JB
Juliet Biggs
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4 records found
1
The Harmony Mission
End of Phase-0 Science Overview
Conference paper
(2021)
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Paco Lopez Dekker, Juliet Biggs, Bertrand Chapron, Andy Hooper, Andreas Kääb, Simona Masina, Jeremie Mouginot, Bruno Buongiorno Nardelli, Claudia Pasquero, More Authors...
Using a combination of multi-directional SAR and TIR measurements, the Harmony Earth Explorer 10 mission candidate will provide high resolution simultaneous measurements of surface stress, surface currents SST and wave spectra over oceans, 3-D deformation vectors over solid Earth, and time-series of surface elevation changes over volcanic areas and land ice masses. This will serve a series of science objectives aimed at better understating multi-scale processed and feedbacks in the Earth System.
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Using a combination of multi-directional SAR and TIR measurements, the Harmony Earth Explorer 10 mission candidate will provide high resolution simultaneous measurements of surface stress, surface currents SST and wave spectra over oceans, 3-D deformation vectors over solid Earth, and time-series of surface elevation changes over volcanic areas and land ice masses. This will serve a series of science objectives aimed at better understating multi-scale processed and feedbacks in the Earth System.
Conference paper
(2020)
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A. Cervone, Francesco Topputo, S. Speretta, A. Menicucci, Juliet Biggs, P. Di Lizia, M. Massari, V Franzese, C Giordano, More Authors...
The LUnar Meteoroid Impacts Observer (LUMIO) is a CubeSat mission to a halo orbit at Earth–Moon L2 that shall observe, quantify, and characterize meteoroid impacts on the Lunar farside, by detecting their flashes. In this way, LUMIO is expected to significantly contribute to Lunar Situational Awareness and to the current knowledge on the evolution of meteoroids in the cislunar space. This will allow, ultimately, to achieve a better understanding of the origins of the Solar System, the composition of its planets and the possible hazards caused by impacts between the Earth and Near Earth Objects. LUMIO was one of the proposals submitted to the SysNova LUnar CubeSats for Exploration call by the European Space Agency. The mission was awarded ex-aequo winner of the challenge, and its scientific relevance and technical feasibility were confirmed by an independent study conducted by the ESA Concurrent Design Facility. The LUMIO Phase A study is currently ongoing and is scheduled for completion by the end of 2020. This paper, after providing a short overview of the scientific relevance of the mission, presents in detail the status of the current LUMIO Phase A study, including an overview of all spacecraft sub-systems and the evolution of their design from Phase 0 to Phase A.
...
The LUnar Meteoroid Impacts Observer (LUMIO) is a CubeSat mission to a halo orbit at Earth–Moon L2 that shall observe, quantify, and characterize meteoroid impacts on the Lunar farside, by detecting their flashes. In this way, LUMIO is expected to significantly contribute to Lunar Situational Awareness and to the current knowledge on the evolution of meteoroids in the cislunar space. This will allow, ultimately, to achieve a better understanding of the origins of the Solar System, the composition of its planets and the possible hazards caused by impacts between the Earth and Near Earth Objects. LUMIO was one of the proposals submitted to the SysNova LUnar CubeSats for Exploration call by the European Space Agency. The mission was awarded ex-aequo winner of the challenge, and its scientific relevance and technical feasibility were confirmed by an independent study conducted by the ESA Concurrent Design Facility. The LUMIO Phase A study is currently ongoing and is scheduled for completion by the end of 2020. This paper, after providing a short overview of the scientific relevance of the mission, presents in detail the status of the current LUMIO Phase A study, including an overview of all spacecraft sub-systems and the evolution of their design from Phase 0 to Phase A.
Conference paper
(2019)
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J.F. Lopez Dekker, Juliet Biggs, Bertrand Chapron, Andy Hooper, Andreas Kääb, Simona Massina, Jeremie Mouginot, Bruno Buongiorno Nardelli, Claudia Pasquero, More Authors...
This paper provides a compact overview of Harmony, an Earth Explorer 10 mission candidate dedicated to the observation of dynamic deformations of ice, solid earth and ocean surfaces. Harmony consists of two receive-only small Synthetic Aperture Radar (SAR) satellites using Sentinel-1 as illuminator, which will alternate close formation phases, dedicated to single-pass cross-track interferometry, with StereoSAR phases dedicated to the study of ocean surface motion and 3-D land surface deformations. In addition the payload includes a compact Thermal Infrared (TIR) camera.
...
This paper provides a compact overview of Harmony, an Earth Explorer 10 mission candidate dedicated to the observation of dynamic deformations of ice, solid earth and ocean surfaces. Harmony consists of two receive-only small Synthetic Aperture Radar (SAR) satellites using Sentinel-1 as illuminator, which will alternate close formation phases, dedicated to single-pass cross-track interferometry, with StereoSAR phases dedicated to the study of ocean surface motion and 3-D land surface deformations. In addition the payload includes a compact Thermal Infrared (TIR) camera.
Poster
(2019)
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Marcel Kleinherenbrink, Paco Lopez Dekker, Julienne Stroeve, Thomas Newman, Pierre Rampal, Anton Korosov, Juliet Biggs, Andrew Hooper, Jeremie Mouginot, More Authors...
Sea-ice motion is driven by wind and ocean stress, and varies in space and time.
Small-scale drifts primarily affect the opening of leads, while large-scale drift primarily controls the loss of sea ice.
Both the opening of leads and the loss of sea ice play a major role in the energy balance of the Arctic and Antarctic regions.
Understanding sea-ice drift is therefore important for modelling and projecting regional and global climate change.
Accurately modelling sea ice and its dynamics requires high-resolution vectorized observations in the polar regions. Synthetic Aperture Radar (SAR) has proven to be a useful tool in the observations of sea-ice drift.
Most of the SAR-derived sea-ice-drift estimates make use of feature tracking, which depend on two SAR acquisitions.
This limits the temporal resolution and has the tendency to underestimate the sea-ice drift velocity by 10-20%.
Single-pass sea-ice-drift velocities can be inferred from SAR data using Doppler centroid anomaly estimation, but it is limited to the line-of-sight direction and has a resolution of several kilometers.
The only single-pass interferometric observations of sea ice were made using Tandem-X Along-Track Interferometry (ATI).
Its high sensitivity enables the determination of high-resolution sea-ice drift and also to estimate the rotations of individual floes.
However, as with the other two methods, Tandem-X is only sensitive to the line-of-sight. One of the main objectives of Earth Explorer 10 candidate Harmony is the observation of sea-ice drift.
We will present the first results of a performance analysis of Harmony's observations over sea ice.
The passive instruments onboard the Harmony satellites will use Sentinel-1 as an illuminator to provide multistatic observations of the sea-ice surface.
Harmony's reconfigurable constellation can either be optimized for a large line-of-sight difference (Stereo) or for range-direction sensitivy (ATI).
In the Stereo configuration, it will be possible, for the first time, to obtain instantaneous sea-ice drift vectors.
The ATI configuration enables Harmony to acquire high-resolution sea-ice-velocity estimates.
As Sentinel-1 is operating in the wide-swath mode over most of the sea ice covered areas, the polar region is sampled once every 1-4 days.
...
Sea-ice motion is driven by wind and ocean stress, and varies in space and time.
Small-scale drifts primarily affect the opening of leads, while large-scale drift primarily controls the loss of sea ice.
Both the opening of leads and the loss of sea ice play a major role in the energy balance of the Arctic and Antarctic regions.
Understanding sea-ice drift is therefore important for modelling and projecting regional and global climate change.
Accurately modelling sea ice and its dynamics requires high-resolution vectorized observations in the polar regions. Synthetic Aperture Radar (SAR) has proven to be a useful tool in the observations of sea-ice drift.
Most of the SAR-derived sea-ice-drift estimates make use of feature tracking, which depend on two SAR acquisitions.
This limits the temporal resolution and has the tendency to underestimate the sea-ice drift velocity by 10-20%.
Single-pass sea-ice-drift velocities can be inferred from SAR data using Doppler centroid anomaly estimation, but it is limited to the line-of-sight direction and has a resolution of several kilometers.
The only single-pass interferometric observations of sea ice were made using Tandem-X Along-Track Interferometry (ATI).
Its high sensitivity enables the determination of high-resolution sea-ice drift and also to estimate the rotations of individual floes.
However, as with the other two methods, Tandem-X is only sensitive to the line-of-sight. One of the main objectives of Earth Explorer 10 candidate Harmony is the observation of sea-ice drift.
We will present the first results of a performance analysis of Harmony's observations over sea ice.
The passive instruments onboard the Harmony satellites will use Sentinel-1 as an illuminator to provide multistatic observations of the sea-ice surface.
Harmony's reconfigurable constellation can either be optimized for a large line-of-sight difference (Stereo) or for range-direction sensitivy (ATI).
In the Stereo configuration, it will be possible, for the first time, to obtain instantaneous sea-ice drift vectors.
The ATI configuration enables Harmony to acquire high-resolution sea-ice-velocity estimates.
As Sentinel-1 is operating in the wide-swath mode over most of the sea ice covered areas, the polar region is sampled once every 1-4 days.