Ok, so you can't do it via that trig.
CWatters said:
To calculate the actual force plug numbers into the equations at wikipedia or better still write an equation for the ratio of the lift to drag force. See what cancels.
Well when you divide the lift coefficient by the drag coefficient like so:
(l/(0.5*p*v^2*a))/((2f)/(p*v^2*a))
It simplifies to l/f which doesn't really get me anywhere. The lift/drag coefficient doesn't take angle of attack into account. I would have to have very specific values. All I have is power output of a wind turbine at different angles of attack.
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Do you think it would be valid to simply discuss Newtons third law VS drag. By this I mean that when air hits the airofoil it is deflected downward. This pushes the blade upward. As the AOA is increased the surface area directly exposed to the air is increased. This results in a greater deflection of air downward and therefore a greater upward force, as per Newtons third law of motion. However, as AOA is increased drag is also increased, once the angle becomes two high, high amounts of drag are produced, decreasing the power output.
However, I still think that the force distribution is important. I just don't know how to proceed, I don't have the data to satisfy any of the equations I have found.
To make matters worse the blade seems to behave in a way that is not consistent with any data found on the internet. It is most effective when the angle of attack is +/- 75 degrees!