Difference between revisions of "2013 AIME I Problems/Problem 9"
m (→Solution 3 (Coordinate Bash)) |
(→Solution 1) |
||
Line 32: | Line 32: | ||
We have <math>AF=6\sqrt{3}</math> and <math>FD=3</math>, so <math>AD=3\sqrt{13}</math>. Denote <math>\angle DAF = \theta </math>; we get <math>\cos\theta = 2\sqrt{3}/\sqrt{13}</math>. | We have <math>AF=6\sqrt{3}</math> and <math>FD=3</math>, so <math>AD=3\sqrt{13}</math>. Denote <math>\angle DAF = \theta </math>; we get <math>\cos\theta = 2\sqrt{3}/\sqrt{13}</math>. | ||
− | In triangle <math>AXY</math>, <math>AY=\tfrac 12 AD = \tfrac 32 \sqrt{13}</math>, | + | In triangle <math>AXY</math>, <math>AY=\tfrac 12 AD = \tfrac 32 \sqrt{13}</math>, and <math>AX=AY\sec\theta =\tfrac{13}{4}\sqrt{3}</math>. |
In triangle <math>AMX</math>, we get <math>\angle AMX=60^\circ-\theta</math> and then use sine-law to get <math>MX=\tfrac 12 AX\csc(60^\circ-\theta)</math>; similarly, from triangle <math>ANX</math> we get <math>NX=\tfrac 12 AX\csc(60^\circ+\theta)</math>. Thus <cmath>MN=\tfrac 12 AX(\csc(60^\circ-\theta) +\csc(60^\circ+\theta)).</cmath> Since <math>\sin(60^\circ\pm \theta) = \tfrac 12 (\sqrt{3}\cos\theta \pm \sin\theta)</math>, we get | In triangle <math>AMX</math>, we get <math>\angle AMX=60^\circ-\theta</math> and then use sine-law to get <math>MX=\tfrac 12 AX\csc(60^\circ-\theta)</math>; similarly, from triangle <math>ANX</math> we get <math>NX=\tfrac 12 AX\csc(60^\circ+\theta)</math>. Thus <cmath>MN=\tfrac 12 AX(\csc(60^\circ-\theta) +\csc(60^\circ+\theta)).</cmath> Since <math>\sin(60^\circ\pm \theta) = \tfrac 12 (\sqrt{3}\cos\theta \pm \sin\theta)</math>, we get |
Revision as of 22:05, 3 January 2022
Contents
Problem
A paper equilateral triangle has side length . The paper triangle is folded so that vertex touches a point on side a distance from point . The length of the line segment along which the triangle is folded can be written as , where , , and are positive integers, and are relatively prime, and is not divisible by the square of any prime. Find .
Solution 1
Let and be the points on and , respectively, where the paper is folded. Let be the point on where the folded touches it. We have and , so . Denote ; we get .
In triangle , , and .
In triangle , we get and then use sine-law to get ; similarly, from triangle we get . Thus Since , we get Then
The answer is .
Solution 2
Let and be the points on and , respectively, where the paper is folded.
Let be the point on where the folded touches it.
Let , , and be the lengths , , and , respectively.
We have , , , , , and .
Using the Law of Cosines on :
Using the Law of Cosines on :
Using the Law of Cosines on :
The solution is .
Solution 3
Proceed with the same labeling as in Solution 1.
Therefore, .
Similarly, .
Now, and are similar triangles, so
.
Solving this system of equations yields and .
Using the Law of Cosines on :
The solution is .
Note
Once you find and , you can scale down the triangle by a factor of so that all sides are integers. Applying Law of cosines becomes easier, you just need to remember to scale back up.
Solution 4 (Coordinate Bash)
We let the original position of be , and the position of after folding be . Also, we put the triangle on the coordinate plane such that , , , and .
Note that since is reflected over the fold line to , the fold line is the perpendicular bisector of . We know and . The midpoint of (which is a point on the fold line) is . Also, the slope of is , so the slope of the fold line (which is perpendicular), is the negative of the reciprocal of the slope of , or . Then, using point slope form, the equation of the fold line is Note that the equations of lines and are and , respectively. We will first find the intersection of and the fold line by substituting for : Therefore, the point of intersection is . Now, lets find the intersection with . Substituting for yields Therefore, the point of intersection is . Now, we just need to use the distance formula to find the distance between and . The number 39 is in all of the terms, so let's factor it out: Therefore, our answer is , and we are done.
Solution by nosaj.
Video Solution
https://www.youtube.com/watch?v=581ZtcQFCaE&t=98s
See also
2013 AIME I (Problems • Answer Key • Resources) | ||
Preceded by Problem 8 |
Followed by Problem 10 | |
1 • 2 • 3 • 4 • 5 • 6 • 7 • 8 • 9 • 10 • 11 • 12 • 13 • 14 • 15 | ||
All AIME Problems and Solutions |
The problems on this page are copyrighted by the Mathematical Association of America's American Mathematics Competitions.