232 research outputs found
Temperature and pressure gas geoindicators at the Solfatara fumaroles (Campi Flegrei)
Long time series of fluid pressure and temperature within a hydrothermal system feeding the Solfatara fumaroles are investigated here, on the basis of the chemical equilibria within the CO2–H2O–H2–CO gas system. The Pisciarelli fumarole external to Solfatara crater shows an annual cycle of CO contents that indicates the occurrence of shallow secondary processes that mask the deep signals. In contrast, the Bocca Grande and Bocca Nova fumaroles located inside Solfatara crater do not show evidence of secondary processes, and their compositional variations are linked to the temperature–pressure changes within the hydrothermal system. The agreement between geochemical signals and the ground movements of the area (bradyseismic phenomena) suggests a direct relationship between the pressurization process and the ground uplift. Since 2007, the gas geoindicators have indicated pressurization of the system, which is most probably caused by the arrival of deep gases with high CO2 contents in the shallow parts of the hydrothermal system. This pressurization process causes critical conditions in the hydrothermal system, as highlighted by the increase in the fumarole temperature, the opening of new vents, and the localized seismic activity. If the pressurization process continues with time, it is not possible to rule out the occurrence of phreatic explosions
Source and dynamics of a volcanic caldera unrest : Campi Flegrei, 1983â84
Acknowledgements We thank Tiziana Vanorio, Antonella Amoruso, Luca Crescentini, Nicholas Rawlinson, Yasuko Takei, and David Cornwell for the valuable suggestions regarding the methodology and interpretation. Reviews from Tim Greenfield and two anonymous reviewers helped improving both clarity of the manuscript and interpretation. The Royal Society of Edinburgh - Accademia dei Lincei Bilateral Agreement, the Santander Mobility Award of the College of Physical Sciences, University of Aberdeen, and the TIDES EU COST action granted L.D.S. travel grants for the realisation of this study. E.D.P. has been supported by the EPHESTO and KNOWAVES projects, funded by the Spanish Ministry of Education and Science.Peer reviewedPublisher PD
SATELLITE AND IN SITU GROUND TEMPERATURE
Ground thermal anomalies in volcanic-hydrothermal systems, where the outflow of hot fluids gives rise to fumarolic fields, soil degassing, and hot soils, have, up to now, rarely been investigated by using satellite. Here we report a comparison between surface temperature derived by satellite data and a large data set of measured soil temperatures and CO2 fluxes for a volcanic-hydrothermal system, the Solfatara of Pozzuoli (Campi Flegrei, Italy). Surface temperatures derived from ASTER (Advanced Spaceborne Thermal Emission and Reflection Radiometer) data are compared with soil temperatures and CO2 fluxes from four surveys performed in 2003, 2010, and in 2014. The good match between the spatial distributions of computed and measured temperatures suggests the adequacy of satellite data to describe the Solfatara thermal anomaly, while the correspondence between temperatures and CO2 fluxes, evidences the link between degassing and heating processes. The ASTER derived surface temperatures (14â37°C) are coherent with those measured in the soil (10â97°C at 10 cm depth), considering the effect of the thermal gradients which characterize the degassing area of Solfatara. This study shows that satellite data can be a very powerful tool with which to study surface thermal anomalies, and can provide a supplementary tool to monitor thermal evolution of restless volcanoes
The deep and magmatic degassing source of unrest episodes at Campi Flegrei caldera (southern Italy)
Volcanic calderas are affected by unrest episodes usually dominated by hybrid magmatic-hydrothermal system
dynamics. Unrest episodes can evolve to eruptions of variable intensity, up to Plinian. Campi Flegrei caldera
(CFc) is a type-location for this kind of activity escalation. CFc provides unique opportunity to build-up a volcanological
model in which geochemical, geological and geophysical data are interpreted together to understand
how degassing following magma emplacement drives the caldera resurgence. Uneruptive unrest episodes reflect
i) a sudden increase of the CO2 magmatic fraction following the shallow emplacement of one single volatile-rich
magma batch, ii) voluminous gas separation in a nearly single-step process, and iii), on longer times scales of 10-20
years, degassing driven by crystallization and deep gas fluxing. Our volcanological model matches three decades
of geochemical constraints from fumarole discharges, as well as data from melt inclusions of past CFc eruptions.
Besides, magma physical properties demanded for modeled degassing conditions are in good agreement with existing
geophysical data. Our results open new perspectives to the definition of unrest scenarios at highly-populated
CFc
Measuring and interpreting CO2 fluxes at regional scale: the case of the Apennines, Italy
Tectonically active regions are often characterized by large amounts of carbon dioxide degassing, and estimation of the total CO2 discharged to the atmosphere from tectonic structures, hydrothermal systems and inactive volcanic areas is crucial for the definition of present-day global Earth degassing. The carbon balance of regional aquifers is a powerful tool to quantify the diffuse degassing of deep inorganic carbon sources because the method integrates the CO2 flux over large areas. Its application to peninsular Italy shows that the region is characterized by specific CO2 fluxes higher than the baseline determined for the geothermal regions of the world, and that the amount of endogenous CO2 discharged through diffuse regional degassing (c. 2.1âĂâ1011â
molâ
aâ1) is the major component of the geological CO2 budget of Italy, definitely prevailing over the CO2 discharged by Italian active volcanoes and volcanoes with hydrothermal activity. Furthermore, the positive correlation between geothermal heat and deep CO2 dissolved in the groundwater of central Italy suggests that (1) the geothermal heat is transported into the aquifers by the same hot CO2-rich fluids causing the Italian CO2 anomaly and (2) the advective heat flow is the dominant form of heat transfer of the region. Supplementary material: The location, flow rate, extent of the hydrogeological basin, chemical and isotopic analyses of the 160 springs considered in this study, and the results of the carbon mass balance are reported in a table available at https://doi.org/10.6084/m9.figshare.c.423702
Impact of geogenic degassing on C-isotopic composition of dissolved carbon in karst systems of Greece
The Earth C-cycle is complex, where endogenic and exogenic sources are interconnected, operating in a multiple spatial and temporal scale (Lee et al., 2019). Non-volcanic CO2 degassing from active tectonic structures is one of the less defined components of this cycle (Frondini et al., 2019). Carbon mass-balance (Chiodini et al., 2000) is a useful tool to quantify the geogenic carbon output from regional karst hydrosystems. This approach has been demonstrated for central Italy and may be valid also for Greece, due to the similar geodynamic settings. Deep degassing in Greece has been ascertained mainly at hydrothermal and volcanic areas, but the impact of geogenic CO2 released by active tectonic areas has not yet been quantified. The main aim of this research is to investigate the possible deep degassing through the big karst aquifers of Greece. Since 2016, 156 karst springs were sampled along most of the Greek territory. To discriminate the sources of carbon, the analysis of the isotopic composition of carbon was carried out. ÎŽ13CTDIC values vary from -16.61 to -0.91â° and can be subdivided into two groups characterized by (a) low ÎŽ13CTDIC, and (b) intermediate to high ÎŽ13CTDIC with a threshold value of -6.55â°. The composition of the first group can be related to the mixing of organic-derived CO2 and the dissolution of marine carbonates. Springs of the second group, mostly located close to Quaternary volcanic areas, are linked to possible carbon input from deep sources
Carbon degassing through karst hydrosystems of Greece
Estimation of CO2 degassing from active tectonic structures and regional hydrothermal systems
is essential for the quantification of presentday
Earth degassing [Frondini et al., 2019 and references
therein]. Due to the high solubility of CO2 in water, great amounts of deep inorganic
carbon can be dissolved, transported, and released from regional aquifers. By applying a massbalance
approach [Chiodini et al., 2000], different sources of the dissolved CO2 can be discriminated.
The main source of degassing in Greece is concentrated in hydrothermal and volcanic
areas. However, deep CO2 from active tectonic areas has not yet been quantified. A key point
of this research is to investigate the possible deep CO2 degassing through the big karst aquifers
of Greece. From May 2016, 156 karst springs were sampled along the greatest part of the Hellenic
region. To discriminate the different carbon sources, we analyzed the chemical and isotopic
composition of total dissolved inorganic carbon (TDIC). Results yield TDIC values from 1.89 to
21.7 mmol/l and ÎŽ13CTDIC from 16.61
to 0.91
â°. On this basis, karst springs are clustered into
two groups: (a) low TDIC and ÎŽ13CTDIC values and (b) intermediate TDIC and ÎŽ13CTDIC values. The
carbon of the first group derives from organic source and dissolution of carbonates; whilst the
second group shows a possible carbon input from deep source. This geogenic carbon is mostly
related to high heat flux areas, often near active or recent (Quaternary) volcanic systems
Insight Into Campi Flegrei Caldera Unrest Through Seismic Tremor Measurements at Pisciarelli Fumarolic Field
Within a general volcanic unrest in the densely urbanized area of Campi Flegrei caldera (Italy)
an increase in the activity of Pisciarelli hydrothermal area is occurring. The seismic amplitude of
Pisciarelli fumarolic tremor is a proxy for the fluid emission rate of the entire SolfataraâPisciarelli
hydrothermal system. The longâterm analysis indicates a significant increase, by a factor of ~3 of the
fumarolic tremor amplitude since May 2017. This increment matches with the trend of geochemical and
seismic parameters observed in Campi Flegrei, therefore highlighting that Pisciarelli is a key site to
monitor the volcanic unrest underway in this highârisk caldera. The analysis of data from three closely
spaced seismic stations provided new clues about the source mechanism of the tremor. Analyzing the
fumarolic tremor amplitude we could also identify an episode of enlargement of the emission area close
to the main fumarole of Pisciarelli. We propose a monitoring system based on the fumarolic tremor
analysis, which provides realâtime information on the Pisciarelli hydrothermal activity and therefore on
the current unrest in Campi Flegrei caldera.Published5544-55554V. Processi pre-eruttiviJCR Journa
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