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Wave energy researchers dive deep to advance clean energy source :One of the biggest untapped clean energy sources on th...
14/10/2016

Wave energy researchers dive deep to advance clean energy source :

One of the biggest untapped clean energy sources on the planet -- wave energy -- could one day power millions of homes across the U.S. But more than a century after the first tests of the power of ocean waves, it is still one of the hardest energy sources to capture.

Now, engineers at Sandia National Laboratories are conducting the largest model-scale wave energy testing of its kind to improve the performance of wave-energy converters (WECs). The project is taking place at the U.S. Navy's Maneuvering and Sea Keeping facility at the Carderock Division in Bethesda, Maryland, one of the largest wave tanks in the world at 360 feet long and 240 feet wide and able to hold 12 million gallons of water.

Sandia project leads Ryan Coe and Giorgio Bacelli spend long days in the dark wave tank, where minimal lighting reduces the growth of algae in the water. They are collecting data from their numerical modeling and experimental research to benefit wave energy technology with improved methodologies, strategic control systems design and testing practices for wave energy converters.

"Our goal is to improve the economic viability of these devices," said Coe. "In order to do so, we are working out ways to control the WEC's generator to increase the amount of power it absorbs. At the same time, we are looking at how to reduce the loads and stresses on these devices in harsh conditions to ultimately lengthen a WEC's lifespan in the water."

Coe said numerous initial studies estimate that improving control of the WECs' generators can dramatically increase energy absorption by as much as 300 percent. Transitioning these simplified studies to more realistic large-scale devices is the challenge at hand.

To control the dynamics for better, faster results in the wave tank, Coe and Bacelli are using modeling and control methods that have been successful in other industries, such as in the aerospace industry.

"The systems we used have been around for a while, but strangely enough they had never been applied to wave energy converters," Bacelli said. "So far, we know the techniques we are using are more efficient and cost-effective than existing methods. We are getting more information in a fraction of the time." Now that Sandia has completed the first round of analyses in the water, Coe said the goal is to process all the collected data to develop a new, enhanced model that will make sure the next test yields even more valuable results. "Make no mistake, these are extremely complex machines," Bacelli said. "They have to be fine-tuned continuously because ocean waves are constantly changing. With this setup at the Navy's facility, we have a unique opportunity to study the problems and quantify the effects. We want to help the industry by offering solutions to the challenges the wave energy world is facing."

Summary:
One of the biggest untapped clean energy sources on the planet — wave energy — could one day power millions of homes across the U.S. But more than a century after the first tests of the power of ocean waves, it is still one of the hardest energy sources to capture. Now, engineers are conducting the largest model-scale wave energy testing of its kind to improve the performance of wave-energy converters (WECs).

Source:
Sandia National Laboratories

Story Source:
Materials provided by Sandia National Laboratories. Note: Content may be edited for style and length.

13/06/2016
13/06/2016
13/06/2016
Attend Seminar on  4th June, at 10:00 AM.Interaction with IAS ToppersVISHU MAHAJAN - IAS     Rank : 70    Marks in Physi...
28/05/2016

Attend Seminar on
4th June, at 10:00 AM.

Interaction with IAS Toppers

VISHU MAHAJAN - IAS Rank : 70 Marks in Physics : 281
Gyanendra Kumar Gangwar – IAS Rank : 314 Marks in Physics : 282

High-temperature superconductivity High-temperature superconductors (abbreviated high-Tc or HTS) are materials that have...
23/05/2016

High-temperature superconductivity

High-temperature superconductors (abbreviated high-Tc or HTS) are materials that have a superconducting transition temperature (Tc) above 30 K, which was thought (1960-1980) to be the highest theoretically allowed Tc. The first high-Tc superconductor was discovered in 1986 by Karl Müller and Johannes Bednorz, for which they were awarded the Nobel Prize in Physics in 1987. The term high-temperature superconductor was used interchangeably with cuprate superconductor until Fe-based superconductors were discovered in 2008. The best known high-temperature superconductors are bismuth strontium calcium copper oxide, BSCCO and yttrium barium copper oxide, YBCO.

High-temperature has three common definitions in the context of superconductivity:

Technological applications benefit from both the higher critical temperature being above the boiling point of liquid nitrogen and also the higher critical magnetic field (and critical current density) at which superconductivity is destroyed. In magnet applications the high critical magnetic field may be more valuable than the high Tc itself. Some cuprates have an upper critical field around 100 tesla. However, cuprate materials are brittle ceramics which are expensive to manufacture and not easily turned into wires or other useful shapes.

Two decades of intense experimental and theoretical research, with over 100,000 published papers on the subject, has discovered many common features in the properties of high-temperature superconductors, but as of 2009[update] there is no widely accepted theory to explain their properties. Cuprate superconductors (and other unconventional superconductors) differ in many important ways from conventional superconductors, such as elemental mercury or lead, which are adequately explained by the BCS theory. There also has been much debate as to high-temperature superconductivity coexisting with magnetic ordering in YBCO, iron-based superconductors, several ruthenocuprates and other exotic superconductors, and the search continues for other families of materials. HTS are Type-II superconductors which allow magnetic fields to pe*****te their interior in quantized units of flux, meaning that much higher magnetic fields are required to suppress superconductivity. Their layered structure also affects their response to magnetic fields.
Ref.:http://phys.org/tags/high%20temperature%20superconductors/
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14/05/2016

UPSC has uploaded the mark sheets of all successful candidates.We will like to share the marks of K Diana Devi , IAS , Rank 24 , who has scored total of 966 marks ( Written 765 , 201 in Personality Test ) out of 2025 in CSE 2015 and excellent score of 291 marks in Physics and Vishu Mahajan , IAS , Rank 70 ( Total marks 938/2025 , written 762 + personality test 176 , scored 281 marks in Physics.

New batches in GS ( Foundation) /Pre cm Mains :start from 5 th june 10 am. with interactive session with our top ranker...
14/05/2016

New batches in GS ( Foundation) /Pre cm Mains :
start from 5 th june 10 am.
with interactive session with our top rankers.
New batches in Physics/Chemistry/Mathematics
will start from 1st JUNE and seminar will be held on 4th June.
All are invited .
For further details one may contact institute at 011-65009600 / 9350934622 / 011-65909600.
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GYANENDRA KUMAR GANGWAR : All India Rank : 314  in CSE-2015 B-Tech (IIT Kanpur) With Physics Optional.Best Wishes for St...
13/05/2016

GYANENDRA KUMAR GANGWAR : All India Rank : 314 in CSE-2015
B-Tech (IIT Kanpur) With Physics Optional.
Best Wishes for Starting of a Brilliant career !

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