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BibEntryCargo > Journal : Atmospheric Chemistry and Physics or Coastal Engineering & Volume : 5 or 11 or 58

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Choi, Junwoo; Yoon, Sung Bum; (1) · Dietrich, J.C.; Zijlema, M.; Westerink, J.J.; Holthuijsen, L.H.; Dawson, C.; Luettich, R.A.; Jensen, R.E.; Smith, J.M.; Stelling, G.S.; Stone, G.W.; (2) · Fan, S. J.; Fan, Q.; Yu, W.; Luo, X. Y.; Wang, B. M.; Song, L. L.; Leong, K. L.; (1) · Flagg, D. D.; Taylor, P. A.; (1) · Gorrell, L.; Raubenheimer, B.; Elgar, Steve; Guza, R.T.; (1) · Grell, G.; Freitas, S. R.; Stuefer, M.; Fast, J.; (1) · Harrigan, D. L.; Fuelberg, H. E.; Simpson, I. J.; Blake, D. R.; Carmichael, G. R.; Diskin, G. S.; (1) · Kim, S.-W.; McKeen, S. A.; Frost, G. J.; Lee, S.-H.; Trainer, M.; Richter, A.; Angevine, W. M.; Atlas, E.; Bianco, L.; Boersma, K. F.; Brioude, J.; Burrows, J. P.; de Gouw, J.; Fried, A.; Gleason, J.; Hilboll, A.; Mellqvist, J.; Peischl, J.; Richter, D.; Rivera, C.; Ryerson, T.; te Lintel Hekkert, S.; Walega, J.; Warneke, C.; Weibring, P.; Williams, E.; (1) · Kirby, J.T.; Dalrymple, R.A.; (1) · Kumar, N.; Voulgaris, G.; Warner, J.C.; (2) · Lebo, Z. J.; Seinfeld, J. H.; (2) · Lee, S.-H.; Kim, S.-W.; Angevine, W. M.; Bianco, L.; McKeen, S. A.; Senff, C. J.; Trainer, M.; Tucker, S. C.; Zamora, R. J.; (1) · Lee, S.-H.; Kim, S.-W.; Trainer, M.; Frost, G. J.; McKeen, S. A.; Cooper, O. R.; Flocke, F.; Holloway, J. S.; Neuman, J. A.; Ryerson, T.; Senff, C. J.; Swanson, A. L.; Thompson, A. M.; (1) · Li, G.; Zavala, M.; Lei, W.; Tsimpidi, A. P.; Karydis, V. A.; Pandis, S. N.; Canagaratna, M. R.; Molina, L. T.; (1) · Luo, G.; Yu, F.; (1) · Mahalov, A.; Moustaoui, M.; Grubišić, V.; (1) · Orzech, Mark D.; Reniers, Ad J.H.M.; Thornton, Edward B.; MacMahan, Jamie H.; (1) · Pérez, C.; Haustein, K.; Janjic, Z.; Jorba, O.; Huneeus, N.; Baldasano, J. M.; Black, T.; Basart, S.; Nickovic, S.; Miller, R. L.; Perlwitz, J. P.; Schulz, M.; Thomson, M.; (1) · Ranasinghe, Roshanka; Swinkels, Cilia; Luijendijk, Arjen; Roelvink, Dano; Bosboom, Judith; Stive, Marcel; Walstra, DirkJan; (1) · Reikard, Gordon; Rogers, W. Erick; (1) · Saikawa, E.; Kurokawa, J.; Takigawa, M.; Borken-Kleefeld, J.; Mauzerall, D. L.; Horowitz, L. W.; Ohara, T.; (1) · Sessions, W. R.; Fuelberg, H. E.; Kahn, R. A.; Winker, D. M.; (1) · Shrivastava, M.; Fast, J.; Easter, R.; Gustafson, W. I.; Zaveri, R. A.; Jimenez, J. L.; Saide, P.; Hodzic, A.; (1) · Smith, Grant Alexander; Babanin, Alexander V.; Riedel, Peter; Young, I.R.; Oliver, Stephen; Hubbert, Graeme; (1) · Wang, Y.; Wan, Q.; Meng, W.; Liao, F.; Tan, H.; Zhang, R.; (1) · Wenneker, Ivo; van Dongeren, Ap; Lescinski, Jamie; Roelvink, Dano; Borsboom, Mart; (1) · Yang, Q.; Fast, J. D.; Wang, H.; Easter, R. C.; Morrison, H.; Lee, Y.-N.; Chapman, E. G.; Spak, S. N.; Mena-Carrasco, M. A.; (1) · de Foy, B.; Burton, S. P.; Ferrare, R. A.; Hostetler, C. A.; Hair, J. W.; Wiedinmyer, C.; Molina, L. T.; (1) · van Rijn, L.C.; Tonnon, P.K.; Walstra, D.J.R.; (1)
Title:
A Boussinesq-type wave driver for a morphodynamical model to predict short-term morphology (1) · A continuous spectral aerosol-droplet microphysics model (1) · A numerical study of mountain waves in the upper troposphere and lower stratosphere (1) · Aerosol plume transport and transformation in high spectral resolution lidar measurements and WRF-Flexpart simulations during the MILAGRO Field Campaign (1) · An approximate model for nonlinear dispersion in monochromatic wave propagation models, by J.T. Kirby and R.A. Dalrymple (1) · An investigation of methods for injecting emissions from boreal wildfires using WRF-Chem during ARCTAS (1) · Anthropogenic emissions during Arctas-A: mean transport characteristics and regional case studies (1) · Assessing regional scale predictions of aerosols, marine stratocumulus, and their interactions during VOCALS-REx using WRF-Chem (1) · Atmospheric boundary layer characteristics over the Pearl River Delta, China, during the summer of 2006: measurement and model results (1) · Atmospheric dust modeling from meso to global scales with the online NMMB/BSC-Dust model – Part 1: Model description, annual simulations and evaluation (1) · Evaluation of urban surface parameterizations in the WRF model using measurements during the Texas Air Quality Study 2006 field campaign (1) · Evaluations of NO x and highly reactive VOC emission inventories in Texas and their implications for ozone plume simulations during the Texas Air Quality Study 2006 (1) · Forecasting ocean waves: Comparing a physics-based model with statistical models (1) · Implementation and modification of a three-dimensional radiation stress formulation for surf zone and rip-current applications (2) · Inclusion of biomass burning in WRF-Chem: impact of wildfires on weather forecasts (1) · Introduction of a new friction routine into the SWAN model that evaluates roughness due to bedform and sediment size changes (1) · Long-term impacts of aerosols on precipitation and lightning over the Pearl River Delta megacity area in China (1) · Megacusps on rip channel bathymetry: Observations and modeling (1) · Modeling hurricane waves and storm surge using integrally-coupled, scalable computations (2) · Modeling organic aerosols in a megacity: comparison of simple and complex representations of the volatility basis set approach (1) · Modeling ozone plumes observed downwind of New York City over the North Atlantic Ocean during the ICARTT field campaign (1) · Morphodynamic upscaling with the MORFAC approach: Dependencies and sensitivities (1) · Numerical modelling of erosion and accretion of plane sloping beaches at different scales (1) · Numerical simulation of nearshore circulation on field topography under random wave environment (1) · SWAN predictions of waves observed in shallow water onshore of complex bathymetry (1) · Sensitivity of mesoscale model urban boundary layer meteorology to the scale of urban representation (1) · Simulation of particle formation and number concentration over the Eastern United States with the WRF-Chem + APM model (1) · Simulations of organic aerosol concentrations in Mexico City using the WRF-CHEM model during the MCMA-2006/MILAGRO campaign (1) · The impact of China's vehicle emissions on regional air quality in 2000 and 2020: a scenario analysis (1) · Theoretical basis for convective invigoration due to increased aerosol concentration (1)
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https://acp.copernicus.org/articles/11/11521/2011/ (1) · https://acp.copernicus.org/articles/11/12297/2011/ (1) · https://acp.copernicus.org/articles/11/2951/2011/ (1) · https://acp.copernicus.org/articles/11/5123/2011/ (1) · https://acp.copernicus.org/articles/11/5719/2011/ (1) · https://acp.copernicus.org/articles/11/6297/2011/ (1) · https://acp.copernicus.org/articles/11/7375/2011/ (1) · https://acp.copernicus.org/articles/11/8677/2011/ (1) · https://linkinghub.elsevier.com/retrieve/pii/037838398790041X (1) · https://linkinghub.elsevier.com/retrieve/pii/S0378383910001250 (2) · https://linkinghub.elsevier.com/retrieve/pii/S0378383910001316 (1) · https://linkinghub.elsevier.com/retrieve/pii/S037838391000164X (1) · https://linkinghub.elsevier.com/retrieve/pii/S0378383910001821 (1) · https://linkinghub.elsevier.com/retrieve/pii/S0378383910001833 (1) · https://linkinghub.elsevier.com/retrieve/pii/S037838391100010X (1) · https://linkinghub.elsevier.com/retrieve/pii/S0378383911000147 (1) · https://linkinghub.elsevier.com/retrieve/pii/S0378383911000457 (1) · https://linkinghub.elsevier.com/retrieve/pii/S0378383911000615 (1) · https://linkinghub.elsevier.com/retrieve/pii/S0378383911001128 (2) · https://www.atmos-chem-phys.net/11/11361/2011/ (1) · https://www.atmos-chem-phys.net/11/11951/2011/ (1) · https://www.atmos-chem-phys.net/11/12421/2011/ (1) · https://www.atmos-chem-phys.net/11/13001/2011/ (1) · https://www.atmos-chem-phys.net/11/2127/2011/ (1) · https://www.atmos-chem-phys.net/11/3543/2011/ (1) · https://www.atmos-chem-phys.net/11/3789/2011/ (1) · https://www.atmos-chem-phys.net/11/5289/2011/ (1) · https://www.atmos-chem-phys.net/11/5407/2011/ (1) · https://www.atmos-chem-phys.net/11/6639/2011/ (1) · https://www.atmos-chem-phys.net/11/9465/2011/ (1)
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