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If $\alpha' ,\beta' ,\gamma'$ and $\alpha'' ,\beta'' ,\gamma'' $ are the direction angles of two lines, we have to find $\alpha ,\beta ,\gamma $ such that they are the direction angles of a third line perpendicular to both.

MY SOLUTION

I understand there are three equations like this:

  1. $\sum \cos \alpha\cdot \cos \alpha ' = 0 $
  2. $\sum \cos \alpha\cdot \cos \alpha '' = 0 $
  3. $\sum \cos \alpha\cdot \cos \alpha = 1 $

$$\begin{bmatrix} \cos \alpha & \cos \beta & \cos \gamma\\ \cos \alpha' & \cos \beta' & \cos \gamma' \\ \cos \alpha'' & \cos \beta'' & \cos \gamma'' \end{bmatrix}\begin{bmatrix} \cos \alpha\\ \cos \beta\\ \cos\gamma \end{bmatrix} = \begin{bmatrix} 0\\ 0\\ 1 \end{bmatrix}$$

By Cramer's rule, I arrive at: $$\cos \alpha = \frac{\cos \beta'}{\cos \beta' \cos \gamma'' - \cos \beta'' \cos \gamma'}.$$

But the answer given is somewhat different, given as $$\lambda \cdot \cos \alpha = \cos \beta' \cos \gamma'' - \cos \beta'' \cos \gamma'.$$

Where am I going wrong?

EDIT

The RHS should be $[1, 0, 0]^T$ rather than $[0, 0, 1]^T$ as pointed by Inquest. But my answer eludes me even more.

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    Shouldn't your vector be [1 0 0] and not [0 0 1] ?2012-07-11
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    Yes it should be, I am sorry. But I just reworked its giving an even weird result, as by Cramers rule it is coming out as zero.2012-07-11
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    What is $\lambda$?2012-07-11
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    Apparently some indeterminate parameter , $\lambda^{2} = sin^{2} \theta $ where $\theta$ is the angle between the two given lines. THis result is arrived by substitution the solution as espoused in eqn (3)2012-07-11

2 Answers 2

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$\def\ca{\cos\alpha} \def\cb{\cos\beta} \def\cc{\cos\gamma} \def\l{\lambda} \def\det{\mathrm{det}\,} \def\VA{{\bf A}}$Let $$A = \left(\begin{array}{ccc} \ca & \cb & \cc \\ \ca' & \cb' & \cc' \\ \ca'' & \cb'' & \cc'' \end{array}\right).$$ Denote the $i$th row by $\VA_i$ and let $\l = \det A$. Then $|\l|$ is the volume of the parallelepiped defined by $\VA_1$, $\VA_2$, and $\VA_3$. Since $\VA_1$ is perpendicular to the other vectors and has unit magnitude, $|\l|$ is the area of the parallelogram defined by the vectors $\VA_2$ and $\VA_3$. Therefore, $|\l| = \sin\theta$, where $\theta$ is the angle between the two vectors. Note in particular that $|\l|$ does not depend on $\alpha$, $\beta$, or $\gamma$. This argument could be written to avoid the terminology of vectors, but it would be cumbersome.

By Cramer's rule $$\begin{eqnarray*} \ca &=& \frac{% \left|\begin{array}{ccc} 1 & \cb & \cc \\ 0 & \cb' & \cc' \\ 0 & \cb'' & \cc'' \end{array}\right|}{% \left|\begin{array}{ccc} \ca & \cb & \cc \\ \ca' & \cb' & \cc' \\ \ca'' & \cb'' & \cc'' \end{array}\right|} \end{eqnarray*}$$ and so $$\ca = \frac{1}{\l}(\cb'\cc''-\cb''\cc').$$

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In problems like this vector cross product works nicely. Recall that cross product of two vectors gives a vector perpendicular to both

image

You can take

$$a=(\cos \alpha',\cos \beta',\cos \gamma')$$ $$b=(\cos \alpha'',\cos \beta'',\cos \gamma'')$$ $$c=(\lambda\cos \alpha,\lambda\cos \beta,\lambda\cos \gamma)$$ (here $\lambda$ is just some constant dependent on $\theta$) and then take $$c=a\times b$$ Evaluate the determinant and you get answer immediately.

Also if you have any doubt take a look at wiki page of Vector cross product.

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    yes, I understand that- vector is something I intuitively understand but analhytical methods for me is both slightly abstract than vectors and their methods more cumbersome. Hence I provided for my solution both to show that I worked it out myself but also to show that I want solution on analytical lines. Thanks though. And yes, I do understand how it will look through cross product.2012-07-11