Insight into Various Casting Material Selections in Rapid Investment Casting for Making EDM Electrodes
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.1.1. Electrode Design
2.1.2. Materials Properties
2.2. Methods
2.2.1. SLA 3D Fabrication Process of Electrodes
2.2.2. Electrode Fabrication Process via Lost-Wax Casting
2.2.3. Machining Process and Measurement Equipment
3. Results and Discussion
3.1. Effect of Mold Shell Thickness on Mold Durability
3.2. Evaluation of Shrinkage in the Electrode Fabrication Process
3.3. Evaluation of Surface Roughness of RP Patterns, Electrodes, and Workpiece After EDM Machining
3.4. Comparison of the Electrode Wear Rate (EWR) Performance of Investment Casting Electrodes vs. CNC Electrodes and MRR, EWR, WSR of CuZn5, CuZn30, and FeCr24
4. Conclusions
- -
- There is a clear correlation between ceramic shell thickness and fracture resistance during the degradation phase. Thinner shells were susceptible to cracking due to stress concentration and the substantial difference in CTE between the ceramic and the epoxy pattern. The ceramic shell thickness considerably impacts the product development process in investment casting. Increased thickness leads to higher durability. Increasing the shell thickness of up to 16.0 mm (10 layers) helps against the thermal expansion of 3D-printed designs. The patterns are created by SLA 3D printing with epoxy resin, with a dimensional shrinkage of 0.7% and a surface roughness of 1.95–2.02 μm.
- -
- The shrinkage and surface finish of the investment cast electrode depend on the surface finish of the 3D-printed pattern, the internal surface finish of the ceramic shell, and the material selection. EDM-cast electrodes have a shrinkage of 0.8–1.9% and a surface roughness of 3.2–6.35 μm, depending on the materials chosen.
- -
- The shrinkage and surface roughness of CuZn5, CuZn30, and FeCr24 electrodes are 0.8% and 5.48–6.35 µm, 1.9% and 3.20–3.61 µm, and 1.6% and 4.07–4.71 µm, respectively. The machined surface roughness of the workpiece using CuZn5, CuZn30, and FeCr24 electrodes is 7.58–9.88 µm, 4.83–5.73 µm, and 4.71–6.98 µm, respectively.
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- Investment casting allows for fabricating post-cast products with complex geometries and high-hardness materials, such as FeCr24, with modest surface roughness. The roughness of the wax pattern created from the machined mold, applying the investment cast electrode, ranges from 4.26 to 4.32 µm, which is acceptable in rough machining. The 3D SLA printing technology in investment casting has shown significant potential for product development and tooling in the EDM technique. The electrode wear rate of as-cast EDM electrodes is slower in the initial stage compared to CNC-machined electrodes, and then it wears out faster.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Materials | Chemical Composition (%) | ||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
Fe | Ni | Cu | Zn | Sn | Pb | Cr | C | Si | Mn | V | |
FeCr24 | 71.000 | 0.224 | 0.0402 | 0.005 | 0.003 | 0.002 | 24.130 | 2.990 | 0.835 | 0.447 | 0.119 |
CuZn30 | 1.230 | 0.265 | 69.930 | 26.640 | 1.000 | 0.918 | - | - | - | - | - |
CuZn5 | 0.094 | 0.473 | 85.730 | 4.720 | 4.340 | 4.640 | - | - | - | - | - |
Materials | CuZn5 | CuZn30 | FeCr24 |
---|---|---|---|
Melting temperature | 1030 | 954 | 1150 |
Electrical conductivity MS/m | 8.5 | 16 | 0.91 |
Thermal conductivity W/mK | 71 | 121 | 17 |
Parameters | Values |
---|---|
X-axis | 400 mm |
Y-axis | 300 mm |
Z-axis (Servo) | 300 mm |
Table working | 650 × 350 mm |
Spacing from the chuck to the machine table | 150–450 mm |
HV (High Voltage) | 1A (V) |
GAP (Distance between electrode and workpiece) | 9 |
SERVO | 62.5% |
JI (Jump backward distance) | 2 (mm) |
WT (Duration of sparking) | 0.3 (s) |
Mold Types | Samples | Measurements | Average | ||
---|---|---|---|---|---|
1 | 2 | 3 | |||
4 layers (5.3 mm) | A | 5.29 | 5.43 | 5.25 | 5.32 |
B | 5.26 | 5.44 | 5.16 | 5.29 | |
C | 5.37 | 5.29 | 5.43 | 5.36 | |
6 layers (8.8 mm) | A | 8.76 | 8.78 | 8.81 | 8.78 |
B | 8.75 | 8.66 | 8.53 | 8.64 | |
C | 8.71 | 9.08 | 9.12 | 8.97 | |
6 layers (16.0 mm) | A | 16.02 | 16.29 | 16.22 | 16.18 |
B | 16.29 | 16.08 | 15.99 | 16.12 | |
C | 15.94 | 16.20 | 16.02 | 16.05 |
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Nguyen, T.T.; Nguyen, V.-T.; Tran, V.T.; Le, A.T.; Nguyen, T.D.; Huynh, Q.D.; Ho, M.T.; Dang, M.P.; Le, H.G.; Nguyen, V.T.T. Insight into Various Casting Material Selections in Rapid Investment Casting for Making EDM Electrodes. Micromachines 2025, 16, 595. https://doi.org/10.3390/mi16050595
Nguyen TT, Nguyen V-T, Tran VT, Le AT, Nguyen TD, Huynh QD, Ho MT, Dang MP, Le HG, Nguyen VTT. Insight into Various Casting Material Selections in Rapid Investment Casting for Making EDM Electrodes. Micromachines. 2025; 16(5):595. https://doi.org/10.3390/mi16050595
Chicago/Turabian StyleNguyen, Thanh Tan, Van-Thuc Nguyen, Van Tron Tran, Anh Thi Le, Thanh Duy Nguyen, Quoc Dung Huynh, Minh Tri Ho, Minh Phung Dang, Hieu Giang Le, and Van Thanh Tien Nguyen. 2025. "Insight into Various Casting Material Selections in Rapid Investment Casting for Making EDM Electrodes" Micromachines 16, no. 5: 595. https://doi.org/10.3390/mi16050595
APA StyleNguyen, T. T., Nguyen, V.-T., Tran, V. T., Le, A. T., Nguyen, T. D., Huynh, Q. D., Ho, M. T., Dang, M. P., Le, H. G., & Nguyen, V. T. T. (2025). Insight into Various Casting Material Selections in Rapid Investment Casting for Making EDM Electrodes. Micromachines, 16(5), 595. https://doi.org/10.3390/mi16050595