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Dive into the research topics where Zhao Hong-Gang is active.

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Featured researches published by Zhao Hong-Gang.


Chinese Physics Letters | 2006

Sound Absorption of Locally Resonant Sonic Materials

Zhao Hong-Gang; Liu Yao-Zong; Yu Dian-Long; Wang Gang; Wen Xi-sen

The acoustic properties of locally resonant sonic materials with viscosity are theoretically investigated by using the multiple-scattering approach. We find that the absorption of a two-layer slab dominates the wave attenuation in the resonant frequency region under the condition of moderate or high viscous level. The fundamental mechanism operating in local resonance for absorption is investigated for the viability by the mode translation in the scattering process of a single scatterer. Finally the absorption performance in a multi-layer system is discussed.


Chinese Physics Letters | 2007

Directional Propagation Characteristics of Flexural Waves in Two-Dimensional Thin-Plate Phononic Crystals

Yu Dian-Long; Wang Gang; Zhao Hong-Gang; Liu Yao-Zong; Wen Xi-sen

The propagation characteristics of flexural waves in two-dimensional thin-plate phononic crystals (PCs) are analysed with the plane wave expansion (PWE) method to yield phase constant surfaces, which predict high directivity of flexural wave propagation for certain frequencies outside the band gap. The prediction is validated through the computation of the harmonic responses of a finite structure with 9×9 unit cells. The results indicate that directional propagation of flexural waves is an inherent characteristic of two-dimensional thin-plate PCs while specific effects of the directional propagation in a finite structure vary with the positions of excitations.


Science China-technological Sciences | 2008

Study on the vibration band gap and vibration attenuation property of phononic crystals

Wang Gang; Yu Dian-Long; Zhao Hong-Gang; Liu Yao-Zong; Wen Xi-sen

Phononic crystals (PCs) are functional materials with periodic structures and elastic wave (vibration) band gaps, where propagation of vibrations with frequencies within band gaps is forbidden. PCs with finite periods can restrain the propagation of vibrations with frequencies in band gaps and thus has vibration attenuation property. Worldwide, many institutions and researchers are engaged in the research of PCs, however, studies on the vibration attenuation property of PCs are still limited. In this paper, we report our study of band gaps and vibration attenuation properties of 1) a simplified PC—periodic mass-spring structures, 2) longitudinal vibration of one-dimensional (1D-), 2D-, 3D-PCs, and 3) the flexural vibration of 1D-and 2D-PCs. These studies provide a foundation for the applications of PCs in vibration attenuation.


Chinese Physics Letters | 2005

Experimental and Theoretical Research on the Vibrational Gaps in Two-Dimensional Three-Component Composite Thin Plates

Yu Dian-Long; Liu Yao-Zong; Qiu Jing; Zhao Hong-Gang; Liu Zhi-ming

We investigate the vibrational band gaps in a thin plate of two-dimensional phononic crystals with the locally resonant structure in theory and experiment. The experimental sample is optimized based on the simple analytical model. The experimental results are in good agreement with the theoretical calculation by the finite element method. The findings will be significant for applications of phononic crystals in the field of vibration isolation.


Chinese Physics B | 2014

Acoustic anechoic layers with singly periodic array of scatterers: Computational methods, absorption mechanisms, and optimal design

Yang Hai-Bin; Li Yue; Zhao Hong-Gang; Wen Xi-sen

The acoustic properties of anechoic layers with a singly periodic array of cylindrical scatterers are investigated. A method combined plane wave expansion and finite element analysis is extended for out-of-plane incidence. The reflection characteristics of the anechoic layers with cavities and locally resonant scatterers are discussed. The backing is a steel plate followed by an air half space. Under this approximate zero transmission backing condition, the reflection reduction is induced by the absorption enhancement. The absorption mechanism is explained by the scattering/absorption cross section of the isolated scatterer. Three types of resonant modes which can induce efficient absorption are revealed. Due to the fact that the frequencies of the resonant modes are related to the size of the scatterers, anechoic layers with scatterers of mixed size can broaden the absorption band. A genetic optimization algorithm is adopted to design the anechoic layer with scatterers of mixed size at a desired frequency band from 2 kHz to 10 kHz for normal incidence, and the influence of the incident angle is also discussed.


Chinese Physics B | 2013

Acoustic scattering from a submerged cylindrical shell coated with locally resonant acoustic metamaterials

Li Li; Cai Li; Zhao Hong-Gang; Wen Xi-sen

Using the multilayered cylinder model, we study acoustic scattering from a submerged cylindrical shell coated with locally resonant acoustic metamaterials, which exhibit locally negative effective mass densities. A spring model is introduced to replace the traditional transfer matrix, which may be singular in the negative mass region. The backscattering form function and the scattering cross section are calculated to discuss the acoustic properties of the coated submerged cylindrical shell.


Chinese Physics B | 2015

Effects of core position of locally resonant scatterers on low-frequency acoustic absorption in viscoelastic panel*

Zhong Jie; Zhao Hong-Gang; Yin Jianfei; Yang Hai-Bin

Locally resonant sonic materials, due to their ability to control the propagation of low-frequency elastic waves, have become a promising option for underwater sound absorption materials. In this paper, the finite element method is used to investigate the absorption characteristics of a viscoelastic panel periodically embedded with a type of infinite-long non-coaxially cylindrical locally resonant scatterers (LRSs). The effect of the core position in the coating layer of the LRS on the low-frequency (500 Hz–3000 Hz) sound absorption property is investigated. With increasing the longitudinal core eccentricity e, there occur few changes in the absorptance at the frequencies below 1500 Hz, however, the absorptance above 1500 Hz becomes gradually better and the valid absorption (with absorptance above 0.8) frequency band (VAFB) of the viscoelastic panel becomes accordingly broader. The absorption mechanism is revealed by using the displacement field maps of the viscoelastic panel and the steel slab. The results show two typical resonance modes. One is the overall resonance mode (ORM) caused by steel backing, and the other is the core resonance mode (CRM) caused by LRS. The absorptance of the viscoelastic panel by ORM is induced mainly by the vibration of the steel slab and affected little by core position. On the contrary, with increasing the core eccentricity, the CRM shifts toward high frequency band and decouples with the ORM, leading to two separate absorption peaks and the broadened VAFB of the panel.


Chinese Physics B | 2008

Comparison of the mechanism of gap formation for tri- and bi-component phononic crystal

Zhao Hong-Gang; Liu Yao-Zong; Yu Dian-Long; Wang Gang; Wen Xi-sen

Using an exact Mie scattering solution, this paper investigates the mode conversions during the Mie scattering of a single bi- or one-component sphere in unbounded epoxy. Then the formation mechanism of the first complete gap in the corresponding tri- or bi-component phononic crystal is investigated by the multiple-scattering method. It is shown that the heavy density of the scatterer plays an essential role in the Mie resonance and the formation of the gaps for both types of the phononic crystals. For the tri-component phononic crystal, the gap is mainly induced by the Mie resonance of the single scatterer. For the bi-component phononic crystal, the transverse wave (by mode-conversion during the Mie scattering under a longitudinal wave incidence) is modulated by the periodicity and governed by the Bloch theory, which induces the gap cooperatively.


Archive | 2014

Light low-frequency wideband film metamaterial sound isolator

Wu Jian; Wang Gang; Bai Xiaochun; Geng Mingxin; Lv Pinghai; An Cuicui; Zhao Hong-Gang; Fan Chuang


Archive | 2007

Analysis of the anechoic properties of viscoelastic coatings with periodically distributed cavities

Zhao Hong-Gang; Liu Yao-Zong; Yu Dian-Long; Wen Xi-sen

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Wang Gang

National University of Defense Technology

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Liu Yao-Zong

National University of Defense Technology

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Wen Xi-sen

National University of Defense Technology

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Yu Dian-Long

National University of Defense Technology

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Cai Li

National University of Defense Technology

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Han Xiao-Yun

National University of Defense Technology

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Li Li

National University of Defense Technology

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Liu Zhi-ming

National University of Defense Technology

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Qiu Jing

National University of Defense Technology

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