- By:
- Fillingim, Kenton B; Hoffmann Rodriguez, Miguel A; Herberger, Callan A; Nandwana, Peeyush ; Kannan, Rangasayee ; Saldana, Christopher; Feldhausen, Thomas A; Heinrich, Lauren E
- Journal Name:
- Journal of Manufacturing Science and Engineering
- Page Number:
- 61002
- Volume:
- 148
- Issue Number:
- 6
- Publication Date:
- April 10, 2026
- View DOI Listing:
- https://doi.org/10.1115/1.4071401
Abstract
This study investigates the additive manufacturing (AM) processing, microstructural evolution, and resulting mechanical and thermal properties of multi-material components combining 17-4PH stainless steel and pure copper (Cu) fabricated via laser powder directed energy deposition (LP-DED). Conventional tooling steels exhibit limited thermal conductivity, significantly constraining production throughput in high-volume processes. Incorporating Cu, with its superior thermal conductivity, could significantly enhance tool performance, though Cu and steel present metallurgical incompatibilities when processed via AM. A systematic investigation was conducted across compositions ranging from 0–100 wt% Cu, revealing critical thresholds influencing solidification behavior, defect formation, microstructure, hardness, and thermal transport. Optical microscopy, EBSD, hardness testing, and thermal conductivity measurements provided comprehensive process-structure-property correlations. Severe hot cracking occurred at low Cu contents (6–25 wt%), aligning generally well with crack susceptibility modeling, with an unexpected discrepancy at 25 wt%. Porosity remained low (≥99% dense) throughout the compositional spectrum. EBSD analysis revealed a transformation from columnar martensitic structures at low Cu contents to equiaxed FCC Cu-dominated structures at higher Cu concentrations, highlighting the complex microstructural transitions driven by Cu-induced changes in solidification and phase stability. Hardness decreased from 330 HV (pure 17-4PH) to 62 HV (pure Cu), consistent with microstructural changes. Concurrently, thermal conductivity improved substantially from 13.5 W/m·K to 367.9 W/m·K, emphasizing Cu’s dominant role in thermal transport. The findings highlight the feasibility of leveraging compositional gradients between 17-4PH and Cu to achieve tailored tooling with optimized thermal and mechanical performance.