diy solar panel 60 watt - tutorial
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How I built an electricity producing Solar
Panel It was easy. You can do it too
Several yearsago I boughtsome remoteproperty inArizona. I am anastronomer andwanted a place
to practice myhobby far awayfrom the sky-wrecking lightpollution foundnear cities of anyreal size. I founda great piece ofproperty. The
problem is, it's so remote that there is no electric service available.
That's not really a problem. No electricity equals no light pollution.However, it would be nice to have at least a little electricity, since somuch of life in the 21st century is dependant on it.
I built a wind turbine to provide some power on the remote property. Itworks great, when the wind blows. However, I wanted more power, andmore dependable power. The wind seems to blow all the time on myproperty, except when I really need it too. I do get well over 300 sunnydays a year on the property though, so solar power seems like theobvious choice to supplement the wind turbine. Solar panels are very
expensive though. So I decided to try my hand at building my own. Iused common tools and inexpensive and easy to acquire materials toproduce a solar panel that rivals commercial panels in powerproduction, but completely blows them away in price. Read on for stepby step instructions on how I did it.
Let me state up front that I probably won't be able to help you out muchif you decide to build your own solar panel(s). This web site has becomeinsanely popular, often taxing the bandwidth limits of the server. I getdozens of requests for help each day. I simply don't have time to answer
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the majority of them. Most of the questions and requests I get are thesame ones over and over again. I have crated a FAQ to handle these
repetitive questions. Please read it before emailing me. Simplequestions, not covered by the FAQ,which only require a quick andsimple answer may get replies if time permits. However, there is no wayI can help you out with complex issues, teach you electronics theory,help you locate parts, build a charge controller for you, or custom designa system for you. There just aren't enough hours in the day. Sorry.
So what is a solar panel anyway? It is basically a box that holds anarray of solar cells. Solar cells are the things that do the actual work ofturning sunlight into electricity. However, it takes a lot of cells to make a
meaningful amount of power, and they are very fragile, so the individualcells are assembled into panels. The panels hold enough cells to makea useful amount of power and protect the cells from the elements. Itdoesn't sound too complicated. I was convinced I could do it myself.
I started out the way I start every project, by Googling for information onhome-built solar panels. I was shocked at how few I found. The fact thatvery few people were building their own panels led me to think it mustbe harder to do than I thought. The project got shelved for a while, but Inever stopped thinking about it.
After a while, I came to some conclusions:
• The main stumbling block to building solar panels is acquiringsolar cells at a reasonable price.
• New solar cells are very expensive, and can even sometimes behard to find in quantity at any price.
• Blemished and damaged solar cells are available on and otherplaces at a fraction of the cost of new perfect cells.
• These second rate solar cells could probably be used to make a
solar panel that would work just fine.
Once I came to the realization that I could use blemished and factory-second solar cells to build my panels, I finally got to work. I started bybuying some solar cells off of
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I bought a coupleof bricks of 3 X 6
mono-crystallinesolar cells. Ittakes a total of36 of these typesolar cells wiredin series to makea panel. Eachcell producesabout 1/2 Volt.36 in series
would give about18 volts whichwould be goodfor charging 12
volt batteries. (Yes, you really need that high a Voltage to effectivelycharge 12 Volt batteries) This type of solar cell is as thin as paper andas brittle and fragile as glass. They are very easily damaged. The sellerof these solar cells dips stacks of 18 in wax to stabilize them and makeit easier to ship them without damaging them. The wax is quite a pain toremove though. If you can, find cells for sale that aren't dipped in wax.
Keep in mind though that they may suffer some more damage inshipping. Notice that these cells have metal tabs on them. You wantcells with tabs on them. You are already going to have to do a lot ofsoldering to build a panel from tabbed solar cells. If you buy cellswithout tabs, it will at least double the amount of soldering you have todo. So pay extra for tabbed cells.
I also bought acouple of lots of
cells that weren'tdipped in waxfrom anotherseller. Thesecells camepacked in aplastic box. Theyrattled around inthe box and got
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a little chipped up on the edges and corners. Minor chips don't reallymatter too much. They won't reduce the cell's output enough to worry
about. These are all blemished and factory seconds anyway. The mainreason solar cells get rejected is for chips. So what's another chip ortwo? All together I bought enough cells to make 2 panels. I knew I'dprobably break or otherwise ruin at least a few during construction, so Ibought extras.
There are lots of other sizes of solar cells besides 3 X 6 inchesavailable. You could use larger or smaller cells for your panel. Just keepa few things in mind.
• Cells of the same type all produce the same voltage no matterwhat size they are. So the same number of cells is alwaysneeded.
• Larger cells produce more current (Amps) and smaller cellsproduce less current.
• The total power your panel can produce is determined by Amps XVolts.
So using bigger cells produces more power, but the panel will be large
and heavy. Using smaller cells keeps the panel small and light, butwon't produce as much power. Also, mixing cell sizes is not a good idea.This is because the current your panel can produce will be limited by thesmallest cell in the group and the larger cells won't work to their fullpotential.
The cells I settled on are 3 X 6 inches in size and are rated at roughly 3amps. I will wire 36 of them in series to get a little over 18 volts. Theresult should be a panel capable of delivering almost 60 Watts of power
in bright sunlight. It doesn't sound like a lot, but it sure beats no power atall, which is what I had on my property before. And that is 60 Watts allday when the sun is shining. That power will go into charging batterieswhich will primarily be used for powering lights and small appliances foronly a few hours after dark. Once I go to bed, my power requirementsdrop to almost nothing. So 60 Watts is actually quite a lot of usefulpower, especially when I also have my wind turbine adding to the powerproduction when the wind is blowing.
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After you buy your solar cells, put them away in a safe place where theywon't get dropped, played with by the kids, or eaten by the dog until you
are ready to install them in the panel. These cells are very fragile.Rough treatment and excessive handling will turn your expensive solarcells into little,blue, shinyshards that aren'tuseful foranything.
A solar panel isreally just a
shallow box. So Istarted out bybuilding myself ashallow box. Imade the boxshallow so thesides wouldn'tshade the solarcells when thesun comes at an
angle from the sides. It is made of 3/8 inch thick plywood with 3/4 X 3/4pieces of wood around the edges. The pieces are glued and screwed inplace. This panel will hold 36 3 X 6 inch solar cells. I decided to make 2sub-panels of 18 cells each just so make it easier to assemble later. Sothere is a center divider across the middle of the box. Each sub-panelwill fit into one well in the main panel.
Here is my sortof back of the
envelope sketchshowing theoveralldimensions ofthe solar panel.All dimensionsare in inches(sorry you fansof the metricsystem). The
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Next I cut twopieces of
masonite peg-board to fit insidethe wells. Thesepieces of peg-board will be thesubstrates thateach sub-panelwill be built on.They were cut tobe a loose fit in
the wells. Youdon't have to usepeg-board forthis. I just
happened to have some on hand. Just about any thin, rigid and non-conducting material should work.
To protect the solar cells from the weather, the panel will have aplexiglass front. Here two pieces of scrap plexiglass have been cut to fit
the front of the panel. I didn't have one piece big enough to do the wholething. Glass could also be used for this, but glass is fragile. Hail stonesand flying debris that would shatter glass will just bounce off the plexi.Now you can start to see what the finished panel will look like.
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Oops! This photoshows a close-
up of where thetwo halves of theplexiglass covermeet over thecenter divider. Idrilled andcountersunkholes all aroundthe edges ofboth pieces of
plexiglass so Icould screwthem onto theface of the panel
with 1 inch drywall screws. Be careful working close to the edge of theplexi. If you get to aggressive it will break, as happened here. I justglued the broken piece back in and drilled another hole a short distanceaway.
Next I gave allthe wooden partsof the panelseveral coats ofpaint to protectthem frommoisture and theweather. Thebox was paintedinside and out.
The type of paintand color wasscientificallychosen byshaking all thepaint cans I had
laying around in my garage and choosing the one that felt like it hadenough left in it to do the whole job.
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The peg-boardpieces were also
painted. Theygot several coatson both sides.Be sure to paintthem on bothsides or they willcurl whenexposed tomoisture. Curlingcould damage
the solar cellsthat will be gluedto them.
Now that I had the structure of the panel finished, it was time to get thesolar cells ready
As I said above,getting the waxoff the cells is areal pain. Aftersome trial anderror, I came upwith a way thatworks fairly well.Still, I wouldrecommendbuying from
someone whodoesn't dip theircells in wax. Thefirst step is abath in hot water
to melt the wax and separate the cells from each other. Don't let thewater boil or the bubbles will jostle the cells against each other violently.Also, boiling water may be hot enough to loosen the electricalconnections on the cells. I also recommend putting the brick of cells inthe water cold, and then slowly heating it up to just below boiling
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temperature to avoid harsh thermal shocks to the cells. Plastic tongsand spatulas come in handy for teasing the cells apart once the wax
melts. Try not to pull too hard on the metal tabs or they may rip off. Ifound that out the hard way while trying to separate the cells. Goodthing I bought extras.
This photoshows thecomplete setup Iused. Mygirlfriend asked
what I wascooking. Imagineher surprisewhen I said solarcells. The initialhot water bathfor melting thewax is in theright-rear. On theleft-front is a
bath of hot soapywater. On the right-front is a bath of hot clean water. All the pots are at
just below boiling temperature. The sequence I used was to melt thebricks apart in the hot water bath on the right-rear. I'd tease the cellsapart and transfer them one at a time to the soapy water bath on theleft-front to remove any wax on the cell. Then the cell would be given arinse in the hot clean water on the right-front. The cells would then beset out to dry on a towel. You should change the water frequently in thesoapy and rinse water baths. Don't pour the water down the sinkthough, because the wax will solidify in your drains and clog them up.
Dump the water outside. This process removed almost all the wax fromthe cells. There is still a very light film on some of the cells, but it doesn'tseem to interfere with soldering or the working of the cells. A solventbath would probably remove the rest of the wax, but that would bedangerous and stinky since the only solvents I could think of that wouldcut wax are either flamable, toxic or smelly, or all three.
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Here are someseparated and
cleaned solarcells drying on atowel. Onceseparated fromtheir waxstabilized brickform, they areamazingly fragileand difficult tohandle and
store. I wouldrecommendleaving them asbricks until you
are ready to install them in your panel. That way you won't wreck thembefore you get to use them. So build the panel first. Now it's time to startinstalling them in the panel
I started out by
drawing a gridpattern on eachof the two piecesof pegboard,lightly in pencil,so I would knowwhere each ofthe 18 cells onthem would belocated. Then I
laid out the cellson that gridpattern upside-down so I couldsolder them
together. All 18 cells on each half panel need to be soldered together inseries, then both half panels need to be connected in series to get thedesired voltage.
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Soldering the cells together was tricky at first, but I got the hang of itfairly quickly. Start out with just two cells upside-down. Lay the solder
tabs of one cell across the solder points on the back of the other cell. Imade sure the spacing between the cells matched the grid pattern.
I used a low-Wattagesoldering ironand fine rosen-core solder. Ialso used a
rosen pen on thesolder points onthe back of thecells beforesoldering. Use areal light touchwith thesoldering iron.The cells are thinand delicate. If
you push too hard, you will break the cells. I got careless a couple oftimes and scrapped a couple of cells.
I repeated theabove steps andsoldered solarcells togetheruntil I had astring of six cells.
I soldered tabsfrom scrappedcells to thesolder points onthe back of thelast cell in thestring of six.Then I repeatedthe wholeprocess two
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more times to get three strings of six cells for a total of 18 for this half ofthe panel.
The three strings of cells need to be wired in series. So the middle stringneeds to be rotated 180 degrees with respect to the other two. I got thestrings oriented the way I wanted them (still upside-down) on top of thepegboard panel before the next step of gluing the cells in place.
Gluing the cellsin place provedto be a little
tricky. I placed asmall blob ofclear siliconecaulk in thecenter of eachcell in a six cellstring. Then Iflipped the stringover and set inplace on the
pencil line grid Ihad laid outearlier. I pressed
lightly in the center of each cell to get it to stick to the pegboard panel.Flipping the floppy string of cells is tricky. Another set of hands may beuseful in during this step.
Don't use too much glue, and don't glue the cells anywhere but at theircenters. The cells and the panel they are mounted on will expand,contract, flex and warp with changes in temperature and humidity. If you
glue the cells too tightly to the substrate, they will crack in time. gluingthem at only one point in the center allows the cells to float freely on topof the substrate. Both can expand and flex more or less independently,and the delicate solar cells won't crack.
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Next time I willdo it differently. I
will solder tabsonto the backs ofall the solar cells.Then I will glueall the cells downin their properplaces. Then Iwill solder thetabs together. Itseems like the
obvious way togo to me now,but I had to do itthe hard way
once to figure it out.
Here is one half panel, finally finished.
Here I used copper braid to interconnect first and second strings of
cells. You could use solar cell tabbing material or even regular wire. I just happened to have the braid on hand. There is another similarinterconnection between the second and third strings at the oppositeend of the board. I used blobs of silicone caulk to anchor the braid andprevent it from flopping around.
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Here I am testingfirst half panel
outside in thesun. In weak sunthrough cloudsthe half panel isproducing 9.31Volts. YAHOO! Itworks! Now all Ihad to do is buildanother one justlike it.
Once I had twohalf panelscomplete, I could
install them in their places in the main panel frame and wire themtogether.
Each of the half panels dropped right into their places in the main panelframe. I used four small screws (like the silver one in the photo) to
anchor each of the half panels in place.
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Wires to connectthe two half
panels togetherwere run throughthe vent holes inthe centraldivider. Again,blobs of siliconecaulk were usedto anchor thewire in place andprevent it from
flopping around.
Each solar panelin a solar powersystem needs ablocking diode inseries with it toprevent thepanel fromdischarging yourbatteries at nightor during cloudyweather. I used aSchottky diodewith a 3.3 Ampcurrent rating.
Schottky diodeshave a muchlower forward voltage drop than ordinary rectifier diodes, so less poweris wasted. Every Watt counts. I got a package of 25 31DQ03 Schottkydiodes on for only a few bucks. So I have enough left-overs for lotsmore solar panels
My original plan was to mount the diode inline with the positive wireoutside the panel. After looking at the spec-sheet for the diode though, Idecided to mount it inside since the forward voltage drop gets lower as
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the temperature rises. It will be warmer inside the panel and the diodewill work more efficiently. More silicone caulk was used to anchor the
diode and wires.
I drilled a hole inthe back of thepanel near thetop for the wiresto exit. I put aknot in the wiresfor strain relief,
and anchoredthem in placewith yet more ofthe siliconecaulk.
It is important tolet all the siliconecaulk cure well
before screwing the plexiglass covers in place. I have found through
past experience that the fumes from the caulk may leave a film on theinside of the plexiglass and the cells if it isn't allowed to thoroughly curein the open air before screwing on the cover.
And still moresilicone caulkwas used to sealthe outside of thepanel where the
wires exit.
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I added apolarized two-pin
jones plug to theend of the panelwires. A matingfemale plug willbe wired into thecharge controllerI use with myhome-built wind
turbine so thesolar panel cansupplement it'spower productionand batterycharging
capacity.
UPDATE:
10/12/09 I've been gettinga lot of emailsfrom peoplegiving me grieffor using a maleplug on the solarpanel. They saythat powersources should
always havefemale pugs onthem to preventshort circuits. Iunderstand their
point. However, the reason I used the male plug on the solar panel isbecause there is a much greater danger of a short circuit on the cablegoing to the charge controller and battery bank. The solar panel canonly supply 3 Amps to a short circuit at most. The battery bank thoughcould pump hundreds or possibly thousands of Amps through a short
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circuit. That is enough energy to do serious damage. So I put the femaleend on the cable to the charge controller. Still, I agree that it is
dangerous to have a male plug on the solar panel. On a recent trip toRadio Shack I found this sort of plug. It only cost a few bucks and willsolve the potential short circuit problem. When unplugged, neither endcan short out.
Here is thecompleted panelwith theplexiglass covers
screwed intoplace. It isn'tsealed shut yetat this point. Iwanted to waituntil after testingit because wasworried that Imight have to getback inside it if
there wereproblems. Sure
enough, a tab popped off one of the cells. Maybe it was due to thermalstresses or shock from handling. Who knows? I opened up the paneland replaced that one cell. I haven't had any more trouble since. I willprobably seal the panel with either a bead of silicone caulk, or aluminumAC duct tape wrapped around the edges.
Here I am testing
the Voltageoutput of thecompleted panelin bright wintersunlight. Mymeter says 18.88Volts with noload. That'sexactly what Iwas aiming for.
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Here I am testingthe currentcapacity of thepanel, again inbright wintersunlight. Mymeter says 3.05Amps shortcircuit current.That is right
about what thecells are ratedfor. So the panelis working verywell.
So how much did all this cost to build? Well, I saved all the receipts foreverything I bought related to this project. Also, my workshop is wellstocked with all sorts of building supplies and hardware. I also have a lot
of useful scrap pieces of wood, wire and all sorts of miscellaneous stuff(some would say junk) laying around the shop. So I had a lot of stuff onhand already. Your mileage may vary.
Part Origin Cost
Solar Cells $74.00*
Misc. Lumber Homecenter Store $20.62
Plexiglass Scrap Pile $0.00
Screws & Misc. Hardware Already on hand $0.00
Silicone Caulk Homecenter Store $3.95Wire Already on hand $0.00
Diode $0.20±
Jones Plug Newark Electronics $6.08
Paint Already on hand $0.00
Total $104.85
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Not too bad. That's a fraction of what a commercially made solar panelwith a comparable power output would cost, and it was easy. I already
have plans to build more panels to add to the capacity of my system. I'llpost more here as the project evolves. Stay tuned
* I actually bought 4 lots of 18 solar cells. This price represents only the two lots that went intobuilding this panel. Also, the price of factory second solar cells on has gone up quite a lotrecently as oil prices have skyrocketed.
± This price represents 1 out of a lot of 25 diodes I bought on for $5.00.
UPDATE07/18/08
Once again Istayed on myremote propertyduring my recentvacation inArizona. Thistime I had bothmy home-builtwind turbine and
my home-builtsolar panel withme. Workingtogether, theyprovided plentyof power for my
(admittedly minimal) electricity needs.
Here is a close-
up of the solarpanel in action. Ihave to move itseveral timeseach day to keepit pointed at thesun, but that isn'treally a bighardship. Maybesomeday I will
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build a tracking system to automatically keep it aimed at the sun.
UPDATE 10/12/09
Here is a close-up of the solarpanel afterhaving the edgessealed withaluminum tape.This is not the
cheap duct tape.This is the thinmetal tape withan adhesivebacking. Iapplied it all theway around theedges of thepanel and across
the center seam. I burnished it down well to make a good seal. I was
careful to punch out the vent holes so they wouldn't be blocked. Thetape seems to be quite weather-proof, and the panel seems to bethoroughly sealed and protected. Only time will tell how well it works.However, since my panels are only outdoors when I am staying on myremote property, and are not exposed to the weather all the time, Isuspect it will hold up well for a long time.
The Aluminumtape gives the
panel a wholenew look. It lookslike the frame ismade of metal,rather thanwood. To myeye, it looks a lotmoreprofessional.
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I have alsocompleted asecond solarpanel. This is asmaller 15 Wattpanel. It folds upfor easierstorage andtransportation.Click the photo
to learn moreabout it.
This tutorial is not a property of Solar-Deals.com. The original document is found at the following link. This document has beenconverted into PDF version and may or may not been modified. Source: http://www.mdpub.com/SolarPanel/