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Recent Patents on Engineering

Editor-in-Chief

ISSN (Print): 1872-2121
ISSN (Online): 2212-4047

Review Article

Recent Patent on the Spindle Rotation Accuracy Detection Device

Author(s): Yudong Bao* and Zhentao Zhou

Volume 17, Issue 6, 2023

Published on: 21 November, 2022

Article ID: e041122210642 Pages: 16

DOI: 10.2174/1872212117666221104105035

Price: $65

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Abstract

Background: Based on the high-speed operation of the spindle, the influence of the rotation accuracy of the spindle on the system will increase with the increase of the rotation speed. Therefore, how to predict rotation accuracy becomes very important for mechanical equipment based on the spindle.

Objective: To summarize the classification and characteristics of the spindle rotation accuracy detection device to predict future development.

Methods: The current status of various representative patents related to spindle rotation accuracy testing equipment is analyzed. According to the characteristics of testing equipment, the development level of existing testing equipment in error separation and high-speed detection of the spindle is analyzed, and the latest patented technology is expounded and compared.

Results: The structure of the spindle rotation accuracy detection device is analyzed and compared, and the typical characteristics are summarized. The problems existing in the detection of spindle rotation accuracy are analyzed, and their development trend is prospected.

Conclusion: It is obtained that the contact-type rotary accuracy testing equipment is generally suitable for static measurement, the single-probe and multi-probe testing equipment can be basically satisfied with the measurement, and the optical testing equipment can be widely used in the measurement under the high-speed rotation of the spindle. There is room for further development in the dynamic load detection of the spindle.

Graphical Abstract

[1]
H. Xia, and J.Z. Tao, "Test on rotation precision of aerostatic spherical bearing’s spindle", Bearing, no. 7, pp. 56-58, 2013.
[2]
X. Yu, S. Zhan, D. Huang, F. Sun, F. Wang, F. Han, and Y. Zhao, "A review of the research on the influencing factors of lubrication performance for sliding bearings", Recent Pat. Eng., vol. 16, no. 6, p. e211221199192, 2022.
[http://dx.doi.org/10.2174/1872212116666211221104527]
[3]
Y. Bao, L. Wu, Y. Zhao, and C. Pan, "Recent patents on the angular contact ball bearing of high-speed motorized spindle", Recent Pat. Mech. Eng., vol. 14, no. 4, pp. 456-466, 2021.
[http://dx.doi.org/10.2174/2212797613666201208000558]
[4]
Y. Dai, W.Q. Wei, X.L. Zhang, and Y.S. Qi, "Recent patents on the structure of high-speed motorized spindle", Recent Pat. Mech. Eng., vol. 12, no. 2, pp. 125-137, 2019.
[http://dx.doi.org/10.2174/2212797612666190319154640]
[5]
L.P. Wang, B.B. Zhang, and J. Wu, "Rotation accuracy evaluation of electric spindle based on least square method", Manuf. Tech. Mach. Tool, no. 2, pp. 63-69, 2018.
[6]
D.W. Chen, J. Wu, L.P. Wang, J.H. Liang, X.M. Gong, and W.S. Kong, "A method for predicting spindle rotation accuracy using vibration", Sci. China Technol. Sci., vol. 50, no. 6, pp. 819-828, 2020.
[7]
J.H. Liang, L.P. Wang, J. Wu, Z.G. Liu, and G. Yu, "Prediction of spindle rotation error through vibration signal based on bi-lstm classification network", IOP Conf. Ser.: Mater. Sci. Eng., vol. 1043, 2021.
[http://dx.doi.org/10.1088/1757-899X/1043/4/042033]
[8]
X. Wang, D. Wan, Y. Liu, D. Wang, Z. Cao, J. Wang, C. Sun, D. Zhou, X. Chen, and H. Ma, "A multi-error measurement method for workpiece of vertical machine tool", J. Phys. Conf. Ser., vol. 1877, no. 1, p. 012009, 2021.
[http://dx.doi.org/10.1088/1742-6596/1877/1/012009]
[9]
Q. Chen, and B. Liang, "Error analysis of test errors in radial rotation error of spindle", J. Hunan Univ. (Nat. Sci. Ed.), vol. 30, no. 4, pp. 23-25, 2003.
[10]
S.H. Kim, B.H. Kim, and Y.G. Jin, "A study on the error separation method in rotation accuracy measurement of high precision spindle unit", J. Korean Soc. Manuf. Process. Eng., vol. 13, no. 1, pp. 78-84, 2014.
[11]
A.A.D. Sarhan, M.A. Hassan, A. Matsubara, and M. Hamdi, "High-precision machining by measuring and compensating the error motion of spindle’s axis of rotation in radial direction", Eng. Lett., vol. 19, no. 4, pp. 310-315, 2011.
[12]
Z.Y. Huang, W.Q. Gao, Q.S. Yan, J.J. Huang, and C.T. Qing, "Simulation of spindle rotation error with three-point method based on matlab", Adv. Mat. Res., vol. 156-157, no. 156-157, pp. 1069-1073, 2010.
[http://dx.doi.org/10.4028/www.scientific.net/AMR.156-157.1069]
[13]
Y. Luo, W.F. Chen, C. Su, and Y.S. Shen, "Development of spindle dynamic rotation accuracy test system", Modular Mach. Tool Autom. Manuf. Tech, no. 6, pp. 102-105, 2019.
[14]
D.D. Han, "Design of experimental platform for machine tool spindle rotation accuracy test", China New Technol. New Prod, no. 21, pp. 50-51, 2018.
[15]
H.B. Chen, X.M. Cheng, and X.X. Zhong, "Test of aerostatic bearing’s spindle rotary precision", J. Chongqing Univ. (Nat. Sci. Ed.), vol. 23, no. 1, pp. 49-52, 2000.
[16]
K.A.N.G. Ting, and C.A.O. Hongrui, "Dynamic prediction method for machine tool spindle rotational accuracy under cutting condition", Jixie Gongcheng Xuebao, vol. 56, no. 17, pp. 240-248, 2020.
[http://dx.doi.org/10.3901/JME.2020.17.240]
[17]
C.Z. Huang, S.Y. Li, and Y. Zhu, "Development of the machine used to measure dynamic error motion of ultraprecision lathe spindle", Aviat. Precis. Manuf. Technol., vol. 38, no. 2, pp. 8-10, 2002.
[18]
Q.W. Liu, "Test and analysis of spindle dynamic rotation error", CAD/CAM Manuf. Informa, no. Z1, pp. 80-84, 2013.
[19]
C.H. Liu, W.Y. Jywe, and H.W. Lee, "Development of a simple test device for spindle error measurement using a position sensitive detector", Meas. Sci. Technol., vol. 15, no. 9, pp. 1733-1741, 2004.
[http://dx.doi.org/10.1088/0957-0233/15/9/009]
[20]
E. Marsh, J. Couey, and R. Vallance, "Nanometer-level comparison of three spindle error motion separation techniques", J. Manuf. Sci. Eng., vol. 128, no. 1, pp. 180-187, 2006.
[http://dx.doi.org/10.1115/1.2118747]
[21]
W.D. Wang, C. Zhai, and K. Chen, "A CCD measuring system for the rotary precision of spindle of machine tools", J. Metrol., vol. 27, no. 1, pp. 18-21, 2006.
[22]
W.N. Zhou, Research on the rotation error measurement of precision spindle based on motion feature analysis, M.S. thesis, Harbin Institute of Technology, China, 2013.
[23]
B. Li, The spindle rotation error measurement and analysis of encoder based on machine vision, M.S. thesis, Harbin University of Science and Technology, China, 2016.
[24]
B.Y. Ren, Research on detecting method of spindle rotation accuracy based on analysis of interference fringe feature, M.S. thesis, Harbin University of Science and Technology, China, 2017.
[25]
K.P. Anandan, and O.B. Ozdoganlar, "An LDV-based methodology for measuring axial and radial error motions when using miniature ultra-high-speed (UHS) micromachining spindles", Precis. Eng., vol. 37, no. 1, pp. 172-186, 2013.
[http://dx.doi.org/10.1016/j.precisioneng.2012.08.001]
[26]
G.F. Hu, C.M. Jia, Y. Fang, S.L. Lv, and Y. Zhang, "An experiment study on deterioration of dynamic rotational accuracy of motorized spindle", J. Phys. Conf. Ser., vol. 1948, no. 1, p. 012131, 2021.
[http://dx.doi.org/10.1088/1742-6596/1948/1/012131]
[27]
Z. Guo, "Precision design and measurement method of large precision rotary body rotary", Manuf. Technol. Mach. Tool, no. 6, pp. 145-148, 2019.
[28]
Y. Li, L. Liang, Y.H. Li, and F. Gao, "Thermal error measurement and rotation accuracy evaluation of CNC lathe spindle", Zhongguo Jixie Gongcheng, vol. 26, no. 12, pp. 1611-1615, 2015.
[29]
L.Y. Feng, and Y. Wang, "Development and analysis of rotational accuracy testing system of dynamic and static spindle", Precis. Manuf. Autom, no. 3, pp. 26-29, 2020.
[30]
G.Q. Zhang, H.C. Yu, Z.X. Zhao, W.B. Wang, and R.Z. Wang, "Research on the influence of roundness error for aerostatic spindle rotation accuracy", Manuf. Technol. Mach. Tool, no. 3, pp. 55-59, 2018.
[http://dx.doi.org/10.1016/j.ijmachtools.2017.10.006]
[31]
G.M. Zhang, "Spindle rotation accuracy experiment analysis based on three-point method", Mech. Eng. Autom, no. 1, pp. 155-157, 2018.
[32]
W.F. Chang, Y. Chen, and H.C. Chen, "Measurement and analysis of spindle dynamic rotational accuracy in non-cutting situation for machining center", Manuf. Technol. Mach. Tool, no. 2, pp. 129-133, 2018.
[33]
H. Chen, Q. Hu, and Y.Y. Xu, "Uncertainty evaluation of aerostatic spindle rotation accuracy by donaldson reversal method", Modular Mach. Tool Autom. Manuf. Tech, no. 4, pp. 10-13, 2017.
[34]
X.Q. Lei, Study of the cylindricity precision measurement technique based on the error separation method, Ph. D Dissertation, Xi'an University of Technology, China, 2007.
[35]
L. Wang, J.B. Tan, J.Z. Huang, and T. Cheng, "Analyzing rotation error of large-scale gas spindle based on roundness evaluation", Infrared Laser Eng., vol. 38, no. 3, pp. 441-444, 2009.
[36]
Z.J. Li, M.S. Hong, Y.L. Wei, and H. Su, "Quadratic phase shift three-point method for on-line measurement of spindle motion error", Opt. Precis. Eng., vol. 9, no. 4, pp. 319-323, 2001.
[37]
X. Li, J. Deng, Y. Fu, S.Y. Ma, C.J. Cai, and X.S. Zhao, "Method research of spindle rotation precision test", J. Mech. Des., vol. 33, no. 7, pp. 39-45, 2016.
[38]
S.Y. Liu, M.F. Huang, and Z.P. Zhang, "Research on the separation of spindle rotation error based on multivariable optimization", Modular Mach. Tool Autom. Manuf. Tech, no. 7, pp. 85-87, 2020.
[39]
P. Ma, J.H. Li, J.G. Ou, and N.J. Liao, "Study on multi-step error separation of spindle rotation precision", Mech. Sci. Technol. Aerosp. Eng., vol. 37, no. 6, pp. 884-890, 2018.
[40]
L.X. Qiao, J.N. Chen, W.H. Chen, Z. Li, and J.Z. Tian, "A high-precision spindle rotation error separation algorithm based on multi-step precess", Acta Meteorol. Sin., vol. 39, no. 1, pp. 6-11, 2018.
[41]
P. Ma, J.J. Huang, and D.N. Li, "The comparative analysis about rotational error separation with three-point method and approximate three-point", 2011 International Conference on Consumer Electronics, Communications and Networks (CECNet), pp. 1-5, 2011.
[42]
W. Gao, E. Sato, T. Ohnuma, and S. Kiyono, "Roundness and spindle error measurement by angular three-probe method. 1st Report", J. Japan Soc. Precision Eng., vol. 68, no. 9, pp. 1195-1199, 2002.
[http://dx.doi.org/10.2493/jjspe.68.1195]
[43]
B. Muralikrishnan, S. Venkatachalam, J. Raja, and M. Malburg, "A note on the three-point method for roundness measurement", Precis. Eng., vol. 29, no. 2, pp. 257-260, 2005.
[http://dx.doi.org/10.1016/j.precisioneng.2004.06.007]
[44]
P.Q. Fu, B.Y. Ren, Y.W. Wang, B. Li, and F. Wang, "A machine vision-based spindle dynamic rotation accuracy test method", C.N. Patent 106,168,464, 2016.
[45]
E.R. Marsh, D.A. Arneson, and D.L. Martin, "A comparison of reversal and multiprobe error separation", Precis. Eng., vol. 34, no. 1, pp. 85-91, 2010.
[http://dx.doi.org/10.1016/j.precisioneng.2009.03.001]
[46]
Y. Zhao, and J. Zhang, "Recent patents on detection of bearing temperature", Recent Pat. Eng., vol. 16, no. 3, p. e100821195487, 2022.
[http://dx.doi.org/10.2174/1872212115666210810114300]
[47]
Y. Zhao, and J. Zhang, "Recent patents on bearing pre-tightening", Recent Pat. Eng., vol. 16, no. 1, p. e220621194201, 2022.
[http://dx.doi.org/10.2174/1872212115666210622145041]
[48]
C.Y. Pan, J.H. Tang, and B.T. Hu, "Recent patents on ball bearing", Recent Pat. Eng., vol. 15, no. 6, p. e100821195488, 2021.
[http://dx.doi.org/10.2174/1872212115666210810115235]
[49]
X.S. Zhao, Y.Q. Geng, Y.D. Yan, Z.J. Hu, and T. Sun, "A detection method of precision spindle rotation accuracy", C.N. Patent. 103,759,941, 2015.
[50]
C.S. Zhang, "A CNC lathe spindle accuracy detection mechanism", C.N. Patent. 212,762,483, 2021.
[51]
Z.G. Fang, "A CNC lathe spindle accuracy detection mechanism.", C.N. Patent 208,629,051, 2019.
[52]
P.Q. Fu, Q.H. Cao, Y.W. Wang, B.Y. Ren, and L.J. Zhang, "A contact-type spindle rotary motion error measurement device", C.N. Patent 205,537,586, 2016.
[53]
H.L. Cui, X.J. Zhang, X.Q. Zhang, Y.B. Feng, D.J. Lei, H. Xia, Y.Q. Zheng, W.W. Gong, J.B. Zhang, and L.Q. Yu, "An ultra-precision spindle rotation accuracy measurement device", C.N. Patent 112,254,950, 2021.
[54]
G.W. Zhang, J.Y. Ling, J.T. Chen, D.W. Zhang, and W.G. Gao, "Test bench and test method for electric spindle rotation accuracy measurement under alternating load", C.N. Patent 111,912,613, 2020.
[55]
Q.S. Li, M.X. Ling, S.Z. Li, J. Wang, X. Yan, R. Zhang, and F. Ning, "A separable and eccentric spindle rotation error measuring device", C.N. Patent 203,908,522, 2014.
[56]
D.J. Lei, H. Lan, L.H. Qian, H.L. Cui, L.X. Zhang, B.R. Wang, H. Yang, H. Xia, Y. Chen, and Y.Q. Zheng, "A rotary error measurement device for aerostatic spindle", C.N. Patent 206,339,212, 2017.
[57]
S.L. Guo, S.Y. Chen, R.X. Sun, X.Y. Guo, and Q.L. Han, "Axle rotation error simulation detection device", C.N. Patent 202,024,748, 2011.
[58]
M.X. Ling, J.K. Zhou, S.Z. Li, H. Yang, X.E. Liu, J. Mo, R. Zhang, and Y.H. Yin, "Measuring device and measuring method for dynamic rotation error of main shaft of complete rotary equipment", C.N. Patent 105,043,317, 2015.
[59]
Q. Shu, X.B. Liu, Q. Tang, J.W. Wang, B.R. Wang, and L. Li, "A gas static pressure spindle rotation accuracy test platform", C.N. Patent 208,333,406, 2019.
[60]
J.Q. Yi, K. Zeng, X.C. He, B.Y. Xing, Y.Y. Feng, T. Wei, and T.T. Zhai, "A sliding sensor fixture for detecting the rotation accuracy of the machine tool spindle", C.N. Patent 208,131,994, 2018.
[61]
Z. Zhao, C.Y. Huang, Y.F. Xu, J.M. Zhu, X.R. Li, P. Yang, P. Xie, H.F. Pan, Q.L. Zhao, and D.D. He, "Hybrid multi-method test device for spindle rotation accuracy measurement experiment", C.N. Patent 105,033,759, 2015.
[62]
M.X. Guo, Ye. Yi, X.H. Jiang, and Z.S. Ding, "A dynamic test device for high-frequency spindle rotation accuracy and its use method", C.N. Patent 111,982,035, 2020.
[63]
H.S. Peng, "A detection device for the rotation accuracy of the spindle of a precision machine tool", C.N. Patent 212,665,596, 2021.
[64]
H. Lu, Z.L. Wang, Q. Wu, and Y.X. Wang, "A non-contact precision spindle rotation error online measurement system", C.N. Patent 204,142,176,, 2015.
[65]
Y.S. Zhu, J. Hong, H.Y. Cun, W.C. Qi, H.H. Shi, G.L. Zhang, and Z. Zhou, "An online monitoring device for spindle radial rotation accuracy", C.N. Patent 102,501,137, 2014.
[66]
D.W. Zhang, J.M. Pan, J.G. Liu, T.Y. San, and J.B. Hu, "A numerical control machine tool spindle rotation accuracy calibration device", C.N. Patent 110,052,893, 2019.
[67]
D.F. Liu, X.G. Li, P. Chen, J. Chen, C.Y. Liao, and D. Liu, "A dynamic spindle rotation accuracy detection device", C.N. Patent 103,644,875, 2016.
[68]
J. Wu, D.W. Chen, J.H. Liang, B.B. Zhang, B. Zhu, and R.J. Zhang, "Electric spindle pneumatic loading device and condition monitoring system", C.N. Patent 110,296,831, 2020.
[69]
Q.Q. Zhu, W. Luo, W.Z. Chen, F. Chen, Z.C. Zhang, M. Liu, and Z.M. Su, "A portable dynamic loading and fine-tuning measurement device based on spindle rotation accuracy", C.N. Patent 211,277,393, 2020.
[70]
H. Ding, P.W. Wang, W. Feng, and H.P. Shen, "A high-speed motorized spindle rotation accuracy test bench", C.N. Patent 214,584,013, 2021.
[71]
G. Kong, J.Z. Yang, and J.H. Chen, "A comprehensive on-machine measurement device and method for machine tool spindle rotation error motion", C.N. Patent 113,927,369, 2022.
[72]
H.R. Cao, T. Kang, X.F. Chen, and X.W. Zhang, "A spindle rotation error measuring device", C.N. Patent 109,781,042, 2021.
[73]
Y. Liu, Y.F. Zhang, J. Lin, A. Jin, and P. Jin, "A spindle radial rotation error measurement device based on cooperative target grating", C.N. Patent 211,234,298, 2020.
[74]
J. Lin, A. Jin, J.M. Chen, W.G. Yang, P. Jin, and Li. Wang, "A diffraction grating-based spindle radial rotation error measurement device and method", C.N. Patent 108,168,461, 2019.
[75]
W. Wang, Y.H. Wen, K.Q. Lu, J.P. Yu, and Z.C. Chen, "Optical measurement method and device for spindle rotation error with five degrees of freedom", C.N. Patent 102,322,795, 2013.
[76]
J. Hong, Y.H. Sun, and Z.G. Liu, "Precision spindle rotation accuracy detection device and method based on laser interference principle", C.N. Patent 106,425,691, 2017.
[77]
Y. Zhang, Y. Dong, W.T. Lei, and G.M. Chen, "A laser measurement system and method for precision shafting radial rotation accuracy", C.N. Patent 108,106,559, 2019.
[78]
P. Jin, A. Jin, J. Lin, and L. Wang, "A spindle radial rotation error measurement device based on target trajectory tracking", C.N. Patent 107,139,020, 2019.
[79]
J.H. Wang, Y.H. Tian, M.G. Gao, S.X. Wang, and M. Xu, "Rotational accuracy measurement system and measurement method of hydrostatic bearing spindle", C.N. Patent 113,702,039, 2021.
[80]
S. Cappa, D. Reynaerts, and F. Al-Bender, "A sub-nanometre spindle error motion separation technique", Precis. Eng., vol. 38, no. 3, pp. 458-471, 2014.
[http://dx.doi.org/10.1016/j.precisioneng.2013.12.011]
[81]
R. Grejda, E. Marsh, and R. Vallance, "Techniques for calibrating spindles with nanometer error motion", Precis. Eng., vol. 29, no. 1, pp. 113-123, 2005.
[http://dx.doi.org/10.1016/j.precisioneng.2004.05.003]

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