TY - JOUR
T1 - 3D Printing of Aluminum Alloys via Material Extrusion (MEX) Process
T2 - Challenges in Developing Acetone-Soluble Binder Systems
AU - Momeni, Vahid
AU - Hufnagl, Margarete
AU - Shahroodi, Zahra
AU - Poehle, Georg
AU - Gonzalez-Gutierrez, Joamin
AU - Schuschnigg, Stephan
AU - Kukla, Christian
AU - Holzer, Clemens
N1 - Publisher Copyright: © 2025 The Author(s). Polymers for Advanced Technologies published by John Wiley & Sons Ltd.
PY - 2025/5/9
Y1 - 2025/5/9
N2 - Metal material extrusion (MMEX) is a technique to produce a part, characterized by the sequential deposition of material in layers, which is subsequently followed by debinding and sintering to yield fully dense metallic components. The feedstocks, consisting of metal powder combined with a binder system, are essential in determining both the processability and the final attributes of the manufactured parts. In this study, differential scanning calorimetry (DSC) and thermogravimetric analysis (TGA), contact angle measurement, rheological measurements, printability, and solvent debinding tests were performed for developing a binder system for MMEX of aluminum alloys. Various binder system formulations with polypropylene (PP) as the backbone along with different thermoplastic elastomers (TPEs) as the soluble part were used. During the solvent debinding, two different solvents, cyclohexane and acetone, were evaluated. The results indicated that acetone was ineffective as a solvent for the TPEs used in this study, primarily due to the low solubility of the TPEs in acetone. However, more than 90 vol% of the TPE was removed using cyclohexane as the solvent even at room temperature. Ultimately, the optimized binder formulation for the MMEX process of the aluminum alloys was chosen to consist of polypropylene (PP) as the backbone and thermoplastic elastomer (TPE) soluble in cyclohexane as the primary component. This formulation successfully facilitated all stages of the MMEX process, from shaping to sintering.
AB - Metal material extrusion (MMEX) is a technique to produce a part, characterized by the sequential deposition of material in layers, which is subsequently followed by debinding and sintering to yield fully dense metallic components. The feedstocks, consisting of metal powder combined with a binder system, are essential in determining both the processability and the final attributes of the manufactured parts. In this study, differential scanning calorimetry (DSC) and thermogravimetric analysis (TGA), contact angle measurement, rheological measurements, printability, and solvent debinding tests were performed for developing a binder system for MMEX of aluminum alloys. Various binder system formulations with polypropylene (PP) as the backbone along with different thermoplastic elastomers (TPEs) as the soluble part were used. During the solvent debinding, two different solvents, cyclohexane and acetone, were evaluated. The results indicated that acetone was ineffective as a solvent for the TPEs used in this study, primarily due to the low solubility of the TPEs in acetone. However, more than 90 vol% of the TPE was removed using cyclohexane as the solvent even at room temperature. Ultimately, the optimized binder formulation for the MMEX process of the aluminum alloys was chosen to consist of polypropylene (PP) as the backbone and thermoplastic elastomer (TPE) soluble in cyclohexane as the primary component. This formulation successfully facilitated all stages of the MMEX process, from shaping to sintering.
KW - binder system
KW - feedstock
KW - metal material extrusion (MMEX)
KW - printability
KW - solvent debinding
UR - https://www.scopus.com/pages/publications/105004647083
U2 - 10.1002/pat.70194
DO - 10.1002/pat.70194
M3 - Article
AN - SCOPUS:105004647083
SN - 1042-7147
VL - 36.2025
JO - Polymers for Advanced Technologies
JF - Polymers for Advanced Technologies
IS - 5
M1 - e70194
ER -