Design and performance of a three-wavelength LED-based total scatter and backscatter integrating nephelometer

被引:169
作者
Mueller, T. [1 ]
Laborde, M. [2 ,3 ]
Kassell, G. [2 ]
Wiedensohler, A. [1 ]
机构
[1] Leibniz Inst Tropospher Res, Leipzig, Germany
[2] Ecotech Pty Ltd, Knoxfield, Vic, Australia
[3] Paul Scherrer Inst, Villigen, Switzerland
关键词
AEROSOL; TRUNCATION; SENSITIVITY; MOBILITY;
D O I
10.5194/amt-4-1291-2011
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
Integrating nephelometers are instruments that directly measure a value close to the light scattering coefficient of airborne particles. Different models of nephelometers have been used for decades for monitoring and research applications. Now, a series of nephelometers (Ecotech models M9003, Aurora 1000 and Aurora 3000) with newly designed light sources based on light emitting diodes are available. This article reports on the design of these integrating nephelometers and a comparison of the Aurora 3000 to another commercial instrument (TSI model 3563) that uses an incandescent lamp. Both instruments are three-wavelength, total and backscatter integrating nephelometers. We present a characterization of the new light source design of the Aurora 3000 and provide parameterizations for its angular sensitivity functions. These parameterizations facilitate to correct for measurement artefacts using Mie-theory. Furthermore, correction factors are provided as a function of the Angstrom exponent. Comparison measurements against the TSI 3563 with laboratory generated white particles and ambient air are also shown and discussed. Both instruments agree well within the calibration uncertainties and detection limit for total scattering with differences less than 5 %. Differences for backscattering are higher by up to 11 %. Highest differences were found for the longest wavelengths, where the signal to noise ratio is lowest. Differences at the blue and green wavelengths are less than 4 % and 3 %, respectively, for both total and backscattering.
引用
收藏
页码:1291 / 1303
页数:13
相关论文
共 21 条
[1]  
Anderson TL, 1996, J ATMOS OCEAN TECH, V13, P967, DOI 10.1175/1520-0426(1996)013<0967:PCOAHS>2.0.CO
[2]  
2
[3]   Determining aerosol radiative properties using the TSI 3563 integrating nephelometer [J].
Anderson, TL ;
Ogren, JA .
AEROSOL SCIENCE AND TECHNOLOGY, 1998, 29 (01) :57-69
[4]   `Comparison of methods for deriving aerosol asymmetry parameter [J].
Andrews, E ;
Sheridan, PJ ;
Fiebig, M ;
McComiskey, A ;
Ogren, JA ;
Arnott, P ;
Covert, D ;
Elleman, R ;
Gasparini, R ;
Collins, D ;
Jonsson, H ;
Schmid, B ;
Wang, J .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2006, 111 (D5)
[5]   INSTRUMENTS FOR THE MEASUREMENT OF THE VISUAL RANGE [J].
BEUTTELL, RG ;
BREWER, AW .
JOURNAL OF SCIENTIFIC INSTRUMENTS AND OF PHYSICS IN INDUSTRY, 1949, 26 (11) :357-359
[6]  
Bohren C.F, 2008, Absorption and Scattering of Light by Small Particles
[7]   Truncation and Angular-Scattering Corrections for Absorbing Aerosol in the TSI 3563 Nephelometer [J].
Bond, Tami C. ;
Covert, David S. ;
Mueller, Thomas .
AEROSOL SCIENCE AND TECHNOLOGY, 2009, 43 (09) :866-871
[8]   RAYLEIGH-SCATTERING CALCULATIONS FOR THE TERRESTRIAL ATMOSPHERE [J].
BUCHOLTZ, A .
APPLIED OPTICS, 1995, 34 (15) :2765-2773
[9]  
CHARLSON RJ, 1974, TELLUS, V26, P345, DOI 10.1111/j.2153-3490.1974.tb01612.x
[10]   Particle morphology and density characterization by combined mobility and aerodynamic diameter measurements. Part 1: Theory [J].
DeCarlo, PF ;
Slowik, JG ;
Worsnop, DR ;
Davidovits, P ;
Jimenez, JL .
AEROSOL SCIENCE AND TECHNOLOGY, 2004, 38 (12) :1185-1205