Improvement of damping properties of structural member using soft material at support

Authors

  • Babitha Kodavanla

    INSTITUTE OF AERONAUTICAL ENGINEERING
  • Dr A. Barai

  • A B. S. Dadapeer

  • Mery Threza

  • P Hanuma

  • N Madhavi

How to Cite

Kodavanla, B., A. Barai, D., B. S. Dadapeer, A., Threza, M., Hanuma, P., & Madhavi, N. (2018). Improvement of damping properties of structural member using soft material at support. International Journal of Engineering and Technology, 7(3), 1216-1219. https://doi.org/10.14419/ijet.v7i2.18.10130

Received date: March 14, 2018

Accepted date: April 25, 2018

Published date: June 26, 2018

DOI:

https://doi.org/10.14419/ijet.v7i2.18.10130

Keywords:

Damping, Soft Material, Versatile Surfaces

Abstract

Coincidental plane vibration in the midst of flight isn't unusual. There are different purposes behind plane vibration, including landing gear increase and withdrawal, extension of speed brakes, free play in versatile surfaces, and breakdowns of frameworks. Air vehicles have an airframe structure which incorporates every single auxiliary part. This task manages Improvement of damping properties of the basic part utilizing a delicate material at the help. So in this task considered a cantilever auxiliary part made up of composite and aluminum materials and delicate material is elastic, settling for support. How the damping properties are changing in basic part with and without delicate material, and discover which structure is having higher damping properties. Consequently, the objective of the present work is to demonstrate that the damping will enhance when the delicate material utilized at the help and composite has higher damping than aluminum.

 

References

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How to Cite

Kodavanla, B., A. Barai, D., B. S. Dadapeer, A., Threza, M., Hanuma, P., & Madhavi, N. (2018). Improvement of damping properties of structural member using soft material at support. International Journal of Engineering and Technology, 7(3), 1216-1219. https://doi.org/10.14419/ijet.v7i2.18.10130

Received date: March 14, 2018

Accepted date: April 25, 2018

Published date: June 26, 2018