Research on the Influence of Compression and Offset of Cushion Blocks on the Axial Strength of Transformers
Abstract
:1. Introduction
2. Study of the Axial Strength of Windings under Short-Circuit Force
3. Cushion Compression and Offset Test Based on Short-Circuit Force Simulation
3.1. Calculation of Winding Electromagnetic Forces
3.2. Simulation Analysis of Winding Unbalanced Force after Short Circuit
3.3. Analysis of Three-Point Bending Test
4. Impact Analysis of Cushion Blocks on Winding Axial Strength
4.1. Transformer Three-Cake Toroidal Model Construction
4.2. Impact of Cushion Block Unbalanced Height on Winding Axial Strength
4.3. Impact of Cushion Block Offset on Winding Axial Strength
5. Conclusions
- The axial strength of the winding-cushion block composite structure is affected by the cushion block height unbalanced Δl and the cushion block offset angle θ. Cushion block compression faults can affect the unbalanced height Δl, while cushion block offset faults directly affect the offset angle θ. Cushion block compression and offset faults lead to an increase in the axial bending stress of the winding-cushion block structure, posing a more severe challenge to the axial strength of the winding.
- A greater cushion block unbalanced height results in higher bending elastic modulus and lower axial strength in the windings. When the unbalanced height is 2 mm, 4 mm, and 6 mm, the maximum axial bending stress in the windings increases by 12.02%, 21.57%, and 31.17%, respectively. The impact of increasing cushion block unbalanced height on winding strength reduction is almost linear.
- Under the same offset angle, the winding’s bending elastic modulus is lowest for the cushion block opposite-direction offset structure, indicating the poorest mechanical performance. The cushion block’s same-direction offset structure follows. For the axial bending stress in an opposite-direction offset structure, when the offset angle is 30°, 45°, and 60°, the maximum axial bending stress increases by 1.73%, 3.46%, and 7.82%, respectively, and the degree of reduction in the axial winding strength progressively intensifies.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Bouderbala, R.; Bentarzi, H. Differential relay reliability enhancement using fourth harmonic for a large power transformer. Int. J. Syst. Assur. Eng. Manag. 2017, 8, 592–598. [Google Scholar] [CrossRef]
- Bakshi, A.; Kulkarni, S.V. Analysis of buckling strength of inner windings in transformers under radial short-circuit forces. IEEE Trans. Power Deliv. 2014, 29, 241–245. [Google Scholar] [CrossRef]
- Zhang, J. Analysis of Leakage Field and Short-Circuit Electric Force in Transformer Windings. Master’s thesis, Shenyang University of Technology, Shenyang, China, 2019. [Google Scholar]
- Huang, Q. Study on Short Circuit Stability of Transformer Based on Finite Element Simulation. Master’s thesis, Huazhong University of Science & Technology, Wuhan, China, 2017. [Google Scholar]
- Dawood, K.; Komurgoz, G.; Isik, F. Computation of the axial and radial forces in the windings of the power transformer. In Proceedings of the 2019 4th International Conference on Power Electronics and their Applications (ICPEA), Elazig, Turkey, 25–27 September 2019; pp. 1–6. [Google Scholar]
- Yadav, S.; Mehta, R.K. FEM based study of short circuit forces on power transformer windings. In Proceedings of the 2019 3rd International Conference on Recent Developments in Control, Automation & Power Engineering (RDCAPE), Noida, India, 10–11 October 2019; pp. 540–544. [Google Scholar]
- Linda, L.; Zhengxu, L.; Shiyuan, S. Research Review on Short-Circuit Cumulative Effect of Power Transformer. Transformer 2017, 54, 24–31. [Google Scholar]
- Fan, Z.; Xiuguang, L.; Xiaoyu, Z. Assessment of the Withstand Ability to Short Circuit of Inner Windings in Power Transformers Considering the Degree of Thermal Aging. Proc. CSEE 2022, 42, 3836–3846. [Google Scholar]
- Bo, Z.; Yan, L. Radial Stability of Large Transformer Windings under Multiple Inrush Conditions. Trans. China Electrotech. Soc. 2017, 32, 71–76. [Google Scholar]
- Steel, R.B.; Johnson, W.M.; Narbus, J.J.; Patel, M.R.; Nelson, R.A. Dynamic Measurements in Power Transformers under Short-Circuit Conditions; CIGRE: Paris, France, 1972; pp. 1253–1258. [Google Scholar]
- Andersen, O.W. Transformer Leakage Flux Program Based on the FEM. IEEE Trans. Power Appar. Syst. 1973, 92, 682–689. [Google Scholar] [CrossRef]
- Kawanishi, K.; Suzuki, T.; Kosakaetal, M. Axial behavior of transformer windings on short-cireuit(Part2). IEEE Trans. Power Appar. Syst. 1999, 13, 418–423. [Google Scholar]
- Zhao, Z.; Li, G.; Li, J.; Zhang, S.; Liu, Y.; Gao, F. Analyzing the Short-circuit Withstanding Ability of Large Power Transformer Based the FEM Method. High Volt. Eng. 2014, 40, 3214–3220. [Google Scholar]
- Bo, Z.; Yan, L.; Ning, Y. Calculation of Short-Circuit Strength of Windings in Power Transformer based on Strong Coupling. Transformer 2015, 52, 6–9. [Google Scholar]
- Dexu, Z.; Yigu, Q.; Guochao, Q. Axial Force Distribution Characteristics and Test Analysis of Transformer under Short-Circuit Condition. Transformer 2020, 57, 24–28. [Google Scholar]
- Wang, Y.; Zhou, G.; Zeng, C.; Zhang, W.; Ren, Y.; Ke, Y.; Chu, H.; Suo, C. Research on online detection method of transformer winding deformation based on VFTO. Sensors 2021, 21, 7386. [Google Scholar] [CrossRef] [PubMed]
- Fan, Z.; Cheng, M.; Xiuguang, L. Dynamic Assessment of Windings’ Axial Mechanical Strength in Power Transformers Considering the Vibration Response. Proc. CSEE 2022, 43, 1–11. [Google Scholar] [CrossRef]
- Jichao, C. Simulation Study on Strength of Winding and Supporting Structure of Power Transformer under Short Circuit Condition. Master’s Thesis, Shenyang University of Technology, Shenyang, China, 2022. [Google Scholar]
- Oria, C.; Carrascal, I.; Ferreño, D.; Méndez, C.; Ortiz, A. Experimental dataset on the compressive mechanical properties of high-density pressboard used in power transformers spacers. Data Brief 2023, 50, 109471. [Google Scholar] [CrossRef]
- Oria, C.; Méndez, C.; Carrascal, I.; Ferreño, D.; Ortiz, A. Degradation of the compression strength of spacers made of high-density pressboard used in power transformers under the influence of thermal ageing. Cellulose 2023, 30, 6539–6558. [Google Scholar] [CrossRef]
- Ou, Q.; Luo, L.; Li, Y.; Han, R.; Peng, Y. An Improved Radial Buckling Analysis Method and Test Investigation for Power Transformer under Short Circuit Impact. IEEE Trans. Power Deliv. 2023, 38, 2854–2863. [Google Scholar] [CrossRef]
- Ou, Q.; Luo, L.; Li, Y.; Li, Y.; Xiang, J. Buckling Strength Investigation for Power Transformer Winding Under Short Circuit Impact Considering Manufacture and Operation. IEEE Access 2023, 11, 7850–7859. [Google Scholar] [CrossRef]
- Kumar, I.; Bakshi, A. Effect of Flexibility of Axial Supporting Spacers on the Buckling Strength of Transformer Inner Winding. In Proceedings of the 2022 7th International Advanced Research Workshop on Transformers, Baiona, Spain, 23–26 October 2022; pp. 87–91. [Google Scholar]
- Kaiqi, L. Study on Calibration Models and Evaluation Technology for Short Circuit Withstand Ability of Power Transformer. Master’s Thesis, Nanjing University of Aeronautics and Astronautics, Nanjing, China, 2016. [Google Scholar]
- Lei, Y.; Richang, X.; Qingyu, R. Effect Analysis of Winding Structure on Short-Circuit Force of Distribution Transformer. Transformer 2020, 57, 28–32. [Google Scholar]
- Shenghan, S.; Xiaohua, L.; Fuyuan, C. Influence of Long-Term DC Magnetic Bias Operation on Cushion Offset and Anti-Short Circuit Ability of Transformer. Transformer 2021, 58, 24–29. [Google Scholar]
- GB/T 1094.5-2008; Power Transformers-Part 5: Ability to Withstand Short Circuit. China National Standards: Beijing, China, 2008.
- Wanchao, W. Research on Mechanical Strength and Stability of Transformer Windings under Multiple Short-circuit Conditions. Master’s Thesis, Shenyang University of Technology, Shenyang, China, 2017. [Google Scholar]
- Meng, T.; Li, Y.; Li, P.; Wang, X.; Hou, B.; Yu, Z. Research on distribution of winding leakage magnetic field of three-phase dry type transformer under short-circuit condition. Energy Rep. 2023, 9, 1108–1115. [Google Scholar] [CrossRef]
- Wang, S.; Wang, S.; Zhang, N.; Yuan, D.; Qiu, H. Calculation and Analysis of Mechanical Characteristics of Transformer Windings Under Short-Circuit Condition. IEEE Trans. Magn. 2019, 55, 8401804. [Google Scholar] [CrossRef]
- Li, Z.; Tan, Y.; Li, Y.; Yang, X.; Su, Z.; Liu, J.; Wang, S.; Wang, Y. Radial stability evaluation and cumulative test of transformer windingsunder short-circuit condition. Electr. Power Syst. Res. 2023, 217, 109112. [Google Scholar] [CrossRef]
- Li, Z.; Hao, Z.; Yan, C.; Wang, K.; Dang, Y.; Xu, H.; Zhang, B. Axial stability analysis and simulation of power transformer windings. In Proceedings of the 2016 IEEE PES Asia-Pacific Power and Energy Engineering Conference (APPEEC), Xi’an, China, 25–28 October 2016; pp. 1665–1669. [Google Scholar]
- Ren, F.; Ji, S.; Zhu, L. Experimental Research on Cumulative Deformation of Transformer Winding Induced by Short-Circuit Current Impacts. In Proceedings of the In 2019 21st International Symposium on High Voltage Engineering (ISH), Budapest, Hungary, 26–30 August 2019; pp. 625–634. [Google Scholar]
- Zhou, H.; Hong, K.; Huang, H.; Zhou, J. Transformer winding fault detection by vibration analysis methods. Appl. Acoust. 2016, 114, 136–146. [Google Scholar] [CrossRef]
- Wang, J.; Xing, Y.; Ma, X.; Zhao, Z.; Yang, L. Numerical Investigations for Vibration and Deformation of Power Transformer Windings under Short-Circuit Condition. Energies 2023, 16, 5318. [Google Scholar] [CrossRef]
- Lin, X.; Liu, J.; Wang, F.; Ai, W.; Li, Z.; Chen, S. Magnetic-Structural Coupled Simulation of Power Transformer Winding Cumulative Effect. In Proceedings of the 2022 IEEE 5th International Electrical and Energy Conference (CIEEC), Nangjing, China, 27–29 May 2022; pp. 2860–2865. [Google Scholar]
- YB/T 5349-2006; Test Methods for Mechanical Properties of Metal Bending. China National Standards: Beijing, China, 2006.
- Luo, L.; Wen, X.; Luo, X.; Qin, W. Research on Axial Stability of Power Transformer Windings. In Proceedings of the 2022 4th International Conference on Smart Power & Internet Energy Systems (SPIES), Beijing, China, 9–12 December 2022; pp. 356–360. [Google Scholar]
Parameter | Value |
---|---|
Low-Voltage Winding Inner Diameter/mm | 331 |
Low-Voltage Winding Outer Diameter/mm | 396 |
Medium-Voltage Winding Inner Diameter/mm | 435 |
Medium-Voltage Winding Outer Diameter/mm | 500 |
High-Voltage Winding Inner Diameter/mm | 547 |
High-Voltage Winding Outer Diameter/mm | 640.5 |
Low-Voltage Winding Turns | 107 |
Medium-Voltage Winding Turns | 226 |
High-Voltage Winding Turns | 647 |
Window Height/mm | 1670 |
Core Diameter/mm | 600 |
Physical Quantity | Young’s Modulus [MPa] | Density [g/cm3] | Poisson’s Ratio |
---|---|---|---|
Winding | 124,000 | 8.96 | 0.325 |
Cushion Block | 7600 | 1.3 | 0.34 |
Cushion Block Unbalanced Height [mm] | Flexural Modulus of Elasticity [MPa] |
---|---|
6 | 52.22 |
4 | 59.86 |
2 | 84.86 |
0 | 89.97 |
Offset Structure | Single-End Offset Bending Elastic Modulus [MPa] | Two-End Same-Direction Offset Bending Elastic Modulus [MPa] | Two-End Opposite-Direction Offset Bending Elastic Modulus [MPa] | |
---|---|---|---|---|
Offset Angle | ||||
30° | 53.76 | 46.29 | 33.64 | |
45° | 52.85 | 40.80 | 18.64 |
Cushion Block Unbalanced Height [mm] | Flexural Modulus of Elasticity [MPa] | Maximum Axial Bending Stress [MPa] |
---|---|---|
0 | 89.97 | 20.21 |
2 | 84.86 | 22.64 |
4 | 59.89 | 24.57 |
6 | 52.22 | 26.51 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2023 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Sun, L.; Gao, S.; Li, T.; Yao, J.; Wang, P.; Zhu, J. Research on the Influence of Compression and Offset of Cushion Blocks on the Axial Strength of Transformers. Appl. Sci. 2023, 13, 13289. https://doi.org/10.3390/app132413289
Sun L, Gao S, Li T, Yao J, Wang P, Zhu J. Research on the Influence of Compression and Offset of Cushion Blocks on the Axial Strength of Transformers. Applied Sciences. 2023; 13(24):13289. https://doi.org/10.3390/app132413289
Chicago/Turabian StyleSun, Lu, Shuguo Gao, Tianran Li, Jiaxin Yao, Ping Wang, and Jianhao Zhu. 2023. "Research on the Influence of Compression and Offset of Cushion Blocks on the Axial Strength of Transformers" Applied Sciences 13, no. 24: 13289. https://doi.org/10.3390/app132413289
APA StyleSun, L., Gao, S., Li, T., Yao, J., Wang, P., & Zhu, J. (2023). Research on the Influence of Compression and Offset of Cushion Blocks on the Axial Strength of Transformers. Applied Sciences, 13(24), 13289. https://doi.org/10.3390/app132413289