Title of article :
A Nano-indentation Identification Technique for Viscoelastic Constitutive Characteristics of Periodontal Ligaments
Author/Authors :
Ashraf، H نويسنده Faculty of Mechanical Engineering, University of Kashan, Iran , , Shariyat، M نويسنده Faculty of Mechanical Engineering, K. N. Toosi University of Technology, MolaSadra Street, Vanak Square, 19991-43344 Tehran, Iran ,
Issue Information :
فصلنامه با شماره پیاپی 0 سال 2016
Abstract :
Introduction: Nano-indentation has recently been employed as a powerful tool
for determining the mechanical properties of biological tissues on nano and micro
scales. A majority of soft biological tissues such as ligaments and tendons exhibit viscoelastic or time-dependent behaviors. The constitutive characterization of soft tissues
is among very important subjects in clinical medicine and especially, biomechanics
felds. Periodontal ligament plays an important role in initiating tooth movement when
loads are applied to teeth with orthodontic appliances. It is also the most accessible
ligament in human body as it can be directly manipulated without any surgical intervention. From a mechanical point of view, this ligament can be considered as a thin interface made by a solid phase, consisting mainly of collagen fbers, which is immersed
into a so-called ground substance. However, the viscoelastic constitutive effects of
biological tissues are seldom considered rigorous during Nano-indentation tests.
Methods: In the present paper, a mathematical contact approach is developed to
enable determining creep compliance and relaxation modulus of distinct periodontal
ligaments, using constant–rate indentation and loading time histories, respectively. An
adequate curve-ftting method is presented to determine these characteristics based on
the Nano-indentation of rigid Berkovich tips. Generalized Voigt-Kelvin and Wiechert
models are used to model constitutive equations of periodontal ligaments, in which
the relaxation and creep functions are represented by series of decaying exponential
functions of time.
Results: Time-dependent creep compliance and relaxation function have been obtained for tissue specimens of periodontal ligaments.
Conclusion: To improve accuracy, relaxation and creep moduli are measured from
two tests separately. Stress relaxation effects appear more rapidly than creep in the
periodontal ligaments.
Journal title :
Journal of Biomedical Physics and Engineering
Journal title :
Journal of Biomedical Physics and Engineering