共 11 条
Deepening subwavelength acoustic resonance via metamaterials with universal broadband elliptical microstructure
被引:4
|作者:
Rowley, William D.
[1
]
Parnell, William J.
[1
]
Abrahams, I. David
[2
]
Voisey, S. Ruth
[3
]
Lamb, John
[3
]
Etaix, Nicolas
[3
]
机构:
[1] Univ Manchester, Sch Math, Oxford Rd, Manchester M13 9PL, Lancs, England
[2] Univ Cambridge, Isaac Newton Inst, 20 Clarkson Rd, Cambridge CB3 0EH, England
[3] Dyson Technol Ltd, Tetbury Hill, Malmesbury SN16 0RP, England
基金:
英国工程与自然科学研究理事会;
关键词:
D O I:
10.1063/1.5022197
中图分类号:
O59 [应用物理学];
学科分类号:
摘要:
Slow sound is a frequently exploited phenomenon that metamaterials can induce in order to permit wave energy compression, redirection, imaging, sound absorption, and other special functionalities. Generally, however, such slow sound structures have a poor impedance match to air, particularly at low frequencies and consequently exhibit strong transmission only in narrow frequency ranges. This therefore strongly restricts their application in wave manipulation devices. In this work, we design a slow sound medium that halves the effective speed of sound in air over a wide range of low frequencies (hence our referral to the microstructure as "broadband"), whilst simultaneously maintaining a near impedance match to air. This is achieved with a rectangular array of acoustically rigid cylinders of elliptical cross section, a microstructure that is motivated by combining transformation acoustics with homogenization. Microstructural parameters are optimized in order to provide the required anisotropic material properties as well as near impedance matching. We then employ this microstructure in order to halve the size of a quarter-wavelength resonator (QWR) or equivalently to halve the resonant frequency of a QWR of a given size. This provides significant space savings in the context of low-frequency tonal noise attenuation in confined environments where the absorbing material is adjacent to the region in which sound propagates, such as in a duct. We employ the term "universal" since we envisage that this microstructure may be employed in a number of diverse applications involving sound manipulation. (C) 2018 Author(s).
引用
收藏
页数:5
相关论文