Statement-wise analysis: A. Electrostatic field lines form closed loops. False. Electrostatic field lines always originate from positive charges and terminate on negative charges. They never form closed loops. Closed loops are characteristic of magnetic field lines.
B. The electric field lines point radially outward when charge is greater than zero. True. For a positive point charge, electric field lines emerge radially outward, indicating the direction of force on a positive test charge.
C. The Gauss’s Law is valid only for inverse-square force. True. Gauss’s law strictly holds when the force follows an inverse-square dependence on distance, as is the case for electrostatic (Coulomb) force.
D. The work done in moving a charged particle in a static electric field around a closed path is zero. True. Electrostatic fields are conservative. Hence, the work done over any closed loop is zero.
E. The motion of a particle under Coulomb’s force must take place in a plane. True. Coulomb force is a central force. Motion under any central force is always confined to a plane.
Step 2: Collect the true statements Correct statements are: \[ \boxed{B,\ C,\ D,\ E} \] Final Answer: \[ \boxed{\text{(C) B, C, D, E Only}} \]
A small block of mass \(m\) slides down from the top of a frictionless inclined surface, while the inclined plane is moving towards left with constant acceleration \(a_0\). The angle between the inclined plane and ground is \(\theta\) and its base length is \(L\). Assuming that initially the small block is at the top of the inclined plane, the time it takes to reach the lowest point of the inclined plane is _______. 
Match List–I with List–II.
List–I List–II
A. Coefficient of viscosity I. [ M L^-1 T^-2 ]
B. Surface tension II. [ M L^-2 T^-2 ]
C. Pressure III. [ M L^0 T^-2 ]
D. Surface energy IV. [ M L^-1 T^-1 ]
Choose the correct answer from the options given below: