Muutke küpsiste eelistusi

Scalar Diffraction from a Circular Aperture 2000 ed. [Kõva köide]

Teised raamatud teemal:
  • Kõva köide
  • Hind: 141,35 €*
  • * hind on lõplik, st. muud allahindlused enam ei rakendu
  • Tavahind: 166,29 €
  • Säästad 15%
  • Raamatu kohalejõudmiseks kirjastusest kulub orienteeruvalt 2-4 nädalat
  • Kogus:
  • Lisa ostukorvi
  • Tasuta tarne
  • Tellimisaeg 2-4 nädalat
  • Lisa soovinimekirja
Teised raamatud teemal:
Scalar diffraction from a circular aperture is a ubiquitous problem that arises in a variety of disciplines, such as optics (lenses), acoustics (speakers), electromagnetics (dish antennas), and ultrasonics (piston transducers). The problem endures despite centuries of research because each new generation of researchers rediscovers it and adds some novel insight or new result to the existing literature. Scalar Diffraction from a Circular Aperture promises a few new results and several novel insights, particularly with regard to spatial averaging. Although the text emphasizes ultrasonic diffraction, the results and insights developed are general and may be applied to the many practical problems involving scalar diffraction from a circular aperture.
Included are novel insights on mirror-image diffraction, autoconvolution diffraction, and coherent and incoherent averaging. Examples from ultrasonic imaging, a coherent imaging modality, are used to develop a fairly general theory that connects over a century of research on scalar diffraction from a circular aperture. The material is based on a synthesis of mathematics, physical optics, linear systems theory, and scalar diffraction theory. Thus, engineers, scientists, mathematicians, and students working in optics, acoustics, antenna design, biomedical engineering, non-destructive testing, and astronomy will find Scalar Diffraction from a Circular Aperture interesting, provocative, and useful.

Muu info

Springer Book Archives
List of Figures
vii
Preface xi
Acknowledgments xv
Introduction
1(20)
Ultrasonic Reflection Imaging
2(2)
Diffraction from a Circular Aperture
4(2)
The Arccos & Lommel Diffraction Formulations
6(1)
One-way and Two-way Diffraction
7(2)
Spatial Averaging
9(2)
The Need for Diffraction Correction
11(3)
Mathematical Definitions
14(2)
Scope and Assumptions
16(1)
Preview
17(2)
Criticism and Counter
19(2)
Literature Review
21(6)
Ultrasonic Reflection Imaging
21(1)
Diffraction from a Circular Aperture
22(1)
Spatially Averaged Diffraction Corrections
23(1)
Short-Time Fourier Techniques
24(1)
Short-Time Fourier Techniques in Ultrasound
25(1)
Chapter Summary
26(1)
Two Diffraction Formulations
27(20)
The Lommel Diffraction Formulation
27(2)
Discussion of the Lommel Diffraction Formulation
29(2)
The Arccos Diffraction Formulation
31(2)
Discussion of the Arccos Diffraction Formulation
33(1)
Similarities and Differences
33(2)
An Approximate Fourier Transform Pair
35(2)
Verification
37(3)
Computational Considerations
40(1)
The Focused Case
41(3)
Chapter Summary
44(3)
Spatially Averaged One-Way Diffraction
47(26)
Spatially Averaged Arccos Diffraction Formulation
47(3)
Analysis of Time-Domain Results
50(2)
Spatially Averaged Lommel Diffraction Formulation
52(3)
Analysis of Frequency-Domain Results
55(4)
Extending Fourier Equivalence
59(1)
Verification
60(3)
Computational Considerations
63(1)
Chapter Summary
64(9)
Spatially Averaged Two-Way Diffraction
73(32)
Spatially Averaged Arccos Diffraction Formulation
73(5)
Spatially Averaged Lommel Diffraction Formulation
78(3)
Analysis of Frequency-Domain Results
81(3)
Extending Fourier Equivalence
84(1)
Verification
84(7)
Computational Considerations
91(1)
Chapter Summary
91(14)
Experimental Investigation
105(34)
A Computational Consideration
106(1)
Equipment and Processing
107(2)
Experiments, Images, and Centroids
109(2)
Discussion of Results
111(1)
Chapter Summary
112(27)
Analytical Investigation
139(16)
Diffraction and Linear Models
139(3)
Harmonic Imaging and Non-Linear Ultrasound
142(2)
Focused One-Way Results
144(5)
Coherent vs. Incoherent Averaging
149(3)
Mirror-Image vs. Autoconvolution Diffraction
152(1)
Chapter Summary
153(2)
Recommendations for Further Research
155(1)
General
155(1)
Fourier Equivalence
155(1)
Spatially Averaged One-Way Diffraction
156(1)
Spatially Averaged Autoconvolution Diffraction
156(2)
More Experiments and Analysis
158