Robust Thermal Error Modeling and Compensation for a Nano Level Thermal Drift in a High Precision Lathe

被引:6
|
作者
Kim, Byung-Sub [1 ]
Song, Young-Chan [2 ]
Park, Chun-Hong [1 ]
机构
[1] Korea Inst Machinery & Mat, Nano Convergence Mfg Syst Res Div, Taejon 305343, South Korea
[2] Cesco Co Ltd, Tech Res Inst, Inchon 404220, South Korea
关键词
Thermal error model; Compensation; Thermoelastic process; High-precision lathe;
D O I
10.1007/s12541-011-0085-9
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
High precision machines require very stable operational environment: temperature control and vibration isolation. Tight temperature control for machines usually demand high cost to operate air conditioners. Some of high precision machines require the ambient temperature changes to maintain within +/- 0.1 degrees. In this paper, we present a thermal error compensation scheme and experimental results for improving machining accuracy of a high precision lathe. The testbed lathe has X- and Z-axes and they are driven by linear motors and hydrostatic oil bearing. Due to the temperature changes of the ambient air and supplied oil to the hydrostatic bearing, thermal deformation is generated and measured to be as much as 200-300 nm. To identify the dynamic relations between the temperature changes and the thermal drift, a state-space model is used in which state variables are constructed from the input measured temperatures and the output thermal drift data. The identified model is implemented in a servo control loop and the predicted thermal error is compensated by subtracting the predicted thermal drift from the servo command. In our simulation, a thermal error of 97 nm rms over 3 hours is reduced to 55 nm rms. Experimental results showed an 30% similar to 60% reduction in thermal drift and supported the validity of our approach.
引用
收藏
页码:657 / 661
页数:5
相关论文
共 50 条
  • [41] Drift compensation in thermal anemometry
    Hewes, Alais
    Medvescek, James, I
    Mydlarski, Laurent
    Baliga, B. Rabi
    MEASUREMENT SCIENCE AND TECHNOLOGY, 2020, 31 (04)
  • [42] Robust modeling and real time compensation for the thermal error on a large number of CNC turning centers
    Yang, JG
    Ren, YQ
    Du, ZC
    ADVANCES IN GRINDING AND ABRASIVE PROCESSES, 2004, 259-2 : 756 - 760
  • [43] Modeling and Estimating Thermal Error in Precision Machine Spindles
    Han, Jian
    Wang, Liping
    Yu, Lianqing
    MECHANICAL ENGINEERING AND GREEN MANUFACTURING, PTS 1 AND 2, 2010, : 507 - 511
  • [44] Straightness error compensation based on the p-integrator learning control in high precision lathe
    Shengyi, L.
    Jiancheng, L.
    Li, J.
    Proceedings of the International Precision Engineering Seminar, 1991,
  • [45] Thermal error analysis and modeling for error compensation on gear hobbing machine
    Guo Qianjian
    Yang Jianguo
    Wang Xiushan
    VACUUM METALLURGY AND SURFACE ENGINEERING, PROCEEDINGS, 2007, : 343 - 349
  • [46] SMART SENSOR FOR ENHANCEMENT OF A MULTI-SPINDLE AUTOMATIC LATHE THERMAL ERROR COMPENSATION MODEL
    Horejs, O.
    Mares, M.
    Mlcoch, A.
    MM SCIENCE JOURNAL, 2021, 2021 : 4706 - 4712
  • [47] Thermal Error Measurement and Compensation with Torque Limit Skip in Swiss-type Lathe Manufacturing
    Kaftan, Petr
    Porquez, Florian
    Mayr, Josef
    Pomodoro, Kevin
    Keel, Max
    Trombert, David
    Wegener, Konrad
    PRECISION ENGINEERING-JOURNAL OF THE INTERNATIONAL SOCIETIES FOR PRECISION ENGINEERING AND NANOTECHNOLOGY, 2024, 88 : 315 - 323
  • [48] Thermal drift compensation method for microbolometer thermal cameras
    Olbrycht, Robert
    Wiecek, Boguslaw
    De Mey, Gilbert
    APPLIED OPTICS, 2012, 51 (11) : 1788 - 1794
  • [49] A Thermal Drift Compensation Method for Precision Sensors Considering Historical Temperature State
    Wu, Lei
    Zhao, Guofeng
    Yin, Jing
    Feng, Zhihua
    IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2021, 68 (12) : 12821 - 12829
  • [50] Robust Machine Tool Thermal Error Modeling Through Thermal Mode Concept
    Zhu, Jie
    Ni, Jun
    Shih, Albert J.
    JOURNAL OF MANUFACTURING SCIENCE AND ENGINEERING-TRANSACTIONS OF THE ASME, 2008, 130 (06): : 0610061 - 0610069