MCQ
Internal forces acting within a system of particles can alter
  • A
    The linear momentum as well as the kinetic energy of the system
  • B
    The linear momentum of the system, but not the kinetic energy of the system
  • The kinetic energy of the system, but not the linear momentum of the system
  • D
    Neither linear momentum nor kinetic energy of the system

Answer

Correct option: C.
The kinetic energy of the system, but not the linear momentum of the system
c
(c)

The kinetic energy of the system, but not the linear momentum of the system as $F_{\text {ext }}=0$. So momentum will be conserved

Need a full question paper?

Generate a complete, print-ready paper with questions like this in minutes — across 16+ boards, with answer keys.

Start Generating Free

Similar questions

A man does a given amount of work in $ 10 sec.$ Another man does the same amount of work in $20 sec.$  The ratio of the output power of first man to the second man is
Three moles of an ideal gas $\left( {{C_P} = \frac{7}{2}R} \right)$ at pressure ${P_A}$ and temperature ${T_A}0$ is isothermally expanded to twice its initial volume. It is then compressed at constant pressure to its original volume. Finally the gas is compressed at constant volume to its original pressure ${P_A}.$ The correct $P-V$ and $P-T$ diagrams indicating the process are
A ball is spun with angular acceleration $\alpha=6 t ^{2}-2 t$ where $t$ is in second and $\alpha$ is in $rads$ $^{-2}$. At $t=0$, the ball has angular velocity of $10\,rads$ $^{-1}$ and angular position of $4\,rad$. The most appropriate expression for the angular position of the ball is
In the figure shown, a block of weight $10 \,N$ resting on a horizontal surface. The coefficient of static friction between the block and the surface ${\mu _s} = 0.4$. A force of $3.5\, N$ will keep the block in uniform motion, once it has been set in motion. A horizontal force of $3 \,N$ is applied to the block, then the block will
If the radius of a planet is $R$ and its density is $\rho $, the escape velocity from its surface will be
A road is $10\, m$ wide. Its radius of curvature is $50\, m$. The outer edge is above the lower edge by a distance of $1.5\, m$. This road is most suited for the velocity ..........  $m/\sec$
The position vectors of radius are $2\hat i + \hat j + \hat k$ and $2\hat i - 3\hat j + \hat k$ while those of linear momentum are $2\hat i + 3\hat j - \hat k.$ Then the angular momentum is
A particle starting from rest, moves with a uniform acceleration and covers $x$ meters in the first $5\, second$. The same particle will cover the following distance in the next $5\, seconds$ :-
The graph between velocity and position for a damped oscillation will be
A block of mass $m$ as shown in figure is pulled by a force $40 \,N$. The tension at the middle of the block is ........... $N$