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Oliver Strimpel

@geologybites.bsky.social
323 followers 9 following 54 posts

I present the Geology Bites podcast. There are now 128 episodes, each about 30 minutes long, with new episodes appearing every 3-4 weeks. Listen and subscribe at geologybites.com or on your preferred podcast app.

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Oliver Strimpel @geologybites.bsky.social · 02/10/2026
🧪⚒️Tiny grains of coesite — quartz that forms only at pressures found about 100 km down — turned up in rocks of western Norway. On the new Geology Bites, Torgeir Andersen explains how buoyant continental crust got that deep, and how it came back. geologybites.com/torgeir-andersen #geology
Eclogite in Vårdalsneset, in the Western Gneiss Region of Norway.  In the Western Gneiss Region of Norway, eclogite occurs in pods within the prevailing grey granitic gneiss.  The pale green matrix is omphacite, a sodium-rich pyroxene, studded with dark red garnets.  The rock began as a gabbro or dolerite intruded into Baltican continental crust long before the Caledonian orogeny, and was converted to eclogite when that crust was dragged to great depth.  As Andersen explains in the podcast, eclogite is denser than the mantle; its "life belt" is the lighter granitic gneiss that encloses it. Ultrahigh-pressure metamorphic rocks around the world.  All were formed by subduction zones, and most lie in mountain belts built by continental collision, such as the Caledonides, the Alps and the Himalaya.  Most formed within the last 540 million years or so.  The oldest, in Brazil and Mali, are about 650–620 million years old; the youngest, in the D'Entrecasteaux Islands of Papua New Guinea, described in the podcast, are less than 10 million years old.

Compiled from:
Liou, J.G. et al. (2004), International Geology Review, 46, 1
Liou, J.G. et al. (2009), Journal of Asian Earth Sciences, 35, 199
Warren, C.J. (2013), Solid Earth, 4, 75, and subsequent reportsA) During the Scandian collision — the final phase of the Caledonian orogeny, when Baltica itself collided with Laurentia — about 435–405 million years ago, the leading edge of Baltica — the Western Gneiss Complex (WGC), shown in pink on the map above, together with the rock sheets already stacked on it — was dragged westward beneath Laurentia by the sinking plate it was attached to.  Higher rock sheets were thrust eastward over Baltica, building the wedge labelled at the top. The dashed line marks the surface along which the buried rocks, in its footwall, would later return, sliding up past the hanging wall above. 

Brueckner, H.K. et al. (2013), Lithosphere, doi: 10.1130/L256.1(B) By about 405 million years ago, the descending slab had broken off.  As Andersen explains in the podcast, once released from its heavy anchor the buoyant continental crust rose back along the former subduction zone, while the whole mountain belt stretched and collapsed, bringing the ultrahigh-pressure rocks up to shallow depths.  Note that green here is the mantle, not the rock sheets shown in green on the map above.
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Oliver Strimpel @geologybites.bsky.social · 27/08/2026
🧪⚒️New Geology Bites: Brian Wernicke of Caltech on the Basin and Range. Where plates collide you get mountain belts. Where they stretch, the evidence is usually buried under sediment. Nevada is the great exception: crust pulled out to twice its original width, still on open view. geologybites.com
Google Earth image of a portion of the northern Basin and Range province in Nevada and Utah.  Great Salt Lake is visible in the upper right.  The pattern of repeating mountain ranges and valleys is apparent, which gave rise to the famous 1876 description by CLarence Dutton, the US Geological Survey geologist, that the ranges appeared to him as an army of caterpillars crawling northward out of Mexico.Map showing the location of the Basin and range province in North America.

Kathleen SmithThe Amargosa detachment fault, Black Mountains, Death Valley, California.  The dashed line running up to the right is the detachment itself — a fault so gently inclined that it lies almost along the hillside rather than cutting across it.  Above it sit ordinary upper-crustal volcanic rocks and sediments; below it, gneisses and marbles that were once fifteen kilometres or more beneath the surface, crushed to breccia by the passage of the rocks above.  Sliding along faults like this are how the deep crust was brought to the surface during extension, with the upper crust sliding away above them.

The second dashed line, running along the base of the range, is the modern range-front fault — a younger, much more steeply dipping structure that cuts off the old detachment where the two meet.  This is the overprinting Wernicke describes in the podcast: the older exhumed terrains are chopped up by the younger Basin-and-Range faults, so the same deep-crustal rocks now stand at the summits of some ranges and lie kilometres beneath the floors of the neighbouring valleys.  Vertical relief in the view is about 1,600 m.GPS velocity field: Color relief map of central and northern Basin and Range showing continuous GPS velocity field of sites from the Basin and Range geodetic network (BARGEN) from 1996 to 2006, relative to a fixed Colorado Plateau.  Velocities increase westward and rotate northwest in sympathy with NW right-shear on the San Andreas fault zone, reaching values of 10 to 20 millimeters per year on the Sierra Nevada/Great Valley block. 

 Wernicke, B. et al. (2008), Journal of Geophysical Research, 113, B11409
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Oliver Strimpel @geologybites.bsky.social · 22/08/2026
🧪⚒️Video edition now up: Sara Pruss on the first reef builders. Archaeocyaths — the sponges that built the first animal reefs, in the Early Cambrian — were gone by the Middle Cambrian. Today's corals didn't appear until the Middle Triassic. www.youtube.com/@geology_bit... #paleontology #geology
In this closeup of an upper Harkless Formation archaeocyath reef, the cup architecture of the archaeocyath skeleton can be seen, mostly as cross-sections of cones.Phosphatized internal molds of archaeocyaths from the upper Salaagol Formation in southwestern Mongolia.

Pruss, S. B. et al. (2019), Palaeogeography, Palaeoclimatology, Palaeoecology 513, 166
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Oliver Strimpel @geologybites.bsky.social · 22/07/2026
Geology Bites now has a second YouTube channel with produced video versions of episodes — visuals that really support the discussion. First up: Keith Klepeis on how plutons form, and Hal Levison on the Lucy mission to Jupiter's Trojan asteroids. youtube.com/@geology_bites_video
Hal Levison on the Mission to Jupiter’s Trojan Asteroids
There are many unanswered questions about the early history of the Solar System.  In the podcast, Hal Levison explains why the Trojan asteroids of Jupiter offer us the best opportunity to address some of these, and, in particular, to discriminate between the various models of early Solar System evolution.  And that is why a spacecraft called Lucy is now well on its way to a rendez-vous with these asteroids.

Levison is the Principal Investigator of the Lucy mission and Chief Scientist in the Department of Space Sciences at the Southwest Research Institute in Boulder, Colorado.Keith Klepeis on How Plutons Form
Keith Klepeis describes how magma travels from the base of the crust to the upper crust forming conduits, feeder dykes, and mushroom-shaped intrusions along the way.  Many of his discoveries come from a region that provides an exceptional window into the origin, evolution, and structure of plutons – the Southern Fiordland region of New Zealand’s South Island.

Klepeis is a Professor in the Department of Geography and Geosciences at the University of Vermont.
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Oliver Strimpel @geologybites.bsky.social · 17/07/2026
New Geology Bites episode: geophysicist Bernhard Steinberger on whether hotspots are fixed. Hotspots like Hawaii's were long assumed to sit still. They don't — each drifts on its own. Yet they can still anchor a reference frame for plate motion. 🎧 geologybites.com #geology #geophysics #science
Computed tracks and hotspot motions for Hawaii (top) and Louisville (bottom), from mantle-flow models in which the hotspots are either fixed (black lines) or allowed to move (orange lines).  The rainbow lines show the modeled drift of each hotspot over the past 120 million years; the orange lines show the resulting tracks.  Both models account for the sharp bend in the Hawaiian–Emperor chain and the subdued bend in the Louisville chain, however the model with moving hotspots explains the age progressions along the tracks better: while the Hawaiian hotspot moved southward at about 35 mm per year before 47 million years ago, the Louisville hotspot drifted slowly eastward, shrinking the distance between the two by roughly 1,000 km.  The two great Pacific hotspots did not move in concert — the clearest demonstration that hotspots are not fixed relative to one another."

Koppers, Duncan & Steinberger (2004), Geochemistry, Geophysics, Geosystems, 5, Q06L02.Modelling the formation of plumes.  Schematic representation of the mantle suggesting that plumes are anchored to the large low shear-wave velocity provinces (LLSVPs) — vast, dense thermochemical piles sitting on the core–mantle boundary beneath Africa and the Pacific.  Subducted slabs sink through the mantle — some, like the Marianas slab, plunging straight through the mantle transition zone, others, like the Honshu slab, flattening and stagnating on the way — and take around 200 million years to reach the bottom.  As they arrive, they bulldoze hot material at the base of the mantle ahead of them until they reach a LLSVP.  There, at the "plume generation zone" along the pile's margin, the displaced hot material is forced upward and can begin to rise as a mantle plume.  Because the plumes are rooted in the sluggish lowermost mantle, the hotspots they feed are relatively — but, as Steinberger explains in the podcast, not absolutely — fixed.  The figure shows the plume erupting at the surface (top left) and contributing to a large igneous province (LIP).  ROC: recycled oceanic crust; ULVZ: ultra-low velocity zone.

Torsvik et al. (2021),  AGU Geophysical Monograph 263.Predicted motions of the Hawaii, Louisville, Tristan, Réunion, and Kerguelen hotspots over the past 40 million years, from Steinberger's modeling of plume conduits advected in mantle flow.  Each hotspot moves at around a centimeter per year, but in a direction and at a speed set by where it sits within the mantle's convection pattern — there is no rigid grid, and, as Steinberger cautions in the podcast, no neat division into a "Pacific group" and an "Atlantic group" either, although Pacific hotspots do tend to acquire a component of motion opposite to plate motion, driven by the mantle return flow caused by subducting slabs at depth.  It is by computing motions like these, and building them into a “moving hotspot reference frame" that plate motions can still be tied to the deep mantle — the resolution of the episode's opening question.

Steinberger & O'Connell (1998), Geophysical Journal International, 132, 412–434.Applying the independently known relative motion between two continents — determined from the magnetic striping of the sea floor that spread between them — brings their separate apparent polar wander paths (APWP) into coincidence, confirming that the paths record real plate motions. In the same way, the continents can be rotated back through time in a mantle reference frame: one anchored to the deep mantle via the hotspot tracks, with the computed motions of the hotspots themselves taken into account.  What remains after those rotations — the shared, residual wander of the pole — is the true polar wander path: the reorientation of the entire mantle relative to the spin axis.  The view shown here is from the North Pole (black dot) looking down.  The outer circle is the equator.  

Figure courtesy of Earle, S, Physical Geology
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Oliver Strimpel @geologybites.bsky.social · 28/05/2026
🧪⚒️New episode: Steve Brusatte on the dinosaurs that survived the asteroid. All dinosaurs and most birds perished. Brusatte describes what the fossil record tells us about the survivors — beaks not teeth, very rapid maturation, digestive systems with a crop and gizzard, and small body size.

Birds with Teeth
The first birds had teeth.  As birds’ digestive systems evolved to take on some of the functions performed by teeth, such as grinding food, birds lost their teeth while their beaks evolved to become dexterous tools for manipulating and crushing foods such as seeds and nuts.  Clockwise from top: Archaeopteryx skull visualized by CT scan; the enantiornithine Zhouornis; closeup of teeth of the enantiornithine Longirostravis, and the Cretaceous diving bird Hesperornis. 

Larry Witmer; Zhang et al., (2014), PeerJ; Clark et al., (2023), PeerJ; Steve BrusatteThe oldest known bird, Archaeopteryx, discovered in the 1860s and displayed in the Museum für Naturkunde in Berlin.  At 150 million years old, it is considered to be the most anatomically archaic member of the group called Aviale, the group that includes modern birds and other species more closely related to them than to other coelurosaur dinosaurs with feathers, such as Microraptor and Velociraptor.  It is a bird because it has feathers and wings, but it also retains archaic features that modern birds do not have, such as teeth instead of a beak, raptor dinosaur claws, and a long tail.

H. Raab
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Oliver Strimpel @geologybites.bsky.social · 30/04/2026
🧪⚒️ Two new Geology Bites episodes. Steve Jacobsen on Materials in Extreme Environments, i.e., the core-mantle boundary, mantle transition zone, and lunar surface. And Alec Benner on When Tectonic Plates First Moved — his paleomagnetic studies found relative movement between 2 cratons at 3.5 Ga.
A key development in the history of the early Earth is the formation of lithospheric plates that move independently of one another.  In this episode, Brenner describes how he used paleomagnetic methods to detect relative motion between two ancient cratons, the East Pilbara and the Kaapvaal, 3.5 billion years ago.  This is a full billion years earlier than any previous such detection, and it enables us to narrow down the kind of tectonics operating in the Paleoarchean.  Of the candidate regimes, episodic subduction models fit his data best.  

Brenner is a Postdoctoral Associate in the Department of Earth & Planetary Science at Yale University.  The image shows him with petroglyphs made by the ancestors of the Nyamal people in the East Pilbara, Western Australia.Brenner’s Results
The paleomagnetic studies showed that between 3,481 million years ago (Ma) and ~3,475-3,451 Ma, the East Pilbara craton moved from a latitude of 53°N to about 77°N at a rate of very roughly 47 cm/year.  This is comparable to the fastest plate motions observed today.  Over the same period, other workers have shown that the Kaapvaal craton in South Africa did not move in latitude.  This is evidence that the two crustal blocks were moving independently of each other, with some kind of a boundary between them.  This is a full billion years before any previous such detection.  
Artist's rendering of ICON's Project Olympus concept for 3D-printing a landing pad on the lunar surface using local regolith.  In the podcast, Jacobsen describes how his group is helping to develop the materials science behind this kind of additive manufacturing — using lasers to melt simulated lunar soil into solid building material, one layer at a time. 

ICONThe Z Machine during a discharge, captured in a long-exposure photograph. The impressive branching arcs and blue-white glow are produced by the intense electromagnetic fields ionising the surrounding air — essentially energy leaking from the machine during the pulse.  The actual experiment is hidden from view, taking place inside a sealed target chamber at the centre.

Sandia National Laboratories
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Oliver Strimpel @geologybites.bsky.social · 26/03/2026
🧪⚒️Just posted Esther Sumner on turbidity currents. These often vast flows form turbidites that are very common in the geological record. Her team flew an ROV through a live turbidity current off the Calif coast.

Turbidity currents often flow down submarine canyons.  Such canyons are erosional conduits that enable sediment to be transported from the terrestrial and shallow marine environment out into the deep sea.  In the diagram, the vertical scale is greatly exaggerated. 
Encyclopaedia Britannica, Inc. 
When the submarine canyons reach the deep sea, the sediment they carry can be deposited as submarine fans.   These are some of the largest sediment accumulations on Earth.  In the podcast, Sumner explains that the Bengal fan is composed of sediments from many millions of years of erosion of the Himalayas.The Monterey Canyon is a submarine canyon off the west coast of California.  Together with the Monterey Bay Aquarium Research Institute, Sumner has been involved with several studies of turbidity currents there.  In the cross sections at left, the vertical scales are greatly exaggerated but the same in both sections, showing that the Monterey Canyon is similar in scale to the Grand Canyon.

Base map made with GeoMapApp (www.geomapapp.org) / CC BYIn the podcast, Sumner describes the day when she was aboard a ship operating the remotely operated vehicle (ROV) Doc Ricketts, which is the size of a small car.  Equipped with strong lights, it can descend to a depth of 4,000 meters.  

https://www.mbari.org/
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Oliver Strimpel @geologybites.bsky.social · 06/03/2026
Oliver Strimpel ‪@geologybites.bsky.social‬ 🧪⚒️Animation showing the leading and trailing swarms of Trojan asteroids (green) on either side of Jupiter (yellow). The inner planets Mars (red), Earth (blue), Venus (white), and Mercury (brown) are also shown.
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Oliver Strimpel @geologybites.bsky.social · 06/03/2026
🧪⚒️Just posted Hal Levison on the mission to Jupiter's Trojan asteroids. These fossils of the early Solar System offer the best means of distinguishing rival theories of Solar System evolution.
he first body approached by Lucy in 2023 was an asteroid named Dinkinesh in the main asteroid belt.  Although primarily intended as a test of Lucy’s instruments, it turned out to be an interesting object in its own right.  Imagery from Lucy’s L’LORRI revealed a satellite that is itself a contact binary.Lucy’s two solar panels are the largest part of the spacecraft, each measuring 7.3 m in diameter.  These are needed as Lucy is going further from the Sun than any previous solar-powered mission. Computer simulations predict that the orbit that takes Lucy to its final encounter with Patroclus in the trailing Trojan swarm is stable with an average lifetime of 2 million years.  At its farthest from the Sun, it reaches the orbit of Jupiter, and at its closest to the Sun, it flies just within the orbit of the Earth.  Levison and the Lucy team decided to place a plaque on Lucy intended as a message to our distant descendents.  By contrast, the Pioneer and Voyager spacecraft are traveling away from the Solar System, and therefore their plaques were designed to tell aliens about our existence and civilization.
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Oliver Strimpel @geologybites.bsky.social · 13/02/2026
🧪⚒️ I just posted an episode on the first reef builders with Sara Pruss of Smith College. These were sponges with skeletons. Their reefs fostered biodiversity, contributing to the Cambrian explosion. Listen, and give me feedback. #paleontology #earthscience
Archaeocyatha were sessile, filter-feeding, calcareous, sponge-like organisms, characterized by a conical, vase-shaped, or cylindrical skeleton. Their structure consisted of two porous, nested calcite cones (inner and outer walls) separated by a space called the intervallum, which contained vertical plates (septa, taeniae) or horizontal plates (tabulae).  Root-like structures at the bottom (holdfast) secured them in place.

https://alchetron.com/ArchaeocyathaPrimary reef builders during the Neoproterozoic (Ediacaran) and early Paleozoic (Cambrian, Ordovician, and Silurian).  The Neoproterozoic is primarily dominated by microbial organisms including the stromatolites (see Geology Bites episode with Martin Van Kranendonk).  The Cambrian is dominated by a variety of sponge organisms including the archaeocyaths.  In the Ordovician and Silurian, coral and stromatoporoid species became the dominant reef builders.  The red star denotes the approximate interval of the Mongolian reefs where some of the best-preserved archaeocyath reefs are found.

Cordie, D. R. et al. (2019), Palaeogeography, Palaeoclimatology, Palaeoecology 514, 206Phosphatized internal molds of archaeocyaths from the upper Salaagol Formation in southwestern Mongolia.

Pruss, S. B. et al. (2019), Palaeogeography, Palaeoclimatology, Palaeoecology 513, 166Modern calcareous sponges provide the closest analog to the archaeocyaths. 

https://www.inaturalist.org/taxa/60583-Calcarea
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Oliver Strimpel @geologybites.bsky.social · 20/01/2026
🧪⚒️ I just released an episode with Michael Manga of UC Berkeley on how water affects volcanic eruptions, both here on Earth and elsewhere in the Solar System. The prime exhibit here is the 2022 Hunga Tonga eruption, the most powerful in a lifetime. Hope you enjoy listening!
Hunga Tonga eruption on 15 January, 2022, was the largest eruption in our lifetimes.  The plume reached a height of 58 kilometers and the explosion was heard in Alaska, 8,000 km away.  The explosive power stemmed from the conversion of thermal energy to kinetic by the sudden conversion of a large amount of water to steam.  The eruption took place at a depth of 850 meters, well above the ~2,200-meter depth below which the pressure is too great for magma to create steam.  The image at right and the time-lapse videos below show the spreading of the volcanic ash in the atmosphere.  Eventually that ash falls down to the surface. As basaltic lava flows cool under ice, meltwater flows around the lava and this affects the direction of the thermal gradient.  Columns appear at right angles to the steepest temperature gradient as the basalt cools and contracts.  The chaotic directions of the columns in this lava flows in southern Iceland reflects this interaction between the lava, ice, and meltwater.Hunga Tonga eruption on 15 January, 2022, was the largest eruption in our lifetimes.  The plume reached a height of 58 kilometers and the explosion was heard in Alaska, 8,000 km away.  The explosive power stemmed from the conversion of thermal energy to kinetic by the sudden conversion of a large amount of water to steam.  The eruption took place at a depth of 850 meters, well above the ~2,200-meter depth below which the pressure is too great for magma to create steam.  The image at right and the time-lapse videos below show the spreading of the volcanic ash in the atmosphere.  Eventually that ash falls down to the surface. The depth at which an eruption occurs determines the style of eruption.  The Hunga Tonga eruption occurred at the relatively shallow depth of 150-200 meters below the ocean surface.  The magma fragmented on its way up to the vent, creating a large surface area for contact between magma and water.  This caused a very large volume of steam to be generated that greatly magnified the explosive power.  The Havre eruption started at about 850 meters below the surface where the pressure was high enough to inhibit steam formation.  The erupting magma remained coherent and formed clasts of pumice as it emerged, some of which were buoyant enough to float and form rafts, while the rest fell to the seafloor as giant clasts.  In its later phases, the eruption moved to depths of over 1,000 meters, and the magma emerged effusively in thick flows forming a dome on the seafloor. 

Manga, M. et al. (2018), Earth and Planetary Science Letters, 489, 49
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Oliver Strimpel @geologybites.bsky.social · 25/12/2025
🧪⚒️ Just posted: Carina Hoorn on the evolution of the Amazon basin. It was the rise of the Andes and the subsidence induced by the subduction under S. America's W coast that drove diversification. Listen and find out why. #geology #earth #Amazon
Amazonian blackwater lake (left), rainforest, and whitewater river.  The whitewater river is laden with sediments from erosion of the Andes.

Photo Rhett A. Butler for MongabayMiocene fossil palm pollen grain (40 µm across) from the Pebas Wetland System.  This species and others found with it are characteristic of lacustrine-estuarine conditions with wetland vegetation, peripheral forest, and a diverse aquatic fauna.  The Amazon pink dolphin Inia geoffrensis is derived from a marine species.

Michel ViardModern plants that are still distributed in the former marine incursion pathway which is thought to have left a geochemical imprint in the soils on top of the Solimões/Pebas formation.  It has been shown that the bedrock and soils of the Pebas/Amazonas are much richer due either due to general chemistry or chemistry related to marine incursions.
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Reposted by Oliver Strimpel
Carnegie Science @carnegiescience.bsky.social · 30/10/2025
How do planets get wet? 💦 A new study in @Nature, led by Carnegie’s Anat Shahar & #CarnegieAlum Francesca Miozzi (now at @ethz.ch), shows that water can form naturally during planet formation when hydrogen-rich atmospheres meet molten rock. No comets required. (1/9) 👉 bit.ly/48QEOXr
bit.ly
How do planets get wet? Experiments show water creation during planet formation process
Our galaxy’s most abundant type of planet could be rich in liquid water due to formative interactions between magma oceans and primitive atmospheres during their early years. New experimental work…
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Oliver Strimpel @geologybites.bsky.social · 03/12/2025
🧪⚒️Just released: Anat Shahar of Carnegie Science on what makes a planet habitable. Her work shows that water may be very common on rocky exoplanets as a result of interaction between a hydrogen atmosphere and a magma ocean. #geology #exoplanets
Diagram showing the boundaries of the habitable zone for stars of different surface temperatures.  The habitable zone is defined as the zone in which liquid water can exist.  The models on which these results are based include the effects of greenhouse gases in the atmosphere, tidal locking, and other effects, some of which involve complex feedback mechanisms.  These effects mean that at any given level of starlight incident on the planet, the habitable zone boundaries depend upon the temperature of the star, which is why the habitable zone boundaries are curved in the diagram.  Various planets within our solar system are shown, along with selected exoplanets. 

Kasting, J.F., et al. (2013), PNAS 111 (35) 12641Photomicrograph of the diamond anvil used in Shahar’s high-pressure experiments.  Between the diamond tips is a gasket that holds a silicate magma ocean-like sample prepared in the lab and the hydrogen.  The diamonds are between 1/2 to 1 carat in size with the tip facing the sample being about 300 microns across.Interaction of a hydrogen-rich gas with a magma ocean.  Left: hydrogen dissolves in the magma ocean and  water is produced in the magma through the reduction of iron oxide.  Right: on a small body that is not fully molten,  water may only be produced where molten magma (red) is present.  The other colors represent the rest of the differentiated planetesimal.

Courtesy of Francesca MiozziConceptual illustration of three possible scenarios for interior–atmosphere interaction in big planetary bodies, often referred to as sub-Neptunes (between 1 and 17 Earth masses).   Left: free fluid water and Fe-enriched blebs are entrained in the magma ocean.  Centre: water is outgassed to create a steam atmosphere while the Fe-enriched blebs sink toward the centre.  Right: extreme scenario in which all phases are miscible.

Courtesy of Francesca Miozzi
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Oliver Strimpel @geologybites.bsky.social · 13/11/2025
🧪⚒️Just posted Keith Klepeis on how plutons form. He identified conduits, feeder dikes, and mushroom-shaped sheets that form as magma rises from the base of the crust to the upper crust. A tilted batholith in NZ provided him with a rare continuous exposure of 20 km of crustal section. #geology

Block diagram showing the internal components of the Misty pluton, which is one of the plutons of the Southern Fiordland batholith.  A conduit rising through the lithospheric mantle feeds a sheet-like basalt structure, which in turn connects to steep-sided granitic bodies in the middle and upper crust (colored in mauve and pink).Schematic cross section of an active continental margin subduction zone, showing the dehydration of the subducting slab, hydration and melting of a heterogeneous mantle wedge (including enriched sub-continental lithospheric mantle), and crustal underplating of mantle-derived melts.  Remelting of the underplate to produce tonalitic magmas and a possible of crustal melting are also shown.  As magmas pass through the continental crust they may differentiate further and/or assimilate continental crust.

Winter (2001) An Introduction to Igneous and Metamorphic Petrology, Prentice HallWestern coastline exposure of the deepest, lower-crustal level shows steep feeder zones and conduits where mafic, crystal-rich magma was injected into lower-crustal diorites.  Most of the rocks in the feeder zone here are hornblendites, which are composed almost entirely of hornblende.  The hornblendites are thought to be modified products of mantle-derived melt.Outcrop of fully-fledged dikes and thick pegmatites that occur away from the base of the Misty pluton.  The coherent structure of the intrusion suggests the magma was emplaced into a fairly well-crystallized host capable of exhibiting brittle-like breaking.  A crystal-rich host results from fractional crystallization and the progressive removal of the remaining melt.  The horizontal alignment of the crystals suggests that the host mush has been compacted and enough melt has been removed to enable the crystals to align.  At the same time, the undulose margins of the dike and the exchange of the dark hornblende crystals across its margin indicate that, although crystal-rich, the host was not fully crystallized and could still exhibit ductile behavior.  This supports the general picture that as the host mush becomes increasingly crystal-rich as melts are gradually extracted, the dikes that move magma through the crystallizing mush become more organized and regular in shape.   The dyke here is about 30 cm across.
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Oliver Strimpel @geologybites.bsky.social · 23/10/2025
🧪⚒️In the latest Geology Bites podcast episode I talk to MIT's Tom Herring about high-precision geodesy. Nowadays, this means mm-level accuracy. The cost has plummeted and we'll probably see this in our phones soon. We talk about measuring plate motions, earthquake slow slip, and more. #geology
GPS velocity field with respect to the Eurasian plate.  The red vectors indicate data from a network of Chinese GPS receivers and the pink vectors are from other published results.  Such results help constrain the various theories as to how the northward movement of India is accommodated.  One particular controversy is the degree to which the movement is accommodated by slip along major bounding faults, such as the Karakoram fault or the Altyn Tagh fault.  These results generally favor continuous crustal deformation rather than major movement along the faults. 

Wang, W. et al. (2017) Geophysical Journal International, 208, 1088GNSS receiver installed in the Southern Alps of New Zealand to measure uplift rates across the Alps.InSAR observations of the earthquake sequence (a Mw 6.4 foreshock and a Mw 7.1 mainshock), which struck Ridgecrest, southern California in 2019.  The figure shows observed (a, e), modeled, and residual InSAR interferograms.  (b) and (f) are modeled by the best-fitting foreshock-only and (c) and (g) are the corresponding results for the mainshock-only.  The colors denote ground displacement along the line-of-sight from the spacecraft ranging from almost 6 cm (red) to -6m (blue).  A color key is shown at bottom right in (h).  The figures show phase measurements, which wrap through each cycle every 11.8 cm of displacement.  Such measurements reveal a complex pattern of coseismic movement dominated overall by a right-lateral motion.

He, L. et al. (2022), Journal of Geophysical Research: Solid Earth, 127, e2021JB022779
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Oliver Strimpel @geologybites.bsky.social · 06/10/2025
🧪⚒️I just posted an episode on the orogenies that shaped central Europe: the Cadomian and the Variscan. The former took place on the northern margin of Gondwana, rifting north later to dock to Europe. The latter marked the final assembly of Pangea. It's complex, but I hope you enjoy it! #geology
Map of Europe showing the main geological units as defined by their structural origin and presumed terrane provenance.   As the map shows, practically all of central and southern Europe (shaded grey) was derived from Gondwana.  These terranes contain Cadmonian and Lower Paleozoic basement rocks.  The map also shows the main suture zones.  A Alps, AM Armorican massif, B Balkans, BM Bohemian massif, BV Brunovistulia, CIZ Central Iberia Zone, D Dinarides, DO Dobrogea, EC Eastern Carpathians, H Hellenides, IM Iberian massif, IST Istanbul terrane, KB Kirsehir block, MC massif Central, MGCR Mid-German Crystalline Rise, MM Menderes massif, MP Malopolska block, MU Moldanubian unit, OMZ Ossa-Morena Zone, P Pyrenees, R Rhodope, S Schwarzwald, SC Scythian platform, SM Serbo-Macedonian massif, SPZ South Portuguese Zone, SX Saxothuringian unit, TBU Teplá–Barrandian unit, V Vosges.

Sen, F. (2021), International Geology Review 64, 2416There is a debate as to how far the Cadomian terranes, specifically the major Teplá–Barrandian unit of the central Bohemian Massif, traveled away from Gondwana before they accreted to Baltica, eventually to become part of Europe.  These figures illustrate contrasting models that have been proposed.  (a)  In this model there is a large separation between the Teplá–Barrandian unit and Gondwana, and the unit forms a completely detached microplate called Perunica (P).   (b)-(d) In these models, there is little separation, and the Teplá–Barrandian unit remains part of the hyper-extended Gondwana shelf. 

Žák, J et al. (2018), International Geology Review 60, 319A paleogeographic model showing the break-up of the former northern Gondwanan Cadomian active margin in the late Cambrian and early Ordovician, opening of the Rheic Ocean, transition to an early Paleozoic passive margin, and, finally, the Laurussia-Gondwana collision to form the Variscan orogenic belt.  The terranes discussed in the podcast form parts of Avalonia, the Saxothuringian and Ossa-Morena Zones, the Variscan Autochthon, and the Mid-Variscan Allochthon.  The Saxothuringian Zone now makes up the northwestern part of the Bohemian Massif.  The Ossa-Morena Zone now forms part of the Iberian Massif in Spain and Portugal.  The Variscan Autochthon comprises geological units now mainly exposed in southern Europe.  The Mid-Variscan Allochthon  includes the Teplá-Barrandian and Moldanubian units of the present-day Bohemian Massif.  

Catalán, J.R et al. (2021), Earth-Science Reviews 220, 103700Geological map of the present-day Bohemian Massif.  The geological structure is complex, largely as a result of the Cadmonian and Variscan orogenies.  The map covers a region stretching from southern Poland in the north to northern Austria in the south.   It reveals a section across the Variscan orogen from the outer foreland basins (Rhenohercynian) through low-grade Cadomian basement terranes (Saxothuringian and Teplá-Barrandian) to the exhumed high-grade orogenic core (Moldanubian).

Adapted from the Geological map of the Czech Republic 1:5,000,000 published by the Czech Geological Survey, Prague, 2007
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Oliver Strimpel @geologybites.bsky.social · 17/09/2025
🧪⚒️Just released an episode on the dynamics of subduction zones with Claudio Faccenna. Not only do trenches roll back and move laterally, they also advance and flip polarity. But when they penetrate the viscous lower mantle they get locked in place. Enjoy listening!
The figure shows sections of P-wave tomography anomalies along the yellow lines on the map (Fukao & Obayashi, 2013), seismicity (orange dots on profiles; Engdahl et al., 1998), plate velocities (orange vectors; Argus et al., 2011), and volcanoes (cyan inverted triangles; Siebert & Simkin, 2023).  The Western Pacific and Japan subduction zones (the two most northerly zones) do not appear to penetrate the lower mantle, unlike those of Indonesia and Kermadec (north of New Zealand).  Whether a slab penetrates the lower mantle depends on factors such as the duration of subduction and the angle at which the slab reaches the 660-km discontinuity, with steeper angles favoring descent.

Becker, T and Faccenna, C. (2025), Tectonic Geodynamics, Princeton University PressSubduction zones along the west coast of the Americas.  In the podcast, Faccenna described how the slab subducting below the Andes has entered the lower mantle where its lateral movement is restricted by the higher viscosity there.  The subduction zones beneath northern South America and Central America show evidence of penetration into the lower mantle, reaching depths of 1,300 km or more.  By contrast, the younger Caribbean subduction zone does not. 

Becker, T and Faccenna, C. (2025), Tectonic Geodynamics, Princeton University PressLeft: map showing seafloor ages in the western Pacific.  The back-arc basins shown appear mainly as the red and orange regions, i.e., having the youngest ages of 0 and 30 million years.  Center: more detailed seafloor age map of the Izu-Bonin-Marianas region.  Right: P-wave tomography sections along the green lines labeled A, B, and C, revealing the varying shape of the subduction zone going from north to south.

The western Pacific subduction zone is characterized by back-arc extension in the overriding plate that began within the last 30 million years (left panel).  Tomography and seismicity data show that along the Izu–Bonin region (section B1–B2), a double subduction system is present, resulting from subduction of both the Pacific Plate (to the east) and the Philippine Plate (to the west).

Becker, T and Faccenna, C. (2025), Tectonic Geodynamics, Princeton University PressThe Izu–Mariana subduction system is unique in that the trench is advancing toward the overriding plate (right panel).  Bottom left: tomographic section along the red line on the map at right shows the two subducting slabs.  Top left: numerical model of single subduction and double subduction.  The double subduction simulation replicates quite a few features appearing on the tomographic section, such as the apparent flattening out of the subducting slabs between the depths of 400 and 600 km.  In a single-slab system, the trench migrates backward, whereas in a double-slab system, the rear slab drives trench advance.  The simulation also reproduces the tomographic section (bottom left, section along the red line on the map at right), which clearly shows the presence of two subducting slabs.

Faccenna, C. et al. (2018), Tectonophysics, 746, 229
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Oliver Strimpel @geologybites.bsky.social · 17/08/2025
🧪⚒️I just released Cees Van Staal on the Origin of the Appalachians. The story is closely tied to the Caledonian orogeny across the Atlantic. But today's topography stems from the rifting and magmatism of the much later opening of the Atlantic and the recent ice ages ending 10,000 years ago.
Van Staal studying the rocks of the highly deformed basaltic and bonninitic rocks of the c. 490 Ma Advocate ophiolite on the north coast of the Baie Verte peninsula.  These are part of the the Baie Verte ophiolite complexes.  Reconstruction of continental plate locations in the Silurian and Devonian.  Between 420 and 405 Ma, Laurentia moved south at a speed that may have been as fast as 11 cm/year while the Iapetus ocean was subducting beneath the margins of Laurentia.  This led to the collisions of the Caledonian and Appalachian orogenies discussed in the podcast.  AM=Amazonia; WA=West Africa; L=Laurentia; BA=Baltica; SIB=Siberia.
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Oliver Strimpel @geologybites.bsky.social · 22/07/2025
🧪⚒️Just released Andreas Fichtner on the frontiers of seismic imaging. Our images are becoming much sharper— see the episode web page. Really novel is the use of fiber-optic cables to sense seismic waves with unprecedented resolution.
Horizontal slice at a depth of 100 km showing relative variations in the speed of vertically polarized S-waves (Vsv).  The mid-oceanic ridges in the Atlantic and South Pacific show up prominently, as do hot-spot regions with active volcanism, such as Hawaii (H), Iceland (I), the Canaries (C), and La Réunion (R).  The model also shows the contrast between the old, cold cratons and hot spots in Africa.

Thrastarson, S. et al. (2024) RVEAL: A Global Full-Waveform Inversion Model, Bulletin of the Seismological Society of AmericaAt a depth of around 200 km, subducting slabs come into sharper focus.  The figure shows several of these, including the Nazca (N), Cocos (Co), and Caribbean (C) slabs, as well as the almost continuous subduction of the Pacific plate (PP) beneath its neighboring plates toward Asia and Oceania.The slice at a depth of 400 km reveals the subducting slabs that have advanced deeper into the mantle along the direction of subduction. Close to the core-mantle boundary at 2,800 km depth, the slice shows the large low-shear velocity provinces.  These play an important role in our understanding of mantle dynamics and heat transport and are discussed in the podcast episode with Allen McNamara.
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Oliver Strimpel @geologybites.bsky.social · 04/07/2025
🧪⚒️ Just reposting an invitation to listen to the latest Geology Bites episode on the origin of continents. Adding the 🧪⚒️ icons this time. Renée Tamblyn raises fascinating questions about the Archean water cycle and the role of molecular H in powering the first life forms - the archaea.
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Oliver Strimpel @geologybites.bsky.social · 03/07/2025
When the Earth formed, it was covered by a hot magma ocean. So when and how did thick, silica-rich continental lithosphere form? In the podcast, Renée Tamblyn addresses these questions, as well as how Archaean processes created molecular hydrogen that may have powered the first forms of life.
Sample of the Acasta gneiss, the oldest known rock (4.03 billion years old).  It is a deformed tonalite-granodiorite and formed as a member of the type of intrusive rock discussed in the podcast.  These formed the bulk of the early continents — the tonalites, trondhjemites, and granodiorites (TTGs). 

Chip Clark/Smithsonian Institution National Museum of Natural HistoryGraph showing the amount of continental crust over time as predicted by different crustal growth models with time advancing to the left.  The models use a variety of different methodologies and approaches and differ widely in their predictions.  As Tamblyn says in the podcast, the timing of continental crust formation is one of the big unsolved problems in Earth science.  

Korenga, J. (2018), https://doi.org/10.1098/rsta.2017.0408Kaapvaal Craton, South Africa.  The hills are formed of TTGs , which dominate the geological record of the craton.When rocks undergo partial melting, they separate into lighter-colored leucosomes and darker melanosomes.  The leucosomes then segregate themselves from the unmelted rock and, when they cool, form rocks containing predominantly plagioclase feldspar and quartz, i.e., TTG in composition.  In the migmatite shown here, these melts have been frozen during their escape of the parent rock.  The parent rock was a metamorphosed basalt containing garnet and amphibole.

Kendrick, J. et al. (2024), Journal of Petrology, 65, egae066
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Oliver Strimpel @geologybites.bsky.social · 02/06/2025
🧪⚒️Just posted Folarin Kolawole @lamont.columbia.edu on continental rifting. I've always thought that the rifting of continents is a really counterintuitive notion. After teasing out the various early stages with Kolawole and invoking plumes and far-field forces the process makes more sense to me.
Widespread faulting at the rift axis in the Afar region of northern Ethiopia. Locations of active continental rifts with their extension velocities.  In the podcast, Kolawole focuses on the East African rifting that extends from the northeast corner of the continent down to Malawi and Botswana. Though only in its early phase today, Kolawole explains why he thinks the rift will continue to stretch and eventually lead to a full continental breakup.

Heckenbach, E.L. et al.(2021), Geochemistry, Geophysics, Geosystems 22, e2020GC0095777Schematic representation of the mantle plume location beneath East Africa on the basis of seismic tomography.  Plume structure at depth is consistent with the distribution of volcanism shown at left.

Brune, S. et al. (2023), Nature Reviews Earth & Environment https://doi.org/10.1038/s43017-023-00391-3Diagram of the driving forces, resisting factors, and weakening processes that accompany rifting.   In the podcast, Kolawole points out the importance of pre-existing zones of weakness in a continent in determining where rifting initiates.  The block diagram illustrates a preexisting shear zone (1) that can determine a rift location and also break a rift into segments (2).  Faults and shear zones (3) can weaken the crust as can necking and thermal weakening (4).  Shallow intrusion of melt (5) as well as alteration of the rock (6) can also cause weakening.  Outside forces caused by erosion (7) and sedimentation (8) also promote long-lived faulting.
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Oliver Strimpel @geologybites.bsky.social · 11/05/2025
🧪⚒️Just released Mike Hudec on salt tectonics. Amazingly, salt structures can be many tens of kilometers across. And because salt is extremely weak compared to other rocks and minerals, it is the first to deform in the presence of stresses. It's often involved in forming hydrocarbon reserves.
Salt mountain in the Zagros mountains of Iran.  Salt mountain in the Zagros mountains of Iran.  Courtesy of Kayvan Karimi.Salt glacier flowing down a valley in the Zagros mountains, Iran.Block diagram showing the wide range of shapes that salt diapirs can assume.
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Oliver Strimpel @geologybites.bsky.social · 03/05/2025
🧪⚒️Just back from the European Geophyiscal Union conference. The medalist lectures were great and I signed up two medal winners for Geology Bites. One exciting strand was on the planned probes to the icy moons of Jupiter & Saturn. We’ll be melting our way down through km of ice to reach water!
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Oliver Strimpel @geologybites.bsky.social · 13/04/2025
🧪⚒️I just posted an episode on megafloods with Vic Baker, a pioneer in the field. Megafloods are cataclysmic events that devastate the landscape. The Mediterranean Basin was filled by two successive megafloods. And a Black Sea megaflood might be the basis for the Biblical account of Noah's flood.
Until about 425,000 years ago, Great Britain was joined to Europe by a narrow isthmus along the Weald-Artois anticline, a fold consisting of the Cretaceous chalk that is today cut at the cliffs of Dover in England and the Cap Blanc Nez near Calais in France.  As Baker discusses in the podcast, a large glacial lake formed south of an ice cap spanning northern Britain and Scandinavia.  This lake eventually breached the isthmus, resulting in a megaflood that eroded what is now the seafloor below the English Channel into a steep-sided inner channel and plunge pools.Map view (right) and topography (below right) of the Kasei Vallis megaflood channel.  Kasei Vallis is the largest of the Martian outflow channels, about 3,000 km long and up to as much as 400 km wide in the areas shown at right.  Rock basins eroded into Columbia River Basalt at Lenore canyon, Lower Grand Coulee in the Channeled Scabland of Eastern Washington.  Note the roads for scale.Giant current ripples at West Bar, near Trinidad, Washington.
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Oliver Strimpel @geologybites.bsky.social · 27/03/2025
🧪⚒️New episode - Lindy Elkins-Tanton on the origin of Earth's water. Only about 0.02% of the Earth is water, but even that's been a puzzle as Earth formed within the snow line where no liquid water would have been present. Isotopic analysis provides the clues to resolve this apparent paradox.
Microwave image of a protoplanetary disk surrounding the young star HL Tauri.  The disk includes gaps possibly cleared by amalgamation onto newly-forming planets.  This image was taken by the Atacama Large Millimeter/submillimeter Array interferometer, consisting of 66 radio telescopes in the Atacama Desert of northern Chile. 

ALMA (ESO/NAOJ/NRAO)Artist’s impression of a region of a giant molecular cloud that is collapsing to form a protoplanetary disk of gas and dust.  A star forms at the center of the disk, and planets form out of the disk. 

NASA/JPL CalTechPlot of various solar system materials.  The plot shows that the isotope ratios of hydrogen (D/H) and nitrogen (15N/14N) on Earth are very different from those of comets but quite similar to those of a certain class of meteorites called enstatite chondrites.  If comets had delivered Earth’s water, they would have changed its nitrogen isotopic ratios as well as its hydrogen isotopic ratios.  Isotopic fingerprinting strongly suggests that Earth’s water has come from the enstatite chondrites.

Marty, B. (2012), Earth and Planetary Science Letters 313, 56
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Oliver Strimpel @geologybites.bsky.social · 16/03/2025
🧪⚒️In this episode, Joeri Witteveen says there is something paradoxical about selecting a single point on Earth to define a global boundary. We also place spikes where the depositional record is continuous. But that is also a bit paradoxical, as such places do not look like boundaries at all.
The December 2024 version of the international chronostratigraphic chart.  The right-hand part of each column lists the stages/ages.  Each stages is a specific, formally defined interval of rock strata that represents a corresponding interval of time called an age.  Golden spikes are marked at the base of the stages they define.  Golden spike at the base of the Selandian Stage, Zumaia, Spain.Locations of golden spikes as of early 2020.  The circles are color-coded according to the colors of their corresponding stages on the chronostratigraphic chart.Monument at the golden spike at Meishan, China, marking the boundary between the Permian and the Triassic.  There is also a geological museum at Meishan.  It includes a hall on the golden spike and an enlarged model of a conodont species, which makes its first appearance above this golden spike and is key to the definition of the base of the Triassic.
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Oliver Strimpel @geologybites.bsky.social · 08/03/2025
🧪⚒️I just posted an episode about using the late Paleozoic ice age as an analog to climate conditions today. It was similar in that there was low but rising CO2 and continental ice sheets. Her models suggest possible major ocean anoxia and dramatically increased runoff as CO2 climbs.
Results of the Earth-System Model for atmospheric CO2 levels of 280 parts per million (ppm) and 560 ppm for the late Paleozoic.  Top row: sea ice forms at 280 ppm but not at 560 ppm.  Bottom row: at 280 ppm, the late-winter mixed layer of the ocean is moderately deep but becomes much shallower at 560 ppm.Simulations show the response of seawater density & temperature by depth for a doubling of CO2.  Sea surface salinity (i.e., density) increases at low CO2 due to sea ice formation, which excludes salt, thus creating briny water, whereas at high CO2 less sea ice formation leads to decreased density overall. Plots of oceanic depth vs. latitude of the time since a water mass has been in contact with the surface. 

Younger ages in shades of purple indicate well-ventilated waters, whereas older ages in orange and yellow indicate poorly ventilated waters that typically correlate with low dissolved O2 in the deep ocean. 

Together with the sea ice and mixing depth results, this suggests the onset of widespread seafloor anoxia during the CO2-forced warming despite being under deep glacial conditions.
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Oliver Strimpel @geologybites.bsky.social · 08/03/2025
I just learned that Richard Fortey passed away yesterday. I loved his books, especially Life and Trilobite. It was so lucky that I managed to get him onto Geology Bites for the second time, this time talking about Deep Time. He was his usual eloquent self, full of insights.
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Reposted by Oliver Strimpel
Steve Brusatte @stevebrusatte.bsky.social · 07/03/2025
I devoured Richard Fortey's books as a teenager. His magnum opus, Life, was one of my gateways into science. Then when I was writing my first pop science book, Richard generously blurbed it. Getting his testamonial was one of the proudest moments of my life. RIP to a great scientist & writer.
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Oliver Strimpel @geologybites.bsky.social · 21/02/2025
🧪⚒️ Just posted Ruth Siddall @pavementgeology.bsky.social on #urbangeology. You can see so much geology on display in the building stone of almost any city, and often more clearly and certainly more conveniently than going to the field. She guides us through her favorite London urban geology walk.
Santa Maria del Fiore Cathedral and Baptistry.  Brunelleschi kept good accounts of the sourcing of the Pietra Serena sandstone used to build the dome.  Decorative white marble was sourced from Carrara and Pisa, pink limestone came from Verona and other locations in Tuscany, and green serpentinite came from Prato. Nautiloid in the pale-brown stone walls of Plantation Place.  This is an Upper Jurassic limestone sourced from the Southern Frankonian Alb of Bavaria.  It comes from the Treuchtlingen Formation, representing a marine platform limestone with sporadic sponge reefs and bioherms (reef knoll comprising a pile of calcareous material that had previously accumulated on an ancient sea floor).St. Paul’s cathedral in London, completed in 1710, was built with Portland Stone. There is a rich archive documenting architect Christopher Wren’s ordering of Portland Stone from the quarries.Monument commemorating the Great Fire of London of 1666 which started close to this site and raged across the City for the next three days. The main building material is Portland Stone, the stone chosen by Christopher Wren and his fellow architects to rebuild London in a monumental style.
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Oliver Strimpel @geologybites.bsky.social · 09/01/2025
🧪⚒️ On to the 2nd century of podcasts with Richard Fortey on deep time. Fossils in the geological record were our first markers along the runway of deep time, providing the structure and language within which our modern conception of deep time emerged. #science #geosciences #geology+rocks+Fossils
The major angular unconformity at Siccar Point on the east coast of Scotland.  Here the more gently sloping Devonian sandstones (c.375 Ma) overlay the near vertical Silurian greywackes (c.440 Ma).  Viewed by James Hutton while on a boat trip in 1788, this was one of the sites that solidified Hutton and Lyell's new concepts of Earth's geology: that it was formed by slow continuous processes similar to those still occurring today operating over vast periods of time.Title page of Usher’s Annals of the World. Bishop Usher (1591-1656) calculated the date of Creation to have been nightfall on 22 October, 4004 BC.  He determined this from a literal reading of the Old Testament.   Clock of the Long Now
Prototype of the Clock of the Long Now.  It was activated on December 31, 1999, and is on display at the Science Museum, London.  The clock is intended to keep time for 10,000 years.  The final version of the clock is intended to be an enormously enlarged version of this prototype — a vast mechanism big enough for visitors to walk through and installed near a National Park in Nevada in a chamber hollowed out of a limestone cliff.   

The clock uses a torsional pendulum that rotates slowly, making the clock tick once every 30 seconds.  This prototype is driven by falling weights (right), but the full-size clock would be powered by the energy from footfalls of visitors or by changes in temperature.  Any drift in the clock’s rate will be corrected by a mechanism sensing the sun passing overhead at noon.Portrait of James Hutton, often referred to as the “Father of Modern Geology.”  Here is the final paragraph of this 1788 paper Theory of the Earth.

WE have now got to the end of our reasoning; we have no data further to conclude immediately from that which actually is: But we have got enough; we have the satisfaction to find, that in nature there is wisdom, system, and consistency. For having, in the natural history of this earth, seen a succession of worlds, we may from this conclude that there is a system in nature; in like manner as, from seeing revolutions of the planets, it is concluded, that there is a system by which they are intended to continue those revolutions. But if the succession of worlds is established in the system of nature, it is in vain to look for any thing higher in the origin of the earth. The result, therefore, of our present enquiry is, that we find no vestige of a beginning,--no prospect of an end.
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Oliver Strimpel @geologybites.bsky.social · 21/12/2024
🧪Geology Bites now has 100 episodes! I hope it will be enough to carry you through any quiet moments during the holidays. Do give me feedback and suggestions and spread the word. #geology #earthscience
Photograph of the Pamir and Karakoram looking east, taken from the International Space station.

Photo: Tim Peake and NASA; geological interpretation: Searle, M. P., et al. (2018), Geol. Soc. London Special Publication 483
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Oliver Strimpel @geologybites.bsky.social · 21/12/2024
🧪 I just posted Mike Searle on the massive mountain ranges of central Asia — the Karakoram, Hindu Kush, Pamir, and 3 others. Each has its own tectonic history and unique features. E.g., an ultra-deep seismic zone in the Hindu Kush and a 700-km-long granite batholith in the Karakoram. #geology
Satellite image labeled with five of the mountain ranges Searle discusses in the podcast - the Karakoram, the Hindu Kush, the Pamir, the Kunlun Shan and the Tien Shan.  The Gangdese, also discussed, is to the east of the region covered by the image along the southern margin of Tibet.

NASAThe Trango Towers are granite cliffs that rise about 3,000 meters above the Baltoro glacier in the far northeast of Pakistan.  In the podcast, Searle explains that the Baltoro granite, which is what is exposed in the Trango Towers, is a giant, continuous batholith that was emplaced 13-20 million years ago during the intense regional metamorphism accompanying the India-Asia collision.Annotated photographs of mountains that lie within the region imaged by Landsat above. (b) Layla peak, the sharply pointed summit at left, consists of orthogneissses (formed by metamorphosing igneous rocks) with a granite intrusion (K7 granite) dated at 21.7 Ma.  (c) Taken from the rock-strewn surface of the Baltoro glacier, the photograph shows the northern margin of the Baltoro batholith.  The heat from the intruding Baltoro granite metamorphosed the adjacent Carboniferous black shales to sillimanite, cordierite, and andalusite hornfels.  (d) Another image showing the northern margin of the Baltoro batholith, here consisting of the Baltoro granite of the Lobsang Spire (foreground at right with a climber near the bottom for scale).  The rest of the image shows the pre-collision orthogneisses of the Cretaceous Muztagh Tower (top left).   (e) South face of the Uli Biaho Tower (6,427 m) showing homogeneous granite.  (f) Another homogeneous granite tower, here with 1,800-m-high cliffs (Shipton Spire, 5,885 m).
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Oliver Strimpel @geologybites.bsky.social · 11/12/2024
I just posted an episode on the Caledonian orogeny with Rob Strachan. Rob explains this multi-phase three-way continental collision clearly and with a perspective that comes from over 40 years of study on the topic. Having the episode web page handy may be especially helpful for this one.
Reconstruction of the continental blocks before the opening of the northern Atlantic about 54 million years ago.  The green shading shows the areas that were caught up in the Caledonian orogeny, which at the time of the orogeny formed the margins of Laurentia, Baltica, and Avalonia.  Today, these areas run from the Appalachian mountains and Newfoundland in North America through the northern British Isles to eastern Greenland and western Norway.Reconstruction of continental positions from the Ediacaran to the Devonian.  (a) Laurentia drifts away from Gondwana (part of the supercontinent Rodinia) as the Iapetus Ocean grows from a mid-ocean spreading ridge.  (b) A south-dipping subduction zone develops within the Iapetus Ocean and starts to consume the Iapetus oceanic crust.  Avalonia rifts away from Gondwana.  (c) The Iapetus is almost entirely swallowed up by subduction zones, and Avalonia collides with Baltica and then with Laurentia.  (d) Baltica and Avalonia have joined Laurentia to form Larussia, and the Caledonian orogeny comes to an end.

 Woodcock, N.H, et al. (2012) Geological History of Britain and Ireland (second edition), Wiley-Blackwell  Neoproterozoic to Cambrian sedimentary rocks of the Eleonore Bay Supergroup that were laid down on the edge of Laurentia as the Iapetus Ocean widened. This succession is broadly time-equivalent to the Dalradian Supergroup in Scotland; they were thrust many 10s of km westwards during the Caledonian orogeny. The folded rocks here are Paleoproterozoic basement gneisses in East Greenland, and the huge fold that can be seen probably formed during the Caledonian orogeny.  The image is viewed to the north, so the sense of overturning of the fold is to the left, consistent with thrusting and overfolding toward the foreland in the west.
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Oliver Strimpel @geologybites.bsky.social · 14/11/2024
Listen to a new episode with @joemacgregor.bsky.social on mapping Greenland's geology below the ice. An impressive story of synthesizing decades of geophysical seismic, gravity, and magnetic surveys together with radar and laser altimetry. Newly discovered: long valley networks, 3 new provinces.
In the podcast, MacGregor describes a new method of visualizing the surface of the ice sheet in which the simulated illumination of a digital elevation model varies according to the direction of surface ice flow.  (A) Map of Greenland’s surface shaded using flow-aware hillshade, in which the artificial illumination direction (and corresponding shadows) at each pixel is 90 degrees counterclockwise to the ice-flow direction.  The resulting shading emphasizes small-scale variability in the ice-sheet surface slope, which is primarily related to variability in the topography under the ice.  The change in shading from the middle of the ice sheet to the periphery reflects the smaller slopes in the interior and the smaller surface bumps induced by subglacial topography, because as the ice thickness decreases, the surface becomes more sensitive to what is going on below.  The map is based on the laser altimetry data.  (B) The green lines are manual tracings of linear features in the map. GrIMP: Greenland Ice Mapping Project.  This is the new geological map of Greenland.  It is based on the set of geophysical surveys whose results are summarized in the maps in the previous figure.   The geological provinces are colored by age.   Three newly identified provinces (unshaded Regions A, B, and C) do not correspond to known provinces of the exposed periphery of Greenland.
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Oliver Strimpel @geologybites.bsky.social · 12/11/2024
There are now 97 episodes of Geology Bites to listen to. They range from deep below us (Evan Smith on diamonds from the mantle) to light-years above us (Sara Seager on exoplanet geology). Do listen and give me feedback, and if you like it, spread the word.
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Oliver Strimpel @geologybites.bsky.social · 11/12/2023
Listen to the new episode with Susan Brantley of @penn_state on Earth's geological thermostat. Overall, her results suggest a doubling of the weathering rate for each 10-degree rise in temperature, but this changes with the spatial scale of the analysis. #earth-science, #geoscience
Weathered granitic rock in Puerto RicoSusan Brantley augusring a soil sample in YosemiteThe different weather regimes - kinetic-limited and erosive-transport-limitedTemperature dependence of the weathering characterized by an activation energy Ea
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Oliver Strimpel @geologybites.bsky.social · 28/11/2023
@earth-science.bsky.social Would you please add me to your list? I am new to Bluesky. I present the Geology Bites podcast geologybites.com. I would like to be able to post to the geology feed. Thanks.
geologybites.com
Geology Bites
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Oliver Strimpel @geologybites.bsky.social · 26/11/2023
Geology Bites is a podcast for the scientifically curious. In each of the 81 episodes to date, I talk with a leading Earth or Planetary science researcher. Take a look at geologybites.com and see if you like listening either there, or on any of the main podcast apps.
geologybites.com
Geology Bites
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