Numerical Simulation of a Light Field Structure in an Integrating Sphere via the Monte Carlo Method

被引:0
作者
Yushmanova, Anna [1 ]
Sheberstov, Sergey [1 ]
Glukhovets, Dmitry [1 ,2 ]
Pogosyan, Sergey [3 ]
机构
[1] Russian Acad Sci, Shirshov Inst Oceanol, Moscow 117997, Russia
[2] Moscow Inst Phys & Technol, Dolgoprudnyi 141700, Russia
[3] Moscow MV Lomonosov State Univ, Biol Dept, Moscow 119991, Russia
基金
俄罗斯科学基金会;
关键词
absorption coefficient of seawater; integrated cavity absorption meter; numerical simulation of light field via the Monte Carlo method; transport scattering coefficient; seawater absorption field measurements; SUSPENDED PARTICULATE MATTER; CAVITY ABSORPTION METER; DISSOLVED ORGANIC-MATTER; KARA SEA; OPTICAL-PROPERTIES; DESALINATED LAYER; SURFACE-LAYER; ONEGA BAY; SATELLITE; PHYTOPLANKTON;
D O I
10.3390/photonics10050593
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The integrated cavity absorption meter is designed to measure the seawater absorption coefficient spectra which are necessary for studying ocean productivity and heat balance. The performed numerical simulations of a light field structure made it possible to improve the measurement technique. Its results showed that the use of the Lambertian model allows to reduce the calculation time by two orders of magnitude with an acceptable loss of accuracy for these calculations. It is shown that in the case of an integrating sphere made of fluorilon, the use of different volume scattering functions does not affect the calculation result, which is not true in the case of using a sphere with a mirror coating. The effect of an air layer between quartz and fluorilon is considered, and the applicability of the diffusion approximation is verified. Examples of field measurements of the seawater absorption coefficient and its components performed in different water areas of the World Ocean in 2020-2022 are presented.
引用
收藏
页数:16
相关论文
共 74 条
[1]   Detecting the red tide algal blooms from satellite ocean color observations in optically complex Northeast-Asia Coastal waters [J].
Ahn, Yu-Hwan ;
Shanmugam, Palanisamy .
REMOTE SENSING OF ENVIRONMENT, 2006, 103 (04) :419-437
[2]  
[Anonymous], About Us
[3]  
Born M., 1965, PRINCIPLES OPTICS, V49, P485
[4]   Variations of light absorption by suspended particles with chlorophyll a concentration in oceanic (case 1) waters:: Analysis and implications for bio-optical models [J].
Bricaud, A ;
Morel, A ;
Babin, M ;
Allali, K ;
Claustre, H .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1998, 103 (C13) :31033-31044
[5]   Suspended matter distribution in the south-eastern Baltic Sea from satellite and in situ data [J].
Bukanova, Tatiana ;
Kopelevich, Oleg ;
Vazyulya, Svetlana ;
Bubnova, Ekaterina ;
Sahling, Inna .
INTERNATIONAL JOURNAL OF REMOTE SENSING, 2018, 39 (24) :9317-9338
[6]   The Distribution of the Suspended Matter Concentration in the Kara Sea in September 2007 based on Ship and Satellite Data [J].
Burenkov, V. I. ;
Goldin, Yu. A. ;
Kravchishina, M. D. .
OCEANOLOGY, 2010, 50 (05) :798-805
[7]   Light Absorption by Phytoplankton in the Upper Mixed Layer of the Black Sea: Seasonality and Parametrization [J].
Churilova, Tanya ;
Suslin, Vyacheslav ;
Krivenko, Olga ;
Efimova, Tatiana ;
Moiseeva, Nataliia ;
Mukhanov, Vladimir ;
Smirnova, Liliya .
FRONTIERS IN MARINE SCIENCE, 2017, 4
[8]   Parameterization of Light Absorption of Phytoplankton, Non-Algal Particles and Coloured Dissolved Organic Matter in the Atlantic Region of the Southern Ocean (Austral Summer of 2020) [J].
Churilova, Tatiana ;
Moiseeva, Natalia ;
Skorokhod, Elena ;
Efimova, Tatiana ;
Buchelnikov, Anatoly ;
Artemiev, Vladimir ;
Salyuk, Pavel .
REMOTE SENSING, 2023, 15 (03)
[9]   Assessment of the relationships between dominant cell size in natural phytoplankton communities and the spectral shape of the absorption coefficient [J].
Ciotti, AM ;
Lewis, MR ;
Cullen, JJ .
LIMNOLOGY AND OCEANOGRAPHY, 2002, 47 (02) :404-417
[10]   Marine optical biogeochemistry: The chemistry of ocean color [J].
Coble, Paula G. .
CHEMICAL REVIEWS, 2007, 107 (02) :402-418