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publications:publications [2026/08/27 12:47] mguevara |
publications:publications [2026/09/25 07:58] (current) molmo |
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| - | - [[https:// | + | |
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| - [[https:// | - [[https:// | ||
| - Chun, K.P., L. Aragão, M.E. Olmo, V.D. Nguyen, C. Bayu Risanto, M.L. Bettolli, Y. Ezber, E. Toker and K.V. Varotsos (2026). New horizons in statistical downscaling and AI approaches for sustainable km-scale climate simulations. [[https:// | - Chun, K.P., L. Aragão, M.E. Olmo, V.D. Nguyen, C. Bayu Risanto, M.L. Bettolli, Y. Ezber, E. Toker and K.V. Varotsos (2026). New horizons in statistical downscaling and AI approaches for sustainable km-scale climate simulations. [[https:// | ||
| Line 45: | Line 46: | ||
| - Gualdi, S., J. García‐Serrano, | - Gualdi, S., J. García‐Serrano, | ||
| - Gualdi, S., E. Rodríguez-Camino, | - Gualdi, S., E. Rodríguez-Camino, | ||
| + | - Gupta, A.K., J.F. Kok, V. Amiridis, A. Gkikas, K. Rizos, E. Proestakis, S. Logothetis, E. Marinou, | ||
| - Hohenberger, | - Hohenberger, | ||
| - Houghton, T., ME. Olmo, M. Mestres, S. Kraszeski, P. Cos, A. Soret and M. Espino (2026). Future Wave Climate in the NW Mediterranean from Multi-Model CMIP6 Wind Projections. [[ https:// | - Houghton, T., ME. Olmo, M. Mestres, S. Kraszeski, P. Cos, A. Soret and M. Espino (2026). Future Wave Climate in the NW Mediterranean from Multi-Model CMIP6 Wind Projections. [[ https:// | ||
| Line 50: | Line 52: | ||
| - Im, U., B.H. Samset, A. Nenes, J.L. Thoma, H. Kokkola, O. Dubovik, V. Amiridis, A. Arola, N. Bellouin, A. Benedetti, M. Bilde, S. Blichner, S. Decesari, A.M.L. Ekman, C. Pérez García-Pando, | - Im, U., B.H. Samset, A. Nenes, J.L. Thoma, H. Kokkola, O. Dubovik, V. Amiridis, A. Arola, N. Bellouin, A. Benedetti, M. Bilde, S. Blichner, S. Decesari, A.M.L. Ekman, C. Pérez García-Pando, | ||
| - Jiménez-Guerrero, | - Jiménez-Guerrero, | ||
| - | - Jost F., A. Verones, N. Nachtigall, M. Ellena, L. Moreno, J. Bielsa, M. Englund, K. André, Å.G. Swartling, R. Witton, S. Bharwani, E. Baulenas, S. Pickard, A. Reder and P. Mercogliano (2026). Co-designing soft climate adaptation: citizen centred solutions across four European pilots. [[https:// | + | - Jost, F., A. Verones, N. Nachtigall, M. Ellena, L. Moreno, J. Bielsa, M. Englund, K. André, Å.G. Swartling, R. Witton, S. Bharwani, E. Baulenas, S. Pickard, A. Reder and P. Mercogliano (2026). Co-designing soft climate adaptation: citizen centred solutions across four European pilots. [[https:// |
| + | - Karami, P., T. Koenigk, S. Wang, R. Navarro Labastida, T. Kruschke, A. Carreric, P. Ortega, K. Wyser, R. Fuentes Franco, A.M. de Boer, M. Sicard, and A. Aldama Campino (2026). Historical Climate and Future Projection in the North Atlantic and Arctic: Insights from EC-Earth3 High-Resolution Simulations. [[https:// | ||
| - Kok, J.F., A.K. Gupta, A.T. Evan, C. Pérez García-Pando, | - Kok, J.F., A.K. Gupta, A.T. Evan, C. Pérez García-Pando, | ||
| - Kritt, H, José Chen-Xu, Jan C Semenza, Hannah Heiliger, Anil Markandya, Niheer Dasandi, Slava Jankin, Kim R van Daalen, Hicham Achebak, Anna Alari, Tilly Alcayna, Emily Ball, Joan Ballester, Hannah Bechara, Max W Callaghan, Monique van Cauwenberghe, | - Kritt, H, José Chen-Xu, Jan C Semenza, Hannah Heiliger, Anil Markandya, Niheer Dasandi, Slava Jankin, Kim R van Daalen, Hicham Achebak, Anna Alari, Tilly Alcayna, Emily Ball, Joan Ballester, Hannah Bechara, Max W Callaghan, Monique van Cauwenberghe, | ||
| - Kuhlmann, G., E.F.M. Koene, C.N. Schooling, P.I. Palmer, O. López and M. Guevara (2026). Temporal variability of NOx emissions from power plants: a comparison of satellite- and inventory-based estimates. [[https:// | - Kuhlmann, G., E.F.M. Koene, C.N. Schooling, P.I. Palmer, O. López and M. Guevara (2026). Temporal variability of NOx emissions from power plants: a comparison of satellite- and inventory-based estimates. [[https:// | ||
| + | - Lacima-Nadolnik, | ||
| - Lavoie, J., A. Carreric, A. Duffey, G. Chellini and E. Ziegler (2026). CMIP6 data usage: Lessons learned from more than 200 million downloads. [[https:// | - Lavoie, J., A. Carreric, A. Duffey, G. Chellini and E. Ziegler (2026). CMIP6 data usage: Lessons learned from more than 200 million downloads. [[https:// | ||
| - Li, C, M. Kotz, P. Pradhan, X. Wu, Y. Hu, Z. Li and G. Chen (2026). Climate change drives a decline in global grazing systems. [[https:// | - Li, C, M. Kotz, P. Pradhan, X. Wu, Y. Hu, Z. Li and G. Chen (2026). Climate change drives a decline in global grazing systems. [[https:// | ||
| Line 63: | Line 67: | ||
| - Maraun, D., D. Bojovic, W. Parker, T.G. Shepherd, S. Sobolowski, C. Caminade, A. Dosio, W.J. Gutowski, A. Sörensson, L.B. Diaz, I. Diouf, F.J. Doblas-Reyes, | - Maraun, D., D. Bojovic, W. Parker, T.G. Shepherd, S. Sobolowski, C. Caminade, A. Dosio, W.J. Gutowski, A. Sörensson, L.B. Diaz, I. Diouf, F.J. Doblas-Reyes, | ||
| - Martin-Martinez, | - Martin-Martinez, | ||
| + | - Medina, F., ME. Olmo, ML. Bettolli (2026). Multi-Temporal Diagnostic of Atmospheric Circulation Patterns and Teleconnections in Subtropical South America.[[https:// | ||
| - Meyer, H., K. Kandler, S. Dupont, J. Escribano, J. Girdwood, G. Nikolich, A. Alastuey, V. Etyemezian, C. González Flórez, A. González-Romero, | - Meyer, H., K. Kandler, S. Dupont, J. Escribano, J. Girdwood, G. Nikolich, A. Alastuey, V. Etyemezian, C. González Flórez, A. González-Romero, | ||
| - Moreno-Chamarro, | - Moreno-Chamarro, | ||
| Line 74: | Line 79: | ||
| - Ospina, D., ... M. Kotz., et al. Ten new insights in climate science 2025 (2026). [[https:// | - Ospina, D., ... M. Kotz., et al. Ten new insights in climate science 2025 (2026). [[https:// | ||
| - Palma, L., A. Peraza, D. Civantos-Prieto, | - Palma, L., A. Peraza, D. Civantos-Prieto, | ||
| - | - Pérez-Zanón, | + | - Pérez-Zanón, |
| - Pickard, S., E. Baulenas Serra, M. Ellena, R- Witton, E. Bruley, S. Bharwani, M. Mattera and A Scolobig (2026). Advancing climate adaptation through citizen engagement: knowledge development, | - Pickard, S., E. Baulenas Serra, M. Ellena, R- Witton, E. Bruley, S. Bharwani, M. Mattera and A Scolobig (2026). Advancing climate adaptation through citizen engagement: knowledge development, | ||
| - Pickard, S., F. Gignac, A.T. Amorim-Maia and D. Bojovic (2026). Operationalising heat vulnerability mapping: analysing nine approaches in Barcelona. [[https:// | - Pickard, S., F. Gignac, A.T. Amorim-Maia and D. Bojovic (2026). Operationalising heat vulnerability mapping: analysing nine approaches in Barcelona. [[https:// | ||
| Line 82: | Line 87: | ||
| - Rosa, M.; J.M. Armengol, A. Julian-Izquierdo, | - Rosa, M.; J.M. Armengol, A. Julian-Izquierdo, | ||
| - Saurral, R., D. Campos, K. Grayson, V. Lapin, P. Trascasa-Castro, | - Saurral, R., D. Campos, K. Grayson, V. Lapin, P. Trascasa-Castro, | ||
| + | - Saurral, R. and F. Kucharski (2026). Arctic amplification fingerprints on the midlatitude circulation in a medium-complexity global atmospheric model. [[https:// | ||
| - Satpathy, S.S., Franzke, C.L.E., Verjans, V. and O'Kane T. (2026). Anthropogenic climate change leads to a pronounced reorganisation of wintertime North Atlantic atmospheric circulation regimes. [[https:// | - Satpathy, S.S., Franzke, C.L.E., Verjans, V. and O'Kane T. (2026). Anthropogenic climate change leads to a pronounced reorganisation of wintertime North Atlantic atmospheric circulation regimes. [[https:// | ||
| - Tarín-Carrasco, | - Tarín-Carrasco, | ||
| Line 88: | Line 94: | ||
| - Vergara-Palacio, | - Vergara-Palacio, | ||
| - Verjans, V., Donat, M.G., Delgado-Torres, | - Verjans, V., Donat, M.G., Delgado-Torres, | ||
| - | - Vivanco, M.G., C Hernández, M. R. Theobald, V. Gil, J.L. Garrido, C. Ordóñez, J.M. Garrido, A. Rodríguez-Sánchez, | + | - Vivanco, M.G., C Hernández, M. R. Theobald, V. Gil, J.L. Garrido, C. Ordóñez, J.M. Garrido, A. Rodríguez-Sánchez, |
| - | Assessing the responsiveness of an air quality model to real-world emission changes for air quality planning. [[ https:// | + | |
| - Yáñez-Serrano, | - Yáñez-Serrano, | ||
| - Zong, Z., M. Xia, C. Lin, X. Chen, L. Xue, Q. Li, Y. Jiang, C. Tian, X. Fan, Q. Yuan, X. Wang, Y. Zhu, J. Zhang, S. Lee, Y. Mu, J. Li, X. Fu, C. Ren, X. Huang, C. Yan, W. Nie, A. Badia, G. Zhang, A. Ding, R.-J. Huang, M. Kulmala, A. Saiz-Lopez, T. Wang and W. Wang (2026). Isotopic constraints on the origin of reactive chlorine in the troposphere. [[https:// | - Zong, Z., M. Xia, C. Lin, X. Chen, L. Xue, Q. Li, Y. Jiang, C. Tian, X. Fan, Q. Yuan, X. Wang, Y. Zhu, J. Zhang, S. Lee, Y. Mu, J. Li, X. Fu, C. Ren, X. Huang, C. Yan, W. Nie, A. Badia, G. Zhang, A. Ding, R.-J. Huang, M. Kulmala, A. Saiz-Lopez, T. Wang and W. Wang (2026). Isotopic constraints on the origin of reactive chlorine in the troposphere. [[https:// | ||
| - Ana C. Franco, Debby Ianson, Raffaele Bernardello, | - Ana C. Franco, Debby Ianson, Raffaele Bernardello, | ||
| + | - Goitia, P., M. G. Marciani, M. Castrillo and M. C. Acosta (2026). Task aggregation as a strategy to optimize Earth System Model workflows in HPC: assessing real scenarios with EC-Earth, [[https:// | ||
| + | - Mozaffari, A., M. Castaño, S. Materia, E. Tourigny, O. Molina-Sedano, | ||
| ====2025==== | ====2025==== | ||