Skip to main content
Top
Published in: Progress in Additive Manufacturing 2/2020

18-03-2020 | Full Research Article

Post-yield performance of additive manufactured cellular lattice structures

Authors: Y. Ibrahim, C. M. Davies, C. Maharaj, Z. Li, J. P. Dear, P. A. Hooper

Published in: Progress in Additive Manufacturing | Issue 2/2020

Log in

Activate our intelligent search to find suitable subject content or patents.

search-config
loading …

Abstract

In energy absorption applications, post-yield behaviour is important. Lattice structures, having low relative densities, are an attractive way to obtain effective material properties that differ greatly from that of the parent material. These properties can be controlled through the manipulation of the cellular geometry, a concept that has been made significantly more attainable through the use of additive manufacturing (AM). Lattice structures of various geometries were designed, additively manufactured and tested to assess their structural integrity as well as to investigate the effect of varying the cell geometry on the overall performance of the structures. Uniaxial tensile and compressive tests were carried out on bulk material AM samples made of 316L, followed by tests on the lattice structures. Finite element (FE) analysis was also carried out and the results compared to the experimental data. The FE simulations were able to accurately predict the elastic response of both structures; however, the post-yield behaviour did not closely match the experimental data due to inadequate beam contact resolution in the FE model. The FE model yield stress was also overestimated in the regular lattice due to the presence of manufacturing defects found only in the manufactured test samples. The stochastic structure, both experimentally and in the FE model, displayed a transition in the elastic stiffness from a lower to a higher stiffness in the elastic region. This is due to changing load paths within the lattice from the beams in contact with the compression platens to the rest of the structure. This phenomenon did not occur within the regular structure.

Dont have a licence yet? Then find out more about our products and how to get one now:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literature
1.
go back to reference Gibson LJ, Ashby MF (1997) Cellular solids: structure and properties. Cambridge University Press, Cambridge, pp 45–180CrossRef Gibson LJ, Ashby MF (1997) Cellular solids: structure and properties. Cambridge University Press, Cambridge, pp 45–180CrossRef
2.
go back to reference Ashby MF (2000) Metal foams: a design guide. Butterworth-Heinemann, Burlington Ashby MF (2000) Metal foams: a design guide. Butterworth-Heinemann, Burlington
3.
go back to reference Xiao Z, Yang Y, Xiao R, Bai Y, Song C, Wang D (2018) Evaluation of topology-optimized lattice structures manufactured via selective laser melting. Mater Des 143:27–37CrossRef Xiao Z, Yang Y, Xiao R, Bai Y, Song C, Wang D (2018) Evaluation of topology-optimized lattice structures manufactured via selective laser melting. Mater Des 143:27–37CrossRef
4.
go back to reference Niu J, Choo H, Sun W, Mok S (2018) Analytical solution and experimental study of effective Young's modulus of selective laser melting-fabricated lattice structure with triangular unit cells. ASME J Manuf Sci Eng 140(9):1–13CrossRef Niu J, Choo H, Sun W, Mok S (2018) Analytical solution and experimental study of effective Young's modulus of selective laser melting-fabricated lattice structure with triangular unit cells. ASME J Manuf Sci Eng 140(9):1–13CrossRef
5.
go back to reference du Plessis A, Yadroitsava I, Yadroitsev I, le Roux SG, Blaine DC (2018) Numerical comparison of lattice unit cell designs for medical implants by additive manufacturing. Virtual Phys Prototyp 13(4):266–281CrossRef du Plessis A, Yadroitsava I, Yadroitsev I, le Roux SG, Blaine DC (2018) Numerical comparison of lattice unit cell designs for medical implants by additive manufacturing. Virtual Phys Prototyp 13(4):266–281CrossRef
6.
go back to reference Shamvedi D, McCarthy OJ, O’Donoghue E, Danilenkoff C, O’Leary P, Raghavendra R (2018) 3D Metal printed heat sinks with longitudinally varying lattice structure sizes using direct metal laser sintering. Virtual Phys Prototyp 13(4):301–310CrossRef Shamvedi D, McCarthy OJ, O’Donoghue E, Danilenkoff C, O’Leary P, Raghavendra R (2018) 3D Metal printed heat sinks with longitudinally varying lattice structure sizes using direct metal laser sintering. Virtual Phys Prototyp 13(4):301–310CrossRef
7.
go back to reference Sing SL, Wiria FE, Yeong WY (2018) Selective laser melting of lattice structures: a statistical approach to manufacturability and mechanical behaviour. Robot Comput-Integr Manuf 49:170–180CrossRef Sing SL, Wiria FE, Yeong WY (2018) Selective laser melting of lattice structures: a statistical approach to manufacturability and mechanical behaviour. Robot Comput-Integr Manuf 49:170–180CrossRef
8.
go back to reference Sing S, Yeong W, Wiria F, Tay B (2016) Characterization of titanium lattice structures fabricated by selective laser melting using an adapted compressive test method. Exp Mech 56(5):735–748CrossRef Sing S, Yeong W, Wiria F, Tay B (2016) Characterization of titanium lattice structures fabricated by selective laser melting using an adapted compressive test method. Exp Mech 56(5):735–748CrossRef
9.
go back to reference Fatemi SA, Ashany JZ, Aghchai AJ, Abolghasemi A (2017) Experimental investigation of process parameters on layer thickness and density in direct metal laser sintering: a response surface methodology approach. Virtual Phys Prototyp 12(2):133–140CrossRef Fatemi SA, Ashany JZ, Aghchai AJ, Abolghasemi A (2017) Experimental investigation of process parameters on layer thickness and density in direct metal laser sintering: a response surface methodology approach. Virtual Phys Prototyp 12(2):133–140CrossRef
10.
go back to reference Mullen L, Stamp RC, Brooks WK, Jones E, Sutcliffe CJ (2009) Selective laser melting: a regular unit cell approach for the manufacture of porous, titanium, bone in-growth constructs, suitable for orthopedic applications. J Biomed Mater Res B 89:325CrossRef Mullen L, Stamp RC, Brooks WK, Jones E, Sutcliffe CJ (2009) Selective laser melting: a regular unit cell approach for the manufacture of porous, titanium, bone in-growth constructs, suitable for orthopedic applications. J Biomed Mater Res B 89:325CrossRef
11.
go back to reference Mahshid R, Hansen HN, Højbjerre KL (2016) Strength analysis and modeling of cellular lattice structures manufactured using selective laser melting for tooling applications. Mater Des 104:276–283CrossRef Mahshid R, Hansen HN, Højbjerre KL (2016) Strength analysis and modeling of cellular lattice structures manufactured using selective laser melting for tooling applications. Mater Des 104:276–283CrossRef
12.
go back to reference Yan C, Hao L, Hussein A, Bubb SL, Young P, Raymont D (2014) Evaluation of light-weight AlSi10Mg periodic cellular lattice structures fabricated via direct metal laser sintering. J Mater Process Technol 214:856–864CrossRef Yan C, Hao L, Hussein A, Bubb SL, Young P, Raymont D (2014) Evaluation of light-weight AlSi10Mg periodic cellular lattice structures fabricated via direct metal laser sintering. J Mater Process Technol 214:856–864CrossRef
13.
go back to reference Barriobero-Vila P, Gussone J, Stark A, Schell N, Haubrich J, Requena G (2018) Peritectic titanium alloys for 3D printing. Nat Commun 9:3426CrossRef Barriobero-Vila P, Gussone J, Stark A, Schell N, Haubrich J, Requena G (2018) Peritectic titanium alloys for 3D printing. Nat Commun 9:3426CrossRef
14.
go back to reference Kürnsteiner P, Wilms MB, Weisheit A, Barriobero-Vila P, Jägle EA, Raabe D (2017) Massive nanoprecipitation in an Fe-19Ni-xAl maraging steel triggered by the intrinsic heat treatment during laser metal deposition. Acta Mater 129:52–60CrossRef Kürnsteiner P, Wilms MB, Weisheit A, Barriobero-Vila P, Jägle EA, Raabe D (2017) Massive nanoprecipitation in an Fe-19Ni-xAl maraging steel triggered by the intrinsic heat treatment during laser metal deposition. Acta Mater 129:52–60CrossRef
15.
go back to reference Li D, Liao W, Dai N, Xie YM (2019) Comparison of mechanical properties and energy absorption of sheet-based and strut-based gyroid cellular structures with graded densities. Materials (Basel) 12:2183CrossRef Li D, Liao W, Dai N, Xie YM (2019) Comparison of mechanical properties and energy absorption of sheet-based and strut-based gyroid cellular structures with graded densities. Materials (Basel) 12:2183CrossRef
17.
go back to reference Ghouse S, Babu S, Van Arkel RJ, Nai K, Hooper P, Jeffers JRT (2017) The influence of laser parameters and scanning strategies on the mechanical properties of a stochastic porous material. Mater Des 131:498–508CrossRef Ghouse S, Babu S, Van Arkel RJ, Nai K, Hooper P, Jeffers JRT (2017) The influence of laser parameters and scanning strategies on the mechanical properties of a stochastic porous material. Mater Des 131:498–508CrossRef
18.
go back to reference Ghouse S, Babu S, Nai K, Hooper P, Jeffers JRT (2018) The influence of laser parameters, scanning strategies and material on the fatigue strength of a stochastic porous structure. Addit Manuf 22:290–301 Ghouse S, Babu S, Nai K, Hooper P, Jeffers JRT (2018) The influence of laser parameters, scanning strategies and material on the fatigue strength of a stochastic porous structure. Addit Manuf 22:290–301
19.
go back to reference ASTM D 1621–16 (2016) Standard test method for compressive properties of rigid cellular plastics. In: Annual book of ASTM standards. ASTM International, vol. 08.01 ASTM D 1621–16 (2016) Standard test method for compressive properties of rigid cellular plastics. In: Annual book of ASTM standards. ASTM International, vol. 08.01
20.
go back to reference ASTM E8/E8M-16a (2016) standard test methods for tension testing of metallic materials. In: Annual book of ASTM standards. ASTM International, vol. 03.01 ASTM E8/E8M-16a (2016) standard test methods for tension testing of metallic materials. In: Annual book of ASTM standards. ASTM International, vol. 03.01
21.
go back to reference Labeas G, Sunaric M (2010) Investigation on the static response and failure process of metallic open cellular structures. Strain 46:195–204CrossRef Labeas G, Sunaric M (2010) Investigation on the static response and failure process of metallic open cellular structures. Strain 46:195–204CrossRef
Metadata
Title
Post-yield performance of additive manufactured cellular lattice structures
Authors
Y. Ibrahim
C. M. Davies
C. Maharaj
Z. Li
J. P. Dear
P. A. Hooper
Publication date
18-03-2020
Publisher
Springer International Publishing
Published in
Progress in Additive Manufacturing / Issue 2/2020
Print ISSN: 2363-9512
Electronic ISSN: 2363-9520
DOI
https://doi.org/10.1007/s40964-020-00128-4

Other articles of this Issue 2/2020

Progress in Additive Manufacturing 2/2020 Go to the issue

Premium Partners