Thursday, May 12, 2011

Kevin's Grid-Tied, DIY, Micro-Inverter PV System

In a five part blog Kevin goes through the whole process of planning, permitting, getting approvals, and installing a 3.84 KW grid-tie PV system.

3.84 KW grid-tie PV array on roof
After working out what size system made sense, and investigating the local permitting, approval process and net metering arrangement,  Kevin selected a kit that included the PV modules, micro inverters, roof mounting racks, and many of the rest of the parts needed to do the system..

Kevin's system is a roof mount, and he provides some good pictures and description on doing the roof mount and installing the modules and micro-inverters on the mount rails.
Roof mounting rack with micro-inverters installed.

Getting the large, awkward, and expensive PV modules up on the roof deserves some thought -- Kevin came up with a very nice track and sled arrangement to get the modules up on the roof.
Sled to get PV modules on roof.


The rest of the installation covers plugging in the PV modules, adding the AC disconnect and placards, and getting the new net meter installed.

Kevin signed up for the Enphase realtime online tracking for the system, so he (or you) can see how its doing at any given time online right here...


For all the details and pictures on Kevin's system go here to Kevin's blog...

For details on other PV system installation (on and off grid) go here...

With the addition of Kevin's system to the my system and Guy's system, there are now three very detailed descriptions of installing grid-tied, micro-inverter systems at the link just above.
There will also be an article on my system in the next issue of Mother Earth News.

Gary

Wednesday, May 4, 2011

Go to an Energy Fair This Summer

We are coming up on the season for the big energy fairs.  
The MREA in full swing with the 12 workshop tents visible in the background
These are great way to pick up information on energy saving projects of all kinds.

Most of the fairs include workshops, vendor displays, speakers, ...  A a great way to make face to face  contacts with people who are interested in learning about saving energy.

I've listed a handful of the big ones just below, but there is a list of a hundred or so here listed by state...

If you know of a fair that I missed on the list, please email me with the info -- if at all possible, provide a link to a website where people can get the details on your fair. 

Again, the ones listed about are just a small sampling --see my full list here, and also Google for an energy fair in your own area.

Thanks to Gary for reminding me to remind you.


Gary

    Saturday, April 30, 2011

    Thermal Camera Examples and Lessons Learned (so far)

    I recently talked myself into buying a thermal imaging camera -- I've wanted to get one for quite a while, but the $5K+ prices just put them out of reach.  But, FLIR came out with the I series of entry level thermal cameras last year, and then dropped the price quite a bit recently -- it was too much -- I succumbed and bought the I7 model.  They are still not cheap -- the I3 with 60 by 60 resolution is $1200, and the I7 I bought at 120 by 120 resolution was $2000. 

    The FLIR entry level thermal cameras
    I've had the camera for about 2 months now, and have put together a page with some initial experiences, some hints on using these cameras, some example pictures that I thought were interesting, some lessons learned, and a "review" of the I7 camera and software -- all here...

    The camera basically measure IR (heat) radiation from the objects you are taking the picture of.  The camera software uses the IR radiation levels and your estimate of the emissivity of the object to estimate the surface temperatures of the object.  The camera converts the temperatures into a colored image where each temperature maps to a color shade. 

    The camera produces images like this:
    Thermal image of Kristy the dog.
    As one quick example...

    My main reason for buying the camera was to be able to get an understanding of temperatures on the absorber and glazing of solar collectors with an eye toward making changes to the collector to improve heat output.  This is something that is hard to do with ordinary instruments as its really helpful to know what's going on all over the absorber surface, not just in a few points.  For my camera with 120 by 120 resolution its kind of like being able to place 14000 thermocouples on the absorber -- amazing!

    This is an image of a backpass style solar air heating collector.

    Backpass style solar air heating collector.
    As you can see, it shows the surface temperatures of the full absorber from where the cool air enters in the upper left down the serpentine path through the internal baffles and out the lower right.
    You can see immediately that there are places where the absorber is running much hotter -- these correspond to pockets of dead air where baffles are not working well.  In these areas, the absorber just heats up until it can lose most of its heat out the glazing, which makes the collector less efficient.
    I don't know of any other way to get this kind of detialed picture of what's going on.

    Anyway, there is quite a bit more at the link above -- have a look.

    Gary April 30, 2011

    Friday, April 29, 2011

    Detailed Pictures of Grid Tied PV Array at Craters of the Moon National Monument

    On a recent vacation trip we stopped at Craters of the Moon national monument.  The visitor center at Craters had a nicely done grid-tied solar electric array.  I thought that the array showed some nice construction detail, and took quite a few pictures. 


    The pictures below  show a sampling of some of the construction details that I thought might be helpful to people building PV installations.  The link below goes to many more pictures showing construction detials.

    I might add that Craters of the Moon has a lot more interesting things to look at than PV arrays, but I figure those things are covered in a lot of other places :)  The drive up from Twin Falls Idaho along US 93 and then Idaho 33 toward Craters of the Moon was exceptional.

    Nice simple mount system using galvanized steel pipe.
    Standard industrial fittings couple the rack pipes togehter.
    While this array is fairly large (50 KW!), it is modular and similar to ones you might put on your house. 
    Lots more pictures showing the details of the Craters PV Array construction...

    The string inverter makes for simple wiring and is mounted right on the rack verticals.


     
    Gary April 29, 2011

    Thursday, April 28, 2011

    Series of Articles on DIY LEDs

    Backwoods Home Magazine is just finishing up a good 3 part series of articles on LEDs by Tim Thorstenson.
    The articles provide a good understanding of LED basics and are easy to understand.



    The articles might be of particular interest to those who want to experiment with building your own LED lights from components.

    This is the link to part one of the three parts...


    Gary April 28, 2011

    Tuesday, April 19, 2011

    Heat Transfer in a Solar Air Heating Collector Made with Gutter Downspouts

    An interesting solar air heating collector design to come up recently is made from ordinary aluminum gutter downspouts.  The downspouts are laid out side by side to from the collector absorber.  The downspouts are all connected to air supply and return plenums run along the top and bottom of the collector.  Air is forced through the collector and picks up heat from the sun heated gutters.

    This is a picture of a downspout collector from Scott's site...
    Amoung the advantages of the downspout collector are that 1) there is no forced airflow against the glazing, which tends to reduce heat loss out the glazing, 2) the plenum and downspouts provide for an even distribution of air over the full absorber surface and minimizes hot spots with poor circulation, and 3) the heat transfer area from absorber to air (a bottleneck in many solar air heating collector) is good due to the large heat transfer surface area of the downspouts.

    But, the last advantage of lots of surface area to transfer heat from downspouts to air is only true if the heat from the sun side of the downspout gets conducted around the sides and back to warm them up.  This test was done to see if that happens -- that is, is there really good heat transfer around the full circumference of the gutter section so that heat is transferred to the air by the full surface.

    The not very ambitious test setup consists of 3 downspout tubes connected to an air supply plenum.  Air is supplied to the plenum by a small fan, and the temperatures of the front ant the back of the gutter tubes is measured with a thermal imaging camera (my new toy instrument).  Here is a picture of the setup.


    The insulation panel on the back is to better simulate the actual collector environment -- it is quickly removed before taking the temperatures on the back side.

    These are thermal images of the front and back while the collector is in operation.

    Front of the collector


    Back of the collector
    Its pretty clear just from the images that quite a bit of heat does make its way around the sides and back, and while they run a bit cooler than the front, they are still quite a bit hotter than the airflow and that some heat transfer is taking place around the full periphery.  So, this seems like a plus for the downspout collector.

    More details and analysis on the test of the downspout collector here...

    Gary

    Wednesday, April 13, 2011

    A Little Testing on the Effect of Shadows on PV Array Output

    There was a question on the Greenbuilding List the other day about whether shadows from a nearby power line would drop the power output form a PV array significantly.  I did a little bit of testing using my PV array and some pipes to simulate shadows, and thought the results were interesting enough to pass along.

    My PV array is 10 modules and uses the Enphase micro inverters, so each panel has its own inverter, and the power output from each panel can be indepenently tracked.  So, I used pipes to make simulated wire shadows on some panels while using the output from the unshaded panels as a control.

    PV array with 4 of the panels shaded.
    Closeup of "wire" shading.
    In a nutshell, its possible to get some pretty serious power drops when you use relatively lareg simulated wires that are pretty close to the panel (as in the picture just above), but when the wire diameters drop down to a bit over half an inch the effect (at least on my panels) becomes small.  As the distance from the panels to the wire increases, I believe the effect will become even smaller as the shadows appear to fill in with distance.

    Here is the grand result showing power output form all of the panels for the two tests (big wires and small wires):

    There is a lot more detail at the link below, with actual power drops for the eight different shading conditions I looked at.

    All the details on PV array shading from power lines...

    Another small shading investigation done earlier...

    Gary

    Sunday, April 10, 2011

    Simple Stuff

    I just saw a YouTube video on a nice, simple, efficient setup for washing the laundry by hand...



    I really like nice simple solutions -- I think we tend to make things much more complicated than they need to be and end up being slaves to or labor saving junk.






    So, here is a list of a few of my favorite simple ideas and projects.



    Bubble Wrap Window Insulation...



    Just spray a little water on the window, and apply bubble wrap.  Instant R1 added.












    Electric Mattress Pad to Save Heating Fuel...


    An electric mattress pad keeps you warm at night and allows you to turn the thermostat down further and still be very comfortable.  Simple and easy and saves a surprising amount of energy...












     Hippo Rollers...


     One of my all time favorite simple solutions!













     Judy of the Woods...

     I think Judy has if figured out.















     Eight Simple Projects that Cost $380 and Save $900 a year...

     You can spend $40K on a PV array and save 10,000 KWH a year, or you can spend $380 on projects like these and save 10,000 KWH a year.  Why do so many people choose the PV at 100 times the price for the same saving?













    Got any simple projects/ideas you would like to add???

    Gary

    Monday, March 28, 2011

    Earthbag Construction

    I added a new (small) section on Earthbag home construction here...

    This was prompted by seeing a TV program on the home of Kelly and Rosanna Hart in Colorado.  Its an earthbag house that they constructed themselves over a three year period.  The house is beautifully done with with each room hand crafted for its purpose.


    The home uses a lightweight volcanic rock for the bag fill in order to increase the insulation value.  I'm still not clear on what the actual R value of the walls/roof are -- anyone have a good source of information on this?
    It would be nice to know how cold a climate this type of construction makes sense in.


    The outer covering of the house (over the earthbags) is papercrete.  An interesting house to say the least.
    Beautifully handcrafted interior.


    Total cost of the house was $49,900 including land and a solar electric system!  Dirt cheap (sorry).

    The EarthbagBuilding.com and the Earthbag Building book that are listed are both quite good  -- lots of hands on material.  The EarthbagBuilding.com website is run by Kelly Hart.

    The TV program mentioned above is Offbeat America, season 3, episode 1 on The Travel Channel -- it has a nice 10 minute tour of the house.

    Gary

    Thursday, March 17, 2011

    Cristian's Earth Sheltered Passive Solar Home in Romania

    Cristian is an engineer in Romania, and has designed, built, and lived in this passive solar, earth sheltered house for two years. 

    The house is very carefully laid out to make maximum use of space and and the solar heating and lighting opportunities.


     The house features:
    1. Earth sheltering on three sides with a carefully designed PAHS style insulation umbrella that uses the surrounding earth for thermal storage.
    2. Passive solar gain through the south triple glazed windows.
    3. Active solar through several Trombe walls integrated into the south wall.
    4. An extensive earth tube system that pre-heats incoming fresh air and recovers heat from outgoing stale air.
    5. A carefully designed back up wood heating system.
    6. Solar water heating
    7. Provisions for solar electricity.

    The house has a very light and open feeling.
    The house is located at 45 degrees north latitude and has a serious winter -- the total heating bill for the past two winters has been $70 worth of wood -- about 0.6 cords.

    Cristian says it took about 50 versions to get to this final design, and I can believe it -- it shows a lot of careful design work.

    This shows the PAHS type insulation umbrella being installed.  This
    basically allows earth around the house to act as thermal storage for the house.
    Diagram of the layout for the insulation umbrella, drainage tubes, and earth tubes.




     All the details on the design and construction of Cristian's home...


    Thanks very much to Cristian for sending in this detailed description of the house!

    Gary 
     
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