DOI QR코드

DOI QR Code

A Study on the Analysis for Development of a Deflector Type Miniature Ball Screw

초소형 디플렉터 타입 볼스크류 개발을 위한 해석에 관한 연구

  • Lee, Choon-Man (School of Mechanical Engineering, Changwon National University) ;
  • Moon, Sung-Ho (School of Mechanical Engineering, Changwon National University) ;
  • Lee, Young-Hun (School of Mechanical Engineering, Changwon National University) ;
  • Kim, Jun-Hwan (School of Mechanical Engineering, Changwon National University)
  • Received : 2016.10.17
  • Accepted : 2016.11.17
  • Published : 2016.12.01

Abstract

Recently, ball screws have been used in machine tools, robot parts, and medical instruments. The demand for ball screws of high precision and reduced size is increasing because of the growth of high value-added industries. Three types of ball screws are typically used: deflector type, end-cap type, and tube type. They are also classified from C0 to C9 according to the precision level. A deflector type ball screw can reduce the variation of rotational torque and the size of the nut of the ball screw is minimized. To ensure the reliable design of ball screws, it is important to perform a structural analysis. The purpose of this study is to perform a stability evaluation through analysis of a deflector type miniature ball screw for weapon systems. The analysis is performed through Finite Elements Method (FEM) simulation to predict characteristics such as deformation, stress, and thermal effects. The interference between the shaft and the deflector for smooth rotation are also studied. Based on the results of the analysis, the development of the deflector type miniature ball screw for weapon systems is performed.

Keywords

References

  1. Oh, N. S., Lee, C. M., and Choi, J. H., "A Basic Study on the Static and Dynamic Characteristic Analysis of a Miniature Ball Screw," Proc. of KSPE Spring Conference, p. 492, 2016.
  2. Moon, S. H., Kim, J. H., Kim, H. G., and Lee, C. Man., "Study on the Analysis of Thermal Characteristics for Deflector Type Miniature Ball Screw," Proc. of KSPE Spring Conference, p. 482, 2016.
  3. Choi, J. H., "A Study on Noise Improvement of High Speed Ball Screw by Ball-Circulating Method Change," M.Sc. Thesis, Mechanical and System Engineering, Gyeongsang National University, 2012.
  4. Choi, H. Z., Lee, S. W., and Park, S. I., "A Study on the Grinding Technologies for Manufacturing Ball Screws with CBN," Proc. of KSPE Spring Conference, pp. 34-37, 1998.
  5. Fukada, S., Fang, B., and Shigeno, A., "Experimental Analysis and Simulation of Nonlinear Microscopic Behavior of Ball Screw Mechanism for Ultra-Precision Positioning," Precision Engineering, Vol. 35, No. 4, pp. 650-668, 2011. https://doi.org/10.1016/j.precisioneng.2011.05.006
  6. Choi, C., "A Study on Performance Improvement of Feed System in a High-Precision Ball Screw," M.Sc. Thesis, Engineering of Aerospace, Gyeongsang National University, 2015.
  7. Min, B. K., Cao, L., Khim, G. H., Park, C. H., and Chung, S. C., “Modeling and Uncertainty Analysis of Ballscrew Nut Stiffness,” J. Korean Soc. Precis. Eng., Vol. 32, No. 5, pp. 415-422, 2015. https://doi.org/10.7736/KSPE.2015.32.5.415
  8. Kim, S. S., Xu, Z. Z., Kim, H. K., and Lyu, S. K., "A Study on Effect of Various Coolinig Methods in Motion of High-Precision Ball Screw," J. Korean Soc. Precis. Eng., Vol. 30, No. 3, pp. 254-259, 2013. https://doi.org/10.7736/KSPE.2013.30.3.254
  9. Park, C. I. and Chung, S. C., "A Study on the Load Distribution and Stiffness in Nut Section of Ball Screws," Proc. of KSPE Autumn Conference, pp. 243-248, 2010.
  10. Xu, Z.-Z., Choi, C., Liang, L.-J., Li, D.-Y., and Lyu, S. -K., "Study on a Novel Thermal Error Compensation System for High-Precision Ball Screw Feed Drive (2nd Report: Experimental Verification)," Int. J. Precis. Eng. Manuf., Vol. 16, No. 10, pp. 2139-2145, 2015. https://doi.org/10.1007/s12541-015-0276-x
  11. Xu, Z.-Z., Choi, C., Liang, L.-J., Li, D.-Y., and Lyu, S.-K., "Study on a Novel Thermal Error Compensation System for High-Precision Ball Screw Feed Drive (1st Report: Model, Calculation and Simulation)," Int. J. Precis. Eng. and Manuf., Vol. 16, No. 10, pp. 2005-2011, 2015. https://doi.org/10.1007/s12541-015-0261-4