2013 AIME II Problem 10

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Concepts:circletriangle areaoptimization

Difficulty rating: 2840

10.

Given a circle of radius 13,\sqrt{13}, let AA be a point at a distance 4+134 + \sqrt{13} from the center OO of the circle. Let BB be the point on the circle nearest to point A.A. A line passing through the point AA intersects the circle at points KK and L.L. The maximum possible area for BKL\triangle BKL can be written in the form abcd,\frac{a - b\sqrt{c}}{d}, where a,a, b,b, c,c, and dd are positive integers, aa and dd are relatively prime, and cc is not divisible by the square of any prime. Find a+b+c+d.a + b + c + d.

Solution:

The nearest point BB lies on segment OAOA with OB=13OB = \sqrt{13} and AB=4.AB = 4. Triangles OKLOKL and BKLBKL share the base KL,KL, and their heights are the distances from OO and BB to the line through A.A. For any point PP on line OA,OA, that distance is PAsinφ,PA\sin\varphi, where φ\varphi is the angle between the two lines, so [BKL][OKL]=ABAO=44+13.\frac{[BKL]}{[OKL]} = \frac{AB}{AO} = \frac{4}{4 + \sqrt{13}}.

Since OK=OL=13,OK = OL = \sqrt{13}, we have [OKL]=132sin(KOL)132,[OKL] = \frac{13}{2}\sin(\angle KOL) \le \frac{13}{2}, with equality when KOL=90.\angle KOL = 90^\circ. Such a chord lies at distance 13/2\sqrt{13/2} from O,O, which is less than OA,OA, so a line through AA can achieve it.

The maximum area is [BKL]=13244+13=264+13=26(413)3=10426133,[BKL] = \frac{13}{2} \cdot \frac{4}{4 + \sqrt{13}} = \frac{26}{4 + \sqrt{13}} = \frac{26(4 - \sqrt{13})}{3} = \frac{104 - 26\sqrt{13}}{3}, so a+b+c+d=104+26+13+3=146.a + b + c + d = 104 + 26 + 13 + 3 = 146.

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