000 08182nam a2201249 i 4500
001 5487745
003 IEEE
005 20220712205740.0
006 m o d
007 cr |n|||||||||
008 151221s2010 njua ob 001 eng d
020 _a9780470561478
_qelectronic
020 _a0470561475
020 _z9780470465479
_qprint
024 7 _a10.1002/9780470561478
_2doi
035 _a(CaBNVSL)mat05487745
035 _a(IDAMS)0b0000648129b4a9
040 _aCaBNVSL
_beng
_erda
_cCaBNVSL
_dCaBNVSL
050 4 _aR857.U48
_bA94 2010eb
082 0 4 _a616.07/54
_222
100 1 _aAzhari, Haim,
_d1955-
_927463
245 1 0 _aBasics of biomedical ultrasound for engineers /
_cHaim Azhari.
264 1 _aHoboken, New Jersey :
_bWiley,
_c2010.
264 2 _a[Piscataqay, New Jersey] :
_bIEEE Xplore,
_c[2010]
300 _a1 PDF (xiii, 371 pages, [2] pages of plates) :
_billustrations (some color).
336 _atext
_2rdacontent
337 _aelectronic
_2isbdmedia
338 _aonline resource
_2rdacarrier
504 _aIncludes bibliographical references and index.
505 0 _aPREFACE -- ACKNOWLEDGMENTS -- INTRODUCTION -- Prelude and Basic Defi nitions -- 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 Defi nitions 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 -- 1.6.1 Equivalent Presentations -- 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 -- 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 Refl ection (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 -- 3 ULTRASONIC 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 -- 4 PROPAGATION 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 -- 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 -- 6 REFLECTION AND TRANSMISSION -- 6.1 The Acoustic Impedance -- 6.2 Snell's Law.
505 8 _a6.3 Refl ection and Transmission from Boundaries Separating Two Fluids (or Solids with No Shear Waves) -- -- 6.4 Refl ection from a Free Surface in Solids (Mode Conversion) -- 6.5 Refl ection and Transmission from a Liquid- Solid Boundary -- 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) -- 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 -- 8.7 Annular Phased Arrays -- 9 ULTRASONIC IMAGING USING THE PULSE-ECHO TECHNIQUE -- 9.1 Basic Defi nitions in Imaging -- 9.2 The (3z(BA-Line(3y(B -- 9.3 Scatter Model for Soft Tissues -- 9.4 Time Gain Compensation -- 9.5 Basic Pulse-Echo Imaging (B-Scan) -- 9.6 Advanced Methods for Pulse-Echo Imaging -- 10 SPECIAL IMAGING TECHNIQUES. -- 10.1 Acoustic Impedance Imaging-Impediography -- 10.2 Elastography -- 10.3 Tissue Speckle Tracking -- 10.4 Through-Transmission Imaging -- 10.5 Vibro-acoustic Imaging -- 10.6 Time Reversal -- 10.7 Ultrasonic Computed Tomography -- 10.8 Contrast Materials -- 10.9 Coded Excitations -- References -- 11 DOPPLER IMAGING TECHNIQUES -- 11.1 The Doppler Effect -- 11.2 Velocity Estimation -- 11.3 Frequency Shift Estimation -- 11.4 Duplex Imaging (Combined B-Scan and Color Flow Mapping) -- References -- 12 SAFETY AND THERAPEUTIC APPLICATIONS -- 12.1 Effects Induced by Ultrasound and Safety -- 12.2 Ultrasonic Physiotherapy -- 12.3 Lithotripsy -- 12.4 Hyperthermia HIFU and Ablation -- 12.5 Drug Delivery -- 12.6 Gene Therapy -- 12.7 Cosmetic Applications -- APPENDIX A: TYPICAL ACOUSTIC PROPERTIES OF TISSUES -- -- APPENDIX B: EXEMPLARY PROBLEMS. -- APPENDIX C: ANSWERS TO EXEMPLARY PROBLEMS -- INDEX.
506 1 _aRestricted to subscribers or individual electronic text purchasers.
520 _a"Basics of Biomedical Ultrasound for Engineers is a structured textbook for university engineering courses in biomedical ultrasound and for researchers in the field. This book offers a tool for building a solid understanding of biomedical ultrasound, and leads the novice through the field in a step-by-step manner. The book begins with the most basic definitions of waves, proceeds to ultrasounds in fluids, and then delves into solid ultrasounds, the most complicated kind of ultrasound. It encompasses a wide range of topics within biomedical ultrasound, from conceptual definitions of waves to the intricacies of focusing devices, transducers, and acoustic fields"--Provided by publisher.
530 _aAlso available in print.
538 _aMode of access: World Wide Web
588 _aDescription based on PDF viewed 12/21/2015.
650 0 _aUltrasonics in medicine.
_927464
650 0 _aUltrasonics.
_927465
655 0 _aElectronic books.
_93294
695 _aAcoustic waves
695 _aAcoustics
695 _aApproximation methods
695 _aAttenuation
695 _aBiological tissues
695 _aBiomedical imaging
695 _aBlood
695 _aBones
695 _aBoundary conditions
695 _aCatheters
695 _aComputed tomography
695 _aCrystals
695 _aDoppler shift
695 _aElasticity
695 _aEnergy conservation
695 _aEquations
695 _aFluids
695 _aForce
695 _aFrequency control
695 _aGenerators
695 _aGeometry
695 _aHarmonic analysis
695 _aHeating
695 _aImage reconstruction
695 _aImpedance
695 _aIndexes
695 _aInterference
695 _aKidney
695 _aLenses
695 _aLoading
695 _aMaterial properties
695 _aMaterials
695 _aMathematical model
695 _aMedical services
695 _aMirrors
695 _aMuscles
695 _aOptical refraction
695 _aOptical variables control
695 _aPediatrics
695 _aPhantoms
695 _aPiezoelectric materials
695 _aPiezoelectric transducers
695 _aPistons
695 _aPresses
695 _aPropagation
695 _aReceivers
695 _aReflection
695 _aSafety
695 _aShock absorbers
695 _aSignal to noise ratio
695 _aSolids
695 _aSpatial resolution
695 _aSprings
695 _aStrain
695 _aStress
695 _aTeeth
695 _aTransducers
695 _aTransmitters
695 _aUltrasonic imaging
695 _aVibrations
695 _aWave functions
695 _aWire
710 2 _aJohn Wiley & Sons,
_epublisher.
_96902
710 2 _aIEEE Xplore (Online service),
_edistributor.
_927466
776 0 8 _iPrint version:
_z9780470465479
856 4 2 _3Abstract with links to resource
_uhttps://ieeexplore.ieee.org/xpl/bkabstractplus.jsp?bkn=5487745
942 _cEBK
999 _c74071
_d74071