Increased operations of aircraft, both commercial and military in hostile desert environments have increased the risk of micro-sized particle ingestion into engines. The probability of increased sand and dust ingestion results in increased life cycle costs in addition to increased potential for performance loss. Thus, the ability to accurately assess the amount of inlet debris would be useful for engine diagnostics and prognostic evaluation. Previous engine monitoring studies were based on the particle measurements performed a posteriori. Thus, there exists a need for in situ quantification of ingested particles. This paper describes the initial development of a line-of-sight optical technique to characterize the ingested particles at concentrations similar to those experienced by aircraft in brownout conditions using laser extinction with the end goal of producing an onboard aircraft diagnostic sensor. By measuring the amount of light that is transmitted due to the effects of scattering and absorption in the presence of particles over a range of concentrations, a relationship between particle diameters and the laser light extinction was obtained. This relationship was then used to obtain information on diameters and number densities of ingested particles. The particle size range of interest was chosen to be between 1 and 10 μm and the size distribution function was assumed to be lognormal. Tests were performed on polystyrene latex spheres of sizes 1.32 μm, 3.9 μm, and 5.1 μm in water dispersions to measure diameters and concentrations. Measurements were performed over multiple wavelengths to obtain information on the size distribution and number density of particles. Results of tests presented in this paper establish the validity of the laser extinction technique to provide real time information of ingested particles and will serve as an impetus to carry out further research using this technique to characterize particles.

References

1.
Ma
,
L.
,
Kranendonk
,
L.
,
Cai
,
W.
,
Zhao
,
Y.
, and
Baba
,
J.
,
2009
, “
Application of Simulated Annealing for Simultaneous Retrieval of Particle Size Distribution and Refractive Index
,”
J. Aerosol Sci.
,
40
(
7
), pp.
588
596
.
2.
Horvath
,
H.
, and
Dellago
,
C.
,
1993
, “
On the Accuracy of the Size Distribution Information Obtained From Light Extinction and Scattering Measurements—II. Case Studies
,”
J. Aerosol Sci.
,
24
(
2
), pp.
143
154
.
3.
Cai
,
W.
, and
Ma
,
L.
,
2008
, “
Information Content of Scattering Measurements and Characterization of Spheroids
,”
J. Aerosol Sci.
,
39
(
12
), pp.
1032
1039
.
4.
Hull
,
P.
,
Shepherd
,
I.
, and
Hunt
,
A.
,
2004
, “
Modeling Light Scattering From Diesel Soot Particles
,”
Appl. Opt.
,
43
(
17
), pp.
3433
3441
.
5.
Lu
,
J. Q.
,
Brock
,
R. S.
,
Carolina
,
N.
,
Mcconnell
,
T. J.
,
Ojeda
,
J. F.
,
Jacobs
,
K. M.
, and
Hu
,
X.
,
2007/2014
, “
Angle-Resolved Mueller Matrix Study of Light Scattering by B-Cells at Three Wavelengths of 442, 633, and 850 nm
,”
J. Biomed. Optics
,
12
(3), p.
034032
.
6.
Ma
,
L.
, and
Hanson
,
R. K.
,
2005
, “
Measurement of Aerosol Size Distribution Functions by Wavelength-Multiplexed Laser Extinction
,”
Appl. Phys. B
,
81
(
4
), pp.
567
576
.
7.
Litchford
,
R. J.
,
Sun
,
F.
,
Few
,
J. D.
, and
Lewis
,
J. W. L.
,
1998
, “
Optical Measurement of Gas Turbine Engine Soot Particle Effluents
,”
ASME J. Eng. Gas Turbines Power
,
120
(1), pp.
69
76
.
8.
Walters
,
P. T.
,
1980
, “
Practical Applications of Inverting Spectral Turbidity Data to Provide Aerosol Size Distributions
,”
Appl. Opt.
,
19
(
14
), pp.
2353
2365
.
9.
Ramachandran
,
G.
, and
Leith
,
D.
,
1992
, “
Extraction of Aerosol-Size Distributions From Multispectral Light Extinction Data
,”
Aerosol Sci. Technol.
,
17
(
4
), pp.
303
325
.
10.
Twomey
,
S.
, and
Howell
,
H. B.
,
1967
, “
Some Aspects of the Optical Estimation of Microstructure in Fog and Cloud
,”
Appl. Opt.
,
6
(
12
), pp.
2125
2131
.
11.
Smolders
,
H. J.
, and
van Dongen
,
M. E. H.
,
1992
, “
Shock Wave Structure in a Mixture of Gas, Vapour, and Droplets
,”
Shock Waves
,
2
(
4
), pp.
255
267
.
12.
van Dongen
,
M. E.
,
Smolders
,
H. J.
,
Braun
,
C. J.
,
Snoeijs
,
C. A.
, and
Willems
,
J. F.
,
1994
, “
Spectral Light Extinction to Characterize Fast Fog Formation
,”
Appl. Opt.
,
33
(
10
), pp.
1980
1988
.
13.
Schatz
,
M.
,
Eberle
,
T.
,
Grübel
,
M.
,
Starzmann
,
J.
,
Vogt
,
D. M.
, and
Suerken
,
N.
,
2014
, “
Two-Phase Flow Modeling and Measurements in Low-Pressure Turbines—Part II: Turbine Wetness Measurement and Comparison to Computational Fluid Dynamics-Predictions
,”
ASME J. Eng. Gas Turbines Power
,
137
(
4
), p.
042603
.
14.
Su
,
M.
,
Xu
,
F.
,
Cai
,
X.
,
Ren
,
K.
, and
Shen
,
J.
,
2007
, “
Optimization of Regularization Parameter of Inversion in Particle Sizing Using Light Extinction Method
,”
China Particuol.
,
5
(
4
), pp.
295
299
.
15.
Sun
,
X.
,
Ewing
,
D. J.
, and
Ma
,
L.
,
2012
, “
A Laser Extinction Based Sensor for Simultaneous Droplet Size and Vapor Measurement
,”
Particuology
,
10
(
1
), pp.
9
16
.
16.
Cai
,
X.-S.
, and
Wang
,
N.-N.
,
1992
, “
Determination of Particle Size Distribution Using the Light Extinction Method
,”
Adv. Powder Technol.
,
3
(
3
), pp.
153
161
.
17.
Shifrin
,
K. S.
, and
Zolotov
,
I. G.
,
1997
, “
Distribution From Simultaneous Data on Spectral Attenuation and the Small-Angle Phase Function
,”
Appl. Opt.
,
36
(
24
), pp.
6047
6056
.
18.
Shifrin
,
K. S.
, and
Zolotov
,
I. G.
,
1996
, “
Spectral Attenuation Aerosol Particle Size Distribution
,”
Appl. Opt.
,
35
(
12
), pp.
2114
2124
.
19.
Cowherd
,
C.
,
2007
, “
Sandblaster 2 Support of See-Through Technologies for Particulate Brownout Task 5 Final Technical Report
,” Defense Advanced Research Projects Agency (
DARPA
), Technical Report No. 110565.
20.
Sultanova
,
N.
,
Kasarova
,
S.
, and
Nikolov
,
I.
,
2009
, “
Dispersion Properties of Optical Polymers
,”
Acta Phys. Pol. Ser. A
,
116
(
4
), pp.
585
587
.
21.
Malitson
,
I. H.
,
1965
, “
Interspecimen Comparison of the Refractive Index of Fused Silica
,”
J. Opt. Soc. Am.
,
55
(
10
), pp.
1205
1209
.
22.
Hale
,
G. M.
, and
Querry
,
M. R.
,
1973
, “
Optical Constants of Water in the 200-nm to 200-Micron Wavelength Region
,”
Appl. Opt.
,
12
(
3
), pp.
555
563
.
23.
Kryzszystof Markowicz
, “
Codes
,” Accessed Mar. 3, 2014, http://www.igf.fuw.edu.pl/meteo/stacja/index_english.php
You do not currently have access to this content.