Development of an architecture-property model for triply periodic minimal surface structures and validation using material extrusion additive manufacturing with polyetheretherketone (PEEK)

被引:11
作者
Spece, Hannah [1 ]
DeSantis, Paul M. [1 ]
Kurtz, Steven M. [1 ]
机构
[1] Drexel Univ, Implant Res Core, Sch Biomed Engn Sci & Hlth Syst, Philadelphia, PA 19104 USA
关键词
Additivemanufacturing; Triplyperiodicminimalsurface(TPMS); Homogenization; Polyetheretherketone(PEEK); Porosity; Materialextrusion; MECHANICAL-PROPERTIES; HOMOGENIZATION THEORY; POROUS BIOMATERIALS; CELLULAR STRUCTURES; LATTICE MATERIALS; SCAFFOLDS; DESIGN; MORPHOLOGY; ELEMENT;
D O I
10.1016/j.jmbbm.2022.105345
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Additively manufactured structures designed from triply periodic minimal surfaces (TPMSs) have been receiving attention for their potential uses in the medical, aerospace, and automobile industries. Understanding how these complex geometries can be designed to achieve particular architectural and mechanical properties is essential for tuning their function to certain applications. In this study, we created design tools for visualizing the interplay between TPMS design parameters and resulting architecture and aimed to validate a model of the relationship between structure architecture and Young's modulus. A custom MATLAB script was written to analyze structural properties for families of Schoen gyroid and Schwarz diamond structures, and a numerical homogenization scheme was performed to predict the effective Young's moduli of the structures based on their architecture. Our modeling methods were validated experimentally with polyetheretherketone (PEEK) structures created using material extrusion additive manufacturing. The architectural characteristics of the structures were determined using micro-computed tomography, and compression testing was performed to determine yield strength and Young's modulus. Two different initial build orientations were tested to determine the behavior both perpendicular and parallel to the layer deposition direction (referred to as z-direction and xy-direction, respectively). The z-direction Young's modulus ranged from 289.7 to 557.5 MPa and yield strength ranged from 10.12 to 20.3 MPa. For the xy-direction, Young's modulus ranged from 133.8 to 416.4 MPa and yield strength ranged from 3.8 to 12.2 MPa. For each initial build orientation, the mechanical properties were found to decrease with increasing porosity, and failure occurred due to both strut bending and interlayer debonding. The mechanical properties predicted by the modeling agreed with the values found for z-direction samples (difference 2-11%) but less so for xy-direction samples (difference 27-62%) due to weak interlayer bonding and print path irregularities. Ultimately, the findings presented here provide better understanding of the range of properties achievable for additive manufacturing of PEEK and encouraging results for a TPMS architecture-property model.
引用
收藏
页数:14
相关论文
共 83 条
  • [1] Fatigue design of lattice materials via computational mechanics: Application to lattices with smooth transitions in cell geometry
    Abad, Ehsan Masoumi Khalil
    Khanoki, Sajad Arabnejad
    Pasini, Damiano
    [J]. INTERNATIONAL JOURNAL OF FATIGUE, 2013, 47 : 126 - 136
  • [2] Mechanical properties of 3D printed polymeric cellular materials with triply periodic minimal surface architectures
    Abueidda, Diab W.
    Bakir, Mete
    Abu Al-Rub, Rashid K.
    Bergstrom, Jorgen S.
    Sobh, Nahil A.
    Jasiuk, Iwona
    [J]. MATERIALS & DESIGN, 2017, 122 : 255 - 267
  • [3] Compressive characteristics of radially graded porosity scaffolds architectured with minimal surfaces
    Afshar, M.
    Anaraki, A. Pourkamali
    Montazerian, H.
    [J]. MATERIALS SCIENCE AND ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2018, 92 : 254 - 267
  • [4] Additive manufacturing and mechanical characterization of graded porosity scaffolds designed based on triply periodic minimal surface architectures
    Afshar, M.
    Anaraki, A. Pourkamali
    Montazerian, H.
    Kadkhodapour, J.
    [J]. JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2016, 62 : 481 - 494
  • [5] Functionally graded and multi-morphology sheet TPMS lattices: Design, manufacturing, and mechanical properties
    Al-Ketan, Oraib
    Lee, Dong-Wook
    Rowshan, Reza
    Abu Al-Rub, Rashid K.
    [J]. JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2020, 102
  • [6] Topology-mechanical property relationship of 3D printed strut, skeletal, and sheet based periodic metallic cellular materials
    Al-Ketan, Oraib
    Rowshan, Reza
    Abu Al-Rub, Rashid K.
    [J]. ADDITIVE MANUFACTURING, 2018, 19 : 167 - 183
  • [7] Alizadeh-Osgouei Mona., Smart Materials in Medicine, V2, P15, DOI DOI 10.1016/J.SMAIM.2020.10.003
  • [8] Ambu Rita, 2019, ScientificWorldJournal, V2019, P7060847, DOI 10.1155/2019/7060847
  • [9] How to determine composite material properties using numerical homogenization
    Andreassen, Erik
    Andreasen, Casper Schousboe
    [J]. COMPUTATIONAL MATERIALS SCIENCE, 2014, 83 : 488 - 495
  • [10] High-strength porous biomaterials for bone replacement: A strategy to assess the interplay between cell morphology, mechanical properties, bone ingrowth and manufacturing constraints
    Arabnejad, Sajad
    Johnston, R. Burnett
    Pura, Jenny Ann
    Singh, Baljinder
    Tanzer, Michael
    Pasini, Damiano
    [J]. ACTA BIOMATERIALIA, 2016, 30 : 345 - 356