Characterization of nonuniform, tightly packed, facesheet hole layouts (defined here as “hole clustering”) is shown in a normal-incidence, no-flow environment, both experimentally and analytically. Nineteen additively manufactured acoustic liner samples are tested in a normal-incidence impedance tube at various frequencies, sound pressure levels (SPLs), and source types (tonal and broadband). These samples vary in geometry, including the use of both uniformly distributed and hole-clustered facesheets. Resonant frequency differences between these two facesheet types are documented and shown for all cases. An impedance prediction model is developed, relying on radiating piston theory to capture impedance changes associated with hole clustering in a no-flow environment. This includes samples with both constant- and variable-depth chambers backing the facesheet. It is shown experimentally that a nonuniformly distributed, hole-clustered facesheet can provide improved lower-frequency absorption compared to a standard uniformly distributed facesheet. This behavior can be accurately predicted at low to mid SPLs (<= 120 dB) for frequencies up to 3000 Hz, at least for the acoustic liner geometries and aeroacoustic environment considered in this study.
Assessment of Acoustic Liner Hole Clustering in a Normal-Incidence Impedance Tube
AIAA Journal ; 1-16
01.08.2025
Aufsatz (Zeitschrift)
Elektronische Ressource
Englisch
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