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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 In Gauss's law, which charge determines the total flux through a closed surface?

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02 If the net charge inside a closed surface is zero, what is the total electric flux through the surface?

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03 What is a Gaussian surface?

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04 A Gaussian surface must always be what kind of surface?

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05 For a closed surface, in which direction is the area vector conventionally taken?

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06 Electric field leaving a closed surface makes the flux through that part what?

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07 Electric field entering a closed surface makes the flux through that part what?

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08 A positive charge is inside a closed surface. What is the sign of total electric flux?

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09 A negative charge is inside a closed surface. What is the sign of the total electric flux?

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10 If a charge is placed outside a Gaussian surface, what is its effect on the total closed flux?

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11 When is Gauss’s law easiest to use for calculating an electric field?

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12 Which Gaussian surface is most suitable for a point charge?

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13 Which Gaussian surface is suitable for an infinitely long charged line?

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14 Which Gaussian surface is often chosen for an infinite uniformly charged plane sheet?

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15 Using Gauss’s law, how does the electric field of a point charge change with distance?

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16 What is the electric field inside a uniformly charged conducting sphere in electrostatic equilibrium?

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17 How does the electric field due to an infinite charged plane sheet depend on distance?

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18 How does the electric field due to an infinitely long charged line change with distance?

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19 What is the role of the permittivity of free space in Gauss’s law?

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20 If the charge inside a Gaussian surface is doubled, what happens to the total electric flux?

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21 Why is calculation easier when the electric field is the same everywhere on a Gaussian surface?

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22 What is the main goal when choosing a Gaussian surface?

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23 If the electric field is parallel to a part of a Gaussian surface, what is the flux through that part?

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24 If the electric field is perpendicular to a part of a Gaussian surface, how can the flux through that part be?

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25 In spherical symmetry, what is the direction of the electric field?

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