1989 AIME Problems/Problem 12

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Problem

Let $ABCD^{}_{}$ be a tetrahedron with $AB=41^{}_{}$, $AC=7^{}_{}$, $AD=18^{}_{}$, $BC=36^{}_{}$, $BD=27^{}_{}$, and $CD=13^{}_{}$, as shown in the figure. Let $d^{}_{}$ be the distance between the midpoints of edges $AB^{}_{}$ and $CD^{}_{}$. Find $d^{2}_{}$.

AIME 1989 Problem 12.png

Solution

Call the midpoint of AB M and the midpoint of CD N. d is the median of triangle $\triangle CDM$. The formula for the length of a median is $m=\sqrt{\frac{2a^2+2b^2-c^2}{4}}$, where a, b, and c are the side lengths of triangle, and c is the side that is bisected by median m.

We first find CM, which is the median of $\triangle CAB$.

$CM=\sqrt{\frac{98+2592-1681}{4}}=\frac{\sqrt{1009}}{2}$

Now we must find DM, which is the median of $\triangle DAB$.

$DM=\frac{\sqrt{425}}{2}$

Now that we know the sides of $\triangle CDM$, we proceed to find the length of d.

$d=\frac{\sqrt{548}}{2}$

$d^2=\frac{548}{4}=\boxed{137}$


See also

1989 AIME (ProblemsAnswer KeyResources)
Preceded by
Problem 11
Followed by
Problem 13
1 2 3 4 5 6 7 8 9 10 11 12 13 14 15
All AIME Problems and Solutions