Mechanical properties and fluid permeability of gyroid and diamond lattice structures for intervertebral devices: functional requirements and comparative analysis

Current intervertebral fusion devices present multiple complication risks such as a lack of fixation, device migration and subsidence. An emerging solution to these problems is the use of additively manufactured lattice structures that are mechanically compliant and permeable to fluids, thus promoti...

Full description

Bibliographic Details
Main Authors: Anatolie Timercan, Vadim Sheremetyev, Vladimir Brailovski
Format: Article
Language:English
Published: Taylor & Francis Group 2021-12-01
Series:Science and Technology of Advanced Materials
Subjects:
Online Access:http://dx.doi.org/10.1080/14686996.2021.1907222
id doaj-0c2e7d41b16440a48b52eb8b1ff6baec
record_format Article
spelling doaj-0c2e7d41b16440a48b52eb8b1ff6baec2021-05-06T15:44:48ZengTaylor & Francis GroupScience and Technology of Advanced Materials1468-69961878-55142021-12-0122128530010.1080/14686996.2021.19072221907222Mechanical properties and fluid permeability of gyroid and diamond lattice structures for intervertebral devices: functional requirements and comparative analysisAnatolie Timercan0Vadim Sheremetyev1Vladimir Brailovski2École de Technologie SupérieureNational University of Science and Technology MISiSÉcole de Technologie SupérieureCurrent intervertebral fusion devices present multiple complication risks such as a lack of fixation, device migration and subsidence. An emerging solution to these problems is the use of additively manufactured lattice structures that are mechanically compliant and permeable to fluids, thus promoting osseointegration and reducing complication risks. Strut-based diamond and sheet-based gyroid lattice configurations having a pore diameter of 750 µm and levels of porosity of 60, 70 and 80% are designed and manufactured from Ti-6Al-4V alloy using laser powder bed fusion. The resulting structures are CT–scanned, compression tested and subjected to fluid permeability evaluation. The stiffness of both structures (1.9–4.8 GPa) is comparable to that of bone, while their mechanical resistance (52–160 MPa) is greater than that of vertebrae (3–6 MPa), thus decreasing the risks of wither bone or implant failure. The fluid permeability (5–57 × 10−9 m2) and surface-to-volume ratios (~3) of both lattice structures are close to those of vertebrae. This study shows that both types of lattice structures can be produced to suit the application specifications within certain limits imposed by physical and equipment-related constraints, providing potential solutions for reducing the complication rate of spinal devices by offering a better fixation through osseointegration.http://dx.doi.org/10.1080/14686996.2021.1907222lattice structuresadditive manufacturinggeometric analysismechanical testingfluid permeability
collection DOAJ
language English
format Article
sources DOAJ
author Anatolie Timercan
Vadim Sheremetyev
Vladimir Brailovski
spellingShingle Anatolie Timercan
Vadim Sheremetyev
Vladimir Brailovski
Mechanical properties and fluid permeability of gyroid and diamond lattice structures for intervertebral devices: functional requirements and comparative analysis
Science and Technology of Advanced Materials
lattice structures
additive manufacturing
geometric analysis
mechanical testing
fluid permeability
author_facet Anatolie Timercan
Vadim Sheremetyev
Vladimir Brailovski
author_sort Anatolie Timercan
title Mechanical properties and fluid permeability of gyroid and diamond lattice structures for intervertebral devices: functional requirements and comparative analysis
title_short Mechanical properties and fluid permeability of gyroid and diamond lattice structures for intervertebral devices: functional requirements and comparative analysis
title_full Mechanical properties and fluid permeability of gyroid and diamond lattice structures for intervertebral devices: functional requirements and comparative analysis
title_fullStr Mechanical properties and fluid permeability of gyroid and diamond lattice structures for intervertebral devices: functional requirements and comparative analysis
title_full_unstemmed Mechanical properties and fluid permeability of gyroid and diamond lattice structures for intervertebral devices: functional requirements and comparative analysis
title_sort mechanical properties and fluid permeability of gyroid and diamond lattice structures for intervertebral devices: functional requirements and comparative analysis
publisher Taylor & Francis Group
series Science and Technology of Advanced Materials
issn 1468-6996
1878-5514
publishDate 2021-12-01
description Current intervertebral fusion devices present multiple complication risks such as a lack of fixation, device migration and subsidence. An emerging solution to these problems is the use of additively manufactured lattice structures that are mechanically compliant and permeable to fluids, thus promoting osseointegration and reducing complication risks. Strut-based diamond and sheet-based gyroid lattice configurations having a pore diameter of 750 µm and levels of porosity of 60, 70 and 80% are designed and manufactured from Ti-6Al-4V alloy using laser powder bed fusion. The resulting structures are CT–scanned, compression tested and subjected to fluid permeability evaluation. The stiffness of both structures (1.9–4.8 GPa) is comparable to that of bone, while their mechanical resistance (52–160 MPa) is greater than that of vertebrae (3–6 MPa), thus decreasing the risks of wither bone or implant failure. The fluid permeability (5–57 × 10−9 m2) and surface-to-volume ratios (~3) of both lattice structures are close to those of vertebrae. This study shows that both types of lattice structures can be produced to suit the application specifications within certain limits imposed by physical and equipment-related constraints, providing potential solutions for reducing the complication rate of spinal devices by offering a better fixation through osseointegration.
topic lattice structures
additive manufacturing
geometric analysis
mechanical testing
fluid permeability
url http://dx.doi.org/10.1080/14686996.2021.1907222
work_keys_str_mv AT anatolietimercan mechanicalpropertiesandfluidpermeabilityofgyroidanddiamondlatticestructuresforintervertebraldevicesfunctionalrequirementsandcomparativeanalysis
AT vadimsheremetyev mechanicalpropertiesandfluidpermeabilityofgyroidanddiamondlatticestructuresforintervertebraldevicesfunctionalrequirementsandcomparativeanalysis
AT vladimirbrailovski mechanicalpropertiesandfluidpermeabilityofgyroidanddiamondlatticestructuresforintervertebraldevicesfunctionalrequirementsandcomparativeanalysis
_version_ 1721456458794532864