The peritubular reinforcement effect of porous dentine microstructure.

In the current study, we evaluate the equivalent stiffness of peritubular reinforcement effect (PRE) of porous dentine optimized by the thickness of peritubular dentine (PTD). Few studies to date have evaluated or quantitated the effect of PRE on composite dentine. The miscrostructure of porous dent...

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Main Authors: Rong Wang, Lin Niu, Qun Li, Qida Liu, Hong Zuo
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2017-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC5578600?pdf=render
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spelling doaj-d34b2ca3948d45f5ac8632f85277ecf92020-11-24T21:36:17ZengPublic Library of Science (PLoS)PLoS ONE1932-62032017-01-01128e018398210.1371/journal.pone.0183982The peritubular reinforcement effect of porous dentine microstructure.Rong WangLin NiuQun LiQida LiuHong ZuoIn the current study, we evaluate the equivalent stiffness of peritubular reinforcement effect (PRE) of porous dentine optimized by the thickness of peritubular dentine (PTD). Few studies to date have evaluated or quantitated the effect of PRE on composite dentine. The miscrostructure of porous dentine is captured by scanning electron microscope images, and then finite element modeling is used to quantitate the deformation and stiffness of the porous dentine structure. By optimizing the radius of PTD and dentine tubule (DT), the proposed FE model is able to demonstrate the effect of peritubular reinforcement on porous dentine stiffness. It is concluded that the dentinal equivalent stiffness is reduced and degraded with the increase of the radius of DT (i.e., porosity) in the certain ratio value of Ep/Ei and certain radius of PTD, where Ep is the PTD modulus and Ei is the intertubular dentine modulus. So in order to ensure the whole dentinal equivalent stiffness is not loss, the porosity should get some value while the Ep/Ei is certain. Thus, PTD prevents the stress concentration around DTs and reduces the risk of DTs failure. Mechanically, the overall role of PTD appears to enhance the stiffness of the dentine composite structure. These results provide some new and significant insights into the biological evolution of the optimal design for the porous dentine microstructure. These findings on the biological microstructure design of dentine materials are applicable to other engineering structural designs aimed at increasing the overall structural strength.http://europepmc.org/articles/PMC5578600?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Rong Wang
Lin Niu
Qun Li
Qida Liu
Hong Zuo
spellingShingle Rong Wang
Lin Niu
Qun Li
Qida Liu
Hong Zuo
The peritubular reinforcement effect of porous dentine microstructure.
PLoS ONE
author_facet Rong Wang
Lin Niu
Qun Li
Qida Liu
Hong Zuo
author_sort Rong Wang
title The peritubular reinforcement effect of porous dentine microstructure.
title_short The peritubular reinforcement effect of porous dentine microstructure.
title_full The peritubular reinforcement effect of porous dentine microstructure.
title_fullStr The peritubular reinforcement effect of porous dentine microstructure.
title_full_unstemmed The peritubular reinforcement effect of porous dentine microstructure.
title_sort peritubular reinforcement effect of porous dentine microstructure.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2017-01-01
description In the current study, we evaluate the equivalent stiffness of peritubular reinforcement effect (PRE) of porous dentine optimized by the thickness of peritubular dentine (PTD). Few studies to date have evaluated or quantitated the effect of PRE on composite dentine. The miscrostructure of porous dentine is captured by scanning electron microscope images, and then finite element modeling is used to quantitate the deformation and stiffness of the porous dentine structure. By optimizing the radius of PTD and dentine tubule (DT), the proposed FE model is able to demonstrate the effect of peritubular reinforcement on porous dentine stiffness. It is concluded that the dentinal equivalent stiffness is reduced and degraded with the increase of the radius of DT (i.e., porosity) in the certain ratio value of Ep/Ei and certain radius of PTD, where Ep is the PTD modulus and Ei is the intertubular dentine modulus. So in order to ensure the whole dentinal equivalent stiffness is not loss, the porosity should get some value while the Ep/Ei is certain. Thus, PTD prevents the stress concentration around DTs and reduces the risk of DTs failure. Mechanically, the overall role of PTD appears to enhance the stiffness of the dentine composite structure. These results provide some new and significant insights into the biological evolution of the optimal design for the porous dentine microstructure. These findings on the biological microstructure design of dentine materials are applicable to other engineering structural designs aimed at increasing the overall structural strength.
url http://europepmc.org/articles/PMC5578600?pdf=render
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