An Enhanced Absolute Eddy Current Probe for Surface Cracks Detection at High Temperatures
Abstract
1. Introduction
2. Finite Element Model for ECT of Superalloys
2.1. Mechanism Analysis of High-Temperature ECT
2.2. Three-Dimensional Finite Element Modeling
3. Impact of Inspection Parameters on Electromagnetic Response
3.1. Optimization for Excitation Frequency
3.2. Impact of Coil Turns
3.3. Optimization of Core Height
3.4. Effect of Core Diameter
3.5. Optimization of Coil Spatial Configuration
3.6. Lift-Off Sensitivity Analysis
3.7. Finite Element Simulation of Probe Responses to Varying Crack Depths
3.8. Finite Element Simulation Analysis of Temperature Effects on Defect Signals
4. Experimental Verifications of ECT for Nickel-Based Alloys
4.1. High-Temperature Testing System and Specimen
4.2. Fabrication of the High-Temperature Absolute Eddy Current Probe
4.3. Probe Performance Comparison at Ambient Temperature
4.4. Evaluation of Crack Detection Capability at Elevated Temperatures
5. Conclusions
- Optimizing the coil and magnetic core significantly improved the probe’s sensitivity over conventional absolute designs. For a 0.3 mm deep crack, the peak amplitude increased by 76.2% (from 0.021 mV to 0.037 mV), and the SNR improved by nearly 10 dB (from 9.78 dB to 19.62 dB).
- At 650 °C, the water-cooling system maintains the magnetic core below its Curie point, preventing demagnetization. Consequently, the high-temperature signal attenuation is not a sensor artifact, but stems from the alloy’s reduced electrical conductivity and the corresponding increase in skin depth.
- The probe exhibits outstanding resistance to thermal noise interference. In the temperature range of 400 °C to 500 °C, it achieves high-sensitivity identification of 0.3 mm cracks at 600 °C, it enables reliable detection of 0.5 mm cracks with a low CV ≤ 3.5%; under the extreme condition of 650 °C, it still retains the capability for qualitative identification.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Geometric Model | Material | Electrical Conductivity (S/m) | Relative Permeability |
|---|---|---|---|
| Specimen | Inconel 718 | 9.22 × 105 | 1 |
| Air | / | / | 1 |
| Core | Mn-Zn ferrite | 0.167 | 4 × 103 |
| Coil | Copper | 5.998 × 107 | 1 |
| Mesh Size (mm) | Probe Position L (mm) | Real Part of Response Voltage (V) | Amplitude Error (%) |
|---|---|---|---|
| 0.03 | 0 | −2.1485 | 0 |
| 0.04 | 0 | −2.1485 | 0 |
| 0.05 | 0 | −2.1487 | 0.0093 |
| 0.06 | 0 | −2.1489 | 0.0186 |
| 0.08 | 0 | −2.1492 | 0.0326 |
| Temperature (°C) | 20 | 400 | 500 | 600 |
|---|---|---|---|---|
| Conductivity of copper (MS/m) | 5.96 | 2.22 | 1.9 | 1.66 |
| Young’s modulus of copper (GPa) | 131.4 | 106.7 | 98.7 | 90.6 |
| Conductivity of Inconel 718 (MS/m) | 0.0922 | 0.0775 | 0.0769 | 0.0758 |
| Young’s modulus of Inconel 718 (GPa) | 200 | 180 | 174.4 | 168.2 |
| Parameters | Absolute | High-Temperature Absolute |
|---|---|---|
| Wire diameter (mm) | 0.08 | 0.08 |
| Number of turns | 300 | 200 |
| Core height (mm) | 10 | 8 |
| Core diameter (mm) | 2 | 1 |
| Temperature (°C) | 0.5 mm Mean (mV) | 0.5 mm SD | 0.5 mm CV | 0.4 mm Mean (mV) | 0.4 mm SD | 0.4 mm CV | 0.3 mm Mean (mV) | 0.3 mm SD | 0.3 mm CV |
|---|---|---|---|---|---|---|---|---|---|
| 400 | 0.07947 | 0.00168 | 2.1% | 0.04826 | 0.00077 | 1.6% | 0.01278 | 0.00027 | 2.1% |
| 500 | 0.04669 | 0.00128 | 2.7% | 0.01649 | 0.00046 | 2.8% | 0.00918 | 0.00027 | 2.9% |
| 550 | 0.02911 | 0.00098 | 3.4% | / | / | / | / | / | / |
| 600 | 0.01430 | 0.00050 | 3.5% | / | / | / | / | / | / |
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Share and Cite
Liu, Z.; Shi, W.; Lu, C.; Zhu, T.; Sun, H.; Luo, Z.; Yang, G.; Liang, Y. An Enhanced Absolute Eddy Current Probe for Surface Cracks Detection at High Temperatures. Sensors 2026, 26, 4056. https://doi.org/10.3390/s26134056
Liu Z, Shi W, Lu C, Zhu T, Sun H, Luo Z, Yang G, Liang Y. An Enhanced Absolute Eddy Current Probe for Surface Cracks Detection at High Temperatures. Sensors. 2026; 26(13):4056. https://doi.org/10.3390/s26134056
Chicago/Turabian StyleLiu, Zhiying, Wenze Shi, Chao Lu, Tuan Zhu, Hongyu Sun, Zhonghao Luo, Gongpeng Yang, and Yiping Liang. 2026. "An Enhanced Absolute Eddy Current Probe for Surface Cracks Detection at High Temperatures" Sensors 26, no. 13: 4056. https://doi.org/10.3390/s26134056
APA StyleLiu, Z., Shi, W., Lu, C., Zhu, T., Sun, H., Luo, Z., Yang, G., & Liang, Y. (2026). An Enhanced Absolute Eddy Current Probe for Surface Cracks Detection at High Temperatures. Sensors, 26(13), 4056. https://doi.org/10.3390/s26134056

