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GeoRef Categories
Era and Period
Epoch and Age
Book Series
Date
Availability
Jalisco Mexico
The 1912 Seismic Swarm in Guadalajara, Mexico: An Example of Intense and Unusual Seismicity in the Trans‐Mexican Volcanic Belt Available to Purchase
Imaging the Rivera and Cocos Plates Shape in Western Mexico from Local Seismicity Studies Available to Purchase
Infrasound Observations at Bahía de Banderas, Western Mexico Available to Purchase
Evidence of the Early Holocene eruptive activity of Volcán de Colima and the 8.2 kyr global climatic event in lacustrine sediments from a debris avalanche-dammed lake Available to Purchase
Abstract Volcán de Colima, one of the most active volcanoes in Mexico, experienced at least nine flank failures during the last 30 000 years, with catastrophic effects on the environment that implies the formation of temporary dams where lacustrine sediments accumulated for hundreds of years. These lacustrine sequences preserve an exceptional record from which to reconstruct the effect of subsequent volcanic eruptions and, eventually, contemporary environmental and climatic conditions. Here we analyse an Early Holocene lacustrine sequence, named ‘Gypsum King’, which accumulated in a short-lived temporary lake, likely formed by emplacement of the 10 755–11 230 cal years BP Mesa-Yerbabuena debris avalanche. Through detailed analysis of the 1.8 m thick lacustrine sequence ( 14 C ages, sulfur content, grain size), it was possible to identify the 8.2 kyr global climate event and better constrain the Early Holocene main sub-plinian to plinian eruptions of Volcán de Colima. The results presented here highlight the potential to explore sulfur content and abrupt change in grain size in lacustrine sediments as additional proxies to better constrain eruptive phases in volcanic environments. Finally, the Gypsum King sequence provides the first evidence of the 8.2 kyr global climate event along the Eastern tropical Pacific Coast.
Coseismic Slip Model of the 19 September 2022 M w 7.6 Michoacán, Mexico, Earthquake: A Quasi‐Repeat of the 1973 M w 7.6 Rupture Open Access
Monitoring ground movement at Volcán de Colima, Mexico, using Sentinel-1 data and SqueeSAR ® Open Access
Strain Localization in Magmas Available to Purchase
The Search of Diffusive Properties in Ambient Seismic Noise Available to Purchase
Macroseismic Study of the Devastating 22–23 October 1749 Earthquake Doublet in the Northern Colima Graben (Trans‐Mexican Volcanic Belt, Western Mexico) Available to Purchase
Analysis of the Seismicity in the Jalisco Block from June to December 2015 Available to Purchase
The Jalisco Seismic Accelerometric Telemetric Network (RESAJ) Available to Purchase
Increased xenarthran diversity of the Great American Biotic Interchange: a new genus and species of ground sloth (Mammalia, Xenarthra, Megalonychidae) from the Hemphillian (late Miocene) of Jalisco, Mexico Available to Purchase
Updated Tsunami Catalog for the Jalisco‐Colima Coast, Mexico, Using Data from Historical Archives Available to Purchase
Latitudinal body-mass trends in Oligo-Miocene mammals Available to Purchase
Vanadium, V – a new native element mineral from the Colima volcano, State of Colima, Mexico, and implications for fumarole gas composition Available to Purchase
Pulsed Vulcanian explosions: A characterization of eruption dynamics using Doppler radar Available to Purchase
The A.D. 1567 M w 7.2 Ameca, Jalisco, Earthquake (Western Trans‐Mexican Volcanic Belt): Surface Rupture Parameters, Seismogeological Effects, and Macroseismic Intensities from Historical Sources Available to Purchase
Timescales of degassing and conduit dynamics inferred from 210 Pb– 226 Ra disequilibria in Volcán de Colima 1998–2010 andesitic magmas Available to Purchase
Abstract Determining the timescales of magma degassing is essential for understanding the mechanisms controlling the eruption style and the dynamics of magmatic systems. Towards this end, we measured 210 Pb– 226 Ra disequilibria in andesite lavas erupted from Volcán de Colima between 1998 and 2010. ( 210 Pb/ 226 Ra) 0 activity ratios range from 0.86 to 1.09, and are best explained in terms of 222 Rn degassing and accumulation. The range in 210 Pb deficits indicates that the timescales of 222 Rn degassing did not exceed 11 years. 210 Pb excesses are rare and small (<10%), which signifies that 222 Rn degassing is more effective than 210 Pb accumulation in this intermediate system despite the relatively low gas output at the surface. The absence of significant 210 Pb excesses strongly suggests that the volcanic activity results from episodic ascent of small magma batches through the vapour-saturated section of the magmatic system. Overall, the degassing models based on 210 Pb– 226 Ra disequilibrium suggest an open and complex subvolcanic magmatic system comprising several conduits in which multiple magma batches reside for up to 10 years. Shifts from effusive to explosive Vulcanian eruptive phases are not related to changes in degassing mode on timescales resolvable using 210 Pb– 226 Ra disequilibria.