Sound Absorbing Properties and Optimization Design of Gradient Porous Metal Fibers in High-Temperature Environments[J]. 2018, 52(1): 143-150.
DOI:
Sound Absorbing Properties and Optimization Design of Gradient Porous Metal Fibers in High-Temperature Environments[J]. 2018, 52(1): 143-150.DOI: 10.7652/xjtuxb201801021.
Sound Absorbing Properties and Optimization Design of Gradient Porous Metal Fibers in High-Temperature Environments
To characterize the sound absorbing properties of gradient porous metal fibers at high temperature
a theoretical model is developed by introducing the temperature-dependent parameters of air into the Johnson-Allard model. This model is favorably validated by experiments on porous metal fibers at high temperatures. Further
employing acoustic impedance transfer formulation
another theoretical model for multi-layered gradient metal fibers at high temperature is established. By adopting an optimization strategy
the multi-layered gradient metal fibers are optimized for superior sound absorption. The results reveal that the sound absorbing capacity of the material at high temperature is slightly worse than that in normal temperature. With the increase of porosity or fiber diameter
the sound absorption decreases in low frequency range but increases in medium frequency range. The sound absorption capability of the gradient structure is better than that of homogeneous structure with the same thickness
and the optimal sound absorption can be achieved in given specific conditions. This research is helpful for the application and design of the gradient porous metal fibers in high temperature environments.
LU Tianjian, HE Deping, CHEN Changqing, et al. The multi-functionality of ultra-light porous metals and their applications [J]. Advances in Mechanics, 2006, 36(4): 517-535.
DELENY M E, BAZLEY E N. Acoustical properties of fibrous absorbent materials [J]. Applied Acoustics, 1970, 3(2): 105-116.
MORSE P M, INGARD K U. Theoretical acoustics [M]. Princeton, NJ, USA: Princeton University Press, 1968:.
ALLARD J F. Propagation of sound in porous media [M]. Amsterdam, Holland: Elsevier Elsevier Applied Science, 1994:.
ZHANG Bo, CHENG Tianning, FENG Kai, et al. Sound absorption properties of sintered fibrous metals under high temperature conditions [J]. Journal of Xi'an Jiaotong University, 2008, 42(11): 1327-1331.
SUN Fugui, CHEN Hualing, WU Jiuhui. High-temperature acoustic properties of porous metal materials measuring and research [J]. Journal of Vibration Engineering, 2010, 23(5): 501-507.
WU J H, HU Z P, ZHOU H. Sound absorbing property of porous metal materials with high temperature and high sound pressure by turbulence analogy [J]. Journal of Applied Physics, 2013, 113(19): 194905.
AO Qingbo, TANG Huiping, ZHU Jilei, et al. Sound absorption properties under high temperature of sintering FeCrAl fibrous porous materials [J]. Piezoelectrics and Acoustooptics, 2010, 32(5): 849-851.
MENG H, REN S W, XIN F X, et al. Sound absorption coefficient optimization of gradient sintered metal fiber felts [J]. Science China Technological Sciences, 2016, 59(5): 699-708.
SUTHERLAND W. The viscosity of gases and molecular force [J]. Philosophical Magazine, 1977, 36: 507-531.
LIANG Dewang, LI Bo, RONG Wei. Thermodynamic characteristics of thermally perfect gas and solution of N-S equations [J]. Journal of Nanjing University of Aeronautics and Astronautics, 2003, 35(4): 424-429.
CHUNG J Y, BLAZER D A. Transfer function method of measuring in-duct acoustic properties: II Experiment [J]. The Journal of the Acoustical Society of America, 1980, 68(3): 914-921.
REN S W, MENG H, XIN F X, et al. Ultrathin multi-slit metamaterial as excellent sound absorber: influence of micro-structure [J]. Journal of Applied Physics, 2016, 119(1): 014901.
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