A block of mass 2 kg is initially at rest on a horizontal frictionless surface. A horizontal force vecF=(9-x2) hati N acts on it, when the block is at x = 0. The maximum kinetic energy of the block between x = 0 and x = 3 m in joule is

Question

A block of mass 2 kg is initially at rest on a horizontal frictionless surface. A horizontal force vecF=(9-x2) hati N acts on it, when the block is at x = 0. The maximum kinetic energy of the block between x = 0 and x = 3 m in joule is (A) 24 (B) 20 (C) 18 (D) 15

Tardigrade Admin · Accepted Answer

From work-energy theorem kinetic energy of the block at

x = x

is
K=

0 \int x

(9 - x^{2}) d x = [9 x - \frac{x ^{3}}{3}]

For

K

to be maximum,

\frac{d K}{d x} = 0

or

9 - x^{2} = 0

or

x = \pm 3 m

At

x = + 3 m \frac{d ^{2} K}{d x ^{2}}

is negative
i.e., Kinetic energy

K

is maximum.

∴ K_{ma x} = 9 (3) - \frac{( 3 ) ^{3}}{3} = 18 J

Q. A block of mass 2 kg is initially at rest on a horizontal frictionless surface. A horizontal force $F = (9 - x^{2}) \hat{i} N$ acts on it, when the block is at $x = 0$ . The maximum kinetic energy of the block between $x = 0$ and $x = 3 m$ in joule is

$24$

$20$

$18$

$15$

Q. A block of mass 2 kg is initially at rest on a horizontal frictionless surface. A horizontal force F=(9−x2)i^N acts on it, when the block is at x=0. The maximum kinetic energy of the block between x=0 and x=3m in joule is

24

20

18

15

From work-energy theorem kinetic energy of the block at x=x is K=0∫x​(9−x2)dx=[9x−3x3​] For K to be maximum, dxdK​=0 or 9−x2=0 or x=±3m At x=+3mdx2d2K​ is negative i.e., Kinetic energy K is maximum. ∴Kmax​=9(3)−3(3)3​=18J

Q. A block of mass 2 kg is initially at rest on a horizontal frictionless surface. A horizontal force $F = (9 - x^{2}) \hat{i} N$ acts on it, when the block is at $x = 0$ . The maximum kinetic energy of the block between $x = 0$ and $x = 3 m$ in joule is

$24$

$20$

$18$

$15$