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Given the width W and the height H of a rectangle, and the thickness T of a beam extending exactly from the upper left corner to the lower right corner as shown, how do I solve for length X and angle $\alpha$ as shown in the diagram below? The top of the beam touches the top left corner and the bottom of the beam touches the lower right corner.

frame diagonal

Many thanks to Isaac for the excellent diagram!

Update

With the help of Isaac's answer and some careful measurement and cutting with a miter saw, my diagonal beam press-fit into the gate frame exactly and stayed by friction for me to fasten it in. Perfection!

  • W $= 39.4375$ in
  • H $= 20.6875$ in
  • T $= 1.53125$ in

  • X $= 43.77$ in

  • $\alpha = 64.29^\circ$
  • cutting angle $= 25.71^\circ$
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    I'm sorry, (previous answer)... I took the bar to be centered around the diagonal (I took your reference to the crudity of the diagram literally!) So the lower end of the bar meets the lower right corner, and the upper end of the bar, meets the upper left corner?2011-07-10

2 Answers 2

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re-diagram with points and angles labeled

Let's start with a careful diagram with lots of labels to make it easier to discuss. I've also exaggerated the width $T$ of the bar to be sure we're talking about the same placement and to make it easier to label things. I also changed $x$ to $X$ and $a$ to $\alpha$. You are given $W$, $H$, and $T$, and want to determine $X$ and $\alpha$. Because of various parallel and perpendicular things, I've labeled some more angles $\alpha$.

Looking at $\triangle ABF$ and $\triangle EGA$, $\sin\alpha=\frac{W}{X}=\frac{T}{AE}$, so $AE=\frac{TX}{W}$. In $\triangle ABF$, applying the Pythagorean theorem, $X^2=W^2+(H-AE)^2=W^2+\left(H-\frac{TX}{W}\right)^2.$ Solving for $X$ in terms of $W$, $H$, and $T$ (with the assumption that $0< T< H< W$) gives $X=\frac{-HWT+W^2\sqrt{H^2+W^2-T^2}}{W^2-T^2}.$

Knowing $X$, since $\sin\alpha=\frac{W}{X}$, $\alpha=\arcsin\frac{W}{X}$.

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    I thought of "measure twice, cut once" several times while I was working. I also thought of "nope, still too short, cut it again!"2011-07-10
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There are cleverer ways of doing it, but let's try for a brute force approach. Let $z$ be the hypotenuse of the little triangle at the top left.

Note that $\sin\alpha=\frac{T}{z} \qquad\text{and}\qquad \tan\alpha=\frac{W}{H-z}.$

Take reciprocals, and use $1 +\cot^2\alpha=\csc^2\alpha$. (The trigonometric function calculations and the trigonometric identity substitute for essentially identical similar triangle and Pythagorean Theorem calculations. And it has been a long time since I have been able to mention $\csc$.) We get $1+\frac{(H-z)^2}{W^2}=\frac{z^2}{T^2}.$

We solve for $z$ by multiplying both sides by $T^2W^2$ and expanding $(H-z)^2$, obtaining the equivalent quadratic equation $(W^2-T^2)z^2 +2HT^2z -T^2(W^2+H^2)=0.$ Solve, discarding the negative solution. At first we obtain $z=\frac{-2HT^2 +\sqrt{4H^2T^4 +4(W^2-T^2)(T^2)(W^2+H^2)}}{2(W^2-T^2)}.$ After some manipulation, we obtain the perhaps nicer expression $z=\frac{-HT^2+WT\sqrt{W^2+H^2 -T^2}}{W^2-T^2}.$

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    $ErikE: Thanks for the editing to make post fit new picture.2011-07-11