Analysis of Cable Shielding and Influencing Factors for Indirect Effects of Lightning on Aircraft
Abstract
:1. Introduction
2. Theoretical Calculation of the Indirect Effect of Lightning on Aircraft
2.1. The Principles behind the Indirect Effect of Lightning on Metal Aircraft
2.2. The Principle of the Indirect Effect of Lightning on Composite Aircraft
2.3. The Analysis of Metal Mesh in the Composite Aircraft Fuselage
3. Design and Analysis of the Indirect Effect of Lightning on Aircraft
3.1. Aircraft Model Construction and Excitation Source Setup
3.2. Lightning Passage through the Airframe
4. Influence of the Cable Shielding Layer on Shielding Performance
4.1. Cable Type
4.2. Material of the Cable Shielding Layer
4.3. Grounding Modes of the Cable Shielding Layer
5. Principles of Laying Cables
5.1. Cable Layout
5.2. Cable Track Groove
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Material | Aluminum | Glass | CFRP | ||
---|---|---|---|---|---|
x | y | z | |||
Conductivity (S/m) | 3.56 × 107 | 1 × 10−12 | 40,490 | 200 | 1.3 |
Material | Peak Value of Internal Magnetic Field Intensity (A/m) | Cable Induced Current Peak (A) | |
---|---|---|---|
Core of Wire | Shield of Wire | ||
Aluminum | 59.384 | 2.912 | 229.597 |
CFRP | 891.653 | 6.346 | 8667.492 |
CFRP combined with metal mesh | 531.668 | 2.956 | 2687.860 |
Types | Single Wire | Coaxial Wire with Shielding Layer | Twisted Pair | Twisted Pair with Shielding Layer |
---|---|---|---|---|
Induced current peak value (A) | 1.8844 | 0.0594 | 2.4498 × 10−5 | 3.3452 × 10−6 |
Material | Cable Induced Current Peak (A) | |
---|---|---|
Core of Wire | Shield of Wire | |
No shielding layer | 1.8844 | —— |
Copper | 0.0118 | 184.1521 |
Silver | 0.0106 | 200.1759 |
Aluminum | 0.0169 | 120.1643 |
Grounding Modes | Cable Induced Current Peak (A) | |
---|---|---|
Core of Wire | Shield of Wire | |
Single-ended grounding | 1.4614 | 2.1997 |
Double-ended balanced grounding | 0.2923 | 405.1898 |
Double-ended unbalanced grounding | 1.5698 | 4.6978 |
Overhang | 1.2709 | —— |
Groups | Mark | Distance | Main Method of Electromagnetic Energy Coupling |
---|---|---|---|
A | P1, P2–P5 | 0.4 m | Bottom skin |
B | P5–P8 | 0.43 m | Left skin and hatch door |
C | P8–P11 | 0.3 m | Hatch door and porthole |
D | P10, P12–P14 | 0.43 m | Left skin and porthole |
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Yang, Z.; Wei, Y.; Shi, X. Analysis of Cable Shielding and Influencing Factors for Indirect Effects of Lightning on Aircraft. Aerospace 2024, 11, 674. https://doi.org/10.3390/aerospace11080674
Yang Z, Wei Y, Shi X. Analysis of Cable Shielding and Influencing Factors for Indirect Effects of Lightning on Aircraft. Aerospace. 2024; 11(8):674. https://doi.org/10.3390/aerospace11080674
Chicago/Turabian StyleYang, Zhangang, Yuhao Wei, and Xudong Shi. 2024. "Analysis of Cable Shielding and Influencing Factors for Indirect Effects of Lightning on Aircraft" Aerospace 11, no. 8: 674. https://doi.org/10.3390/aerospace11080674
APA StyleYang, Z., Wei, Y., & Shi, X. (2024). Analysis of Cable Shielding and Influencing Factors for Indirect Effects of Lightning on Aircraft. Aerospace, 11(8), 674. https://doi.org/10.3390/aerospace11080674