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Dispersion Engineering in Elastic Guided Waves by Phononic Crystals and Metamaterials

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dc.contributor.advisor김윤영-
dc.contributor.author마평식-
dc.date.accessioned2017-07-13T06:13:35Z-
dc.date.available2017-07-13T06:13:35Z-
dc.date.issued2014-02-
dc.identifier.other000000017689-
dc.identifier.urihttps://hdl.handle.net/10371/118367-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 기계항공공학부, 2014. 2. 김윤영.-
dc.description.abstractan inputted wave is distorted due to an excitation of multiple modes and their strongly dispersive nature. Here, a method to control the dispersion relations of multiple guided modes by phononic crystals and elastic metamaterials is developed.
In this thesis, dispersion relations of guided waves are engineered in frequency and wavenumber domains. The main contributions are to separate multiple guided modes, to suppress an undesired mode, and to reduce group velocity dispersion. Multiple shear-horizontal waves in a plate are separated by engineered phononic crystal plates. The dispersion relation of each guided mode is manipulated in the wavenumber domain to obtain different propagation directions. Also, the excitation of undesired wave modes is suppressed by opening the forbidden band gap of phononic crystals over a target frequency range. A wave distortion due to the dispersion effect is prevented by employing phononic crystals and anisotropic metamaterials
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dc.description.abstractthe dispersion relation in the frequency domain is tailored to exhibit a constant group velocity. Realization of phononic crystals and elastic metamaterials is a challenging task to achieve the desired wave properties for multiple wave modes. Here, systematic engineering methods including size, shape, and topology optimization methods are proposed to obtain proper structures. The lattice parameters of phononic crystals and a topology of a unit structure in anisotropic metamaterials can be designed through the suggested methods. To confirm wave properties in the engineered waveguides, numerical simulations and ultrasonic wave experiments are conducted. In experiments, ultrasonic transducers are properly designed to selectively excite a target wave mode and adjust its beam pattern in an elastic waveguide. Through this research, it is demonstrated that phononic crystals and elastic metamaterials can be effectively exploited to engineer wave properties in elastic waveguides.-
dc.description.abstractThis dissertation presents manipulation of elastic guided waves by artificial structured materials: phononic crystals and metamaterials. Recently, due to their ability to control waves, artificial materials for electromagnetic waves have been extensively studied, leading to interesting results such as sub-diffraction lenses and cloaking devices. This study demonstrates that phononic crystals and elastic metamaterials can provide the promising functionalities in elastic guided waves. The main focus of this investigation is on tailoring multiple guided modes in an elastic waveguide. In a waveguide, multiple guided waves exhibit complex behavior which causes problematic issues in practical applications-
dc.description.tableofcontentsABSTRACT i
LIST OF TABLES vi
LIST OF FIGURES vii

CHAPTER 1 INTRODUCTION 1
1.1 Introductory remarks 1
1.2 Photonic crystals and electromagnetic metamaterials 3
1.3 Phononic crystals and acoustic metamaterials 5
1.4 Motivation and research objectives 7
1.5 Outline of this thesis 10

CHAPTER 2 ANALYSIS OF ELASTIC WAVE PROPAGATION IN PERIODIC MEDIUM 13
2.1 Elastic wave propagation in a homogeneous infinite medium 13
2.2 Elastic wave propagation in two-dimensional periodic medium 17
2.2.1 Plane wave expansion method 18
2.2.2 Finite element method 20
2.2.3 Numerical examples 22
2.3 Elastic wave propagation in a waveguide 25
2.3.1 Elastic wave propagation in a homogeneous waveguide 25
2.3.2 Elastic wave propagation in a periodic waveguide 27

CHAPTER 3 DISPERSION ENGINEERING IN WAVENUMBER DOMAIN BY PHONONIC CRYSTALS 37
3.1 Overview 37
3.2 Dispersion engineering of two-dimensional phononic crystals 41
3.2.1 Design formulation for self-collimating phononic crystals 41
3.2.2 Design examples 44
3.3 Mode separation of guided waves in a phononic crystal plate 47
3.3.1 Selection of phononic crystal plates for mode separation 48
3.3.2 Analysis of dispersion relations of phononic crystal plate 49
3.3.3 Numerical and experimental demonstration of mode separation 51
3.4 Concluding remarks 55

CHAPTER 4 DISPERSION ENGINEERING IN FREQUENCY DOMAIN BY PHONONINC CRYSTALS 69
4.1 Overview 69
4.2 Group velocity dispersion in an elastic waveguide 72
4.2.1 Group velocity dispersion of ultrasonic waves in a waveguide 72
4.2.2 Dispersion effect in two-dimensional phononic crystals 74
4.3 Dispersion engineering for ultrasonic waveguide transducer 77
4.3.1 Design of phononic crystal-based waveguide structures 78
4.3.2 Numerical analysis of phononic crystal-based waveguides 81
4.3.3 Demonstration of wave propagations in the engineered waveguide 82
4.4 Concluding remarks 86

CHAPTER 5 DISPERSION ENGINEERING BY ANISOTROPIC METAMATERIALS 100
5.1 Overview 100
5.2 Dispersion engineering by anisotropic metamaterials 103
5.2.1 Design formulation of metamaterial-based waveguide 103
5.2.2 Design of metamaterial-based waveguide 107
5.3 Realization of anisotropic metamaterial by topology optimization 111
5.3.1 Formulation of topology design for anisotropic metamaterials 112
5.3.2 Design examples of elastic metamaterial 116
5.3.3 Numerical analysis of metamaterial-based waveguide 120
5.4 Concluding remarks 123

CHAPTER 6 CONCLUSIONS 136

ACKNOWLEDGEMENTS 139
REFERENCES 140
ABSTRACT (KOREAN) 153
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dc.formatapplication/pdf-
dc.format.extent7383489 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectUltrasonic guided waves-
dc.subjectDispersion relation-
dc.subjectPhononic crystals-
dc.subject.ddc621-
dc.titleDispersion Engineering in Elastic Guided Waves by Phononic Crystals and Metamaterials-
dc.typeThesis-
dc.description.degreeDoctor-
dc.citation.pagesviii, 154-
dc.contributor.affiliation공과대학 기계항공공학부-
dc.date.awarded2014-02-
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