A Novel MPPT Heating Control Strategy Applied to the Induction Heating System
Abstract
:1. Introduction
2. System Description of Induction Heating System
2.1. Principle of Induction Heating
2.2. Design Consideration of the Components
2.3. Transfer Function Analysis of Full-Bridge LC Series Resonant Converter
3. Proposed Maximum Power-Point Tracking Heating Technology
3.1. Heating Control Technology
3.2. Proposed MPPT Control Strategy
4. Experiment Results
4.1. Simulation Experiment Results
4.2. Hardware Experiment Results
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Heating Method | Application | Characteristic |
---|---|---|
Resistance heating [1] | Low-temperature heating (electric kettles and pots) | Contact heating, simple heating method, low heating efficiency |
Infrared heating [2] | Surface heating of various materials at the same time | Far and near-infrared has different heating effects for different materials |
Microwave heating [3,4] | Heat rubber or food with more water content (microwave oven) | Rapid heating, suspicion of electromagnetic wave leakage, need to be isolated |
Induction heating [5, 6, 7, 8] | Heating metal at high temperature (induction cooker) | Noncontact heating, using frequency to decide the heating depth, speed, and efficiency |
Control Method | Complexity | Performance | Heating Speed |
---|---|---|---|
Two frequencies control [13] | Low | Medium | Medium |
High-speed heating control [14] | Medium | High | High |
Wireless constant temperature control [15] | Medium | High | Medium |
Deep-learning control [8] | High | High | Medium |
Proposed | Low | High | High |
Parameter | Value |
---|---|
Rated power | 1.3 kW |
Input voltage Vs | 250 VDC |
System operating frequency range fs | 44 to 50 kHz |
Maximum heating temperature | 750 °C |
Parameter | Value |
---|---|
Input voltage | 250 VDC |
Resonant inductor | 150 μH |
Resonant capacitor | 33 nF |
Equivalent inductance of heating coil Leq (temperature of 750 °C and frequency of 44 kHz) | 1.25 μH |
Equivalent resistance of heating coil Req (temperature of 750 °C and frequency of 44 kHz) | 0.5 Ω |
Turn ratio (transformer) | N1:N2 = 10:1 |
Heating coil | Inner diameter 2.5 cm, 13 turns |
Workpiece | Cylindrical low-carbon iron (2 cm diameter, 15 cm long) |
Heating Temperature | Measurement | Simulation | Experiment | ||
---|---|---|---|---|---|
Traditional | Proposed | Traditional | Proposed | ||
500 °C | frequency | 45 kHz | 46 kHz | 45 kHz | 46 kHz |
duty cycle | 0.45 | 0.43 | 0.45 | 0.43 | |
peak value of vo | 30 VAC | 39.5 VAC | 35 VAC | 41 VAC | |
peak value of io | 40 AAC | 43 AAC | 40 AAC | 43 AAC | |
750 °C | frequency | 45 kHz | 44 kHz | 45 kHz | 44 kHz |
duty cycle | 0.45 | 0.44 | 0.45 | 0.44 | |
peak value of vo | 32 VAC | 40 VAC | 35 VAC | 42 VAC | |
peak value of io | 35 AAC | 42 AAC | 35 AAC | 42 AAC |
Control Method | Heating Temperature | |
---|---|---|
500 °C | 750 °C | |
Traditional (Efficiency) | 76% | 68% |
Proposed (Efficiency) | 96% | 96% |
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Lee, Y.-L.; Lin, C.-H.; Liu, H.-D. A Novel MPPT Heating Control Strategy Applied to the Induction Heating System. Processes 2022, 10, 1151. https://doi.org/10.3390/pr10061151
Lee Y-L, Lin C-H, Liu H-D. A Novel MPPT Heating Control Strategy Applied to the Induction Heating System. Processes. 2022; 10(6):1151. https://doi.org/10.3390/pr10061151
Chicago/Turabian StyleLee, Yu-Lin, Chang-Hua Lin, and Hwa-Dong Liu. 2022. "A Novel MPPT Heating Control Strategy Applied to the Induction Heating System" Processes 10, no. 6: 1151. https://doi.org/10.3390/pr10061151
APA StyleLee, Y. -L., Lin, C. -H., & Liu, H. -D. (2022). A Novel MPPT Heating Control Strategy Applied to the Induction Heating System. Processes, 10(6), 1151. https://doi.org/10.3390/pr10061151