• Home
  • About US
  • Contact Us
  • Privacy Policy
  • Terms of Use

Archives

  • September 2026
  • August 2026
  • July 2026
  • June 2026
  • May 2026
  • April 2026
  • March 2026
  • February 2026
  • January 2026
  • December 2025
  • November 2025
  • October 2025
  • September 2025
  • August 2025
  • July 2025
  • June 2025
  • May 2025
  • April 2025
  • March 2025
  • February 2025
  • January 2025
  • December 2024
  • November 2024
  • October 2024
  • September 2024
  • August 2024
  • July 2024
  • June 2024
  • May 2024
  • April 2024
  • March 2024
  • February 2024
  • January 2024
  • December 2023
  • November 2023
  • October 2023
  • September 2023
  • August 2023
  • July 2023
  • June 2023
  • May 2023
  • April 2023
  • March 2023
  • January 2023
  • December 2022
  • November 2022
  • October 2022
  • September 2022
  • August 2022
  • July 2022
  • June 2022
  • May 2022
  • March 2022
  • February 2022
  • January 2022
  • November 2019

Categories

  • Auto
  • Business
  • Climate & Earth
  • Coronavirus
  • Crypto
  • Entertainment
  • Happiness Basket
  • India
  • Learn | Unlearn | Relearn
  • Lifestyle
  • Politics
  • Research Discoveries
  • Science & Technology
  • Sports
  • Trending
  • Video
  • World
  • Home
  • About US
  • Contact Us
  • Privacy Policy
  • Terms of Use
Read Selective
  • World
  • Politics
  • India
  • Business
  • Entertainment
  • Lifestyle
  • Auto
  • Crypto
  • Coronavirus
  • Happiness Basket
  • Research Discoveries
  • Research Discoveries

The Surprising Connection Between Coffee Bubbles And Volcanic Disaster

  • November 22, 2025
The physics of coffee bubbles and volcanic eruptions are surprisingly similar. (Credit: andy0man on Shutterstock)

Your morning coffee may help scientists better predict future volcanic eruptions.

Like a dormant volcano, plenty of people just can’t get going in the morning without some coffee. Surprisingly, the physics of java and lava are actually quite similar, at least when it comes to bubbles.

Scientists have discovered that bubble formation in rising magma follows some of the same physics as bubbles in stirred coffee or shaken champagne. The finding expands the standard model of volcanic bubble formation that has guided volcanology since the 1950s and could improve eruption forecasting.

For the first time, researchers at the Université Clermont Auvergne and ETH Zurich have demonstrated that in gas-supersaturated magma, the physical act of flowing and swirling through underground channels can trigger bubble formation through mechanical stress—even without further pressure decrease. This shear-induced nucleation occurs when viscous liquids experience mechanical forces from movement itself.

The scientists demonstrate that it’s essentially the same physics at work. When magma rises through volcanic conduits, the liquid experiences intense shearing forces as it flows past rock walls and swirls around obstacles. Those mechanical forces provide enough energy to trigger bubble formation in magma already loaded with dissolved gases like water vapor and carbon dioxide, similar to how stirring creates bubbles in carbonated beverages.

When Rotation Creates Eruption

The discovery emerged from laboratory experiments using a heated polymer liquid saturated with carbon dioxide. Researchers placed the liquid on a rotating platform inside a rheometer, a device that precisely controls and measures viscous flow. As they gradually increased the rotation speed, bubbles suddenly appeared in the outer regions where shear stress was highest.

Multiple types of bubbles formed at different stress levels, with some appearing in the liquid itself and others forming on solid surfaces or near previously formed bubbles. The pattern was consistent: higher initial carbon dioxide supersaturation required lower shear stress to trigger nucleation.

What makes this finding notable is its departure from the conventional focus. Since the 1950s, volcanologists have primarily understood bubble formation through the lens of decreasing pressure. As magma rises toward the surface, reduced pressure causes dissolved gases to come out of solution, forming bubbles. Scientists have used this framework to interpret volcanic rock textures and estimate how fast magma ascended before erupting.

But the new experiments reveal that mechanical energy from flowing magma also contributes substantially to bubble formation. The researchers developed a mathematical model showing that shear stress and pressure changes contribute nearly equally to overcoming the energy barrier required for bubble nucleation in their experimental system.

Why Bubbles Matter for Volcanic Behavior

The practical consequences are substantial. Bubble formation and growth fundamentally control magma behavior during eruptions. More bubbles mean lower density, which affects how buoyantly magma rises. Bubbles also dramatically change magma viscosity and determine whether gases escape gradually or accumulate to explosive levels.

Current methods for estimating magma ascent rates rely on counting bubbles in volcanic rock samples. Scientists assume those bubbles formed only because of pressure decrease, then calculate how rapidly pressure must have dropped to produce the observed bubble numbers. But if shear stress also triggers bubble formation, those calculations could be significantly off.

The study, published in Science, report that bubble number density should reflect the combined effects of both shear stress and decompression. They also note that the contribution of shear could help explain why some explosive eruptions appear to record unrealistically high decompression rates when scientists estimate magma ascent speed by counting bubbles in erupted rock.

To understand where this shear-induced nucleation occurs in volcanic systems, the team developed a dimensionless parameter called the Poiseuille number, which relates shear stress to ambient pressure. Their calculations indicate that volcanic conduits easily exceed the threshold for shear-induced nucleation, but magma chambers likely don’t.

Explaining the Obsidian Puzzle

This finding may help explain a long-standing puzzle in volcanology. Some highly viscous, gas-rich magmas somehow erupt gently as obsidian flows instead of exploding catastrophically. Efficient bubble formation from shear in the lower conduit, followed by bubble growth and coalescence, could allow these volatile-rich magmas to outgas before reaching explosive fragmentation depths.

The research also questions the role of tiny crystals called nanolites in bubble formation. Recent studies have proposed that these iron oxide crystals, smaller than one micrometer, provide nucleation sites for bubbles. But if shear alone can trigger widespread bubble formation in conduits, nanolites may be less critical than previously thought, or they may form as a consequence of bubbles rather than causing them.

The experimental approach combined multiple techniques. After saturating the polymer liquid with carbon dioxide under pressure, researchers slowly released the pressure without triggering nucleation, then immediately transferred the supersaturated liquid to the rheometer. Video cameras captured bubble formation as shear increased, allowing precise measurements of the stress required for nucleation at different supersaturation levels.

Computer simulations using molecular dynamics confirmed the experimental observations. When researchers modeled a mixture of particles representing liquid and dissolved gas under shear, small gas-rich regions percolated and coalesced to form irregularly shaped nuclei surrounded by an envelope of volatile-rich liquid.

The team also conducted complementary experiments showing that other forms of mechanical energy trigger nucleation. Suddenly compressing the liquid or abruptly stopping the rotation both caused bubbles to form on the metal surface, demonstrating that various mechanical disturbances can overcome the energy barrier to nucleation.

While the experiments used a polymer-carbon dioxide system rather than actual magma, the researchers carefully scaled their results to volcanic conditions. The supersaturation pressures in their experiments correspond to realistic values for magmas at depths of two to ten kilometers.

Looking beyond volcanoes, shear-induced nucleation likely influences other natural and industrial processes. The phenomenon is known to affect foam formation in synthetic materials. It could also play roles in earthquake-triggered bubble formation, planetary outgassing, and thermal volatile release in hydrothermal systems.

Better models of how magma moves and bubbles form could translate to more accurate forecasts of whether a restless volcano will erupt explosively or effusively. Just as understanding that shaking creates bubbles in soda bottles helps predict whether opening the cap will cause a gentle hiss or a sticky explosion, recognizing that flowing magma creates its own bubbles through mechanical stress could help scientists better anticipate volcanic behavior.

Source : https://studyfinds.org/surprising-connection-coffee-and-volcanoes/

Previous Article
  • Research Discoveries

What Happens To Kids’ Brains After Thousands Of Hours Staring At Screens?

  • November 22, 2025
View Post
Next Article
  • Research Discoveries

First Human Bird-Flu Death From H5N5 – What You Need To Know

  • November 26, 2025
View Post
You May Also Like
View Post
  • Research Discoveries

Skipping the Gym? Walking More Controlled Asthma About as Well as Treadmill Workouts

  • September 4, 2026
View Post
  • Research Discoveries

Your Organs Are Aging On Different Timelines, Study Suggests

  • September 3, 2026
View Post
  • Research Discoveries

Legumes, Soy Linked To Lower Blood Pressure Risk

  • September 2, 2026
View Post
  • Research Discoveries

Men Resist Dieting Because It’s Too Feminine, Study Suggests

  • September 1, 2026
View Post
  • Research Discoveries

Toddlers Poisoned By Edible Drugs at Record Rates, Study Warns

  • August 30, 2026
View Post
  • Research Discoveries

Survey: 82% Of Americans Say They Live On ‘Autopilot’

  • August 28, 2026
View Post
  • Research Discoveries

Coconut Oil Jet Fuel Matches Kerosene’s Efficiency in Engine Tests

  • August 24, 2026
View Post
  • Research Discoveries

Gene Test Revealed Inherited Cancer Risk Across Three Generations of One Family

  • August 19, 2026

Recent Posts

  • Mohsin Naqvi’s Bizarre ‘India Remark’ When Asked About Pakistan’s Unending Crisis
  • Rohit Sharma’s Endgame: Gautam Gambhir, Ajit Agarkar, And A World Cup Dream
  • After backlash over ‘women shouldn’t leave home’ call, Kerala cleric clarifies
  • Wai Wai’s bhujia made from noodles lying on factory floor, FSSAI cracks down
  • BJP workers forcing BLOs to delete names: INDIA bloc’s big claim in Jharkhand
Categories
  • Auto (44)
  • Business (466)
  • Climate & Earth (16)
  • Coronavirus (18)
  • Crypto (28)
  • Entertainment (884)
  • Happiness Basket (7)
  • India (5,886)
  • Learn | Unlearn | Relearn (163)
  • Lifestyle (326)
  • Politics (98)
  • Research Discoveries (399)
  • Science & Technology (473)
  • Sports (1,000)
  • Trending (1,707)
  • Video (1)
  • World (9,823)
Read Selective

For Feedbacks, Advertisements or Any Other Concerns mail us at info@readselective.com

Pages
  • Home
  • About US
  • Contact Us
  • Privacy Policy
  • Terms of Use
Categories
  • Auto
  • Business
  • Climate & Earth
  • Coronavirus
  • Crypto
  • Entertainment
  • Happiness Basket
  • India
  • Learn | Unlearn | Relearn
  • Lifestyle
  • Politics
  • Research Discoveries
  • Science & Technology
  • Sports
  • Trending
  • Video
  • World
© 2024 Read Selective | Developed by SUGARA Technologies
  • Home
  • About US
  • Contact Us
  • Privacy Policy
  • Terms of Use

Input your search keywords and press Enter.

Go to mobile version