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The radius of a circle is increasing at a nonzero rate, and at a certain instant, the rate of increase in the area of the circle is numerically equal to the increase in its circ…

The radius of a circle is increasing at a nonzero rate, and at a certain instant, the rate of increase in the area of the circle is numerically equal to the increase in its circ…
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The radius of a circle is increasing at a nonzero rate, and at a certain instant, the rate of increase in the area of the circle is numerically equal to the increase in its circumstance. At this instant, the radius of the cirle is...

Here is what I did: (unsure) pi(r^2)=2pi(r) r^2-r=0 r(r-2)=0 r=2

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User Martis
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7.8k points

1 Answer

4 votes

\pi r^(2) = 2
\pi r

r^(2) = 2r
r*r = 2*r
r = 2
answered
User Awilkening
by
7.6k points
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