The Use of the Linear Energy Calculation Model in High-Frequency Induction (HFI) Tube Welding Technology to Obtain Optimal Microstructure and Weld Geometry
Abstract
:1. Introduction
2. Materials and Methods
2.1. Description of the Production Line Used in the Experimental Research
2.2. HFI Welding Calculation Model
2.3. Test Material
2.4. Metallographic Test
- Central bonding zone (bond line) widths: fn, fo and fi [mm]
- Heat affected zone (HAZ) widths: hn, ho and hi [mm]
2.5. Automatic Ultrasonic Testing
3. Results
3.1. The HFI Welding Calculation Model
3.2. Metallographic Test Results
3.3. UT Ultrasonic Test Result
4. Summary
5. Conclusions
- (1)
- The developed mathematical model allows us to calculate the power P [kW] necessary to weld the pipe in the range of walls from 3.6 mm to 12.7 mm. The model takes into account the production speed in the range of 20 m/min to 40 m/min and 2 diameter ranges, i.e., from 114.3 mm to 168.3 mm and from 219.1 mm to 323.9 mm;
- (2)
- The power P [kW] calculated by the model made it possible to obtain a link without internal defects, confirmed by automatic ultrasonic tests;
- (3)
- The microstructure of the joint has a zonal structure: zone 1—central line (composed of a bond line and a matrix with a mostly ferritic structure), zone 2—mechanical deformation (with expanded grain to size 5–6 according to PN-EN ISO 643), zone 3—thermomechanical (with fine grain size 11), zone 4—dynamic recrystallization (with irregular ferrite and pearlite grain) and zone 5—native material (with ferritic–pearlite structure typical for the rolling process with equiaxed grains of size 9–10);
- (4)
- The symmetrical structure of the joint zone, the size of the HAZ and the proper angle of refraction of the metal flow line are in correlation with the linear energy developed as part of the mathematical model;
- (5)
- Preliminary tests of the linear energy calculation model confirm the applicability in industrial production and are the basis for further work on the welding simulator, which should also take into account other parameters affecting the quality of the joint.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Pipe Dimensions | Process Parameters | ||||
---|---|---|---|---|---|
Diameter [mm] | Thickness, t [mm] | Power, P [kW] | Speed, V [m/min] | P/V [kW·min/m] | P/(V·t) [kW·min/m·mm] |
114 | 3.6 | 258 | 35 | 7.4 | 2.0 |
114 | 3.6 | 273 | 38 | 7.2 | 2.0 |
139 | 3.6 | 280 | 38 | 7.4 | 2.0 |
139 | 3.6 | 293 | 40 | 7.3 | 2.0 |
139 | 3.6 | 268 | 36 | 7.5 | 2.1 |
139 | 4 | 308 | 38 | 8.1 | 2.0 |
139 | 4 | 277 | 34 | 8.1 | 2.0 |
139 | 4 | 239 | 30 | 8.0 | 2.0 |
168 | 4 | 304 | 38 | 7.9 | 2.0 |
168 | 4 | 299 | 36 | 8.3 | 2.1 |
168 | 4 | 270 | 30 | 9.0 | 2.2 |
168 | 4.5 | 333 | 34 | 9.8 | 2.2 |
168 | 4.5 | 303 | 30 | 10.0 | 2.2 |
168 | 4.5 | 299 | 36 | 8.3 | 1.8 |
219 | 4 | 273 | 24 | 11.4 | 2.8 |
219 | 4 | 248 | 20 | 12.4 | 3.1 |
219 | 4.5 | 416 | 30 | 13.9 | 3.1 |
219 | 4.5 | 357 | 28 | 12.7 | 2.8 |
219 | 4.5 | 339 | 26 | 13.0 | 2.9 |
219 | 5 | 405 | 32 | 12.7 | 2.5 |
219 | 5 | 396 | 30 | 13.2 | 2.6 |
219 | 5 | 377 | 26 | 14.5 | 2.9 |
219 | 5 | 356 | 24 | 14.8 | 3.0 |
273 | 5 | 346 | 28 | 12.4 | 2.5 |
273 | 5 | 330 | 26 | 12.7 | 2.5 |
273 | 5 | 306 | 24 | 12.7 | 2.5 |
323 | 5.6 | 464 | 32 | 14.5 | 2.6 |
323 | 5.6 | 432 | 28 | 15.2 | 2.7 |
323 | 5.6 | 387 | 24 | 16.0 | 2.9 |
Element % | C | Mn | P | S | Si | Ce |
---|---|---|---|---|---|---|
Content | 0.13 | 0.45 | 0.012 | 0.004 | 0.006 | 0.206 |
Sample Source | Re [MPa] | Rm [MPa] | A5 [%] |
---|---|---|---|
Coil | 269 | 408 | 36.0 |
Tube | 314 | 423 | 34.1 |
Coil | 269 | 417 | 34.0 |
Tube | 279 | 412 | 36.9 |
Impeder Type | a1 | a2 | a3 | a4 | a5 |
---|---|---|---|---|---|
1 | 1.185 | −2.056 | −5.426 | 0.324 | −3.949 |
2 | 0.532 | −6.462 | 23.327 | 0.436 | 12.820 |
Parameter | ho [mm] | hi [mm] | hn [mm] | fo [mm] | fi [mm] | fn [mm] | α * [°] |
---|---|---|---|---|---|---|---|
Value | 3.9 | 4.1 | 3.3 | 0.28 | 0.28 | 0.19 | 51 |
Value vs. t | ~0.7 t | ~0.7 t | ~0.6 t | ~0.05 t | ~0.05 t | ~0.03 t | - |
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Techmański, Z.; Stępień, J.; Garstka, T.; Wieczorek, P.; Nowak, J.; Kobielski, A. The Use of the Linear Energy Calculation Model in High-Frequency Induction (HFI) Tube Welding Technology to Obtain Optimal Microstructure and Weld Geometry. Metals 2023, 13, 1381. https://doi.org/10.3390/met13081381
Techmański Z, Stępień J, Garstka T, Wieczorek P, Nowak J, Kobielski A. The Use of the Linear Energy Calculation Model in High-Frequency Induction (HFI) Tube Welding Technology to Obtain Optimal Microstructure and Weld Geometry. Metals. 2023; 13(8):1381. https://doi.org/10.3390/met13081381
Chicago/Turabian StyleTechmański, Zbigniew, Jacek Stępień, Tomasz Garstka, Paweł Wieczorek, Jakub Nowak, and Artur Kobielski. 2023. "The Use of the Linear Energy Calculation Model in High-Frequency Induction (HFI) Tube Welding Technology to Obtain Optimal Microstructure and Weld Geometry" Metals 13, no. 8: 1381. https://doi.org/10.3390/met13081381
APA StyleTechmański, Z., Stępień, J., Garstka, T., Wieczorek, P., Nowak, J., & Kobielski, A. (2023). The Use of the Linear Energy Calculation Model in High-Frequency Induction (HFI) Tube Welding Technology to Obtain Optimal Microstructure and Weld Geometry. Metals, 13(8), 1381. https://doi.org/10.3390/met13081381