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NASA NTRS · 20030107687

Effect of Forcing Function on Nonlinear Acoustic Standing Waves

Abstract

Nonlinear acoustic standing waves of high amplitude have been demonstrated by utilizing the effects of resonator shape to prevent the pressure waves from entering saturation. Experimentally, nonlinear acoustic standing waves have been generated by shaking an entire resonating cavity. While this promotes more efficient energy transfer than a piston-driven resonator, it also introduces complicated structural dynamics into the system. Experiments have shown that these dynamics result in resonator forcing functions comprised of a sum of several Fourier modes. However, previous numerical studies of the acoustics generated within the resonator assumed simple sinusoidal waves as the driving force. Using a previously developed numerical code, this paper demonstrates the effects of using a forcing function constructed with a series of harmonic sinusoidal waves on resonating cavities. From these results, a method will be demonstrated which allows the direct numerical analysis of experimentally generated nonlinear acoustic waves in resonators driven by harmonic forcing functions.

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BibTeXRIS

Finkheiner, Joshua R., Li, Xiao-Fan, Raman, Ganesh, Daniels, Chris, Steinetz, Bruce. 2003-01-01. Effect of Forcing Function on Nonlinear Acoustic Standing Waves. https://ntrs.nasa.gov/citations/20030107687

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