Solving Gauss's Law: Charges on Shell Surfaces

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SUMMARY

This discussion focuses on solving Gauss's Law for a hollow spherical conducting shell with a surface charge density of -15 μC/m² and a point charge of -6.0 μC at its center. The inner surface charge of the shell becomes +6 μC due to the point charge, while the outer surface retains the total charge of -15 μC/m². The application of Gauss's Law is essential for determining the electric field and charge distribution on the shell surfaces.

PREREQUISITES
  • Understanding of Gauss's Law and its mathematical formulation
  • Knowledge of surface charge density concepts
  • Familiarity with spherical geometry and surface area calculations
  • Basic principles of electrostatics and charge distribution
NEXT STEPS
  • Study the application of Gauss's Law in electrostatics
  • Learn about charge distribution in conductors
  • Explore the concept of electric field lines and their representation
  • Investigate the implications of surface charge density on electric fields
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Students of physics, particularly those studying electrostatics, as well as educators and anyone interested in understanding charge distribution in conductive materials.

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Homework Statement


A hollow spherical conducting shell has a uniformly distributed total surface charge density of -15\muC/m^2. It's outer surface has a radius R1=0.25m. Its inner radius is R2=0.15 m. A point charge, Q= -6.0\muC, is placed at the center of the spherical charge. Determine the charge on the inner and outer surfaces of the shell, and show electric field lines.


Homework Equations


closed integral E*dA= E(4\pir^2)= Q/\epsilon


The Attempt at a Solution


since the hollow shell surfaces have a distinguishable inner and outer radius how do I calculate the area? Wouldn't I have to calculate the volume? Please can someone just tell me what the inner and outer charges are. Sorry I am new at using the math format.
 
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physicsnewb7 said:
since the hollow shell surfaces have a distinguishable inner and outer radius how do I calculate the area?
What's the surface area of a sphere?
Wouldn't I have to calculate the volume?
No, you're given a surface charge density, not a volume charge density.
Please can someone just tell me what the inner and outer charges are. Sorry I am new at using the math format.
To find how the charge distributes once that point charge is inserted, use Gauss's law.

Hint: Before that point charge is inserted, where does all the charge on the shell reside?
 
Would the charge distributes be the charge density per area plus the the point charge in the center?
 
physicsnewb7 said:
Would the charge distributes be the charge density per area plus the the point charge in the center?
I don't understand the question.

The total charge on the conducting sphere is fixed. When the point charge is placed inside, the charge on the sphere redistributes itself between its two surfaces.
 
So the net charge on the inner surface would become positive 6 micro coulombs?
 
physicsnewb7 said:
So the net charge on the inner surface would become positive 6 micro coulombs?
Yes, but you need to be able to explain it using Gauss' law.

Take a Gaussian sphere whose surface is inside the conducting sphere shell - ie has a radius greater than the inside surface of the shell but less than the outside surface. What is the field through through this sphere's surface? (ie in the interior of the conducting shell). Apply Gauss' law to that Gaussian sphere to determine the charge enclosed by it. The charges enclosed are the point charge at the centre and the charge on the inner surface of the conducting shell.

AM
 

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