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Piezo-Particulate Composites

Manufacturing, Properties, Applications

Specificaties
Paperback, blz. | Engels
Springer International Publishing | e druk, 2020
ISBN13: 9783030192068
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Springer International Publishing e druk, 2020 9783030192068
Verwachte levertijd ongeveer 9 werkdagen

Samenvatting

This book provides an overview of the current state of the art in novel piezo-composites based on ferroelectrics. Covering aspects ranging from theoretical materials simulation and manufacturing and characterization methods, to the application and performance of these materials, it focuses on the optimization of the material parameters.

Presenting the latest findings on modern composites and highlighting the applications of piezoelectric materials for sensors, transducers and hydro-acoustics, the book addresses an important gap in the physics of active dielectrics and materials science and describes new trends in the research on ferroelectric composites.

Specificaties

ISBN13:9783030192068
Taal:Engels
Bindwijze:paperback
Uitgever:Springer International Publishing

Inhoudsopgave

<p>Preface </p> <p>1. Piezo-active Composites: Classification and Effective Physical Properties</p> <p>1.1. Piezo-active Composites as Modern Active Dielectrics</p> <p>1.2. Criteria of Classifications of Composites </p> <p>1.3. Microgeometry and Connectivity </p> <p>1.4. Effective Physical Properties of Piezo-active Composites </p> 1.4.1. Piezoelectric Medium and Its Characteristics <p></p> <p>1.4.2. Methods for Evaluation of Effective Properties </p> <p>1.4.3. Electromechanical Coupling Factors and Figures of Merit </p> <p>1.4.4. Effects of Addition, Combination and Generation of Properties in Composites Based on Ferroelectrics </p> <p>1.5. Conclusion</p> <p>1.6. References </p> 2. Aspects of Composite Manufacturing&nbsp;&nbsp;&nbsp;&nbsp; <p></p> <p>2.1. Methods for Manufacturing&nbsp; </p> <p>2.2. Role of Ceramic and Polymer Components </p> <p>2.3. Role of Electric Poling </p> <p>2.4. Dielectrophoresis, Its Characteristics and Advantages </p> <p>2.4.1. Effect of Dielectrophoresis Structuring on Electrical Displacement </p> <p>2.4.2. Effect of Dielectrophoresis Structuring on Electromechanical Strain </p> <p>2.4.3. Reproducible Composite Patterns and Related Microgeometric Features&nbsp; </p> <p>2.5. In Situ Structuring and Poling </p> <p>2.6. Conclusion</p> <p>2.7. References </p> <p>3. Experimental Studies on Effective Properties and Related Parameters of Piezo-particulate Composites&nbsp;&nbsp; </p> <p>3.1. Microgeometry of Piezo-particulate Composites </p> <p>3.2. Ferroelectric Behaviour and Related Parameters</p> <p>3.3. Pyroelectric Properties </p> <p>3.4. Dielectric Properties </p> <p>3.5. Enhancing Piezoelectric Sensitivity&nbsp; </p> <p>3.6. Relations Between Piezoelectric Sensitivity and Anisotropy&nbsp; </p> <p>3.7. Conclusion</p> 3.8. References <p></p> <p>4. Modelling of the Composite Structure Formation During Dielectrophoresis&nbsp;&nbsp;&nbsp; </p> <p>4.1. Dielectrophoretic Force</p> <p>4.2. Viscous Drag </p> <p>4.3. Examples of Modelling </p> <p>4.4. Interaction Between Ceramic Particles and Their Influence on the Composite Structure&nbsp; </p> 4.5. Conclusion<p></p> <p>4.6. References </p> <p>5. Prediction of Effective Properties of Composites Based on Ferroelectric Ceramics&nbsp;&nbsp; </p> <p>5.1. 0–3 Connectivity Patterns and Properties of Composites </p> <p>5.2. 1–3 Connectivity Patterns and Properties of Composites&nbsp;&nbsp; </p> <p>5.3. Piezoelectric Properties and Their Anisotropy </p> <p>&lt;5.4. Electromechanical Coupling </p> <p>5.5. Figures of Merit </p> <p>5.6. Improving Piezoelectric Sensitivity </p> <p>5.7. References </p> <p>6. From Microgeometry to Improved Properties of Piezo-particulate Composites </p> <p>References&nbsp; </p> <p>Appendix A. List of Abbreviations </p> Appendix B. About the Authors <p></p> <p>Index&nbsp;</p>

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        Piezo-Particulate Composites