Modern Piezoelectric Energy-Harvesting Materials by Christopher R. Bowen, Vitaly Yu. Topolov, Hyunsun Alicia Kim

By Christopher R. Bowen, Vitaly Yu. Topolov, Hyunsun Alicia Kim

This booklet covers the subject of vibration strength harvesting utilizing piezoelectric fabrics. Piezoelectric fabrics are analyzed within the context in their electromechanical coupling, heterogeneity, microgeometry and interrelations among electromechanical houses. Piezoelectric ceramics and composites in accordance with ferroelectrics are complicated fabrics which are appropriate for harvesting mechanical strength from vibrations utilizing inertial strength harvesting which is determined by the resistance of a mass to acceleration and kinematic strength harvesting which the power harvester to the relative flow of other elements of a resource. as well as piezoelectric fabrics, learn efforts to advance optimization equipment for complicated piezoelectric power harvesters also are reviewed. The booklet is critical for experts within the box of contemporary complicated fabrics and may stimulate new powerful piezotechnical applications.

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Levassort F, Thi MP, Hemery H, Marechal P, Tran-Huu-Hue L-P, Lethiecq M (2006) Piezoelectric textured ceramics: effective properties and application to ultrasonic transducers. Ultrasonics 441(Suppl. 1):e621–e626 Chapter 2 Electromechanical Coupling Factors and Their Anisotropy in Piezoelectric and Ferroelectric Materials The ECF characterises the conversion of electrical energy into the mechanical form and the conversion of mechanical energy into the electric form (see work [1, 2] and Sect. 2).

Evolution and future of a technology. Springer, Berlin, pp 131–156 28. Park S-E, Hackenberger W (2002) High performance single crystal piezoelectrics: applications and issues. Curr Opin Solid State Mater Sci 6:11–18 29. Smolensky GA, Bokov VA, Isupov VA, Krainik NN, Pasynkov RE, Sokolov AI, Yushin NK (1985) Physics of ferroelectric phenomena. Nauka, Leningrad (in Russian) 30. Noheda B (2002) Structure and high-piezoelectricity in lead oxide solid solutions. Curr Opin Solid State Mater Sci 6:27–34 31.

IEEE Trans Ultrason Ferroelectr Freq Control 44:445–452 75. Jaffe B, Cook WR, Jaffe H (1971) Piezoelectric ceramics. Academic Press, London 76. Ikegami S, Ueda I, Nagata T (1971) Electromechanical properties of PbTiO3 ceramics containing La and Mn. J Acoust Soc Am 50:1060–1066 77. Xu Y (1991) Ferroelectric materials and their applications. North-Holland, Amsterdam 78. Nagatsuma K, Ito Y, Jyomura S, Takeuchi H, Ashida S (1985) Elastic properties of modified PbTiO3 ceramics with zero temperature coefficients.

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