lunes, abril 29, 2013


Graphene Layers on Steel Surfaces Found to be Perfect Lubricant, Superior to Oil

First Posted: Apr 26, 2013 03:35 PM EDT
Scientists discovered that one-atom-thick graphene layers work very well as lubricants on sliding steel surfaces, enabling a dramatic reduction in the amount of wear and friction over solutions like oil-based lubricants.
New studies led by Argonne materials scientists Anirudha Sumant and Ali Erdemir attributed the very low coefficient of friction (COF) to the low shear and highly protective nature of graphene, which also prevented oxidation of the steel surfaces when present at sliding contact interfaces.
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The findings could have huge practical benefits, saving enormous amounts of costs and energy, since steel ball bearings alone form an integral part of most moving mechanical machines of today's vast technical infrastructure, ranging from computer fans over cars to giant wind turbines.
Graphene
(Photo : Flickr.com/US Army)
"Reducing energy and materials losses in these moving mechanical systems due to friction and wear remains one of the greatest engineering challenges of our time," Sumant said.
The researchers write their estimate is that the reduced loss of energy to friction offered by new materials could yield potential energy savings of 2.46 billion kilowatt-hours per year, equivalent to 420,000 barrels of oil.
Current lubricants reduce friction and wear either through the use of environmentally unfriendly additives, or in some cases, solid lubricants such as molybdenum disulfide or boric acid. The oil-based lubricants need to be consistently reapplied, producing additional waste. The cost of applying solid lubricant coatings is rather high and due to finite thickness, they do not last very long and must also be expensively reapplied.
On the other hand, coatings made of graphene flakes are not harmful to the environment and can last a considerable length of time due to the flakes' ability to reorient themselves during initial wear cycles, providing a low COF during sliding.
"Applying or reapplying the graphene coating does not require any additional processing steps other than just sprinkling a small amount of solution on the surface of interest, making this process simple, cost-effective, and environmentally friendly," said Diana Berman, a postdoctoral researcher at Argonne's Center for Nanoscale Materials (CNM).
"It is interesting to see how a one-atom-thick material affects the properties at a larger scale," Sumant said. "I believe that graphene has potential as a solid lubricant in the automotive industry and, once fully developed, it could have positive impacts on many mechanical applications that could lead to a tremendous savings of energy."
The team published their findings in two consecutive papers in the high impact journal Carbon:
D. Berman, A. Erdemir, A.V. Sumant: "Few layer graphene to reduce wear and friction on sliding steel surfaces". Carbon, 54, 454-459 (2013)

miércoles, abril 24, 2013

FERROFLUIDOS

ferrofluid demonstration:
 

jueves, julio 02, 2009

martes, septiembre 23, 2008

Global Solar


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ENERGIA SOLAR

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The High-Performance Photovoltaic (HiPerf PV) initiative is exploring the ultimate limits of the performance of existing PV technologies, with the aim to about double sunlight-to-electricity conversion efficiencies. This project, initiated by the U.S. Department of Energy in FY2001, will substantially increase the viability of PV for cost-competitive applications. As a result, PV will be able to contribute significantly to our energy supply and our environment in the 21st century.

To accomplish HiPerf's objective, the National Center for Photovoltaics (NCPV) directs in-house and subcontracted research in high-performance polycrystalline thin films and multijunction concentrators. Two specific objectives of this research include:

  • Bringing efficiencies for thin-film cells toward 25%, and for modules toward 20%

  • Creating 33%-efficient multijunction concentrators, that is, devices that convert more than a third of the sun's energy to electricity.

We expect the project's three phases to steer high-efficiency technologies toward commercial, prototype products. Each phase of the project focuses on a specific approach to solving the problems associated with high efficiencies. For example, Phase I, entitled "Identifying Critical Paths," seeks to identify problems, approaches, and alliances. This phase is critical in providing a means to accelerate toward the most promising paths for implementation, followed by commercial, prototype products.

Recently, we completed the first HiPerf PV subcontract solicitation, which allows the NCPV to provide two years of funding to top-ranked companies and universities. During the project period, the alignment of critical paths, together with extensive collaboration, will produce significant contributions to the entire PV industry.

The in-house portion of the HiPerf PV research is coordinated through the following three teams:

  • High-Performance Thin-Film Team� leads the investigation of tandem structures and low-flux concentrators

  • High-Efficiency Concepts and Concentrators Team� an expansion of an existing team that leads the development of high-flux concentrators

  • Thin-Film Process Integration Team�will perform fundamental process and characterization research, to resolve the complex issues of making thin-film multijunction devices.
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In summary, the HiPerf PV Program investigates a wide range of complex issues and provides initial modeling and baseline experiments of several advanced concepts. This focus will clarify the challenges and identify critical paths for the longer-term development and application of high-performance PV technologies. The program's established targets will be reached by both revolutionary technology change and multiple incremental improvements.

viernes, julio 11, 2008