Functionally graded bi-material interface for Porcelain Veneered Zirconia dental crowns: A study using viscoelastic finite element analysis

IF 4.6 1区 医学 Q1 DENTISTRY, ORAL SURGERY & MEDICINE Dental Materials Pub Date : 2024-06-13 DOI:10.1016/j.dental.2024.06.007
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Abstract

Objectives

During the manufacturing of Porcelain Veneered Zirconia (PVZ) dental crowns, the veneer-core system undergoes high-temperature firing cycles and gets fused together which is then, under a controlled setting, cooled down to room temperature. During this cooling process, the mismatch in thermal properties between zirconia and porcelain leads to the development of transient and residual thermal stresses within the crown. These thermal stresses are inherent to the PVZ dental crown systems and render the crown structure weak, acting as a precursor to veneer chipping, fracture, and delamination. In this study, the introduction of an intermediate functionally graded material (FGM) layer at the bi-material interface is investigated as a potentially viable alternative for providing a smoother transition of properties between zirconia and porcelain in a PVZ crown system.

Methods

Anatomically correct 3D crown models were developed for this study, with and without the FGM layer modeled at the bi-material interface. A viscoelastic finite element model was developed and validated for an anatomically correct bilayer PVZ crown system which was then used for predicting residual and transient stresses in the bilayer PVZ crown. Subsequently, the viscoelastic finite element model was further extended for the analysis of graded sublayers within the FGM layer, and this extended model was used for predicting the residual and transient stresses in the functionally graded PVZ crown, with an FGM layer at the bi-material interface.

Results

The study showed that the introduction of an FGM layer at the bi-material interface has the potential to reduce the effects from transient and residual stresses within the PVZ crown system relative to a bilayer PVZ crown structure. Furthermore, the study revealed that the FGM layer causes stress redistribution to alleviate the stress concentration at the interfacial surface between porcelain and zirconia which can potentially enhance the durability of the PVZ crowns towards interfacial debonding or fracture.

Significance

Thus, the use of an FGM layer at the bi-material interface shows a good prospect for enhancing the longevity of the PVZ dental crown restorations by alleviating the abrupt thermal property difference and relaxing thermal stresses.

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瓷贴面氧化锆牙冠的功能分级双材料界面:粘弹性有限元分析研究。
目标:在制造瓷饰面氧化锆(PVZ)牙冠的过程中,饰面-核心系统要经过高温烧制循环并熔合在一起,然后在受控环境下冷却到室温。在冷却过程中,氧化锆和瓷之间热性能的不匹配会导致牙冠内部产生瞬时和残余热应力。这些热应力是 PVZ 牙冠系统所固有的,会使牙冠结构变得脆弱,成为贴面崩裂、断裂和分层的前兆。本研究探讨了在双材料界面上引入功能分级材料(FGM)中间层,作为一种潜在的可行替代方法,在 PVZ 牙冠系统中实现氧化锆和瓷之间更平滑的特性过渡:本研究开发了解剖正确的三维牙冠模型,在双材料界面上分别建模了和未建模 FGM 层。针对解剖正确的双层 PVZ 牙冠系统开发并验证了粘弹性有限元模型,然后用于预测双层 PVZ 牙冠中的残余应力和瞬态应力。随后,对粘弹性有限元模型进行了进一步扩展,以分析 FGM 层内的分级子层,并利用该扩展模型预测了在双材料界面上具有 FGM 层的功能分级 PVZ 牙冠的残余应力和瞬态应力:研究结果表明,与双层 PVZ 冠结构相比,在双材料界面上引入 FGM 层有可能减少 PVZ 冠系统中的瞬态应力和残余应力的影响。此外,研究还发现 FGM 层会导致应力重新分布,从而减轻瓷和氧化锆界面表面的应力集中,这有可能提高 PVZ 牙冠的耐久性,防止界面脱粘或断裂:因此,在双材料界面使用 FGM 层可缓解突然出现的热性能差异和热应力,从而提高 PVZ 牙冠修复体的使用寿命。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Dental Materials
Dental Materials 工程技术-材料科学:生物材料
CiteScore
9.80
自引率
10.00%
发文量
290
审稿时长
67 days
期刊介绍: Dental Materials publishes original research, review articles, and short communications. Academy of Dental Materials members click here to register for free access to Dental Materials online. The principal aim of Dental Materials is to promote rapid communication of scientific information between academia, industry, and the dental practitioner. Original Manuscripts on clinical and laboratory research of basic and applied character which focus on the properties or performance of dental materials or the reaction of host tissues to materials are given priority publication. Other acceptable topics include application technology in clinical dentistry and dental laboratory technology. Comprehensive reviews and editorial commentaries on pertinent subjects will be considered.
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