吉林大学学报(工学版) ›› 2013, Vol. 43 ›› Issue (05): 1284-1289.doi: 10.7964/jdxbgxb201305022

• paper • Previous Articles     Next Articles

Finite element simulation and experiment of magneto-rheological torque servo device

LI Guo-fa, HAN Ming-zuo, SHAN Cui-yun, LIU Jia   

  1. College of Mechanical Science and Engineering, Jilin University, Changchun 130022, China
  • Received:2012-05-29 Online:2013-09-01 Published:2013-09-01

Abstract:

The rheological and phase transitional dual characteristics of magnetorheological fluid were studied and its rheological principle was also described. Using ANSYS finite element method, simulation analysis of the torque transmission model was conducted. Choosing magnetorheological fluid SG-MRF2035, a magnetorheological torque servo device prototype (gap of 1.5 mm) was developed. A performance testing platform was built to characterize the torque output of the prototype. The testing results show that the device can provide flexible output torque and the torque is continuously adjustable. This study provides a new way for the wide application of magnetorheological fluid.

Key words: turn and control of fluid, magnetorheological fluid, magnetorheological effect, torque transmission, finite element simulation

CLC Number: 

  • TH139

[1] 汪建晓,孟光. 磁流变液研究进展[J]. 航空学报,2003,23(1):6-12. Wang Jian-xiao,Meng Guang. Research advances in magneteorheological fluids[J].Acta Aeronautica Astronautica Sinica,2003,23(1):6-12.

[2] 周云,谭平.磁流变阻尼控制理论与技术[M].北京:科学出版社,2007:7-68.

[3] 王立忠,李云瑞,王峰. 磁流变体研究状况及进展[J].航空制造工程,1997(7):9-11. Wang Li-zhong, Li Yun-rui, Wang Feng. Research conditions and progress of magneto-rheological fluids[J].Aviation Production Engineering,1997(7):9-11.

[4] Ginder J M, Davis L C, Elie L D. Rheology of magnetorheological fluids:models and measurements[C]//Proc of the 5th Int Conf on ER Fluids. MR Singapore: World Scientific, 1996.

[5] Ginder J M, Davis L C. Shear stresses in magneto-rheological fluids: role of magnetic saturation[J].Applied Physics Letters, 1994, 65(26):3410-3412.

[6] Phule P P, Ginder J M. Suspensions and their application[C]//Proc 26 of the 6th Int Conf on ER Fluids MR. Singapore: World Scientific, 1998.

[7] Kordonski W I, Demchuk S A. Additional magnetic dispersed phase improves the MR-fluid properties[C]//Proc of the 5th Int Conf on ER Fluids. MR Singapore: World Scientific, 1996.

[8] Kordonski W I, Gorodkin S R, Novikova Z A. MR suspensions and their applications//Proc of the 6th Int Conf on ER Fluids. Singapore:World Scientific, 1998.

[9] Shulman Z P. Structure, physical properties and dynamics of magneto-rheological suspensions[J]. International Journal of Multiphase Flow,1998, 12(6):9-12.

[10] 关新春.磁流变液及其智能结构减振驱动器的理论与试验研究[D].哈尔滨:哈尔滨工业大学机电工程学院,2000. Guan Xin-chun. Theoretical and experimental study of magneto-rheological fluid and its intelligent structure vibration drive[D].Harbin: School of Mechanical and Electrical Engineering, Harbin Institute of Technology, 2000.

[11] 潘胜,吴建耀,胡林,等.磁流变液的屈服应力与温度效应[J]. 功能材料,1997, 26(3):264-267. Pan Sheng, Wu Jian-yao, Hu Lin, et al. Yeild stress and temperature effect of Magneto-rheological fluids[J].Journal of Materials Engineering, 1997, 26 (3): 264-267.

[12] 王代华,黄尚廉. 采用磁流变(MR)阻尼器控制斜拉索振动[J]. 机械科学与技术,1998,17(增刊):16-18. Wang Dai-hua, Huang Shang-lian.Control of cable vibration using magneto-rheological(MR) dampe[J]. Mechanical Science and Technology, 1998, 17 (Sup.):16-18.

[13] 胡勇.汽车发动机磁流变悬置动特性仿真研究[D].重庆:重庆大学机械工程学院,2011. Hu Yong. Research on automotive engine magneto-rheological suspension dynamic characteristic simulation[D].Chongqing: School of Mechanical Engineering, Chongqin University, 2011.

[14] 叶文娟. 磁流变液控智能传动机理与设计研究[D]. 南京:南京理工大学机械工程学院,2009. Ye Wen-juan. Magnetorheological fluid intelligent transmission mechanism and design research[D].Nanjing: College of Mechanical Engineering, Nanjing University of Science and Technology,2009.

[15] 潘存治,申玉良.磁流变液风扇离合器的设计与研究[J]. 汽车工程,2005,27(2):6-8. Pan Cun-zhi, Shen Yu-liang. The design and research of Magneto rheological fluid fan clutch[J].Automotive Engnieering,2005,27(2):6-8.

[1] WANG Jia-yi, LIU Xin-hui, WANG Xin, QI Hai-bo, SUN Xiao-yu, WANG Li. Mechanism and inhibition for displacement shifting impact on digital secondary component [J]. 吉林大学学报(工学版), 2017, 47(6): 1775-1781.
[2] WANG Li, LIU Xin-hui, WANG Xin, CHEN Jin-shi, LIANG Yi-jie. Shifting strategy of digital hydraulic transmission system for wheel loader [J]. 吉林大学学报(工学版), 2017, 47(3): 819-826.
[3] LI Shen-long, LIU Shu-cheng, XING Qing-kun, ZHANG Jing, LAI Yu-yang. Clutch friction pair motion effect caused by oil flow based on LBM-LES [J]. 吉林大学学报(工学版), 2017, 47(2): 490-497.
[4] ZHANG Min, LI Song-jing, CAI Shen. Microfluidic liquid color-changing glasses controlled by valveless piezoelectric micro-pump [J]. 吉林大学学报(工学版), 2017, 47(2): 498-503.
[5] GU Shou-dong, LIU Jian-fang, YANG Zhi-gang, JIAO Xiao-yang, JIANG Hai, LU Song. Characteristics of solder paste jetting valve driven by piezostack [J]. 吉林大学学报(工学版), 2017, 47(2): 510-517.
[6] YANG Hua-yong, WANG Shuang, ZHANG Bin, HONG Hao-cen, ZHONG Qi. Development and prospect of digital hydraulic valve and valve control system [J]. 吉林大学学报(工学版), 2016, 46(5): 1494-1505.
[7] YUAN Zhe, XU Dong, LIU Chun-bao, LI Xue-song, LI Shi-chao. Strength analysis of hydraulic retarder blade based on the process of thermal-fluid structure interaction [J]. 吉林大学学报(工学版), 2016, 46(5): 1506-1512.
[8] SHEN Wei, ZHANG Di-jia, SUN Yi, JIANG Ji-hai. Control design of the swash plate angle for hydraulic pump/motor based on FSMI method [J]. 吉林大学学报(工学版), 2016, 46(5): 1513-1519.
[9] ZHAO Cun-ran, LIU Wei, JIANG Ji-hai, SHAO Hui, TIAN Yong. Accelerated model of swash-plate axial piston pump [J]. 吉林大学学报(工学版), 2016, 46(4): 1124-1129.
[10] ZHANG Qin-guo, QIN Si-cheng, MA Run-da, YANG Li-guang, XI Yuan, LIU Jin-qiao. Hydraulic system thermal characteristics of loader working device [J]. 吉林大学学报(工学版), 2016, 46(3): 811-817.
[11] CHEN Jin-shi, WANG Guo-qiang, GONG Xun, WANG Xin, WANG Li, DU Yang. Characteristics of cartridge one-way relief valve [J]. 吉林大学学报(工学版), 2016, 46(2): 465-470.
[12] ZHOU Jie, LUO Yan, WANG Xun, WANG Hui, LI Yang, TAO Ya-ping. Multi-objective optimization of stamping forming process of head based on response surface model [J]. 吉林大学学报(工学版), 2016, 46(1): 205-212.
[13] ZHANG Qin-guo, QIN Si-cheng, MA Run-da, LIU Yu-fei, XI Yuan. Match and simulation analysis of hydraulic system radiator of wheel loader [J]. 吉林大学学报(工学版), 2015, 45(4): 1124-1129.
[14] WEN De-sheng, LIU Qiao-yan, LIU Zhong-xun, GAO Jun-feng, ZHOU Rui-bin, LYU Jian-sen. Principle and experiment validation of roller tip-vanetype double-stator multi-speed motor [J]. 吉林大学学报(工学版), 2015, 45(4): 1130-1138.
[15] CHENG Qiang, ZHANG Zhen-dong, GUO Hui, XIE Nai-liu. Electro-magnetic-thermal coupling of GDI injector [J]. 吉林大学学报(工学版), 2015, 45(3): 806-813.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!