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Subjects

Physics

Gauss's Law and its Applications

गाउस का नियम और इसके अनुप्रयोग

In this Class 12 Physics topic from Chapter 1, Electric Charges and Fields, students learn how electric flux is related to the net charge enclosed by a closed surface through Gauss’s law. The topic develops the idea of Gaussian surfaces, uses symmetry to simplify electric-field calculations, and applies the law to charged spherical shells, uniformly charged spheres, infinite line charges, and plane sheets. It also helps students understand the electric field inside conductors and choose suitable surfaces for solving electrostatic problems.

Practice questions

01 Electric field just outside a charged conductor is shown oblique. Why is this inconsistent in electrostatic condition?

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02 Why does a closed Gaussian surface drawn inside a conductor enclose zero net charge?

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03 Why does excess charge on a charged conductor reside on the surface?

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04 A conductor has an empty cavity with no charge inside it. In electrostatic condition, what is the electric field inside the cavity?

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05 A positive charge is placed inside a cavity of a conductor. What will be the electric field inside the conductor material?

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06 A positive charge is placed inside a conductor cavity. What will be the total induced charge on the inner surface of the cavity?

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07 Why is electric field just outside a conductor stronger where surface charge density is higher?

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08 On a closed surface, electric field is outward everywhere and non-zero. What is the sign of net enclosed charge?

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09 On a closed surface, electric field is inward everywhere. What is the sign of net enclosed charge?

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10 If net enclosed charge is zero but field is said to be outward everywhere on a closed surface, what is the issue?

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11 If a Gaussian surface is not closed, why is direct use of Gauss's law wrong?

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12 If electric field is parallel to a Gaussian surface everywhere, what is the total flux?

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13 Total flux through a closed surface is positive, but net enclosed charge is stated to be zero. What is the correct comment?

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14 While finding field using Gauss's law, what difficulty arises when symmetry is lacking?

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15 A closed surface contains net positive charge. Can total flux be made zero by placing an external negative charge nearby?

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16 Outside a uniformly charged conducting sphere, what happens to electric field when distance from the centre is doubled?

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17 For a long charged line, what happens to electric field when distance from the line is doubled?

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18 For an infinite charged plane sheet, what happens to electric field when distance from the sheet is doubled?

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19 Which order of distance dependence is correct for three results derived using Gauss's law?

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20 If a closed surface has uniform electric field everywhere perpendicular outward and total area is doubled while field remains same, what happens to total flux?

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21 If a closed surface has uniform magnitude field everywhere perpendicular inward, what is the sign of net enclosed charge?

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22 Why is a small pillbox useful for finding field near the outer surface of a charged conductor using Gauss's law?

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23 If total flux through a surface is zero, is it correct to assume electric field is zero everywhere while finding the field?

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24 Total flux through a closed surface is known from Gauss's law. Does this always give electric field at every point on the surface?

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25 In an expert-level Gauss's law question, which three things should be checked first?

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