Where Should I Place the Gaussian Surface When Applying Gauss's Law?

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In summary, the conversation discusses the use of a Gaussian surface in calculating the electric field between two parallel plates. It is mentioned that the choice of surface is not important as long as it makes Gauss's law useful. The concept of flux is also explained, stating that the net flux must be zero if the same amount of electric field lines enter and exit the surface. The conversation ends with a discussion on the perpendicularity of field lines to the chosen surface and the importance of understanding Gauss's law in choosing a Gaussian surface.
  • #1
moatasim23
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In calculating the electric field bw two parallel plate i.e a capacitor I encountered a problem :where to take the Guassian surface..When I consider the Guassian surface.a cube bw the two plates Electric intensity becomes 0..But when I take the Guassian surface with a portion of capictor inside the surface I get the answer..But it is confusing..How may I know where to take the Guassian Surface?
 
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  • #2
You can choose whatever surface you want. Of course, you probably would want to choose a surface that makes Gauss's law actually useful. For example, picking a surface which is in between the two plates, the total integrated flux around the surface must be 0 (no enclosed charge) and this is true because whatever flux enters one side of the box, leaves the box on the other side.

Picking this surface in the center, you get an equation 0=0, which is of no help to you, but is a true equation non-the-less.
 
  • #3
Matterwave said:
You can choose whatever surface you want. Of course, you probably would want to choose a surface that makes Gauss's law actually useful. For example, picking a surface which is in between the two plates, the total integrated flux around the surface must be 0 (no enclosed charge) and this is true because whatever flux enters one side of the box, leaves the box on the other side.

Picking this surface in the center, you get an equation 0=0, which is of no help to you, but is a true equation non-the-less.

How can it be a true eq?Electric flux is definitely not zero bw the plates..
 
  • #4
a surface to be chosen as Gaussian surface where all of the electric field lines are perpendicular to that surface...
remember.. flux=ExA cos(angle bw area vector of the surface and electric field lines)

if u like the answer then support
 
  • #5
When calculating flux you also have to pay attention to the signs. The flux means the net flux or the net outflow, if you will. If as much comes in as goes out, the total flux is zero. If you take a cube between two charged plates, there is the same electric field coming in from the bottom as is going out the top, so the net outflow is zero. Gauss' law doesn't give the electric field inside it, only the total flux out of it, but which can sometimes be used to get the actual electric field.
 
  • #6
then,why is field lines always perpendicular to the surface we choose?
 
  • #7
The first step in choosing Gaussian surface is learning Gauss's Law. It says that the electric flux through any closed surface is proportional with the charge enclosed. Then you won't be perplexed by the fact that flux is zero anywhere between the plates, because there are no any charges there.
 

1. What is Gauss's Law and how does it relate to electricity and magnetism?

Gauss's Law is a fundamental law in physics that relates to the behavior of electric and magnetic fields. It states that the electric flux through a closed surface is proportional to the enclosed electric charge, and that the magnetic flux through a closed surface is always zero. In simpler terms, it describes how electric and magnetic fields interact with each other and with charged particles.

2. How is Gauss's Law calculated and what are its units?

Gauss's Law is calculated by taking the integral of the electric field over a closed surface, and equating it to the total enclosed charge divided by the permittivity of free space. The units of Gauss's Law are typically expressed in coulombs (C) for charge, and newtons per square meter (N/m^2) for electric field.

3. What are some real-world applications of Gauss's Law?

Gauss's Law has many practical applications in engineering and science. It is used in the design of capacitors, which store electric charge, and in the analysis of electric circuits. It is also used in the study of electromagnetic radiation and the behavior of charged particles in magnetic fields.

4. What is the difference between Gauss's Law and Coulomb's Law?

Although both laws are related to the behavior of electric charges, they describe different aspects of it. Gauss's Law relates to the overall electric field and its relationship to enclosed charge, while Coulomb's Law describes the force between two individual charges. In other words, Gauss's Law is a macroscopic law, while Coulomb's Law is a microscopic law.

5. How is Gauss's Law used in the study of electromagnetism?

Gauss's Law is a fundamental tool in understanding the relationship between electric and magnetic fields. It is used in Maxwell's equations, which describe the behavior of electromagnetic fields, and in the study of electrostatics and magnetostatics. It is also used in the development of many technological devices, such as motors, generators, and electronic circuits.

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