Characterization of Ze and LDR of nonspherical and inhomogeneous ice particles for 95-GHz cloud radar:: Its implication to microphysical retrievals

被引:57
作者
Sato, Kaori [1 ]
Okamoto, Hajime [1 ]
机构
[1] Tohoku Univ, Ctr Atmospher & Ocean Studies, Grad Sch Sci, Sendai, Miyagi 9808578, Japan
关键词
D O I
10.1029/2005JD006959
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
Effect of density, shape, and orientation on radar reflectivity factor (Z(e)) and linear depolarization ratio (LDR) at 95 GHz are investigated by using the discrete dipole approximation (DDA) for ice cloud studies. We consider hexagonal plate, hollow hexagonal column, and hollow bullet rosette in horizontal (2-D) or three-dimensional (3-D) random orientation. We first validate a widely used method to take into account the density and shape effects by the combinational use of Mie theory with the Maxwell-Garnett mixing rule (the MG-Mie method). It is found that the MG-Mie method underestimates Ze and its applicability is limited to sizes smaller than 40 mm. On the basis of the DDA, it is possible to separately treat density, aspect ratio, orientation, and shape. Effect of density turns out to be minor. Orientation and shape are the major controlling factors for Ze especially at effective radius r(eff) > 100 mu m and LDR except for very large sizes where the effect of orientation in LDR diminishes. Comparison between the DDA results and the analytical solution for 3-D Rayleigh spheroids show that LDR in the small size range is characterized by the target boundary and aspect ratio. In the large size range, LDR reveals features of a single target element; for example, LDR of bullet rosette is similar to that of a single branch of the particle. Combinational use of Ze and LDR is effective in microphysics retrieval for LDR < -23 dB. For LDR > -23 dB, additional information such as Doppler velocity is required.
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页数:15
相关论文
共 53 条
[1]   The Atmospheric Radiation Measurement program [J].
Ackerman, TP ;
Stokes, GM .
PHYSICS TODAY, 2003, 56 (01) :38-44
[2]   LIGHT-SCATTERING BY A SPHEROIDAL PARTICLE [J].
ASANO, S ;
YAMAMOTO, G .
APPLIED OPTICS, 1975, 14 (01) :29-49
[3]  
AUER AH, 1972, J ATMOS SCI, V29, P311, DOI 10.1175/1520-0469(1972)029<0311:IAINFI>2.0.CO
[4]  
2
[5]   Millimeter wave scattering from spatial and planar bullet rosettes [J].
Aydin, K ;
Walsh, TM .
IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING, 1999, 37 (02) :1138-1150
[6]   Millimeter wave radar scattering from model ice crystal distributions [J].
Aydin, K ;
Tang, CX .
IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING, 1997, 35 (01) :140-146
[7]   Analysis of polarization radar returns from ice clouds [J].
Battaglia, A ;
Sturniolo, O ;
Prodi, F .
ATMOSPHERIC RESEARCH, 2001, 59 :231-250
[8]  
Bohren C., 1983, ABSORPTION SCATTERIN
[9]  
BROWN PRA, 1995, J ATMOS OCEAN TECH, V12, P410, DOI 10.1175/1520-0426(1995)012<0410:IMOTIW>2.0.CO
[10]  
2