Showing posts with label building. Show all posts
Showing posts with label building. Show all posts

Building a Geodesic Dome Greenhouse Part 2


Here is the second video in the series of building a geodesic dome greenhouse.  It covers 3 different hub designs (and failures) along with the details of how they are assembled.  I’m trying not to make them too boring, but after all, its just a bunch of diagrams, cutting and welding.  At least you can see some sparks fly!  There’s a couple of bloopers at the end too!
 

Below is the transcript from the video:

In this video I will discuss the hub design for this dome and the next video in the series will detail the strut design.  This is 3V 3/8th dome so it will require a total of 46 hubs consisting of twenty-five 6-way, six 5-way and fifteen 4-way hubs that will be used along the base.  Because of the large span, this dome is going to need a hub that can withstand a great deal of compression force.  Plus, it must be able to withstand the downward force from heavy snow loads during the winter.

The first hub design had hanger bolts anchored into the end of each strut.  The end of each bolt would go through a hole in a piece of schedule 40 3-1/2” steel pipe which was used at the hub.  The strut was tightened to the hub with a washer and nut.  This is the first prototype using the hanger bolt method and a PVC hub.  The triangulation between each section was extremely strong.  When I created a full scale prototype, the leverage of a full length strut and removal of the triangulated pieces cause the hanger bolts to easily pull out of the end of the struts.

The second hub design was similar to the hanger bolt design, except a hole was drilled through the strut and a washer and nut was inserted.  This was to create enough surface area to prevent the bolt from pulling through the wood.  However, testing a full scale prototype proved to be too much force against the strut and the bolt acted as a level and split the wood.

The third hub design is completely different. The strut is sandwiched between two spokes.  Flat bar-stock is welded to the hub at the appropriate angles and a bolt is placed through the top spoke, through the strut and fastened with a nut under the bottom spoke. This full-scale prototype shows how 4 spokes of a 6 spoke hub would be assembled.  A load test shows it can support my body weight on only 4 spokes, plus none of the other struts are used to strengthen the legs.  There was some slight bending of the bolts from my bouncing but there was no hardware failure.  Regardless, the final design will use 3/8th inch bolts instead of 5/16th.

The central hub is made from 3 ½” galvanized rigid conduit which is about ¼” thick.  The conduit is cut into 3 ½” lengths.  The galvanized zinc is ground off wherever the spokes are to be welded.  Please note that working with galvanized material, especially using abrasion cutting equipment or welding should be done in a well-ventilated area.  Also, you should always wear gloves and safety glasses.

I made up a jig that will safely hold the bar stock to the drill press.  It allows me to consistently drill a pilot hole in the same location near the end of the stock.  Since I have 480 holes to drill, creating jigs and templates is crucial for building an accurate hub.  Once the pilot holes are drilled, I switch over to a stepped bit that will finish the hole at the proper size.  I then flip the piece over and gently remove any tear-out from the bottom of the hole.  Once the holes are in the end of the stock, I then cut it to the correct lengths.  I built a stop for my abrasion saw so I could cut each piece to the same length.  After cutting off the ends, I can go back to the drill press and drill a new set of holes for the next set of spokes.

Now it’s time to start assembling!  This template has markings on it so I know where the locations are for the 5 spoke or 6 spoke hubs.  I just place the hub over the template and draw a small mark on the hub.

This jig is used to accurately weld the spokes to the hub.  The hub is placed over the post and each spoke is held in place with a pin.  By using this jig, I can weld a complete hub in less than 15 minutes.

All the pieces are welded together with a standard MIG welder.  Another safety note:  Please weld in a well-ventilated area and free from items that can catch on fire.  Also wear the appropriate gear to avoid burns from the hot metal and use a welding helmet to prevent blindness.  Keep fire suppression equipment nearby at all times.  No one else should be in the area while using a welder.

When each hub is complete, any dirt and rust is removed by sandblasting and is then painted with cold-galvanizing paint to prevent future rusting.  I hope you enjoyed this video on making a hub for the geodesic dome.  The next video will show how the struts are made.  Thanks for watching!

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Hanging It All On The Line

Why build support posts when you can use a super-strong dome?!?!




I needed to come up with a way to support and spread out some of my vine plants in the greenhouse. By removing a nut on the hubs and installing a coupling and eye bolt, it is an extremely strong point for attaching a cable system to act as a trellis.

Installing it is very simple, loop the cable through on one end and clamp it, feed it through another eye bolt on the other side of the dome, and bring it to another eye bolt to figure out the final length.  On this end, I loop it through a turn buckle.

Alright, moving right along….

Then just hook the turnbuckle into the last eye bolt and tighten the cable.

All that is left to do is to tie the plants on to the cables.  I also run some twine down to the grow beds so that the cucumbers can grow up it and attach to the wire.  Here’s a shot of the tomato and cucumber once they have really started to grow along the line.



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Building the Chicken Tractor Taking the Chickens Out to Eat



In this video, I am working on the conversion of the chicken run into a chicken tractor. There are several reasons why I would like to do this. The chickens enjoy eating grass, bugs, and scratching through a fresh piece of yard now and then. Also, it will allow me to move the run to easily clean the area where they spend most of their time. I have been wanting to get this done for quite some time but have been busy with other things this summer.



I have been looking for some old piece of junk on the side of the road somewhere that had wheels on it I could scavenge but have thus far been unsuccessful. I was able to pick up a small set of wheels at Home Depot that will fit the burden but not really the bill. I paid much more than I wanted to but they are some pretty sturdy looking wheels that should last a long time.

The main thing that I needed to tackle with this project was to build a hitch for my garden tractor and to build a system for the wheels so I could move them into position when I am ready to move the run around the yard. I still have more work to do here (build a nesting box, food scraps trough, roosts, and portable watering system. These will be done as soon as time permits and I will get another video that should cap this project off.






This post was shared at:  Homestead Barn Hop, HomeAcre Hop, Simple Lives Thursday, The Backyard Farming Connection Hop



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Expanded Shale for Hydroponics and Aquaponics

A little self promotion for my company....

Bigelow Brook Farm is pleased to announce a new partnership with The Aquaponic Source as a distributor for our expanded shale product line. The Aquaponic Source (www.TheAquaponicSource.com) specializes in a wide array of products providing complete solutions for the North American home aquaponic gardener. Along with their on-line store, they also provide an active and free community site filled with a vast array of aquaponic discussion topics and information for both novice and experienced users at www.AquaponicsCommunity.com. “We are extremely excited to be working with Bigelow Brook Farm and offer expanded shale to the aquaponic and hydroponic gardening communities. Finally there is a US based grow media with optimal growing properties!” says Sylvia Bernstein, President of The Aquaponic Source. “We think this will become a core component in the rapidly expanding soil-less growing market in North America.”

For more information about Expanded Shale, please visit our web site at www.BigelowBrook.com or www.ExpandedShale.com.


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Theft!


Hello to all my friends!

A follower has let me know that he saw one of my videos posted on another user’s YouTube channel.  I greatly appreciate the fact that they brought this to my attention.  I am always happy to produce and post videos which are always free for you to enjoy.  What I don’t like is some scumbag ripping and reposting my videos under their own channel.  It probably won’t be a surprise to you, but I am a YouTube partner and do receive some ad revenue from my videos.  (It’s very little, but every penny helps!)

If you happen to see one of my videos posted, and it’s not from the Web4Deb channel, I would be very grateful if you notify me of this theft.  Thank you for your support and I look forward to providing more videos in the future.

-Rob Torcellini
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Another Teaser Video

I know some of you find these teasers agonizing, but heres the next one! Dont worry, the project is almost done and I wont torture you with these videos anymore!
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Building a Giant Outdoor Jenga Game


Back in June, I dropped our oldest daughter off at her girlfriends house for a pool party.  They had the COOLEST giant Jenga game setup on the deck next to their pool.   I came home and told my husband I just had to have one for our pool deck.  I had never seen one before, but after some research, the idea is actually all over Pinterest.  But here is our overview of that simple (and extremely repetitive) project.  Todd even pulled in our daughters to help as well and they really enjoyed getting to use power tools.

The game is basically sixty 10.5" long 2 x 4s.  Sixty boards are stacked three per row, for a total of 20 rows high.  This was the most repetitive project!  Every board gets measured, cut, sanded and stained.

Here are the rough cut 10.5" boards.




Then, each board gets the edges rounded with a belt sander.  My belt sander is held up by my vice so that our daughter could sand easily.




























Our oldest then sanded each board with a finishing sander.














And then we stained each board with linseed oil.




I think the oil gave it a nice finish, dont you?



We constructed this game from standard pine 2 x 4s and used a total of 8 boards, including a few mess-ups and waste from knots in the wood. We spent about $40 total on the game including some sand paper and the linseed oil to stain the wood.


If you are looking for an easy and fun project this is perfect! It was a blast to build and the girls really enjoyed putting it together.





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Geodesic Dome Greenhouse 6 Teaser

A quick preview of our next video.

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Cloning Tomatoes

Just a quick video on how I clone my tomato plants.  Only one plant was grown from seed in the greenhouse and everything else has been cloned.


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Building the Aquaponic Geodesic Dome Greenhouse in TWO Minutes!

This is a time-lapse video of the complete construction project for the geodesic dome. There are 1555 images taken over the last 1.5 years.  What you cant see is all the work thats done preparing the pieces in the shop or any of the construction work done inside.   Overall, Im overjoyed on how well everything came out!


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Building a Geodesic Dome Greenhouse Part 5

I finally finished up the 5th video in the series.  This one covers how the footings were done, and then a little problem with flooding in the foundation hole!

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Building a Rocket Mass Heater

The rocket mass heater is up and running and its quite the inferno!  It will be quite interesting to add some enhancements to it in the future.  Im hoping to cover the entire unit and pump the heat under the floor to increase the thermal mass.  And, make it so it can burn either wood or pellets!

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Dipstick

I forgot to include a few video clips in "Aquaponic System Install - 3 of 3" so heres a mini-video about a dipstick. ;-)

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Building a Geodesic Dome Greenhouse Part 3

Finally got around to doing the third video in my series of building the geodesic dome.  This one covers how all the struts are made.  Its filmed in HD so you should be able to expand it to full-screen!  I hope you enjoy it!

Below is the transcript from the video....




Hello Everyone,
This is the third video in the series about building a geodesic dome greenhouse.  This time I will cover how to build the interconnecting struts which are made from red cedar.   I choose red cedar because it is rot resistant.  You could use treated lumber, which is substantially cheaper, but I was concerned about chemicals leaching into the water for my aquaponic system.

The site I used for the calculations is acidome.ru.  The entire site is in Russian, but Google Translate does a fairly good job converting the text.  The calculator lets you enter the diameter of the dome, choose the hub type and size, and even the dimensions of the struts.  It will then calculate the angles needed at each hub and also calculate all the various sized struts and labels them with the dimensions taking into consideration the size of the hubs.

The best feature is the ability to have the software calculate a flat base, since a 3V 3/8th dome is not flat.  One click and the struts are recalculated with the proper lengths!

With a 33 foot diameter 3V dome, each triangle will never be wider than 6 feet.  This will allow me to purchase the polycarbonate glazing in 6 by 24 foot sheets, helping to minimize the amount of scrap.

The struts are made from red cedar 2x4’s by 14 feet.  This will be enough material to cut 2 struts from each board with some scrap.  The end of each board is cut at a 12 degree angle so it will align with the hub.  Not every hub connection is exactly 12 degrees, but there is enough flex in the structure for the angles to average out properly.

Once the struts are cut to length, they are run through the table saw to add a slight bevel to them.  When the dome is fully assembled, the polycarbonate panels will rest fairly flat along the bevel.  This will also insure that the height of each strut is the same since it can vary slightly from the mill.

Next I remove some of the material from the end of each strut using a dado blade mounted in the radial-arm saw.  This space will provide an area for the top tab of the hub to rest and provide enough clearance for the polycarbonate panels over the crown of the carriage bolt.

I built a jig to act as a stop and keep each strut aligned properly during drilling.  This allows for a consistently placed hole to be drilled near the end of each strut.  The placement of this hole is important so it will fit properly into the hub and provided an accurate length for the hub and strut combination.

And now, the perfect excuse to use one of my favorite tools!
The bottom of the head of a carriage bolt has a square neck so it can grab into wood to prevent it from turning.  To get it to fit into the metal tab, I would either have to drill the tab’s hole larger, compromising some of its strength, or turn down the neck of the bolt in the metal lathe.  I chose to turn each bolt and then will re-galvanize the area with cold-galvanizing paint.

Here is an example of how the final assembly will fit together.  The strut is sandwiched between the two hub tabs and then tightened into place using a lock washer and nut.

This top view displays how each strut can pivot slightly on each hub.  Since the angles of each triangle section aren’t the same from one section to the next, this allowed for me to make the same hub and allow the pivot against the bolt to make minor changes to the angles.

This side profile shows how the dado in the strut allows the polycarbonate glazing to clear the area without hitting the tab or bolt head.

Finally, this profile displays how the glazing will set flat into the beveled area that is cut along the top of each strut.

I assembled the base to verify that the calculations were correct and the pieces fit together.  So far, so good!

That’s all for now.  The next video I plan on detailing some of the site work.  Thanks for watching!
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Dome video 7 Teaser

Another teaser video. Its moving along quickly! Most likely the dome part will go up within the next week!

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Top Bar Bee Hive From Reclaimed Materials Building the Base 1


Ever wanted to have your own source of honey? Honey and beeswax have so many uses around the homestead and this is something my wife has wanted for quite some time. So, with our anniversary just around the corner, I thought what better to make than a top-bar bee hive!

We chose to go with a top bar because they are easy to build, maintain, and are great for beginners (or so I have heard). The trick is, we have a budget of next to nothing for this project and the wife and I vowed to get each other something homemade for each other this year. I immediately started thinking of where I could get some free wood for this project. Ah yes! That old kitchen table/picnic table that has been sitting outside in the rain for three years, perfect! I grabbed the table top and benches and made my way to the garage. 



The first step for me was to get all of the wood cleaned up and cut away all of the edges and unusable wood. Once this was done I stacked it all up and started planning out some measurements. I have read that the hive should be able 12" deep, about 10 inches wide at the bottom, 120 degree angle coming up and as long as 48 inches. After some careful planning I thought I could get pretty close to these measurements with the wood that I had. 

I started by cutting the end pieces to size ( ended up with about 8.5" bottom, 120 degrees up on each side. The length that worked for the wood I had was about 42 inches with sides that were about 15" wide. In order to make the sides I needed to glue a few pieces of wood together using a make shift clamping system on my workbench. For some of the longer pieces (bottom) I glued two boards together end to end using dowels to strengthen the glue joints. 

The next step was a lot, I mean a lot, of sanding. I had to grind off years of weathering and stains ( I used the benches as saw horse for awhile so they were pretty beat up). The wood from this table looks like it is birch or maybe poplar and it really is a nice looking wood once it is cleaned up. I also used a glue and sawdust mix to fill in any holes, cracks, or other damaged areas and then sanded them flat. 

While the glue was all drying I started in on the legs. I am using 2X4s for the legs and wanted to be a little different than the other hives I have seen out there. I aligned the legs to match the angle of the end pieces of the hive and marked them where they crossed. I then used a circular saw to mill out the area where they crossed down 3/4" on each leg. I then chiseled out the area smooth so that the legs will fit nicely together and make a crossed leg similar to a baby manger (think Jesus in Bethlehem). I then secured these together with glue and clamps and let them set up. 

That takes care of all of the prep work and all I could fit into one video. Next up will be assembly and finishing touches on the main part of the hive. 




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Doors Floors and Dome Foam

Made a lot of progress on the inside over the cold winter months.




Heres the transcript:

We’re nearing the end of the project!  There will be one more video after this with some of the finishing touches and then I’ll go on to some other videos about the aquaponic setup.  You may also notice that some of these segments may look out of order.  I was working on everything at the same time depending on the weather, but wanted to group similar segments together to create a better story line.

I needed a large door in the dome so that I could move tanks and grow beds in and out of the building.  Garage doors leak a lot of air so I decided to build some custom doors.  The doors were framed using 2 by 4’s and pressure treated plywood.  When they are completed, they are bolted to some strong hinges and anchored directly into the building’s frame.  I still need to add some gaskets and weather stripping to create a good air-tight seal.

I also needed to remove some of the struts from the dome structure to make a larger opening for the equipment.  I removed 6 struts and it didn’t seem to make any difference with dome’s structural integrity.

To level out the floor, I brought in several yards of sand and spread it throughout the building.  I then racked it out and roughly leveled it out by eye.

Now that the sand was in place, I was able to do a final leveling and compact the area where the stock tank belonged.  I decided to place the tank directly on the sand to help protect the base, and save a few dollars by not needing to put brick pavers under it.

To keep the floor from settling over time, I borrowed a plate compactor and compacted the entire area.  When this was complete, I also borrowed my neighbor’s laser level and raked out any of the high or low areas, and then compacted everything again.

There are about 5500 bricks that are used in the floor so I made up a couple of carriers which made the job go much quicker!  It’s still a lot of work to carry them all in, but at least the bricks remain flat and oriented so that setting them into place is fairly quick.  Between carrying them in and laying them out, I average 10 bricks per minute.

To get started, I set a straight string across the floor and lay out a course along the line.  This will act as the base reference for the rest of the rows.

The bricks are laid in an alternating, or basket weave pattern and can be adjusted a bit to compensate for their imperfections.

Along the edges, I roughly cut off the bricks so they would fill any gaps that were smaller than a standard brick.  Since most of these areas will be covered with grow beds, I wasn’t concerned about making them look perfect.  Any remaining voids were filled with gray sand.

The same type of cuts were made around any of the plumbing that comes up through the floor since these areas will also be well hidden by grow beds.

The shed area and northern walls are all insulated to help retain heat during the winter.  I decided to use a do-it-yourself spray foam instead of fiberglass batting because of all the odd shapes that needed to be filled. It also will reduce air leaking, and minimize mold.  The foam sticks to everything, so I had to protect the polycarbonate from over spraying by stapling painter’s plastic throughout the dome.

Not only does the foam stick to the dome, it also will stick to clothes and skin.  Full body protection, goggles, and a respirator is needed!

The foam comes as a complete kit.  Each kit contains 2 tanks with A and B parts, hoses, disposable mixing nozzles, and spray tips.

It took a little while to get used to a good spraying technique.  The first few cavities were a bit uneven, but once I got a feel for how it worked, I was able to fill the areas better.  The kits come with a fan spray for regular stud spacing, and in hindsight, it would have been better to use that tip everywhere.

The biggest problem I ran into was spraying the majority of the foam overhead.  My goggles kept getting foam on them and I couldn’t clear them.  By the time I was done with a set of tanks, I could barely see anything!

I also insulated my custom-built doors.

The fan tip worked really well at controlling the spray pattern.  The foam comes out a bit slower, but you have far more control and a more even fill.  To save a little money, I sprayed the standard sized wall cavities with one layer and plan on using standard fiberglass batting.

The knee-wall under the dome is also filled with foam.  Once it hardens, it’s easy to cut off any of the excess that sticks out.  I then cover the walls with treated plywood.

That’s about it for now.  We’ll wrap up the series finishing up the exterior and a few odds and ends. Thanks for watching!
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4 Installing Bulkheads


Exploded view of Bulkhead Components

You have to do something to let water drain from the grow beds.

If I wanted to just have a simple flood and drain system, I could pump water in the grow bed for a while, then let the water gush or dribble out a hole in the bottom.

But as soon as I want to control that water in any way, I need to install a bulkhead.

The bulkhead I use for the 365 Aquaponics System is constructed from inexpensive PVC pieces you can buy at any hardware store. I use ¾” PVC pipe and fittings. If using metric plumbing bits, the equivalent size is 19 mm.
For some inexplicable reason, plumbing bits in the US are designed with a rounded edge. So for the actual part that penetrates the tank, I use PVC bits designed for electrical conduit.

The male PVC coupling bit is screwed down through the thickness of the tank. Once the coupling is tight, PVC will seat itself against the plastic tank wall in a nearly water-tight fashion. Slip a #18 O-ring around the male threads, then thread the female fitting as tight as you can by hand. The O-ring will make this bulkhead water tight, given that none of these bulkheads needs to withstand more than a foot or 300mm of water pressure.

Credit for this bulkhead concept goes to Richard Kinch, who details this bulkhead design at "An Improvised PVC Bulkhead Fitting for Liquid Storage Tanks."

Here’s a short video clip showing installation of a bulkhead.

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Sequencing Indexing Valve

This is a sequencing / indexing valve that I designed a couple of years ago.  This uses a pinching mechanism to stop the flow of water.  It is able to pass solids and keep operating if there is a clog elsewhere in the plumbing.  I decided that it would be too expensive to develop and would show everyone how it works.

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Building Aquaponic Grow Beds Time Lapsed

This is a time-lapsed video showing me building a deep water culture (DWC) bed and a media bed. For details about the entire build, please see this video series:   Youtube playlist


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