The microstructural evolution of material extrusion based additive manufacturing of polyetheretherketone under different printing conditions and application in a spinal implant

dc.contributor.author Irez, Alaeddin Burak
dc.contributor.author Dogru, Alperen
dc.contributor.authorID orcid.org/0000-0001-7316-7694
dc.contributor.authorID orcid.org/0000-0003-3730-3761
dc.contributor.department Makina Mühendisliği
dc.date.accessioned 2024-12-25T05:56:30Z
dc.date.available 2024-12-25T05:56:30Z
dc.date.issued 2024
dc.description.abstract With the advances in additive manufacturing, polyetheretherketone (PEEK), a biocompatible polymer, can be used in biomedical applications such as spinal implants. This paper aims to investigate the evolution of the microstructure of PEEK parts manufactured by material extrusion (MEX)-based additive manufacturing with different printing parameters. The effect of layer thickness (LT) and nozzle diameter on mechanical properties was investigated using tensile, Charpy impact, and short beam strength (SBS) tests. Two different LTs, 0.1 and 0.2 mm, and two different nozzle diameters, 0.6 and 0.8 mm, were used as printing parameters. By increasing the LT, tensile strength dropped by around 24%, and impact strength by almost 55%. Moreover, altering the LT resulted in a 15% decrease in interlaminar shear strength (ILSS) from the SBS test. In addition, increasing the nozzle diameter also led to a significant reduction in all of the results as tensile strength, Charpy impact strength, and ILSS. The results were also consolidated by scanning electron microscopy. The main findings were that increasing LT leads to an increase in microstructural defects that act as stress concentrators. Following the tests, response surface methodology (RSM) was used to determine optimal printing parameters. In the end, using the optimum printing parameters from the RSM study, a structural analysis of a MEX-printed spinal implant was conducted through finite element method, considering the loading cases mimicking daily human body motions. Highlights As layer thickness increased, tensile and impact strength dropped. Tensile and impact strength dropped truly with increasing nozzle diameter. SEM revealed that increasing layer thickness causes more microstructural flaws. FEM analysis showed that PEEK-based implant provides structural integrity.
dc.identifier.citation Irez AB and Dogru A. (2024). "The microstructural evolution of material extrusion based additive manufacturing of polyetheretherketone under different printing conditions and application in a spinal implant". Polymer Engineering & Science, 64 (11). doi:10.1002/pen.26929
dc.identifier.issue 11
dc.identifier.uri https://doi.org/10.1002/pen.26929
dc.identifier.uri http://hdl.handle.net/11527/25969
dc.identifier.volume 64
dc.language.iso en_US
dc.publisher Wiley
dc.relation.ispartof Polymer Engineering & Science
dc.rights.license CC BY 4.0
dc.sdg.type none
dc.subject additive manufacturing
dc.subject PEEK
dc.subject polyetheretherketone
dc.subject material extrusion
dc.subject biocompatible polymers
dc.subject spinal implants
dc.title The microstructural evolution of material extrusion based additive manufacturing of polyetheretherketone under different printing conditions and application in a spinal implant
dc.type Article
dspace.entity.type
Dosyalar
Orijinal seri
Şimdi gösteriliyor 1 - 1 / 1
thumbnail.default.alt
Ad:
26929.pdf
Boyut:
4.29 MB
Format:
Adobe Portable Document Format
Açıklama
Lisanslı seri
Şimdi gösteriliyor 1 - 1 / 1
thumbnail.default.placeholder
Ad:
license.txt
Boyut:
1.58 KB
Format:
Item-specific license agreed upon to submission
Açıklama