Yu Wenqian, Chen Siyi, Ma Li, Ma Xiaoni, Xu Xin
Department of Implantology, School and Hospital of Stomatology, Cheeloo College of Medicine, Shandong University & Shandong Provincial Key Laboratory of Oral Tissue Regeneration & Shandong Engineering Laboratory for Dental Materials and Oral Tissue Regeneration, Jinan, Shandong, China.
Department of VIP Center, School and Hospital of Stomatology, Cheeloo College of Medicine, Shandong University & Shandong Provincial Key Laboratory of Oral Tissue Regeneration & Shandong Engineering Laboratory for Dental Materials and Oral Tissue Regeneration, Jinan, Shandong, China.
J Prosthodont. 2023 Apr;32(4):309-317. doi: 10.1111/jopr.13532. Epub 2022 May 25.
The objective of this finite element study was to investigate the effect of different framework designs, framework materials, and bone densities on the stress distribution of fixed implant-supported prostheses for edentulous mandibles.
Under the condition of 2-mm cortical bone, 16 models were created in the edentulous mandible to simulate different framework designs (1-piece or 3-piece frameworks) with different framework material (pure titanium, zirconia, polyetheretherketone, or carbon fiber-reinforced polyetheretherketone) in-high or low-density trabecular bone. Then, vertical loading and oblique loading at 75° were applied to the anterior and posterior regions. The stress distribution and stress concentration region of implant and peri-implant bone with different combinations were compared by finite element analysis.
The use of the 1-piece zirconia framework in high-density trabecular bone improved stress distribution on implants and peri-implant bone. The region of stress concentration is located in the buccal cervix of the distal implants and the distobuccal portion of the cortical bone in all models. To improve the stress distribution on fixed implant-supported dentures for edentulous mandibles, the 1-piece framework and zirconia represent the better combination.
Under the condition of 2-mm cortical bone thickness, the full-arch zirconia framework had minimum von Mises stress on implants and peri-implant bone in all models, and high trabecular bone density greatly decreased the stress on cortical bone.
本有限元研究的目的是调查不同的支架设计、支架材料和骨密度对无牙下颌种植体支持固定义齿应力分布的影响。
在皮质骨厚度为2毫米的条件下,在无牙下颌创建16个模型,以模拟不同的支架设计(一体式或三件式支架),并使用不同的支架材料(纯钛、氧化锆、聚醚醚酮或碳纤维增强聚醚醚酮),同时设置高或低密度的小梁骨。然后,在前部和后部区域施加垂直载荷和75°的斜向载荷。通过有限元分析比较不同组合下种植体及种植体周围骨的应力分布和应力集中区域。
在高密度小梁骨中使用一体式氧化锆支架可改善种植体和种植体周围骨的应力分布。在所有模型中,应力集中区域位于远端种植体的颊侧颈部和皮质骨的颊侧远中部分。为改善无牙下颌种植体支持固定义齿的应力分布,一体式支架和氧化锆是较好的组合。
在皮质骨厚度为2毫米的条件下,全牙弓氧化锆支架在所有模型中种植体及种植体周围骨上的von Mises应力最小,且高小梁骨密度可大大降低皮质骨上的应力。