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1.
Comput Methods Biomech Biomed Engin ; 20(7): 750-759, 2017 May.
Artigo em Inglês | MEDLINE | ID: mdl-28285545

RESUMO

In a dental implant system, the value of stress and its distribution plays a pivotal role on the strength, durability and life of the implant-bone system. A typical implant consists of a Titanium core and a thin layer of biocompatible material such as the hydroxyapatite. This coating has a wide range of clinical applications in orthopedics and dentistry due to its biocompatibility and bioactivity characteristics. Low bonding strength and sudden variation of mechanical properties between the coating and the metallic layers are the main disadvantages of such common implants. To overcome these problems, a radial distributed functionally graded biomaterial (FGBM) was proposed in this paper and the effect of material property on the stress distribution around the dental implant-bone interface was studied. A three-dimensional finite element simulation was used to illustrate how the use of radial FGBM dental implant can reduce the maximum von Mises stress and, also the stress shielding effect in both the cortical and cancellous bones. The results, of course, give anybody an idea about optimized behaviors that can be achieved using such materials. The finite element solver was validated by familiar methods and the results were compared to previous works in the literature.


Assuntos
Materiais Biocompatíveis/farmacologia , Osso e Ossos/patologia , Implantes Dentários , Estresse Mecânico , Osso e Ossos/efeitos dos fármacos , Simulação por Computador , Análise de Elementos Finitos , Humanos , Imageamento Tridimensional , Reprodutibilidade dos Testes , Tomografia Computadorizada por Raios X
2.
Med Biol Eng Comput ; 55(5): 859-871, 2017 May.
Artigo em Inglês | MEDLINE | ID: mdl-27629551

RESUMO

Based on radial functionally graded biomaterials and inspired by the geometry of a real aorta blood vessel, a new model was proposed to fabricate the artificial blood vessels. A finite element analyzer is employed to reach the optimal and proper material properties while earlier, it was validated by two famous theories, i.e., the first shear deformation and the plane elasticity. First, the geometry of a real ascending aorta part was simulated and then solved under the axially varying blood pressure and other real and actual conditions. Since the construction of artificial blood vessels just similar to the natural one is impossible, it was tried to find the best substitutes for other materials. Due to the significant properties of functionally graded biomaterials in the reduction in sudden changes of stress and deformation, these types of materials were selected and studied. Two types of conventional single-sided and an efficient double-sided radial functionally graded vessel were proposed and simulated. The elastic behaviors of proposed vessels were obtained and compared to ones previously attained from the real vessel. The results show that all the desired behaviors cannot be achieved by using a conventional single-sided radial FG vessel. Instead and as a conjecture, a smart double-sided radial FG biomaterial is suggested. Fortunately, the proposed material can meet all the desired goals and satisfy all of the indices simultaneously.


Assuntos
Aorta/fisiologia , Materiais Biocompatíveis/química , Fenômenos Biomecânicos/fisiologia , Pressão Sanguínea/fisiologia , Simulação por Computador , Elasticidade/fisiologia , Análise de Elementos Finitos , Humanos , Estresse Mecânico
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