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Recent Patents on Mechanical Engineering

Editor-in-Chief

ISSN (Print): 2212-7976
ISSN (Online): 1874-477X

Review Article

Recent Patents on the Structure of High-Speed Motorized Spindle

Author(s): Ye Dai*, Wen-Qiang Wei, Xue-Liang Zhang and Yun-Shan Qi

Volume 12, Issue 2, 2019

Page: [125 - 137] Pages: 13

DOI: 10.2174/2212797612666190319154640

Price: $65

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Abstract

Background: As one of the core components of high-speed CNC machine tool, high-speed motorized spindle is the core functional component of high precision CNC machine tool, which has become the key research and development object of the world.

Objective: By comparing and discussing the patents of high-speed motorized spindle, some valuable conclusions have been drawn to predict the future research and development of high-speed motorized spindle.

Methods: By analyzing the characteristics of high-speed motorized spindle structure, the influence of high-speed motorized spindle on high-speed machining technology was explicated. Combining with the key technology of high-speed motorized spindle, the patents related to high-speed motorized spindle structure were used for investigation.

Results: With the rapid development of high-speed cutting and numerical control technology and the need of practical application, the requirement for high-speed spindle performance has increased. Motorized spindle technology has the characteristics of high speed, high strength, high power, high torque and low speed, high precision, high reliability and long life, offering diversified bearing and lubrication cooling methods and serving as an intelligent system.

Conclusion: The different levels of improvement and renovation of the structure with high-speed motorized spindle, by adding lubrication and cooling device to the spindle have improve the performance of spindle, addressing the loopholes in the technology and making it more practical.

Keywords: CNC machine, high precision, high-speed motorized spindle, modern manufacturing industry, patent, structure.

[1]
Fan HW, Zhi JJ, Shi BJ, Jing MQ, Liu H, Zhang XH. Rotor adaptive active balancing algorithm and electromagnetic balance head single disk balance test. J Xi’an Jiaotong Univ 2018; 52(8): 15-21.
[2]
Huang WD, Gan CB, Yang SX. Dynamics modeling and vibration response analysis of a class of high-speed motorized spindles. J Zhejiang Univ (Eng Sci) 2016; 50(11): 2198-206.
[3]
Xu HQ. Design and simulation analysis of main shaft structure of machining center. MSc Dissertation, Nanjing University of Science and Technology, Nanjing, China, May 2008.
[4]
Sun T, Qin LF. Structural design of main shaft bearing. J Mech Eng 2008; 6: 6-7.
[5]
Yan ZY. Electromechanical coupling analysis of direct drive oscillating system in milling and turning machining center. MSc Dissertation, Lanzhou University of Technology, Lanzhou, China, April 2012.
[6]
Shan WT, Chen XA. Research on dynamic characteristics of high-speed motorized spindle system considering the influence of tools. Chin J Sci Inst 2017; 38(12): 3121-8.
[7]
Chen YQ, Li K, Ren M, Zheng ZZ, Li GH, Fang ZW. Design of spindle accessory of CNC grinding machine for cutting tool. J Guangdong Inst Petro Technol 2017; 27(3): 50-3.
[8]
Cao JJ, Du QG, Wu ZH, Liang YZ, Lei Q. Research on vibration control technology of high-speed motorized spindle. Mech Elec Eng Technol 2016; 45(8): 112-4.
[9]
Yun L. Research on sensorless direct torque control system for ultra-high-speed permanent magnet synchronous motorized spindle. MSc Dissertation, Xidian University, Xi’an, China, February 2012.
[10]
Wang BM, Mei XS, Wu ZX, Zhu F. Dynamic modeling for thermal error in motorized spindles. Int J Adv Manuf Technol 2015; 78(5): 1141-6.
[11]
Du ZC, Yao SY, Yang JG. Thermal behavior analysis and thermal error compensation for motorized spindle of machine tools. Int J Precision Eng Manuf 2015; 16(7): 1571-81.
[12]
Liu YL, Wang DF, Dong L, Zhang JH. Optimization design of high-speed milling motorized spindle bearings based on RomaxCLOUD. J Bearing 2018; 1: 7-10.
[13]
Wang LP, Zhao QZ, Zhang BB. Comprehensive precision analysis of high-speed motorized spindle in machining center. J Tsinghua Univ (Nat Sci) 2018; 58(8): 746-51.
[14]
Luo J, Chen YF, Zhang GB, Li YL, Wang ZC. Reliability optimization and analysis of high-speed motorized spindle. J Mod Manuf Eng 2018; 7: 93-8.
[15]
Cao M, Chang XZ. Analysis of dynamic characteristics of high-speed motorized spindle. Forestry Mach Woodwork Equip 2018; 46(7): 30-3.
[16]
Lee J, Kim DH, Lee CM. A study on the thermal characteristics and experiments of high-speed spindle for machine tools. Int J Precision Eng Manuf 2015; 16(2): 293-9.
[17]
Wang HJ, Gu YH, Wang M, Zhao C. State recognition model of multi - source information fusion for high-end CNC equipment. Chin J Sci Inst 2018; 39(4): 61-6.
[18]
Chen XA, Liu JF, He Y, Zhang P, Shan WT. Thermal properties of high-speed motorized spindle and their effects. Chin J Mech Eng 2013; 49(11): 135-42.
[19]
Tang XQ, Shan J. A kind of motorized spindle. CN4439299 (2014).
[20]
Zhou ZY, Guang XH. A kind of intelligent motorized spindle. CN105537629 (2016).
[21]
Zhou BN, Zhou Y, Sun CX, Wang QH, Wang CC, Chen F. An inverted turnery motorized spindle. CN107812963 (2017).
[22]
Zhou WQ, Xiao YR, Luo JW, et al. A motorized spindle of a CNC machine tool. CN107900383 (2017).
[23]
Zhu KX. High-speed motorized spindle structure of machine tool. CN102717333 (2012).
[24]
You XH, Zhang Y, Li WL, Dong T, Zhou LL. A high-speed motorized spindle device. CN02974845 (2013).
[25]
Xu H, Xia P, Chen XL. High-speed motorized spindle devices using ultra-precision angular contact ball and cylindrical roller bearings. CN105458306 (2016).
[26]
Zhang J, Yi LS, Wang XJ, et al. A high-speed motorized spindle with composite bearing. CN106112022 (2016).
[27]
Jin QX, Zhang C, Chen JH, et al. A high speed motorized spindle. CN103934480 (2014).
[28]
Li SS, Dong ML, Lu YX, Shao J, Yu F. A kind of highspeed motorized spindle with outer rotor structure. CN102909396 (2013).
[29]
Wang J, Tang HY, Liu JB, Liu W. A ceramic metal composite structure high-speed spindle. CN205128941 (2016).
[30]
Jiang SY, Xu CD. A super-fast air bearing motorized spindle. CN103286679 (2013).
[31]
Zhang LZ. Oil-mist-free and high-speed electric spindle. EP2818741 (2014).
[32]
Wang T. Study on dynamic characteristics analysis and simulation optimization of high-speed micro-cutting system. MSc Dissertation, Changchun University of Science and Technology, Changchun, China, March 2016.
[33]
Huang D, Zhang HW, Guo WK, Wu ZH, Lei Q. Numerical simulation of air friction loss on high-speed motorized spindle. Mech Elec Eng Technol 2016; 45(7): 35-9.
[34]
Xia WL. Intelligent prediction and experimental study of temperature rise of electric spindle. MSc Dissertation, Shenyang Jianzhu University, Shenyang, China, November 2015.
[35]
Gu N. Design and dynamic and static performance analysis of high-speed electric spindle for turning. MSc Dissertation, Beijing University of Posts and Telecommunications, Beijing, China, March 2016.
[36]
Yu JY. Dynamic and static characteristics of high-speed electric spindle and experimental study. MSc Dissertation, Xi'an University of Technology, Xi’an, China, June 2016.
[37]
Chen YF. Reliability evaluation of CNC grinding machine and optimization design of spindle components. MSc Dissertation, Chongqing University of Technology, Chongqing, China, March 2018.
[38]
Huang WD, Gan CB, Yang SX. Identification of vibration response of high-speed electric spindle under random uncertain cutting force. Summary of the 10th Academic Conference on Dynamics and Control. Chengdu, China, May, 2016
[39]
Chen C. Reliability test and fault diagnosis of high-speed electric spindle. PhD Dissertation, Jilin University, Changchun, China 2016.
[40]
Li HQ. Dynamic performance test and analysis of high-speed electric spindle of CNC machine tool. J Qinghai Univ (Nat Sci) 2015; 33(4): 70-4.
[41]
Li LL. Research on key technology of ADGM high-speed electric spindle. MSc Dissertation, Henan Polytechnic University, Jiaozuo, China, April 2015.
[42]
Zhang Y, Guo XH. Analysis and research on oil and gas lubrication of high-speed electric spindle. J Mach Manuf 2018; 56(5): 53-5.
[43]
Li HH, Wang F. Experimental study on multi-structure coupling loss factor of machine tool spindle. J Vib Shock 2018; 37(16): 98-103.
[44]
Lu F, Wang Q, Zhang LX, Zhang K. WuYH. Model establishment of high-speed electric spindle cooling system. J Mech Sci Technol 2018; 37(3): 430-6.
[45]
Guo WK, Wu ZH, Lei Q, Luo LC, Liang LZ. High-speed electrical spindle cooling system DOE optimization. Mech Res Appl 2016; 29(6): 103-5.
[46]
Wei XL, Zhang BG, Chen H, Wei HB. Study on cooling and lubricating system of high-speed electric spindle. J Coal Mine Mach 2015; 36(3): 183-5.
[47]
Shan WT, Chen XA, Wang HC, Yu CT. Study on stability of high-speed electrical spindle milling. J Vib Shock 2017; 36(19): 242-9.
[48]
Cao ZK. Design and key technology research of high speed and high power electric spindle. MSc Dissertation, Beijing University of Posts and Telecommunications, Beijing, China, January 2017.
[49]
Chen LS. Study on thermal characteristics of four high-speed electrical spindles used for wood processing. MSc Dissertation, Chinese Academy of Forestry, Beijing, China, May 2016.
[50]
Hao J. Oil and gas lubrication test of high-speed electric spindle bearing. MSc Dissertation, Harbin Institute of Technology, Harbin, China, June 2016.
[51]
Jiang SY, Zhang SW. Development of key technologies for high-speed and precision hydro-electric spindle. J Mech Design Manuf Eng 2016; 45(5): 11-7.
[52]
Liu YB. Fault analysis and reliability study of high-speed electrical spindle of CNC engraving and milling machine Msc Dissertation, Kunming University of Science and Technology, Kunming, China, April 2016.
[53]
Wu ZP, Zhao WG, Yuan DX, Jiang TL. Study on step vibration of electrical spindle system of high-speed grinding wheel. Mach Design Manuf 2018; 6: 196-9.
[54]
Liu JB. Analysis and optimization of thermal performance of highspeed ceramic electrical spindle Master Dissertation, Yanshan University, Qinhuangdao, China, May 2016.
[55]
Huang ZZ, Yin Y, Li J, Wu D, Wang XY. Study on stability of gas static pressure high-speed electrical spindle. Mod Mach 2018; 1: 1-6.
[56]
Yan DF. Overview of electric spindle technology. J Mech Res Appl 2006; 6: 1-3.
[57]
Ma S, San HJ, Wu ZH, Zhang HW, Lei Q. Overview of high-speed motorized spindle technology. J Mach Manuf 2014; 52(5): 16-9.
[58]
Liu YB, Zhang XL, Wu ZH, Zhang HW, Lei Q. Analysis of steady temperature field of DGZX-1230 high-speed electric spindle. J Mech Elec Eng Technol 2016; 45(2): 30-6.
[59]
Guo WK, Wu ZH, Zhang HW, Lei Q. Analysis of temperature field of electric spindle based on DOE. J Mech Elec Eng Technol 2015; 44(8): 133-6.
[60]
Wang HX, Meng QX, Gao QT, Zhang WY. Finite element analysis of influence of cutting depth on ultra-precision cutting process. J Tool Eng 2004; 7: 6-9.
[61]
Zhao W. Study on high-speed cutting mechanism of titanium alloy based on green cutting PhD Dissertation, Nanjing University of Aeronautics and Astronautics, Nanjing, June 2016.
[62]
Zhang LJ, Liu HZ, Kang XL. Temperature rise analysis of electromagnetic loading of high-speed electrical spindle. J Mech Str 2018; 40(3): 733-8.
[63]
Zhu XS. Research on high-speed electric spindle oil and gas lubrication system Lanzhou University of Technology MSc Dissertation, Lanzhou University of Technology, Lanzhou, China, June 2011.
[64]
Li GN. Research on dynamic and static characteristics of four-head high-speed electric spindle for woodworking machinery. MSc Dissertation Chinese Academy of Forestry Sciences, Beijing, China, May 2015.
[65]
Zhang J, Li Y, Wang ST, Gou WD. Thermal error modeling of high-speed electrical spindle based on genetic RBF neural network. J Huazhong Univ Sci Technol (Nat Sci) 2018; 46(7): 73-7.
[66]
Ren ZH, Li YZ, Liu Y. A simulation study of thermodynamic analysis of high-speed electric spindle. Mach Tool Hyd Press 2018; 46(1): 121-5.
[67]
Zhu K, Shi XJ, Gao JM, Li FJ. Numerical simulation and experimental study of the thermal characteristics of the shaft cooling electrical spindle. J Xi’an Jiaotong Univ 2018; 52(4): 40-7.
[68]
Cui L, He YF, Shi KJ, Wang QS, Zhang HS. Improved design for vibration reduction and temperature rise of machining center electrical spindle. J Equip Manag Maint 2018; 13: 46-8.
[69]
Su JF. Design and research of spindle components for high-speed vertical machining center. MSc Dissertation, Shanxi University of Science and Technology, Xi’an, China, May 2012.
[70]
Tong Y. Research on magnetic pole bearings with different magnetic pole areas Master Dissertation, Nanjing University of Aeronautics and Astronautics, Nanjing, China, March 2016.
[71]
Wang J, Liu W, Wu FH. Research on high-speed electric spindle of ceramic-steel composite structure. J Manuf Technol Mach Tool 2015; 6: 109-13.
[72]
Zhang LX, Li CQ, Li JP, Zhang W, Wu YH. Temperature rise prediction model of high-speed and high-precision electric spindle. J Mech Eng 2017; 53(23): 129-36.
[73]
Zhang KH, Zhang JY. Technology and application analysis of high-speed motorized spindle of CNC machine tool. J Shandong Ind Technol 2016; 11: 53.
[74]
Liang YF. Research on key technology of high-speed machining machine tool spindle system. MSc Dissertation, Hefei University of Technology, Hefei, China, August 2010.
[75]
Cheng JM. Prospects for application of oil and gas lubrication systems in metallurgical equipment. Pte Technol 2012; 11: 66.
[76]
Xiong GC. Numerical simulation and experimental study of radial thrust combined gas bearing based on milling machine high-speed electric spindle. MSc Dissertation, Dalian Maritime University, Dalian, China, May 2016.

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