Finite Element Simulation and Experimental Research on Uniformity Regulation of Microwave Heating of Composite Materials
Abstract
:1. Introduction
2. Theoretical Design and Analysis of Microwave Heating Device
2.1. Theory and Dimension Design of Microwave Resonant Cavity
2.2. Finite Element Simulation on Microwave Field Uniformity Optimization
2.2.1. The Basic Theory of Physics for Microwave Heating
2.2.2. Establishment of the Finite Element Model
2.2.3. Design and Selection of Microwave Generator
Influence of Microwave Generator Size on Electric Field Distribution
Influence of the Microwave Generators Quantity and Setting Modes on the Electric Field
2.2.4. Design and Selection of Microwave Mode Stirrer
Size Design of Microwave Mode Stirrer
Influence of the Periodic Rotation of Mode Stirrers on the Electric Field
2.2.5. Design and Selection of Loading Platform
3. Materials and Methods
3.1. Regulating Device of Microwave Heating Uniformity
3.2. Materials and Devices
3.3. Test and Equipment for the Curing Degrees of Resins
3.4. Test and Equipment for the Stresses/Strains during the Microwave Curing Process
4. Results and Discussion
4.1. Verification of Temperature Field Uniformity during Microwave Curing Process
4.2. Effect of Uniformity of Temperature Field on Curing Degree of Composites
4.3. Effect of Uniformity of Temperature Field on Strains/Stresses of Composites
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Number | Quantity of Generators | Working Locations | Number | Quantity of Generators | Working Locations |
---|---|---|---|---|---|
(1) | 1 | 1 | (13) | 4 | 2/3/7/8 |
(2) | 2 | 1/5 | (14) | 4 | 2/4/6/8 |
(3) | 2 | 2/8 | (15) | 5 | 1/2/4/6/8 |
(4) | 2 | 3/7 | (16) | 5 | 1/2/3/7/8 |
(5) | 2 | 4/6 | (17) | 5 | 3/4/5/6/7 |
(6) | 2 | 4/8 | (18) | 6 | 1/2/3/5/7/8 |
(7) | 3 | 1/2/8 | (19) | 6 | 1/2/4/5/6/8 |
(8) | 3 | 1/3/7 | (20) | 6 | 1/3/4/5/6/7 |
(9) | 3 | 4/5/6 | (21) | 6 | 2/3/4/6/7/8 |
(10) | 4 | 1/2/5/8 | (22) | 7 | 1/2/3/4/6/7/8 |
(11) | 4 | 1/3/5/7 | (23) | 7 | 2/3/4/5/6/7/8 |
(12) | 4 | 1/4/5/6 | (24) | 8 | 1/2/3/4/5/6/7/8 |
Number | Working Locations | CoV | Number | Working Locations | CoV |
---|---|---|---|---|---|
(1) | 1 | 0.405 | (13) | 2/3/7/8 | 0.318 |
(2) | 1/5 | 0.358 | (14) | 2/4/6/8 | 0.335 |
(3) | 2/8 | 0.397 | (15) | 1/2/4/6/8 | 0.353 |
(4) | 3/7 | 0.351 | (16) | 1/2/3/7/8 | 0.335 |
(5) | 4/6 | 0.394 | (17) | 3/4/5/6/7 | 0.338 |
(6) | 4/8 | 0.407 | (18) | 1/2/3/5/7/8 | 0.357 |
(7) | 1/2/8 | 0.399 | (19) | 1/2/4/5/6/8 | 0.328 |
(8) | 1/3/7 | 0.335 | (20) | 1/3/4/5/6/7 | 0.314 |
(9) | 4/5/6 | 0.379 | (21) | 2/3/4/6/7/8 | 0.307 |
(10) | 1/2/5/8 | 0.389 | (22) | 1/2/3/4/6/7/8 | 0.373 |
(11) | 1/3/5/7 | 0.314 | (23) | 2/3/4/5/6/7/8 | 0.304 |
(12) | 1/4/5/6 | 0.326 | (24) | 1/2/3/4/5/6/7/8 | 0.328 |
Heating Mode | Sample Position | Weight/mg | Residual Heat/(J·g−1) | Total Reaction Heat/(J·g−1) | Curing Degree |
---|---|---|---|---|---|
Traditional heating device | 1 | 4.07 | 0.13 | 77.32 | 99.83% |
2 | 4.38 | 4.45 | 77.32 | 94.24% | |
3 | 6.84 | 3.91 | 77.32 | 94.96% | |
4 | 3.77 | 1.99 | 77.32 | 97.43% | |
Regulating device | 1 | 3.84 | 0.72 | 77.32 | 99.07% |
2 | 4.37 | 0.17 | 77.32 | 99.78% | |
3 | 4.43 | 0.29 | 77.32 | 99.62% | |
4 | 4.96 | 0.77 | 77.32 | 99.01% |
Heating Mode | Maximum Strain/µε | Insulation Strain (µε) | Residual Strain/µε | |
---|---|---|---|---|
Traditional heating device | Point 1 | 251.97 | 135.71 | −246.87 |
Point 2 | 326.92 | 220.06 | −345.69 | |
Regulating device | Point 1 | 273.01 | 180.71 | −255.84 |
Point 2 | 242.82 | 165.18 | −251.69 |
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Guan, C.; Zhan, L.; Yao, S. Finite Element Simulation and Experimental Research on Uniformity Regulation of Microwave Heating of Composite Materials. Polymers 2022, 14, 3484. https://doi.org/10.3390/polym14173484
Guan C, Zhan L, Yao S. Finite Element Simulation and Experimental Research on Uniformity Regulation of Microwave Heating of Composite Materials. Polymers. 2022; 14(17):3484. https://doi.org/10.3390/polym14173484
Chicago/Turabian StyleGuan, Chenglong, Lihua Zhan, and Shunming Yao. 2022. "Finite Element Simulation and Experimental Research on Uniformity Regulation of Microwave Heating of Composite Materials" Polymers 14, no. 17: 3484. https://doi.org/10.3390/polym14173484
APA StyleGuan, C., Zhan, L., & Yao, S. (2022). Finite Element Simulation and Experimental Research on Uniformity Regulation of Microwave Heating of Composite Materials. Polymers, 14(17), 3484. https://doi.org/10.3390/polym14173484