Exploration of the influence of different biomimetic designs of 3D printed multi-material artificial spinal disc on the natural mechanics restoration

One of the great challenges of artificial spinal disc (ASD) design lies in the reproduction of the complex mechanics of an intervertebral disc (IVD) that is characterized by a viscoelastic, nonlinear, and anisotropic behavior. Although the development of multi-material additive manufacturing (AM) co...

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Main Authors: Zhiyang Yu, Benjamin Voumard, Kristina Shea, Tino Stanković
Format: Article
Language:English
Published: Elsevier 2021-11-01
Series:Materials & Design
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S0264127521006018
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spelling doaj-27b819f477144cbc9ded0335eef037332021-08-22T04:28:07ZengElsevierMaterials & Design0264-12752021-11-01210110046Exploration of the influence of different biomimetic designs of 3D printed multi-material artificial spinal disc on the natural mechanics restorationZhiyang Yu0Benjamin Voumard1Kristina Shea2Tino Stanković3Engineering Design and Computing Laboratory, Dept. of Mechanical and Process Engineering, ETH Zürich, Switzerland; Corresponding author at: Engineering Design and Computing Laboratory Dept. of Mechanical and Process Engineering, ETH Zürich, Switzerland.Musculoskeletal Biomechanics, ARTORG Center for Biomedical Engineering Research, University of Bern, SwitzerlandEngineering Design and Computing Laboratory, Dept. of Mechanical and Process Engineering, ETH Zürich, SwitzerlandEngineering Design and Computing Laboratory, Dept. of Mechanical and Process Engineering, ETH Zürich, SwitzerlandOne of the great challenges of artificial spinal disc (ASD) design lies in the reproduction of the complex mechanics of an intervertebral disc (IVD) that is characterized by a viscoelastic, nonlinear, and anisotropic behavior. Although the development of multi-material additive manufacturing (AM) combined with biomimetic design provide new opportunities for the realization of ASDs with complex behavior, the influence of different biomimetic designs on the kinematics of ASD in conjunction with AM is not yet explored. Therefore, this study proposes and fabricates four types of biomimetic, multi-material ASD designs based on mimicking either the material stiffness gradient or the structure found in a natural IVD. The results show that all the designs exhibit a desired viscoelastic behavior, while the ASD design based on a chainmail-like structure exhibits a nature-mimicking nonlinear rotational load response. In terms of restoring the natural trend of an IVD’s anisotropic behavior, the ASD design that mimics the structure found in an IVD outperforms the design that solely mimics an IVD’s material stiffness gradient. Additionally, all the designs proposed in this study show comparable instant helical axis (IHA) and instant center of rotation (ICOR) to an IVD's regarding their location and moving direction.http://www.sciencedirect.com/science/article/pii/S0264127521006018Multi-material 3D printingArtificial spinal discIn vitro testBiomimicryDesign evaluationArchitected materials
collection DOAJ
language English
format Article
sources DOAJ
author Zhiyang Yu
Benjamin Voumard
Kristina Shea
Tino Stanković
spellingShingle Zhiyang Yu
Benjamin Voumard
Kristina Shea
Tino Stanković
Exploration of the influence of different biomimetic designs of 3D printed multi-material artificial spinal disc on the natural mechanics restoration
Materials & Design
Multi-material 3D printing
Artificial spinal disc
In vitro test
Biomimicry
Design evaluation
Architected materials
author_facet Zhiyang Yu
Benjamin Voumard
Kristina Shea
Tino Stanković
author_sort Zhiyang Yu
title Exploration of the influence of different biomimetic designs of 3D printed multi-material artificial spinal disc on the natural mechanics restoration
title_short Exploration of the influence of different biomimetic designs of 3D printed multi-material artificial spinal disc on the natural mechanics restoration
title_full Exploration of the influence of different biomimetic designs of 3D printed multi-material artificial spinal disc on the natural mechanics restoration
title_fullStr Exploration of the influence of different biomimetic designs of 3D printed multi-material artificial spinal disc on the natural mechanics restoration
title_full_unstemmed Exploration of the influence of different biomimetic designs of 3D printed multi-material artificial spinal disc on the natural mechanics restoration
title_sort exploration of the influence of different biomimetic designs of 3d printed multi-material artificial spinal disc on the natural mechanics restoration
publisher Elsevier
series Materials & Design
issn 0264-1275
publishDate 2021-11-01
description One of the great challenges of artificial spinal disc (ASD) design lies in the reproduction of the complex mechanics of an intervertebral disc (IVD) that is characterized by a viscoelastic, nonlinear, and anisotropic behavior. Although the development of multi-material additive manufacturing (AM) combined with biomimetic design provide new opportunities for the realization of ASDs with complex behavior, the influence of different biomimetic designs on the kinematics of ASD in conjunction with AM is not yet explored. Therefore, this study proposes and fabricates four types of biomimetic, multi-material ASD designs based on mimicking either the material stiffness gradient or the structure found in a natural IVD. The results show that all the designs exhibit a desired viscoelastic behavior, while the ASD design based on a chainmail-like structure exhibits a nature-mimicking nonlinear rotational load response. In terms of restoring the natural trend of an IVD’s anisotropic behavior, the ASD design that mimics the structure found in an IVD outperforms the design that solely mimics an IVD’s material stiffness gradient. Additionally, all the designs proposed in this study show comparable instant helical axis (IHA) and instant center of rotation (ICOR) to an IVD's regarding their location and moving direction.
topic Multi-material 3D printing
Artificial spinal disc
In vitro test
Biomimicry
Design evaluation
Architected materials
url http://www.sciencedirect.com/science/article/pii/S0264127521006018
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