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Question

The minimum value of α for which the equation 4sinx+11sinx=α has at least one solution in (0,π2) is

A
9
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B
9.0
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C
9.00
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Solution

Let f(x)=4sinx+11sinx and sinx=t
x(0,π2)0<t<1
f(x)=4t+11t
f(x)=4t2+1(1t)2=0
t24(1t)2t2(1t)2=0
t=23
fmin at t=23
αmin=f(23)=42/3+112/3
=6+3
=9

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