Microstructure and mechanical properties of 3D-printed zirconia bone scaffold: Experimental and computational analysis

被引:1
|
作者
Barui, Srimanta [1 ]
Lebert, Austin [1 ]
Jauregui, Francisco [1 ]
Munjuluri, Krishna Sai Aparna [1 ]
Kate, Kunal [1 ]
机构
[1] Univ Louisville, Mech Engn Dept, Shumaker Res Bldg, Louisville, KY 40292 USA
基金
美国国家科学基金会;
关键词
bone scaffold; finite element analysis; mechanical property; microextrusion; porosity and surface roughness; zirconia paste printing; OF-THE-ART; CERAMICS; BIOCERAMICS; ROUGHNESS; TITANIUM; SURFACES; FUTURE; PARTS;
D O I
10.1111/jace.20189
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Microextrusion-based additive manufacturing of zirconia-based bioceramics is capable of fabricating design-specific architectures with high mechanical strength properties and relative density. We developed a novel organic residue-free binder system for zirconia paste printing (ZP2) with the shear-thinning properties apropos to microextrusion-based 3D printing. Based on thermogravimetric analysis, debinding protocol was established followed by high-temperature heat treatment under four sintering conditions. Quantitative linear shrinkage (32.3%-42.7% ranging from in-plane to vertical direction), density (83.3%-87.5%), and surface roughness (7.7-13.8 mu m from the parallel to the perpendicular to the infill direction) as a factor of sintering conditions (1400 degrees C-1500 degrees C for 3-4 h) were analyzed. Whereas qualitative phase assemblage demonstrated "sintering condition independent" phase stability; grain growth and reduction in porosity were observed in the microstructure with increment in sintering temperature and hold time. Interestingly, at higher temperature and hold time, the compressive (46-72.4 MPa) and tensile strength (16.2-23.1 MPa) properties experienced a trade-off between grain growth and reduction in porosity. The ZP2 scaffolds sintered at lower temperature and hold time qualified for the bone scaffold applications having interconnected porosities, biologically relevant surface roughness, and human bone mimicking mechanical properties. With a unique finite element analysis recipe, the mechanical behavior of the "life-like" reconstructed computer aided design (CAD) geometries identical to real 3D-printed-sintered ZP2 scaffolds was quantitatively predicted.
引用
收藏
页数:18
相关论文
共 50 条
  • [1] Influence of processing parameters on mechanical properties of a 3D-printed trabecular bone microstructure
    Amini, Morteza
    Reisinger, Andreas
    Pahr, Dieter H.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART B-APPLIED BIOMATERIALS, 2020, 108 (01) : 38 - 47
  • [2] GEOMETRY AND MECHANICAL PROPERTIES OF A 3D-PRINTED TITANIUM MICROSTRUCTURE
    Rehounek, Lubos
    Hajkova, Petra
    Vakrcka, Petr
    Jira, Ales
    9TH ANNUAL CONFERENCE NANO & MACRO MECHANICS 2018, 2018, 15 : 104 - 108
  • [3] A 3D-Printed Scaffold for Repairing Bone Defects
    Dong, Jianghui
    Ding, Hangxing
    Wang, Qin
    Wang, Liping
    POLYMERS, 2024, 16 (05)
  • [4] 3D-printed vascularized biofunctional scaffold for bone regeneration
    Cao, Bojun
    Lin, Jieming
    Tan, Jia
    Li, Jiaxin
    Ran, Zhaoyang
    Deng, Liang
    Hao, Yongqiang
    INTERNATIONAL JOURNAL OF BIOPRINTING, 2023, 9 (03) : 185 - 199
  • [5] A Comprehensive Experimental Study on Mechanical Behavior, Microstructure and Transport Properties of 3D-printed Rock Analogs
    Song, Rui
    Wang, Yao
    Ishutov, Sergey
    Zambrano-Narvaez, Gonzalo
    Hodder, Kevin J.
    Chalaturnyk, Rick J.
    Sun, Shuyu
    Liu, Jianjun
    Gamage, Ranjith P.
    ROCK MECHANICS AND ROCK ENGINEERING, 2020, 53 (12) : 5745 - 5765
  • [6] A Comprehensive Experimental Study on Mechanical Behavior, Microstructure and Transport Properties of 3D-printed Rock Analogs
    Rui Song
    Yao Wang
    Sergey Ishutov
    Gonzalo Zambrano-Narvaez
    Kevin J. Hodder
    Rick J. Chalaturnyk
    Shuyu Sun
    Jianjun Liu
    Ranjith P. Gamage
    Rock Mechanics and Rock Engineering, 2020, 53 : 5745 - 5765
  • [7] Mechanical properties of 3D-printed pentadiamond
    Felix, Levi C.
    Ambekar, Rushikesh S.
    Woellner, Cristiano F.
    Kushwaha, Brijesh
    Pal, Varinder
    Tiwary, Chandra S.
    Galvao, Douglas S.
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2022, 55 (46)
  • [8] Electrospun/3D-printed PCL bioactive scaffold for bone regeneration
    Rosales-Ibanez, Raul
    Viera-Ruiz, Alejandro Emmanuel
    Cauich-Rodriguez, Juan Valerio
    Carrillo-Escalante, Hugo Joel
    Gonzalez-Gonzalez, Arely
    Rodriguez-Martinez, Jesus Jiovanni
    Hernandez-Sanchez, Fernando
    POLYMER BULLETIN, 2023, 80 (03) : 2533 - 2552
  • [9] Electrospun/3D-printed PCL bioactive scaffold for bone regeneration
    Raúl Rosales-Ibáñez
    Alejandro Emmanuel Viera-Ruiz
    Juan Valerio Cauich-Rodríguez
    Hugo Joel Carrillo-Escalante
    Arely González-González
    Jesús Jiovanni Rodríguez-Martínez
    Fernando Hernández-Sánchez
    Polymer Bulletin, 2023, 80 : 2533 - 2552
  • [10] 3D-Printed Oral Dosage Forms: Mechanical Properties, Computational Approaches and Applications
    Karalia, Danae
    Siamidi, Angeliki
    Karalis, Vangelis
    Vlachou, Marilena
    PHARMACEUTICS, 2021, 13 (09)