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Yes, I do agree. So now, what is the momentum balance?joshmccraney said:Momentum leaving would be $$\iint_{A_2} \rho \vec{V} (\vec{V} \cdot \hat{n})\, dS = \rho \pi R^2 V^2 = \frac{\rho Q^2}{\pi R^2}$$. The backward pressure force would be $$-\iint_{A_2}P_2 \, \vec{dS} = -P_2 \pi r^2\hat{z}$$ where ##r## is the radius of the hemisphere.
Do you agree? Sorry for the late response; I'd been busy the last few days.