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Biomechanical behavior of functionally graded S53P4 bioglass-zirconia dental implants: Experimental and finite element analyses
被引:16
|作者:
Fabris, Douglas
[1
]
Fredel, Marcio C.
[1
]
Souza, Julio C. M.
[2
,3
]
Silva, Filipe S.
[3
]
Henriques, Bruno
[1
,2
,4
]
机构:
[1] Fed Univ Santa Catarina UFSC, Ceram & Composite Mat Res Grp CERMAT, Campus Trindade, BR-88040900 Florianopolis, SC, Brazil
[2] Univ Inst Hlth Sci IUCS, CESPU, Dept Dent Sci, P-4585116 Gandra Prd, Portugal
[3] Univ Minho, CMEMS UMinho, Campus Azurem, P-4800058 Guimaraes, Portugal
[4] Univ Fed Santa Catarina, Postgrad Program Dent PPGO, Sch Dent DODT, Campus Trindade, BR-88040900 Florianopolis, SC, Brazil
关键词:
Dental implant;
Zirconia;
Bioactive glass;
Functionally graded material;
Osseointegration;
Finite elements method;
BIOACTIVE GLASS;
TITANIUM;
PORCELAIN;
CERAMICS;
HYDROXYAPATITE;
DENTISTRY;
STRENGTH;
STRESSES;
LAW;
D O I:
10.1016/j.jmbbm.2021.104565
中图分类号:
R318 [生物医学工程];
学科分类号:
0831 ;
摘要:
Objectives: The aim of this work was to evaluate the biomechanical behavior of one-piece zirconia implants with a functionally graded bioglass (BG) layer as compared to monolithic zirconia and BG-coated implants, using the finite element method (FEM). Methods: Zirconia disks were infiltrated with bioglass S53P4 and then morphologically inspected by scanning electron microscopy (SEM) followed by mechanical analyses on micro-indentation tests for further biomechanical validation using the finite element method (FEM). On modeling, zirconia dental implants anchored into mandibular bone were simulated on occlusal loading as recorded under mastication. Three types of implants were simulated: i) free of BG coating, ii) with 100 mu m or 150 mu m thick conventional BG coatings; and iii) with graded BG coatings involving 3 different chemical composition distributions. The stress state at both implant and bone were evaluated using the FEM. The mechanically-induced bone remodelling was analyzed through the bone strain results. Results: Infiltration of BG into a zirconia structure resulted in a similar to 100 mu m thick layer with an exponential-like gradation of chemical composition and properties. Regarding the FEM calculations, the BG coating induced up to 30% decrease on stress in the implant body when compared to the monolithic zirconia implant. The gradient of chemical composition also improved the stresses' distribution. The stresses distribution towards the BG-coatings were significantly high and could lead to failure. Stresses on the bone were recorded down to its strength threshold, with insignificant influence of the coating layer. The bone strain values on all models indicates further bone remodelling although BG-coated and BG-graded zirconia implants showed the highest strain magnitude that may enhance the mechanical stimulation for bone maintenance. Significance: Graded BG-zirconia dental implants showed enhanced overall biomechanical behaviour as compared to the BG-coated or monolithic zirconia dental implants. Also, such biomechanical improvements noticed for the BG-graded system should be considered in combination with the well-known osseointegration benefits of bioactive glasses.
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