Infrared Visual Sensing Detection of Groove Width for Swing Arc Narrow Gap Welding
Abstract
:1. Introduction
2. Infrared Passive Visual Sensing Detection System for Groove Width
2.1. System Construction
2.2. Detection Principle
3. Division Thresholding Method of ROI Window Image
4. In Situ Dynamic Clustering Algorithm
4.1. Principle of ISDC Algorithm
4.1.1. Data Preprocessing
4.1.2. Dynamic Clustering
Determination of Initial Cluster Center
Dynamic Clustering
Renewal of Cluster Center
4.1.3. Cluster Selection
4.2. Dynamic Analysis of ISDC Algorithm
4.3. Adaptability of ISDC Algorithm
4.3.1. Effect of Cluster Selection Threshold
4.3.2. Effect of Welding Spatter
5. Experimental Results of Groove Width Detection
5.1. Experimental Welding Conditions
5.2. Experimental Results for Constant-Width Groove
5.3. Experimental Results for Width-Varying Groove
5.4. Weld Formation Analysis
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Parameter Name | Value |
---|---|
Central wavelength of narrowband filter (nm) | 970 |
Neutral density filter (%) | 30 |
Aperture | f/16 |
Exposure time (ms) | 0.3 |
Shooting depression angle θ (°) | 20 |
Global image size (pixels) | 544 × 544 |
Parameter Name | Value |
---|---|
Average arc current (A) | 302.5 |
Average arc voltage (V) | 28.7 |
Arc current pulse frequency (Hz) | ~222 |
Welding speed Vw (mm s−1) | 3.4 |
Solid wire diameter (mm) | 1.2 |
Torch standoff height (mm) | 20 |
Shielding gas/flowrate (L min−1) | Ar−20% CO2/25 |
Groove gap (mm) | 14 |
Arc swing frequency (Hz) | 2.5 |
Arc swing angle (°) | 82 |
Arc at-sidewall staying time (s) | 0.1 |
Conductive rod bending angle (°) | 8 |
Algorithm | Standard Deviation of Groove Edge Point Distribution | Size of Resistible Spatter | Error Range of Width Detection | Standard Deviation of Width Detection |
---|---|---|---|---|
GPR | 1.449 | ≤2.19 mm | −0.086~+0.109 mm | 0.035 |
CLF | 4.581 | ≤0.58 mm | −0.465~+0.479 mm | 0.115 |
Algorithm | Error Range (mm) | Standard Deviation |
---|---|---|
GPR | −0.168~+0.119 | 0.058 |
CLF | −0.447~+0.196 | 0.103 |
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Su, N.; Wang, J.; Xu, G.; Zhu, J.; Jiang, Y. Infrared Visual Sensing Detection of Groove Width for Swing Arc Narrow Gap Welding. Sensors 2022, 22, 2555. https://doi.org/10.3390/s22072555
Su N, Wang J, Xu G, Zhu J, Jiang Y. Infrared Visual Sensing Detection of Groove Width for Swing Arc Narrow Gap Welding. Sensors. 2022; 22(7):2555. https://doi.org/10.3390/s22072555
Chicago/Turabian StyleSu, Na, Jiayou Wang, Guoxiang Xu, Jie Zhu, and Yuqing Jiang. 2022. "Infrared Visual Sensing Detection of Groove Width for Swing Arc Narrow Gap Welding" Sensors 22, no. 7: 2555. https://doi.org/10.3390/s22072555