Mechanical Characterisation and Simulation of the Tensile Behaviour of Polymeric Additively Manufactured Lattice Structures

被引:7
|
作者
Bruson, D. [1 ]
Galati, M. [1 ]
Calignano, F. [1 ]
Iuliano, L. [1 ]
机构
[1] Politecn Torino, Dept Management & Prod Engn, Turin, Italy
关键词
Lattice structure; Tensile test; Selective laser sintering (SLS); Polyamide 12 (PA12); Porosities;
D O I
10.1007/s11340-023-00976-5
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
BackgroundThe mechanical properties of lattice structures have been primarily investigated using uniaxial compression loads. Particularly for polymers, tensile properties are rarely considered because of the difficulties of defining a suitable specimen design in which the fracture occurs within the gauge length.ObjectiveThis work proposes a novel formulation to obtain a specimen for the tensile test with a gradation of the lattice density at the interface with the bulk portion, which realises a uniform stress distribution. The aim is to combine a localisation of the fracture in the gauge length with a specimen geometry accomplishing the EN ISO 527 standard and analyse the correlation between the mechanical performance and the defects induced by the process on such thin structures.MethodsThe formulation is experimentally and numerically (FEM) tested by designed specimens with different cell topology, cell size, strut diameter, and number of cells in the sample thickness. Also, results from uniaxial compression tests are used to validate the tensile properties. The specimens are manufactured in different orientations in the building volume by laser powder bed fusion with Polyamide 12. The effects of the pores morphology, distribution, and inherent anisotropy are investigated using X-ray computed tomography analysis. This data is also used to tune a numerical model.ResultsThe numerical analysis showed a uniform stress distribution; experimentally, the fracture is localised inside the gauge length in respect of the ISO standard. Remarkably, among the different strut-based architectures, the elongation at break is, in the best case, 50% of the corresponding bulk material, while the tensile strengths are comparable. Vertical printed specimens exhibited a slight decrease in tensile strength, and the elongation at break was lower than 50% compared to the counterparts built along the horizontal orientation. Modifying the numerical model according to process-related dimensional deviations between the actual and the nominal structures significantly improved the numerical results. The remaining deviation highlighted the incorrectness of modelling the lattice material from the bulk properties.ConclusionDensity gradation is a reliable approach for describing the tensile behaviour of polymeric lattice structures. However, the lower amount of porosity and the different shape in the lattice led to a different material mechanical performance with respect to the corresponding bulk counterpart. Therefore, for polymeric lattice structures, the relationship between process-design-material appears crucial for correctly representing the structure behaviour.
引用
收藏
页码:1117 / 1133
页数:17
相关论文
共 50 条
  • [41] An additively manufactured AlCuMnZr alloy microstructure and tensile mechanical properties
    Shyam, A.
    Plotkowski, A.
    Bahl, S.
    Sisco, K.
    Allard, L. F.
    Yang, Y.
    Haynes, J. A.
    Dehoff, R. R.
    MATERIALIA, 2020, 12
  • [42] Characterisation of additively manufactured titanium wall: Mechanical and microstructural aspects
    Veeman, Dhinakaran
    Subramaniyan, Mohan Kumar
    Elumalai, Vijayaragavan
    Sriram, Gokulakrishnan
    Kumar, Raman
    Browne, Micheal Agnelo
    Guo, Lei
    Nallathambhi, Siva Shanmugam
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART E-JOURNAL OF PROCESS MECHANICAL ENGINEERING, 2024, 238 (04) : 1591 - 1599
  • [43] Mechanical and surface characterisation of additively manufactured polyetheretherketone for the tribo test
    Prajapati, Sunil Kumar
    Gnanamoorthy, R.
    RAPID PROTOTYPING JOURNAL, 2025, 31 (03) : 584 - 598
  • [44] Mechanical and surface characterisation of additively manufactured polyetheretherketone for the tribo test
    Prajapati, Sunil Kumar
    R, Gnanamoorthy
    Rapid Prototyping Journal, 2024,
  • [45] HOMOGENIZATION OF MECHANICAL PROPERTIES FOR ADDITIVELY MANUFACTURED PERIODIC LATTICE STRUCTURES CONSIDERING JOINT STIFFENING EFFECTS
    Park, Sang-in
    Rosen, David W.
    PROCEEDINGS OF THE ASME INTERNATIONAL DESIGN ENGINEERING TECHNICAL CONFERENCES AND COMPUTERS AND INFORMATION IN ENGINEERING CONFERENCE, 2016, VOL 1A, 2016,
  • [46] Research paper Mechanical properties of additively manufactured lattice structures composed of zirconia and hydroxyapatite ceramics
    Kornfellner, Erik
    Reininger, Stefan
    Geier, Sebastian
    Schwentenwein, Martin
    Benca, Emir
    Scheiner, Stefan
    Moscato, Francesco
    JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2024, 158
  • [47] Build parameter influence on strut thickness and mechanical performance in additively manufactured titanium lattice structures
    Di Prima, Matthew
    Van Belleghem, Sarah
    Badhe, Yutika
    Snodderly, Kirstie
    Porter, Daniel
    Burchi, Albert
    Gilmour, Laura
    JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2024, 151
  • [48] Effective Mechanical Properties of AlSi7Mg Additively Manufactured Cubic Lattice Structures
    Mantovani, Sara
    Giacalone, Mauro
    Merulla, Andrea
    Bassoli, Elena
    Defanti, Silvio
    3D PRINTING AND ADDITIVE MANUFACTURING, 2022, 9 (04) : 326 - 336
  • [49] Simulation of the Compression Testing of Additively Manufactured Lattice Structures Using Inputs from Microcomputed Tomography
    Park M.
    Venter M.P.
    Du Plessis A.
    Material Design and Processing Communications, 2023, 2023
  • [50] A Monte Carlo simulation-based approach to realistic modelling of additively manufactured lattice structures
    Lozanovski, Bill
    Downing, David
    Phuong Tran
    Shidid, Darpan
    Qian, Ma
    Choong, Peter
    Brandt, Milan
    Leary, Martin
    ADDITIVE MANUFACTURING, 2020, 32 (32)