Submitted:
24 December 2024
Posted:
25 December 2024
You are already at the latest version
Abstract
Rapid prototyping has advanced into additive manufacturing (AM), enabling direct production of functional components through a hybrid approach combining additive and subtractive processes. In metal-wire AM, arc and laser energy sources are common, with geometry complexity influencing kinematic choices (3/4/5 axis) and necessitating tailored slicing techniques. Whereas this paper explores various levels of hybridization, essential for creating functional components using the metal-wire AM process. These levels encompass process hybridization (addition/subtraction), energy source hybridization (arc/laser), kinematics hybridization (3/4/5 axis), and slicing technique hybridization (planar/conformal). A unified system was designed to accommodate all levels of hybridization on a single machine with a single setup that minimizes the time and improves accuracy. The study presents a detailed exploration of these hybridization levels through the fabrication of a complex 5-axis geometry—an impeller. The impeller was manufactured with hybridization using various levels and subsequently compared with manufacturing processes like additive manufacturing with interlayer machining and traditional machining methods. The hybrid approach significantly reduced the manufacturing time for the selected impeller geometry from 3536 minutes to 792 minutes (saving 77.6% manufacturing time) and minimized material waste to 9.3%, compared to 74.07% in traditional machining. This demonstrates a more efficient, precise, and cost-effective method for producing complex metal components. Furthermore, it offers critical insights into the effectiveness of this hybrid method by optimizing metal-wire AM processes for intricate geometries, thereby advancing the capabilities and applications of metal-wire AM technology.
Keywords:
1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Approach for Deposition
2.3. Fixture
2.4. Test Methods
2.5. Slicing and Deposition Methodology
3. Results and Discussion
3.1. Process Hybridization
3.2. Energy Hybridization
3.3. Kinematic and Slicing Hybridization
3.4. Time and material wastage comparison
4. Conclusions
References
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| Material | C | Si | Mn | Cr | Ni | Cu | P | Mo | S | Ti | Fe |
|---|---|---|---|---|---|---|---|---|---|---|---|
| ER70S-6 | 0.06 | 0.94 | 1.64 | 0.02 | 0.02 | 0.02 | 0.013 | 0.005 | 0.016 | 0.004 | Remaining |
| Case study |
Part | Energy Source | Current (A) | Voltage (V) | Power (W) | Wire Feed rate (m/min) | Travel Feed (mm/min) | Stepover (mm) |
|---|---|---|---|---|---|---|---|---|
| Planar 5-axis |
Impeller | MIG | 110 | 11.4 | 1254 | - | 1000 | 2 |
| Conformal | Hub | MIG | 110 | 11.4 | 1254 | - | 1000 | 2 |
| Blades | Laser | - | - | 1500 | 1.25 | 400 | 1.5 |
| Operation | Tool Diameter (mm) | Feed rate (mm/min) | Spindle Speed (rpm) | Depth of Cut (mm) | Stepover (mm) | |
| Roughing | Model area clearance 3-axis | Ø 16 Flat End Mill | 175 | 1150 | 1 | 12 |
| Blade Area clearance 5-axis | Ø 8 Ball Nose | 800 | 2000 | 0.5 | 0.8 | |
| Finishing | Blade Finishing | Ø 6 Ball Nose | 1200 | 3000 | 0.2 | 0.2 |
| Hub Finishing | Ø 6 Ball Nose | 1200 | 3000 | 0.2 | 0.2 | |
| Mechanical properties | Without interlayer machining | With Interlayer machining |
|---|---|---|
| Microhardness (HV) | 152±6 | 178±4 |
| Ultimate tensile stress (Mpa) | 444±3 | 487±2 |
| Method | Strategy | Deposition | Interlayer machining | Roughing | Finishing | Total Time | ||||
| 3-axis | 5-axis | 3-axis | 5-axis | 3-axis | 5-axis | Blade | Hub | |||
| (measured in minutes) | ||||||||||
| Subtractive | Machining | - | - | - | - | 960 | 2212 | 140 | 224 | 3536 |
| HLM | Planar 5-axis |
61 | 194 | 90 | - | - | - | 322 | 224 | 891 |
| Conformal 5-axis | 125 | 170 | 60 | 64 | 10 | - | 140 | 224 | 792 | |
| Method | Strategy | Actual volume of impeller (cm3) | Volume before final machining (cm3) | Change in volume (cm3) |
Material wastage (%) |
|---|---|---|---|---|---|
| Subtractive | Machining | 428849.49 | 1654048.53 | 1225199.04 | 74.07 |
| HLM | Planar 5-axis with MIG Source | 493068.30 | 64,218.81 | 13.02 | |
| Planar hub with MIG and conformal blades with LASER | 472953.20 | 44,103.71 | 9.30 |
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