Subscribe free to our newsletters via your
. GPS News .




WATER WORLD
Chasing the black holes of the ocean
by Angelika Jacobs for ETH Zurich News
Zurich, Switzerland (SPX) Sep 27, 2013


Mathematically speaking, ocean eddies are counterparts to the black holes in space. (Illustration: G. Haller / ETH Zurich)

According to researchers from ETH Zurich and the University of Miami, some of the largest ocean eddies on Earth are mathematically equivalent to the mysterious black holes of space. These eddies are so tightly shielded by circular water paths that nothing caught up in them escapes.

The mild winters experienced in Northern Europe are thanks to the Gulf Stream, which makes up part of those ocean currents spanning the globe that impact on the climate. However, our climate is also influenced by huge eddies of over 150 kilometres in diameter that rotate and drift across the ocean.

Their number is reportedly on the rise in the Southern Ocean, increasing the northward transport of warm and salty water. Intriguingly, this could moderate the negative impact of melting sea ice in a warming climate.

However, scientists have been unable to quantify this impact so far, because the exact boundaries of these swirling water bodies have remained undetectable. George Haller, Professor of Nonlinear Dynamics at ETH Zurich, and Francisco Beron-Vera, Research Professor of Oceanography at the University of Miami, have now come up with a solution to this problem.

In a paper just published in the Journal of Fluid Mechanics, they develop a new mathematical technique to find water-transporting eddies with coherent boundaries.

The challenge in finding such eddies is to pinpoint coherent water islands in a turbulent ocean. The rotating and drifting fluid motion appears chaotic to the observer both inside and outside an eddy. Haller and Beron-Vera were able to restore order in this chaos by isolating coherent water islands from a sequence of satellite observations. To their surprise, such coherent eddies turned out to be mathematically equivalent to black holes.

No escape from the vortex
Black holes are objects in space with a mass so great that they attract everything that comes within a certain distance of them. Nothing that comes too close can escape, not even light. But at a critical distance, a light beam no longer spirals into the black hole. Rather, it dramatically bends and comes back to its original position, forming a circular orbit. A barrier surface formed by closed light orbits is called a photon sphere in Einstein's theory of relativity.

Haller and Beron-Vera discovered similar closed barriers around select ocean eddies. In these barriers, fluid particles move around in closed loops - similar to the path of light in a photon sphere. And as in a black hole, nothing can escape from the inside of these loops, not even water.

It is precisely these barriers that help to identify coherent ocean eddies in the vast amount of observational data available. According to Haller, the very fact that such coherent water orbits exist amidst complex ocean currents is surprising.

Eddies as water taxis
Because black-hole-type ocean eddies are stable, they function in the same way as a transportation vehicle - not only for micro-organisms such as plankton or foreign bodies like plastic waste or oil, but also for water with a heat and salt content that can differ from the surrounding water.

Haller and Beron-Vera have verified this observation for the Agulhas Rings, a group of ocean eddies that emerge regularly in the Southern Ocean off the southern tip of Africa and transport warm, salty water northwest. The researchers identified seven Agulhas Rings of the black-hole type, which transported the same body of water without leaking for almost a year.

Haller points out that similar coherent vortices exist in other complex flows outside of the ocean. In this sense, many whirlwinds are likely to be similar to black holes as well. Even the Great Red Spot - a stationary storm - on the planet Jupiter could just be the most spectacular example of a black-hole type vortex . "Mathematicians have been trying to understand such peculiarly coherent vortices in turbulent flows for a very long time", explains Haller.

Notably, the first person to describe ocean eddies as coherent water islands may well have been the American writer, Edgar Allan Poe. In his story "A Descent into the Maelstrom", he envisioned a stable belt of foam around a maelstrom.

This served as inspiration for Haller and Beron-Vera, who went on to find these belts - the oceanic equivalent to photon spheres - using sophisticated mathematical formulas. Their results are expected to help in resolving a number of oceanic puzzles, ranging from climate-related questions to the spread of environmental pollution patterns.

Haller G, Beron-Vera F: Coherent Lagrangian Vortices: The Black Holes of Turbulence. Journal of Fluid Mechanics, vol. 731 (2013) R4: doi:10.1017/jfm.2013.391

.


Related Links
ETH Zurich
Water News - Science, Technology and Politics






Comment on this article via your Facebook, Yahoo, AOL, Hotmail login.

Share this article via these popular social media networks
del.icio.usdel.icio.us DiggDigg RedditReddit GoogleGoogle








WATER WORLD
Extinction and overfishing threats can be predicted decades before population declines
Santa Barbara CA (SPX) Sep 25, 2013
A new UC Santa Barbara study shows that threats created by overfishing can be identified decades before the fish species at risk experience high overly harvest rates and subsequent population declines. Researchers developed an Eventual Threat Index (ETI) that quantifies the biological and socioeconomic conditions that eventually cause some fish species to be harvested at unsustainable rates. ... read more


WATER WORLD
Economic rewards of better land management

Swedish team hope to create buzz in fight against bee deaths

Livestock is major contributor to global warming: UN

Modifying Rice Crops to Resist Herbicide Prompts Weedy Neighbors' Growth Spurt

WATER WORLD
Promising new alloy for resistive switching memory

Counting on neodymium

UCSB researchers make headway in quantum information transfer via nanomechanical coupling

Stanford scientists publish theory, formula to improve 'plastic' semiconductors

WATER WORLD
Lockheed focused on South Korean jet re-tender

NGC and USAF Complete Warfighter Analysis Workshops

Japan, Belgium seek FMS deals

US to upgrade Japan's early warning radar aircraft: Pentagon

WATER WORLD
Australia researchers unveil 'attention-powered' car

New steering tech for heavy equipment saves fuel, ups efficiency

AllCell's Self-Cooling 48V Micro-Hybrid Battery Solves Hot Parking Lot Problem

California's low-carbon fuel standard to stay

WATER WORLD
China to open first free trade zone Sunday: media

China's FTZ plan a 'political message' to Hong Kong: analysts

Christie's hopes for more openess in China ahead of first auction

EU water law could sink mine plan in Romania: minister

WATER WORLD
Uphill for the trees of the world

Tropical forests 'fix' themselves

Calcium key to restoring acid rain-damaged forests

Virginia Tech scientists show why traumatized trees don't 'bleed' to death

WATER WORLD
UCLA scientists explain the formation of unusual ring of radiation in space

Ultra-fast Electrons Explain Third Radiation Ring Around Earth

Preparing to launch Swarm

ESA's GOCE mission to end this year

WATER WORLD
Densest array of carbon nanotubes grown to date

Nanoscale neuronal activity measured for the first time

Container's material properties affect the viscosity of water at the nanoscale

Molecules pass through nanotubes at size-dependent speeds




The content herein, unless otherwise known to be public domain, are Copyright 1995-2014 - Space Media Network. AFP, UPI and IANS news wire stories are copyright Agence France-Presse, United Press International and Indo-Asia News Service. ESA Portal Reports are copyright European Space Agency. All NASA sourced material is public domain. Additional copyrights may apply in whole or part to other bona fide parties. Advertising does not imply endorsement,agreement or approval of any opinions, statements or information provided by Space Media Network on any Web page published or hosted by Space Media Network. Privacy Statement