Porous Materials for Sound Absorption and Transmission Control
暂无分享,去创建一个
[1] Malcolm J. Crocker,et al. Measurement of Transmission Loss of Panels by the Direct Determination of Transmitted Acoustic Intensity , 1981 .
[2] H. B. Kingsbury,et al. On the dynamic behavior of poroelastic materials , 1979 .
[3] Hideo Utsuno,et al. Transfer function method for measuring characteristic impedance and propagation constant of porous materials , 1989 .
[4] Yvan Champoux,et al. On acoustical models for sound propagation in rigid frame porous materials and the influence of shape factors , 1992 .
[5] M. Biot. Theory of Propagation of Elastic Waves in a Fluid‐Saturated Porous Solid. I. Low‐Frequency Range , 1956 .
[6] J. Stuart Bolton,et al. A Model for Sound Absorption by and Sound Transmission Through Limp Fibrous Layers , 1995 .
[7] Keith Attenborough,et al. Acoustical characteristics of porous materials , 1982 .
[8] Herbert L. Kuntz. High‐intensity sound in air saturated, fibrous bulk porous materials , 1982 .
[9] Raymond Panneton,et al. The effects of multilayer sound-absorbing treatments on the noise field inside a plate backed cavity , 1996 .
[10] F. Fahy,et al. Sound and Structural Vibration: Radiation, Transmission and Response , 1987 .
[11] Leo L. Beranek,et al. Acoustic Impedance of Porous Materials , 1942 .
[12] Robert F. Lambert,et al. Nonlinear wave propagation through rigid porous materials. I: Nonlinear parametrization and numerical solutions , 1990 .
[13] C. Zwikker,et al. Sound Absorbing Materials , 1949 .
[14] Leo L. Beranek,et al. Measurement of the Transmission of Sound through Lightweight Structures , 1946 .
[15] J. S. Bolton,et al. Normal incidence sound transmission through double-panel systems lined with relatively stiff, partially reticulated polyurethane foam , 1993 .
[16] Robert F. Lambert. Propagation of sound in highly porous open‐cell elastic foams , 1983 .
[17] Allan D. Pierce,et al. Acoustics: An Introduction to Its Physical Principles and Applications , 1981 .
[18] Y. Kawasima,et al. Sound propagation in fiber block as a composite medium.pt.3. , 1960 .
[19] Robert F. Lambert. Surface acoustic admittance of highly porous open‐cell, elastic foams , 1983 .
[20] P. Morse. Vibration and Sound , 1949, Nature.
[21] J. S. Bolton,et al. SOUND TRANSMISSION THROUGH MULTI-PANEL STRUCTURES LINED WITH ELASTIC POROUS MATERIALS , 1996 .
[22] Yvan Champoux,et al. Measurement of the characteristic impedance and propagation constant of materials having high flow resistivity , 1991 .
[23] Keith Attenborough,et al. Application of a generalized acoustic propagation theory to fibrous absorbents , 1971 .
[24] Pascal Rebillard,et al. Modelization at oblique incidence of layered porous materials with impervious screens , 1990 .
[25] Gilles A. Daigle,et al. Electronic system for the measurement of flow resistance , 1988 .
[26] Claude Depollier,et al. Acoustical properties of partially reticulated foams with high and medium flow resistance , 1986 .
[27] Leo L. Beranek,et al. Acoustical Properties of Homogeneous, Isotropic Rigid Tiles and Flexible Blankets , 1947 .
[28] André Cops,et al. Absorption characteristics of an acoustic material at oblique incidence measured with the two-microphone technique , 1988 .
[29] K. U. Ingard. Locally and Nonlocally Reacting Flexible Porous Layers; A Comparison of Acoustical Properties , 1980 .
[30] Colin H. Hansen,et al. ENGINEERING NOISE CONTROL: Theory and Practice , 1988 .
[31] M. Biot. Theory of Propagation of Elastic Waves in a Fluid-Saturated Porous Solid. II. Higher Frequency Range , 1956 .
[32] Yeon June Kang,et al. A finite element model for sound transmission through foam‐lined double‐panel structures , 1996 .
[33] E. Huygens,et al. MDI comfort cushioning for automotive applications , 1994 .
[34] Yeon June Kang,et al. Sound transmission through elastic porous wedges and foam layers having spatially graded properties , 1997 .
[35] Robert J. S. Brown,et al. Connection between formation factor for electrical resistivity and fluid‐solid coupling factor in Biot’s equations for acoustic waves in fluid‐filled porous media , 1980 .
[36] Yeon June Kang,et al. Finite element modeling of isotropic elastic porous materials coupled with acoustical finite elements , 1995 .
[37] G. A. Work,et al. Sound Transmission through Multiple Structures Containing Flexible Blankets , 1949 .
[38] J.H.B. Zarek,et al. Sound absorption in flexible porous materials , 1978 .
[39] Yvan Champoux,et al. Air‐based system for the measurement of porosity , 1991 .
[40] H. B. Kingsbury,et al. Dynamic characterization of poroelastic materials , 1979 .
[41] J. Allard. Propagation of Sound in Porous Media: Modelling Sound Absorbing Materials , 1994 .
[42] André Cops,et al. Comparative Study Between the Sound Intensity Method and the Conventional Two-Room Method to Calculate the Sound Transmission Loss of Wall Construction , 1984 .
[43] W. Lauriks,et al. Displacement-based finite element method for guided wave propagation problems: Application to poroelastic media , 1996 .
[44] Yeon June Kang,et al. Optimal Design of Acoustical Foam Treatments , 1996 .
[45] Keith Attenborough,et al. The influence of microstructure on propagation in porous fibrous absorbents , 1971 .
[46] Robert F. Lambert,et al. Nonlinear wave propagation through rigid porous materials. II, Approximate analytical solutions , 1990 .