Difference between revisions of "2011 AMC 12A Problems/Problem 25"

Revision as of 19:23, 29 March 2013

Problem

Triangle $ABC$ has $\angle BAC = 60^{\circ}$ , $\angle CBA \leq 90^{\circ}$ , $BC=1$ , and $AC \geq AB$ . Let $H$ , $I$ , and $O$ be the orthocenter, incenter, and circumcenter of $\triangle ABC$ , respectively. Assume that the area of pentagon $BCOIH$ is the maximum possible. What is $\angle CBA$ ?

$\textbf{(A)}\ 60^{\circ} \qquad \textbf{(B)}\ 72^{\circ} \qquad \textbf{(C)}\ 75^{\circ} \qquad \textbf{(D)}\ 80^{\circ} \qquad \textbf{(E)}\ 90^{\circ}$

Solution

Solution:

1) Let's draw a circle with center $O$ (which will be the circumcircle of $\triangle ABC$ . Since $\angle BAC = 60^{\circ}$ , $\overline{BC}$ is a chord that intercept an arc of $120 ^{\circ}$

2) Draw any chord that can be $BC$ , and lets define that as unit length.

3) Draw the diameter $\perp$ to $BC$ . Let's call the interception of the diameter with $BC$ $M$ (because it is the midpoint) and interception with the circle $X$ .

4) Note that OMB and XMC is fixed, hence the area is a constant. Thus, $XOIHC$ also achieved maximum area.

Lemma:

$m\angle BOC = m \angle BIC = m \angle BHC = 120^{\circ}$

For $m\angle BOC$ , we fixed it to $120^{\circ}$ when we drew the diagram.

Let $m\angle ABC = \beta$ , $m\angle ACB = \gamma$

Now, let's isolate the points $A$ , $B$ , $C$ , and $I$ .

$m\angle IBC = \frac{\beta}{2}$ , $m\angle ICB = \frac{\gamma}{2}$

$m\angle BIC = 180^{\circ} - \frac{\beta}{2} - \frac{\gamma}{2} = 180^{\circ} - ({180^{\circ} - 120^{\circ})= 120 ^{\circ}$ (Error compiling LaTeX. Unknown error_msg)

Now, lets isolate the points $A$ , $B$ , $C$ , and $H$ .

$m\angle HBC = \beta - 30^{\circ}$ , $m\angle HCB = \gamma - 30^{\circ}$

$m\angle BHC = 180^{\circ} - \beta - \gamma + 60^{\circ} = 240^{\circ} - 120^{\circ} = 120^{\circ}$

Lemma proven. The lemma yields that BOIHC is a cyclic pentagon.

Since we got that XOIHC also achieved maximum area,

Let $m\angle XOI = x_1$ , $m\angle OIH = x_2$ , $m\angle IHC = x_3$ , and the radius is $R$ (which will drop out.)

then area = $\frac{r^2}{2}(\sin x_1 + \sin x_2 + \sin x_3)$ , where $x_1 + x_2 + x_3 = 60^\circ$

So we want to maximize $f(x_1, x_2) = \sin x_1 + \sin x_2 + \sin x_3$ , Note that $x_3 = 60 ^\circ - x_1 - x_2$ .

Let's do some multivariable calculus.

$f_{x_1} = \cos x_1 - \cos (x_3)$ , $f_{x_2} = \cos x_2 - \cos (x_3)$

If the partial derivatives with respect to $x_1$ and $x_2$ are zero, then $x_1 = x_2 = x_3 = 20^\circ$ , and it is very easy to show that $f(x_1, x_2)$ is the maximum with the second derivative test (left for the reader).

Now, we need to verify that such situation exist and find the angle for this situation.

Let's extend $AI$ to the direction of $X$ , since $AI$ is the angle bisector, $AI$ should intersection the midpoint of the arc, which is $X$ . Hence, if such a case exists, $m\angle AXB = m \angle ACB = 40 ^\circ$ , which yields $m\angle CBA = 80 ^\circ$ .

If the angle is $80 ^\circ$ , it is clear that since $I$ and $H$ are on the second circle (follows from the lemma). $I$ will be at the right place. $H$ can be easily verified too.

Hence, the answer is $(D) 80$ .

@@ Line 32: / Line 32: @@
 <br />
-Now, lets isolate the points <math>A</math>,<math>B</math>,<math>C</math>, and <math>I</math>.
+Now, let's isolate the points <math>A</math>,<math>B</math>,<math>C</math>, and <math>I</math>.
 <math>m\angle IBC = \frac{\beta}{2}</math>, <math>m\angle ICB = \frac{\gamma}{2}</math>
@@ Line 56: / Line 56: @@
 So we want to maximize <math>f(x_1, x_2) = \sin x_1 + \sin x_2 + \sin x_3</math>, Note that <math>x_3 = 60 ^\circ - x_1 - x_2</math>.
-Let's do some multi-variable calculus.
+Let's do some multivariable calculus.
 <math>f_{x_1} = \cos x_1 - \cos (x_3)</math>, <math>f_{x_2} = \cos x_2 - \cos (x_3)</math>
-If both partial is zero, then <math>x_1 = x_2 = x_3 = 20^\circ</math>, and it is very easy to show that <math>f(x_1, x_2)</math> is maximum here with second derivative test (left for the reader).
+If the partial derivatives with respect to <math>x_1</math> and <math>x_2</math> are zero, then <math>x_1 = x_2 = x_3 = 20^\circ</math>, and it is very easy to show that <math>f(x_1, x_2)</math> is the maximum with the second derivative test (left for the reader).
 <br />
 Now, we need to verify that such situation exist and find the angle for this situation.
-Let's extend <math>AI</math> to the direction of <math>X</math>, since <math>AI</math> is the angle bisector, <math>AI</math> should intersection the midpoint of the arc, which is <math>X</math>. Hence, if such case exist, <math>m\angle AXB = m \angle ACB = 40 ^\circ</math>, which yield that <math>m\angle CBA = 80 ^\circ</math>.
+Let's extend <math>AI</math> to the direction of <math>X</math>, since <math>AI</math> is the angle bisector, <math>AI</math> should intersection the midpoint of the arc, which is <math>X</math>. Hence, if such a case exists, <math>m\angle AXB = m \angle ACB = 40 ^\circ</math>, which yields <math>m\angle CBA = 80 ^\circ</math>.
-If the angle is <math>80 ^\circ</math>, it is clear that since <math>I</math> and <math>H</math> are on the second circle (follow from lemma). <math>I</math> will be at the right place. <math>H</math> can be easily verified too.
+If the angle is <math>80 ^\circ</math>, it is clear that since <math>I</math> and <math>H</math> are on the second circle (follows from the lemma). <math>I</math> will be at the right place. <math>H</math> can be easily verified too.
 <br />

2011 AMC 12A (Problems • Answer Key • Resources)
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Difference between revisions of "2011 AMC 12A Problems/Problem 25"

Revision as of 19:23, 29 March 2013

Problem

Solution

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