Effect of Tree Quantity and Distribution on the Electric Field under Transmission Lines
Abstract
:1. Introduction
- (1)
- By conducting three-dimensional simulation calculations of the electric field on transmission lines with and without overhead ground wires, the model of transmission lines without overhead ground wires is more efficient and quick.
- (2)
- The maximum power frequency electric field of the transmission line occurs below the edge conductor, and when the phase angle of voltage A is 30 degrees, the electric field strength is symmetrical about the center of the transverse measurement point. This result indicates that the field strength below the edge conductor needs to be given special attention and protection.
- (3)
- The proposed method is feasible and effective, which has been verified by simulating the three-dimensional electric field of tree green belts at different locations. It further provides suggestions based on the research results for reducing the width of transmission corridors and serves as a reference for future research in this field.
2. Charge Simulation Method Solving Electric Field near Transmission Lines
2.1. Evaluation Criterion
2.2. Field Equation
3. Prediction Model and Validation
3.1. Prediction Model
3.2. Validation of Predictive Models
3.2.1. Simplification of the Transmission Line Model
3.2.2. Comparison of Results
- (1)
- When the phase angle of voltage A is 30 degrees, the variation curve of its power frequency electric field strength with lateral distance is symmetrical about the middle conductor.
- (2)
- The maximum power frequency electric field strength of AC transmission lines occurs below the edge conductors, so the protection of power frequency electric fields on transmission lines should focus on the area below the edge conductors, and relevant measures should be taken to reduce the electric field strength to below 4 kV/m.
- (3)
- The amplitude of the electric field strength directly below the side conductor of typical 500 kV and 1000 kV tower-type AC overhead transmission lines in this article exceeds relevant domestic and foreign standards. The maximum amplitude of the electric field intensity directly below the side conductor of a typical 1000 kV tower-type AC overhead transmission line reached 9850 V/m, and the maximum amplitude of the electric field intensity directly below the side conductor of a typical 500 kV tower-type AC overhead transmission line reached 5810 V/m, both exceeding ICNIRP’s 5000 V/m power frequency electric field public exposure reference level and China’s 4000 V/m power frequency electric field environmental limit standard. This part of the area may be prone to accidents such as step voltage, and residents should avoid crossing as much as possible. However, due to the existence of transmission corridors, there is generally no long-term exposure of human bodies here, and such environmental risks are temporary and accidental.
- (4)
- The typical power frequency electric field values of 220 kV and 110 kV transmission lines in this article are less than 4 kV/m, meeting the requirements for power frequency electric field strength in residential areas. The maximum amplitude of the electric field strength directly below the side conductor of typical tower-type AC overhead transmission lines of 220 kV and 110 kV is 3300 V/m and 2350 V/m, respectively, which does not exceed the ICNIRP reference level and China’s environmental protection standards. It can be considered safe to be located below these two types of AC overhead transmission lines.
4. Effect of Tree Quantity and Distribution on Power Frequency Electric Field
4.1. Effect of Tree Quantity
4.2. Effect of Tree Distribution
5. Conclusions
- (1)
- The change trend of power frequency electric field strength with lateral distance is the same for transmission lines with and without overhead ground lines, and the error of the maximum power frequency electric field strength of both is within 5%, so in order to improve the calculation efficiency and reduce the calculation memory, the 3D electric field simulation calculation of transmission lines can be calculated according to the model without overhead ground lines.
- (2)
- When the phase angle of voltage A is 30 degrees, the change curve of its power frequency electric field strength with lateral distance is symmetrical about the middle conductor, and the maximum value of its power frequency electric field strength appears below the side conductor.
- (3)
- With the increase in the number of trees, the maximum value of power frequency electric field strength below the side conductor decreases gradually. Therefore, it is possible to move the green belt of trees to the inside of the corridor, so as to achieve the purpose of reducing the width of the transmission corridor and reducing the electric field strength below the side conductor.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Ron, E.; Modan, B.; Boice, J.D.; Alfandary, E.; Stovall, M.; Chetrit, A.; Katz, L. Tumors of the brain and nervous system after radiotherapy in childhood. N. Engl. J. Med. 1988, 319, 1033–1039. [Google Scholar] [CrossRef] [PubMed]
- Greenland, S.; Sheppard, A.R.; Kaune, W.T.; Poole, C.; Kelsh, M.A. A Pooled Analysis of Magnetic Fields, Wire Codes, and Childhood Leukemia. Epidemiology 2000, 11, 624–634. [Google Scholar] [CrossRef] [PubMed]
- Attwell, D. Interaction of low frequency electric fields with the nervous system: The retina as a model system. Radiat. Prot. Dosim. 2003, 106, 341–348. [Google Scholar] [CrossRef]
- Liu, Z.Y. Innovation of UHVAC Transmission Technology in China. Power Syst. Technol. 2017, 37, 567–574. [Google Scholar]
- Wu, X.; Wan, B.Q.; Lu, Y. Study on Electromagnetic Environment for 1000kV AC Transmission Line. High Volt. Eng. 2006, 12, 55–58. [Google Scholar]
- Malik, N.H. A review of the charge simulation method and its application. IEEE Trans. Dielectr. Electr. Insul. 1989, 24, 3–20. [Google Scholar] [CrossRef]
- Florkowska, B.; Korczynski, A.J.; Timle, M. Analysis of electric field distribution around the high-voltage overhead transmission lines with an ADSS fiber-optic cable. IEEE Trans. Power Deliv. 2004, 19, 1183–1189. [Google Scholar] [CrossRef]
- Elhirbawy, M.A.; Nguyen, T.T.; Jennings, L. Calculation of electromagnetic fields established by power transmission line using finite difference techniques. In Proceedings of the IEEE CCECE2002. Canadian Conference on Electrical and Computer Engineering, Winnipeg, MB, Canada, 12–15 May 2002; Volume 1, pp. 311–316. [Google Scholar]
- Ranković, A.; Savić, M.S. Generalized charge simulation method for the calculation of the electric field in high voltage substations. Electr. Eng. 2010, 92, 69–77. [Google Scholar] [CrossRef]
- Lai, F.; Wang, Y.; Lu, Y. Improving the accuracy of the charge simulation method for numerical conformal map. Math. Probl. Eng. 2017, 2017, 3603965. [Google Scholar] [CrossRef]
- Djekidel, R.; Bessedik, S.A.; Akef, S. 3D Modelling and simulation analysis of electric field under HV overhead line using improved optimisation method. IET Sci. Meas. Technol. 2020, 14, 914–923. [Google Scholar] [CrossRef]
- King, R.W.P. Author’s reply. IEEE Trans. Biomed. Eng. 1999, 46, 762–763. [Google Scholar] [CrossRef]
- Krajewski, W. BEM analysis of electric field excited by overhead HV lines erected in built-up areas. IEE Proc. Sci. Meas. Technol. 1997, 144, 81–86. [Google Scholar] [CrossRef]
- Mei, Z.; Lu, S.M.; Ma, F. Electromagnetic Field in Home Near High Voltage Transmission Line and Shielding Efficiency of Structure. High Volt. Eng. 2008, 34, 60–63. [Google Scholar]
- Trotsenko, Y.; Nesterko, A.; Peretyatko, Y.; Dixit, M. Mitigation of environmental impacts of electricity transmission: Effect of deciduous trees on electric field caused by overhead power lines. Trans. Kremenchuk Mykhailo Ostrohradskyi Natl. Univ. 2022, 1, 203–211. [Google Scholar]
- Zhou, H.; Sun, L.; Yang, Y. Reduction of electric field strength by two species of trees under power transmission lines. J. For. Res. 2018, 29, 1415–1422. [Google Scholar] [CrossRef]
- Ismail, H.M.; Al-Kandari, A.M. Impact of using natural trees on the electric field reduction of Kuwait high voltage transmission systems. Kuwait J. Sci. 2009, 36, 131–145. [Google Scholar]
- Guo, J.F.; Wang, D.; Huang, H. Measurement and Analysis of Plants Impact on 50 Hz EMFs. Chin. J. Radiol. Health 2014, 23, 397–399. [Google Scholar]
- Vecchia, P. Assessment of health effects associated with electromagnetic fields by WHO, IARC, and ICNIRP. URSI Radio Sci. Bull. 2006, 318, 30–33. [Google Scholar]
- Tefera, T.N.; Punekar, G.S.; Ibrahim, Y.K.; Berhanu, T.M. Comparative Analysis of 500 kV Double-Circuit Transmission Line Electric Field Intensity: Ethiopian Lines Compliance With ICNIRP. IEEE Access 2024, 12, 76359–76366. [Google Scholar] [CrossRef]
- Hao, L.M.; Xie, L.; Bai, B.; Lu, T.B.; Wang, D.L.; Li, X.B. High Effective Calculation and 3-D Modeling of Ion Flow Field Considering the Crossing of HVDC Transmission Lines. IEEE Trans. Magn. 2020, 56, 1–3. [Google Scholar] [CrossRef]
- Wang, R.; Tian, J.; Wu, F.; Zhang, Z.H.; Liu, H.S. PSO/GA Combined with Charge Simulation Method for the Electric Field Under Transmission Lines in 3D Calculation Model. Electronics 2019, 8, 1140. [Google Scholar] [CrossRef]
- Tzinevrakis, A.E.; Tsanakas, D.K.; Mimos, E.I. Electric field analytical formulas for single-circuit power lines with a horizontal arrangement of conductors. IET Gener. Transm. Distrib. 2009, 3, 509–520. [Google Scholar] [CrossRef]
- Mohyuddin, S. Simulation and analysis of electric field distribution on porcelain disc insulators under dry and clean conditions using finite element method. IJSTE Int. J. Sci. Technol. Eng. 2016, 2, 541–546. [Google Scholar]
- Xiao, D.P.; Liu, H.T.; Jiang, K.R. Calculation method of power frequency magnetic field under multiple cross overhead transmission lines. Chin. J. Electr. Eng. 2016, 36, 4127–4134. [Google Scholar]
- Peng, Y.; Ruan, J.J. Calculation of 3D power frequency electric field of ultra-high voltage overhead lines using simulated charge method. High Volt. Technol. 2006, 486, 69–73+77. [Google Scholar]
- Liao, C.B.; Ruan, J.J.; Liu, C.; Du, Z.Y.; Wen, W.; Zhou, T.T. Helicopter Live-Line Work on 1000-kV UHV Transmission Lines. IEEE Trans. Power Deliv. 2016, 31, 982–989. [Google Scholar] [CrossRef]
- Sekiba, Y.; Kodera, S.; Yamazaki, K.; Hirata, A. Calculation of Electric Field Induced in the Human Body for Simultaneous Exposure to Spatially Uniform ELF Electric and Magnetic Fields With a Phase Difference. IEEE Access 2023, 11, 95455–95466. [Google Scholar] [CrossRef]
- Wang, J.G.; Wang, Y.; Peng, X.Y.; Li, X.Q.; Xu, X.G.; Mao, X.Y. Induced Voltage of Overhead Ground Wires in 50 0-kV Single-Circuit Transmission Lines. IEEE Trans. Power Deliv. 2014, 29, 1054–1062. [Google Scholar] [CrossRef]
- Lee, B.Y.; Park, J.K.; Myung, S.H.; Min, S.W.; Kim, E.S. An effective modelling method to analyze the electric field around transmission lines and substations using a generalized finite line charge. IEEE Trans. Power Deliv. 1997, 12, 121143–121150. [Google Scholar] [CrossRef]
- Zhang, S.C.; Liu, J.Z.; Niu, Z.; Gao, S.; Xu, H.Z.; Pei, J. Power Line Simulation for Safety Distance Detection Using Point Clouds. IEEE Access 2020, 8, 165409–165418. [Google Scholar] [CrossRef]
- Dein, A.Z.E.; Gouda, O.E.; Lehtonen, M.; Darwish, M.F. Mitigation of the Electric and Magnetic Fields of 500-kV Overhead Transmission Lines. IEEE Access 2022, 10, 33900–33908. [Google Scholar] [CrossRef]
Material | Relative Dielectric Constant | Conductivity (S/m) |
---|---|---|
air | 1 | 2 × 10−14 |
ground | 10 | 1 × 10−4 |
trunk | 9 | 0.002 |
crown of a tree | 9 | 0.004 |
wire | 1 | 3.8 × 107 |
Wireway | Coordinate of Wire Position (x, y) (m) | |||
---|---|---|---|---|
110 kV Line | 220 kV Line | 500 kV Line | 1000 kV Line | |
A | (−3.5, 16.57) | (−5.4, 19.20) | (−7.5, 24.89) | (−18.8, 30.33) |
B | (0, 18.57) | (0, 24.20) | (0, 34.49) | (0, 48.33) |
C | (3.5, 16.57) | (5.4, 19.20) | (7.5, 24.89) | (18.8, 30.33) |
Splitting distance | 0.25 m | 0.4 m | 0.45 m | 0.4 m |
Phase conductor | 2× LGJ-200/30 | 2× LGJ-240/40 | 4× LGJ-400/35 | 8× LGJ-500/45 |
Number | 0 | 9 | 19 | 29 | 54 | 133 |
Electric field strength (kV/m) | 5.60 | 5.32 | 5.10 | 4.86 | 3.79 | 1.19 |
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Wang, Z.; Duan, N.; Chen, J.; Zhou, X.; Lu, M.; Zhao, S. Effect of Tree Quantity and Distribution on the Electric Field under Transmission Lines. Appl. Sci. 2024, 14, 8487. https://doi.org/10.3390/app14188487
Wang Z, Duan N, Chen J, Zhou X, Lu M, Zhao S. Effect of Tree Quantity and Distribution on the Electric Field under Transmission Lines. Applied Sciences. 2024; 14(18):8487. https://doi.org/10.3390/app14188487
Chicago/Turabian StyleWang, Ziyu, Nana Duan, Junyu Chen, Xikun Zhou, Mengxue Lu, and Shichen Zhao. 2024. "Effect of Tree Quantity and Distribution on the Electric Field under Transmission Lines" Applied Sciences 14, no. 18: 8487. https://doi.org/10.3390/app14188487
APA StyleWang, Z., Duan, N., Chen, J., Zhou, X., Lu, M., & Zhao, S. (2024). Effect of Tree Quantity and Distribution on the Electric Field under Transmission Lines. Applied Sciences, 14(18), 8487. https://doi.org/10.3390/app14188487