The ratio of the magnitude of electric force to the magnitude of gravitational force for an electron and a proton will be:
(mp=1.67×10−27 kgmp=1.67×10−27 kg, me=9.11×10−31 kgme=9.11×10−31 kg)
1. 2.4×10392.4×1039
2. 2.6×1036
3. 1.4×1036
4. 1.6×1039
1. | −Q4 | 2. | Q4 |
3. | −Q2 | 4. | Q2 |
Consider three charges q1, q2, q3 each equal to q at the vertices of an equilateral triangle of side l. What is the force on a charge Q (with the same sign as q) placed at the centroid of the triangle, as shown in the figure?
1. 34πϵ0Qql2
2. 94πϵ0Qql2
3. zero
4. 64πϵ0Qql2
Consider the charges q, q, and −q placed at the vertices of an equilateral triangle, as shown in the figure. Then the sum of the forces on the three charges is:
1. 14πϵ0q2l2
2. zero
3. 24πϵ0q2l2
4. 34πϵ0q2l2
The accelerations of electron and proton due to the electrical force of their mutual attraction when they are 1 Å (=10-10 m) apart are respectively: (mp=1.67×10−27 kg, me=9.11×10−31 kg)
1. | 2.5×1022 m/s2, 2.5×1022 m/s2 |
2. | 2.5×1022 m/s2, 1.4×1019 m/s2 |
3. | 1.4×1019 m/s2, 2.5×1022 m/s2 |
4. | 1.4×1019 m/s2, 1.4×1019 m/s2 |