Good question, Andrew. If you use the method in the video with r=well radius, you typically get a non-physical result--S>1. This is because storage in the well is not included in the solution. There are other solutions that include the well bore itself, and they should give you better results for S, but I have not tried doing this so I am not sure how well it will work. I have always used data from a monitoring well (or measurements of deformation) when estimating S. Larry

That is from combining the other numbers in the equation.

HI Salah, The calculated drawdown should be 65 ft. The observed drawdown is 90 ft. The observed drawdown is greater than the calculated drawdown because of head losses in the vicinity of the well. This causes the well efficiency to be less than 1 because it is the ratio of the calculated to the actual drawdown. Hope that helps. Larry