Research on the Influence of Various Attribute Factors on Passive Interference in UHV Transmission Lines Based on Orthogonal Test
Abstract
:1. Introduction
2. Basic Principles of Electromagnetic Scattering from Transmission Lines
2.1. Equivalence and Solution Method of Passive Interference in Tower Line Model
2.2. Surface Roughness Characterization Parameters and Electromagnetic Scattering Characteristics
3. Optimization of Passive Interference Analysis Model for UHV Transmission Lines
3.1. Modeling and Simulation of a Single Base Tower
3.2. Geometric Modeling and Simulation of Rough Ground
3.3. Modeling and Simulation of Tower Arrays
4. Results Analysis
4.1. Discussion of the Results of the Effect of Tower Type and Angle-Steel on Passive Interference Results
4.2. Discussion of the Effects of Rough Surface Root-Mean-Square Height and Relevant Length on Passive Interference Results
4.3. Designing Orthogonal Experiments and Completing Joint Simulations of Tower Arrays with Rough Surface Passive Interference
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Research Status | Towers | Rough Ground | Overhead Conductor | Disadvantages or Conclusions |
---|---|---|---|---|
Gan, Z. | Three tower models with only main materials [8] | PEC ground | Straight-line model [14] | The particularity of the complex spatial structure of tower angle-steel is not reflected |
Tang, B. | Established ZP30101 tower with or without auxiliary angle-steel [10]; Tower face-model [13] | PEC ground | / | Auxiliary angle-steel has a significant impact at high frequency, but only established one tower type |
Jun, Zou [11,12] | tower adopts the pyramid model | PEC ground | Straight-line model | Simplified tower shape may increase calculation error |
Schmugge and Wang [16] | / | Four types of different rough ground | / | No electromagnetic analysis for UHV transmission lines |
Johnson, J.T. [20] Axline, R.M. [21] | / | Simple rough surface | / | Composite scattering from rough surfaces and simple targets |
Ying, Lu [24,25] | / | / | The actual strand structure of the conductor | Not considering the arc sag effect of the wire |
Ground Type | Sand Content (S) | Clay Content (C) | RMS Height | Relevant Length | Dielectric Constant |
---|---|---|---|---|---|
Sandy-fleshed | 51.5% | 13.5% | 1.1 | 6.3 | 9.667 + j0.601 |
Silty fertile | 30.6% | 13.5% | 0.4 | 3.6 | 9.234 + j0.572 |
Powdery sandy loam | 17.2% | 19.0% | 0.6 | 4.8 | 8.466 − j0.512 |
Powdery clay | 5.0% | 47.4% | 0.15 | 2.1 | 6.345 − j0.336 |
Ground Type | Frequency | ||||
---|---|---|---|---|---|
0.5 MHz | 3 MHz | 10 MHz | 16.7 MHz | 30 MHz | |
Sandy-fleshed | −26.5746 | −29.5397 | −30.9926 | −31.5608 | −36.542 |
Silty fertile | −27.4936 | −28.3159 | −28.3655 | −30.5195 | −33.264 |
Powdery sandy loam | −14.0014 | −21.589 | −29.2199 | −30.6614 | −31.7508 |
Powdery clay | −15.631 | −26.2619 | −28.8158 | −29.4096 | −32.0343 |
Parameter Level | A Ground Roughness | B Tower Structure | C Auxiliary Angle-Steel | D Sag Height/(m) |
---|---|---|---|---|
1 | Silty fertile ground | Cup-type tower | Without angle-steel | 8 |
2 | Powdery sandy loam ground | Dry-type tower | With angle-steel | 13 |
3 | Sandy-fleshed ground | / | / | / |
4 | Powdery clay ground | / | / | / |
Experiment No. | A | B | C | D | Experimental | |
---|---|---|---|---|---|---|
1 | 2 | 3 | 4 | |||
1 | 1(A1) | 1(B1) | 1 | 1 | −0.546755 | 5.46755 |
2 | 1 | 2(B2) | 2 | 2 | −0.841682 | 8.41682 |
3 | 2(A2) | 1 | 2 | 1 | −0.587345 | 5.87345 |
4 | 2 | 2 | 1 | 2 | −0.677844 | 6.77844 |
5 | 3(A3) | 1 | 2 | 2 | −0.553731 | 5.53731 |
6 | 3 | 2 | 1 | 1 | −0.677481 | 6.77481 |
7 | 4(A4) | 1 | 1 | 2 | −0.468753 | 4.68753 |
8 | 4 | 2 | 2 | 1 | −0.756542 | 7.56542 |
13.88437 | 21.56584 | 23.70839 | 25.68129 | |||
12.65189 | 29.53555 | 27.393 | 25.4201 | |||
12.31218 | / | / | / | |||
12.25295 | / | / | / | |||
1.63142 | 13.46971 | 6.18461 | 0.23881 | / | ||
285.16645 | 7.9395347 | 1.6970439 | 0.008528 | / |
Variance Source | Quadratic Sum S | Degree of Freedom f | Mean Square | F-Value | Significance |
---|---|---|---|---|---|
A | 285.1664544 | 3 | 95.0554848 | 7.342409613 | * |
B | 7.939534686 | 1 | 7.939534686 | 0.188411874 | |
CΔ | 1.697043857 | 1 | 1.697043857 | ||
DΔ | 0.008527527 | 1 | 0.008527527 | ||
e | 42.13924801 | 1 | 42.13924801 | ||
eΔ | 51.78435408 | 4 | 12.94608852 |
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Zhang, J.; Gan, Z.; Zhou, X.; Yu, P.; Jiao, C.; Zhang, X. Research on the Influence of Various Attribute Factors on Passive Interference in UHV Transmission Lines Based on Orthogonal Test. Energies 2022, 15, 4510. https://doi.org/10.3390/en15134510
Zhang J, Gan Z, Zhou X, Yu P, Jiao C, Zhang X. Research on the Influence of Various Attribute Factors on Passive Interference in UHV Transmission Lines Based on Orthogonal Test. Energies. 2022; 15(13):4510. https://doi.org/10.3390/en15134510
Chicago/Turabian StyleZhang, Jiangong, Zheyuan Gan, Xiaoyan Zhou, Pengcheng Yu, Chaoqun Jiao, and Xiumin Zhang. 2022. "Research on the Influence of Various Attribute Factors on Passive Interference in UHV Transmission Lines Based on Orthogonal Test" Energies 15, no. 13: 4510. https://doi.org/10.3390/en15134510
APA StyleZhang, J., Gan, Z., Zhou, X., Yu, P., Jiao, C., & Zhang, X. (2022). Research on the Influence of Various Attribute Factors on Passive Interference in UHV Transmission Lines Based on Orthogonal Test. Energies, 15(13), 4510. https://doi.org/10.3390/en15134510