Gauss Law

Q. For a charged plane sheet, if the surface charge density is doubled, what happens to the electric field?
  • A. It remains the same
  • B. It doubles
  • C. It halves
  • D. It quadruples
Q. For a charged sphere, what happens to the electric field inside the sphere as the radius increases?
  • A. Increases
  • B. Decreases
  • C. Remains constant
  • D. Becomes zero
Q. For a charged spherical conductor, what happens to the electric field inside the conductor when it is charged?
  • A. Increases
  • B. Decreases
  • C. Remains constant
  • D. Becomes zero
Q. For a closed surface enclosing multiple charges, how is the total electric flux calculated?
  • A. Sum of individual fluxes
  • B. Product of charges
  • C. Sum of enclosed charges divided by ε₀
  • D. Average of charges
Q. For a closed surface enclosing multiple charges, how is the total electric flux related to the enclosed charges?
  • A. It is proportional to the sum of the charges
  • B. It is inversely proportional to the sum of the charges
  • C. It is independent of the charges
  • D. It is proportional to the square of the charges
Q. For a point charge, the electric field varies with distance r as?
  • A. 1/r
  • B. 1/r²
  • C. 1/r³
  • D. 1/r⁴
Q. For a spherical Gaussian surface of radius R enclosing a charge Q, what is the electric field at a distance 2R from the center?
  • A. Q/4πε₀(2R)²
  • B. Q/4πε₀R²
  • C. Q/4πε₀(2R)³
  • D. 0
Q. For a uniformly charged sphere of radius R and total charge Q, what is the electric field at a distance r from the center where r > R?
  • A. Q/(4πε₀r²)
  • B. 0
  • C. Q/(4πε₀R²)
  • D. Q/(4πε₀r)
Q. For an infinite plane sheet of charge with surface charge density σ, what is the electric field at a point near the sheet?
  • A. σ/2ε₀
  • B. σ/ε₀
  • C. 0
  • D. σ/4πε₀
Q. For an infinite plane sheet of charge with surface charge density σ, what is the electric field at any point?
  • A. σ/2ε₀
  • B. σ/ε₀
  • C. 0
  • D. σ/4πε₀
Q. If a charge of +Q is placed at one corner of a cube, what is the electric flux through one face of the cube?
  • A. Q/6ε₀
  • B. Q/3ε₀
  • C. Q/4ε₀
  • D. Q/12ε₀
Q. If a charge of +Q is placed at one corner of a cube, what is the total electric flux through the entire surface of the cube?
  • A. Q/ε₀
  • B. Q/6ε₀
  • C. 0
  • D. Q/4ε₀
Q. If a charge of +Q is uniformly distributed over a spherical shell of radius R, what is the electric field inside the shell?
  • A. 0
  • B. Q/4πε₀R²
  • C. Q/ε₀R²
  • D. Q/4πε₀
Q. If a charge of +Q is uniformly distributed over a spherical shell, what is the electric field inside the shell?
  • A. 0
  • B. Q/4πε₀r²
  • C. Q/ε₀
  • D. Q/4πε₀
Q. If a charge Q is placed at one corner of a cube, what is the electric flux through one face of the cube?
  • A. Q/6ε₀
  • B. Q/3ε₀
  • C. Q/4ε₀
  • D. Q/12ε₀
Q. If a charge Q is uniformly distributed over a sphere of radius R, what is the electric field at a distance r from the center where r > R?
  • A. Q/(4πε₀r²)
  • B. Q/(4πε₀R²)
  • C. 0
  • D. Q/(4πε₀R²) * (R/r)²
Q. If a charge Q is uniformly distributed over a spherical surface of radius R, what is the electric field at a point inside the sphere?
  • A. Q/(4πε₀R²)
  • B. 0
  • C. Q/(4πε₀R)
  • D. Q/(4πε₀R³)
Q. If a charge Q is uniformly distributed over a spherical surface of radius R, what is the electric field at a point outside the sphere at a distance r from the center (r > R)?
  • A. 0
  • B. Q/(4πε₀r²)
  • C. Q/(4πε₀R²)
  • D. Q/(4πε₀R)
Q. If a point charge Q is placed at the center of a spherical Gaussian surface of radius R, what is the total electric flux through the surface?
  • A. 0
  • B. Q/ε₀
  • C. Q/4πε₀R²
  • D. Q/4πε₀
Q. If a point charge Q is placed at the center of a spherical Gaussian surface of radius R, what is the electric flux through the surface?
  • A. 0
  • B. Q/ε₀
  • C. Q/2ε₀
  • D. Q/4ε₀
Q. If a point charge Q is placed at the center of a spherical Gaussian surface, what is the total electric flux through the surface?
  • A. 0
  • B. Q/ε₀
  • C. Q/4πε₀
  • D. 4πQ/ε₀
Q. If the charge density of a non-conducting sphere increases linearly with radius, how does the electric field vary inside the sphere?
  • A. Linearly with radius
  • B. Quadratically with radius
  • C. Constant
  • D. Inversely with radius
Q. If the charge density of a non-uniform spherical charge distribution varies as ρ(r) = kr², what is the electric field at the center of the sphere?
  • A. 0
  • B. k/3ε₀
  • C. k/4ε₀
  • D. k/2ε₀
Q. If the charge density of a spherical charge distribution increases linearly with radius, how does the electric field vary inside the sphere?
  • A. Linearly with radius
  • B. Quadratically with radius
  • C. Inversely with radius
  • D. Constant
Q. If the charge inside a closed surface is doubled, what happens to the electric flux through the surface?
  • A. It doubles
  • B. It halves
  • C. It remains the same
  • D. It becomes zero
Q. If the electric field due to a charged infinite plane sheet is E, what is the electric field at a point above the sheet?
  • A. E/2
  • B. E
  • C. 2E
  • D. 0
Q. If the electric field due to a charged infinite plane sheet is E, what is the electric field at a point on either side of the sheet?
  • A. E
  • B. 2E
  • C. E/2
  • D. Zero
Q. If the electric field due to a charged plane sheet is E, what is the electric field due to two parallel sheets with equal and opposite charge densities?
  • A. 0
  • B. E
  • C. 2E
  • D. E/2
Q. If the electric field due to a point charge is E, what is the electric field at a distance of 2r from the charge?
  • A. E/2
  • B. E/4
  • C. E/8
  • D. E
Q. If the electric field inside a conductor in electrostatic equilibrium is zero, what can be said about the charge distribution?
  • A. Charge is uniformly distributed
  • B. Charge is concentrated at the center
  • C. Charge resides on the surface
  • D. Charge is absent
Showing 31 to 60 of 97 (4 Pages)
Soulshift Feedback ×

On a scale of 0–10, how likely are you to recommend The Soulshift Academy?

Not likely Very likely