Title :
Control of flexural vibration in a periodic pipe conveying fluid based on a Bragg scattering mechanism coupled with a locally resonant mechanism
Author :
Shen, Huijie ; Wen, Jihong ; Yu, Dianlong ; Wen, Xisen
Author_Institution :
Key Lab. of Sci. & Technol. on Integrated Logistics Support, Nat. Univ. of Defense Technol., Changsha, China
Abstract :
Fluid and structure interaction in vibrating pipe systems that convey fluid exists in many fields. Flexural vibration control is very important because of the possible damage to pipe systems that can be caused by vibrations. Using the transfer matrix method, the band structure and the frequency response function of pipe flexural vibration are calculated to investigate the gap frequency range and the attenuation properties. The pipe is modeled as a periodic material composite structure based on Phononic Crystals with a Bragg scattering mechanism coupled to a locally resonant mechanism. The effects of rubber stiffness and mass of a locally resonant oscillator on attenuation properties are considered. The design of periodic pipe structure may be effective in vibration reduction in piping systems.
Keywords :
Bragg gratings; bending; elasticity; phononic crystals; pipes; scattering; transfer function matrices; vibration control; Bragg scattering mechanism; flexural vibration control; fluid-structure interaction; frequency response function; local resonant oscillator mechanism; periodic material composite structures; periodic pipe conveying fluid; phononic crystals; rubber stiffness; transfer matrix method; vibration reduction; Fluids; Oscillators; Photonic band gap; Scattering; Vibrations; Bragg scattering; band gap; locally resonant; pipe; vibration control;
Conference_Titel :
Mechatronics and Automation (ICMA), 2011 International Conference on
Conference_Location :
Beijing
Print_ISBN :
978-1-4244-8113-2
DOI :
10.1109/ICMA.2011.5986366