Difference between revisions of "2024 AMC 12B Problems/Problem 19"

Latest revision as of 15:40, 6 September 2025

Problem 19

Equilateral $\triangle ABC$ with side length $14$ is rotated about its center by angle $\theta$ , where $0 < \theta < 60^{\circ}$ , to form $\triangle DEF$ . See the figure. The area of hexagon $ADBECF$ is $91\sqrt{3}$ . What is $\tan\theta$ ? $[asy] // Credit to shihan for this diagram. defaultpen(fontsize(13)); size(200); pair O=(0,0),A=dir(225),B=dir(-15),C=dir(105),D=rotate(38.21,O)*A,E=rotate(38.21,O)*B,F=rotate(38.21,O)*C; draw(A--B--C--A,gray+0.4);draw(D--E--F--D,gray+0.4); draw(A--D--B--E--C--F--A,black+0.9); dot(O); dot("$A$",A,dir(A)); dot("$B$",B,dir(B)); dot("$C$",C,dir(C)); dot("$D$",D,dir(D)); dot("$E$",E,dir(E)); dot("$F$",F,dir(F)); [/asy]$

$\textbf{(A)}~\frac{3}{4}\qquad\textbf{(B)}~\frac{5\sqrt{3}}{11}\qquad\textbf{(C)}~\frac{4}{5}\qquad\textbf{(D)}~\frac{11}{13}\qquad\textbf{(E)}~\frac{7\sqrt{3}}{13}$

Solution 1

Let O be circumcenter of the equilateral triangle

Easily get $OF = \frac{14\sqrt{3}}{3}$

$2 \cdot (\triangle(OFC) + \triangle(OCE)) = OF^2 \cdot \sin(\theta) + OF^2 \cdot \sin(120 - \theta)$ $= \frac{14^2 \cdot 3}{9} ( \sin(\theta) + \sin(120 - \theta) )$ $= \frac{196}{3} ( \sin(\theta) + \sin(120 - \theta) )$ $= 2 \cdot {\frac{1}{3} } \cdot(ADBECF) = 2\cdot \frac{91\sqrt{3}}{3}$

$\sin(\theta) + \sin(120 - \theta) = \frac{13\sqrt{3}}{14}$ $\sin(\theta) + \frac{ \sqrt{3}}{2}\cos( \theta) +\frac{ \sqrt{1}}{2}\sin( \theta) = \frac{13\sqrt{3}}{14}$ $\sqrt{3} \sin( \theta) + \cos( \theta) = \frac{13 }{7}$ $\cos( \theta) = \frac{13 }{7} - \sqrt{3} \sin( \theta)$ $\frac{169 }{49} - \frac{26\sqrt{3} }{7} \sin( \theta) + 4 \sin( \theta)^2 = 1$ $\sin( \theta) = \frac{5\sqrt{3} }{14} or \frac{4\sqrt{3} }{7}$ $\frac{4\sqrt{3} }{7}$ is invalid given $\theta \leq 60^\circ$ , $\sin(\theta ) < \sin( 60^\circ ) = \frac{\sqrt{3} }{2} = \frac{\sqrt{3} \cdot 3.5}{7}$ $\cos( \theta) = \frac{11 }{14}$ $\tan( \theta) = \frac{5\sqrt{3} }{11} \boxed{B }$

~luckuso

Solution 2

From $\triangle ABC$ 's side lengths of 14, we get $OF = OC = OE = \frac{14\sqrt{3}}{3}.$ We let $\angle FOC = \theta$ And $\angle EOC = 120 - \theta$

The answer would be $3([\triangle FOC] + [\triangle COE])$

Which area $\triangle FOC$ = $\frac{1}{2}\left(\frac{14\sqrt{3}}{3}\right)^2 \sin(\theta)$

And area $\triangle COE$ = $\frac{1}{2}\left(\frac{14\sqrt{3}}{3}\right)^2 \sin(120 - \theta)$

So we have that $3\cdot \frac{1}{2}\cdot \left(\frac{14\sqrt{3}}{3}\right)^2 (\sin(\theta)+\sin(120 - \theta)) = 91\sqrt{3}$

Which means $\sin(\theta)+\sin(120 - \theta) = \frac{91\sqrt{3}}{98}$ $\frac{1}{2}\cos(\theta)+\frac{\sqrt{3}}{2}\sin(\theta) = \frac{91}{98}$ $\sin(\theta + 30) = \frac{91}{98}$ $\cos (\theta + 30) = \frac{21\sqrt{3}}{98}$ $\tan(\theta + 30) = \frac{91}{21\sqrt{3}} = \frac{91\sqrt{3}}{63}$

Now, $\tan(\theta)$ can be calculated using the addition identity, which gives the answer of

$\boxed{\text{(B) }\frac{5\sqrt{3}}{11}}.$

~mitsuihisashi14 ~luckuso (fixed Latex error )

Solution 3 (No Trig Manipulations)

$[asy] // Modified Asymptote diagram with correct right angle mark and alpha label. import olympiad; defaultpen(fontsize(13)); size(200); // Circumradius R = 14*sqrt(3)/3 real R = 14*sqrt(3)/3; // Define original points with scaling pair O = (0,0); pair A = R * dir(225); pair B = R * dir(-15); pair C = R * dir(105); pair D = rotate(38.21, O) * A; pair E = rotate(38.21, O) * B; pair F = rotate(38.21, O) * C; // Point H: Foot of altitude from B to DE pair DE_vec = E - D; pair perp_DE = (DE_vec.y, -DE_vec.x); // Rotate -90 degrees perp_DE = perp_DE / length(perp_DE); // Unit vector pair H = B - (2*sqrt(3)) * perp_DE; // Corrected direction // Point M: Extend BH to M, BM = 13*sqrt(3)/3 pair BH_vec = H - B; pair BM_unit = BH_vec / length(BH_vec); // Unit vector along BH pair M = B + (13*sqrt(3)/3) * BM_unit; // BM = 13*sqrt(3)/3 // Point P: Midpoint of BE pair P = (B + E) / 2; // Draw original triangles and polygon draw(A--B--C--A, gray+0.4); draw(D--E--F--D, gray+0.4); draw(A--D--B--E--C--F--A, black+0.9); // Draw new dashed segments draw(B--H, black+0.7+dashed); draw(H--M, black+0.7+dashed); draw(O--M, black+0.7+dashed); draw(O--P, black+0.7+dashed); draw(P--E, black+0.7+dashed); draw(O--B, black+0.7+dashed); // Draw right angle marker at OMB draw(rightanglemark(B, M, O, 15)); // Right angle at M, size 15 // Draw dots and labels dot(O); dot("$O$", O, dir(180)); dot("$A$", A, dir(A)); dot("$B$", B, dir(B)); dot("$C$", C, dir(C)); dot("$D$", D, dir(D)); dot("$E$", E, dir(E)); dot("$F$", F, dir(F)); dot("$H$", H, dir(270)); dot("$M$", M, dir(90)); dot("$P$", P, dir(0)); // Label angle POB as alpha, to the right of O draw(anglemark(B, O, P, 50)); // Angle mark at O label("$\alpha$", O + (1.5, -.23), dir(0)); // Position to the right of O [/asy]$

Let the circumcenter of the circle inscribing this polygon be $O$ . The area of the equilateral triangle is $\frac{\sqrt{3}}{4}*196=49\sqrt{3}$ . The area of one of the three smaller triangles, say $\triangle{DBE}$ is $14\sqrt{3}$ . Let $BH$ be the altitude of $\triangle{DBE}$ , so if we extend $BH$ to point $M$ where $MO\perp{BM}$ , we get right triangle $\triangle{OMB}$ . Note that the height $BH=2\sqrt{3}$ , computed given the area and side length $14$ , so $MB=MH+HB=\frac{7\sqrt{3}}{3}+2\sqrt{3}=\frac{13\sqrt{3}}{3}$ . $OB=\frac{14\sqrt{3}}{3}$ so Pythag gives $OM=\sqrt{OB^2-MB^2}=3$ . This means that $HE=7-OM=4$ , so Pythag gives $BE=2\sqrt{7}$ . Let $\frac{\theta}{2}=\alpha$ and the midpoint of $BE$ be $P$ so that $BP=PE=\sqrt{7}$ , so that Pythag on $\triangle{OPE}$ gives $OP=\sqrt{OE^2-PE^2}=\sqrt{\frac{175}{3}}$ . Then $\tan{\alpha}=\frac{\sqrt{7}}{\sqrt{\frac{175}{3}}}=\frac{\sqrt{3}}{5}$ . Then $\tan{2\alpha}=\tan{\theta}=\frac{\frac{2\sqrt{3}}{5}}{1-\frac{3}{25}}=\boxed{\frac{5\sqrt{3}}{11}}$ .

-Magnetoninja

Solution 4

$[\triangle ABD] = \frac{[ADBECF]-[\triangle ABC]}{3} = \frac{91\sqrt{3}-49\sqrt{3}}{3} = 14\sqrt{3}$

Let $M$ be the intersection of $AB$ and $DE$ . Since $DMB$ is isosceles and $\angle AMD = \theta$ , we have $\angle ABD = \theta/2$ . Also, all of the hexagon's internal angles are equal, so $\angle ADB = 120^\circ$ . $[asy] defaultpen(fontsize(13)); size(220); // Base points and rotation pair O = (0,0); pair A = dir(225); pair B = dir(-15); pair D = rotate(38.21, O)*A; pair E = rotate(38.21, O)*B; // Intersection point of AB and DE pair M = extension(A, B, D, E); // Triangle and segments defaultpen(fontsize(13)); size(220); // Base triangle from rotated figure pair O = (0,0); pair A = dir(225); pair B = dir(-15); pair D = rotate(38.21, O)*A; pair E = rotate(38.21, O)*B; // M is intersection of AB and DE pair M = extension(A, B, D, E); // Draw triangle and segment draw(A--B--D--cycle, black+0.9); draw(D--M, gray + dashed); // Draw angle theta at AMD real r = 0.1; path thetaArc = arc(M, r, degrees(D - M), degrees(A - M)); draw(thetaArc, gray); label("$\theta$", M + (r+0.1)*dir((degrees(D - M) + degrees(A - M))/2), gray); // Draw congruence ticks on MB and MD pair u1 = unit(B - M), u2 = unit(D - M); pair tick1a = midpoint(M--B) + rotate(90)*u1 * 0.04; pair tick1b = midpoint(M--B) + rotate(-90)*u1 * 0.04; pair tick2a = midpoint(M--D) + rotate(90)*u2 * 0.04; pair tick2b = midpoint(M--D) + rotate(-90)*u2 * 0.04; draw(tick1a--tick1b, gray); draw(tick2a--tick2b, gray); // Labels dot("$A$", A, dir(A)); dot("$B$", B, dir(B)); dot("$D$", D, dir(D)); dot("$M$", M, N); [/asy]$ Using the side-angle-side area formula: $14\sqrt{3} = \frac{1}{2} \cdot 14 \cdot BD \cdot \sin\left(\frac{\theta}{2}\right) \Rightarrow BD = \frac{2\sqrt{3}}{\sin(\theta/2)}.$

Apply Law of Sines on $\triangle ABD$ with $\angle DAB = 60^\circ - \theta/2$ : $\frac{14}{\sin 120^\circ} = \frac{BD}{\sin(60^\circ - \theta/2)}$ $\frac{28}{\sqrt{3}} = \frac{2\sqrt{3}}{\sin(\theta/2)\sin(60^\circ - \theta/2)}.$ $\sin(\theta/2)\sin(60^\circ - \theta/2) = \frac{3}{14}.$ Using trig identities: $\sqrt{\frac{1-\cos(\theta)}{2}} \cdot (\sin(60^\circ)\cos(\theta/2) - \sin(\theta/2)\cos(60^\circ)) = \frac{3}{14}$ $\sqrt{\frac{1-\cos(\theta)}{2}} \cdot \left(\frac{\sqrt{3}}{2}\cos(\theta/2) - \frac{1}{2}\sin(\theta/2)\right) = \frac{3}{14}$ $\sqrt{\frac{1-\cos(\theta)}{2}} \cdot \left(\frac{\sqrt{3}}{2} \sqrt{\frac{1+\cos(\theta)}{2}} - \frac{1}{2} \sqrt{\frac{1-\cos(\theta)}{2}} \right) = \frac{3}{14}$ $\left(\frac{\sqrt{3}}{2}\sqrt{\frac{1-\cos^2(\theta)}{4}} - \frac{1}{2}\left(\frac{1-\cos(\theta)}{2}\right)\right) = \frac{3}{14}$ $\frac{\sqrt{3}\sin\theta}{4} - \frac{(1-\cos\theta)}{4} = \frac{3}{14}$ $\sqrt{3}\sin\theta + \cos\theta = \frac{13}{7}$ $\cos\theta = \frac{13}{7} - \sqrt{3}\sin\theta.$

Substitute into $\sin^2\theta + \cos^2\theta = 1$ : $\left(\frac{13}{7} - \sqrt{3}\sin\theta\right)^2 + \sin^2\theta = 1.$ $4\sin^2\theta - \frac{26\sqrt{3}}{7}\sin\theta + \frac{120}{49} = 0.$

Solving: $\sin\theta = \frac{5\sqrt{3}}{14} \quad (\text{valid root}), \quad \cos\theta = \frac{11}{14} \Rightarrow \tan\theta = \frac{5\sqrt{3}}{11}.$

$\boxed{\text{(B) }\frac{5\sqrt{3}}{11}}$ ~sparkycat

Video Solution by SpreadTheMathLove

https://www.youtube.com/watch?v=akLlCXKtXnk

@@ Line 19: / Line 19: @@
 <cmath> = \frac{14^2 \cdot 3}{9} (   \sin(\theta)  +  \sin(120 - \theta) )   </cmath>
 <cmath> = \frac{196}{3}  (   \sin(\theta)  +  \sin(120 - \theta) )   </cmath>
-<cmath> = 2 \cdot {\frac{1}{3}  } \cdot(ABCDEF) = 2\cdot \frac{91\sqrt{3}}{3} </cmath>
+<cmath> = 2 \cdot {\frac{1}{3}  } \cdot(ADBECF) = 2\cdot \frac{91\sqrt{3}}{3} </cmath>
 <cmath> \sin(\theta)  +  \sin(120 - \theta) = \frac{13\sqrt{3}}{14}  </cmath>

2024 AMC 12B (Problems • Answer Key • Resources)
Preceded by Problem 18	Followed by Problem 20
1 • 2 • 3 • 4 • 5 • 6 • 7 • 8 • 9 • 10 • 11 • 12 • 13 • 14 • 15 • 16 • 17 • 18 • 19 • 20 • 21 • 22 • 23 • 24 • 25
All AMC 12 Problems and Solutions

Page

Toolbox

Search