0000000000326220

AUTHOR

Paul R. Field

showing 6 related works from this author

In Situ, Airborne Instrumentation: Addressing and Solving Measurement Problems in Ice Clouds

2012

The workshop on in situ airborne instrumentation: addressing and solving measurement problems in ice clouds, June 25-27, 2010, Oregon, aimed to identify unresolved questions concerning ice formation and evolution in ice clouds, assess the current state of instrumentation that can address these problems, introduce emerging technology that may overcome current measurement issues, and recommend future courses of action to improve our understanding of ice cloud microphysical. Eleven presentations were made covering measurement challenges associated measuring the composition and concentration of all the modes of ice nuclei (IN), measuring the morphology, mass, surface, and optical properties of …

[SDU.OCEAN]Sciences of the Universe [physics]/Ocean AtmosphereAtmospheric ScienceIce cloudIce formationOperations researchEmerging technologiesTechnical noteAtmospheric research[SDE]Environmental Sciencesddc:550Systems engineeringInstrumentation (computer programming)/dk/atira/pure/subjectarea/asjc/1900/1902ComputingMilieux_MISCELLANEOUS
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Model emulation to understand the joint effects of ice-nucleating particles and secondary ice production on deep convective anvil cirrus

2021

Abstract. Ice crystal formation in the mixed-phase region of deep convective clouds can affect the properties of climatically important convectively generated anvil clouds. Small ice crystals in the mixed-phase cloud region can be formed by heterogeneous ice nucleation by ice-nucleating particles (INP) and secondary ice production (SIP) by, for example, the Hallett-Mossop process. We quantify the effects of INP number concentration, the temperature dependence of the INP number concentration at mixedphase temperatures, and the Hallett-Mossop splinter production efficiency on the anvil of an idealised deep convective cloud using a Latin hypercube sampling method, which allows optimal coverage…

ConvectionMass fluxAtmospheric ScienceMaterials scienceIce crystalsPhysicsQC1-999AerosolPhysics::GeophysicsChemistryDeposition (aerosol physics)Chemical physicsIce nucleusParticleCirrusQD1-999Physics::Atmospheric and Oceanic PhysicsAtmospheric Chemistry and Physics
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The temperature dependence of ice-nucleating particle concentrations affects the radiative properties of tropical convective cloud systems

2021

Convective cloud systems in the maritime tropics play a critical role in global climate, but accurately representing aerosol interactions within these clouds persists as a major challenge for weather and climate modelling. We quantify the effect of ice-nucleating particles (INPs) on the radiative properties of a complex tropical Atlantic deep convective cloud field using a regional model with an advanced double-moment microphysics scheme. Our results show that the domain-mean daylight outgoing radiation varies by up to 18 W m−2 depending on the chosen INP parameterisation. The key distinction between different INP parameterisations is the temperature dependence of ice formation, which alter…

Atmospheric Science010504 meteorology & atmospheric sciencesMicrophysicsWeather and climateTropical Atlantic010502 geochemistry & geophysicsAtmospheric sciences01 natural scienceslcsh:QC1-999Aerosollcsh:ChemistryOrders of magnitude (specific energy)lcsh:QD1-99913. Climate actionRadiative transferParticleEnvironmental scienceClimate modellcsh:Physics0105 earth and related environmental sciences
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Vertical redistribution of moisture and aerosol in orographic mixed-phase clouds

2020

Orographic wave clouds offer a natural laboratory to investigate cloud microphysical processes and their representation in atmospheric models. Wave clouds impact the larger-scale flow by the vertical redistribution of moisture and aerosol. Here we use detailed cloud microphysical observations from the Ice in Clouds Experiment – Layer Clouds (ICE-L) campaign to evaluate the recently developed Cloud Aerosol Interacting Microphysics (CASIM) module in the Met Office Unified Model (UM) with a particular focus on different parameterizations for heterogeneous freezing. Modelled and observed thermodynamic and microphysical properties agree very well (deviation of air temperature <1 K; spe…

Atmospheric Science010504 meteorology & atmospheric sciencesMicrophysicsMoistureIce crystalsAtmospheric models0208 environmental biotechnology02 engineering and technologyUnified ModelAtmospheric sciences01 natural scienceslcsh:QC1-999020801 environmental engineeringAerosollcsh:Chemistrylcsh:QD1-999Cloud heightEnvironmental sciencePhysics::Atmospheric and Oceanic Physicslcsh:Physics0105 earth and related environmental sciencesOrographic lift
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Mixed-Phase Clouds: Progress and Challenges

2017

Mixed-phase clouds represent a three-phase colloidal system consisting of water vapor, ice particles, and coexisting supercooled liquid droplets. Mixed-phase clouds are ubiquitous in the troposphere, occurring at all latitudes from the polar regions to the tropics. Because of their widespread nature, mixed-phase processes play critical roles in the life cycle of clouds, precipitation formation, cloud electrification, and the radiative energy balance on both regional and global scales. Yet, in spite of many decades of observations and theoretical studies, our knowledge and understanding of mixed-phase cloud processes remains incomplete. Mixed-phase clouds are notoriously difficult to represe…

Atmospheric Science010504 meteorology & atmospheric sciencesMeteorologybusiness.industryEarth scienceCloud physicsCloud computing010502 geochemistry & geophysicsOceanographyNumerical weather prediction01 natural sciencesTroposphere13. Climate actionInternational Satellite Cloud Climatology Projectddc:550Clouds; Aircraft observations; Lidars/Lidar observations; Microwave observations; Radars/Radar observations; Climate modelsEnvironmental scienceClimate modelPrecipitationbusinessWater vaporAstrophysics::Galaxy AstrophysicsPhysics::Atmospheric and Oceanic Physics0105 earth and related environmental sciences
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The nature of ice-nucleating particles affects the radiative properties of tropical convective cloud systems

2020

Abstract. Convective cloud systems in the maritime tropics play a critical role in global climate, but accurately representing aerosol interactions within these clouds persists as a major challenge for weather and climate modelling. We quantify the effect of ice-nucleating particles (INP) on the radiative properties of a complex Tropical Atlantic deep convective cloud field using a regional model with an advanced double-moment microphysics scheme. Our results show that the domain-mean daylight outgoing radiation varies by up to 18 W m−2 depending on the bio- and physico-chemical properties of INP. The key distinction between different INPs is the temperature dependence of ice formation, whi…

010504 meteorology & atmospheric sciencesMicrophysicsWeather and climateTropical AtlanticRadiationOrders of magnitude (numbers)Atmospheric sciences01 natural sciencesAerosolCondensed Matter::Materials ScienceRadiative transferEnvironmental scienceClimate modelPhysics::Atmospheric and Oceanic Physics0105 earth and related environmental sciences
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