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Frontiers of Mechanical Engineering

ISSN 2095-0233

ISSN 2095-0241(Online)

CN 11-5984/TH

邮发代号 80-975

2019 Impact Factor: 2.448

Frontiers of Mechanical Engineering  2016, Vol. 11 Issue (4): 351-362   https://doi.org/10.1007/s11465-016-0407-9
  本期目录
Design and analysis of linear oscillating motor for linear pump application-magnetic field, dynamics and thermotics
Zongxia JIAO1,Tianyi WANG1,Liang YAN2()
1. School of Automation Science and Electrical Engineering, Beihang University, Beijing 100191, China
2. School of Automation Science and Electrical Engineering, Beihang University, Beijing 100191, China; Shenzhen Research Institute of Beihang University, Shenzhen 518057, China
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Abstract

A linear oscillating motor is an electromagnetic actuator that can achieve short-stroke reciprocating movement directly without auxiliary transmission mechanisms. It has been widely used in linear pump applications as the source of power and motion. However, because of the demand of high power density in a linear actuation system, the performance of linear oscillating motors has been the focus of studies and deserves further research for high power density. In this paper, a general framework of linear oscillating motor design and optimization is addressed in detail, including the electromagnetic, dynamics, and thermal aspects. First, the electromagnetic and dynamics characteristics are modeled to reveal the principle for optimization. Then, optimization and analysis on magnetic structure, resonant system, and thermal features are conducted, which provide the foundation for prototype development. Finally, experimental results are provided for validation. As a whole, this process offers complete guidance for high power density linear oscillating motors in linear pump applications.

Key wordslinear oscillating motor    linear pump    magnetic field    motor optimization
收稿日期: 2016-07-15      出版日期: 2016-11-29
Corresponding Author(s): Liang YAN   
 引用本文:   
. [J]. Frontiers of Mechanical Engineering, 2016, 11(4): 351-362.
Zongxia JIAO,Tianyi WANG,Liang YAN. Design and analysis of linear oscillating motor for linear pump application-magnetic field, dynamics and thermotics. Front. Mech. Eng., 2016, 11(4): 351-362.
 链接本文:  
https://academic.hep.com.cn/fme/CN/10.1007/s11465-016-0407-9
https://academic.hep.com.cn/fme/CN/Y2016/V11/I4/351
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Parameter Value
Mover diameter/mm 18
Back-iron thickness/mm 4
Magnet thickness/mm 4
Radial magnet length/mm 16
Coil width/mm 12
Yoke thickness/mm 6
Slot width/mm 0.5
Teeth angle/(° ) 25
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Length/mm Diameter/mm Mover mass/kg Spring stiffness/(N·mm-1) Force constant/(N·A-1) Stroke/mm
220 96 1.15 17.84 62 ±5
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1 Mendrela E A. Comparison of the performance of a linear reluctance oscillating motor operating under AC supply with one under DC supply. IEEE Transactions on Energy Conversion, 1999, 14(3): 328–332
https://doi.org/10.1109/60.790878
2 Liang H, Jiao Z, Yan L, . Design and analysis of a tubular linear oscillating motor for directly-driven EHA pump. Sensors and Actuators A: Physical, 2014, 210: 107–118
https://doi.org/10.1016/j.sna.2014.01.026
3 Lee H K, Song G Y, Park J S, . Development of the linear compressor for a household refrigerator. In: Proceedings of International Compressor Engineering Conference. West Lafayette, 2000, 31–38
4 Urmoniene L, Gecys S, Guseinoviene E, . Investigation of energetic parameters of oscillating synchronous pulsating current motors. Elektronika ir Elektrotechnika, 2011, 110(4): 17–20
https://doi.org/10.5755/j01.eee.110.4.278
5 Tomczuk B, Sobol M. A field-network model of a linear oscillating motor and its dynamics characteristics. IEEE Transactions on Magnetics, 2005, 41(8): 2362–2367
https://doi.org/10.1109/TMAG.2005.852941
6 Bradshaw T W, Delderfield J, Werrett S T, . Performance of the Oxford Miniature Stirling Cycle Refrigerator. New York: Springer, 1986, 801–809
7 Huang B J, Chen Y C. System dynamics and control of a linear compressor for stroke and frequency adjustment. Journal of Dynamic Systems, Measurement, and Control, 2002, 124(1): 176–182
https://doi.org/10.1115/1.1433802
8 Yan L, Zhang L, Wang T, . Magnetic field of tubular linear machines with dual Halbach array. Progress in Electromagnetics Research, 2013, 136: 283–299
https://doi.org/10.2528/PIER12110302
9 Clark R E, Smith D S, Mellor P H, . Design optimization of moving-magnet actuators for reciprocating electro-mechanical systems. IEEE Transactions on Magnetics, 1995, 31(6): 3746–3748
https://doi.org/10.1109/20.489758
10 Pompermaier C, Kalluf K, Zambonetti A, . Small linear PM oscillatory motor: magnetic circuit modeling corrected by axisymmetric 2-D FEM and experimental characterization. IEEE Transactions on Industrial Electronics, 2012, 59(3): 1389–1396
https://doi.org/10.1109/TIE.2011.2161650
11 Al-Otaibi Z S, Jack A G. On the design of oscillating linear single phase permanent magnet motors. In: Proceedings of the 41st International Universities Power Engineering Conference. 2006, 2: 705–708
https://doi.org/10.1109/UPEC.2006.367570
12 Wang J, Howe D. Analysis of axially magnetized, iron-cored, tubular permanent magnet machines. IEE Proceedings—Electric Power Applications, 2004, 151(2): 144–150
https://doi.org/10.1049/ip-epa:20040026
13 Ummaneni R B, Nilssen R, Brennvall J E. Force analysis in design of high power linear permanent magnet actuator with gas springs in drilling applications. In: Proceedings of IEEE International Electric Machines & Drives Conference. 2007, 285–288
https://doi.org/10.1109/IEMDC.2007.382680
14 Yan L, Peng J, Jiao Z, . Flux field and thrust analysis of permanent-magnet linear machines with isolated movers. IEEE Transactions on Magnetics, 2015, 51(8): 8203208
https://doi.org/10.1109/TMAG.2015.2414909
15 Wang J, Howe D, Lin Z. Design optimization of short-stroke single-phase tubular permanent-magnet motor for refrigeration applications. IEEE Transactions on Industrial Electronics, 2010, 57(1): 327–334
https://doi.org/10.1109/TIE.2009.2025710
16 Zhu Z Q, Chen X. Analysis of an E-core interior permanent magnet linear oscillating actuator. IEEE Transactions on Magnetics, 2008, 44(11): 4361–4364
17 Lu Q, Yu M, Ye Y, . Thrust force of novel PM transverse flux linear oscillating actuators with moving magnet. IEEE Transactions on Magnetics, 2011, 47(10): 4211–4214
https://doi.org/10.1109/TMAG.2011.2157991
18 Thangavel G, Chatterjee D, Ganguli A K. FEA simulation models based development and control of an axial flux PMLOM. Journal of Modeling and Simulation of Systems, 2010, 1(1): 74–80
19 Wang J, Jewell G W, Howe D. A general framework for the analysis and design of tubular linear permanent magnet machine. IEEE Transactions on Magnetics, 1999, 35(3): 1986–2000
https://doi.org/10.1109/20.764898
20 Chen X, Zhu Z Q, Howe D. Modeling and analysis of a tubular oscillating permanent-magnet actuator. IEEE Transactions on Industrial Electronics, 2009, 45(6): 1961–1970
21 Lin Z, Wang J, Howe D. A resonant frequency tracking technique for linear vapor compressors. In: Proceedings of IEEE International Electric Machines & Drives Conference, 2007, 370–375
https://doi.org/10.1109/IEMDC.2007.382695
22 He P, Jiao Z, Yan L, . Thermal optimization of tubular linear oscillating motor for directly driven LEHA application. Numer Heat Transf A-Appl, 2016, 69(4): 383–400
https://doi.org/10.1080/10407782.2015.1080959
23 Wang T, Yan L, Jiao Z, . Analytical modeling of linear oscillating motor with a mixed method considering saturation effect. Sensors and Actuators. A, Physical, 2015, 234: 375–383
https://doi.org/10.1016/j.sna.2015.09.014
24 Wang T, Yan L, Jiao Z. Design of novel integrated position sensor based on Hall effects for linear oscillating actuator. Review of Scientific Instruments, 2015, 86(7): 075001
https://doi.org/10.1063/1.4923330
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