| Electromechanical coupling and intelligentization of maglev technologies in green transportation and energy fields 绿色交通与能源领域中磁悬浮机电耦合与智能化 |
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| Submission Deadline: September 30, 2026 |
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| Chairs: | |||
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| Jun Zheng Southwest Jiaotong University, China |
Wei Liu Chengdu University of Technology, China |
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| Co-chairs: | |||
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| Peng Pang Southwest Jiaotong University, China |
Yirong Tang Institute of Electrical Engineering, Chinese Academy of Sciences, China |
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| Keywords: | |||
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· Magnetic levitation (磁悬浮) |
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| Topics: | |||
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· Multiphysics coupling modeling and performance analysis of maglev transportation (磁悬浮交通的多物理场耦合建模与性能分析) |
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| Summary: | |||
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Maglev technologies are becoming increasingly important in green transportation and energy fields for their contactless operation, high efficiency, and low maintenance. Advanced maglev systems, such as high-temperature superconducting (HTS) maglev, magnetic bearings, flywheel energy storage systems, and linear motor technologies, are expanding their applications in high-speed transportation, renewable energy, industrial equipment, and advanced manufacturing. To further improve the performance and reliability of these systems, researchers are faced with new challenges, such as: electromechanical coupling effects becoming increasingly significant under complex operating conditions; dynamic behavior and stability requiring accurate analysis and control; condition monitoring and fault diagnosis remaining difficult in harsh environments (including high-speed, cryogenic, and vacuum conditions); and intelligent maintenance demanding more reliable sensing and decision-making technologies.
磁浮技术因其非接触式运行、高效率和低维护特点,在绿色交通和能源领域变得越来越重要。先进的磁悬浮系统,如高温超导磁悬浮、磁轴承、飞轮储能系统和直线电机技术,正在扩大其在高速交通、可再生能源、工业设备和先进制造业中的应用。为了进一步提高这些系统的性能和可靠性,研究人员面临着新的挑战,例如:在复杂的运行条件下,机电耦合效应变得越来越显著;需要精确分析和控制的动态行为和稳定性;在恶劣环境(包括高速、低温和真空条件)下,状态监测和故障诊断仍然很困难;智能维护需要更可靠的传感和决策技术。 |
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