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	<title>ISTerre - Institut des Sciences de la Terre</title>
	<link>https://www.isterre.fr/</link>
	<description>Site web de l'Institut des Sciences de la Terre (ISTerre), unit&#233; mixte de recherche du CNRS, de l'Universit&#233; Grenoble Alpes, de l'Universit&#233; Savoie Mont Blanc, de l'IRD et de l'IFSTTAR</description>
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		<title>ISTerre - Institut des Sciences de la Terre</title>
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<item xml:lang="fr">
		<title>Th&#233;matique de recherche</title>
		<link>https://www.isterre.fr/annuaire/pages-web-du-personnel/marielle-collombet/article/thematique-de-recherche.html</link>
		<guid isPermaLink="true">https://www.isterre.fr/annuaire/pages-web-du-personnel/marielle-collombet/article/thematique-de-recherche.html</guid>
		<dc:date>2016-01-08T13:05:37Z</dc:date>
		<dc:format>text/html</dc:format>
		<dc:language>fr</dc:language>
		<dc:creator>Marielle COLLOMBET</dc:creator>



		<description>&lt;p&gt;Th&#233;matique de recherche principale depuis Septembre 2010&lt;/p&gt;

-
&lt;a href="https://www.isterre.fr/annuaire/pages-web-du-personnel/marielle-collombet/" rel="directory"&gt;Marielle COLLOMBET&lt;/a&gt;


		</description>


 <content:encoded>&lt;div class='rss_texte'&gt;&lt;div class='spip_document_7740 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH359/merapi---01-nov-2010---10-1ed0d.jpg?1789522666' width='500' height='359' alt='' /&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;strong&gt;Dynamique &#233;ruptive des volcans and&#233;sitiques&lt;/strong&gt;&lt;br class='autobr' /&gt;
L'&#233;valuation du risque volcanique rel&#232;ve en partie de la capacit&#233; &#224; anticiper un changement de comportement dans la dynamique &#233;ruptive. Un m&#234;me volcan peut en effet &#233;voluer d'un r&#233;gime effusif (formation de d&#244;me) vers un r&#233;gime explosif (panache &#233;ruptif et coul&#233;es pyroclastiques) et inversement. Le magma est un mat&#233;riau complexe constitu&#233; d'une phase liquide, de cristaux et de gaz. Lors de sa remont&#233;e vers la surface il subit de nombreuses transformations physiques et rh&#233;ologiques li&#233;es entre autres aux variations de pression mais aussi &#224; la possibilit&#233; ou non pour le gaz de s'&#233;chapper du magma. Ces modifications importantes vont conditionner l'&#233;tat d'&#233;nergie de sortie du magma en surface. Mon travail consiste &#224; d&#233;velopper des codes num&#233;riques permettant de suivre et de quantifier l'&#233;volution des param&#232;tres physiques du magma lors de sa remont&#233;e vers la surface en incluant les effets du d&#233;gazage. Parall&#232;lement au d&#233;veloppement des mod&#232;les, les r&#233;sultats num&#233;riques sont r&#233;guli&#232;rement confront&#233;s aux donn&#233;es r&#233;elles collect&#233;es depuis la surface (&#233;chantillons naturels, d&#233;formation, sismicit&#233;, d&#233;gazage) afin de cerner , comprendre et reproduire le plus fid&#232;lement possible les m&#233;canismes majeurs qui conditionnent les changements de r&#233;gime &#233;ruptif.&lt;/p&gt;&lt;/div&gt;
		
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<item xml:lang="fr">
		<title>Mod&#233;lisation num&#233;rique des processus magmatiques </title>
		<link>https://www.isterre.fr/french/recherche/equipes-de-recherche/geophysique-des-volcans-geothermie/scientific-topics/article/modelisation-numerique-des-processus-magmatiques.html</link>
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		<dc:date>2013-03-13T13:30:11Z</dc:date>
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		<dc:language>fr</dc:language>
		<dc:creator>Alain BURGISSER, Marielle COLLOMBET</dc:creator>



		<description>
&lt;p&gt;WHAT IS PHYSICAL VOLCANOLOGY ? &lt;br class='autobr' /&gt;
The surprising diversity of magmas erupted at the Earth's surface is caused by the chemical evolution taking place because magmas are cooling within the Earth's crust and crystallize, encounter new magmas and mix, and interact with the wall rock. Our broadest scientific objective is to unravel, from a physical standpoint, the complex interplays between crystals, exsolution bubbles, and melt that affect the pressure/temperature path of magmas and condition the (&#8230;)&lt;/p&gt;


-
&lt;a href="https://www.isterre.fr/french/recherche/equipes-de-recherche/geophysique-des-volcans-geothermie/scientific-topics/" rel="directory"&gt;Th&#232;mes de recherche&lt;/a&gt;


		</description>


 <content:encoded>&lt;div class='rss_texte'&gt;&lt;h5 class=&#034;spip&#034;&gt;WHAT IS PHYSICAL VOLCANOLOGY ?&lt;/h5&gt;
&lt;p&gt;The surprising diversity of magmas erupted at the Earth's surface is caused by the chemical evolution taking place because magmas are cooling within the Earth's crust and crystallize, encounter new magmas and mix, and interact with the wall rock. Our broadest scientific objective is to unravel, from a physical standpoint, the complex interplays between crystals, exsolution bubbles, and melt that affect the pressure/temperature path of magmas and condition the eruptive behavior of volcanoes at large.&lt;/p&gt;
&lt;p&gt;Physicists tracking magmatic processes are mostly concerned with the location and motion of the three main phases (melt, crystals, and gas bubbles) composing the magma. These phases can be trapped into mobile or immobile regions, and physicists define magma chambers as regions of mobile magma available for eruption. Magma mobility is linked to rheology, which depends not only on quantities such as crystal content or melt chemistry, but also on the stress state the magma is subjected to. Thus, for physicists, a magma chamber can significantly change in shape and size during the course of an eruption. These three visions are illustrated by the outcomes of studies of the 1991 eruption of Mt Pinatubo :&lt;/p&gt;
&lt;div class='spip_document_4417 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/png/MagmaChambers.png' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/png&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH195/MagmaChambers-2c7fa.png?1789522666' width='500' height='195' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;i&gt;The many faces of the magma chamber feeding the 1991 eruption of Mt Pinatubo. Geochemistry of the erupted products led to the identification of the storage conditions of a host magma and input of another, fresh magma (Hammer &amp; Rutherford, 2003). Geophysics located the many volcano-tectonic quakes generated during the eruption, which led to the identification of an aseismic zone (red) that may contain the host magma (Mori et al, 1996). Physics integrated these elements into a scenario of a chamber filled by highly viscous host magma and being remobilized by fresh magma, which led to the identification of a plausible reheating mechanism (Burgisser &amp; Bergantz, 2011).&lt;/i&gt;&lt;/p&gt;
&lt;h5 class=&#034;spip&#034;&gt;PHYSICS OF MAGMA ASCENT&lt;/h5&gt;
&lt;p&gt;Our modeling approach considers magma as a mixture of crystal, gas bubbles and silicate liquid with independent motions. It is at the forefront of fluid dynamical simulations of volcanic processes and has successfully been applied to the simulation of pyroclastic density currents, magmatic conduits, and magmatic chambers. We use mainly two in-house fluid dynamical models to that end. One is based on the numerical model Multiphase Flow with Interphase eXchange (&lt;a href=&#034;https://www.mfix.org&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;MFIX&lt;/a&gt;) and the other has successively been developed in Collier &amp; Neuberg (2006) and Collombet (2009).&lt;/p&gt;
&lt;table class=&#034;table spip&#034;&gt;
&lt;thead&gt;&lt;tr class='row_first'&gt;&lt;th id='id5817_c0'&gt;&lt;div class='spip_document_4418 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH440/ErebusSimul-6c0e6.png?1789508949' width='500' height='440' alt='' /&gt;
&lt;/figure&gt;
&lt;/div&gt;&lt;/th&gt;&lt;th id='id5817_c1'&gt;Multiphase simulations (crystal + melt) of the convection of the long-lived lava lake at Erebus volcano, Antarctica. After 15 years (right), in steady state, thermal convection is only able to suspend 20 vol.% crystals (yellow color), which is smaller than the 35 vol.% observed (green color, initial conditions at year 0, left). This suggests that the gases are needed to accelerate convection and suspend more crystals.&lt;/th&gt;&lt;/tr&gt;&lt;/thead&gt;
&lt;tbody&gt;
&lt;/tbody&gt;
&lt;/table&gt;&lt;table class=&#034;table spip&#034;&gt;
&lt;thead&gt;&lt;tr class='row_first'&gt;&lt;th id='id58ef_c0'&gt;&lt;div class='spip_document_4419 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L300xH305/Conduit-42e08.png?1789522666' width='300' height='305' alt='' /&gt;
&lt;/figure&gt;
&lt;/div&gt;&lt;/th&gt;&lt;th id='id58ef_c1'&gt;Principle of simulation of magma ascent in a volcanic conduit. (Collombet, 2009). The magma rises in the conduit and becomes richer and richer in gas bubbles. These gases accumulate in the magma, possibly leaking into the surrounding rocks. If gas loss is too slow, the magma fragments and an explosive eruption occurs.&lt;/th&gt;&lt;/tr&gt;&lt;/thead&gt;
&lt;tbody&gt;
&lt;/tbody&gt;
&lt;/table&gt;
&lt;p&gt;Magma rheology is controlled by the amounts of crystals and volatiles present in the magma and the strain rates magma is subjected to. These controls have been approached separately, and our aim is to bring them together. The resulting simulation outputs need to be confronted to natural data. The proposed natural target is Merapi volcano in the framework of &lt;a href='https://www.isterre.fr/french/recherche/projets-de-recherche/projets-anr/projets-termines/article/domerapi-dynamique-d-un-volcan-d-arc-a-domes-de-lave-le-merapi.html' class=&#034;spip_in&#034;&gt;DOMERAPI&lt;/a&gt;, a multidisciplinary research project that seeks to integrate geophysics, geochemistry, and physical volcanology into a deterministic model of the behavior of this active volcano.&lt;/p&gt;
&lt;div class='spip_document_4415 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH455/Deformation-731e1.png?1789522666' width='500' height='455' alt='' /&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;i&gt;Example of coupling between magma flow and the elastic deformation, which can be monitored around a volcano (Albino et al. 2011).&lt;/i&gt;&lt;/p&gt;
&lt;h5 class=&#034;spip&#034;&gt;VOLATILE CHEMISTRY&lt;/h5&gt;
&lt;p&gt;Magmas show such complex degassing patterns that it is impossible to predict the gas composition at vent without a thermodynamical model. Our chemical model of degassing allows us to calculate the evolution during decompression of the volatile composition of gas and melt for the S-O-H-C-Cl-Fe system in rhyolitic, basaltic, and phonolitic melts :&lt;/p&gt;
&lt;div class='spip_document_4420 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L404xH350/GasChemistry-665c1.png?1789477110' width='404' height='350' alt='' /&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;i&gt;Inverse modeling of volcanic gas composition measurements. Measures at the surface of the lava lake of Erebus volcano, Antarctica, show strong variation in gas composition between quiescent convection (triangle) and Strombolian explosions (star, blue shaded area shows variability between explosions). Schematics (right) depict various physical scenarios, where explosions are caused by fast gas slugs or slow bubble swarm, and quiescent degassing is fed by a pulsatory or still magma column. Depending on the scenario, the model predicts different evolutions of volatile distribution at depth (left).&lt;/i&gt;&lt;/p&gt;&lt;/div&gt;
		
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	</item>
<item xml:lang="fr">
		<title>Numerical modeling of magmatic processes and magma ascent</title>
		<link>https://www.isterre.fr/english/research/research-teams/volcano-geophysics-geothermal-research/themes-de-recherche/article/modelisation-numerique-des-processus-magmatiques.html</link>
		<guid isPermaLink="true">https://www.isterre.fr/english/research/research-teams/volcano-geophysics-geothermal-research/themes-de-recherche/article/modelisation-numerique-des-processus-magmatiques.html</guid>
		<dc:date>2013-03-13T13:30:11Z</dc:date>
		<dc:format>text/html</dc:format>
		<dc:language>fr</dc:language>
		<dc:creator>Alain BURGISSER, Ana&#239;s SCHNEIDER, Marielle COLLOMBET</dc:creator>



		<description>
&lt;p&gt;WHAT IS PHYSICAL VOLCANOLOGY ? &lt;br class='autobr' /&gt;
The surprising diversity of magmas erupted at the Earth's surface is caused by the chemical evolution taking place because magmas are cooling within the Earth's crust and crystallize, encounter new magmas and mix, and interact with the wall rock. Our broadest scientific objective is to unravel, from a physical standpoint, the complex interplays between crystals, exsolution bubbles, and melt that affect the pressure/temperature path of magmas and condition the (&#8230;)&lt;/p&gt;


-
&lt;a href="https://www.isterre.fr/english/research/research-teams/volcano-geophysics-geothermal-research/themes-de-recherche/" rel="directory"&gt;Scientific topics&lt;/a&gt;


		</description>


 <content:encoded>&lt;div class='rss_texte'&gt;&lt;h5 class=&#034;spip&#034;&gt;WHAT IS PHYSICAL VOLCANOLOGY ?&lt;/h5&gt;
&lt;p&gt;The surprising diversity of magmas erupted at the Earth's surface is caused by the chemical evolution taking place because magmas are cooling within the Earth's crust and crystallize, encounter new magmas and mix, and interact with the wall rock. Our broadest scientific objective is to unravel, from a physical standpoint, the complex interplays between crystals, exsolution bubbles, and melt that affect the pressure/temperature path of magmas and condition the eruptive behavior of volcanoes at large.&lt;/p&gt;
&lt;p&gt;Physicists tracking magmatic processes are mostly concerned with the location and motion of the three main phases (melt, crystals, and gas bubbles) composing the magma. These phases can be trapped into mobile or immobile regions, and physicists define magma chambers as regions of mobile magma available for eruption. Magma mobility is linked to rheology, which depends not only on quantities such as crystal content or melt chemistry, but also on the stress state the magma is subjected to. Thus, for physicists, a magma chamber can significantly change in shape and size during the course of an eruption. These three visions are illustrated by the outcomes of studies of the 1991 eruption of Mt Pinatubo :&lt;/p&gt;
&lt;div class='spip_document_4417 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;a href='https://www.isterre.fr/sites/www.isterre.fr/IMG/png/MagmaChambers.png' class=&#034;spip_doc_lien mediabox&#034; type=&#034;image/png&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH195/MagmaChambers-2c7fa.png?1789522666' width='500' height='195' alt='' /&gt;&lt;/a&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;i&gt;The many faces of the magma chamber feeding the 1991 eruption of Mt Pinatubo. Geochemistry of the erupted products led to the identification of the storage conditions of a host magma and input of another, fresh magma (Hammer &amp; Rutherford, 2003). Geophysics located the many volcano-tectonic quakes generated during the eruption, which led to the identification of an aseismic zone (red) that may contain the host magma (Mori et al, 1996). Physics integrated these elements into a scenario of a chamber filled by highly viscous host magma and being remobilized by fresh magma, which led to the identification of a plausible reheating mechanism (Burgisser &amp; Bergantz, 2011).&lt;/i&gt;&lt;/p&gt;
&lt;h5 class=&#034;spip&#034;&gt;PHYSICS OF MAGMA ASCENT&lt;/h5&gt;
&lt;p&gt;Our modeling approach considers magma as a mixture of crystal, gas bubbles and silicate liquid with independent motions. It is at the forefront of fluid dynamical simulations of volcanic processes and has successfully been applied to the simulation of pyroclastic density currents, magmatic conduits, and magmatic chambers. We use mainly two in-house fluid dynamical models to that end. One is based on the numerical model Multiphase Flow with Interphase eXchange (&lt;a href=&#034;https://www.mfix.org&#034; class=&#034;spip_out&#034; rel=&#034;external&#034;&gt;MFIX&lt;/a&gt;) and the other has successively been developed in Collier &amp; Neuberg (2006) and Collombet (2009).&lt;/p&gt;
&lt;table class=&#034;table spip&#034;&gt;
&lt;thead&gt;&lt;tr class='row_first'&gt;&lt;th id='id5817_c0'&gt;&lt;div class='spip_document_4418 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH440/ErebusSimul-6c0e6.png?1789508949' width='500' height='440' alt='' /&gt;
&lt;/figure&gt;
&lt;/div&gt;&lt;/th&gt;&lt;th id='id5817_c1'&gt;Multiphase simulations (crystal + melt) of the convection of the long-lived lava lake at Erebus volcano, Antarctica. After 15 years (right), in steady state, thermal convection is only able to suspend 20 vol.% crystals (yellow color), which is smaller than the 35 vol.% observed (green color, initial conditions at year 0, left). This suggests that the gases are needed to accelerate convection and suspend more crystals.&lt;/th&gt;&lt;/tr&gt;&lt;/thead&gt;
&lt;tbody&gt;
&lt;/tbody&gt;
&lt;/table&gt;&lt;table class=&#034;table spip&#034;&gt;
&lt;thead&gt;&lt;tr class='row_first'&gt;&lt;th id='id58ef_c0'&gt;&lt;div class='spip_document_4419 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L300xH305/Conduit-42e08.png?1789522666' width='300' height='305' alt='' /&gt;
&lt;/figure&gt;
&lt;/div&gt;&lt;/th&gt;&lt;th id='id58ef_c1'&gt;Principle of simulation of magma ascent in a volcanic conduit. (Collombet, 2009). The magma rises in the conduit and becomes richer and richer in gas bubbles. These gases accumulate in the magma, possibly leaking into the surrounding rocks. If gas loss is too slow, the magma fragments and an explosive eruption occurs.&lt;/th&gt;&lt;/tr&gt;&lt;/thead&gt;
&lt;tbody&gt;
&lt;/tbody&gt;
&lt;/table&gt;
&lt;p&gt;Magma rheology is controlled by the amounts of crystals and volatiles present in the magma and the strain rates magma is subjected to. These controls have been approached separately, and our aim is to bring them together. The resulting simulation outputs need to be confronted to natural data. The proposed natural target is Merapi volcano in the framework of &lt;a href='https://www.isterre.fr/french/recherche/projets-de-recherche/projets-anr/projets-termines/article/domerapi-dynamique-d-un-volcan-d-arc-a-domes-de-lave-le-merapi.html' class=&#034;spip_in&#034;&gt;DOMERAPI&lt;/a&gt;, a multidisciplinary research project that seeks to integrate geophysics, geochemistry, and physical volcanology into a deterministic model of the behavior of this active volcano.&lt;/p&gt;
&lt;div class='spip_document_4415 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L500xH455/Deformation-731e1.png?1789522666' width='500' height='455' alt='' /&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;i&gt;Example of coupling between magma flow and the elastic deformation, which can be monitored around a volcano (Albino et al. 2011).&lt;/i&gt;&lt;/p&gt;
&lt;h5 class=&#034;spip&#034;&gt;VOLATILE CHEMISTRY&lt;/h5&gt;
&lt;p&gt;Magmas show such complex degassing patterns that it is impossible to predict the gas composition at vent without a thermodynamical model. Our chemical model of degassing allows us to calculate the evolution during decompression of the volatile composition of gas and melt for the S-O-H-C-Cl-Fe system in rhyolitic, basaltic, and phonolitic melts :&lt;/p&gt;
&lt;div class='spip_document_4420 spip_document spip_documents spip_document_image spip_documents_center spip_document_center'&gt;
&lt;figure class=&#034;spip_doc_inner&#034;&gt; &lt;img src='https://www.isterre.fr/sites/www.isterre.fr/local/cache-vignettes/L404xH350/GasChemistry-665c1.png?1789477110' width='404' height='350' alt='' /&gt;
&lt;/figure&gt;
&lt;/div&gt;
&lt;p&gt;&lt;i&gt;Inverse modeling of volcanic gas composition measurements. Measures at the surface of the lava lake of Erebus volcano, Antarctica, show strong variation in gas composition between quiescent convection (triangle) and Strombolian explosions (star, blue shaded area shows variability between explosions). Schematics (right) depict various physical scenarios, where explosions are caused by fast gas slugs or slow bubble swarm, and quiescent degassing is fed by a pulsatory or still magma column. Depending on the scenario, the model predicts different evolutions of volatile distribution at depth (left).&lt;/i&gt;&lt;/p&gt;&lt;/div&gt;
		
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