Additive Manufacturing design rules are different from those of conventional fabrication techniques. These allow geometries that would not be possible to achieve otherwise. One example of application is the integration of functional parts as part of the manufacturing process.

Conceivable applications range from mechanical functions like integration of moving parts or thermodynamic functions, for example cooling channels or incorporation of electric circuits for electrical functionalization. Nevertheless, the potential of functional integration using powder bed processes is far from being exhausted.

The present approach addresses the generation of inner cavities and internal structures of titanium-based parts or components by the usage of selective laser melting (SLM). This paper focusses on the investigation of voids and cavities regarding their capabilities to add new functions to the material.

To this end, comprehensive characterization is performed using destructive as well as non-destructive testing methods. These include 3D scanning, computed tomography, and surface roughness measurements as well as microscopic analysis.

Voids and cavities were filled with different thermoplastic materials, followed by qualitative assessment of the mold filling and resulting material properties. Finally, applications are derived and evaluated with respect to the field of lightweight design or damping structures.

1.
Glasschroeder
,
J.
,
Prager
,
E.
&
Zaeh
,
M. F.
Powder-bed-based 3D-printing of function integrated parts
.
Rapid Prototyping Journal
21
,
207
215
(
2015
).
2.
Türk
,
D.
et al
Additive Manufacturing with Composites for Integrated Aircraft Structures
.
SAMPE 2016, Long Beach, CA, USA, May 23rd - 26th 2016.
3.
Kellner
,
T.
Paris Air Show. 3D-Printed ‘Bionic’ Parts Could Revolutionize Aerospace Design.
https://www.ge.com/reports/3d-printed-bionic-parts-revolutionize-aerospace-design/ (20 June
2017
).
4.
Heyde
,
M.
New Products, One Layer At a Time
.
Additive Manufacturing.
https://www.fraunhofer.de/en/research/current-research/additive-manufacturing.html (
2018
).
5.
Guo
,
N.
&
Leu
,
M. C.
Additive manufacturing. Technology, applications and research needs
.
Front. Mech. Eng.
8
,
215
243
(
2013
).
6.
Reiher
,
T.
&
Koch
,
R.
Product Optimization with and for Additive Manufacturing
.
Proceedings of the 27th Annual International Solid Freeform Fabrication Symposium - An Additive Manufacturing Conference Reviewed Paper
(
2016
).
7.
Cho
,
S.-K.
,
Kim
,
H.-J.
&
Chang
,
S.-H.
The application of polymer composites to the table-top machine tool components for higher stiffness and reduced weight
.
Composite Structures
93
,
492
501
(
2011
).
8.
Espalin
,
D.
,
Muse
,
D. W.
,
MacDonald
,
E.
&
Wicker
,
R. B.
3D Printing multifunctionality. Structures with electronics
.
Int J Adv Manuf Technol
72
,
963
978
(
2014
).
9.
Lehmhus
,
D.
et al
Customized Smartness: A Survey on links between Additive Manufacturing and Sensor Integration
.
Procedia Technology
26
,
284
301
(
2016
).
10.
Türk
,
D.-A.
et al
Composites Part Production with Additive Manufacturing Technologies
.
Procedia CIRP
66
,
306
311
(
2017
).
11.
EOS
.
Additive Manufacturing, Laser-Sintering and industrial 3D printing - Benefits and Functional Principle.
https://www.eos.info/additive_manufacturing/for_technology_interested.
12.
Dresdner scientists print tomorrow’s world
. https://www.iws.fraunhofer.de/en/pressandmedia/press_releases/2017/press_release_2017-02.html (Press release (Nr. II) - Fraunhofer IWS / 7 February 2017).
13.
Dordlofva
,
C.
,
Lindwall
,
A.
&
Törlind
,
P.
Opportunities and Challenges for Additive Manufacturing in Space Applications
.
NordDesign, Trondheim, Norway, August 10 - 12, 2016.
14.
Uriondo
,
A.
,
Esperon-Miguez
,
M.
&
Perinpanayagam
,
S.
The present and future of additive manufacturing in the aerospace sector. A review of important aspects
.
Proceedings of the Institution of Mechanical Engineers, Part G: Journal of Aerospace Engineering
229
,
2132
2147
(
2014
).
15.
Nasr
Esfahani
, S.,
Taheri
Andani
, M.,
Shayesteh
Moghaddam
, N.,
Mirzaeifar
,
R.
&
Elahinia
,
M.
Independent tuning of stiffness and toughness of additively manufactured titanium-polymer composites. Simulation, fabrication, and experimental studies
.
Journal of Materials Processing Technology
238
,
22
29
(
2016
).
16.
Grujicic
,
M.
et al
An overview of the polymer-to-metal direct-adhesion hybrid technologies for load-bearing automotive components
.
Journal of Materials Processing Technology
197
,
363
373
(
2008
).
17.
Emmelmann
,
C.
,
Sander
,
P.
,
Kranz
,
J.
&
Wycisk
,
E.
Laser Additive Manufacturing and Bionics. Redefining Lightweight Design
.
Physics Procedia
12
,
364
368
(
2011
).
18.
Emmelmann
,
C.
,
Petersen
,
M.
,
Kranz
,
J.
&
Wycisk
,
E.
Bionic lightweight design by laser additive manufacturing (LAM) for aircraft industry. In
SPIE Eco-Photonics. SPIE Proceedings
, eds.
Ambs
,
P.
et al.
80650L
(
SPIE
,
2011
).
19.
Altan
,
M.
,
Bayraktar
,
M.
&
Yavuz
,
B.
Manufacturing polymer/metal macro-composite structure for vibration damping
.
Int J Adv Manuf Technol
86
,
2119
2126
(
2016
).
20.
Mager
,
V.
,
Saplontai
,
V.
,
Saplontai
,
M.
,
Leordean
,
D.
&
Balc
,
N.
Research on infiltrating biocompatible fillers to produce composite implants
.
Academic Journal of Manufacturing Engineering
Vol.
11
(
2013
).
21.
Wang
,
J. F.
,
Liu
,
X. Y.
&
Luan
,
B.
Fabrication of Ti/polymer biocomposites for load-bearing implant applications
.
Journal of Materials Processing Technology
197
,
428
433
(
2008
).
23.
Zoellner
,
O. J.
&
Evans
,
J. A.
Plastic-metal hybrid. A new development in the injection molding technology
.
ANTEC 2002 Annual Technical Conference
,
1
4
(
San Francisco, CA
,
2002
).
24.
Vandenbroucke
,
B.
&
Kruth
,
J.-P.
Selective Laser Melting Of Biocompatible Metals For Rapid Manufacturing Of Medical Parts
.
17th Solid Freeform Fabrication Symposium
,
148
159
(
2006
).
25.
Pakkanen
,
J.
et al
Study of Internal Channel Surface Roughnesses Manufactured by Selective Laser Melting in Aluminum and Titanium Alloys
.
Metall and Mat Trans A
47
,
3837
3844
(
2016
).
26.
Tsukanaka
,
M.
et al
Bioactive treatment promotes osteoblast differentiation on titanium materials fabricated by selective laser melting technology
.
Dental materials journal
35
,
118
125
(
2016
).
27.
Spierings
,
A. B.
,
Herres
,
N.
&
Levy
,
G.
Influence of the particle size distribution on surface quality and mechanical properties in AM steel parts
.
Rapid Proto-typing Journal
17
,
195
202
(
2011
).
28.
Anderson
,
J. M.
&
Shive
,
M. S.
Biodegradation and biocompatibility of PLA and PLGA microspheres
.
Advanced Drug Delivery Reviews
28
,
5
24
(
1997
).
29.
Strumberger
,
N.
,
Gospocic
,
A.
&
Bartulic
,
C.
Polymeric Materials in Automobiles
.
Promet - Traffic - Traffico
Vol.
17
,
149
160
(
2005
).
30.
Falck
,
R.
,
Goushegir
,
S. M.
,
dos Santos
,
J. F.
&
Amancio-Filho
,
S. T.
AddJoining. A novel additive manufacturing approach for layered metal-polymer hybrid structures
.
Materials Letters
217
,
211
214
(
2018
).
31.
Huang
,
Y.
et al
Research and application progress of silicone rubber materials in aviation
.
Journal of Aero-nautical Materials
Vol.
36
,
79
91
(
2016
).
32.
Nielsen
,
J. K.
&
Maiboe
,
J.
EPOFIX AND VACUUM: AN EASY METHOD TO MAKE CASTS OF HARD SUBSTRATES
.
Palaeontologia Electronica
vol.
3
(
2000
).
33.
Jarzynski
,
J.
Review of the mechanisms of sound attenuation in materials
.
Proceedings of the ACS Division of Polymeric Materials: Science and Engineering, Dallas, TX, USA
(
1989
).
This content is only available via PDF.
You do not currently have access to this content.