
  • [10] Stress-based performance comparison of dental implants by finite element analysis
    Pasquale Franciosa
    Massimo Martorelli
    Martorelli, M. (massimo.martorelli@unina.it), 1600, Springer-Verlag France (06): : 123 - 129