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International Journal of Science, Strategic Management and Technology

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ISSN: 3108-1762 (Online)
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SUPERCONDUCTING META MATERIALS FOR NEXT-GENERATION MAGNETIC LEVITATION TRANSPORT WITH ULTRA-LOW RESISTANCE PATHWAYS

AUTHORS:
Kuppala swapna
Mentor
Affiliation
Researc Scholor,Department:H&S Siddhartha institution of technology & sciences,Narapally cross ,Korremula road
CC BY 4.0 License:
This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
Abstract

A revolutionary development in the field of low-friction, high-speed transportation is the magnetic levitation (Maglev) technology. Electrodynamic and electromagnetic suspension methods used by older maglev systems still suffer from stability issues and energy losses. One possible answer might be the use of superconducting metamaterials, which combine the tailored electromagnetic characteristics of metamaterials with the zero electrical resistance of superconductors. Levitation efficiency and system stability are both enhanced by the materials' capacity to offer ultra-low loss magnetic channels and precise control of the magnetic field. Thanks to the Meissner effect and flux pinning phenomena seen in superconductors, which drastically decrease friction and wear, stable levitation independent of mechanical support is now within reach. It is possible that metamaterial structures might enhance field dispersion and levitation force by manipulating magnetic fields. With the use of superconducting metamaterial structures, this research intends to foretell and analyze the functionality of future maglev transit systems. In comparison to conventional magnetic levitation methods, this one performed better in terms of stability, energy loss reduction, and levitation height. The suggested method may provide the groundwork for a low-power, maintenance-intensive, high-speed transportation system.

Keywords
Superconducting Metamaterials Magnetic Levitation (Maglev) Transport High-Temperature Superconductors (HTS)Ultra-Low Resistance Pathways Meissner EffectFlux Pinning
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swapna, K. (2026). Superconducting Meta Materials for Next-Generation Magnetic Levitation Transport with Ultra-Low Resistance Pathways. International Journal of Science, Strategic Management and Technology, 02(03). https://doi.org/10.55041/ijsmt.v2i3.105

swapna, Kuppala. "Superconducting Meta Materials for Next-Generation Magnetic Levitation Transport with Ultra-Low Resistance Pathways." International Journal of Science, Strategic Management and Technology, vol. 02, no. 03, 2026, pp. . doi:https://doi.org/10.55041/ijsmt.v2i3.105.

swapna, Kuppala. "Superconducting Meta Materials for Next-Generation Magnetic Levitation Transport with Ultra-Low Resistance Pathways." International Journal of Science, Strategic Management and Technology 02, no. 03 (2026). https://doi.org/https://doi.org/10.55041/ijsmt.v2i3.105.

References
1.Hu, M., Zhang, L., Tao, R., & Wang, P. (2025). Electromechanical Characteristics Analysis of Magnetic Shield on Superconducting Magnetic Levitation Train. Micromachines, 16(11), 1248.

2.Lei, W., Deng, Z., & Zheng, J. (2024). Levitation performance evolution of high-temperature superconducting maglev vehicle under electromagnetism-heat-force strong coupling. International Journal of Rail Transportation, 12(6), 1156-1180.

3.Stephan, R. M., & Deng, Z. (2023). Past, present and future of superconducting magnetic levitation. Modern Transportation Systems and Technologies, 9(1), 5-19.

4.Huang, H., Li, H., Coombs, T., Zhu, H., Sun, Y., Lin, G., & Xu, J. (2024). Advancements in dynamic characteristics analysis of superconducting electrodynamic suspension systems. Superconductivity Journal, Elsevier.

5.Danisi, A., & Zannini, C. (2023). Electromagnetic metamaterials to approach superconductive-like electrical conductivity. Scientific Reports, 13, 3236.

6.Pang, P., Zheng, J., & Xian, C. (2025). Determination and evaluation of liquid nitrogen conditions for superconducting levitators. arXiv Preprint.

7.Xu, Q., Lin, Y., Tan, Y., & Geng, J. (2024). Tunable superconducting magnetic levitation with self-stability. arXiv Preprint.

8.Wang, X., Lin, Y., Li, J., Liu, W., & Li, H. (2022). Chiral SQUID-metamaterial waveguide for circuit quantum electrodynamics. arXiv Preprint.

9.Koblischka, M. R., & Koblischka-Veneva, A. (2022). Developments in superconductivity and emerging superconducting materials. Metals, 12(4), 568.

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This article has undergone plagiarism screening and double-blind peer review. Editorial policies have been followed. Authors retain copyright under CC BY-NC 4.0 license. The research complies with ethical standards and institutional guidelines.
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