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Energy-Based Tetrahedron Sensor for High-Temperature, High-Pressure EnvironmentsAn acoustic energy-based probe has been developed that incorporates multiple acoustic sensing elements in order to obtain the acoustic pressure and three-dimensional acoustic particle velocity. With these quantities, the user can obtain various energy-based quantities, including acoustic energy density, acoustic intensity, and acoustic impedance. In this specific development, the probe has been designed to operate in an environment characterized by high temperatures and high pressures as is found in the close vicinity of rocket plumes. Given these capabilities, the probe is designed to be used to investigate the acoustic conditions within the plume of a rocket engine or jet engine to facilitate greater understanding of the noise generation mechanisms in those plumes. The probe features sensors mounted inside a solid sphere. The associated electronics for the probe are contained within the sphere and the associated handle for the probe. More importantly, the design of the probe has desirable properties that reduce the bias errors associated with determining the acoustic pressure and velocity using finite sum and difference techniques. The diameter of the probe dictates the lower and upper operating frequencies for the probe, where accurate measurements can be acquired. The current probe design implements a sphere diameter of 1 in. (2.5 cm), which limits the upper operating frequency to about 4.5 kHz. The sensors are operational up to much higher frequencies, and could be used to acquire pressure data at higher frequencies, but the energy-based measurements are limited to that upper frequency. Larger or smaller spherical probes could be designed to go to lower or higher frequency range
Document ID
20120006595
Acquisition Source
Stennis Space Center
Document Type
Other - NASA Tech Brief
Authors
Gee, Kent L.
(Brigham Young Univ. Provo, UT, United States)
Sommerfeldt, Scott D.
(Brigham Young Univ. Provo, UT, United States)
Blotter, Jonathan D.
(Brigham Young Univ. Provo, UT, United States)
Date Acquired
August 25, 2013
Publication Date
January 1, 2012
Publication Information
Publication: NASA Tech Briefs, January 2012
Subject Category
Acoustics
Report/Patent Number
SSC-00355
Distribution Limits
Public
Copyright
Public Use Permitted.
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