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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 A closed surface encloses four positive and four negative charges of equal magnitude. Field on the surface may be non-zero, but what is the total flux?

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02 A point charge is inside a Gaussian sphere but not at the centre. Which statement about total flux is correct?

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03 Gauss's law is true for every closed surface, yet why is every surface not useful for finding electric field?

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04 Why is it difficult to find electric field using Gauss's law for an asymmetric charge distribution?

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05 For an infinite line charge, why is flux through the flat ends of the cylindrical Gaussian surface zero?

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06 For an infinite line charge, why is field magnitude considered same on the curved part of a cylinder?

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07 For an infinite line charge, what happens to electric field when distance is made three times?

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08 What is the correct difference in distance dependence between point charge and line charge fields?

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09 For an infinite plane sheet, why is flux through the side surface of a pillbox Gaussian surface zero?

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10 For an infinite plane sheet, why is flux taken through both flat faces of the pillbox?

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11 For an infinite plane sheet, if distance is doubled while surface charge density remains same, what happens to field?

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12 What happens to the electric field of an infinite plane sheet when surface charge density is doubled?

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13 Inside a charged spherical shell, field at any point is zero. What is the Gauss-law based reason?

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14 Why is the field outside a charged spherical shell treated like a charge at the centre?

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15 Inside a uniformly volume-charged solid sphere, how does electric field change with distance from the centre?

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16 What is the electric field at the centre of a uniformly volume-charged solid sphere?

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17 Outside a uniformly volume-charged solid sphere, how does electric field depend on distance?

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18 In a uniformly volume-charged solid sphere, where is the electric field magnitude generally maximum?

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19 In electrostatic equilibrium, total flux through a Gaussian surface inside a conductor is zero. What conclusion follows?

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20 Why does excess charge of a conductor not remain in the volume in electrostatic equilibrium?

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21 Why must the tangential component of electric field at a conductor surface be zero?

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22 The field near the surface of a charged conductor is larger. What does this indicate about surface charge density?

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23 Why can electric field be stronger near a sharp conductor?

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24 A cavity inside a conductor contains no charge. Why does field inside the cavity remain zero even if charges are placed outside?

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25 A positive charge is placed inside the cavity of a hollow conductor. What charge is induced on the inner surface to keep field inside the conductor material zero?

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