Piezoelectric transducers and applications:
Gespeichert in:
Format: | Buch |
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Sprache: | English |
Veröffentlicht: |
Berlin [u.a.]
Springer
2004
|
Schlagworte: | |
Online-Zugang: | Inhaltsverzeichnis |
Beschreibung: | Literaturangaben |
Beschreibung: | XIX, 319 S. graph. Darst. : 24 cm |
ISBN: | 3540209980 |
Internformat
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Datensatz im Suchindex
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adam_text | Contents
Associated Editors and Contributors XVII
1 Fundamentals on Piezoelectricity 1
1.1 Introduction 1
1.2 The Piezoelectric Effect 2
1.3 Mathematical Formulation of the Piezoelectric Effect. A
First Approach 4
1.4 Piezoelectric Contribution to Elastic Constants 5
1.5 Piezoelectric Contribution to Dielectric Constants 5
1.6 The Electric Displacement and the Internal Stress 6
1.7 Basic Model of Electric Impedance for a Piezoelectric
Material Subjected to a Variable Electric Field 7
1.8 Natural Vibrating Frequencies 12
1.8.1 Natural Vibrating Frequencies Neglecting Losses 12
1.8.2 Natural Vibrating Frequencies with Losses 16
1.8.3 Forced Vibrations with Losses. Resonant
Frequencies 20
1.9 Introduction to the Microgravimetric Sensor 26
Appendix l.A 29
The Butterworth Van Dyke Model for a Piezoelectric
Resonator 29
l.A.l Rigorous Obtaining of the Electrical Admittance of a
Piezoelectric Resonator. Application to AT Cut Quartz 29
1 .A.2 Expression for the Quality Factor as a Function of
Equivalent Electrical Parameters 36
References 37
2 Overview of Acoustic Wave Microsensors 39
2.1 Introduction 39
2.2 General Concepts 40
2.3 Sensor Types 42
2.3.1 Quartz Crystal Thickness Shear Mode Sensors 42
2.3.2 Thin Film Thickness Longitudinal Mode Sensors 44
2.3.3 Surface Acoustic Wave Sensors 44
2.3.4 Shear Horizontal Acoustic Plate Mode Sensors 47
X Contents
2.3.5 Surface Transverse Wave Sensors 47
2.3.6 Love Wave Sensors 48
2.3.7 Flexural Plate Wave Sensors 48
2.4 Operating Modes 49
2.5 Sensitivity 51
References 53
3 Models for Piezoelectric Transducers Used in Broadband
Ultrasonic Applications 55
3.1 Introduction 55
3.2 The Electromechanical Impedance Matrix 56
3.3 Equivalent Circuits 60
3.4 Broadband Piezoelectric Transducers as Two Port
Networks. Transfer Functions 63
References 67
4 Models for Resonant Sensors 69
4.1 Introduction 69
4.2 The Resonance Phenomenon 69
4.3 Concepts of Piezoelectric Resonator Modeling 70
4.4 The Equivalent Circuit of a Quartz Crystal Resonator 75
4.5 Four Important Conclusions 78
4.5.1 The Sauerbrey Equation 78
4.5.2 Kanazawa s Equation 79
4.5.3 Resonant Frequencies 79
4.5.4 Motional Resistance 80
Appendix 4.A 80
4.A.1 Introduction 80
4.A.2 The Coated Piezoelectric Quartz Crystal. Analytical
Solution 81
4.A.3 The Transmission Line Model 85
4.A.4 Special Cases 91
References 99
5 Interface Electronic Systems for Broadband Ultrasonic
Applications 101
5.1 Introduction 101
5.2 General Interface Schemes for an Efficient Coupling of
Broadband Piezoelectric Transducers 102
Contents XI
5.3 Electronic Circuits Used for the Generation of High
Voltage Driving Pulses and Signal Reception in Broadband
Piezoelectric Applications 104
5.3.1 Some Classical Circuits to Drive Ultrasonic
Transducers 104
5.3.2 Electronic System Developed for the Efficient Pulsed
Driving of High Frequency Transducers 106
5.3.3 Electronic Circuits in Broadband Signal Reception.. 109
References 110
6 Interface Electronic Systems for AT Quartz Crystal
Microbalance Sensors 111
6.1 Introduction 111
6.2 A Suitable Model for Including a QCMS as Additional
Component in an Electronic Circuit 112
6.3 Critical Parameters for Characterizing the QCMS 113
6.4 Systems for Measuring Sensor Parameters and their
Limitations 115
6.4.1 Impedance or Network Analysis 116
6.4.2 Decay and Impulse Excitation Methods 117
6.4.3 Oscillators 121
6.4.4 Parallel Capacitance Compensation Techniques 130
6.4.5 The Transfer Function Method 132
6.5 Conclusions 133
Appendix 6.A 134
Critical Frequencies of a Resonator Modeled as a BVD
Circuit 134
6.A.1 Equations of Admittance and Impedance 134
6.A.2 Critical Frequencies 136
6.A.3 The Admittance Diagram 138
References 140
7 Modified Piezoelectric Surfaces 141
7.1 Introduction 141
7.2 Metallic Deposition 141
7.2.1 Vacuum Methods 142
7.3 Electrochemical Method 143
XII Contents
7.3.1 Technique Based on Glued Solid Foil (Nickel, Iron,
Stainless Steel...) 145
7.3.2 Organic Film Preparation 146
7.3.3 Monolayer assemblies 146
7.4 Biochemical Modifications 149
7.4.1 Direct Immobilization of Biomolecules (Adsorption,
Covalent Bonding) 149
7.4.2 Entrapping of Biomolecules (Electrogenerated
Polymers: Enzyme, Antibodies, Antigens...) 150
7.4.3 DNA Immobilization 150
References 151
8 Sonoelectrochemistry 153
8.1 Introduction 153
8.2 Basic Consequences of Ultrasound 154
8.3 Experimental Arrangements 154
8.4 Applications 156
8.4.1 Sonoelectroanalysis 157
8.4.2 Sonoelectrosynthesis 157
8.4.3 Ultrasound and Bioelectrochemistry 157
8.4.4 Corrosion, Electrodeposition and Nanopowders 158
8.4.5 Waste Treatment and Digestion 159
8.4.6 Multi frequency Insonation 159
8.5. Final Remarks 159
References 159
9 Chemical Sensors 161
9.1 Introduction 161
9.2 Electrochemical Sensors 163
9.3 Potentiometric Sensors 164
9.4 Amperometric Sensors 166
9.5 Optical Sensors 168
9.6 Acoustic Chemical Sensors 170
9.7 Calorimetric Sensors 171
References 171
10 Biosensors. Natural Systems and Machines 173
10.1 Introduction 173
10.2 General Principle of Cell Signaling 173
Contents XIII
10.3 Biosensors 177
10.3.1 Molecular Transistor 181
10.3.2 Analogy and Difference of Biological System and
Piezoelectric Device 181
References 183
11 Fundamentals of Electrochemistry 185
11.1 Introduction 185
11.2 What is an Electrode Reaction? 185
11.3 Electrode Potentials 187
11.4 The Rates of Electrode Reactions 188
11.5 How to Investigate Electrode Reactions
Experimentally 189
11.6 Electrochemical Techniques and Combination with Non
Electrochemical Techniques 191
11.7 Applications 192
11.8 Bibliography 193
11.9 Glossary of Symbols 193
References 194
12 Viscoelastic Properties of Macromolecules 195
12.1 Introduction 195
12.2 Molecular Background of Viscoelasticity of Polymers .196
12.3 Shear Modulus, Shear Compliance and Viscosity 199
12.4 The Temperature Frequency Equivalence 205
12.5 Conclusions 210
References 211
13 Combination of Quartz Crystal Microbalance with other
Techniques 213
13.1 Introduction 213
13.2 Electrochemical Quartz Crystal Microbalance and other
Techniques 214
References 222
14 Ultrasonic Systems for Non Destructive Testing Using
Piezoelectric Transducers 225
14.1 Generalities about Ultrasonic NDT 225
XIV Contents
14.1.1 Some Requirements for the Ultrasonic Responses in
NDT Applications 226
14.2 Through Transmission and Pulse Echo Piezoelectric
Configurations in NDT Ultrasonic Transceivers 227
14.3 Analysis in the Frequency and Time Domains of
Ultrasonic Transceivers in Non Destructive Testing
Processes 229
14.4 Multi Channel Schemes in Ultrasonic NDT Applications
for High Resolution and Fast Operation 232
14.4.1 Parallel Multi Channel Control of Pulse Echo
Transceivers for Beam Focusing and Scanning Purposes. 233
14.4.2 Electronic Sequential Scanning of Ultrasonic Beams
for Fast Operation in NDT 235
References 237
15 Ultrasonic Hyperthermia 241
15.1 Introduction 241
15.2 Ultrasonic Fields 241
15.3 Ultrasonic Generation 243
15.3.1 Piezoelectric Material 244
15.3.2 The Therapy Transducer 244
15.3.3 Additional Quality Indicators 245
15.3.4 Beam Non Uniformity Ratio 245
15.3.5 Effective Radiating Area (ERA) 246
15.4 Wave Propagation in Tissue 246
15.4.1 Propagation Velocity 246
15.4.2 Acoustic Impedance 246
15.4.3 Attenuation 247
15.5 Ultrasonic Hyperthermia 248
15.6 Focusing Ultrasonic Transducers 249
15.6.1 Spherically Curved Transducers 250
15.6.2 Ultrasonic Lenses 250
15.6.3 Electrical Focusing 250
15.6.4 Transducer Arrays 251
15.6.5 Interstitial Transducers 251
15.7 Trends 253
References 253
Contents XV
16 Data analysis and Interpretation in Bulk Acoustic Wave
Thickness Shear Mode Sensors 255
16.1. Introduction 255
16.2. Transmission Line Model, Experimental Data and
Interpretation 256
16.2.1. Experimental Parameters for Sensor
Characterization 258
16.2.2 Interpretation of Simple Cases 262
6.3.2. Limits of the Simple Cases 269
16.3 The General Case. The Problem of Data Analysis and
Interpretation 275
16.3.1 Different Strategies to Face the Problem 276
16.3.2 Additional Considerations. Calibration 283
16.3.3. Other Effects. The N layer Model 284
References 285
Appendix A Fundamentals of Electrostatics 287
A.I Principles of Electrostatics 287
A.2 The Electric Field 288
A.3 The Electrostatic Potential 289
A.4 Fundamental Equations of Electrostatics 290
A.5 The Electric Field in Matter. Polarization and Electric
Displacement 291
Appendix B Physical Properties of Crystals 299
B.I Introduction 299
B.2 Elastic Properties 299
B.2.1 Stresses and Strains 300
B.2.2 Elastic Constants. Generalized Hooke s Law 306
B.3 Dielectric Properties 310
B.4 Coefficients of Thermal Expansion 311
B.5 Piezoelectric Properties 311
Index 315
|
any_adam_object | 1 |
building | Verbundindex |
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callnumber-raw | TK7872.P54 |
callnumber-search | TK7872.P54 |
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dewey-sort | 3681 12 |
dewey-tens | 680 - Manufacture of products for specific uses |
discipline | Physik Handwerk und Gewerbe / Verschiedene Technologien Elektrotechnik Mess-/Steuerungs-/Regelungs-/Automatisierungstechnik |
format | Book |
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genre_facet | Aufsatzsammlung |
id | DE-604.BV019316104 |
illustrated | Illustrated |
indexdate | 2024-07-09T19:57:29Z |
institution | BVB |
isbn | 3540209980 |
language | English |
oai_aleph_id | oai:aleph.bib-bvb.de:BVB01-012783646 |
oclc_num | 54685616 |
open_access_boolean | |
owner | DE-703 DE-860 DE-91 DE-BY-TUM DE-706 DE-83 |
owner_facet | DE-703 DE-860 DE-91 DE-BY-TUM DE-706 DE-83 |
physical | XIX, 319 S. graph. Darst. : 24 cm |
publishDate | 2004 |
publishDateSearch | 2004 |
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publisher | Springer |
record_format | marc |
spelling | Piezoelectric transducers and applications Antonio Arnau (ed.) Berlin [u.a.] Springer 2004 XIX, 319 S. graph. Darst. : 24 cm txt rdacontent n rdamedia nc rdacarrier Literaturangaben Piezoelectric transducers Mikrosensor (DE-588)4561097-6 gnd rswk-swf Oberflächenwellenelement (DE-588)4172268-1 gnd rswk-swf Elektrochemischer Sensor (DE-588)4151768-4 gnd rswk-swf Biosensor (DE-588)4193016-2 gnd rswk-swf Akustischer Sensor (DE-588)4139328-4 gnd rswk-swf Schwingquarz (DE-588)4180559-8 gnd rswk-swf Piezoelektrischer Wandler (DE-588)4046055-1 gnd rswk-swf Ultraschallwandler (DE-588)4206350-4 gnd rswk-swf (DE-588)4143413-4 Aufsatzsammlung gnd-content Piezoelektrischer Wandler (DE-588)4046055-1 s Ultraschallwandler (DE-588)4206350-4 s Mikrosensor (DE-588)4561097-6 s Elektrochemischer Sensor (DE-588)4151768-4 s DE-604 Biosensor (DE-588)4193016-2 s Akustischer Sensor (DE-588)4139328-4 s Schwingquarz (DE-588)4180559-8 s Oberflächenwellenelement (DE-588)4172268-1 s Arnau, Antonio Sonstige oth HBZ Datenaustausch application/pdf http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=012783646&sequence=000002&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA Inhaltsverzeichnis |
spellingShingle | Piezoelectric transducers and applications Piezoelectric transducers Mikrosensor (DE-588)4561097-6 gnd Oberflächenwellenelement (DE-588)4172268-1 gnd Elektrochemischer Sensor (DE-588)4151768-4 gnd Biosensor (DE-588)4193016-2 gnd Akustischer Sensor (DE-588)4139328-4 gnd Schwingquarz (DE-588)4180559-8 gnd Piezoelektrischer Wandler (DE-588)4046055-1 gnd Ultraschallwandler (DE-588)4206350-4 gnd |
subject_GND | (DE-588)4561097-6 (DE-588)4172268-1 (DE-588)4151768-4 (DE-588)4193016-2 (DE-588)4139328-4 (DE-588)4180559-8 (DE-588)4046055-1 (DE-588)4206350-4 (DE-588)4143413-4 |
title | Piezoelectric transducers and applications |
title_auth | Piezoelectric transducers and applications |
title_exact_search | Piezoelectric transducers and applications |
title_full | Piezoelectric transducers and applications Antonio Arnau (ed.) |
title_fullStr | Piezoelectric transducers and applications Antonio Arnau (ed.) |
title_full_unstemmed | Piezoelectric transducers and applications Antonio Arnau (ed.) |
title_short | Piezoelectric transducers and applications |
title_sort | piezoelectric transducers and applications |
topic | Piezoelectric transducers Mikrosensor (DE-588)4561097-6 gnd Oberflächenwellenelement (DE-588)4172268-1 gnd Elektrochemischer Sensor (DE-588)4151768-4 gnd Biosensor (DE-588)4193016-2 gnd Akustischer Sensor (DE-588)4139328-4 gnd Schwingquarz (DE-588)4180559-8 gnd Piezoelektrischer Wandler (DE-588)4046055-1 gnd Ultraschallwandler (DE-588)4206350-4 gnd |
topic_facet | Piezoelectric transducers Mikrosensor Oberflächenwellenelement Elektrochemischer Sensor Biosensor Akustischer Sensor Schwingquarz Piezoelektrischer Wandler Ultraschallwandler Aufsatzsammlung |
url | http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=012783646&sequence=000002&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA |
work_keys_str_mv | AT arnauantonio piezoelectrictransducersandapplications |