A spherical iron ball of 10 cm radius is coated with a layer of ice of uniform thickness that melts at a rate of 50 cm3/ min. When the thickness of ice is 5 cm, then the rate (in cm/min.) at which of the thickness of ice decreases, is :

Question

A spherical iron ball of 10 cm radius is coated with a layer of ice of uniform thickness that melts at a rate of 50 cm3/ min. When the thickness of ice is 5 cm, then the rate (in cm/min.) at which of the thickness of ice decreases, is : (A) (5/6π) (B) (1/54π) (C) (1/36π) (D) (1/18π)

Tardigrade Admin · Accepted Answer

Let thickness of ice be 'h'. Vol. of ice =v=(4π/3)((10+h)3-103) (dv/dt)=(4π/3)(3(10+h)2). (dh/dt) Given (dv/dt)=50cm3/ min and h=5cm ⇒ 50=(4π/3)(3(10+5)2) (dh/dt) ⇒ (dh/dt)=(50/4π×152)=(1/18π) cm/ min

Q. A spherical iron ball of $10 c m$ radius is coated with a layer of ice of uniform thickness that melts at a rate of $50 c m^{3}$ / min. When the thickness of ice is $5 c m$ , then the rate (in cm/min.) at which of the thickness of ice decreases, is :

$\frac{5}{6 π}$

$\frac{1}{54 π}$

$\frac{1}{36 π}$

$\frac{1}{18 π}$

Q. A spherical iron ball of 10cm radius is coated with a layer of ice of uniform thickness that melts at a rate of 50cm3/ min. When the thickness of ice is 5cm, then the rate (in cm/min.) at which of the thickness of ice decreases, is :

6π5​

54π1​

36π1​

18π1​

Let thickness of ice be ′h′. Vol. of ice =v=34π​((10+h)3−103) dtdv​=34π​(3(10+h)2).dtdh​ Given dtdv​=50cm3/min and h=5cm ⇒50=34π​(3(10+5)2)dtdh​ ⇒dtdh​=4π×15250​=18π1​cm/min

Q. A spherical iron ball of $10 c m$ radius is coated with a layer of ice of uniform thickness that melts at a rate of $50 c m^{3}$ / min. When the thickness of ice is $5 c m$ , then the rate (in cm/min.) at which of the thickness of ice decreases, is :

$\frac{5}{6 π}$

$\frac{1}{54 π}$

$\frac{1}{36 π}$

$\frac{1}{18 π}$