利用三维有限元分析方法对0.5 mm和0.85 mm平台切换基台附近的硬组织行为进行了计算建模和分析

IF 3.2 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Forces in mechanics Pub Date : 2023-10-14 DOI:10.1016/j.finmec.2023.100243
Mohammad Afazal , Saba Afreen , Arnab Chanda
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引用次数: 0

摘要

永久性牙齿撕脱是一种常见但极其严重的牙齿损伤,会对经济产出和生活方式产生负面影响。尽管这不是一种疾病,但没有人能完全免受这些灾难性伤害的影响。牙科植入物在治疗此类损伤(牙齿缺失)方面发挥着至关重要的作用。这项工作的重点是寻找两种不同的平台转换基台植入物组件对硬组织(皮质和松质)骨的影响。Materialized Mimics Medical Software用于处理下颌骨的临床成像(CBCT)数据和种植体(5.5×9.5 mm)、桥台(Pt.sw.I和Pt.sw.II)的显微CT数据,并通过Fusion 360 CAD软件获得所有部分的最终3D模型,并将其植入右下颌骨块中。比较了具有不同切换组件的种植体基台,如平台切换-I(Pt.Sw.I)的B.2 5.5-mm种植体和B.2 3.8-mm基台,以及平台切换II(Pt.Sw.II)的B.25.5-mm植入物和B.2 4.5-mm基牙。每个模型在基牙的咬合表面承受50N、100N和150N的纵向和横向载荷,以评估机械参数。使用ANSYS 2020R1进行计算分析。使用有限元模型测量了硬组织中的机械特性,如von Mises应力和总变形。在不同载荷的作用下,松质骨承受的最大vonmiss应力为4.7MPa,Pt.Sw为5.4MPa。I和Pt.Sw。II在纵向载荷下分别为7.4MPa和8.7MPa。I和Pt.Sw。II分别在横向荷载作用下。皮质骨也出现了类似的趋势。同时,记录了纵向载荷下2.1µm(Pt.Sw.I)和2.2µm(Pt.Sw.II)的最大总变形,以及纵向载荷下松质骨和皮质骨中4.4µm和4.6µm的最大总形变,松质骨在横向载荷下4.4µm(Pt.Sw.I。该分析可能有助于防止边缘骨丢失(MBL)的进展,因为这些变量的较低结果表明边缘骨的平台转换较高。计算框架的发现可以帮助临床医生和其他医疗专业人员在从众多可用选项中选择治疗策略时做出更明智的决定。
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Computational modelling and analysis of hard tissue behavior around 0.5 mm and 0.85 mm platform switched abutment using 3D finite element analysis

Permanent tooth avulsion is a common but extremely serious dental injury that can negatively affect both economic output and lifestyle. Even though it is not a disease, no one is ever completely safe from the possibility of suffering from these disastrous injuries. Dental implants play a vital role in the treatment of such injuries (tooth loss). This work was focused on to find the effects of two different platform switched abutment-implant assembly on hard tissues (Cortical and cancellous) bone. Materialized Mimics Medical Software was used for processing clinical imaging (CBCT) data of mandibular bone and micro-CT data of implant (5.5 × 9.5 mm), Abutments (Pt. sw. I and Pt. sw. II) and final 3D model of all parts were obtained by Fusion 360 CAD software and implanted into a right mandible bone block. Implant-Abutment with different switching assembly as platform switched-I (Pt. Sw. I) Ø5.5-mm implant and Ø3.8-mm abutment and the platform switched-II (Pt. Sw. II) Ø5.5-mm implant and Ø4.5-mm abutment were compared. Each model was subjected to 50 N, 100 N and 150 N longitudinal and lateral loads at occlusal surface of the abutment to evaluate the mechanical parameters. ANSYS 2020R1 was used to conduct the computational analysis. Mechanical characteristics such as von-Mises stresses and total deformation were measured in the hard tissues using finite element modelling. Under the application of different loads the cancellous bone experiences maximum von misses stress 4.7 MPa and 5.4 MPa for Pt. Sw. I and Pt. Sw. II respectively under longitudinal load and 7.4 MPa and 8.7 MPa for Pt. Sw. I and Pt. Sw. II respectively under lateral load. Similar trends were observed for cortical bone. While maximum total deformation of 2.1 µm (Pt. Sw. I) and 2.2 µm (Pt. Sw. II) under longitudinal load and 4.4 µm and 4.6 µm in cancellous bone and cortical bone under longitudinal load and 4.4 µm (Pt. Sw. I) and 4.6 µm (Pt. Sw. II) under lateral load in cancellous and 7.5 µm (Pt. Sw. I) and 8 µm (Pt. Sw. II) in cortical bone were recorded. The analysis may help to prevent the progression of marginal bone loss (MBL) because lower results for these variables indicated for higher platform switching in marginal bone. The findings of computational frameworks can help clinicians and other medical professionals make more informed decisions when selecting a treatment strategy from the many options available.

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Forces in mechanics
Forces in mechanics Mechanics of Materials
CiteScore
3.50
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审稿时长
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