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guest article by Barbara Young

Here’s a simple option to learn how solar panels work

What is solar energy ?

Solar power is radiant energy which is produced by the sun. Daily the sun radiates, or sends out, an incredible quantity of energy. The sun radiates more energy in a second than people have used since the beginning of time!

The energy of the Sun originates from within the sun itself. Like other stars, the sun is really a big ball of gases––mostly hydrogen and helium atoms.

The hydrogen atoms in the sun’s core combine to create helium and generate energy in a process called nuclear fusion.

During nuclear fusion, the sun’s extremely high pressure and temperature cause hydrogen atoms to come apart and their nuclei (the central cores of the atoms) to fuse or combine. Four hydrogen nuclei fuse to become one helium atom. But the helium atom contains less mass compared to four hydrogen atoms that fused. Some matter is lost during nuclear fusion. The lost matter is emitted into space as radiant energy.

It takes an incredible number of years for the energy in the sun’s core to make its way to the solar surface, and then just a little over eight minutes to travel the 93 million miles to earth. The solar energy travels to the earth at a speed of 186,000 miles per second, the velocity of sunshine.

Simply a small portion of the energy radiated from the sun into space strikes the earth, one part in two billion. Yet this quantity of energy is enormous. Each day enough energy strikes the usa to supply the nation’s energy needs for one and a half years!

Where does all this energy go?

About 15 percent of the sun’s energy that hits the earth is reflected back to space. Another 30 percent is used to evaporate water, which, lifted in to the atmosphere, produces rainfall. Solar energy is absorbed by plants, the land, and the oceans. The rest could be employed to supply our energy needs.

Who invented solar technology ?

People have harnessed solar energy for years and years. Since the 7th century B.C., people used simple magnifying glasses to concentrate the light of the sun into beams so hot they would cause wood to catch fire. More than a century ago in France, a scientist used heat from a solar collector to make steam to drive a steam engine. At first of this century, scientists and engineers began researching ways to use solar technology in earnest. One important development was obviously a remarkably efficient solar boiler invented by Charles Greeley Abbott, a united states astrophysicist, in 1936.

The solar water heater gained popularity at this time in Florida, California, and the Southwest. The industry started in the early 1920s and was in full swing just before World War II. This growth lasted until the mid-1950s when low-cost propane took over as primary fuel for heating American homes.

The public and world governments remained largely indifferent to the possibilities of solar power before oil shortages of the1970s. Today, people use solar energy to heat buildings and water and to generate electricity.

How we use solar power today ?

Solar power is used in several different ways, of course. There's two very basic types of solar energy:

* Solar thermal energy collects the sun's warmth through one of two means: in water or in an anti-freeze (glycol) mixture.

* Solar photovoltaic energy converts the sun's radiation to usable electricity.

Here are the five most practical and popular ways that solar energy is used:

1. Small portable solar photovoltaic systems. We have seen these used everywhere, from calculators to solar garden products. Portable units may be used for everything from RV appliances while single panel systems are used for traffic signs and remote monitoring stations.

2. Solar pool heating. Running water in direct circulation systems via a solar collector is a very practical method to heat water for your pool or hot spa.

3. Thermal glycol energy to heat water. In this method (indirect circulation), glycol is heated by natural sunlight and the heat is then transferred to water in a hot water tank. Using this method of collecting the sun's energy is much more practical now than ever before. In areas as far north as Edmonton, Alberta, solar thermal to heat water is economically sound. It can pay for itself in 36 months or less.

4. Integrating solar photovoltaic energy into your home or business power. In many parts on the planet, solar photovoltaics is an economically feasible solution to supplement the power of your home. In Japan, photovoltaics are competitive with other types of power. In america, new incentive programs make this form of solar energy ever more viable in many states. A frequent and practical way of integrating solar energy into the power of your home or business is through the use of building integrated solar photovoltaics.

5. Large independent photovoltaic systems. For those who have enough sun power at your site, you could possibly go off grid. It's also possible to integrate or hybridize your solar energy system with wind power or other types of renewable power to stay 'off the grid.'

How can Photovoltaic panels work ?

Silicon is mounted beneath non-reflective glass to produce photovoltaic panels. These panels collect photons from the sun, converting them into DC electrical power. The power created then flows into an inverter. The inverter transforms the power into basic voltage and AC electricity.

Solar cells are prepared with particular materials called semiconductors like silicon, which is presently the most generally used. When light hits the Photovoltaic cell, a specific share of it is absorbed inside the semiconductor material. This means that the energy of the absorbed light is given to the semiconductor.

The energy unfastens the electrons, permitting them to run freely. Pv cells also have more than one electric fields that act to compel electrons unfastened by light absorption to flow in a specific direction. This flow of electrons is a current, and by introducing metal links on the top and bottom of the -Photovoltaic cell, the current can be drawn to use it externally.

What are the advantages and disadvantages of solar power ?

Solar Pro Arguments

- Heating our homes with oil or natural gas or using electricity from power plants running with fossil fuels is a reason behind climatic change and climate disruption. Solar power, on the contrary, is clean and environmentally-friendly.

- Solar hot-water heaters require little maintenance, and their initial investment may be recovered in just a relatively small amount of time.

- Solar hot-water heaters can work in nearly every climate, even just in very cold ones. You just have to choose the right system for your climate: drainback, thermosyphon, batch-ICS, etc.

- Maintenance costs of solar powered systems are minimal and the warranties large.

- Financial incentives (USA, Canada, European states…) can aid in eliminating the price of the initial investment in solar technologies. The U.S. government, for example, offers tax credits for solar systems certified by by the SRCC (Solar Rating and Certification Corporation), which amount to 30 percent of the investment (2009-2016 period).

Solar Cons Arguments

- The initial investment in Solar Hot water heaters or in Photovoltaic Electric Systems is higher than that required by conventional electric and gas heaters systems.

- The payback period of solar PV-electric systems is high, as well as those of solar space heating or solar cooling (only the solar domestic hot water heating payback is short or relatively short).

- Solar water heating do not support a direct combination with radiators (including baseboard ones).

- Some air conditioning (solar space heating and the solar cooling systems) are expensive, and rather untested technologies: solar air conditioning isn't, till now, a truly economical option.

- The efficiency of solar powered systems is rather determined by sunlight resources. It's in colder climates, where heating or electricity needs are higher, that the efficiency is smaller.

About the Author - Barbara Young writes on motorhome solar power in her personal hobby web log 12voltsolarpanels.net. Her efforts are related to helping people save energy using solar energy to eliminate CO2 emissions and energy dependency.

The Morph concept






The Morph concept

WATCH ITS VIDEO HERE
http://www.youtube.com/watch?v=IX-gTobCJHs





















Launched alongside The Museum of Modern Art “Design and The Elastic Mind” exhibition, the Morph concept device is a bridge between highly advanced tec
hnologies and their potential benefits to end-users. This device concept showcases some revolutionary leaps being explored by Nokia Research Center (NRC) in collaboration with the Cambridge Nanoscience Centre (United Kingdom) – nanoscale technologies that will potentially create a world of radically different devices that open up an entirely new spectrum of possibilities.Morph concept technologies might create fantastic opportunities for mobile devices:
Newly-enabled flexible and transparent materials blend more seamlessly with the way we live
Devices become self-cleaning and self-preserving
Transparent electronics offering an entirely new aesthetic dimension
Built-in solar absorption might charge a device, whilst batteries become smaller, longer lasting and faster to charge
Integrated sensors might allow us to learn more about the environment around us, empowering us to make better choices


In addition to the advances above, the integrated electronics shown in the Morph concept could cost less and include more functionality in a much smaller space, even as interfaces are simplified and usability is enhanced. All of these new capabilities will unleash new applications and services that will allow us to communicate and interact in unprecedented ways.

Flexible & Changing Design

Nanotechnology enables materials components that are flexible, stretchable, transparent and remarkably strong. Fibril proteins are woven into a three dimensional mesh that reinforces thin elastic structures. Using the same principle behind spider silk, this elasticity enables the device to literally change shapes and configure itself to adapt to the task at hand.A folded design would fit easily in a pocket and could lend itself ergonomically to being used as a traditional handset. An unfolded larger design could display more detailed information, and incorporate input devices such as keyboards and touch pads.Even integrated electronics, from interconnects to sensors, could share these flexible properties. Further, utilization of biodegradable materials might make production and recycling of devices easier and ecologically friendly.

Self-Cleaning
Nanotechnology also can be leveraged to create self-cleaning surfaces on mobile devices, ultimately reducing corrosion, wear and improving longevity. Nanostructured surfaces, such as “Nanoflowers” naturally repel water, dirt, and even fingerprints utilizing effects also seen in natural systems.

Advanced Power Sources

Nanotechnology holds out the possibility that the surface of a device will become a natural source of energy via a covering of “Nanograss” structures that harvest solar power. At the same time new high energy density storage materials allow batteries to become smaller and thinner, while also quicker to recharge and able to endure more charging cycles.

Sensing The Environment

Nanosensors would empower users to examine the environment around them in completely new ways, from analyzing air pollution, to gaining insight into bio-chemical traces and processes. New capabilities might be as complex as helping us monitor evolving conditions in the quality of our surroundings, or as simple as knowing if the fruit we are about to enjoy should be washed before we eat it. Our ability to tune into our environment in these ways can help us make key decisions that guide our daily actions and ultimately can enhance our health.

Press Material

Other resources

To learn more about the “Design and The Elastic Mind” exhibition at The Museum of Modern Art visit MoMA webpage

To learn more about the Cambridge Nanoscience Centre visithttp://www.nanoscience.cam.ac.uk/

Photonics: The key to life in the 21st century


"The more you know about it, the more you can make it work for you"

Written by The Welsh Opto-electronics Forum

This article will give you a taste of the technology that now affects everyone’s life, and is becoming increasingly important in the 21st century. The 19th century is often seen as the golden age of steam, the 20th century an incredible advancement in electronics; whilst the 21st century is set to be age of photonics or light. This article will also give you an insight into careers that make use of this technology.

WHAT ARE PHOTONICS and OPTO-ELECTRONICS?

Photonics and Opto-electronics are often used interchangeably. However, photonics is concerned with thegeneration (e.g. lasers), control (e.g. optics) and the detection (e.g. photo-multipliers) of light. Opto-electronics is the innovative combination of optics and electronics hardware to produce an exciting new range of products. This technology is powerful because it enables many new technical systems to work effectively. It includes any combination of light or images that works with electronics and can be as simple as the red light emitting diode (LED) that shows you that the TV is on, or as complex as the Hubble telescope in space.

WORLD LEADERS

Wales has many companies working in this area and several of them are recognised as world leaders in the technology. The work can be exciting; to stay in this position the companies need to use state of the art technology in design, manufacturing and testing. Two examples where this can be found are in military systems and in space

Try this experiment: look out of the window, then look back at this text for long enough for your eyes to re-focus and the words to become clear, then look out of the window and refocus your eyes again. How long did this take? 1 second? 2 seconds? When a pilot is flying a fighter aircraft at the speed of sound he cannot spend this amount of time looking away from the target, so the information from the critical instruments is displayed on a special glass panel in front of him, imaged so that his eyes do not have to change focus to read it. To do this well needs very good optical design, high-precision manufacture and advanced technology in holography and optical coatings....and Wales leads the world in this technology, with two companies in North Wales supplying to UK, USA and other Air Forces

On TV you will have seen satellites in space with large solar panels attached. These convert the sunlight directly into electricity, and the material to make solar cells for some of these satellites is made in South Wales. Space is a harsh environment for these electronic materials, and if unprotected the electrical output would fade away in about 18 months - which would mean no satellite TV programmes. To prevent this, greater than 50% of the satellites put up by the western world have their solar cells protected by an extremely thin piece of special glass made in North Wales.

OPTO-ELECTRONICS IN THE HOME

Without realising it, you are using opto-electronics throughout the day; look around for these examples, and imagine how modern life would be without them

Displays. How many displays of numbers that glow red or green do you have in your house? They are to be found on the alarm clock, the TV and video recorder, the microwave cooker and some ovens. There are even more liquid crystal displays which look black on grey; you will find them on watches, calculators, telephones, portable radios, tape and CD players and office machines such as faxes and copiers. Most laptop computers have liquid crystal displays and those in colour include other optoelectronic technology as well. Large flat screen TVs that you can hang on the wall are now available, and the price will soon be down to prices a home can afford.

Communications. When you make a phone call outside your local area you are almost certain to be using an optical fibre link with a laser sending the message down the fibre, and a detector receiving it at the other end. About 70% of the UK trunk lines are now optical fibre, and the rate at which optical fibre is being installed world wide now exceeds Mach 1! Optical fibre can carry far more information than copper wire and is the best way to link computers, outside broadcast TV cameras, Banks, Stock Exchange dealing rooms, etc. Again, in North Wales we have world class companies who make the fibre, the cables, and the electronics and control systems to go with it.

Cameras. Camcorders and Digital still cameras depend on a high quality multi- component optical lens, often with zoom capability - which needs an advanced computer programme to design. The picture is imaged onto an electronic detector with a regular array of extremely small picture elements (pixels). There can be more than 1000 x 1000 of these on an area the size of your thumbnail.

Entertainment. To control your TV you use a controller that sends a coded infra-red beam to the set. This light is detected at the set and converted to the control information. Your CD player uses a laser diode which is imaged onto the surface of the disc by a tiny precision lens made of plastic. Did you see the images of the football players projected onto the Arc de Triomphe after the World Cup final?. This was done using optoelectronic devices - lasers where the beam is switched on and off to create the image as it scans back and forth.

Manufacturing. Lasers are being used more and more for cutting and welding as the beam covers a small area, and can be directed by computer exactly where it is required. Most clothes made in large quantity for High Street stores have been cut to shape using a laser. The gears in your family car have probably been welded to the shaft using a laser. Also, the symbols all over the dashboard that show you (in the dark) where the heater controls are located, have been produced using a different type of laser to remove the black overcoat from a coloured, light transmitting piece of plastic to reveal the symbols.

Energy. The effect of sunlight on various materials, generating a voltage and flow of electrons, give rise to enormous possibilities in generating electricity with no CO2 production. The material most commonly used is silicon. Sharp the world leader in the manufacture of solar cells has its factory in North Wales, supplying 200MW for the European market! At the Technium OpTIC in North Wales the south facing part of the building is covered with 1000m2 of photovoltaic cells (solar cells). This can achieve up to 95kW peak on good days of strong sunshine in summer. However, it will also work on dull days and during the winter months.

IS OPTO-ELECTRONICS HARD TO UNDERSTAND?

Yes and No! If you are a research worker developing a new blue laser for use in the next generation of computer discs, you will be using skills that require more than a University degree, but the great importance of opto-electronics is that it finds many applications in life where what it does is important, and it is not necessary for the user to appreciate completely how it does it. After all, you can make good use of a TV controller without knowing what optics or electronics are inside it, or being able to design one.

But it does help to have some knowledge of the basic concepts, as this will help you to get the best out of the equipment - if you know that light has to come out of the red window on the controller you won’t cover it with your finger.

There are several different types of lasers and they are critical to many optoelectronic applications. What is a laser and how does it differ from a light bulb? There are two main differences; the light from a bulb is produced continuously from a white hot wire; it contains light of all colours and is emitted in all directions. A laser emits light of one colour (or light frequency), in a controlled way in one direction only and because of this high intensities can be achieved. Light can be emitted continuously or in a short burst. The latter gives a high power output over that very short time.

One way of understanding this difference in the way light is emitted is to compare it to sound. Imagine the River Dance group was on a stage and walking around in any direction they liked. The sound would be approximately continuous (but not very loud) and all frequencies are present as there is no control of the time when their feet touch the floor - this is like the light bulb. When they dance in time together, the sound of each footstep is much louder, and the beats come at a regular frequency - this is like the laser. If they all jump in the air and come down at the same time the sound is loudest, and this is like the pulse of the laser. In the laser, special mirrors at each end ensure that all the light comes out in one direction only.

WHAT OPPORTUNITIES ARE THERE FOR CAREERS USING OPTO-ELECTRONICS?

Because it finds application in so many fields, careers that need an understanding of opto-electronics are numerous: doctors use lasers for surgery as do civil engineers for surveying; biochemists use the detection of light emission to monitor the effectiveness of anti-cancer drugs, and even supermarket managers rely on the everyday bar code scanner used for controlling their stock. In depth examples follow.

Knowledge and understanding of opto-electronics comes from studying subjects like Maths, Physics, Chemistry and of course, Technology; studying at GCSE level will introduce you to opto-electronics, and you could go into a lot of depth by choosing an opto-electronics theme for your major project in Technology. Beyond 16, choosing apprenticeships, traineeships, or ‘A’ Levels can all lead to careers with opto-electronics companies in North Wales and beyond. Many employees have studied at Degree level, and they are now influencing the technologies we use everyday, both now and in the future.

CAREERS INVOLVING OPTO-ELECTRONICS

Careers using opto-electronics are for people with a wide range of skills and knowledge at different levels, and include the manufacture of components, design, assembly and testing of systems, technical sales and fundamental research. Some examples of occupations and their use of opto-electronics are:-

Biological Researcher and Technician - uses microscopes with video camera attachment so that images of samples can be enhanced by computer to bring out information not normally visible. By chemically attaching firefly-like molecules to drugs, and by measuring the weak light emitted after treatment, it is possible to measure how effectively they target cancer cells using sensitive opto-electronics.

Civil Engineer - uses a laser beam with a theodelite to create a straight line over long distances to measure the angle of a proposed road bridge from a reference position.

Autofocus camera lens designer - is part of a team who use computer programmes to design the lens, the sensors and electronics to measure the sharpness of the image to control the focus, and CAD (Computer Aided Design) to design the components and housings. Such components may be made with machines which depend on optoelectronic equipment to achieve the required accuracy.

Heating Engineer - uses a Thermal Imaging camera to give a high quality picture showing the temperature distribution across a scene, which enables them to measure heat loss from a poorly insulated factory or the discharge of hot effluent into a river.

Communications System Installer - couples optical fibres to electronic systems to route the information between computers, monitors etc. or to control a production machine.

Conservation Specialist - uses laser beams to blast away the grime that has built up on buildings and statues with less damage than other abrasive techniques.

Environmental Inspector - uses a laser beam projected into the smoke plume from a factory to monitor the levels of the different gases emitted to see if they are within permitted limits.

Quality Control Inspector - uses apparatus which measures the precise colour spectrum of the food product so that e.g. bad beans can be automatically rejected . Sorting of produce of different sizes into bins can be done using the dimensions of the video image.

Surgeon - uses a slip-on device over the patients thumb which monitors an infra-red beam to continuously measure the pulse rate. Also, inserts a fibre optic endoscope into the patient with a camera attached, and when the defect has been located cuts it away with a laser beam which is transmitted down the fibre optic.

Skilled Machinist - uses various types of laser beam under computer control e.g. to cut holes finer than a human hair, treat or decorate the metal surface, or join components together in a vacuum where there is negligible contamination of the weld.

seminars

hello every one ,
i found a good site for paper presentations plz go through this site if u need any seminar topics

Some UnderGraduate Project Ideas




Here are some undergraduate ( B.Tech 4th year) project ideas that are related to robotics and A.I which you can do to increase you experience and exposure in the field. Remember these projects are not quick fix projects generally carried out ( VB ,Oracle, ASP crap , or some simple copying of EFY circuit ) these will require lots of work and research from your side, sometimes loads of money too. 

If you need any help regarding these please go to http://www.roboticsindia.com/

AUTOMATED MISSILE GUIDANCE SYSTEM {Aeronautics/EC} : The idea is a blend of 
aeronautics(amateur),mechanics,mathematics,A.I.,electronics and communication(embedded systems) and of course some real innovative minds.but im sure u gonna blow'em up.No this is'nt a joke.These kinda projects have been done before by undergraduates from different universties.The project needs a fine understanding of mechanics and some state of art virtual processors like MATLAB (the one and only).this one needs real talent.


3-D PAINTER {EC , CS} : First of all this project is a state of art combination of graphics programming and embedded system designs. Its kinda fun making this project.. Actually it works like this -> you move an electronic pen or a small electronic stylus attached to your finger in the AIR and the computer will decode the motion of the stylus(attached to the computer with an embedded system) and convert it into a real time design. Yes this project will be a real time system.Ofcourse the stylus will be having accelerometers.


Autonomous Chess/Checkers Robot [CS/ME/EE]: This project is a big project and will involve expertise in many fields like micro controllers, A.I, kinematics, image processing, speech processing and recognition. This project will involve building a robot arm, which will pick and place the pieces on the board. The board recognition will be provided by web cam and the arm will be controlled by servos (SSC). Voice recognition and Synthesis will be used to interact with the user. You can use chess/checkers module or write your own (min-max). 


Autonomous De-mining Vehicle [CS/EE]: This project though not very big is quite interesting. A Big Study WMR will have to be built, equipped with GPS and other navigational aids it will be able to map an area and detect metal objects and other irregularities in the terrain using metal detectors and web cam. Either is can drop a marker to mark the position of mine or simulate de-mining (place a small charge above the mine and detonating it from a safe distance]. All this data will also build a map of the area, which is available remotely.

Legged Robots [ME/EE]: These projects mainly involve lots of Mechanical design and some basic Electronics to control the robot. You can also put in some sensors and some basic object avoidance. If you want to go ahead make the robot a little advanced make it learn how to walk and put in some kind of behavior. 

Home Robot [CS/EE]: This robot will be quite interesting and you might even keep it at your home once its done. The aim is to build a personal robot equipped with video/audio/speech which will be able to carry out basic tasks like switching off kitchen lights when your in the bedroom, by going to the kitchen and then using IR, switching channels on TV. Talk back to you using some basic NLI. The robot will be a WMR with ability to map its environment and successfully navigate it. All the processing will be done offline using a PC. The camera will be a Wireless blue tooth camera. And you can also use a High bandwidth RF data link to the PC. If you want to save or RF and Wireless cams (they are EXPENSIVE) you can go in for a ITX based embedded system board. 

Balancing Robot [CS/EE]: Though not a very complicated robot this is a iteresting one.You have to build a robot which balances itself and can manover around on two wheels only. The balnce is provided using a combination of Gyroscope and Accelometer. One the balance is achived slight bend towards a direction will make your robot move in that one.REquire more prgramming than electronics / Mech also makes for a interesting project.Search the net as people have built many balacing bots. THere are also ones which balance inverted pendulums etc.

Roomba clone [CS/EE/ME]: Try and clone the functionality of Roomba in our own version of a robot. This robot is usefull as well as cool. Insted of a vaccum u can use a sweeper mechanism like swivel sweeper ( Goole to search for it ). You can put quite some inteligence in your tiny robot if you want to like aumated map building, path finding and other such cool learning features( Depending on the time you have ) . Have fun project is not very exp yet is quite fun and usefull after the thing has been achived.

Autonomous Surveillance robot:These ahve been commen today.We hear of some students doing bots that can track down a person who is struck up inside the debris of a collapsed building or one that can see(actually sense) if a soldier is severely wounded so that he cannot move and carry him to a safer place.Such bots need a high degree of automation and sensing.

plz read according to the numbers given in the titles

I am sorry for the order of posts in embedded electronics...!
 kindly read the topics in embedded electronics according to the page numbers given in the title of the posts

Beginning Embedded Electronics - 11

Common Mistakes, Tips and Tricks

  1. All grounds need to be connected together.
  2. TX/RX loop back trick: When in doubt of a serial conversion circuit, short the TX and RX pins together to get an echo.
  3. Normal length wires for breadboard connections: Don't use a 9" wire where a 2" wire will do.
  4. Minimize short potential in your breadboard wiring: Don't expose an inch of wire from the insulation if all you need is 1/4".
  5. You will learn best when you have a *simple* project to work on. Don't create the 'house-pet robot' just yet.
  6. Google is, of course, your friend. When you don't know, go do some research.
  7. for(x = 0 ; x <>
  8. Soldering basics: Wet your @#$% sponge.
  9. Take your time with ground plane solder joints. Do not be fooled by a cold joint.
  10. Never trick yourself into thinking you're that good. Print out a 1:1 and compare the footprints!
  11. Check that TX and RX are wired correctly to all peripherals. TX/RX swap is the one of the greatest causes of PCB failures.
  12. When laying out a PCB with SMD micros, don't forget to include the programming port!
  13. Don't run silkscreen across pads.
  14. Connector PCB footprint mis-numbering: always check the pin number on your connector - they can have very obfuscated schemes.
  15. In Eagle, use vector fonts only!
  16. Review your gerber files before submitting them.