Process Development and Analysis of Electromagnetic Multi-Spot Joining of AA5052 Sheets
Abstract
:1. Introduction
2. Materials and Method
2.1. Experimental Study
2.2. Numerical Study
3. Results and Discussions
3.1. Mechanical Properties Evaluation of Joints
3.1.1. Energy Optimization for Joints
3.1.2. Peel Test and Lap Shear Tests for Joints
3.1.3. Optical Microscopic Evaluation of the Joints
3.2. Numerical Simulation Results
3.2.1. Von Mises Stresses after Deformation
3.2.2. Equivalent Plastic Strain ()
3.2.3. Impact Pressure at the Interface
3.2.4. Velocity of Flyer Sheet before Impact
4. Conclusions
- The AA5052 sheets, with different thicknesses of 1.5 mm and 1 mm, were multi-spot joined by electromagnetic joining using the 5-mm thick I-shaped rectangular coil.
- Multiple discharge energy varying from 7 kJ to 10 kJ was used for performing the experiments. The 8 kJ input energy is found to be a suitable discharge energy for the joining, where 950 N of the load-bearing capacity for the peel test and 3950 N for the lap-shear test is achieved.
- When the discharge energy was lower than 8 kJ, an improper joint was obtained due to insufficient forming of the flyer sheet. When it was increased beyond 9 kJ discharge energy, shear cracks were observed at all three spots, indicating the excessive use of the energy.
- Upon the peel test, the failure modes of the joints were divided into two categories, i.e., fracture failure and separation failure. In 8 kJ discharge energy, the sample was observed to have fracture failure, justifying the strength of the joints as fracture failure can withstand the higher load.
- The experimental and numerical studies suggest that less deformation of spot B is due to less impact pressure and impact velocity, where impact velocity is directly proportional to the square of the magnetic flux density. The magnetic flux density depends on the dimensions of the coil; therefore, proper deformation can be achieved by optimizing the coil design for the increased magnetic flux density.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Parameter | Density (kg/m3) | E (MPa) | G (MPa) | Poisson Ratio | A (MPa) | B (MPa) | n | C | m | |
---|---|---|---|---|---|---|---|---|---|---|
Value | 2680 | 64,000 | 24,600 | 0.3 | 143.1 | 215.7 | 0.54 | 0.0046 | 0.9 | 0.01 |
Parameter | D1 | D2 | D3 | D4 | D5 | Displacement at Failure |
---|---|---|---|---|---|---|
Value | 0.306 | 0.0446 | −1.72 | 0.0056 | 0 | 0.012 |
Discharge Energy | Outcome (Visual Inspection) | Remarks |
---|---|---|
7 kJ | Centre spot portion of the joint remains undeformed. | No proper joining due to lesser dissipated energy. |
8 kJ | All three spots deformed properly. | Proper joining is due to sufficient energy for deformation. |
9 kJ | Shearing in the adjacent spots was observed. | Excessive energy leads to boundary shear of two spot joints. |
10 kJ | Shearing across all the spot joints could be observed. | Excessive energy leads to the shearing of all three spot joints. |
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Singh, U.; Rajak, A.; Lee, T. Process Development and Analysis of Electromagnetic Multi-Spot Joining of AA5052 Sheets. Metals 2023, 13, 729. https://doi.org/10.3390/met13040729
Singh U, Rajak A, Lee T. Process Development and Analysis of Electromagnetic Multi-Spot Joining of AA5052 Sheets. Metals. 2023; 13(4):729. https://doi.org/10.3390/met13040729
Chicago/Turabian StyleSingh, Ummed, Ashish Rajak, and Taeseon Lee. 2023. "Process Development and Analysis of Electromagnetic Multi-Spot Joining of AA5052 Sheets" Metals 13, no. 4: 729. https://doi.org/10.3390/met13040729
APA StyleSingh, U., Rajak, A., & Lee, T. (2023). Process Development and Analysis of Electromagnetic Multi-Spot Joining of AA5052 Sheets. Metals, 13(4), 729. https://doi.org/10.3390/met13040729