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Theory, Analysis and Design of RF Interferometric Sensors 2012 ed. [Pehme köide]

  • Formaat: Paperback / softback, 74 pages, kõrgus x laius: 235x155 mm, kaal: 454 g, 40 Illustrations, black and white; X, 74 p. 40 illus., 1 Paperback / softback
  • Sari: SpringerBriefs in Physics
  • Ilmumisaeg: 22-Nov-2011
  • Kirjastus: Springer-Verlag New York Inc.
  • ISBN-10: 1461420229
  • ISBN-13: 9781461420224
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  • Formaat: Paperback / softback, 74 pages, kõrgus x laius: 235x155 mm, kaal: 454 g, 40 Illustrations, black and white; X, 74 p. 40 illus., 1 Paperback / softback
  • Sari: SpringerBriefs in Physics
  • Ilmumisaeg: 22-Nov-2011
  • Kirjastus: Springer-Verlag New York Inc.
  • ISBN-10: 1461420229
  • ISBN-13: 9781461420224
Theory, Analysis and Design of RF Interferometric Sensors presents the theory, analysis and design of RF interferometric sensors. RF interferometric sensors are attractive for various sensing applications that require every fine resolution and accuracy as well as fast speed. The book also presents two millimeter-wave interferometric sensors realized using RF integrated circuits. The developed millimeter-wave homodyne sensor shows sub-millimeter resolution in the order of 0.05 mm without correction for the non-linear phase response of the sensor's quadrature mixer. The designed millimeter-wave double-channel homodyne sensor provides a resolution of only 0.01 mm, or 1/840th of the operating wavelength, and can inherently suppress the non-linearity of the sensor's quadrature mixer. The experimental results of displacement and velocity measurement are presented as a way to demonstrate the sensing ability of the RF interferometry and to illustrate its many possible applications in sensing.

The book is succinct, yet the material is very much self-contained, enabling readers with an undergraduate background in electrical engineering or physics with some experiences or graduate courses in RF circuits to understand easily.
1 Introduction
1(6)
2 Analysis of RF Interferometer
7(8)
2.1 Interaction of Electromagnetic Waves with Dielectric
8(1)
2.2 Determination of Relative Dielectric Constant and Thickness
9(3)
2.3 Signal Analysis of RF Interferometer
12(3)
3 RF Homodyne Interferometric Sensor
15(20)
3.1 System Configuration and Principle
15(3)
3.2 Phase Unwrapping Signal Processing
18(2)
3.3 System Fabrication
20(2)
3.4 Displacement Measurement and Liquid-Level Gauging
22(3)
3.5 Analysis of Error Contributed by Quadrature Mixer
25(8)
3.5.1 Quadrature Mixer Transfer Function
25(3)
3.5.2 I/Q Error Correction Algorithm
28(3)
3.5.3 Worst-Case Error Analysis
31(2)
3.6 Summary
33(2)
4 Double-Channel Homodyne Interferometric Sensor
35(20)
4.1 System Configuration and Principle
36(4)
4.1.1 Displacement Measurement
38(1)
4.1.2 Doppler Velocimetry
39(1)
4.2 Signal Processing
40(6)
4.2.1 Phase-Difference Detection for Displacement Measurement
40(2)
4.2.2 Doppler-Frequency Estimation for Velocity Measurement
42(4)
4.3 System Fabrication and Test
46(8)
4.3.1 Displacement Measurement Results
48(3)
4.3.2 Velocity Measurement Result
51(3)
4.4 Summary
54(1)
5 Consideration of Frequency Stability of RF Signal Source for RF Interferometer
55(10)
5.1 Theoretical Analysis of Phase-Noise Effect on Interferometric Measurements
55(6)
5.2 Phase Noise Estimation
61(4)
6 Summary, Conclusion and Applications
65(4)
References 69(4)
Index 73