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Question

If x, y, z are the distances of the vertices of triangle ABC from its orthocenter, then x+y+z = .

A
r+R
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B
2(r+R)
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C
2r+R
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D
r+2R
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Solution

The correct option is B 2(r+R)
We have,
x+y+z = 2R cos A +2R cos B +2R cos C = 2R(cos A + cos B +cos C)
=2R{2cos A+B2cos AB2+12sin2C2}=2R{2 sin C2cos AB22sin2C2}+2R=4R sin C2{cos AB2cos A+B2}+2R=8R sin A2sin B2sin C2+2R=2r+2R=2(r+R)

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