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【共享】医学超声基础(2010高清英文版)Basics of Biomedical Ultrasound for Engineers

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医学超声基础(2010高清英文版)Basics of Biomedical Ultrasound for Engineers



  • 作  者/Author:Haim Azhari 著
  • 出 版 社/Publisher:Wiley-IEEE Press
  • ISBN:9780470465479
  • 出版时间/Publication Date:2010-03-15
  • 版  次/Edition:1
  • 页  数/Pages:371
  • 装  帧/Format:精装


  • 医学超声基础(高清英文版)Basics of Biomedical Ultrasound for Engineers - Azhari (Wiley - IEEE, 2010).pdf(4118.69k)
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2013-05-07 22:28 浏览 : 10121 回复 : 99
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医学超声基础(2010高清英文版)Basics of Biomedical Ultrasound for Engineers

HAIM AZHARI, DSc, conducts research in medical imaging, including the application of ultrasound and MRI in medical imaging, image tomographic reconruction, image processing, and information extraction from medical images. Professor Azhari received his doctorate in biomedical engineering from the Technion–Israel Initute of Technology in 1987. From 1987 to 1990, he was on the aff of the Technion Department of Biomedical Engineering in a podoctoral position. Azhari then received a double appointment as an International Research Fellow in both the Department of Radiology and the Division of Cardiology at the Johns Hopkins School of Medicine in Baltimore, Maryland. Upon his return to Israel in 1992, he joined the Department of Biomedical Engineering at the Technion-IIT as a aff member, where he is currently an associate professor. From 1999-2000, Azhari was at Harvard Medical School in the Beth-Israel Radiology Department.
2013-05-07 22:33
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Preface.
Acknowledgments.
Introduction.
Prelude and Basic Definitions.
The Advantages of Using Ultrasound in Medicine.
A General Statement on Safety.
Some Common Applications of Ultrasound.
What Is It that We Need to Know?
References.
1 Waves-A General Description.
1.1 General Definitions of Waves-A Qualitative Description.
1.2 General Properties of Waves-A Qualitative Description.
1.3 Mechanical One-Dimensional Waves.
1.4 The Wave Function.
1.5 The Wave Equation.
1.6 Harmonic Waves.
1.7 Group Waves.
1.8 Wave Velocity.
1.9 Standing Waves (a Mathematical Description).
1.10 Spherical Waves.
1.11 Cylindrical Waves.
1.12 The Wave Equation in a Nonhomogeneous Medium.
References.
2 Waves In A One-Dimensional Medium.
2.1 The Propagation Speed of Transverse Waves in a String.
2.2 Vibration Frequencies for a Bounded String.
2.3 Wave Reflection (Echo) in a One-Dimensional Medium.
2.4 Special Cases.
2.5 Wave Energy in Strings.
2.6 Propagation of Longitudinal Waves in an Isotropic Rod or String.
2.7 A Clinical Application of Longitudinal Waves in a String.
References.
3 Ultraspmoc Waves in Fluids.
3.1 Waves in Fluids.
3.2 Compressibility.
3.3. Longitudinal Waves in Fluids.
3.4 The Wave Energy.
3.5 Intensity.
3.6 Radiation Pressure.
3.7 A Perfect Reflector.
References.
4 Propogation of Acoustic Waves in Solid Materials.
4.1 Introduction to the Mechanics of Solids.
4.2 The Elastic Strain.
4.3 Stress.
4.4 Hooke’s Law and Elastic Coefficients.
4.5 The Wave Equation for an Elastic Solid Material.
4.6 Propagation of a Harmonic Planar Wave in a Solid Material.
References.
5 Attenuation and Dispersion.
5.1 The Attenuation Phenomenon.
5.2 Explaining Attenuation with a Simple Model.
5.3 Attenuation Dependency on Frequency.
5.4 The Complex Wave Number.
5.5 Speed of Sound Dispersion.
5.6 The Nonlinear Parameter B/A.
References.
6 Reflection and Transmission.
6.1 The Acoustic Impedance.
6.2 Snell’s Law.
6.3 Reflection and Transmission from Boundaries Separating Two Fluids (or Solids with No Shear Waves).
6.4 Reflection from a Free Surface in Solids (Mode Conversion).
6.5 Reflection and Transmission from a Liquid– Solid Boundary.
References.
7 ACOUSTIC LENSES AND MIRRORS.
7.1 Optics.
7.2 Optics and Acoustics.
7.3 An Ellipsoidal Lens.
7.4 Spherical Lenses.
7.5 Zone Lenses.
7.6 Acoustic Mirrors (Focusing Reflectors).
References.
8 Transducers and Acoustic Fields.
8.1 Piezoelectric Transducers.
8.2 The Acoustic Field.
8.3 The Field of a Point Source.
8.4 The Field of a Disc Source.
8.5 The Field of Various Transducers.
8.6 Phased-Array Transducers.
2013-05-07 22:35
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