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A multi-model intercomparison of halogenated very short-lived substances (TransCom-VSLS) : linking oceanic emissions and tropospheric transport for a reconciled estimate of the stratospheric source gas injection of bromine (2016)
Hossaini, Ryan ; Patra, Prabir K. ; Leeson, Amber A. ; Krysztofiak, Gisèle ; Abraham, N. Luke ; Andrews, Steve J. ; Archibald, Alexander Thomas ; Aschmann, Jan ; Atlas, Elliot L. ; Belikov, Dmitry A. ; Bönisch, Harald ; Carpenter, Lucy J. ; Dhomse, Sandip ; Dorf, Marcel ; Engel, Andreas ; Feng, Wuhu ; Fuhlbrügge, Steffen ; Griffiths, Paul T. ; Harris, Neil R. P. ; Hommel, René ; Keber, Timo ; Krüger, Kirstin ; Lennartz, Sinikka T. ; Maksyutov, Shamil ; Mantle, Hannah ; Mills, Graham ; Miller, Benjamin R ; Montzka, Stephen A. ; Moore, Fred ; Navarro, Maria A. ; Oram, David ; Pfeilsticker, Klaus ; Pyle, John A. ; Quack, Birgit ; Robinson, Andrew D. ; Saikawa, Eri ; Saiz-Lopez, Alfonso ; Sala, Stephan ; Sinnhuber, Björn-Martin ; Taguchi, Shoichi ; Tegtmeier, Susann ; Lidster, Richard Terence ; Wilson, Chris ; Ziska, Franziska
The first concerted multi-model intercomparison of halogenated very short-lived substances (VSLS) has been performed, within the framework of the ongoing Atmospheric Tracer Transport Model Intercomparison Project (TransCom). Eleven global models or model variants participated (nine chemical transport models and two chemistry–climate models) by simulating the major natural bromine VSLS, bromoform (CHBr3) and dibromomethane (CH2Br2), over a 20-year period (1993–2012). Except for three model simulations, all others were driven offline by (or nudged to) reanalysed meteorology. The overarching goal of TransCom-VSLS was to provide a reconciled model estimate of the stratospheric source gas injection (SGI) of bromine from these gases, to constrain the current measurement-derived range, and to investigate inter-model differences due to emissions and transport processes. Models ran with standardised idealised chemistry, to isolate differences due to transport, and we investigated the sensitivity of results to a range of VSLS emission inventories. Models were tested in their ability to reproduce the observed seasonal and spatial distribution of VSLS at the surface, using measurements from NOAA's long-term global monitoring network, and in the tropical troposphere, using recent aircraft measurements – including high-altitude observations from the NASA Global Hawk platform. The models generally capture the observed seasonal cycle of surface CHBr3 and CH2Br2 well, with a strong model–measurement correlation (r  ≥  0.7) at most sites. In a given model, the absolute model–measurement agreement at the surface is highly sensitive to the choice of emissions. Large inter-model differences are apparent when using the same emission inventory, highlighting the challenges faced in evaluating such inventories at the global scale. Across the ensemble, most consistency is found within the tropics where most of the models (8 out of 11) achieve best agreement to surface CHBr3 observations using the lowest of the three CHBr3 emission inventories tested (similarly, 8 out of 11 models for CH2Br2). In general, the models reproduce observations of CHBr3 and CH2Br2 obtained in the tropical tropopause layer (TTL) at various locations throughout the Pacific well. Zonal variability in VSLS loading in the TTL is generally consistent among models, with CHBr3 (and to a lesser extent CH2Br2) most elevated over the tropical western Pacific during boreal winter. The models also indicate the Asian monsoon during boreal summer to be an important pathway for VSLS reaching the stratosphere, though the strength of this signal varies considerably among models. We derive an ensemble climatological mean estimate of the stratospheric bromine SGI from CHBr3 and CH2Br2 of 2.0 (1.2–2.5) ppt,  ∼  57 % larger than the best estimate from the most recent World Meteorological Organization (WMO) Ozone Assessment Report. We find no evidence for a long-term, transport-driven trend in the stratospheric SGI of bromine over the simulation period. The transport-driven interannual variability in the annual mean bromine SGI is of the order of ±5 %, with SGI exhibiting a strong positive correlation with the El Niño–Southern Oscillation (ENSO) in the eastern Pacific. Overall, our results do not show systematic differences between models specific to the choice of reanalysis meteorology, rather clear differences are seen related to differences in the implementation of transport processes in the models.
A multi-model intercomparison of halogenated very short-lived substances (TransCom-VSLS) : linking oceanic emissions and tropospheric transport for a reconciled estimate of the stratospheric source gas injection of bromine (2016)
Hossaini, Ryan ; Patra, Prabir K. ; Leeson, Amber A. ; Krysztofiak, Gisèle ; Abraham, N. Luke ; Andrews, Steve J. ; Archibald, Alexander Thomas ; Aschmann, Jan ; Atlas, Elliot L. ; Belikov, Dmitry A. ; Bönisch, Harald ; Butler, Robyn ; Carpenter, Lucy J. ; Dhomse, Sandip ; Dorf, Marcel ; Engel, Andreas ; Feng, Liang ; Feng, Wuhu ; Fuhlbrügge, Steffen ; Griffiths, Paul T. ; Harris, Neil R. P. ; Hommel, René ; Keber, Timo ; Krüger, Kirstin ; Lennartz, Sinikka T. ; Maksyutov, Shamil ; Mantle, Hannah ; Mills, Graham ; Miller, Benjamin R. ; Montzka, Stephen A. ; Moore, Fred ; Navarro, Maria A. ; Oram, David ; Palmer, Paul I. ; Pfeilsticker, Klaus ; Pyle, John A. ; Quack, Birgit ; Robinson, Andrew D. ; Saikawa, Eri ; Saiz-Lopez, Alfonso ; Sala, Stephan ; Sinnhuber, Björn-Martin ; Taguchi, Shoichi ; Tegtmeier, Susann ; Lidster, Richard Terence ; Wilson, Chris ; Ziska, Franziska
The first concerted multi-model intercomparison of halogenated very short-lived substances (VSLS) has been performed, within the framework of the ongoing Atmospheric Tracer Transport Model Intercomparison Project (TransCom). Eleven global models or model variants participated, simulating the major natural bromine VSLS, bromoform (CHBr3) and dibromomethane (CH2Br2), over a 20-year period (1993-2012). The overarching goal of TransCom-VSLS was to provide a reconciled model estimate of the stratospheric source gas injection (SGI) of bromine from these gases, to constrain the current measurement-derived range, and to investigate inter-model differences due to emissions and transport processes. Models ran with standardised idealised chemistry, to isolate differences due to transport, and we investigated the sensitivity of results to a range of VSLS emission inventories. Models were tested in their ability to reproduce the observed seasonal and spatial distribution of VSLS at the surface, using measurements from NOAA’s long-term global monitoring network, and in the tropical troposphere, using recent aircraft measurements - including high altitude observations from the NASA Global Hawk platform. The models generally capture the seasonal cycle of surface CHBr3 and CH2Br2 well, with a strong model measurement correlation (r ≥0.7) and a low sensitivity to the choice of emission inventory, at most sites. In a given model, the absolute model-measurement agreement is highly sensitive to the choice of emissions and inter-model differences are also apparent, even when using the same inventory, highlighting the challenges faced in evaluating such inventories at the global scale. Across the ensemble, most consistency is found within the tropics where most of the models (8 out of 11) achieve optimal agreement to surface CHBr3 observations using the lowest of the three CHBr3 emission inventories tested (similarly, 8 out of 11 models for CH2Br2). In general, the models are able to reproduce well observations of CHBr3 and CH2Br2 obtained in the tropical tropopause layer (TTL) at various locations throughout the Pacific. Zonal variability in VSLS loading in the TTL is generally consistent among models, with CHBr3 (and to a lesser extent CH2Br2) most elevated over the tropical West Pacific during boreal winter. The models also indicate the Asian Monsoon during boreal summer to be an important pathway for VSLS reaching the stratosphere, though the strength of this signal varies considerably among models. We derive an ensemble climatological mean estimate of the stratospheric bromine SGI from CHBr3 and CH2Br2 of 2.0 (1.2-2.5) ppt, ∼57% larger than the best estimate from the most re- cent World Meteorological Organization (WMO) Ozone Assessment Report. We find no evidence for a long-term, transport-driven trend in the stratospheric SGI of bromine over the simulation period. However, transport-driven inter-annual variability in the annual mean bromine SGI is of the order of a ±5%, with SGI exhibiting a strong positive correlation with ENSO in the East Pacific
Global HCFC-22 measurements with MIPAS : retrieval, validation, global distribution and its evolution over 2005–2012 (2016)
Chirkov, Maksym ; Stiller, Gabriele ; Laeng, Alexandra ; Kellmann, Sylvia ; Clarmann, Thomas von ; Boone, Chris D. ; Elkins, James William ; Engel, Andreas ; Glatthor, Norbert ; Grabowski, Udo ; Harth, Christina M. ; Kiefer, Michael ; Kolonjari, Felicia ; Krummel, Paul B. ; Linden, Andrea ; Lunder, Chris Rene ; Miller, Benjamin R. ; Montzka, Stephen A. ; Mühle, Jens ; O'Doherty, Simon ; Orphal, Johannes ; Prinn, Ronald G. ; Toon, Geoffrey C. ; Vollmer, Martin K. ; Walker, Kaley A. ; Weiss, Ray F. ; Wiegele, Andreas ; Young, Dickon
We report on HCFC-22 data acquired by the Michelson Interferometer for Passive Atmospheric Sounding (MIPAS) in the reduced spectral resolution nominal observation mode. The data cover the period from January 2005 to April 2012 and the altitude range from the upper troposphere (above cloud top altitude) to about 50 km. The profile retrieval was performed by constrained nonlinear least squares fitting of modelled spectra to the measured limb spectral radiances. The spectral ν4-band at 816.5 ± 13 cm−1 was used for the retrieval. A Tikhonov-type smoothing constraint was applied to stabilise the retrieval. In the lower stratosphere, we find a global volume mixing ratio of HCFC-22 of about 185 pptv in January 2005. The rate of linear growth in the lower latitudes lower stratosphere was about 6 to 7 pptv year−1 in the period 2005–2012. The profiles obtained were compared with ACE-FTS satellite data v3.5, as well as with MkIV balloon profiles and cryosampler balloon measurements. Between 13 and 22 km, average agreement within −3 to +5 pptv (MIPAS – ACE) with ACE-FTS v3.5 profiles is demonstrated. Agreement with MkIV solar occultation balloon-borne measurements is within 10–20 pptv below 30 km and worse above, while in situ cryosampler balloon measurements are systematically lower over their full altitude range by 15–50 pptv below 24 km and less than 10 pptv above 28 km. MIPAS HCFC-22 time series below 10 km altitude are shown to agree mostly well to corresponding time series of near-surface abundances from the NOAA/ESRL and AGAGE networks, although a more pronounced seasonal cycle is obvious in the satellite data. This is attributed to tropopause altitude fluctuations and subsidence of polar winter stratospheric air into the troposphere. A parametric model consisting of constant, linear, quasi-biennial oscillation (QBO) and several sine and cosine terms with different periods has been fitted to the temporal variation of stratospheric HCFC-22 for all 10°-latitude/1-to-2-km-altitude bins. The relative linear variation was always positive, with relative increases of 40–70 % decade−1 in the tropics and global lower stratosphere, and up to 120 % decade−1 in the upper stratosphere of the northern polar region and the southern extratropical hemisphere. Asian HCFC-22 emissions have become the major source of global upper tropospheric HCFC-22. In the upper troposphere, monsoon air, rich in HCFC-22, is instantaneously mixed into the tropics. In the middle stratosphere, between 20 and 30 km, the observed trend is inconsistent with the trend at the surface (corrected for the age of stratospheric air), hinting at circulation changes. There exists a stronger positive trend in HCFC-22 in the Southern Hemisphere and a more muted positive trend in the Northern Hemisphere, implying a potential change in the stratospheric circulation over the observation period.
Global HCFC-22 measurements with MIPAS : retrieval, validation, climatologies and trends (2015)
Chirkov, Maksym ; Stiller, Gabriele ; Laeng, Alexandra ; Kellmann, Sylvia ; Clarmann, Thomas von ; Boone, Chris D. ; Elkins, James William ; Engel, Andreas ; Glatthor, Norbert ; Grabowski, Udo ; Harth, Christina M. ; Kiefer, Michael ; Kolonjari, Felicia ; Krummel, Paul B. ; Linden, Andrea ; Lunder, Chris Rene ; Miller, Benjamin R. ; Montzka, Stephen A. ; Mühle, Jens ; O'Doherty, Simon ; Orphal, Johannes ; Prinn, Ronald G. ; Toon, Geoffrey C. ; Vollmer, Martin K. ; Walker, Kaley A. ; Weiss, Ray F. ; Wiegele, Andreas ; Young, Dickon
We report on HCFC-22 data acquired by the Michelson Interferometer for Passive Atmospheric Sounding (MIPAS) in reduced spectral resolution nominal mode in the period from January 2005 to April 2012 from version 5.02 level-1b spectral data and covering an altitude range from the upper troposphere (above cloud top altitude) to about 50 km. The profile retrieval was performed by constrained nonlinear least squares fitting of measured limb spectral radiances to modelled spectra. The spectral v4-band at 816.5 ± 13 cm-1 was used for the retrieval. A Tikhonov-type smoothing constraint was applied to stabilise the retrieval. In the lower stratosphere, we find a global volume mixing ratio of HCFC-22 of about 185 pptv in January 2005. The linear growth rate in the lower latitudes lower stratosphere was about 6 to 7 pptv yr-1 in the period 2005–2012. The obtained profiles were compared with ACE-FTS satellite data v3.5, as well as with MkIV balloon profiles and in situ cryosampler balloon measurements. Between 13 and 22 km, average agreement within -3 to +5 pptv (MIPAS–ACE) with ACE-FTS v3.5 pro files is demonstrated. Agreement with MkIV solar occultation balloon-borne measurements is within 10–20 pptv below 30 km and worse above, while in situ cryosampler balloon measurements are systematically lower over their full altitude range by 15– 50 pptv below 24 km and less than 10 pptv above 28 km. Obtained MIPAS HCFC-22 time series below 10 km altitude are shown to agree mostly well to corresponding time series of near-surface abundances from NOAA/ESRL and AGAGE networks, although a more pronounced seasonal cycle is obvious in the satellite data, probably due to tropopause altitude fluctuations and subsidence of polar winter stratospheric air into the troposphere. A parametric model consisting of constant, linear, quasi-biennial oscillation (QBO) and several sine and cosine terms with different periods has been fitted to the temporal variation of stratospheric HCFC-22 for all 10° latitude/1 to 2 km altitude bins. The relative linear variation was always positive, with relative increases of 40–70%decade-1 in the tropics and global lower stratosphere, and up to 120%decade-1 in the upper stratosphere of the northern polar region and the southern extratropical hemisphere. In the middle stratosphere between 20 and 30 km, the observed trend is not consistent with the age of stratospheric air-corrected trend at ground, but stronger positive at the Southern Hemisphere and less strong increasing in the Northern Hemisphere, hinting towards changes in the stratospheric circulation over the observation period.
Impact of the Asian monsoon on the extratropical lower stratosphere: trace gas observations during TACTS over Europe 2012 (2015)
Müller, Stefan ; Hoor, Peter ; Gute, Ellen ; Vogel, Bärbel ; Zahn, Andreas ; Bönisch, Harald ; Keber, Timo ; Krämer, Martina ; Rolf, Christian ; Riese, Martin ; Schlager, Hans ; Engel, Andreas
The transport of air masses originating from the Asian monsoon anticyclone into the extratropical upper troposphere and lower stratosphere (Ex-UTLS) above potential temperatures Θ = 380K was identified during the HALO aircraft mission TACTS in August and September 2012. In-situ measurements of CO, O3 and N2O during TACTS Flight 2 on the 30 August 2012 show the irreversible mixing of aged with younger (originating from the troposphere) stratospheric air masses within the Ex-UTLS. Backward trajectories calculated with the trajetory module of the CLaMS model indicate that these tropospherically affected air masses originate from the Asian monsoon anticyclone. From the monsoon circulation region these air masses are quasi-isentropically transported above Θ = 380 K into the Ex-UTLS where they subsequently mix with stratospheric air masses. The overall trace gas distribution measured during TACTS shows that this transport pathway has a significant impact on the Ex-UTLS during boreal summer and autumn. This leads to an intensification of the tropospheric influence on the Ex-UTLS with ∆Θ > 30 K (relative to the tropopause) within three weeks during the TACTS mission. In the same time period a weakening of the tropospheric influence on the lowermost stratosphere (LMS) is determined. Therefore, the study shows that the transport of air masses originating from the Asian summer monsoon region within the lower stratosphere above Θ = 380K is of major importance for the change of the chemical composition of the Ex-UTLS from summer to autumn.
Impact of the Asian monsoon on the extratropical lower stratosphere: trace gas observations during TACTS over Europe 2012 (2016)
Müller, Stefan ; Hoor, Peter ; Bozem, Heiko ; Gute, Ellen ; Vogel, Bärbel ; Zahn, Andreas ; Bönisch, Harald ; Keber, Timo ; Krämer, Martina ; Rolf, Christian ; Riese, Martin ; Schlager, Hans ; Engel, Andreas
The transport of air masses originating from the Asian monsoon anticyclone into the extratropical upper troposphere and lower stratosphere (Ex-UTLS) above potential temperatures Θ =  380 K was identified during the HALO aircraft mission TACTS in August and September 2012. In situ measurements of CO, O3 and N2O during TACTS flight 2 on 30 August 2012 show the irreversible mixing of aged stratospheric air masses with younger (recently transported from the troposphere) ones within the Ex-UTLS. Backward trajectories calculated with the trajectory module of CLaMS indicate that these tropospherically affected air masses originate from the Asian monsoon anticyclone. These air masses are subsequently transported above potential temperatures Θ =  380 K from the monsoon circulation region into the Ex-UTLS, where they subsequently mix with stratospheric air masses. The overall trace gas distribution measured during TACTS shows that this transport pathway had affected the chemical composition of the Ex-UTLS during boreal summer and autumn 2012. This leads to an intensification of the tropospheric influence on the extratropical lower stratosphere with PV  >  8 pvu within 3 weeks during the TACTS mission. During the same time period a weakening of the tropospheric influence on the lowermost stratosphere (LMS) is determined. The study shows that the transport of air masses originating from the Asian summer monsoon region within the lower stratosphere affects the change in the chemical composition of the Ex-UTLS over Europe and thus contributes to the flushing of the LMS during summer 2012.
The impact of transport across the polar vortex edge on Match ozone loss estimates (2008)
Grooß, Jens-Uwe ; Müller, Rolf ; Konopka, Paul ; Steinhorst, Hildegard-Maria ; Engel, Andreas ; Möbius, Tanja ; Volk, C.-Michael
The Match method for the quantification of polar chemical ozone loss is investigated mainly with respect to the impact of the transport of air masses across the vortex edge. For the winter 2002/03, we show that significant transport across the vortex edge occurred and was simulated by the Chemical Lagrangian Model of the Stratosphere. In-situ observations of inert tracers and ozone from HAGAR on the Geophysica aircraft and balloon-borne sondes, and remote observations from MIPAS on the ENVISAT satellite were reproduced well by CLaMS. The model even reproduced a small vortex remnant that remained a distinct feature until June 2003 and was also observed in-situ by a balloon-borne whole air sampler. We use this CLaMS simulation to quantify the impact of transport across the vortex edge on ozone loss estimates from the Match method. We show that a time integration of the determined vortex average ozone loss rates, as performed in Match, results in a larger ozone loss than the polar vortex average ozone loss in CLaMS. The determination of the Match ozone loss rates is also influenced by the transport of air across the vortex edge. We use the model to investigate how the sampling of the ozone sondes on which Match is based represents the vortex average ozone loss rate. Both the time integration of ozone loss and the determination of ozone loss rates for Match are evaluated using the winter 2002/2003 CLaMS simulation. These impacts can explain the majority of the differences between CLaMS and Match column ozone loss. While the investigated effects somewhat reduce the apparent discrepancy in January ozone loss rates reported earlier, a distinct discrepancy between simulations and Match remains. However, its contribution to the accumulated ozone loss over the winter is not large.
Validation of version-4.61 methane and nitrous oxide observed by MIPAS (2009)
Payan, Sébastien ; Camy-Peyret, Claude C. ; Oelhaf, Hermann ; Wetzel, Gerald ; Maucher, Guido ; Keim, Corneli ; Pirre, Michel ; Huret, Nathalie ; Engel, Andreas ; Volk, C.-Michael ; Kuellmann, Harry ; Kuttippurath, Jayanarayanan ; Cortesi, Ugo ; Bianchini, Giovanni ; Mencaraglia, Francesco ; Raspollini, Piera ; Redaelli, Gianluca ; Vigouroux, Corinne ; De Mazière, Martine ; Mikuteit, Sabine ; Blumenstock, Thomas ; Velazco, Voltaire ; Notholt, Justus ; Mahieu, Emmanuel ; Duchatelet, Pierre ; Smale, Dan ; Wood, Stephen ; Jones, Nicholas ; Piccolo, Chiara ; Payne, Vivienne ; Bracher, Astrid ; Glatthor, Norbert ; Stiller, Gabriele ; Grunow, Katja ; Jeseck, Pascal ; Te, Yao ; Butz, Andre
The ENVISAT validation programme for the atmospheric instruments MIPAS, SCIAMACHY and GOMOS is based on a number of balloon-borne, aircraft, satellite and ground-based correlative measurements. In particular the activities of validation scientists were coordinated by ESA within the ENVISAT Stratospheric Aircraft and Balloon Campaign or ESABC. As part of a series of similar papers on other species [this issue] and in parallel to the contribution of the individual validation teams, the present paper provides a synthesis of comparisons performed between MIPAS CH4 and N2O profiles produced by the current ESA operational software (Instrument Processing Facility version 4.61 or IPF v4.61, full resolution MIPAS data covering the period 9 July 2002 to 26 March 2004) and correlative measurements obtained from balloon and aircraft experiments as well as from satellite sensors or from ground-based instruments. In the middle stratosphere, no significant bias is observed between MIPAS and correlative measurements, and MIPAS is providing a very consistent and global picture of the distribution of CH4 and N2O in this region. In average, the MIPAS CH4 values show a small positive bias in the lower stratosphere of about 5%. A similar situation is observed for N2O with a positive bias of 4%. In the lower stratosphere/upper troposphere (UT/LS) the individual used MIPAS data version 4.61 still exhibits some unphysical oscillations in individual CH4 and N2O profiles caused by the processing algorithm (with almost no regularization). Taking these problems into account, the MIPAS CH4 and N2O profiles are behaving as expected from the internal error estimation of IPF v4.61 and the estimated errors of the correlative measurements.
Contribution of very short-lived organic substances to stratospheric chlorine and bromine in the tropics : a case study (2008)
Laube, Johannes Christian ; Engel, Andreas ; Bönisch, Harald ; Möbius, Tanja ; Worton, David R. ; Sturges, William T. ; Grunow, Katja ; Schmidt, Ulrich
The total stratospheric organic chlorine and bromine burden was derived from balloon-borne measurements in the tropics (Teresina, Brazil, 5°04´ S, 42°52´ W) in 2005. Whole air samples were collected cryogenically at altitudes between 15 and 34 km. For the first time, we report measurements of a set of 28 chlorinated and brominated substances in the tropical upper troposphere and stratosphere including ten substances with an atmospheric lifetime of less than half a year. The substances were quantified using pre-concentration techniques followed by Gas Chromatography with Mass Spectrometric detection. In the tropical tropopause layer at altitudes between 15 and 17 km we found 1.1–1.4% of the chlorine and 6–8% of the bromine to be present in the form of very short-lived organic compounds. By combining the data with tropospheric reference data and age of air observations the abundances of inorganic chlorine and bromine (Cly and Bry) were derived. At an altitude of 34 km we calculated 3062 ppt of Cly and 17.5 ppt of Bry from the decomposition of both long- and short-lived organic source gases. Furthermore we present indications for the presence of additional organic brominated substances in the tropical upper troposphere and stratosphere.
A new estimation of the recent tropospheric molecular hydrogen budget using atmospheric observations and variational inversion (2010)
Yver, Camille E. ; Pison, Isabelle C. ; Fortems-Cheiney, Audrey ; Schmidt, Martina ; Chevallier, Frédéric ; Ramonet, Michel ; Jordan, Armin ; Søvde, Ole Amund ; Engel, Andreas ; Fisher, Rebecca E. ; Lowry, David ; Nisbet, Euan G. ; Levin, Ingeborg ; Hammer, Samuel ; Necki, Jaroslaw ; Bartyzel, Jakub ; Reimann, Stefan ; Vollmer, Martin ; Steinbacher, Martin ; Aalto, Tuula ; Maione, Michela ; Arduini, Jgor ; O'Doherty, Simon ; Grant, Aoife ; Sturges, William T. ; Forster, Grant L. ; Lunder, Chris Rene ; Privalov, Viacheslav I. ; Paramonova, Nina N.
This paper presents an analysis of the recent tropospheric molecular hydrogen (H2) budget with a particular focus on soil uptake and surface emissions. A variational inversion scheme is combined with observations from the RAMCES and EUROHYDROS atmospheric networks, which include continuous measurements performed between mid-2006 and mid-2009. Net H2 surface flux, soil uptake distinct from surface emissions and finally, soil uptake, biomass burning, anthropogenic emissions and N2 fixation-related emissions separately were inverted in several scenarios. The various inversions generate an estimate for each term of the H2 budget. The net H2 flux per region (High Northern Hemisphere, Tropics and High Southern Hemisphere) varies between −8 and 8 Tg yr−1. The best inversion in terms of fit to the observations combines updated prior surface emissions and a soil deposition velocity map that is based on soil uptake measurements. Our estimate of global H2 soil uptake is −59 ± 4.0 Tg yr−1. Forty per cent of this uptake is located in the High Northern Hemisphere and 55% is located in the Tropics. In terms of surface emissions, seasonality is mainly driven by biomass burning emissions. The inferred European anthropogenic emissions are consistent with independent H2 emissions estimated using a H2/CO mass ratio of 0.034 and CO emissions considering their respective uncertainties. To constrain a more robust partition of H2 sources and sinks would need additional constraints, such as isotopic measurements.
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