Light transport with weak angular dependence in fog

被引:15
作者
Bentz, Brian Z. [1 ]
Redman, Brian J. [1 ]
van der Laan, John D. [1 ]
Westlake, Karl [1 ]
Glen, Andrew [1 ]
Sanchez, Andres L. [1 ]
Wright, Jeremy B. [1 ]
机构
[1] Sandia Natl Labs, POB 5800, Albuquerque, NM 87185 USA
关键词
OPTICAL TOMOGRAPHY; POLARIZED-LIGHT; PART I; SCATTERING; ILLUMINATION; GROWTH; TISSUE;
D O I
10.1364/OE.422172
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Random scattering and absorption of light by tiny particles in aerosols, like fog, reduce situational awareness and cause unacceptable down-time for critical systems or operations. Computationally efficient light transport models are desired for computational imaging to improve remote sensing capabilities in degraded optical environments. To this end, we have developed a model based on a weak angular dependence approximation to the Boltzmann or radiative transfer equation that appears to be applicable in both the moderate and highly scattering regimes, thereby covering the applicability domain of both the small angle and diffusion approximations. An analytic solution was derived and validated using experimental data acquired at the Sandia National Laboratory Fog Chamber facility. The evolution of the fog particle density and size distribution were measured and used to determine macroscopic absorption and scattering properties using Mie theory. A three-band (0.532, 1.55, and 9.68 mu m) transmissometer with lock-in amplifiers enabled changes in fog density of over an order of magnitude to be measured due to the increased transmission at higher wavelengths, covering both the moderate and highly scattering regimes. The meteorological optical range parameter is shown to be about 0.6 times the transport mean free path length, suggesting an improved physical interpretation of this parameter. (C) 2021 Optical Society of America under the terms of the OSA Open Access Publishing Agreement
引用
收藏
页码:13231 / 13245
页数:15
相关论文
共 56 条
[1]  
[Anonymous], 1978, Wave Propagation and Scattering in Random Media
[2]   Optical tomography in medical imaging [J].
Arridge, SR .
INVERSE PROBLEMS, 1999, 15 (02) :R41-R93
[3]   DRIVING BLIND Weather-Related Vision Hazards and Fatal Motor Vehicle Crashes [J].
Ashley, Walker S. ;
Strader, Stephen ;
Dziubla, Douglas C. ;
Haberlie, Alex .
BULLETIN OF THE AMERICAN METEOROLOGICAL SOCIETY, 2015, 96 (05) :755-778
[4]  
Bentz B. Z., 2020, INT SOC OPTICS PHOTO, V11424
[5]  
Bentz B. Z, 2021, FOG OPTICAL SCATTERI, DOI [10.6084/m9. figshare.14036075, DOI 10.6084/M9.FIGSHARE.14036075]
[6]   Localization of Fluorescent Targets in Deep Tissue With Expanded Beam Illumination for Studies of Cancer and the Brain [J].
Bentz, Brian Z. ;
Mahalingam, Sakkarapalayam M. ;
Ysselstein, Daniel ;
Montenegro, Paola C. ;
Cannon, Jason R. ;
Rochet, Jean-Christophe ;
Low, Philip S. ;
Webb, Kevin J. .
IEEE TRANSACTIONS ON MEDICAL IMAGING, 2020, 39 (07) :2472-2481
[7]   Multiresolution Localization With Temporal Scanning for Super-Resolution Diffuse Optical Imaging of Fluorescence [J].
Bentz, Brian Z. ;
Lin, Dergan ;
Patel, Justin A. ;
Webb, Kevin J. .
IEEE TRANSACTIONS ON IMAGE PROCESSING, 2020, 29 :830-842
[8]   Superresolution Diffuse Optical Imaging by Localization of Fluorescence [J].
Bentz, Brian Z. ;
Lin, Dergan ;
Webb, Kevin J. .
PHYSICAL REVIEW APPLIED, 2018, 10 (03)
[9]   Fabrication and application of heterogeneous printed mouse phantoms for whole animal optical imaging [J].
Bentz, Brian Z. ;
Chavan, Anmol V. ;
Lin, Dergan ;
Tsai, Esther H. R. ;
Webb, Kevin J. .
APPLIED OPTICS, 2016, 55 (02) :280-287
[10]   MODTRAN®6: A major upgrade of the MODTRAN® radiative transfer code [J].
Berk, Alexander ;
Conforti, Patrick ;
Kennett, Rosemary ;
Perkins, Timothy ;
Hawes, Frederick ;
van den Bosch, Jeannette .
ALGORITHMS AND TECHNOLOGIES FOR MULTISPECTRAL, HYPERSPECTRAL, AND ULTRASPECTRAL IMAGERY XX, 2014, 9088