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BibEntryCargo > Journal : Atmospheric Chemistry and Physics or None & Volume : 4 or 14

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Amnuaylojaroen, T.; Barth, M. C.; Emmons, L. K.; Carmichael, G. R.; Kreasuwun, J.; Prasitwattanaseree, S.; Chantara, S.; (1) · Bozhinova, D.; van der Molen, M. K.; van der Velde, I. R.; Krol, M. C.; van der Laan, S.; Meijer, H. A. J.; Peters, W.; (1) · Chatani, S.; Amann, M.; Goel, A.; Hao, J.; Klimont, Z.; Kumar, A.; Mishra, A.; Sharma, S.; Wang, S. X.; Wang, Y. X.; Zhao, B.; (1) · Cheng, Z.; Wang, S.; Fu, X.; Watson, J. G.; Jiang, J.; Fu, Q.; Chen, C.; Xu, B.; Yu, J.; Chow, J. C.; Hao, J.; (2) · Christopher, S. A.; (1) · Costantino, L.; Heinrich, P.; (1) · Dorava, Joseph M.; Montgomery, David R.; Palcsak, Betty B.; Fitzpatrick, Faith A.; Lancaster, Stephen T.; Hayes, Shannon K.; Grant, Gordon E.; (1) · Fan, J.; Leung, L. R.; DeMott, P. J.; Comstock, J. M.; Singh, B.; Rosenfeld, D.; Tomlinson, J. M.; White, A.; Prather, K. A.; Minnis, P.; Ayers, J. K.; Min, Q.; (1) · Fast, J. D.; Allan, J.; Bahreini, R.; Craven, J.; Emmons, L.; Ferrare, R.; Hayes, P. L.; Hodzic, A.; Holloway, J.; Hostetler, C.; Jimenez, J. L.; Jonsson, H.; Liu, S.; Liu, Y.; Metcalf, A.; Middlebrook, A.; Nowak, J.; Pekour, M.; Perring, A.; Russell, L.; Sedlacek, A.; Seinfeld, J.; Setyan, A.; Shilling, J.; Shrivastava, M.; Springston, S.; Song, C.; Subramanian, R.; Taylor, J. W.; Vinoj, V.; Yang, Q.; Zaveri, R. A.; Zhang, Q.; (1) · Feng, H.; Vandemark, D.; Chapron, B.; Beckley, B.; (1) · Ge, C.; Wang, J.; Reid, J. S.; (1) · Heath, N. K.; Fuelberg, H. E.; (1) · Hu, X.; Li, D.; Huang, H.; Shen, S.; Bou-Zeid, E.; (1) · Karl, M.; Castell, N.; Simpson, D.; Solberg, S.; Starrfelt, J.; Svendby, T.; Walker, S.-E.; Wright, R. F.; (1) · Kazil, J.; Feingold, G.; Wang, H.; Yamaguchi, T.; (1) · Kern, S.; Harms, I.; (1) · Kim, S. H.; Chun, H.-Y.; Jang, W.; (1) · Klich, C. A.; Fuelberg, H. E.; (1) · Kretschmer, R.; Gerbig, C.; Karstens, U.; Biavati, G.; Vermeulen, A.; Vogel, F.; Hammer, S.; Totsche, K. U.; (1) · Kumar, R.; Barth, M. C.; Madronich, S.; Naja, M.; Carmichael, G. R.; Pfister, G. G.; Knote, C.; Brasseur, G. P.; Ojha, N.; Sarangi, T.; (1) · Kumar, R.; Barth, M. C.; Pfister, G. G.; Naja, M.; Brasseur, G. P.; (1) · Luo, Qian-kun; Wu, Jian-feng; Yang, Yun; (1) · Mashayekhi, R.; Sloan, J. J.; (1) · Murray, L. T.; Mickley, L. J.; Kaplan, J. O.; Sofen, E. D.; Pfeiffer, M.; Alexander, B.; (2) · Péré, J. C.; Bessagnet, B.; Mallet, M.; Waquet, F.; Chiapello, I.; Minvielle, F.; Pont, V.; Menut, L.; (1) · Réchou, A.; Kirkwood, S.; Arnault, J.; Dalin, P.; (1) · Safieddine, S.; Boynard, A.; Coheur, P.-F.; Hurtmans, D.; Pfister, G.; Quennehen, B.; Thomas, J. L.; Raut, J.-C.; Law, K. S.; Klimont, Z.; Hadji-Lazaro, J.; George, M.; Clerbaux, C.; (1) · Salzmann, M.; Lawrence, M. G.; Phillips, V. T. J.; Donner, L. J.; (1) · Scarino, A. J.; Obland, M. D.; Fast, J. D.; Burton, S. P.; Ferrare, R. A.; Hostetler, C. A.; Berg, L. K.; Lefer, B.; Haman, C.; Hair, J. W.; Rogers, R. R.; Butler, C.; Cook, A. L.; Harper, D. B.; (1) · Wang, J. S.; Kawa, S. R.; Eluszkiewicz, J.; Baker, D. F.; Mountain, M.; Henderson, J.; Nehrkorn, T.; Zaccheo, T. S.; (1) · Yu, S.; Mathur, R.; Pleim, J.; Wong, D.; Gilliam, R.; Alapaty, K.; Zhao, C.; Liu, X.; (1) · Zeng, X.-M.; Wang, B.; Zhang, Y.; Song, S.; Huang, X.; Zheng, Y.; Chen, C.; Wang, G.; (1) · Zhang, H.; DeNero, S. P.; Joe, D. K.; Lee, H.-H.; Chen, S.-H.; Michalakes, J.; Kleeman, M. J.; (2) · Zhao, C.; Hu, Z.; Qian, Y.; Ruby Leung, L.; Huang, J.; Huang, M.; Jin, J.; Flanner, M. G.; Zhang, R.; Wang, H.; Yan, H.; Lu, Z.; Streets, D. G.; (1)
Title:
A regional CO<sub>2</sub> observing system simulation experiment for the ASCENDS satellite mission (1) · Aerosol impacts on California winter clouds and precipitation during CalWater 2011: local pollution versus long-range transported dust (1) · Aerosol indirect effect on the grid-scale clouds in the two-way coupled WRF–CMAQ: model description, development, evaluation and regional analysis (1) · An improved fast harmony search algorithm for identification of hydrogeological parameters (1) · Comparison of mixed layer heights from airborne high spectral resolution lidar, ground-based measurements, and the WRF-Chem model during CalNex and CARES (1) · Development of a source oriented version of the WRF/Chem model and its application to the California regional PM<sub>10</sub> / PM<sub>2.5</sub> air quality study (2) · Direct radiative effect of the Russian wildfires and its impact on air temperature and atmospheric dynamics during August 2010 (1) · Effect of different emission inventories on modeled ozone and carbon monoxide in Southeast Asia (1) · Effects of aerosols on precipitation in north-eastern North America (1) · Effects of dust aerosols on tropospheric chemistry during a typical pre-monsoon season dust storm in northern India (1) · Factors controlling variability in the oxidative capacity of the troposphere since the Last Glacial Maximum (2) · Horizontal divergence of typhoon-generated gravity waves in the upper troposphere and lower stratosphere (UTLS) and its influence on typhoon evolution (1) · Impact of biomass burning on haze pollution in the Yangtze River delta, China: a case study in summer 2011 (2) · Impact of optimized mixing heights on simulated regional atmospheric transport of CO 2 (1) · Mesoscale modeling of smoke transport over the Southeast Asian Maritime Continent: coupling of smoke direct radiative effect below and above the low-level clouds (1) · Modeling and sensitivity analysis of transport and deposition of radionuclides from the Fukushima Dai-ichi accident (1) · Modeling regional aerosol and aerosol precursor variability over California and its sensitivity to emissions and long-range transport during the 2010 CalNex and CARES campaigns (1) · Modeling sediment and wood storage and dynamics in small mountainous watersheds (1) · Modelling tracer transport by a cumulus ensemble: lateral boundary conditions and large-scale ascent (1) · On the interaction between marine boundary layer cellular cloudiness and surface heat fluxes (1) · Photochemical roles of rapid economic growth and potential abatement strategies on tropospheric ozone over South and East Asia in 2030 (1) · Sensitivity of high-temperature weather to initial soil moisture: a case study using the WRF model (1) · Short vertical-wavelength inertia-gravity waves generated by a jet–front system at Arctic latitudes – VHF radar, radiosondes and numerical modelling (1) · Simulating black carbon and dust and their radiative forcing in seasonal snow: a case study over North China with field campaign measurements (1) · Simulating the integrated summertime Δ<sup>14</sup>CO<sub>2</sub> signature from anthropogenic emissions over Western Europe (1) · Simulation of GOES-R ABI aerosol radiances using WRF-CMAQ: a case study approach (1) · Spatial resolution improvement of sea ice maps prescribed to Regional Arctic Shelf Ocean Models by using Special Sensor Microwave/Imager 85 GHz data (1) · Summertime tropospheric ozone assessment over the Mediterranean region using the thermal infrared IASI/MetOp sounder and the WRF-Chem model (1) · The role of horizontal model resolution in assessing the transport of CO in a middle latitude cyclone using WRF-Chem (1) · Tropical deep convection and density current signature in surface pressure: comparison between WRF model simulations and infrasound measurements (1) · Uncertainties in assessing the environmental impact of amine emissions from a CO<sub>2</sub> capture plant (1) · Use of a global wave model to correct altimeter sea level estimates (1) · Using a WRF simulation to examine regions where convection impacts the Asian summer monsoon anticyclone (1) · WRF-Chem simulations of a typical pre-monsoon dust storm in northern India: influences on aerosol optical properties and radiation budget (1)
Editors:
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URL:
http://ieeexplore.ieee.org/document/1026482/ (1) · http://ieeexplore.ieee.org/document/1369868/ (1) · http://www.agu.org/books/ws/v004/WS004p0085/WS004p0085.shtml (1) · https://acp.copernicus.org/articles/14/11065/2014/ (1) · https://acp.copernicus.org/articles/14/12897/2014/ (1) · https://acp.copernicus.org/articles/14/1999/2014/ (1) · https://acp.copernicus.org/articles/14/2055/2014/ (1) · https://acp.copernicus.org/articles/14/3113/2014/ (1) · https://acp.copernicus.org/articles/14/3175/2014/ (1) · https://acp.copernicus.org/articles/14/3183/2014/ (1) · https://acp.copernicus.org/articles/14/3589/2014/ (2) · https://acp.copernicus.org/articles/14/4573/2014/ (1) · https://acp.copernicus.org/articles/14/485/2014/ (2) · https://acp.copernicus.org/articles/14/5111/2014/ (1) · https://acp.copernicus.org/articles/14/5547/2014/ (1) · https://acp.copernicus.org/articles/14/609/2014/ (1) · https://acp.copernicus.org/articles/14/61/2014/ (1) · https://acp.copernicus.org/articles/14/6785/2014/ (1) · https://acp.copernicus.org/articles/14/6813/2014/ (1) · https://acp.copernicus.org/articles/14/7273/2014/ (1) · https://acp.copernicus.org/articles/14/8533/2014/ (1) · https://acp.copernicus.org/articles/14/9259/2014/ (1) · https://acp.copernicus.org/articles/14/9623/2014/ (1) · https://acp.copernicus.org/articles/4/1797/2004/ (1) · https://ieeexplore.ieee.org/document/6022401/ (1) · https://www.atmos-chem-phys.net/14/10013/2014/ (1) · https://www.atmos-chem-phys.net/14/10119/2014/ (1) · https://www.atmos-chem-phys.net/14/11247/2014/ (1) · https://www.atmos-chem-phys.net/14/11475/2014/ (1) · https://www.atmos-chem-phys.net/14/12983/2014/ (1) · https://www.atmos-chem-phys.net/14/159/2014/ (1) · https://www.atmos-chem-phys.net/14/2431/2014/ (1) · https://www.atmos-chem-phys.net/14/4573/2014/ (1) · https://www.atmos-chem-phys.net/14/7149/2014/ (1) · https://www.atmos-chem-phys.net/14/81/2014/ (1)
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