176 research outputs found
Mid-winter lower stratosphere temperatures in the Antarctic vortex: comparison between observations and ECMWF operational model.
International audienceRadiosonde temperature profiles from Belgrano (78° S) and other Antarctic stations have been compared with European Centre for Medium-Range Weather Forecasts (ECMWF) data during the winter of 2003. Results show a bias in the operational model which is height and temperature dependent, being too cold at layers peaking at 80 and 25?30 hPa, and hence resulting in an overestimation of the predicted potential PSC areas. Here we show the results of the comparison by considering the possibility of a bias in the sondes at extremely low temperatures and discuss the potential implications that this bias might have on the ozone depletion computed by Climate Transport Model based on ECMWF temperature fields
Antarctic ozone variability inside the polar vortex estimated from balloon measurements
Thirteen years of ozone soundings at the Antarctic Belgrano II station
(78° S, 34.6° W) have been analysed to establish a
climatology of stratospheric ozone and temperature over the area. The station
is inside the polar vortex during the period of development of chemical ozone
depletion. Weekly periodic profiles provide a suitable database for seasonal
characterization of the evolution of stratospheric ozone, especially valuable
during wintertime, when satellites and ground-based instruments based on
solar radiation are not available. The work is focused on ozone loss rate
variability (August–October) and its recovery (November–December) at
different layers identified according to the severity of ozone loss. The time window selected for the calculations
covers the phase of a quasi-linear ozone reduction, around day 220 (mid-August) to day 273 (end of September). Decrease
of the total ozone column over Belgrano during spring is highly dependent on
the meteorological conditions. Largest depletions (up to 59%) are
reached in coldest years, while warm winters exhibit significantly lower ozone
loss (20%). It has been found that about 11% of the total O<sub>3</sub>
loss, in the layer where maximum depletion occurs, takes place before
sunlight has arrived, as a result of transport to Belgrano of air from a somewhat lower
latitude, near the edge of the polar vortex, providing evidence of mixing
inside the vortex. Spatial homogeneity of the vortex has been examined by
comparing Belgrano results with those previously obtained for South Pole
station (SPS) for the same altitude range and for 9 yr of overlapping data.
Results show more than 25% higher ozone loss rate at SPS than at
Belgrano. The behaviour can be explained taking into account (i) the
transport to both stations of air from a somewhat lower latitude, near the
edge of the polar vortex, where sunlight reappears sooner, resulting in
earlier depletion of ozone, and (ii) the accumulated hours of sunlight, which
become much greater at the South Pole after the spring equinox. According to
the variability of the ozone hole recovery, a clear connection between the
timing of the breakup of the vortex and the monthly ozone content was found.
Minimum ozone concentration of 57 DU in the 12–24 km layer remained in
November, when the vortex is more persistent, while in years when the final
stratospheric warming took place "very early", mean integrated ozone rose
by up to 160–180 DU
A 10-year characterization of the Saharan Air Layer lidar ratio in the subtropical North Atlantic
Particle extinction-to-backscatter
ratio (lidar ratio) is a key parameter for a correct interpretation of
elastic lidar measurements. Of particular importance is the determination of
the lidar ratio of the Saharan Air Layer mineral dust transported into the
free troposphere over the North Atlantic region. The location of the two sun
photometer stations managed by the Izaña Atmospheric Research Centre
(IARC) on the island of Tenerife and a decade of available micropulse lidar
(MPL) data allow us to determine the lidar ratio under almost pure-dust
conditions. This result can be considered representative of the Saharan dust
transported westward over the North Atlantic in the subtropical belt.
Three different methods have been used to calculate the lidar ratio in this
work: (1) using the inversion of sky radiance measurements from a sun–sky
photometer installed at the Izaña Observatory (2373 m a.s.l.) under
free-troposphere conditions; (2) the one-layer method, a joint determination using
a micropulse lidar sited at the Santa Cruz de Tenerife sea-level station and
photometric information considering one layer of aerosol characterized by a
single lidar ratio; and (3) the two-layer method, a joint determination using the
micropulse lidar and photometric information considering two layers of
aerosol with two different lidar ratios. The one-layer method only uses data from
a co-located photometer at Santa Cruz de Tenerife, while the two-layer
conceptual approach incorporates photometric information at two heights from
the observatories of Izaña and Santa Cruz de Tenerife. The almost pure-dust
lidar ratio retrieval from the sun–sky photometer and from the two-layer
method give similar results, with lidar ratios at 523 nm of 49 ± 6 and
50 ± 11 sr. These values obtained from a decade of data
records are coincident with other studies in the literature reporting
campaigns in the subtropical North Atlantic region. This result shows that
the two-layer method is an improved conceptual approach compared to the
single-layer approach, which matches the real lower-troposphere
structure well. The two-layer method is able to retrieve reliable lidar ratios and
therefore aerosol extinction profiles despite the inherent limitations of
the elastic lidar technique.
We found a lack of correlation between lidar ratio and Ångström
exponent (α), which indicates that the dust lidar ratio can be
considered independent of dust size distribution in this region. This finding
suggests that dust is, under most atmospheric conditions, the predominant
aerosol in the North Atlantic free troposphere, which is in agreement with
previous studies conducted at the Izaña Observatory.</p
Integrative single-cell meta-analysis reveals disease-relevant vascular cell states and markers in human atherosclerosis
Coronary artery disease (CAD) is characterized by atherosclerotic plaque formation in the arterial wall. CAD progression involves complex interactions and phenotypic plasticity among vascular and immune cell lineages. Single-cell RNA-seq (scRNA-seq) studies have highlighted lineage-specific transcriptomic signatures, but human cell phenotypes remain controversial. Here, we perform an integrated meta-analysis of 22 scRNA-seq libraries to generate a comprehensive map of human atherosclerosis with 118,578 cells. Besides characterizing granular cell-type diversity and communication, we leverage this atlas to provide insights into smooth muscle cell (SMC) modulation. We integrate genome-wide association study data and uncover a critical role for modulated SMC phenotypes in CAD, myocardial infarction, and coronary calcification. Finally, we identify fibromyocyte/fibrochondrogenic SMC markers (LTBP1 and CRTAC1) as proxies of atherosclerosis progression and validate these through omics and spatial imaging analyses. Altogether, we create a unified atlas of human atherosclerosis informing cell state-specific mechanistic and translational studies of cardiovascular diseases.</p
Evaluation of night-time aerosols measurements and lunar irradiance models in the frame of the first multi-instrument nocturnal intercomparison campaign
The first multi-instrument nocturnal aerosol optical depth (AOD) intercom-parison campaign was held at the high-mountain Iza ̃na Observatory (Tener-ife, Spain) in June 2017, involving 2-minutes synchronous measurements fromtwo different types of lunar photometers (Cimel CE318-T and Moon Preci-sion Filter Radiometer, LunarPFR) and one stellar photometer. The Robotic Lunar Observatory (ROLO) model developed by the U.S. Geological Survey(USGS) was compared with the open-access ROLO Implementation for Moonphotometry Observation (RIMO) model. Results showed rather small differ-ences at Iza ̃na over a 2-month time period covering June and July, 2017(±0.01 in terms of AOD calculated by means of a day/night/day coherencetest analysis and±2 % in terms of lunar irradiance). The RIMO model hasbeen used in this field campaign to retrieve AOD from lunar photometricmeasurements. No evidence of significant differences with the Moon’s phase angle wasfound when comparing raw signals of the six Cimel photometers involved inthis field campaign.The raw signal comparison of the participating lunar photometers (Cimeland LunarPFR) performed at coincident wavelengths showed consistent mea-surements and AOD differences within their combined uncertainties at 870 nmand 675 nm. Slightly larger AOD deviations were observed at 500 nm, point-ing to some unexpected instrumental variations during the measurement pe-riod.Lunar irradiances retrieved using RIMO for phase angles varying between0◦and 75◦(full Moon to near quarter Moon) were compared to the irradi-ance variations retrieved by Cimel and LunarPFR photometers. Our resultsshowed a relative agreement within±3.5 % between the RIMO model andthe photometer-based lunar irradiances.The AOD retrieved by performing a Langley-plot calibration each nightshowed a remarkable agreement (better than 0.01) between the lunar pho-tometers. However, when applying the Lunar-Langley calibration using RIMO,AOD differences of up to 0.015 (0.040 for 500 nm) were found, with differ-ences increasing with the Moon’s phase angle. These differences are thoughtto be partly due to the uncertainties in the irradiance models, as well asinstrumental deficiencies yet to be fully understood.High AOD variability in stellar measurements was detected during thecampaign. Nevertheless, the observed AOD differences in the Cimel/stellarcomparison were within the expected combined uncertainties of these twophotometric techniques. Our results indicate that lunar photometry is amore reliable technique, especially for low aerosol loading conditions.The uncertainty analysis performed in this paper shows that the com-bined standard AOD uncertainty in lunar photometry is dependent on thecalibration technique (up to 0.014 for Langley-plot with illumination-basedcorrection, 0.012-0.022 for Lunar-Langley calibration, and up to 0.1 for the 2 Sun-Moon Gain Factor method). This analysis also corroborates that theuncertainty of the lunar irradiance model used for AOD calculation is withinthe 5-10 % expected range.This campaign has allowed us to quantify the important technical diffi-culties that still exist when routinely monitoring aerosol optical propertiesat night-time. The small AOD differences observed between the three typesof photometers involved in the campaign are only detectable under pristinesky conditions such as those found in this field campaign. Longer campaignsare necessary to understand the observed discrepancies between instrumentsas well as to provide more conclusive results about the uncertainty involvedin the lunar irradiance model
Ground/space, passive/active remote sensing observations coupled with particle dispersion modelling to understand the inter-continental transport of wildfire smoke plumes
During the 2017 record-breaking burning season in Canada/United States, intense wild fires raged during the first week of September in the Pacific northwestern region (British Columbia, Alberta, Washington, Oregon, Idaho, Montana and northern California) burning mostly temperate coniferous forests. The heavy loads of smoke particles emitted in the atmosphere reached the Iberian Peninsula (IP) a few days later on 7 and 8 September. Satellite imagery allows to identify two main smoke clouds emitted during two different periods that were injected and transported in the atmosphere at several altitude levels. Columnar properties on 7 and 8 September at two Aerosol Robotic Network (AERONET) mid-altitude, background sites in northern and southern Spain are: aerosol optical depth (AOD) at 440 nm up to 0.62, Ångström exponent of 1.6–1.7, large dominance of small particles (fine mode fraction >0.88), low absorption AOD at 440 nm (0.98). Profiles from the Cloud-Aerosol Lidar with Orthogonal Polarization (CALIOP) show the presence of smoke particles in the stratosphere during the transport, whereas the smoke is only observed in the troposphere at its arrival over the IP. Portuguese and Spanish ground lidar stations from the European Aerosol Research Lidar Network/Aerosols, Clouds, and Trace gases Research InfraStructure Network (EARLINET/ACTRIS) and the Micro-Pulse Lidar NETwork (MPLNET) reveal smoke plumes with different properties: particle depolarization ratio and color ratio, respectively, of 0.05 and 2.5 in the mid troposphere (5–9 km) and of 0.10 and 3.0 in the upper troposphere (10–13 km). In the mid troposphere the particle depolarization ratio does not seem time-dependent during the transport whereas the color ratio seems to increase (larger particles sediment first). To analyze the horizontal and vertical transport of the smoke from its origin to the IP, particle dispersion modelling is performed with the Hybrid Single Particle Lagrangian Integrated Trajectory Model (HYSPLIT) parameterized with satellite-derived biomass burning emission estimates from the Global Fire Assimilation System (GFAS) of the Copernicus Atmosphere Monitoring Service (CAMS). Three compounds are simulated: carbon monoxide, black carbon and organic carbon. The results show that the first smoke plume which travels slowly reaches rapidly (~1 day) the upper troposphere and lower stratosphere (UTLS) but also shows evidence of large scale horizontal dispersion, while the second plume, entrained by strong subtropical jets, reaches the upper troposphere much slower (~2.5 days). Observations and dispersion modelling all together suggest that particle depolarization properties are enhanced during their vertical transport from the mid to the upper troposphere.Spanish groups acknowledge the Spanish Ministry of Economy and Competitivity (MINECO) (ref. CGL2013-45410-R, CGL2014-52877-R, CGL2014-55230-R, TEC2015-63832-P, CGL2015-73250-JIN, CGL2016-81092-R and CGL2017-85344-R)European Union through H2020 programme ACTRIS-2, grant 654109European Union through H2020 programme EUNADICS-AV, grant 723986European Union through H2020 programme GRASP-ACE, grant 77834
Inter-comparison of MAX-DOAS measurements of tropospheric HONO slant column densities and vertical profiles during the CINDI-2 campaign
We present the inter-comparison of delta slant column densities (SCDs) and vertical profiles of nitrous acid (HONO) derived from measurements of different multi-axis differential optical absorption spectroscopy (MAX-DOAS) instruments and using different inversion algorithms during the Second Cabauw Inter-comparison campaign for Nitrogen Dioxide measuring Instruments (CINDI-2) in September 2016 at Cabauw, the Netherlands (51.97∘ N, 4.93∘ E). The HONO vertical profiles, vertical column densities (VCDs), and near-surface volume mixing ratios are compared between different MAX-DOAS instruments and profile inversion algorithms for the first time. Systematic and random discrepancies of the HONO results are derived from the comparisons of all data sets against their median values. Systematic discrepancies of HONO delta SCDs are observed in the range of ±0.3×1015 molec. cm−2, which is half of the typical random discrepancy of 0.6×1015 molec. cm−2. For a typical high HONO delta SCD of 2×1015 molec. cm−2, the relative systematic and random discrepancies are about 15 % and 30 %, respectively. The inter-comparison of HONO profiles shows that both systematic and random discrepancies of HONO VCDs and near-surface volume mixing ratios (VMRs) are mostly in the range of ∼±0.5×1014 molec. cm−2 and ∼±0.1 ppb (typically ∼20 %). Further we find that the discrepancies of the retrieved HONO profiles are dominated by discrepancies of the HONO delta SCDs. The profile retrievals only contribute to the discrepancies of the HONO profiles by ∼5 %. However, some data sets with substantially larger discrepancies than the typical values indicate that inappropriate implementations of profile inversion algorithms and configurations of radiative transfer models in the profile retrievals can also be an important uncertainty source. In addition, estimations of measurement uncertainties of HONO dSCDs, which can significantly impact profile retrievals using the optimal estimation method, need to consider not only DOAS fit errors, but also atmospheric variability, especially for an instrument with a DOAS fit error lower than ∼3×1014 molec. cm−2. The MAX-DOAS results during the CINDI-2 campaign indicate that the peak HONO levels (e.g. near-surface VMRs of ∼0.4 ppb) often appeared in the early morning and below 0.2 km. The near-surface VMRs retrieved from the MAX-DOAS observations are compared with those measured using a co-located long-path DOAS instrument. The systematic differences are smaller than 0.15 and 0.07 ppb during early morning and around noon, respectively. Since true HONO values at high altitudes are not known in the absence of real measurements, in order to evaluate the abilities of profile inversion algorithms to respond to different HONO profile shapes, we performed sensitivity studies using synthetic HONO delta SCDs simulated by a radiative transfer model with assumed HONO profiles. The tests indicate that the profile inversion algorithms based on the optimal estimation method with proper configurations can reproduce the different HONO profile shapes well. Therefore we conclude that the features of HONO accumulated near the surface derived from MAX-DOAS measurements are expected to represent the ambient HONO profiles well
Twenty years of ground-based NDACC FTIR spectrometry at Izaña Observatory-overview and long-term comparison to other techniques
High-resolution Fourier transform infrared (FTIR) solar observations are particularly relevant for climate studies, as they allow atmospheric gaseous composition and multiple climate processes to be monitored in detail. In this context, the present paper provides an overview of 20 years of FTIR measurements taken in the framework of the NDACC (Network for the Detection of Atmospheric Composition Change) from 1999 to 2018 at the subtropical Izaña Observatory (IZO, Spain). Firstly, long-term instrumental performance is comprehensively assessed, corroborating the temporal stability and reliable instrumental characterization of the two FTIR spectrometers installed at IZO since 1999. Then, the time series of all trace gases contributing to NDACC at IZO are presented (i.e. CH, CH, ClONO, CO, HCl, HCN, HCO, HF, HNO, NO, NO, NO, O, carbonyl sulfide (OCS), and water vapour isotopologues HO, HO, and HDO), reviewing the major accomplishments drawn from these observations. In order to examine the quality and long-term consistency of the IZO FTIR observations, a comparison of those NDACC products for which other high-quality measurement techniques are available at IZO has been performed (i.e. CH, CO, HO, NO, NO, and O). This quality assessment was carried out on different timescales to examine what temporal signals are captured by the FTIR records, and to what extent. After 20 years of operation, the IZO NDACC FTIR observations have been found to be very consistent and reliable over time, demonstrating great potential for climate research. Long-term NDACC FTIR data sets, such as IZO, are indispensable tools for the investigation of atmospheric composition trends, multi-year phenomena, and complex climate feedback processes, as well as for the validation of past and present space-based missions and chemistry climate models
Assessment of nocturnal aerosol optical depth from lunar photometry at the Izaña high mountain observatory
This work is a first approach to correct the systematic errors
observed in the aerosol optical depth (AOD) retrieved at nighttime using
lunar photometry and calibration techniques dependent on the lunar irradiance
model. To this end, nocturnal AOD measurements were performed in 2014 using
the CE318-T master Sun–sky–lunar photometer (lunar Langley calibrated) at
the Izaña high mountain observatory. This information has been restricted to 59
nights characterized as clean and stable according to lidar vertical
profiles. A phase angle dependence as well as an asymmetry within the Moon's
cycle of the Robotic Lunar Observatory (ROLO) model could be deduced from the comparison in this
59-night period of the CE318-T calibration performed by means of the
lunar Langley calibration
and the calibration performed every single night by means of
the common Langley technique. Nocturnal AOD has also been compared in the
same period with a reference AOD based on daylight AOD extracted from the
AErosol RObotic NETwork (AERONET) at the same station. Considering stable conditions, the
difference ΔAODfit, between AOD from lunar observations
and the linearly interpolated AOD (the reference) from daylight data, has
been calculated. The results show that ΔAODfit values are
strongly affected by the Moon phase and zenith angles. This dependency has been
parameterized using an empirical model with two independent variables (Moon
phase and zenith angles) in order to correct the AOD for these residual
dependencies. The correction of this parameterized dependency has been
checked at four stations with quite different environmental conditions
(Izaña, Lille, Carpentras and Dakar) showing a significant reduction of the
AOD dependence on phase and zenith angles and an improved agreement with
daylight reference data. After the correction, absolute AOD differences for
day–night–day clean and stable transitions remain below 0.01 for all
wavelengths
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