Advanced numerical analysis for vibration characteristics and ride comfort of ultra-high-speed maglev train

被引:16
作者
Ha, Hue [1 ]
Park, Jungwan [2 ]
Park, Kyoung-Su [1 ]
机构
[1] Gachon Univ, Dept Mech Engn, 1342 Seongnamdaero, Seongnam Si 461701, Gyeonggi Do, South Korea
[2] Hyundai Motor, 150 Hyundaiyeonguso Ro, Hwaseong Si, Gyeonggi Do, South Korea
来源
MICROSYSTEM TECHNOLOGIES-MICRO-AND NANOSYSTEMS-INFORMATION STORAGE AND PROCESSING SYSTEMS | 2020年 / 26卷 / 01期
关键词
SYSTEM;
D O I
10.1007/s00542-019-04540-x
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Magnetic levitation (maglev) trains are environmentally-friendly, require little maintenance, and allow for mass transportation. For these reasons, the demand for ultra-high-speed maglev trains has been increasing. Maglev trains can be classified with two suspension types, electro dynamic suspension (EDS) and electromagnetic suspension (EMS). EDS-type trains are suitable for ultra-high-speed because levitation suspension gap is over 100 mm compared with levitation suspension gap of 10 mm for EMS. When speed goes faster, it is hard to control the small suspension gap rapidly in EMS type. To analyze the EDS-type maglev train, electromagnetic forces were calculated with the superconducting coils and magnets using 2D analytical model. Based on the calculated forces, the lookup tables for the levitation and guidance force were employed in the total couple-fielded analysis. Ultra-high-speed maglev train was simulated by using the ADAMS multi-body dynamic program. The simulation was carried out with two car body models, rigid and flexible car body. In order to construct flexible car bodies with the modal information, the finite element method was used and they were constructed with the equivalent elements using ANSYS (TM). The final framework was constructed in MATLAB Simulink, and we co-simulated the dynamics and the electromagnetics with the constructed simulation frame work. To consider disturbances caused by irregularities, random and power spectral density (PSD) were used to analyze the vibrational interaction. As results, the ride comforts for PSD were a little bit worse than the results for random irregularity because the characteristics of PSD irregularity have more low excitation frequencies. The use of PSD inputs and flexible car body models need to be considered to improve the simulation accuracy.
引用
收藏
页码:183 / 193
页数:11
相关论文
共 29 条
[1]   Comprehensive Study and Review on Maglev Train System [J].
Ahmed, Raheel ;
Jun, Yulin ;
Azhar, Muhammad Fawad ;
Junejo, Naveed Ur Rehman .
AUTOMATIC CONTROL AND MECHATRONIC ENGINEERING III, 2014, 615 :347-+
[2]   The development of a numerical model for railway vehicles comfort assessment through comparison with experimental measurements [J].
Diana, G ;
Cheli, F ;
Collina, A ;
Corradi, R ;
Melzi, S .
VEHICLE SYSTEM DYNAMICS, 2002, 38 (03) :165-183
[3]  
Early R, 2002, 17 INT C MAGN LEV SY
[4]   An advanced arrangement of the combined Propulsion, Levitation and Guidance system of superconducting Maglev [J].
Fujie, J .
IEEE TRANSACTIONS ON MAGNETICS, 1999, 35 (05) :4049-4051
[5]  
Fujimoto T., 2000, Quarterly Report of RTRI, V41, P63, DOI 10.2219/rtriqr.41.63
[6]  
Guangwei S, 2007, SONDERDRUCK SCHRIFTE, V39, P11
[7]   Examination of vehicle motion characteristics of a Maglev train set using a reduced-scale model experiment apparatus [J].
Hoshino, Hironori ;
Suzuki, Erimitsu ;
Yonezu, Takenori ;
Watanabe, Ken .
Quarterly Report of RTRI (Railway Technical Research Institute) (Japan), 2012, 53 (01) :52-58
[8]  
Hoshino Hironori, 2008, Quarterly Report of RTRI, V49, P113, DOI 10.2219/rtriqr.49.113
[9]  
Kim D, 2018, P MAGL 2018 C
[10]  
Kim IK, 2002, MAGL 2002 C LUS SWIT