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Ultrasonic Doppler Velocity Profiler for Fluid Flow: Fluid Mechanics and Its Applications, cartea 101

Editat de Yasushi Takeda
en Limba Engleză Paperback – 20 sep 2014
The ultrasonic velocity profile (UVP) method, first developed in medical engineering, is now widely used in clinical settings. The fluid mechanical basis of UVP was established in investigations by the author and his colleagues with work demonstrating that UVP is a powerful new tool in experimental fluid mechanics. There are diverse examples, ranging from problems in fundamental fluid dynamics to applied problems in mechanical, chemical, nuclear, and environmental engineering. In all these problems, the methodological principle in fluid mechanics was converted from point measurements to spatio-temporal measurements along a line. This book is the first monograph on UVP that offers comprehensive information about the method, its principles, its practice, and applied examples, and which serves both current and new users. Current users can confirm that their application configurations are correct, which will help them to improve the configurations so as to make them more efficient and effective. New users will become familiar with the method, to design applications on a physically correct basis for performing measurements accurately. Additionally, the appendix provides necessary practical information, such as acoustic properties.
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Specificații

ISBN-13: 9784431546757
ISBN-10: 4431546758
Pagini: 284
Ilustrații: X, 274 p.
Dimensiuni: 155 x 235 x 15 mm
Greutate: 0.4 kg
Ediția:2012
Editura: Springer
Colecția Springer
Seria Fluid Mechanics and Its Applications

Locul publicării:Tokyo, Japan

Public țintă

Professional/practitioner

Cuprins

From the Content: Ultrasonic for fluid flow.- Fundamentals of ultrasonic wave.-  Acoustic and ultrasonic wave.- Fundamentals of propagation.- Ultrasonic Doppler method.- Basics.- Basic Principle.- Pulse Doppler Principle.- Velocity Limitation and constraint.- Position and velocity uncertainty and resolution.- Detection of Doppler frequency.- Quadrature-phase Demodulation.- Practice Backup.-Measurement volume.- Selection of basic frequency.- Seeding.- Conditioning of reflector.- Fluid flow & measurement.- Basic Fluid Mechanics.- Basic equations.- Standard velocity field and system performanc.

Notă biografică

Attached please take a look at prof. Takeda's CV (prof.Takeda_CV_Eng.pdf)
-Professor Emeritus, Hokkaido University
-Professor, Solution Research Lab, Tokyo Institute of Technology
-Guest Professor, ETH Zurich

I will add 8 co-authors' information later when this is imported to BFlow.

Textul de pe ultima copertă

The ultrasonic velocity profile (UVP) method, first developed in medical engineering, is now widely used in clinical settings. The fluid mechanical basis of UVP was established in investigations by the author and his colleagues with work demonstrating that UVP is a powerful new tool in experimental fluid mechanics. There are diverse examples, ranging from problems in fundamental fluid dynamics to applied problems in mechanical, chemical, nuclear, and environmental engineering. In all these problems, the methodological principle in fluid mechanics was converted from point measurements to spatio-temporal measurements along a line. This book is the first monograph on UVP that offers comprehensive information about the method, its principles, its practice, and applied examples, and which serves both current and new users. Current users can confirm that their application configurations are correct, which will help them to improve the configurations so as to make them more efficient and effective. New users will become familiar with the method, to design applications on a physically correct basis for performing measurements accurately. Additionally, the appendix provides necessary practical information, such as acoustic properties.

Caracteristici

Textbook for Ultrasonic Doppler Velocitmetry (UVP) Covers the ultrasonic for fluid flow and ultrasonic Doppler methods Describes principle to practice, with various reference data sheets and tips for successfully applying this technique to a range of flow configurations