TY - JOUR
T1 - Solid dielectric electrochemical polishing of 3D-printed parts
T2 - Performance and mechanisms
AU - Liu, Shenggui
AU - Li, Chaojiang
AU - Jin, Xin
AU - Ma, Dingyifei
AU - Yan, Qi
AU - Liu, Guodong
AU - Liu, Jue
AU - Cao, Xun
AU - Wang, Hao
N1 - Publisher Copyright:
© 2024
PY - 2025/1/1
Y1 - 2025/1/1
N2 - Surface post-processing of metal additive manufacturing components is challenging due to their typically complex geometries (e.g., curved surfaces) coupled with high initial surface roughness. Herein, we propose an efficient solid dielectric electrochemical polishing (SDECP) method employing ion exchange resin particles with a porous structure that absorbs and stores electrolytes as a conductive medium. This method enhances the surface quality of additively manufactured components with Bézier curved surfaces to a mirror finish, achieving improvements in Sa, Sq, and Sz of 91.5%, 91.7%, and 86.9%, respectively. Planetary motion strategies are implemented to optimize mass transfer on the anode surface in the discontinuous solid dielectric. Results indicate that bidirectional planetary motion (BPR) in SDECP effectively improves the uniformity of surface roughness and material removal across different regions of the part. Furthermore, we quantitatively describe the relationship between material removal rate (MRR) and average current in SDECP. The intermittent material removal mechanism of SDECP is elucidated utilizing discrete element method (DEM) simulations. Our work offers innovative insights into the material removal mechanisms of SDECP, presenting an efficient approach for overall surface post-processing of metal additive manufacturing components.
AB - Surface post-processing of metal additive manufacturing components is challenging due to their typically complex geometries (e.g., curved surfaces) coupled with high initial surface roughness. Herein, we propose an efficient solid dielectric electrochemical polishing (SDECP) method employing ion exchange resin particles with a porous structure that absorbs and stores electrolytes as a conductive medium. This method enhances the surface quality of additively manufactured components with Bézier curved surfaces to a mirror finish, achieving improvements in Sa, Sq, and Sz of 91.5%, 91.7%, and 86.9%, respectively. Planetary motion strategies are implemented to optimize mass transfer on the anode surface in the discontinuous solid dielectric. Results indicate that bidirectional planetary motion (BPR) in SDECP effectively improves the uniformity of surface roughness and material removal across different regions of the part. Furthermore, we quantitatively describe the relationship between material removal rate (MRR) and average current in SDECP. The intermittent material removal mechanism of SDECP is elucidated utilizing discrete element method (DEM) simulations. Our work offers innovative insights into the material removal mechanisms of SDECP, presenting an efficient approach for overall surface post-processing of metal additive manufacturing components.
KW - Curved surfaces
KW - Electrochemical polishing
KW - Intermittent material removal
KW - Metal additive manufacturing
KW - Solid dielectric
KW - Surface roughness
UR - http://www.scopus.com/inward/record.url?scp=85209542516&partnerID=8YFLogxK
U2 - 10.1016/j.ijmecsci.2024.109822
DO - 10.1016/j.ijmecsci.2024.109822
M3 - Article
AN - SCOPUS:85209542516
SN - 0020-7403
VL - 285
JO - International Journal of Mechanical Sciences
JF - International Journal of Mechanical Sciences
M1 - 109822
ER -