Difference between revisions of "2022 AIME I Problems/Problem 10"
MRENTHUSIASM (talk | contribs) (→Diagram) |
MRENTHUSIASM (talk | contribs) (→Solution 3) |
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import solids; | import solids; | ||
− | currentprojection=orthographic((7,0.2, | + | currentprojection=orthographic((7,0.2,9)); |
triple A, B, C, OA, OB, OC; | triple A, B, C, OA, OB, OC; | ||
A = (0,0,0); | A = (0,0,0); | ||
B = (0,sqrt(560),0); | B = (0,sqrt(560),0); | ||
− | C = intersectionpoints(Circle(A,sqrt(756),(0,0,1)),Circle(B,sqrt(960),(0,0,1)))[ | + | C = intersectionpoints(Circle(A,sqrt(756),(0,0,1)),Circle(B,sqrt(960),(0,0,1)))[1]; |
− | OA = (0,0, | + | OA = (0,0,4); |
− | OB = (0,sqrt(560), | + | OB = (0,sqrt(560),8); |
− | OC = (C.x,C.y, | + | OC = (C.x,C.y,16); |
− | draw(shift( | + | draw(shift(OC)*scale3(19)*unitsphere,green,light=Viewport); |
− | draw(shift( | + | draw(shift(OA)*scale3(11)*unitsphere,red,light=Viewport); |
− | draw(shift( | + | draw(shift(OB)*scale3(13)*unitsphere,yellow,light=Viewport); |
draw(Circle(A,sqrt(105),(0,0,1))^^Circle(B,sqrt(105),(0,0,1))^^Circle(C,sqrt(105),(0,0,1))); | draw(Circle(A,sqrt(105),(0,0,1))^^Circle(B,sqrt(105),(0,0,1))^^Circle(C,sqrt(105),(0,0,1))); | ||
− | draw((- | + | draw((-70,-20,0)--(-70,45,0)--(20,45,0)--(20,-20,0)--cycle); |
dot(OA^^OB^^OC,linewidth(4.5)); | dot(OA^^OB^^OC,linewidth(4.5)); | ||
Line 32: | Line 32: | ||
==Solution 1== | ==Solution 1== | ||
+ | |||
+ | This solution refers to the <b>Diagram</b> section. | ||
We let <math>\ell</math> be the plane that passes through the spheres and <math>O_A</math> and <math>O_B</math> be the centers of the spheres with radii <math>11</math> and <math>13</math>. We take a cross-section that contains <math>A</math> and <math>B</math>, which contains these two spheres but not the third, as shown below: | We let <math>\ell</math> be the plane that passes through the spheres and <math>O_A</math> and <math>O_B</math> be the centers of the spheres with radii <math>11</math> and <math>13</math>. We take a cross-section that contains <math>A</math> and <math>B</math>, which contains these two spheres but not the third, as shown below: | ||
Line 40: | Line 42: | ||
B = (0,0); | B = (0,0); | ||
A = (-23.6643191,0); | A = (-23.6643191,0); | ||
− | OB = (0, | + | OB = (0,8); |
− | OA = (-23.6643191, | + | OA = (-23.6643191,4); |
draw(circle(OB,13)); | draw(circle(OB,13)); | ||
Line 47: | Line 49: | ||
draw((-48,0)--(24,0)); | draw((-48,0)--(24,0)); | ||
− | label("$\ell$",(-42, | + | label("$\ell$",(-42,0),S); |
− | label("$A$",A, | + | label("$A$",A,S); |
− | label("$B$",B, | + | label("$B$",B,S); |
− | label("$O_A$",OA, | + | label("$O_A$",OA,N); |
− | label("$O_B$",OB, | + | label("$O_B$",OB,N); |
draw(A--OA); | draw(A--OA); | ||
draw(B--OB); | draw(B--OB); | ||
draw(OA--OB); | draw(OA--OB); | ||
− | draw(OA--(0, | + | draw(OA--(0,4)); |
draw(OA--(-33.9112699,0)); | draw(OA--(-33.9112699,0)); | ||
draw(OB--(10.2469508,0)); | draw(OB--(10.2469508,0)); | ||
− | label("$24$",midpoint(OA--OB), | + | label("$24$",midpoint(OA--OB),N); |
− | label("$\sqrt{560}$",midpoint(A--B), | + | label("$\sqrt{560}$",midpoint(A--B),S); |
− | label("$11$",midpoint(OA--(-33.9112699,0)), | + | label("$11$",midpoint(OA--(-33.9112699,0)),NW); |
− | label("$13$",midpoint(OB--(10.2469508,0)), | + | label("$13$",midpoint(OB--(10.2469508,0)),NE); |
− | label("$r$",midpoint(midpoint(A--B)--A), | + | label("$r$",midpoint(midpoint(A--B)--A),S); |
− | label("$r$",midpoint(midpoint(A--B)--B), | + | label("$r$",midpoint(midpoint(A--B)--B),S); |
− | label("$r$",midpoint(A--(-33.9112699,0)), | + | label("$r$",midpoint(A--(-33.9112699,0)),S); |
− | label("$r$",midpoint(B--(10.2469508,0)), | + | label("$r$",midpoint(B--(10.2469508,0)),S); |
− | label("$x$",midpoint(midpoint(B--OB)--OB), | + | label("$x$",midpoint(midpoint(B--OB)--OB),W); |
label("$D$",midpoint(B--OB),E); | label("$D$",midpoint(B--OB),E); | ||
</asy> | </asy> | ||
Line 81: | Line 83: | ||
<asy> | <asy> | ||
size(400); | size(400); | ||
− | pair A, C, OA, OC; | + | pair A, C, OA, OC, M; |
C = (0,0); | C = (0,0); | ||
A = (-27.4954541697,0); | A = (-27.4954541697,0); | ||
− | OC = (0, | + | OC = (0,16); |
− | OA = (-27.4954541697,- | + | OA = (-27.4954541697,4); |
+ | M = midpoint(A--C); | ||
draw(circle(OC,19)); | draw(circle(OC,19)); | ||
Line 92: | Line 95: | ||
draw((-48,0)--(24,0)); | draw((-48,0)--(24,0)); | ||
− | label("$\ell$",(-42, | + | label("$\ell$",(-42,0),S); |
− | label("$A$",A, | + | label("$A$",A,S); |
− | label("$C$",C, | + | label("$C$",C,S); |
− | label("$O_A$",OA, | + | label("$O_A$",OA,N); |
− | label("$O_C$",OC, | + | label("$O_C$",OC,N); |
draw(A--OA); | draw(A--OA); | ||
draw(C--OC); | draw(C--OC); | ||
draw(OA--OC); | draw(OA--OC); | ||
− | draw(OA--(0, | + | draw(OA--(0,4)); |
draw(OA--(-37.8877590151,0)); | draw(OA--(-37.8877590151,0)); | ||
draw(OC--(10.2469508,0)); | draw(OC--(10.2469508,0)); | ||
− | label("$30$",midpoint(OA--OC), | + | label("$30$",midpoint(OA--OC),NW); |
− | label("$11$",midpoint(OA--(-37.8877590151,0)), | + | label("$11$",midpoint(OA--(-37.8877590151,0)),NW); |
− | label("$19$",midpoint(OC--(10.2469508,0)), | + | label("$19$",midpoint(OC--(10.2469508,0)),NE); |
− | label("$r$",midpoint(midpoint( | + | label("$r$",midpoint(midpoint(M--A)--A),S); |
− | label("$r$",midpoint(midpoint( | + | label("$r$",midpoint(midpoint(M--C)--C),S); |
− | label("$r$",midpoint(A--(-37.8877590151,0)), | + | label("$r$",midpoint(A--(-37.8877590151,0)),S); |
− | label("$r$",midpoint(C--(10.2469508,0)), | + | label("$r$",midpoint(C--(10.2469508,0)),S); |
− | label("$E$",(0, | + | label("$E$",(0,4),E); |
</asy> | </asy> | ||
We have <math>CO_C = \sqrt{19^2-r^2} = \sqrt{361 - 105} = \sqrt{256} = 16</math>. Since <math>AO_A = 4</math>, we have <math>EO_C = 16-4 = 12</math>. Using Pythagorean theorem, <math>O_AE = \sqrt{30^2 - 12^2} = \sqrt{900-144} = \sqrt{756}</math>. Therefore, <math>O_AE^2 = AC^2 = \boxed{756}</math>. | We have <math>CO_C = \sqrt{19^2-r^2} = \sqrt{361 - 105} = \sqrt{256} = 16</math>. Since <math>AO_A = 4</math>, we have <math>EO_C = 16-4 = 12</math>. Using Pythagorean theorem, <math>O_AE = \sqrt{30^2 - 12^2} = \sqrt{900-144} = \sqrt{756}</math>. Therefore, <math>O_AE^2 = AC^2 = \boxed{756}</math>. | ||
Line 119: | Line 122: | ||
==Solution 2== | ==Solution 2== | ||
− | Let the distance between the center of the sphere to the center of those circular intersections as <math>a,b,c</math> separately. | + | Let the distance between the center of the sphere to the center of those circular intersections as <math>a,b,c</math> separately. |
− | The desired value is <math>(11+19)^2-(16-4)^2=\boxed{756}</math> | + | According to the problem, we have <math>a^2-11^2=b^2-13^2=c^2-19^2; (11+13)^2-(b-a)^2=560.</math> After solving we have <math>b-a=4,</math> plug this back to <math>11^2-a^2=13^2-b^2,</math> we have <math>a=4, b=8,</math> and <math>c=16.</math> |
+ | |||
+ | The desired value is <math>(11+19)^2-(16-4)^2=\boxed{756}.</math> | ||
~bluesoul | ~bluesoul | ||
Line 171: | Line 176: | ||
\begin{align*} | \begin{align*} | ||
AC^2 & = O_A O_C^2 - \left( O_C C - O_A A \right)^2 \\ | AC^2 & = O_A O_C^2 - \left( O_C C - O_A A \right)^2 \\ | ||
− | & = \boxed{ | + | & = \boxed{756}. |
\end{align*} | \end{align*} | ||
</cmath> | </cmath> | ||
− | <math>\textbf{FINAL NOTE:}</math> In our solution, we do not use the | + | <math>\textbf{FINAL NOTE:}</math> In our solution, we do not use the condition that spheres <math>A</math> and <math>B</math> are externally tangent. This condition is redundant in solving this problem. |
+ | |||
+ | <math>\textbf{MORE FINAL NOTE:}</math> the above note is incorrect because that condition was used at the start when claiming <math>O_AO_B=24</math>. Perhaps the note is referring to spheres <math>B</math> and <math>C</math>. | ||
~Steven Chen (www.professorcheneeu.com) | ~Steven Chen (www.professorcheneeu.com) | ||
+ | |||
+ | ~anonymous (minor edits) | ||
+ | |||
+ | ==Video Solution (Challenge 25)== | ||
+ | |||
+ | https://www.youtube.com/watch?v=yeuJDQ1LTlY | ||
==Video Solution== | ==Video Solution== | ||
Line 185: | Line 198: | ||
~Steven Chen (www.professorcheneeu.com) | ~Steven Chen (www.professorcheneeu.com) | ||
− | ==Video Solution | + | ==Video Solution (Mathematical Dexterity)== |
https://www.youtube.com/watch?v=HbBU13YiopU | https://www.youtube.com/watch?v=HbBU13YiopU | ||
Latest revision as of 14:19, 1 February 2024
Contents
Problem
Three spheres with radii , , and are mutually externally tangent. A plane intersects the spheres in three congruent circles centered at , , and , respectively, and the centers of the spheres all lie on the same side of this plane. Suppose that . Find .
Diagram
~MRENTHUSIASM
Solution 1
This solution refers to the Diagram section.
We let be the plane that passes through the spheres and and be the centers of the spheres with radii and . We take a cross-section that contains and , which contains these two spheres but not the third, as shown below: Because the plane cuts out congruent circles, they have the same radius and from the given information, . Since is a trapezoid, we can drop an altitude from to to create a rectangle and triangle to use Pythagorean theorem. We know that the length of the altitude is and let the distance from to be . Then we have .
We have because of the rectangle, so . Squaring, we have . Subtracting, we get . We also notice that since we had means that and since we know that , .
We take a cross-section that contains and , which contains these two spheres but not the third, as shown below: We have . Since , we have . Using Pythagorean theorem, . Therefore, .
~KingRavi
Solution 2
Let the distance between the center of the sphere to the center of those circular intersections as separately.
According to the problem, we have After solving we have plug this back to we have and
The desired value is
~bluesoul
Solution 3
Denote by the radius of three congruent circles formed by the cutting plane. Denote by , , the centers of three spheres that intersect the plane to get circles centered at , , , respectively.
Because three spheres are mutually tangent, , .
We have , , .
Because and are perpendicular to the plane, is a right trapezoid, with .
Hence,
Recall that
Hence, taking , we get
Solving (1) and (3), we get and .
Thus, .
Thus, .
Because and are perpendicular to the plane, is a right trapezoid, with .
Therefore,
In our solution, we do not use the condition that spheres and are externally tangent. This condition is redundant in solving this problem.
the above note is incorrect because that condition was used at the start when claiming . Perhaps the note is referring to spheres and .
~Steven Chen (www.professorcheneeu.com)
~anonymous (minor edits)
Video Solution (Challenge 25)
https://www.youtube.com/watch?v=yeuJDQ1LTlY
Video Solution
https://www.youtube.com/watch?v=SqLiV2pbCpY&t=15s
~Steven Chen (www.professorcheneeu.com)
Video Solution (Mathematical Dexterity)
https://www.youtube.com/watch?v=HbBU13YiopU
See Also
2022 AIME I (Problems • Answer Key • Resources) | ||
Preceded by Problem 9 |
Followed by Problem 11 | |
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.