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Optimal distribution of the cable tensions and structural vibration control of the cable-cabin flexible structure

  • Qiu, Y.Y. (School of Mechanical and Electronic Engineering, Xidian University) ;
  • Duan, B.Y. (School of Mechanical and Electronic Engineering, Xidian University) ;
  • Wei, Q. (School of Mechanical and Electronic Engineering, Xidian University) ;
  • Nan, R.D. (Beijing Radio Astronomy Observatory, Chinese Academy) ;
  • Peng, B. (Beijing Radio Astronomy Observatory, Chinese Academy)
  • Received : 2001.02.02
  • Accepted : 2002.04.23
  • Published : 2002.07.25

Abstract

In order to trace a target in deep sky, a feed cabin 20 tons in weight used for a large radio telescope is drawn with six cables. To realize a smooth tracing all the time, optimal distribution of the cable tensions is explored. A set of cable-clog systems is utilized to control the wind-induced vibration of the cable-cabin structure. This is an attempt to apply the passive structural control strategy in the area of radio astronomy. Simulations of wind-induced vibration of the structure in both time and frequency domains offer a valuable reference for construction of the next generation large radio telescope.

Keywords

References

  1. Duan, B.Y. (1999), "A new design project of the line feed structure for large spherical radio telescope and its nonlinear dynamic analysis", J. Mechatronics, 9(1), 53-64. https://doi.org/10.1016/S0957-4158(98)00028-2
  2. Duan, B.Y. (1999), "Integrated design with mechanical, electronic and optical technologies for the new generation large spherical radio telescope", J. China Mech. Eng. (in Chinese), 10(9), 1002-1004.
  3. Li, H. (1998), "China hopes to move FAST on largest telescope", J. Science, 281(5378), 771. https://doi.org/10.1126/science.281.5378.771
  4. Li, Q. and Cao, H. (1999), "Optimal design of wind-induced vibration control of tall buildings and high-rise structures", J. Wind Struct., 2(1), 69-83. https://doi.org/10.12989/was.1999.2.1.069
  5. Su, Y.X. and Duan, B.Y. (2000), "Application of Stewart platform in the next generation large radio telescope", J. Robotic Syst., 17(7), 375-383. https://doi.org/10.1002/1097-4563(200007)17:7<375::AID-ROB3>3.0.CO;2-7
  6. Wang, Y.C. (1999), "Effect of cable stiffness on a cable-stayed bridge", J. Struct. Eng. Mech., 8(1), 27-38. https://doi.org/10.12989/sem.1999.8.1.027
  7. Wang, Z.H. (1994), "Simulation of wind loading", J. Architectural Struct. (in Chinese), 15(1), 44-52.
  8. Zhang, X.T. (1985), Calculations on Structural Wind Press and Wind-induced Vibration (in Chinese), Shanghai Tongji University Press.

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