Showing posts with label Research. Show all posts
Showing posts with label Research. Show all posts

Thursday, 21 January 2010

Snail Shell Could make Body Armur


A deep-sea snail wears a multi-layered suit of armor, complete with iron, new research shows. Dissecting details of the shell’s structure could inspire tough new materials for use in everything from body armor to scratch-free paint.

sciencenews“If you look at the individual properties of the bits and pieces that go into making this shell, they’re not very impressive,” comments Robert Ritchie of the University of California, Berkeley. “But the overall thing is.”

The snail, called the scaly-foot gastropod, was discovered nearly a decade ago living in a hydrothermal vent field in the Indian Ocean. In its daily life, the snail encounters extreme temperatures, high pressures and high acidity levels that threaten to dissolve its protective shell. Worse, it is hunted by crabs that try to crush the mollusk between strong claws.

To understand how the valiant gastropod holds up to these trials, Christine Ortiz of MIT and her colleagues used nanoscale experiments and computer simulations to dig in to the shell’s structure. Many other species’ shells exhibit what Ortiz calls “mechanical property amplification,” in which the whole material is hundreds of times stronger than the sum of its parts.

snail_shell_bsarThe scaly-foot snail’s shell employs a structure “unlike any other known mollusk or any other known natural armor,” the researchers report January 19 in Proceedings of the National Academy of Sciences. Ortiz and her colleagues found that the shell consists of a 250-micrometer-thick inner layer of aragonite, a common shell material, sheathed in a 150-micrometer-thick layer of squishy organic materials. The organic layer is encased in a thin, stiff outer layer (about 30 micrometers thick) made of hard iron sulfide–based scales. The gastropod wears larger versions of the scales on its exposed foot.

“Most mollusks only have a relatively thin outer organic layer followed by inner calcified layers,” Ortiz says. But the snail’s organic layer is surprisingly thick, and no other gastropod has ever been shown to use iron sulfide in its shell.

Each of the shell’s layers plays a unique role in protecting the snail from crab attacks, Ortiz found. The researchers measured material properties like stiffness and fracture resistance, and fed them into a computational model of a predator penetrating the armor.

The model showed that the outer layer, the shell’s “first line of defense,” sacrificed itself by cracking slightly under pressure. But the cracks were branched and jagged, dissipating energy widely through the shell and keeping any one crack from spreading too far. The iron-based scales could shift and roughen the shell’s surface during a crab attack, which in turn would grind down the attacking claw, the researchers suggest.

The soft organic middle layer changed shape in response to pressure, keeping the brittle inner layer from feeling too much of the pinch. Organic material could also insert itself in any cracks that formed in either sandwiching layer and keep the crack from spreading. Plus, the middle layer together with the outer layer protects against acidic waters and may also help shield the snail from high temperatures.

The shell’s curvature also helped reduce stress on the calcified inner layer. The inner layer’s rigidity provided structural support, to keep the whole shell from caving in.

“It shows that by changing the geometry of the materials … you can improve their properties quite significantly,” comments Markus Buehler of MIT, who was not involved in the research.

Ortiz hopes that studying the snail’s shell could one day lead to improved materials for armor or helmets for people. Studying organisms that have been optimized for extreme environments through millions of years of evolution could offer ideas that engineers would never think of on their own, she says.

But it will probably be a while, Ritchie cautions. His lab built a ceramic material based on mother-of-pearl in 2008.

Thursday, 14 January 2010

Why an External Hard drive of 1Tb shows only 930 GB of space ?


There is a difference in how Hard Disk Capacities are stated by manufacturers compared to how operating systems calculate them.

To Hard disk manufacturers a kilobyte is 1000 byes, a megabyte is 1000 kilobytes , a gigabyte is 1000 megabytes and a terabyte is 1000 gigabytes = 1,000,000,000,000 bytes. However to most operating systems a kilobye is 1024* bytes, a megabyte is 1024 kilobytes (=1,048,576 bytes) and a gigabyte is 1024 megabytes (1,073,741,824 bytes), etc.

So when a hard disk manufacturer says a hard disk has a capacity of 1 Terabye it means the capacity is 1,000,000,000,000 bytes +/- a few percent. For demonstration purposes let's assume that they mean exactly 1,000,000,000,000 bytes. When the operating system calculates that capacity in Gigabytes it divides the 1,000,000,000,000 bytes by 1,073,741,824 bytes/gigabyte which equals 931.3 gigabytes.

So the reported 930 GB is about right. There is no space missing.

This difference in how hard disk capacities are stated has existed since the days when a large hard disk was only 5 MB.


* 1024 = 2^10 and is the power of 2 that is closest to 1000.

Ferropaper

The material is made by impregnating ordinary paper -- even newsprint -- with a mixture of mineral oil and "magnetic nanoparticles" of iron oxide. The nanoparticle-laden paper can then be moved using a magnetic field.


"Paper is a porous matrix, so you can load a lot of this material into it," said Babak Ziaie, a professor of electrical and computer engineering and biomedical engineering.

The new technique represents a low-cost way to make small stereo speakers, miniature robots or motors for a variety of potential applications, including tweezers to manipulate cells and flexible fingers for minimally invasive surgery.

"Because paper is very soft it won't damage cells or tissue," Ziaie said. "It is very inexpensive to make. You put a droplet on a piece of paper, and that is your actuator, or motor."

Once saturated with this "ferrofluid" mixture, the paper is coated with a biocompatible plastic film, which makes it water resistant, prevents the fluid from evaporating and improves mechanical properties such as strength, stiffness and elasticity.

Findings will be detailed in a research paper being presented during the 23rd IEEE International Conference on Micro Electro Mechanical Systems on Jan. 24-28 in Hong Kong. The paper was written by Ziaie, electrical engineering doctoral student Pinghung Wei and physics doctoral student Zhenwen Ding.

Because the technique is inexpensive and doesn't require specialized laboratory facilities, it could be used in community colleges and high schools to teach about micro robots and other engineering and scientific principles, Ziaie said.

The magnetic particles, which are commercially available, have a diameter of about 10 nanometers, or billionths of a meter, which is roughly 1/10,000th the width of a human hair. Ferro is short for ferrous, or related to iron.

"You wouldn't have to use nanoparticles, but they are easier and cheaper to manufacture than larger-size particles," Ziaie said. "They are commercially available at very low cost."

The researchers used an instrument called a field-emission scanning electron microscope to study how well the nanoparticle mixture impregnates certain types of paper.

"All types of paper can be used, but newspaper and soft tissue paper are especially suitable because they have good porosity," Ziaie said.

The researchers fashioned the material into a small cantilever, a structure resembling a diving board that can be moved or caused to vibrate by applying a magnetic field.

"Cantilever actuators are very common, but usually they are made from silicon, which is expensive and requires special cleanroom facilities to manufacture," Ziaie said. "So using the ferropaper could be a very inexpensive, simple alternative. This is like 100 times cheaper than the silicon devices now available."

The researchers also have experimented with other shapes and structures resembling Origami to study more complicated movements.

The research is based at the Birck Nanotechnology Center in Purdue's Discovery Park.