Difference between revisions of "Mock AIME 1 Pre 2005 Problems/Problem 8"

Latest revision as of 23:18, 9 February 2020

Problem

$ABCD$ , a rectangle with $AB = 12$ and $BC = 16$ , is the base of pyramid $P$ , which has a height of $24$ . A plane parallel to $ABCD$ is passed through $P$ , dividing $P$ into a frustum $F$ and a smaller pyramid $P'$ . Let $X$ denote the center of the circumsphere of $F$ , and let $T$ denote the apex of $P$ . If the volume of $P$ is eight times that of $P'$ , then the value of $XT$ can be expressed as $\frac{m}{n}$ , where $m$ and $n$ are relatively prime positive integers. Compute the value of $m + n$ .

Solution

As we are dealing with volumes, the ratio of the volume of $P'$ to $P$ is the cube of the ratio of the height of $P'$ to $P$ .

Thus, the height of $P$ is $\sqrt [3]{8} = 2$ times the height of $P'$ , and thus the height of each is $12$ .

Thus, the top of the frustum is a rectangle $A'B'C'D'$ with $A'B' = 6$ and $B'C' = 8$ .

Now, consider the plane that contains diagonal $AC$ as well as the altitude of $P$ . Taking the cross section of the frustum along this plane gives the trapezoid $ACC'A'$ , inscribed in an equatorial circular section of the sphere. It suffices to consider this circle.

First, we want the length of $AC$ . This is given by the Pythagorean Theorem over triangle $ABC$ to be $20$ . Thus, $A'C' = 10$ . Since the height of this trapezoid is $12$ , and $AC$ extends a distance of $5$ on either direction of $A'C'$ , we can use a 5-12-13 triangle to determine that $AA' = CC' = 13$ .

Now, we wish to find a point equidistant from $A$ , $A'$ , and $C$ . By symmetry, this point, namely $X$ , must lie on the perpendicular bisector of $AC$ . Let $X$ be $h$ units from $A'C'$ in $ACC'A'$ . By the Pythagorean Theorem twice, $\begin{align*} 5^2 + h^2 & = r^2 \\ 10^2 + (12 - h)^2 & = r^2 \end{align*}$ Subtracting gives $75 + 144 - 24h = 0 \Longrightarrow h = \frac {73}{8}$ . Thus $XT = h + 12 = \frac {169}{8}$ and $m + n = \boxed{177}$ .

@@ Line 9: / Line 9: @@
 Thus, the top of the frustum is a rectangle <math>A'B'C'D'</math> with <math>A'B' = 6</math> and <math>B'C' = 8</math>.
-Now, consider the plane that contains diagonal <math>AC</math> as well as the altitude of <math>P</math>. Taking the cross section of the frustum along this plane gives the trapezoid <math>ACC'A'</math>, inscribed in an equatorial circular section of the sphere. It suffices to consider this sphere.
+Now, consider the plane that contains diagonal <math>AC</math> as well as the altitude of <math>P</math>. Taking the cross section of the frustum along this plane gives the trapezoid <math>ACC'A'</math>, inscribed in an equatorial circular section of the sphere. It suffices to consider this circle.
 First, we want the length of <math>AC</math>. This is given by the Pythagorean Theorem over triangle <math>ABC</math> to be <math>20</math>. Thus, <math>A'C' = 10</math>. Since the height of this trapezoid is <math>12</math>, and <math>AC</math> extends a distance of <math>5</math> on either direction of <math>A'C'</math>, we can use a 5-12-13 triangle to determine that <math>AA' = CC' = 13</math>.

Mock AIME 1 Pre 2005 (Problems, Source)
Preceded by Problem 7	Followed by Problem 9
1 • 2 • 3 • 4 • 5 • 6 • 7 • 8 • 9 • 10 • 11 • 12 • 13 • 14 • 15

Page

Toolbox

Search

Difference between revisions of "Mock AIME 1 Pre 2005 Problems/Problem 8"

Latest revision as of 23:18, 9 February 2020

Problem

Solution

See also