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Question

If in a triangle ABC,a,b,c are in A.P. and p1, p2, p3 are the altitudes from the vertices A,B,C respectively then

A
p1, p2, p3 are in A.P.
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B
p1, p2, p3 are in H.P.
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C
p1+p2+p33RΔ
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D
1p1+1p2+1p33RΔ
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Solution

The correct option is D 1p1+1p2+1p33RΔ
Δ=12ap1=12bp2=12cp3p1=2Δa, p2=2Δb, p3=2Δc
p1, p2, p3 are in H.P
Now p1=2Δ2RsinA, p2=2Δ2RsinB, p3=2Δ2RsinC1p1=R sin AΔ, 1p2=R sin BΔ, 1p3=R sin CΔ
Since sinA,sinB,sinC are in A.P.
sinA+sinC=2sinB1p1+1p2+1p3=RΔ(sinA+sinB+sinC)=3RΔsinB3RΔ

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