If the volume of a spherical ball is increasing at the rate of 4 π cc/sec, then the rate of increase of its radius (in cm/ sec), when the volume is 288 π cc, is :

Question

If the volume of a spherical ball is increasing at the rate of 4 π cc/sec, then the rate of increase of its radius (in cm/ sec), when the volume is 288 π cc, is : (A) (1/6) (B) (1/9) (C) (1/36) (D) (1/24)

Tardigrade Admin · Accepted Answer

Volume of sphere V =(4/3)π r3 ...(1) (dv/dt) = (4/3). 3π r2. (dr/dt) 4π = 4π r2. (dr/dt) (1/r2) = (dr/dt) Since, V = 288π, therefore from (1), we have 288π = (4/3)π(r3)⇒ (288×3/4) = r3 ⇒ 216 = r3 ⇒ r = 6 Hence, (dr/dt) = (1/36).

Q. If the volume of a spherical ball is increasing at the rate of $4 π$ cc/sec, then the rate of increase of its radius (in cm/ sec), when the volume is $288 π$ cc, is :

$\frac{1}{6}$

$\frac{1}{9}$

$\frac{1}{36}$

$\frac{1}{24}$

Q. If the volume of a spherical ball is increasing at the rate of 4π cc/sec, then the rate of increase of its radius (in cm/ sec), when the volume is 288π cc, is :

61​

91​

361​

241​

Volume of sphere V=34​πr3...(1) dtdv​=34​.3πr2.dtdr​ 4π=4πr2.dtdr​ r21​=dtdr​ Since, V=288π, therefore from (1), we have 288π=34​π(r3)⇒4288×3​=r3 ⇒216=r3 ⇒r=6 Hence, dtdr​=361​.

Q. If the volume of a spherical ball is increasing at the rate of $4 π$ cc/sec, then the rate of increase of its radius (in cm/ sec), when the volume is $288 π$ cc, is :

$\frac{1}{6}$

$\frac{1}{9}$

$\frac{1}{36}$

$\frac{1}{24}$