A standard mold is equipped with additively manufactured inserts in a rectangular shape produced with vat photo polymerization. While the lifetime compared to conventional materials such as brass, steel, and aluminum is reduced, the prototyping and design phase can be shortened significantly by using flexible and cost-effective additive manufacturing technologies. Higher production volumes still exceed the capability of additively manufactured inserts, which are overruled by the stronger performance of less-flexible but mechanically advanced materials. In this contribution, the internal structure of a high-performing, fiber-reinforced injection molding insert has been analyzed. The insert reached a statistically proven and reproducible lifetime of 4,500 shots, which significantly outperforms any other previously published additively manufactured inserts. Computer tomography, tensile tests and life cycle analysis have been performed in order to provide an understanding of the internal structure of the fiber-reinforced, additively manufactured injection molding inserts.

1.
Kovács
,
József
Gábor
, et al “
Thermal simulations and measurements for rapid tool inserts in injection molding applications
.”
Applied Thermal Engineering
85
(
2015
):
44
51
.
2.
Lantada
,
Andrés
Díaz
, et al “
Toward mass production of microtextured microdevices: linking rapid prototyping with microinjection molding
.”
The International Journal of Advanced Manufacturing Technology
76
.
5-8
(
2015
):
1011
1020
.
3.
Charalambis
,
Alessandro
, et al “Cost estimation of a specifically designed direct light processing (DLP) additive manufacturing machine for precision printing.”
17th euspen International Conference & Exhibition
.
The European Society for Precision Engineering and Nanotechnology
,
2017
.
4.
Hofstätter
,
Thomas
, et al “
State-of-the-art of fiber-reinforced polymers in additive manufacturing technologies
.”
Journal of Reinforced Plastics and Composites
36
.
15
(
2017
):
1061
1073
.
5.
Hofstätter
,
Thomas
, et al “
Applications of fiber-reinforced polymers in additive manufacturing
.”
Procedia CIRP
66
(
2017
):
312
316
.
6.
Hofstätter
,
Thomas
, et al “
Evolution of surface texture and cracks during injection molding of fiber-reinforced, additively-manufactured, injection molding inserts
.”
Proceedings of ASPE summer topical meeting.
2016
.
7.
Davoudinejad
,
Ali
, et al “
Evaluation of surface roughness and geometrical characteristic of additive manufacturing inserts for precision injection moulding
.”
33rd Conference of the Polymer Processing Society (PPS-33)
.
2017
.
8.
Hofstätter
,
Thomas
, et al “
Evolution of Additively Manufactured Injection Molding Inserts Investigated by Thermal Simulations
.”
34th Annual Meeting of the Polymer Processing Society (PPS34)
.
2018
.
9.
Hofstätter
,
Thomas
, et al “
Flow Characteristics of a Thermoset Fiber Composite Photopolymer Resin in a Vat Polymerization Additive Manufacturing Process
.”
34th Annual Meeting of the Polymer Processing Society (PPS34)
.
2018
.
10.
Krause
,
Michael
, et al “
Determination of the fibre orientation in composites using the structure tensor and local X-ray transform
.”
Journal of Materials Science
45
.
4
(
2010
):
888
.
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