H2020Staff exchange2018–2023

GRASP-ACE · Development of GRASP radiative transfer code for the retrieval of aerosol microphysics vertical-profiles from space measurements and its impact in ACE mission

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2018-03-01 → 2023-08-31
EU contribution
€877,500
Participants
17
Scheme
MSCA-RISE

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Results in brief

Development of GRASP radiative transfer code for the retrieval of aerosol microphysics vertical-profiles from space measurements and its impact in ACE mission

The focus of this project is on advancing in methodologies for atmospheric aerosols characterization. Actually, the Executive Summary of the 2013 IPCC's states that reducing the uncertainty in direct aerosol radiative forcing is a necessary step in reconciling estimates of radiative forcing and the equilibrium climate sensitivity of the Earth so that future predictions of surface temperature associated with climate change can be made with confidence. To that end, improved aerosol knowledge about vertically resolved measurements is essentia and particularly aerosol absorption characterization. Previous space missions (e.g. e.g. Terra, Aqua, POLDER, CALIPSO or CloudSat platforms) were not able to provide layer-resolved aerosol absorption. The NASA Aerosol-Cloud-Ecosystems (ACE) mission is 2007 Decadal Survey that addresses this problem. ACE was replaced by the Aerosol-Cloud-Convection-Precipitation (ACCP) mission following 2017 Decadal Survey and is already on phase of construction. ACCP includes multiwavelength lidar and polarimeter flying together but still there is no appropriate software for characterizing aerosol microphysical and optical properties from the space. The main objective of this proposal is the development and implementation of the joint inversion in GRASP for space polarimeter + lidar instruments to retrieve independent and accurate vertical profiles of aerosol microphysical properties. Such an approach is critical for future space missions such as ACE and ACCP, and will allow aerosol microphysics vertical-profiles, particularly for absorption properties. To fulfill this objective we divide the goals in: 1. Study of capabilities of the joint inversion through new mathematical developments and sensitivity test analyses. 2. Evaluation of the GRASP joint inversion from field campaign data and their advantages over the classical stand-alone 3β+2α lidar inversion. 3. Exploring merging data of different satellite missions for implementing GRASP joint inversion. 4. Defining synergies in ground-based networks for the evaluation of aerosol microphysics satellite products. The achievement of all these scientific objectives have permitted large advances in GRASP algorithm that have permitted the company GRASP-SAS to expand their business and growth. Also, all the achievements have permitted an advance in space sciences by delimiting the capabilities of the sensors and facilities synergies. Aerosol science have been also benefit by improving the retrieval capabilities of aerosol properties through GRASP algorithm. All these research activities were carried out by the staff of the different institutions that formed the consortium created for the Marie Curie RISE call. The consortium was inter-sectorial and we implemented more than 85% of the secondments initially planned. The consortium overcome exceptional situations such as the COVID-19 pandemia or the war in Ukraine. We organized an international workshop related to the project with the attendance of more of than 100 prestigious scientists. After that, the second GRASP summer school was organized with the attendance of international students.

Data: CORDIS, © European Union

Project objective

This project deals with reducing the uncertainties associated with the knowledge of aerosol microphysical vertical profiles worldwide through the use of new space-borne measurements. This objective links with the goal of the last IPCC 2013 to reduce uncertainties in aerosol direct effects, particularly in the knowing of absorption profiles. The approach we plan to develop is the development and applicability of the Generalized Retrieval of Atmosphere and Surface Properties (GRASP) for new space borne systems. GRASP has been already applied successfully to the POLDER/PARASOL system providing column-integrated aerosol microphysics and absorption. However, the new LIDAR space-borne sensors open new possibilities. To that end, we plan to study the details in constraints of the current techniques for the retrieval of aerosol microphysics from multi-wavelength lidar alone (known as the 3b+2a configuration), and will make evaluation studies versus in-situ instruments from large field campaigns such as DISCOVER-AQ and SEACR4S from NASA or SHADOW from the University of Lille. However, lidar measurements are difficult and usually presents low signal-to-noise ratio, particularly during daytime. We plan here to develop a joint inversion that uses combine measurements of lidar and polarimetric space-borne systems. Such approach is the core of the upcoming Aerosol-Clouds-Ecosystems (ACE) NASA mission. The development of this task will involve the use of synthetic database simulated using the NASA GEOS-5 model which will be used as reference. Different configurations of lidar and polarimeters will be studied to invert microphysical parameters. The results of this task will be also used for defining cost-effective ACE mission. Also, joint inversion will be evaluated using experimental measurements on NASA field campaigns that include airborne lidar systems such as HSRL-2 and Airborne Cloud-Aerosol Transport System (ACATS) and polarimeters such as the Multiangle SpectroPolarimetric

Original text from CORDIS.

Participants

  • UNIVERSIDAD DE GRANADA · GranadaCoordinatorSpain
  • A.M. Prokhorov General Physics Institute of Russian Academy of Sciences · MoscowCity levelRussia
  • B.I. Stepanov Institute of Physics of the National Academy of Sciences of Belarus · MinskBelarus
  • CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE CNRS · ParisFrance
  • CLOUDFLIGHT AUSTRIA GMBH · LinzAustria
  • CONSEJO NACIONAL DE INVESTIGACIONES CIENTIFICAS Y TECNICAS (CONICET) · Buenos AiresArgentina
  • FREIE UNIVERSITAET BERLIN · BerlinGermany
  • GENERALIZED RETRIEVAL OF ATMOSPHEREAND SURFACE PROPERTIES · LILLEFrance
  • INSTITUTE OF RADIO ASTRONOMY OF NATIONAL ACADEMY OF SCIENCES OF UKRAINE · KHARKIVUkraine
  • INSTITUTE OF REMOTE SENSING AND DIGITAL EARTH - CHINESE ACADEMY OF SCIENCE · BEIJINGChina
  • NATIONAL AERONAUTICS AND SPACE ADMINISTRATION · WashingtonUnited States
  • TARAS SHEVCHENKO NATIONAL UNIVERSITY OF KYIV · KyivUkraine
  • UNIVERSIDAD DE VALLADOLID · VALLADOLIDSpain
  • UNIVERSIDAD TECNOLOGICA NACIONAL · Ciudad Autonoma Buenos AiresArgentina
  • UNIVERSITAT POLITECNICA DE CATALUNYA · BARCELONASpain
  • UNIVERSITE DE LILLE · LilleFrance
  • University System of Maryland · AdelphiUnited States

Links

Data: CORDIS, © European Union