Hello guys,
Just needed some advice if my approach and solution are correct?
I solved this problem but did a different solution path, my solution was quicker than whats presented in the solution page, I did get the correct answer before looking at the solution. So I was thinking maybe I just got lucky and do I really have to do the solution path presented to answer this problem correctly? Those are some questions in my mind.
What I did was to calculate velocity for each pump on a 12in ID pipe based on 1000gpmx.002228ft^3/sperGPM/0.7854=2.84fps
Now this pump can put out approximately 76ft of head at that flow. But I don't know yet whats the TDH.
Now I assume that 2 pumps in parallel add up the flow rate capacity, so since area is constant I assume the velocity inside the pipe is the only variable that will make the Q double from the 2 pumps so, 2 times 2.84fps=5.7fps
I input this into the friction head loss and minor loss equation. I got TDH of 54.73. I used this TDH to get the Q in the graph and got it approximately 4500GPM.
Just needed some advice if my approach and solution are correct?
I solved this problem but did a different solution path, my solution was quicker than whats presented in the solution page, I did get the correct answer before looking at the solution. So I was thinking maybe I just got lucky and do I really have to do the solution path presented to answer this problem correctly? Those are some questions in my mind.
What I did was to calculate velocity for each pump on a 12in ID pipe based on 1000gpmx.002228ft^3/sperGPM/0.7854=2.84fps
Now this pump can put out approximately 76ft of head at that flow. But I don't know yet whats the TDH.
Now I assume that 2 pumps in parallel add up the flow rate capacity, so since area is constant I assume the velocity inside the pipe is the only variable that will make the Q double from the 2 pumps so, 2 times 2.84fps=5.7fps
I input this into the friction head loss and minor loss equation. I got TDH of 54.73. I used this TDH to get the Q in the graph and got it approximately 4500GPM.