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Subjects

Physics

Continuous Charge Distribution

सतत आवेश वितरण

In Class 12 Physics, this topic introduces continuous charge distribution, where electric charge is spread smoothly along a line, over a surface, or throughout a volume rather than concentrated at separate points. Students learn linear, surface, and volume charge densities and use small charge elements with integration to calculate total charge and electric fields. The topic strengthens their understanding of superposition and prepares them to analyse charged rods, rings, discs, sheets, and other extended systems in the chapter Electric Charges and Fields.

Practice questions

01 At the centre of a uniformly charged ring, the electric field is zero but the potential need not be zero. What is the best reason?

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Answer and explanation

02 On the perpendicular bisector of a uniformly charged rod, what is the direction of the total electric field and why?

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03 Why is zero electric field at the centre not guaranteed for a non-uniformly charged ring?

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04 If linear charge density changes from positive to negative, what is necessary when finding the total charge?

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05 A linear distribution has density +2 C/m over its first half and −2 C/m over its second half. The two halves have equal lengths. What is the total charge?

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06 If half the surface has density four coulomb per square metre and the other half has negative four coulomb per square metre, what is the total charge?

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07 If density changes with position in a volume distribution, which idea is most suitable for finding the total charge?

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08 Why do components perpendicular to the axis cancel at a point on the axis of a uniformly charged ring?

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09 Why is the electric-field direction near a uniformly charged sheet generally taken to be normal to the surface?

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10 If local density is high in a distribution, how is the contribution of a small element at that place generally affected?

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11 When can a continuous distribution be treated like a point charge at a far point?

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12 If the observation point is very close to a distribution, why can treating spread charge as a point charge be risky?

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13 If a spherical shell and a solid sphere have the same total charge, why can their charge densities be different?

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14 For a point far away on the axis of a uniformly charged ring, in which direction does the electric field point?

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15 If two charge distributions have the same total charge, one uniform and one non-uniform, whose electric field can usually be calculated more simply?

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16 If the linear charge density of a line distribution decreases with distance, how does the charge in successive equal-length sections behave?

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17 In a surface charge distribution, if the surface density changes with position in one direction, what type of distribution is it?

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18 If volume charge density depends on distance from the centre, what must be considered when finding the total charge?

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19 Why are both the magnitude and direction of small elements important when using superposition to find an electric field?

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20 At the centre of a uniformly charged ring, the field due to each small element is non-zero. Why is the total electric field zero?

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21 If the total charge on a ring is positive, does zero electric field at its centre mean that there is no electric effect there?

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22 If two surfaces carry the same total charge and the charge is uniformly distributed, which surface has the smaller surface charge density?

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23 Two wires carry the same total charge, but one wire is longer. Assuming uniform distribution, how does the linear charge density of the longer wire compare?

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24 Two solids have the same total charge, but one has a smaller volume. Assuming uniform distribution, what is the volume charge density of the smaller solid?

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25 Two equal-length small elements are chosen at equal distances from the centre of a uniformly charged rod. How do their charges compare?

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