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Edge-focused wire arc additive manufacturing: Method development with ANN-based stress-strain and mass-efficiency.
Tran Le Hong Ngoc1, Ha Thi Xuan Chi1, Van-Thuc Nguyen2
1School of Industrial Engineering and Management, International University-Vietnam National University HCMC, Ho Chi Minh City, Vietnam.
Plos One
|June 5, 2026
Summary
Edge-Focused Wire Arc Additive Manufacturing (EF-WAAM) significantly enhances CT38 steel
Area of Science:
- Materials Science and Engineering
- Additive Manufacturing
- Mechanical Engineering
Background:
- Conventional Wire Arc Additive Manufacturing (WAAM) often faces challenges with residual stress and limited heat input control.
- Optimizing WAAM processes is crucial for improving material properties and structural integrity in additively manufactured components.
Purpose of the Study:
- To evaluate the performance of Edge-Focused Wire Arc Additive Manufacturing (EF-WAAM) for CT38 steel.
- To assess the impact of EF-WAAM's localized heat input on mechanical properties and residual stress.
- To develop a transferable workflow and predictive models for EF-WAAM applications.
Main Methods:
- Utilized EF-WAAM with ER70S-6 filler on CT38 steel, employing an edge-guided toolpath and controlled travel angle.
- Conducted standardized 3-point bending tests to determine maximum flexural stress and strength-to-density ratios.
- Developed an artificial neural network (ANN) to map process variables to stress-strain behavior and reconstruct material response curves.
Main Results:
- EF-WAAM builds achieved a maximum flexural stress up to 3,338.11 MPa, a 171% improvement over the CT38 substrate.
- Mass efficiency (strength-to-density) reached 420.4 MPa·cm³·g⁻¹, outperforming the substrate by 40.4% and conventional WAAM by 83.3%.
- ANN models accurately reconstructed stress-strain curves, with layer thickness identified as the dominant process variable.
Conclusions:
- EF-WAAM offers superior flexural strength and mass-specific performance compared to conventional WAAM and the substrate.
- The study provides a standardized evaluation pipeline, actionable parameter insights, and a predictive ANN tool for EF-WAAM.
- The developed methodology and assets facilitate the transfer of EF-WAAM technology to related additive manufacturing variants.
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