From Shinkansen to Spacecraft Propulsion: The Role of Superconductivity and Electromagnetism In Modern Engineering
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2025
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| _version_ | 1866902145690763264 |
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| author | Shenai, Tanush Nayan |
| author_facet | Shenai, Tanush Nayan |
| contents | <p>Superconductivity and electromagnetism are two groundbreaking technologies that are reshaping the future of<br>engineering across key sectors. Superconductivity, which enables the conduction of electricity without resistance at very low<br>temperatures, is driving breakthroughs in energy efficiency and magnetic field manipulation. When combined with<br>electromagnetic and magnetic levitation (maglev) technologies, it allows for the creation of frictionless and powerful systems<br>that push the boundaries of speed, efficiency, and sustainability. In transportation, maglev trains are facilitating unprecedented<br>high-speed travel, offering faster, quieter, and more environmentally friendly transportation. In aerospace, these technologies<br>are transforming spacecraft launches, enhancing propulsion and control. Additionally, in the defense sector, electromagnetic<br>technology powers railguns, electromagnetic aircraft launch systems (EMALS), and other advanced weapons, improving<br>defense and attack capabilities. This paper explores the specific technologies of superconductivity and electromagnetism,<br>examining their applications in transportation, aerospace, and military sectors. By highlighting recent advancements and<br>addressing ongoing challenges, it reveals the potential and feasibility of these technologies in shaping the future</p> |
| format | Recurso digital |
| id | zenodo_https___doi_org_10_5281_zenodo_15709797 |
| institution | Zenodo |
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| publishDate | 2025 |
| publisher | Zenodo |
| record_format | zenodo |
| spellingShingle | From Shinkansen to Spacecraft Propulsion: The Role of Superconductivity and Electromagnetism In Modern Engineering Shenai, Tanush Nayan uperconductivity, electromagnetism, maglev trains, aerospace propulsion, space exploration, ElectroMagnetic Aircraft Launch Systems (EMALS), electrodynamic tethers(EDT), high-speed transport, railguns. <p>Superconductivity and electromagnetism are two groundbreaking technologies that are reshaping the future of<br>engineering across key sectors. Superconductivity, which enables the conduction of electricity without resistance at very low<br>temperatures, is driving breakthroughs in energy efficiency and magnetic field manipulation. When combined with<br>electromagnetic and magnetic levitation (maglev) technologies, it allows for the creation of frictionless and powerful systems<br>that push the boundaries of speed, efficiency, and sustainability. In transportation, maglev trains are facilitating unprecedented<br>high-speed travel, offering faster, quieter, and more environmentally friendly transportation. In aerospace, these technologies<br>are transforming spacecraft launches, enhancing propulsion and control. Additionally, in the defense sector, electromagnetic<br>technology powers railguns, electromagnetic aircraft launch systems (EMALS), and other advanced weapons, improving<br>defense and attack capabilities. This paper explores the specific technologies of superconductivity and electromagnetism,<br>examining their applications in transportation, aerospace, and military sectors. By highlighting recent advancements and<br>addressing ongoing challenges, it reveals the potential and feasibility of these technologies in shaping the future</p> |
| title | From Shinkansen to Spacecraft Propulsion: The Role of Superconductivity and Electromagnetism In Modern Engineering |
| topic | uperconductivity, electromagnetism, maglev trains, aerospace propulsion, space exploration, ElectroMagnetic Aircraft Launch Systems (EMALS), electrodynamic tethers(EDT), high-speed transport, railguns. |
| url | https://doi.org/10.5281/zenodo.15709797 |