Difference between revisions of "2010 AIME I Problems/Problem 13"
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+ | __TOC__ | ||
== Problem == | == Problem == | ||
[[Rectangle]] <math>ABCD</math> and a [[semicircle]] with diameter <math>AB</math> are coplanar and have nonoverlapping interiors. Let <math>\mathcal{R}</math> denote the region enclosed by the semicircle and the rectangle. Line <math>\ell</math> meets the semicircle, segment <math>AB</math>, and segment <math>CD</math> at distinct points <math>N</math>, <math>U</math>, and <math>T</math>, respectively. Line <math>\ell</math> divides region <math>\mathcal{R}</math> into two regions with areas in the ratio <math>1: 2</math>. Suppose that <math>AU = 84</math>, <math>AN = 126</math>, and <math>UB = 168</math>. Then <math>DA</math> can be represented as <math>m\sqrt {n}</math>, where <math>m</math> and <math>n</math> are positive integers and <math>n</math> is not divisible by the square of any prime. Find <math>m + n</math>. | [[Rectangle]] <math>ABCD</math> and a [[semicircle]] with diameter <math>AB</math> are coplanar and have nonoverlapping interiors. Let <math>\mathcal{R}</math> denote the region enclosed by the semicircle and the rectangle. Line <math>\ell</math> meets the semicircle, segment <math>AB</math>, and segment <math>CD</math> at distinct points <math>N</math>, <math>U</math>, and <math>T</math>, respectively. Line <math>\ell</math> divides region <math>\mathcal{R}</math> into two regions with areas in the ratio <math>1: 2</math>. Suppose that <math>AU = 84</math>, <math>AN = 126</math>, and <math>UB = 168</math>. Then <math>DA</math> can be represented as <math>m\sqrt {n}</math>, where <math>m</math> and <math>n</math> are positive integers and <math>n</math> is not divisible by the square of any prime. Find <math>m + n</math>. | ||
== Solution == | == Solution == | ||
+ | ===Diagram=== | ||
+ | <center><asy> /* geogebra conversion, see azjps userscripts.org/scripts/show/72997 */ | ||
+ | import graph; defaultpen(linewidth(0.7)+fontsize(10)); size(500); | ||
+ | pen zzttqq = rgb(0.6,0.2,0); | ||
+ | pen xdxdff = rgb(0.4902,0.4902,1); | ||
+ | |||
+ | /* segments and figures */ | ||
+ | draw((0,-154.31785)--(0,0)); | ||
+ | draw((0,0)--(252,0)); | ||
+ | draw((0,0)--(126,0),zzttqq); | ||
+ | draw((126,0)--(63,109.1192),zzttqq); | ||
+ | draw((63,109.1192)--(0,0),zzttqq); | ||
+ | draw((-71.4052,(+9166.01287-109.1192*-71.4052)/21)--(504.60925,(+9166.01287-109.1192*504.60925)/21)); | ||
+ | draw((0,-154.31785)--(252,-154.31785)); | ||
+ | draw((252,-154.31785)--(252,0)); | ||
+ | draw((0,0)--(84,0)); | ||
+ | draw((84,0)--(252,0)); | ||
+ | draw((63,109.1192)--(63,0)); | ||
+ | draw((84,0)--(84,-154.31785)); | ||
+ | draw(arc((126,0),126,0,180)); | ||
+ | |||
+ | /* points and labels */ | ||
+ | dot((0,0)); | ||
+ | label("$A$",(-16.43287,-9.3374),NE/2); | ||
+ | dot((252,0)); | ||
+ | label("$B$",(255.242,5.00321),NE/2); | ||
+ | dot((0,-154.31785)); | ||
+ | label("$D$",(3.48464,-149.55669),NE/2); | ||
+ | dot((252,-154.31785)); | ||
+ | label("$C$",(255.242,-149.55669),NE/2); | ||
+ | dot((126,0)); | ||
+ | label("$O$",(129.36332,5.00321),NE/2); | ||
+ | dot((63,109.1192)); | ||
+ | label("$N$",(44.91307,108.57427),NE/2); | ||
+ | label("$126$",(28.18236,40.85473),NE/2); | ||
+ | dot((84,0)); | ||
+ | label("$U$",(87.13819,5.00321),NE/2); | ||
+ | dot((113.69848,-154.31785)); | ||
+ | label("$T$",(116.61611,-149.55669),NE/2); | ||
+ | dot((63,0)); | ||
+ | label("$N'$",(66.42398,5.00321),NE/2); | ||
+ | label("$84$",(41.72627,-12.5242),NE/2); | ||
+ | label("$168$",(167.60494,-12.5242),NE/2); | ||
+ | dot((84,-154.31785)); | ||
+ | label("$T'$",(87.13819,-149.55669),NE/2); | ||
+ | dot((252,0)); | ||
+ | label("$I$",(255.242,5.00321),NE/2); | ||
+ | clip((-71.4052,-225.24323)--(-71.4052,171.51361)--(504.60925,171.51361)--(504.60925,-225.24323)--cycle); | ||
+ | </asy></center> | ||
+ | === Solution 1 === | ||
+ | |||
The center of the semicircle is also the midpoint of <math>AB</math>. Let this point be O. Let <math>h</math> be the length of <math>AD</math>. | The center of the semicircle is also the midpoint of <math>AB</math>. Let this point be O. Let <math>h</math> be the length of <math>AD</math>. | ||
Line 15: | Line 67: | ||
<math>Y = \frac {1}{3}\pi(3)^2 = 3\pi</math> | <math>Y = \frac {1}{3}\pi(3)^2 = 3\pi</math> | ||
− | To find <math>Z</math> we have to find the length of <math>TC</math>. Project <math>T</math> and <math>N</math> onto <math>AB</math> to get points <math>T'</math> and <math>N'</math>. Notice that <math>UNN'</math> and <math> | + | To find <math>Z</math> we have to find the length of <math>TC</math>. Project <math>T</math> and <math>N</math> onto <math>AB</math> to get points <math>T'</math> and <math>N'</math>. Notice that <math>UNN'</math> and <math>TUT'</math> are similar. Thus: |
− | <math>\frac { | + | <math>\frac {TT'}{UT'} = \frac {UN'}{NN'} \implies \frac {TT'}{h} = \frac {1/2}{3\sqrt {3}/2} \implies TT' = \frac {\sqrt {3}}{9}h</math>. |
− | Then <math>TC = T' | + | Then <math>TC = T'C - T'T = UB - TT' = 4 - \frac {\sqrt {3}}{9}h</math>. So: |
− | <math>Z = \frac {1}{2}( | + | <math>Z = \frac {1}{2}(BU + TC)(CB) = \frac {1}{2}\left(8 - \frac {\sqrt {3}}{9}h\right)h = 4h - \frac {\sqrt {3}}{18}h^2</math> |
Let <math>L</math> be the area of the side of line <math>l</math> containing regions <math>X, Y, Z</math>. Then | Let <math>L</math> be the area of the side of line <math>l</math> containing regions <math>X, Y, Z</math>. Then | ||
Line 33: | Line 85: | ||
Now just solve for <math>h</math>. | Now just solve for <math>h</math>. | ||
− | < | + | <cmath>\begin{align*} 12h + 9\pi & = \frac {9}{4}\sqrt {3} + 9\pi + 12h - \frac {\sqrt {3}}{6}h^2 \\ |
0 & = \frac {9}{4}\sqrt {3} - \frac {\sqrt {3}}{6}h^2 \\ | 0 & = \frac {9}{4}\sqrt {3} - \frac {\sqrt {3}}{6}h^2 \\ | ||
h^2 & = \frac {9}{4}(6) \\ | h^2 & = \frac {9}{4}(6) \\ | ||
− | h & = \frac {3}{2}\sqrt {6} \end{align*}</ | + | h & = \frac {3}{2}\sqrt {6} \end{align*}</cmath> |
Don't forget to un-rescale at the end to get <math>AD = \frac {3}{2}\sqrt {6} \cdot 42 = 63\sqrt {6}</math>. | Don't forget to un-rescale at the end to get <math>AD = \frac {3}{2}\sqrt {6} \cdot 42 = 63\sqrt {6}</math>. | ||
Line 42: | Line 94: | ||
Finally, the answer is <math>63 + 6 = \boxed{069}</math>. | Finally, the answer is <math>63 + 6 = \boxed{069}</math>. | ||
− | == Solution 2 == | + | === Solution 2 === |
Let <math>O</math> be the center of the semicircle. It follows that <math>AU + UO = AN = NO = 126</math>, so triangle <math>ANO</math> is [[equilateral]]. | Let <math>O</math> be the center of the semicircle. It follows that <math>AU + UO = AN = NO = 126</math>, so triangle <math>ANO</math> is [[equilateral]]. | ||
Line 48: | Line 100: | ||
Let <math>Y</math> be the foot of the altitude from <math>N</math>, such that <math>NY = 63\sqrt{3}</math> and <math>NU = 21</math>. | Let <math>Y</math> be the foot of the altitude from <math>N</math>, such that <math>NY = 63\sqrt{3}</math> and <math>NU = 21</math>. | ||
− | Finally, denote <math>DT = a</math>, and <math>AD = x</math>. Extend <math>U</math> to point <math>Z</math> so that <math>Z</math> is on <math>CD</math> and <math>UZ</math> is perpendicular to <math>CD</math>. It then follows that <math>ZT = a-84</math>. | + | Finally, denote <math>DT = a</math>, and <math>AD = x</math>. Extend <math>U</math> to point <math>Z</math> so that <math>Z</math> is on <math>CD</math> and <math>UZ</math> is perpendicular to <math>CD</math>. It then follows that <math>ZT = a-84</math>. Since <math>NYU</math> and <math>UZT</math> are [[similar]], |
<math>\frac {x}{a-84} = \frac {63\sqrt{3}}{21} = 3\sqrt{3}</math> | <math>\frac {x}{a-84} = \frac {63\sqrt{3}}{21} = 3\sqrt{3}</math> | ||
Line 54: | Line 106: | ||
Given that line <math>NT</math> divides <math>R</math> into a ratio of <math>1:2</math>, we can also say that | Given that line <math>NT</math> divides <math>R</math> into a ratio of <math>1:2</math>, we can also say that | ||
− | <math>(x)(\frac{84+a}{2}) + \frac {126^2\pi}{6} - (63)(21)(\sqrt{3} = (\frac{1}{3})(252x + \frac{126^2\pi}{2})</math> | + | <math>(x)(\frac{84+a}{2}) + \frac {126^2\pi}{6} - (63)(21)(\sqrt{3}) = (\frac{1}{3})(252x + \frac{126^2\pi}{2})</math> |
where the first term is the area of trapezoid <math>AUTD</math>, the second and third terms denote the areas of <math>\frac{1}{6}</math> a full circle, and the area of <math>NUO</math>, respectively, and the fourth term on the right side of the equation is equal to <math>R</math>. Cancelling out the <math>\frac{126^2\pi}{6}</math> on both sides, we obtain | where the first term is the area of trapezoid <math>AUTD</math>, the second and third terms denote the areas of <math>\frac{1}{6}</math> a full circle, and the area of <math>NUO</math>, respectively, and the fourth term on the right side of the equation is equal to <math>R</math>. Cancelling out the <math>\frac{126^2\pi}{6}</math> on both sides, we obtain | ||
Line 75: | Line 127: | ||
<math>x = AD = (7)(3^2)(\sqrt{6}) = 63\sqrt{6}</math>, so the answer is <math>\boxed{069}.</math> | <math>x = AD = (7)(3^2)(\sqrt{6}) = 63\sqrt{6}</math>, so the answer is <math>\boxed{069}.</math> | ||
− | == See | + | |
+ | === Solution 3 === | ||
+ | |||
+ | Note that the total area of <math> \mathcal{R} </math> is <math>252DA + \frac {126^2 \pi}{2}</math> and thus one of the regions has area <math>84DA + \frac {126^2 \pi}{6}</math> | ||
+ | |||
+ | As in the above solutions we discover that <math>\angle AON = 60^\circ</math>, thus sector <math>ANO</math> of the semicircle has <math>\frac{1}{3}</math> of the semicircle's area. | ||
+ | |||
+ | Similarly, dropping the <math>N'T'</math> perpendicular we observe that <math>[AN'T'D] = 84DA</math>, which is <math>\frac{1}{3}</math> of the total rectangle. | ||
+ | |||
+ | Denoting the region to the left of <math>\overline {NT}</math> as <math>\alpha</math> and to the right as <math>\beta</math>, it becomes clear that if <math>[\triangle UT'T] = [\triangle NUO]</math> then the regions will have the desired ratio. | ||
+ | |||
+ | Using the 30-60-90 triangle, the slope of <math>NT</math>, is <math>{-3\sqrt{3}}</math>, and thus <math>[\triangle UT'T] = \frac {DA^2}{6\sqrt{3}}</math>. | ||
+ | |||
+ | <math>[NUO]</math> is most easily found by <math>\frac{absin(c)}{2}</math>: <math>[\triangle NUO] = \frac {126*42 * \frac {\sqrt{3}}{2}}{2}</math> | ||
+ | |||
+ | Equating, <math>\frac {126*42 * \frac {\sqrt{3}}{2}}{2} = \frac {DA^2}{6\sqrt{3}}</math> | ||
+ | |||
+ | Solving, <math> 63 * 21 * 3 * 6 = DA^2</math> | ||
+ | |||
+ | <math>DA = 63 \sqrt{6} \longrightarrow \boxed {069}</math> | ||
+ | |||
+ | === Solution 4 (Coordinates) === | ||
+ | Like above solutions, note that <math>ANO</math> is equilateral with side length <math>126,</math> where <math>O</math> is the midpoint of <math>AB.</math> Then, if we let <math>DA=a</math> and set origin at <math>D=(0,0),</math> we get <math>N=(63,a+63\sqrt{3}), U=(84,a).</math> Line <math>NU</math> is then <math>y-a=\sqrt{27}(x-84),</math> so it intersects <math>CA,</math> the <math>x</math>-axis, at <math>x=(a/\sqrt{27}+84),</math> giving us point <math>T.</math> Now the area of region <math>R</math> is <math>252a+\pi(126)^2 / 2,</math> so one third of that is <math>84a+\pi(126)^2 / 6.</math> | ||
+ | |||
+ | The area of the smaller piece of <math>R</math> is <math>[AUTD] + [ANU] + [\text{lune} AN] = \frac{1}{2} \cdot a(84+\frac{a}{\sqrt{27}}+84)+\frac{1}{2} \cdot 84 \cdot 63 \sqrt{3}+ \frac{\pi (126)^2}{6}-\frac{1}{2} \cdot 126 \cdot 63 \sqrt{2}</math> | ||
+ | <math>=\frac{a^2}{2\sqrt{27}}+84a-21\cdot 63\sqrt{2} + \frac{\pi(126)^2}{6}.</math> | ||
+ | Setting this equal to <math>84a+\pi(126)^2 / 6</math> and canceling the <math>84a + \pi(126)^2</math> yields | ||
+ | <math>\frac{a^2}{2\sqrt{27}}=21 \cdot 63 \sqrt{3},</math> so <math>a = 63 \sqrt{6}</math> and the anser is <math>\boxed{069}.</math> | ||
+ | ~ rzlng | ||
+ | |||
+ | === Solution 5 (Minimal calculation) === | ||
+ | |||
+ | Once we establish that <math>\Delta ANO</math> is equilateral, we have | ||
+ | <cmath>[{\rm Sector } BON] = 2[{\rm Sector } AON], [BCT'U]=2[ADT'U]</cmath> | ||
+ | <cmath>\Rightarrow [\overset{\large\frown}{NB} CT'UO]=2[\overset{\large\frown}{NA} DT'UO]</cmath> | ||
+ | On the other hand, | ||
+ | <cmath>[\overset{\large\frown}{NB} CT]=2[\overset{\large\frown}{NA} DT]</cmath> | ||
+ | Therefore, <math>[UT'T]=[NUO]</math>. | ||
+ | |||
+ | Now, <math>UO=42, NU=21 \Rightarrow [UT'T]=[NUO]=2[NN'U]</math>. Also <math>\Delta UT'T \sim \Delta NN'U</math>. Therefore, | ||
+ | <cmath>DA=UT'=\sqrt{2} NN'=\sqrt{2} \left(\frac{\sqrt{3}}{2}\cdot 126\right)=63\sqrt{6}\longrightarrow \boxed {069}</cmath> | ||
+ | |||
+ | ~asops | ||
+ | |||
+ | == See Also == | ||
*<url>viewtopic.php?t=338915 Discussion</url>, with a Geogebra diagram. | *<url>viewtopic.php?t=338915 Discussion</url>, with a Geogebra diagram. | ||
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[[Category:Intermediate Geometry Problems]] | [[Category:Intermediate Geometry Problems]] | ||
+ | {{MAA Notice}} |
Latest revision as of 22:05, 20 October 2021
Contents
Problem
Rectangle and a semicircle with diameter are coplanar and have nonoverlapping interiors. Let denote the region enclosed by the semicircle and the rectangle. Line meets the semicircle, segment , and segment at distinct points , , and , respectively. Line divides region into two regions with areas in the ratio . Suppose that , , and . Then can be represented as , where and are positive integers and is not divisible by the square of any prime. Find .
Solution
Diagram
Solution 1
The center of the semicircle is also the midpoint of . Let this point be O. Let be the length of .
Rescale everything by 42, so . Then so .
Since is a radius of the semicircle, . Thus is an equilateral triangle.
Let , , and be the areas of triangle , sector , and trapezoid respectively.
To find we have to find the length of . Project and onto to get points and . Notice that and are similar. Thus:
.
Then . So:
Let be the area of the side of line containing regions . Then
Obviously, the is greater than the area on the other side of line . This other area is equal to the total area minus . Thus:
.
Now just solve for .
Don't forget to un-rescale at the end to get .
Finally, the answer is .
Solution 2
Let be the center of the semicircle. It follows that , so triangle is equilateral.
Let be the foot of the altitude from , such that and .
Finally, denote , and . Extend to point so that is on and is perpendicular to . It then follows that . Since and are similar,
Given that line divides into a ratio of , we can also say that
where the first term is the area of trapezoid , the second and third terms denote the areas of a full circle, and the area of , respectively, and the fourth term on the right side of the equation is equal to . Cancelling out the on both sides, we obtain
By adding and collecting like terms,
.
Since ,
, so the answer is
Solution 3
Note that the total area of is and thus one of the regions has area
As in the above solutions we discover that , thus sector of the semicircle has of the semicircle's area.
Similarly, dropping the perpendicular we observe that , which is of the total rectangle.
Denoting the region to the left of as and to the right as , it becomes clear that if then the regions will have the desired ratio.
Using the 30-60-90 triangle, the slope of , is , and thus .
is most easily found by :
Equating,
Solving,
Solution 4 (Coordinates)
Like above solutions, note that is equilateral with side length where is the midpoint of Then, if we let and set origin at we get Line is then so it intersects the -axis, at giving us point Now the area of region is so one third of that is
The area of the smaller piece of is Setting this equal to and canceling the yields so and the anser is ~ rzlng
Solution 5 (Minimal calculation)
Once we establish that is equilateral, we have On the other hand, Therefore, .
Now, . Also . Therefore,
~asops
See Also
- <url>viewtopic.php?t=338915 Discussion</url>, with a Geogebra diagram.
2010 AIME I (Problems • Answer Key • Resources) | ||
Preceded by Problem 12 |
Followed by Problem 14 | |
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.