An Electric-Field-Based Detection System for Metallic Contaminants in Powdered Food
Abstract
1. Introduction
2. Materials and Methods
2.1. Sample Preparation
2.2. Electric-Field-Based Detection Unit: Design and Configuration
2.2.1. Feeding Unit and Conveying Line
2.2.2. AC High-Voltage Power Supply
2.2.3. Design of the Detection Unit
2.2.4. FFT-Based Optimization of Power Supply and Electrode Spacing
2.3. Real-Time Monitoring System and Detection Algorithm
2.3.1. Materials and Data Preparation
2.3.2. Feature Extraction and Event Classification
2.3.3. Estimation of POD and LOD
2.4. Safety Evaluation Methodology
2.4.1. Local Heating Simulation
2.4.2. Local Heating and Ozone Generation Evaluation
3. Results and Discussion
3.1. Optimization of Power Supply and Design Conditions for the Electric-Field-Based Detection Unit
3.1.1. Optimization of Driving Frequency as a Function of Electrode Gap
3.1.2. Optimization of Applied Voltage Conditions
3.2. Performance Evaluation of Real-Time Detection Algorithm
3.2.1. Evaluation Framework and Powder Matrix Consideration
3.2.2. POD/LOD Results by Metal Type and Particle Size
3.3. Safety Evaluation Results
3.3.1. Local Heating Simulation and Verification
3.3.2. Evaluation of Ozone Generation
3.4. Integration of the Real-Time Detection System and Field Feasibility
3.4.1. Custom GUI and Field Implementation
3.4.2. Comparison with Existing Detection Systems
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| POD | Probability of Detection |
| LOD | Limit of Detection |
| FFT | Fast Fourier Transform |
| RMI | Resonance Matching Index |
| ROI | Region of Interest |
| SNR | Signal-to-Noise Ratio |
| SD | Standard Deviation |
Appendix A
| Gap d (mm) | Qres | BWres (kHz) | |fsrc − fres| (kHz) | RMI |
|---|---|---|---|---|
| 1.0 | 5.2548 ± 0.0481 | 0.9618 ± 0.00881 | 2.5255 ± 0.000023 | 0.1904 ± 0.00174 |
| 1.5 | 4.5098 ± 0.0617 | 1.4163 ± 0.01938 | 1.1924 ± 0.000232 | 0.5939 ± 0.00813 |
| 2.0 | 3.8451 ± 0.1626 | 1.8744 ± 0.07928 | 0.3726 ± 0.000267 | 2.5151 ± 0.106 |
| Mapping | drep 1 | Al | Cu | SUS | |||||
|---|---|---|---|---|---|---|---|---|---|
| <0.5 2 | 0.5–1.0 | 1.0–2.0 | LOD90 | LOD95 | LOD90 | LOD95 | LOD90 | LOD95 | |
| Midpoint | 0.25 | 0.75 | 1.5 | 0.538 | 0.606 | 0.596 | 0.661 | 1.271 | 1.784 |
| Geometric mean | 0.35 | 0.707 | 1.414 | 0.692 | 0.833 | 1.011 | 1.230 | 1.161 | 1.568 |
| Lower bound | 0.2 | 0.5 | 1 | 0.481 | 0.597 | 0.731 | 0.906 | 0.819 | 1.123 |
| Upper bound | 0.5 | 1 | 2 | 0.979 | 1.176 | 1.428 | 1.736 | 1.643 | 2.216 |
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| Gap d (mm) | Ceq (pF) 2 | Req (kΩ) 2 | fres (kHz) 1 |
|---|---|---|---|
| 1.0 | 1097.47 ± 0.01 | 5.46 ± 0.05 | 5.05 |
| 1.5 | 687.18 ± 0.05 | 8.04 ± 0.11 | 6.39 |
| 2.0 | 539.75 ± 0.04 | 10.64 ± 0.45 | 7.21 |
| Gap d (mm) | Qres | BWres (kHz) | |fsrc − fres| (kHz) 1 | RMI 2 |
|---|---|---|---|---|
| 1.0 | 5.25 | 0.962 | 2.53 | 0.19 |
| 1.5 | 4.51 | 1.417 | 1.19 | 0.59 |
| 2.0 | 3.84 | 1.875 | 0.37 | 2.57 |
| System | Foreign Bodies | Advantages | Limitations |
|---|---|---|---|
| Sieves/screens | Oversized particles, stones, insects | Simple, low cost, easy to retrofit | Fine metal dust passes, mesh can clog and is difficult to clean |
| Magnetic separators (bar/grid) | Ferrous metal objects | Robust, no product effect | Remove only ferrous metals, magnets require cleaning |
| Inductive metal detectors | Ferrous, non-ferrous, stainless steel | High sensitivity, inline use possible | Only conductive or magnetic bodies detected, very small particles can cause missed alarms |
| X-ray inspection | Dense foreign bodies (metal, glass, stone, bone) | Detects dense foreign bodies, sealed package inspection possible | High cost, shielding and safety issues, sufficient density contrast needed |
| NIR/hyperspectral imaging | Glass, wood, plastics, some metals | Non-contact, fast imaging rich spectral information | Expensive, complex data analysis, dust clouds degrade signal |
| Present work | Conductive metal particles (ferrous and non-ferrous) | Compact electrodes, relatively low cost, small particles detectable | Throughput limited, non-metal undetectable, clogging/bridging risk |
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Kwak, J.K.; So, J.H.; Joe, S.Y.; Choi, H.; Chang, H.; Lee, S.H. An Electric-Field-Based Detection System for Metallic Contaminants in Powdered Food. Processes 2026, 14, 922. https://doi.org/10.3390/pr14060922
Kwak JK, So JH, Joe SY, Choi H, Chang H, Lee SH. An Electric-Field-Based Detection System for Metallic Contaminants in Powdered Food. Processes. 2026; 14(6):922. https://doi.org/10.3390/pr14060922
Chicago/Turabian StyleKwak, Jae Kyun, Jun Hwi So, Sung Yong Joe, Hyun Choi, Hojong Chang, and Seung Hyun Lee. 2026. "An Electric-Field-Based Detection System for Metallic Contaminants in Powdered Food" Processes 14, no. 6: 922. https://doi.org/10.3390/pr14060922
APA StyleKwak, J. K., So, J. H., Joe, S. Y., Choi, H., Chang, H., & Lee, S. H. (2026). An Electric-Field-Based Detection System for Metallic Contaminants in Powdered Food. Processes, 14(6), 922. https://doi.org/10.3390/pr14060922

