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Applied Photometry, Radiometry, and Measurements of Optical Losses [electronic resource] / by Michael Bukshtab.

By: Contributor(s): Series: Springer Series in Optical Sciences ; 163Publisher: Dordrecht : Springer Netherlands : Imprint: Springer, 2012Description: XIX, 712 p. 441 illus. online resourceContent type:
  • text
Media type:
  • computer
Carrier type:
  • online resource
ISBN:
  • 9789400721654
Subject(s): Genre/Form: Additional physical formats: Printed edition:: No titleDDC classification:
  • 621.36 23
LOC classification:
  • QC350-467
  • TA1501-1820
  • QC392-449.5
  • TA1750-1750.22
Online resources:
Contents:
Acknowledgements -- Abstract -- Preface -- PART I APPLIED PHOTOMETRY AND RADIOMETRY -- I.1. Background -- Chapter 1 Radiometric and photometric quantities and notions -- Chapter 2 Methods of photometric and radiometric measurements -- Chapter 3 Radiometry of partially coherent radiation -- Chapter 4 Photometers and radiometers -- PART II MEASUREMENTS OF OPTICAL LOSSES -- II.1. Features of low-loss assessments -- Chapter 5 Conventional measurement techniques -- Chapter 6 Systems of multiple reflections -- Chapter 7 Laser spectroscopy -- Chapter 8 Measurements in passive resonators -- Chapter 9 Determination of absorption losses -- Chapter 10 Direct attenuation measurements -- Chapter 11 Propagation losses in fibers and waveguides -- References.
In: Springer eBooksSummary: Applied Photometry, Radiometry, and Measurements of Optical Losses reviews and analyzes physical concepts of radiation transfer, providing quantitative foundation for the means of measurements of optical losses, which affect propagation and distribution of light waves in various media and in diverse optical systems and components. The comprehensive analysis of advanced methodologies for low-loss detection is outlined in comparison with the classic photometric and radiometric observations, having a broad range of techniques examined and summarized: from interferometric and calorimetric, resonator and polarization, phase-shift and ring-down decay, wavelength and frequency modulation to pulse separation and resonant, acousto-optic and emissive - subsequently compared to direct and balancing methods for studying free-space and polarization optics, fibers and waveguides. The material is focused on applying optical methods and procedures for evaluation of transparent, reflecting, scattering, absorbing, and aggregated objects, and for determination of power and energy parameters of radiation and color properties of light.
Item type: eBooks
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Acknowledgements -- Abstract -- Preface -- PART I APPLIED PHOTOMETRY AND RADIOMETRY -- I.1. Background -- Chapter 1 Radiometric and photometric quantities and notions -- Chapter 2 Methods of photometric and radiometric measurements -- Chapter 3 Radiometry of partially coherent radiation -- Chapter 4 Photometers and radiometers -- PART II MEASUREMENTS OF OPTICAL LOSSES -- II.1. Features of low-loss assessments -- Chapter 5 Conventional measurement techniques -- Chapter 6 Systems of multiple reflections -- Chapter 7 Laser spectroscopy -- Chapter 8 Measurements in passive resonators -- Chapter 9 Determination of absorption losses -- Chapter 10 Direct attenuation measurements -- Chapter 11 Propagation losses in fibers and waveguides -- References.

Applied Photometry, Radiometry, and Measurements of Optical Losses reviews and analyzes physical concepts of radiation transfer, providing quantitative foundation for the means of measurements of optical losses, which affect propagation and distribution of light waves in various media and in diverse optical systems and components. The comprehensive analysis of advanced methodologies for low-loss detection is outlined in comparison with the classic photometric and radiometric observations, having a broad range of techniques examined and summarized: from interferometric and calorimetric, resonator and polarization, phase-shift and ring-down decay, wavelength and frequency modulation to pulse separation and resonant, acousto-optic and emissive - subsequently compared to direct and balancing methods for studying free-space and polarization optics, fibers and waveguides. The material is focused on applying optical methods and procedures for evaluation of transparent, reflecting, scattering, absorbing, and aggregated objects, and for determination of power and energy parameters of radiation and color properties of light.

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