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If I have a given point $A(x_a,y_a,z_a)$ in the horizontal plane $z=1400$ and I rotate the plane in such a way that it is perpendicular to a line that makes an angle of $60^{\circ}$ with $Oz$ axes and its projection makes $45^{\circ}$ and $45^{\circ}$ angles with $Ox$ and $Oy$, what will the new coordinates of the point be?

Here's what I managed to do so far:

I found the vector perpendicular to the plane $\frac{3\sqrt{2}}{4\sqrt{2}} i + \frac{3\sqrt{2}}{4\sqrt{2}} j + \frac{1}{2}k;$ the new plane contains the point $(x_a,y_a,z_a)$, so the new plane equation is: $\frac{3\sqrt{2}}{4\sqrt{2}}(x-x_a)+\frac{3\sqrt{2}}{4 \sqrt{2}} (y-y_a)+\frac{1}{2}(z-z_a)=0.$ I have one equation missing (since $x_{a,new}=x_a$).

Thanks

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    Am I right to assume that the x-axis in the old plane corresponds to the $\displaystyle \frac{3\s$q$rt{2}}{4\s$q$rt{2}}i + \frac{3\sqrt{2}}{4\sqrt{2}}j - \frac{\sqrt{3}}{2}k$ vector in the new plane?2011-05-09

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If it's not too late to offer help on this matter, I'd like to offer how I'd solve the problem. Seeing you already calculated the vector normal to second plane, let's call it $\overrightarrow{n_2}$ and vector $(0,0,1)$ perpendicular to first plane $\overrightarrow{n_1}$... The angle of rotation will be $cos(\alpha)=\frac{\overrightarrow{n_1}\cdot\overrightarrow{n_2}}{|\overrightarrow{n_1}|\cdot|\overrightarrow{n_2}|}$ , and the axis vector (for rotation) will be $\overrightarrow{N}=\frac{\overrightarrow{n_1}\times\overrightarrow{n_2}}{|\overrightarrow{n_1}\times\overrightarrow{n_2}|}$. All you have to do then is to rotate the point represented by vector $\overrightarrow{A}$ using the formula: $\overrightarrow{A_{new}}=(\overrightarrow{N}\cdot\overrightarrow{A})\cdot\overrightarrow{N}+sin(\alpha)\cdot(\overrightarrow{N}\times\overrightarrow{A})+cos(\alpha)\cdot(\overrightarrow{N}\times\overrightarrow{A})\times\overrightarrow{N}$ .

Hope it helps...