For the construction we used 30 x 2 mm round shape pipes made of steel for the 3 main columns and 20 x1,5 mm steel round shape pipes for all of the inner struts. The flanges on the columns have a diameter of 100 mm and are 5 mm thick. They are bolted onto the columns with 4 drill holes.
The first 3 images in the gallery show a graphical presentation for the construction.
Trial
After the construction of the module we went over to the trial phase. We have virtually simulated it according to the FEM simulation. Specifically, we performed two different experiments.
First we cut 6000 N (approx. 611.62kg * m/s^2) in half and the distributed both halves on the two sides of the bar. Each arrow represents a force of 3000 N. We placed the strongest force In the middle of the bar, since this is the area where the highest possible force can occur.
As expected, due to the Maxwell method, the stability of the XXL pull-up bar is tremendous. According to the FEM-simulation the maximum of displacement lies at 3.37 mm at this extent of applied force.
In a second attempt we tried to simulate a worst-case-scenario. This means that we strained the pull-up bar with the entire force of 6000 N on one side.
The simulation shows a maximum of displacement of up to 4,9 mm. This is still within the limits, since this is still far from the boundaries of plastic deformation (see image below with only one arrow).
Due to the one-sided strain, in contrast to the first attempt, we now have additional torsional forces that draw the entire construction around its axis.
For the non-engineers among us: Torsional forces often arise on unevenly strained constructions. This means that we have to assume that the athletes might only train on one side, similar to the situation shown in the simulation. Quite conceivable in reality, so it is possible.
It needs to be taken into consideration that the FEM usually displays situations that are usually very close to reality. The results can also differ from reality though. In the end it depends on the model and if it describes the reality well enough.
The results of a simulation give orientation, but one cannot rely on them entirely. Altogether the FEM offers a simple and optimal foundation, close to reality for the development of difficult projects.
Production
We received the order today. As soon as we have completed the production of the pull-up bar we will add a few photos and a short description of the production process.
Conclusion
All in all this is a very interesting project. Whoever wants to build a pull-up bar himself is welcome to use the information we have given. We are happy to assist you with our expertise and production knowledge.