Monday, 17 October 2011

Solar power vents attics benefits


Solar powered attic vents  can be used to control heat and moisture. Today there are alternatives to roof louvers that are smart and effective. The solar varieties work of the principle of solar energy. These collect the energy from the rays of the sun during your day when your attic is at its warmest. Using this energy, it generates electricity. This electricity is used to operate an extremely high energy efficient motor that is placed inside the power vent. So what does this mean to you? You are generating free electricity and getting free power! You are not only reducing the total usage of electricity in your house but you are also using a source of energy that is renewable and works without leaving waste.
                                                               

There are many types. The roof mounted is one of them. This has a durable high quality two piece construction. This utilizes a solar panel that will collect the rays from the sun and convert it into electricity. This unit will      be used to operate a 24 volt DC motor that is housed in the inside of the power vent. These units are rust resistant and a have a steel dome that is galvanized. These are pretty low profile too. The solar panels are usually located in a separated location from the dome or the roof. There is no separate electrical outlet or installation that is required. Also this will work from sunrise to sunset without costing you any money.


                                                               
The next type is the gable mounted type. This type is used in conjunction with the solar gable attic fans. The best part about these solar vents & spray foam insulation is that the installation of them is really simple. There is no electrical hookup required. This will save you all the trouble from finding a low priced electrician because there are no complicated wirings that you would have to deal with.  All that you need to do is secure the solar panel and the fan. After they are secure, all that is required is the connection of a simple plug from one to another. These systems can be conveniently mounted on your home’s gable and hidden behind a decorative shutter. Also the solar panel will come with brackets. You can use these brackets to mount it on the roof easily.    The solar panels will absorb the incoming rays of the sun and convert it into electricity.
                                                               

The main advantage of using solar vents is that you can save tons on the electricity that you would otherwise use on cooling or heating your home. You are not only conserving energy but also you are making use of a renewable source of energy that does not leave any waste behind. Also these will help to prevent moisture damage to your attic. Normally moisture would enter your attic through daily activities like laundry cooking or bathing. This moisture would get into your attic and cause damage. Using such a setup would prevent such damage by preventing them moisture to accumulate in the first place.
Source: To know more details About Attic Ventilation For commercial Buildings &
spray foam insulation  
visit  http://www.aaffordableinsulators.com/spray-foam.php





Wednesday, 12 October 2011

Save electricity bills by using radiant barriers


 Householders own multitude of choices for enhancement that may bump up the value of their home even as improving its comfort.           

Are you a home owner and thinking to improve your house completely either by repainting a room or have you thought about projects which could add aesthetic value?

Reduce your house’s heat with the help of radiant barrier as it is easy to use, safe to handle and effectual at plummeting heat loss and it can also turn back the extreme rays of the sun during the summer time and keeping the house cooler too.


 



Radiant barrier is a comparatively latest item for consumption that consumers are gradually becoming aware of. It has a reflective opus placed in your attic that reflects heat before it enters your home. Just by applying a coat of paint under the decking surface heat could be transferred and it also seals up the cracks and crevices in the wall. 

Radiant barriers are materials installed in buildings to condense summer heat gain and winter heat loss, also to cut building heating and cooling energy usage.    



The main advantage of attic radiant barrier is that it helps in reducing air-conditioning cooling in warm or hot climates. Radiant barriers generally consist of a slight sheet or veneer of an extremely reflective material, typically aluminum applied to one or double sides of a number of substrate supplies. These substrates consist of Kraft paper, plastic films, cardboard, plywood sheathing, and air infiltration barrier material.
                                  
It is expected that a radiant barrier have the potential to slab 97% of the radiant heat immersed through a roof's surface; this can result in a 30-degree cutback in attic or creep space temperature.


Spray foam insulation: It is a general and an essential thing that we insulate our homes to condense speed of heat loss. The insulation is carried by using spray foam in the opening, chink and the crevice such that there is no amend of heat linking the walls of the house and the environment.
 Some of the Benefits of Spray Foam Insulation Include:
Reduction in sound diffusion, better environment, Keep Pests Outdoors, reduction in noise levels, Reduction in moisture and the development of Mold, apart from this it also has certain benefits like generating improved environment by plummeting dust, dirt, and pollen, Saving Energy structuring effectiveness & a Green Environment, produces air tight thermal seal, stops air and dampness penetration, Makes your home more comfortable, trim down capacity requirements, maintenance and wear of HVAC equipment.



Attic ventilation keeps the loft cooler in the summer and dry in the winter. Attic ventilation keeps the loft cooler in the summer and dry in the winter. Good exposure to air boosts the act of your insulation, expands the life of your HVAC unit and saves you even more money on energy bills.
Benefits of attic ventilation: it extends the life of your roof, cut downs the load on your HVAC system, stops ice damming in colder regions, and diminishes moisture build-up in the loft.

Source : Know More Details About Radiant Barrier by Visiting



 



 


Tuesday, 11 October 2011

A Read up About Attic insulation


When we are considering attic insulation, there are several factors that we should keep in mind. There are two main types of blow in attic insulation. These two are most commonly used. They are cellulose and fiberglass insulation. Also there is the blow in rock wool insulation but the use of it is not so common.
Cellulose, which is most commonly used, is a natural product of wood. It is primarily made out of natural newspaper. To meet the smoke development and flame spread requirements of today’s building codes; a fire retardant chemical is added to the cellulose. The fiberglass insulation material that is used is the same material that batts or roles of the fiberglass insulation except for the fact that it is chopped or cubed so that it can be easily installed with the help of the insulating blowing machine. The fiber glass insulation will typically consist of 20% to 30% of recycled glass.
                                               


The r value of the cellulose that is used is R-3.2 to 3.8 per square inch. The loose filled fiberglass will have an R-value of R-2.2 to 2.7 per inch cube. To achieve the desired R value, you will have to depend on both the depth of the insulation as well as the density.
There are varying R values for ceiling insulation based upon the energy codes as well the climate of your locality.  Based on the type of attic that you have, the code requirements may also vary. For example for joist assembled roof assemblies as well as for attics with single rafter may vary. There is a typically a chart on the insulation bag that will have the accurate depths for the various R values.
                                                  

There are depth markers that are required to be placed in attic space which the WSEC requires to help the inspector and the installer verify the depth of the insulation. These depth markers should be placed within every three hundred square feet of the attic area and these must face towards the attic.
                                                
The depth of the insulation is very important; however, checking the density of the insulation is also equally important.  The blow in insulation type can be fluffed up after it is installed. This is done so that it meets the required depth without actually meeting the required R value. This will settle over time so that the desired R value is achieved as the R value is lowered after it settles down.
The attic card is the easiest way to document the amount of R value installation. These are usually found stapled near the attic access to the truss. This card will also have information that is cited by the federal trade commission. Sometimes a chart is also attached with this.
Source: If you’re Still Unclear about Attic Insulation Visit Our Website www.aaffordableinsulators.com

Friday, 4 March 2011

A Fizzy Ocean on Enceladus

For years researchers have been debating whether Enceladus, a tiny moon floating just outside Saturn's rings, is home to a vast underground ocean. Is it wet--or not? Now, new evidence is tipping the scales. Not only does Enceladus likely have an ocean, that ocean is probably fizzy like a soft drink and could be friendly to microbial life.

The story begins in 2005 when NASA's Cassini probe flew past Enceladus for a close encounter.

"Geophysicists expected this little world to be a lump of ice, cold, dead, and uninteresting," says Dennis Matson of NASA's Jet Propulsion Laboratory. "Boy, were we surprised!"

Tuesday, 1 March 2011

The Two Faces of Tempel 1The Two Faces of Tempel 1


Just one year before its Feb. 14 encounter with comet Tempel 1, NASA's Stardust spacecraft performed the largest rocket burn of its extended life. With the spacecraft on the opposite side of the solar system and beyond the orbit of Mars, the comet hunter's rockets fired for 22 minutes and 53 seconds, changing the spacecraft's speed by 24 meters per second (54 mph). The burn was a result of an international effort to determine something that could very well be indeterminate -- which face of Tempel 1 will be facing the sun when Stardust hurtles by tonight, Feb. 14, the evening of Valentine's Day in the United States.

"Our goal is to re-visit a comet to look for changes that occurred since NASA's Deep Impact mission took a look five-and-a-half years ago," said Tim Larson, Stardust-NExT project manager from NASA's Jet Propulsion Laboratory in Pasadena, Calif.  "We may also see the crater that Deep Impact created in 2005, but because of Tempel 1's rotation, there is no guarantee. At the end of the day, whatever we see there should provide some great new science."

While comets have been observed and postulated on for centuries, cometary science acquired literally "on the fly" is a relatively new field. Since 1984, there have been spacecraft flybys of six comets. Of these, none involved the ability to look for changes that may have occurred as a result of the comet’s orbit around the sun. That is, until Stardust-NExT and Tempel 1 meet tonight.

"You could argue that comet Tempel 1 is the most unique icy dirtball in our solar system," said Joe Veverka, Stardust-NExT principal investigator from Cornell University, Ithaca, N.Y. "Not only does it have many intriguing physical characteristics that fascinate the scientific community, it also has been analyzed and scrutinized time and again from the ground and space."

In January 2007, NASA chose Veverka's plan to revisit comet Tempel 1 with NASA’s already in-flight Stardust spacecraft. Stardust had just completed the mission it was designed for – flying to comet Wild 2, collecting samples of the coma as it hurtled by, and then flying back to Earth to drop off a sample return capsule so scientists could study pieces of comet in their labs.

Ask any spacecraft project manager -- re-tasking a spacecraft designed for a completely different mission is a challenge. To be in the right place at the right time to see changes in surface features on a small celestial body that seemingly changes its rotation rate on a whim and is out of view from observers for most of its five-and-a-half-year orbit about the sun -- that’s something else entirely. But that was the assignment given to Stardust-NExT team members Mike Belton, Steve Chesley and Karen Meech.

"As comets sweep though the inner solar system, they come alive," said Belton, a Stardust-NExT co-investigator from Belton Space Initiatives in Tucson, Ariz. "They belch gas and dust, and this outgassing can not only change their orbits, it can also change their rotation rate."

Determining the comet's rotation rate and which side will be illuminated when is tricky, because the comet had only been seen up close for a short time in July 2005 during the Deep Impact encounter.  From then on, the comet nucleus, about 6 kilometers (3.7 miles) wide, appeared to observers to be little more than a point of light in the sky for even the best telescopes -- including NASA's Hubble Space Telescope. (Tempel 1's orbit takes it as far out as Jupiter's orbit and almost as close as Mars’ orbit.)  But even points of light can bear scientific fruit for astronomers and space scientists. The flattened, oblong Tempel 1 nucleus was no exception.

"Its shape is central to what we could learn about its rotation," said Belton. "A comet reflects the sun's light. When one of its two broad regions is facing us, it gives off more light. When one of its skinnier sides is pointed toward the telescope, it gives off less light. So we felt we could develop an accurate model for the comet's rotation."

The plan was for Belton and Chesley to generate comet rotation models independently. What both needed was data (and a lot of it) on the amount of sunlight Tempel reflected and when. Both knew the source for that information: fellow Stardust-NExT co-investigator Karen Meech. Meech, an astronomer from the University of Hawaii, reached out to her network of fellow astronomers around the world.