Polarization-Corrected Temperatures for 10-, 19-, 37-, and 89-GHz Passive Microwave Frequencies

被引:28
作者
Cecil, Daniel J. [1 ]
Chronis, Themis [2 ]
机构
[1] NASA, George C Marshall Space Flight Ctr, Huntsville, AL 35812 USA
[2] Univ Alabama, Huntsville, AL 35899 USA
关键词
PRECIPITATION FEATURES; ICE-SCATTERING; RAINFALL; TRMM; RADAR; SYSTEMS;
D O I
10.1175/JAMC-D-18-0022.1
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
Coefficients are derived for computing the polarization-corrected temperature (PCT) for 10-, 19-, 37- and 89-GHz (and similar) frequencies, with applicability to satellites in the Global Precipitation Measurement mission constellation and their predecessors. PCTs for 10- and 19-GHz frequencies have been nonexistent or seldom used in the past; developing those is the main goal of this study. For 37 and 89 GHz, other formulations of PCT have already become well established. We consider those frequencies here in order to test whether the large sample sizes that are readily available now would point to different formulations of PCT. The purpose of the PCT is to reduce the effects of surface emissivity differences in a scene and draw attention to ice scattering signals related to precipitation. In particular, our intention is to develop a PCT formula that minimizes the differences between land and water surfaces, so that signatures resulting from deep convection are not easily confused with water surfaces. The new formulations of PCT for 10- and 19-GHz measurements hold promise for identifying and investigating intense convection. Four examples are shown from relevant cases. The PCT for each frequency is effective at drawing attention to the most intense convection, and removing ambiguous signals that are related to underlying land or water surfaces. For 37 and 89 GHz, the older formulations of PCT from the literature yield generally similar values as ours, with the differences mainly being a few kelvins over oceans. An optimal formulation of PCT can depend on location and season; results are presented here separated by latitude and month.
引用
收藏
页码:2249 / 2265
页数:17
相关论文
共 34 条
[1]  
BARRETT EC, 1990, 5 C SAT MET OC LOND, P210
[2]   Intercalibration of the GPM Microwave Radiometer Constellation [J].
Berg, Wesley ;
Bilanow, Stephen ;
Chen, Ruiyao ;
Datta, Saswati ;
Draper, David ;
Ebrahimi, Hamideh ;
Farrar, Spencer ;
Jones, W. Linwood ;
Kroodsma, Rachael ;
McKague, Darren ;
Payne, Vivienne ;
Wang, James ;
Wilheit, Thomas ;
Yang, John Xun .
JOURNAL OF ATMOSPHERIC AND OCEANIC TECHNOLOGY, 2016, 33 (12) :2639-2654
[3]  
Cecil D.J, 2015, 20 C SAT MET OC PHOE
[4]   Toward a Global Climatology of Severe Hailstorms as Estimated by Satellite Passive Microwave Imagers [J].
Cecil, Daniel J. ;
Blankenship, Clay B. .
JOURNAL OF CLIMATE, 2012, 25 (02) :687-703
[5]   Passive Microwave Brightness Temperatures as Proxies for Hailstorms [J].
Cecil, Daniel J. .
JOURNAL OF APPLIED METEOROLOGY AND CLIMATOLOGY, 2009, 48 (06) :1281-1286
[6]   Three years of TRMM precipitation features. Part I: Radar, radiometric, and lightning characteristics [J].
Cecil, DJ ;
Goodman, SJ ;
Boccippio, DJ ;
Zipser, EJ ;
Nesbitt, SW .
MONTHLY WEATHER REVIEW, 2005, 133 (03) :543-566
[7]  
GES DISC, 2017, GPM SSMI F14 COMM CA, DOI [10.5067/GPM/SSMI/F14/1C/05, DOI 10.5067/GPM/SSMI/F14/1C/05]
[8]  
Grody N. C., 1984, IGARSS '84. Remote Sensing - From Research Towards Operational Use (ESA SP-215), P417
[9]   SSM/I INSTRUMENT EVALUATION [J].
HOLLINGER, JP ;
PEIRCE, JL ;
POE, GA .
IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING, 1990, 28 (05) :781-790
[10]   THE GLOBAL PRECIPITATION MEASUREMENT MISSION [J].
Hou, Arthur Y. ;
Kakar, Ramesh K. ;
Neeck, Steven ;
Azarbarzin, Ardeshir A. ;
Kummerow, Christian D. ;
Kojima, Masahiro ;
Oki, Riko ;
Nakamura, Kenji ;
Iguchi, Toshio .
BULLETIN OF THE AMERICAN METEOROLOGICAL SOCIETY, 2014, 95 (05) :701-+