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4535137
Pauluis
1
nature
50
date
desc
year
123
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%20the%20tropics%20because%20of%20the%20increase%20in%20dry%20effective%20stratification%20whereas%20it%20decreases%20in%20the%20extratropics%20following%20the%20reduction%20in%20eddy%20sensible%20heat%20transport.%20Distinct%20features%20are%20found%20on%20moist%20isentropes.%20In%20the%20tropics%2C%20the%20circulation%20weakens%2C%20but%20without%20much%20change%20in%20heat%20transport.%20The%20extratropical%20circulation%20shifts%20poleward%20with%20an%20intensification%20%28weakening%29%20on%20the%20poleward%20%28equatorward%29%20flank%2C%20primarily%20because%20of%20the%20change%20in%20eddy%20latent%20heat%20transport.%20The%20total%20heat%20transport%20in%20the%20midlatitudes%20also%20shows%20a%20poleward%20shift%20but%20is%20of%20smaller%20magnitude.%20The%20differences%20between%20the%20dry%20and%20moist%20circulations%20reveal%20that%20in%20a%20warming%20world%20the%20increase%20in%20midlatitude%20eddy%20moisture%20transport%20is%20associated%20with%20an%20increase%20in%20warm%20moist%20air%20exported%20from%20the%20subtropics%20into%20the%20midlatitude%20storm%20tracks.%22%2C%22date%22%3A%22December%2021%2C%202012%22%2C%22language%22%3A%22%22%2C%22DOI%22%3A%2210.1175%5C%2FJAS-D-12-0235.1%22%2C%22ISSN%22%3A%220022-4928%22%2C%22url%22%3A%22http%3A%5C%2F%5C%2Fjournals.ametsoc.org%5C%2Fdoi%5C%2Ffull%5C%2F10.1175%5C%2FJAS-D-12-0235.1%22%2C%22collections%22%3A%5B%5D%2C%22dateModified%22%3A%222018-01-13T22%3A05%3A03Z%22%7D%7D%5D%7D
1.
Régibeau-Rockett, L., Pauluis, O. M. & O’Neill, M. E. Investigating the Relationship between Sea Surface Temperature and the Mechanical Efficiency of Tropical Cyclones. Journal of Climate 37, 439–456 (2023).
1.
Brown, M. L., Pauluis, O. & Gerber, E. P. Scaling for Saturated Moist Quasi-Geostrophic Turbulence. Journal of the Atmospheric Sciences 1, (2023).
1.
Gopalakrishnan, D. et al. Anatomy of a Summertime Convective Event over the Arabian Region. Monthly Weather Review 151, 989–1004 (2023).
1.
Sharma, S. et al. Machine Learning Methods for Multiscale Physics and Urban Engineering Problems. Entropy 24, 1134 (2022).
1.
Chien, M.-H., Pauluis, O. M. & Almgren, A. S. Hurricane-Like Vortices in Conditionally Unstable Moist Convection. Journal of Advances in Modeling Earth Systems 14, e2021MS002846 (2022).
1.
Francis, D. et al. Summertime dust storms over the Arabian Peninsula and impacts on radiation, circulation, cloud development and rain. Atmospheric Research 250, 105364 (2021).
1.
Taraphdar, S. et al. WRF Gray-Zone Simulations of Precipitation Over the Middle-East and the UAE: Impacts of Physical Parameterizations and Resolution. Journal of Geophysical Research: Atmospheres 126, e2021JD034648 (2021).
1.
Taraphdar, S. & Pauluis, O. M. Impact of Planetary Boundary Layer and Cloud Microphysics on the Sensitivity of Monsoon Precipitation Using a Gray-Zone Regional Model. Earth and Space Science 8, e2020EA001535 (2021).
1.
Jing, X. et al. Convection-Permitting Regional Climate Simulations in the Arabian Gulf Region Using WRF Driven by Bias-Corrected GCM Data. Journal of Climate 33, 7787–7815 (2020).
1.
Sabin, T. P. & Pauluis, O. M. The South Asian Monsoon Circulation in Moist Isentropic Coordinates. Journal of Climate 33, 5253–5270 (2020).
1.
Chen, X., Pauluis, O. M., Leung, L. R. & Zhang, F. Significant Contribution of Mesoscale Overturning to Tropical Mass and Energy Transport Revealed by the ERA5 Reanalysis. Geophys. Res. Lett. 47, e2019GL085333 (2020).
1.
Bangalath, H. K. & Pauluis, O. M. A New Mass Flux Correction Procedure for Vertically Integrated Energy Transport by Constraining Mass, Energy, and Water Budgets. Geophysical Research Letters 47, e2020GL089764 (2020).
1.
Chen, X., Pauluis, O. M., Leung, L. R. & Zhang, F. Significant Contribution of Mesoscale Overturning to Tropical Mass and Energy Transport Revealed by the ERA5 Reanalysis. Geophysical Research Letters 47, e2019GL085333 (2020).
1.
Fang, J., Pauluis, O. & Zhang, F. The Thermodynamic Cycles and Associated Energetics of Hurricane Edouard (2014) during Its Intensification. Journal of the Atmospheric Sciences 76, 1769–1784 (2019).
1.
Fang, J., Pauluis, O. & Zhang, F. The Thermodynamic Cycles and Associated Energetics of Hurricane Edouard (2014) during Its Intensification. J. Atmos. Sci. 76, 1769–1784 (2019).
1.
Wu, Y., Lu, J. & Pauluis, O. Weakening of Upward Mass but Intensification of Upward Energy Transport in a Warming Climate. Geophys. Res. Lett. 46, 1672–1680 (2019).
1.
Wu, Y., Lu, J. & Pauluis, O. Weakening of Upward Mass but Intensification of Upward Energy Transport in a Warming Climate. Geophysical Research Letters 46, 1672–1680 (2019).
1.
Pauluis, O. M. Comments on “A Third-Law Isentropic Analysis of a Simulated Hurricane”. Journal of the Atmospheric Sciences 75, 3725–3733 (2018).
1.
Pauluis, O. M. Comments on “A Third-Law Isentropic Analysis of a Simulated Hurricane”. J. Atmos. Sci. 75, 3725–3733 (2018).
1.
Chen, X., Pauluis, O. M., Leung, L. R. & Zhang, F. Multiscale Atmospheric Overturning of the Indian Summer Monsoon as Seen through Isentropic Analysis. J. Atmos. Sci. 75, 3011–3030 (2018).
1.
Chen, X., Pauluis, O. M., Leung, L. R. & Zhang, F. Multiscale Atmospheric Overturning of the Indian Summer Monsoon as Seen through Isentropic Analysis. J. Atmos. Sci. 75, 3011–3030 (2018).
1.
Chen, X., Pauluis, O. M. & Zhang, F. Atmospheric Overturning across Multiple Scales of an MJO Event during the CINDY/DYNAMO Campaign. Journal of the Atmospheric Sciences 75, 381–399 (2018).
1.
Chen, X., Pauluis, O. M. & Zhang, F. Regional simulation of Indian summer monsoon intraseasonal oscillations at gray-zone resolution. Atmos. Chem. Phys. 18, 1003–1022 (2018).
1.
Chen, X., Pauluis, O. M. & Zhang, F. Regional simulation of Indian summer monsoon intraseasonal oscillations at gray-zone resolution. Atmos. Chem. Phys. 18, 1003–1022 (2018).
1.
Taraphdar, S., Zhang, F., Leung, L. R., Chen, X. & Pauluis, O. M. MJO Affects the Monsoon Onset Timing Over the Indian Region. Geophysical Research Letters 45, 10011–10018 (2018).
1.
Chen, X., Pauluis, O. M. & Zhang, F. Atmospheric overturning across multiple scales of an MJO event during the CINDY/DYNAMO Campaign. J. Atmos. Sci. (2017) http://doi.org/10.1175/JAS-D-17-0060.1.
1.
Fang, J., Pauluis, O. & Zhang, F. Isentropic Analysis on the Intensification of Hurricane Edouard (2014). J. Atmos. Sci. 74, 4177–4197 (2017).
1.
Dauhut, T., Chaboureau, J.-P., Mascart, P. & Pauluis, O. The Atmospheric Overturning Induced by Hector the Convector. J. Atmos. Sci. 74, 3271–3284 (2017).
1.
Pauluis, O. M. & Zhang, F. Reconstruction of Thermodynamic Cycles in a High-Resolution Simulation of a Hurricane. J. Atmos. Sci. 74, 3367–3381 (2017).
1.
Pauluis, O. M. & Zhang, F. Reconstruction of Thermodynamic Cycles in a High-Resolution Simulation of a Hurricane. J. Atmos. Sci. 74, 3367–3381 (2017).
1.
Yamada, R. & Pauluis, O. Wave–Mean-Flow Interactions in Moist Baroclinic Life Cycles. J. Atmos. Sci. 74, 2143–2162 (2017).
1.
Lachkar, Z., Smith, S., Levy, M. & Pauluis, O. Eddies reduce denitrification and compress habitats in the Arabian Sea. Geophysical Research Letters 43, 9148–9156 (2016).
1.
Pauluis, O. M. The Mean Air Flow as Lagrangian Dynamics Approximation and Its Application to Moist Convection. J. Atmos. Sci. 73, 4407–4425 (2016).
1.
Pauluis, O. M. The Mean Air Flow as Lagrangian Dynamics Approximation and Its Application to Moist Convection. J. Atmos. Sci. 73, 4407–4425 (2016).
1.
Slawinska, J., Pauluis, O., Majda, A. J. & Grabowski, W. W. Multiscale Interactions in an Idealized Walker Cell: Analysis with Isentropic Streamfunctions. J. Atmos. Sci. 73, 1187–1203 (2015).
1.
Yamada, R. & Pauluis, O. Momentum Balance and Eliassen–Palm Flux on Moist Isentropic Surfaces. J. Atmos. Sci. 73, 1293–1314 (2015).
1.
Mrowiec, A. A., Pauluis, O. M. & Zhang, F. Isentropic Analysis of a Simulated Hurricane. J. Atmos. Sci. 73, 1857–1870 (2015).
1.
Mrowiec, A. A., Pauluis, O. M. & Zhang, F. Isentropic Analysis of a Simulated Hurricane. J. Atmos. Sci. 73, 1857–1870 (2015).
1.
Yamada, R. & Pauluis, O. Annular Mode Variability of the Atmospheric Meridional Energy Transport and Circulation. Journal of the Atmospheric Sciences 72, 2070–2089 (2015).
1.
Wu, Y. & Pauluis, O. What Is the Representation of the Moisture–Tropopause Relationship in CMIP5 Models? J. Climate 28, 4877–4889 (2015).
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Slawinska, J., Pauluis, O., Majda, A. J. & Grabowski, W. W. Multiscale Interactions in an Idealized Walker Cell: Simulations with Sparse Space-Time Superparameterization. Monthly Weather Review 143, 563–580 (2015).
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Pauluis, O. M. The global engine that could. Science 347, 475–476 (2015).
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Mrowiec, A. A., Pauluis, O. M., Fridlind, A. M. & Ackerman, A. S. Properties of a Mesoscale Convective System in the Context of an Isentropic Analysis. J. Atmos. Sci. 72, 1945–1962 (2015).
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Slawinska, J., Pauluis, O., Majda, A. J. & Grabowski, W. W. Multiscale Interactions in an Idealized Walker Circulation: Mean Circulation and Intraseasonal Variability. Journal of the Atmospheric Sciences 71, 953–971 (2014).
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Wu, Y. & Pauluis, O. Midlatitude Tropopause and Low-Level Moisture. J. Atmos. Sci. 71, 1187–1200 (2013).
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Pauluis, O. M. & Mrowiec, A. A. Isentropic Analysis of Convective Motions. J. Atmos. Sci. 70, 3673–3688 (2013).
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Laliberte, F., Shaw, T. & Pauluis, O. A Theory for the Lower-Tropospheric Structure of the Moist Isentropic Circulation. Journal of the Atmospheric Sciences 70, 843–854 (2013).
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Pauluis, O. & Schumacher, J. Radiation Impacts on Conditionally Unstable Moist Convection. J. Atmos. Sci. 70, 1187–1203 (2013).
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Pauluis, O. & Schumacher, J. Radiation Impacts on Conditionally Unstable Moist Convection. J. Atmos. Sci. 70, 1187–1203 (2013).
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Wu, Y. & Pauluis, O. Examination of Isentropic Circulation Response to a Doubling of Carbon Dioxide Using Statistical Transformed Eulerian Mean. J. Atmos. Sci. 70, 1649–1667 (2012).