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	<title>seismic tomography advancements &#8211; Science</title>
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	<title>seismic tomography advancements &#8211; Science</title>
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		<title>Submit Your Abstracts: Leading Geoscience Conference Opens Call for Technical Program Contributions</title>
		<link>https://scienmag.com/submit-your-abstracts-leading-geoscience-conference-opens-call-for-technical-program-contributions/</link>
		
		<dc:creator><![CDATA[Violet Maxwell]]></dc:creator>
		<pubDate>Tue, 23 Jun 2026 19:49:26 +0000</pubDate>
				<category><![CDATA[Earth Science]]></category>
		<category><![CDATA[anthropogenic impacts on watersheds]]></category>
		<category><![CDATA[continental drift centennial celebration]]></category>
		<category><![CDATA[earth science technical program]]></category>
		<category><![CDATA[fluvial hydrology and hazards]]></category>
		<category><![CDATA[geochronology in geoscience]]></category>
		<category><![CDATA[geological society of america event]]></category>
		<category><![CDATA[geoscience conference call for abstracts]]></category>
		<category><![CDATA[GSA Connects 2026 conference]]></category>
		<category><![CDATA[paleomagnetic data studies]]></category>
		<category><![CDATA[plate tectonics research 2026]]></category>
		<category><![CDATA[river systems geomorphology]]></category>
		<category><![CDATA[seismic tomography advancements]]></category>
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					<description><![CDATA[The Geological Society of America (GSA) has officially announced the call for abstracts for its flagship annual conference, GSA Connects 2026, scheduled to take place from October 11 to 14 in Denver, Colorado. This prestigious event serves as a crucial nexus for the global geoscience community, bringing together researchers, educators, and industry leaders to exchange [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>The Geological Society of America (GSA) has officially announced the call for abstracts for its flagship annual conference, GSA Connects 2026, scheduled to take place from October 11 to 14 in Denver, Colorado. This prestigious event serves as a crucial nexus for the global geoscience community, bringing together researchers, educators, and industry leaders to exchange groundbreaking developments and visionary ideas in Earth sciences. The 2026 meeting promises to delve into transformative themes reflecting both recent advances and the future trajectory of geoscience.</p>
<p>Among the focal points of the conference is the commemoration of a century since the seminal theory of continental drift reshaped our understanding of Earth’s dynamic crustal movements. This theme, &#8220;Celebrating a Century of Continental Drift: Understanding Earth in Motion,&#8221; will explore the intricate processes behind plate tectonics, lithospheric deformation, and the ongoing reconfiguration of continental arrangements. Cutting-edge studies employing paleomagnetic data, geochronology, and seismic tomography will feature prominently, offering insights into Earth&#8217;s evolving geodynamics over geological timescales.</p>
<p>Another core area of investigation centers on river systems and their evolving landscapes, titled &#8220;Riverscapes in Transition: Dynamics, Hazards, and Human Futures.&#8221; This theme highlights the complex interactions between fluvial geomorphology, hydrology, and anthropogenic influences on watershed health and resilience. Discussions will encompass floodplain dynamics, sediment transport processes, geomorphic hazards, and the prospective impacts of climate change on riverine environments. The interdisciplinary nature of this topic urges integration of physical geography, civil engineering, and socio-environmental policy frameworks.</p>
<p>In addition, the session &#8220;Innovations in Exploration from Deep Earth to Deep Space&#8221; aims to showcase technological breakthroughs that extend the frontiers of geoscience exploration. Cutting-edge methodologies in geophysical imaging, remote sensing, planetary geology, and subsurface drilling will be illustrated, underscoring how these innovations are unlocking previously inaccessible data about Earth&#8217;s interior and extraterrestrial bodies. This breadth of focus spans from imaging core-mantle boundary phenomena to characterizing mineralogy on Mars and asteroids.</p>
<p>Abstract submissions for GSA Connects 2026 are invited across nearly 200 specialized technical sessions, reflecting the extensive breadth and vitality of contemporary geoscience research. Submissions not fitting into specific session categories may be directed toward general discipline areas, fostering inclusivity and interdisciplinary collaboration. This comprehensive framework encourages participation from a diverse scientific community, encompassing academic researchers, industry practitioners, government scientists, and early-career scholars. The final submission deadline is set for August 6, 2026, making early preparation essential.</p>
<p>One of the hallmark attractions of GSA Connects is its rigorous technical program. The conference integrates oral presentations, lightning talks, and poster sessions, providing dynamic opportunities for the dissemination of novel findings. These varied formats enable participants to engage deeply with the science across multiple subfields, engage in critical discourse, and forge professional connections that transcend geographical and disciplinary boundaries. The synergy created by this breadth of communication is vital for advancing Earth science knowledge.</p>
<p>Complementing the scientific program are distinguished keynote symposia, including the renowned Pardee Keynote Symposia, which invite eminent experts to discuss transformative topics shaping the future of geoscience. These sessions are designed to provoke critical thought on pressing challenges, such as geo-hazards mitigation, sustainable resource management, and planetary exploration. Such high-profile lectures enrich the conference experience and inspire attendees to push the boundaries of inquiry and application.</p>
<p>Special lectures and a Presidential Address will also be featured, providing strategic perspectives on evolving priorities within the geoscience community. These talks often address overarching themes like diversity and inclusion, science policy engagement, and the integration of geosciences into societal problem-solving. This leadership focus underscores GSA’s commitment to fostering a professional environment that is both innovative and equitable.</p>
<p>An indispensable component of the gathering is the extensive field experiences highlighting Colorado&#8217;s diverse geological landscapes. Participants have the opportunity to explore the iconic Front Range geology and adjacent regions through guided field trips. These excursions contextualize theoretical knowledge by examining fault zones, sedimentary sequences, and mineral deposits in situ, thereby enriching understanding of regional tectonics, sedimentology, and economic geology. Field observations remain a cornerstone of geoscientific education and research.</p>
<p>GSA maintains a firm commitment to inclusivity, safety, and accessibility throughout its events. All participants are expected to adhere to the GSA Events Code of Conduct, which fosters a respectful and professional atmosphere conducive to collaboration and mutual support. This dedication promotes a conference experience where scientific merit and human dignity are paramount, aligning with evolving norms in international scientific gatherings.</p>
<p>As a leading global scientific society with over 18,000 members spanning more than 100 countries, GSA plays an essential role in advancing geoscience research and education internationally. Beyond convening conferences such as GSA Connects, it publishes Geology, a top-tier journal renowned for high-impact papers that shape Earth science discourse. Alongside a suite of scholarly journals, books, and proceedings, GSA’s contributions to scientific publishing are notable for both scholarly rigor and accessibility, influencing audiences from academic researchers to industry professionals.</p>
<p>Through GSA Connects 2026, the geological community is positioned to reflect on a century of discovery while embracing emerging technologies and interdisciplinary approaches. This conference encapsulates the dynamic interface of foundational Earth science and future-oriented exploration, serving as a catalyst for scientific innovation and global cooperation. The anticipated discussions promise to not only advance research frontiers but also inform policies and practices addressing planetary challenges that are increasingly urgent in a changing world.</p>
<p>Prospective participants and interested parties are encouraged to visit the official GSA Connects website for ongoing updates, submission guidelines, and detailed program information. This platform serves as the central hub for all conference-related communications, ensuring widespread engagement and dissemination of vital scientific knowledge. The GSA invites the entire global geoscience community to contribute to and benefit from this unparalleled forum for exchange and discovery.</p>
<p>Subject of Research: Geosciences, Earth Dynamics, River Systems, Exploration Technologies<br />
Article Title: Geological Society of America Announces GSA Connects 2026: A Centennial and Future-Focused Geoscience Conclave<br />
News Publication Date: Not specified<br />
Web References: https://connects.geosociety.org, https://gsameetings.secure-platform.com/connects26/organizations/main/home, https://www.geosociety.org/<br />
Keywords: Geology, Continental Drift, River Dynamics, Geoscience Innovation, Plate Tectonics, Earth Exploration, Geophysical Imaging, Planetary Geology, Scientific Collaboration, Field Geology, Geoscience Conferences, Scientific Publishing</p>
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		<post-id xmlns="com-wordpress:feed-additions:1">167991</post-id>	</item>
		<item>
		<title>Seismic Proof of Oceanic Plate Delamination Offshore Iberia</title>
		<link>https://scienmag.com/seismic-proof-of-oceanic-plate-delamination-offshore-iberia/</link>
		
		<dc:creator><![CDATA[Violet Maxwell]]></dc:creator>
		<pubDate>Wed, 27 Aug 2025 10:28:20 +0000</pubDate>
				<category><![CDATA[Earth Science]]></category>
		<category><![CDATA[broadband seismic data analysis]]></category>
		<category><![CDATA[crust-mantle boundary research]]></category>
		<category><![CDATA[Ibero-Maghrebian seismic study]]></category>
		<category><![CDATA[lithosphere evolution research]]></category>
		<category><![CDATA[mantle convection processes]]></category>
		<category><![CDATA[numerical modeling techniques]]></category>
		<category><![CDATA[ocean-bottom seismometer deployment]]></category>
		<category><![CDATA[oceanic plate delamination]]></category>
		<category><![CDATA[seismic tomography advancements]]></category>
		<category><![CDATA[Southwest Iberia tectonics]]></category>
		<category><![CDATA[subduction zone mechanics]]></category>
		<category><![CDATA[teleseismic event analysis]]></category>
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					<description><![CDATA[Recent advancements in seismic tomography and numerical modeling have unveiled compelling evidence of oceanic plate delamination occurring offshore of Southwest Iberia, a region of significant tectonic complexity. This innovative research integrates a vast array of seismic data and sophisticated simulations to illuminate the subsurface dynamics driving this geodynamic phenomenon. Delamination, the peeling away or removal [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>Recent advancements in seismic tomography and numerical modeling have unveiled compelling evidence of oceanic plate delamination occurring offshore of Southwest Iberia, a region of significant tectonic complexity. This innovative research integrates a vast array of seismic data and sophisticated simulations to illuminate the subsurface dynamics driving this geodynamic phenomenon. Delamination, the peeling away or removal of dense oceanic lithosphere from the underlying mantle, is a process critical to understanding plate tectonics, mantle convection, and the evolution of the Earth’s lithosphere. The study harnessed cutting-edge seismic tomography and numerical techniques to provide unprecedented detail into this elusive process, advancing our grasp of subduction zone mechanics and continental margin evolution.</p>
<p>The seismic tomography model underpinning this research was assembled from an extensive dataset collected between 2007 and 2013, involving 387 broadband land stations spread throughout the Ibero-Maghrebian region. Importantly, the study incorporated data from 24 ocean-bottom seismometers deployed offshore Southwest Iberia during the NEAREST experiment, alongside instruments from the TOPOMED project, enhancing offshore ray coverage. Analyzing over 25,000 arrival-time residuals from 451 teleseismic events with magnitudes exceeding 5.5, researchers meticulously constructed a detailed velocity model extending from the crust-mantle boundary (the Moho) to depths of 800 kilometers. This comprehensive dataset was foundational in resolving fine-scale structures in the upper mantle, critical for identifying delamination signatures.</p>
<p>Seismic wave travel times were initially aligned and filtered to isolate relevant signals, followed by an adaptive stacking procedure that refined the seismic phase arrival estimates. The innovative use of the FMTOMO package allowed for the iterative inversion of these time residuals, solving the forward travel-time problem through a grid-eikonal method known as the Fast Marching Method. This approach uncovers three-dimensional variations in seismic wave velocity that correspond to temperature, compositional, and structural heterogeneities deep within the Earth. Crucially, the inversion accounted for crustal effects using a prior three-dimensional model (PRISM3D), which corrected for topographic and velocity variations in the crust that might otherwise distort mantle imaging.</p>
<p>To evaluate the robustness of the tomography results, a synthetic spike resolution test was performed. This numerical experiment introduced pairs of velocity anomalies with known properties into the starting model to test whether these features could be reliably recovered by the inversion process. The successful identification of these synthetic anomalies in the output model confirmed the high accuracy and resolution of the seismic imaging, particularly for uppermost mantle structures near 90 kilometers depth. This accomplishment lends strong support to the interpretation that the imaged high-velocity anomalies offshore Southwest Iberia represent genuine lithospheric structures consistent with delaminated oceanic material.</p>
<p>Complementing the seismic imaging, the research team employed advanced numerical modeling to explore the mechanics of oceanic plate delamination. Using the computational platform Underworld, they simulated the coupled processes of momentum, mass conservation, and thermal evolution under realistic boundary conditions. The models solve governing equations of fluid dynamics and heat transfer, incorporating nonlinear rheologies governed by temperature, pressure, and strain-rate-dependent viscosity. Importantly, the mechanical behavior includes viscoplastic deformation, with yielding determined by a Drucker–Prager criterion that accounts for frictional failure and plastic strain weakening. This detailed formulation allows the model to capture complex interactions between brittle fracture, ductile flow, and thermal weakening—all critical for realistic simulation of lithospheric peeling.</p>
<p>The numerical experiments were conducted within a large two-dimensional domain measuring 2,800 kilometers in length and 660 kilometers deep, discretized with thousands of finite elements to ensure fine spatial resolution—down to 1.25 kilometers within the lithosphere. The modeled geometry includes two contrasting oceanic plates: a thicker, older Africa-like plate beneath the southern part of the model, and a younger, thinner Eurasia-like plate to the north. Notably, the younger plate incorporates a serpentinized mantle layer, a low-viscosity zone prone to weakening, reflecting real geological observations from seismic refraction profiles. These contrasting lithospheric features create conditions conducive to delamination under tectonic compression.</p>
<p>To simulate natural convergence, a slow northward velocity of 8 millimeters per year was imposed on the African-like plate, with the Eurasian-like plate fixed in place, replicating the Cenozoic Africa–Eurasia plate motions. Multiple scenarios were tested, varying the presence and thickness of serpentinized layers and vertical weak zones that represent inherited faults or fractures. Models with two vertical weak zones evenly spaced and a 10-kilometer-thick serpentinized weak layer best matched observed seismic data and geological constraints, faithfully reproducing the delamination process. These results underscore the critical role of preexisting lithospheric weaknesses and compositional heterogeneities in facilitating such complex tectonic behavior.</p>
<p>The simulations illuminate the dynamic progression of delamination, showing that gravitational forces and induced stresses cause the dense oceanic lower lithosphere to detach and sink into the mantle. This peeling away disrupts isostatic equilibrium and modifies mantle flow patterns, potentially triggering volcanism and seismicity. Notably, the study also explored the influence of stopping convergence after 18 million years, finding that delaminated blocks may continue sinking under gravity alone, highlighting the interplay between tectonic forcing and buoyancy-driven dynamics. This insight refines previous conceptions of delamination duration and its feedbacks with surface tectonic processes.</p>
<p>The decision to pursue a two-dimensional modeling approach was strategic. The elongated geometry of the delaminating structure, oriented perpendicular to the convergence direction, supports the assumption of plane-strain symmetry. Moreover, focusing on a simplified framework enabled systematic parametric studies of key controlling mechanisms without the computational burden and complexity of full three-dimensional modeling. While three-dimensional effects are expected in nature, this minimalistic modeling provided essential physical understanding, serving as a proof-of-concept to test hypotheses derived from seismic observations.</p>
<p>Advanced rheological formulations underpin the simulations, with effective viscosity calculated via experimentally derived flow laws that incorporate activation energy and volume, stress exponent, and temperature dependence. The models capture the transition from ductile creep at high temperatures and pressures to brittle failure at shallower depths. Incorporation of strain weakening mimics the progressive loss of strength as deformation accumulates, reproducing realistic lithospheric weakening that fosters delamination initiation. These physically based constitutive laws enhance model fidelity and predictive power, bridging laboratory rheology and geodynamic processes.</p>
<p>Thermomechanical coupling is central to the model, with temperature evolution governed by an advection-diffusion equation incorporating shear heating and adiabatic heating terms. Shear heating arises from viscous deformation work, while adiabatic heating relates to compression under mantle conditions. These thermal effects modify viscosity and density distributions, feeding back into deformation patterns and delamination progression. This coupling mirrors natural conditions where thermal and mechanical processes are intertwined, adding another layer of realism to the model outcomes.</p>
<p>The integration of seismic tomography and numerical modeling in this study represents a pioneering approach in geosciences, shedding light on complex lithosphere-mantle interactions offshore Southwest Iberia. The high-resolution seismic images confirm the presence of a dense, high-velocity anomaly interpreted as a delaminated oceanic slab fragment descending into the mantle, while the sophisticated simulations reveal governing physical mechanisms and key parameters controlling the process. This dual methodology sets a benchmark for future multidisciplinary investigations of plate dynamics in regions where direct observation is impossible.</p>
<p>Findings from this research have profound implications beyond Southwest Iberia. Understanding oceanic plate delamination is fundamental to deciphering tectonic regime changes, intraplate volcanism, seismic hazard, and mantle-driving forces globally. The observed link between inherited lithospheric fabrics, serpentinization, and delamination initiation offers new perspectives on how plate weakening modulates large-scale Earth dynamics. Moreover, the study emphasizes the importance of integrating seismological, geological, and numerical evidence to unravel deep Earth processes, inspiring a holistic paradigm in geodynamics.</p>
<p>Looking ahead, the research team envisions extending their framework to incorporate three-dimensional geometries, anisotropic material properties, and coupling with surface processes such as erosion and sedimentation. Such enhancements will enable even more detailed reconstructions of lithospheric evolution and its surface manifestations. Furthermore, applying similar approaches to other convergent margins worldwide can test the ubiquity and variability of delamination phenomena, providing a richer understanding of the Earth’s tectonic mosaic.</p>
<p>The multidisciplinary nature of this breakthrough underscores the synergy emerging in Earth sciences as computational power increases and data acquisition evolves. Combining dense seismic observations with cutting-edge modeling tools allows scientists to “see” and simulate hidden processes shaping our planet’s lithosphere. Studies like this herald a new era where theory, observation, and computation converge to solve longstanding geodynamic puzzles, with promising impacts on hazard assessment, resource exploration, and fundamental Earth science.</p>
<p>In conclusion, the seismic evidence for oceanic plate delamination revealed offshore Southwest Iberia not only solves an important regional geodynamic mystery but also opens pathways for novel explorations into plate tectonics and mantle convection. The coupling of meticulous seismic imaging and robust numerical simulations demonstrates the power of integrative science in unraveling the deep Earth’s secrets. As we push the limits of resolution and computational sophistication, our planetary understanding becomes ever clearer, revealing the dynamic tapestry beneath our feet.</p>
<hr />
<p><strong>Subject of Research</strong>:</p>
<p><strong>Article Title</strong>:</p>
<p><strong>Article References</strong>:<br />
Duarte, J.C., Riel, N., Civiero, C. <em>et al.</em> Seismic evidence for oceanic plate delamination offshore Southwest Iberia. <em>Nat. Geosci.</em> (2025). <a href="https://doi.org/10.1038/s41561-025-01781-6">https://doi.org/10.1038/s41561-025-01781-6</a></p>
<p><strong>Image Credits</strong>: AI Generated</p>
<p><strong>DOI</strong>:</p>
<p><strong>Keywords</strong>:</p>
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