A question about line images(electrostatics)

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In summary, the equation of equipotential surfaces for two lines of charges can be found using the given equations with m as a constant and 2a as the distance between the lines of charge. These equations are also used to determine the potential of a configuration with an infinite line of charge near an infinite conducting cylinder. The center of the circle on the cylinder, x_0, and the distance between the charge line and its image, a, can be found and used to determine the potential function. The potential of two line charges with charge densities \lambda and -\lambda is also found using cylindrical coordinates and the distance of the observation point to the lines of charge. The equipotential surfaces are then found by equating \frac{\
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ShayanJ
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In Nayfeh's electricity and magnetism,the equation of equipotential surfaces of two lines of charges are found and they are infinite cyliners with
radius and center(center of the circle which is in the plane,we're solving problem in) given by the following equations:

[itex] x_0=\frac{m^2+1}{m^2-1} a [/itex]
[itex] R^2=x_0^2-a^2=\left(\frac{2ma}{m^2-1}\right)^2 [/itex]

with m a constant and 2a the distance between lines of charge.

Then the results above are used to find the potential of a configuration like an infinite line of charge near an infinite conducting cylinder.
[itex] x_0 [/itex](the center of circle which is part of cylinder) and a(which is half the distance of charge line and its image) are found and using them,m
is found which determines the potential function.
My problem is this.When we see the configuration,as soon as we setup the coordinate system and choose the origine,[itex] x_0 [/itex] is determined.
It shouldn't depend on other parameters!

thanks
 
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I don't have that book on hand. Can you describe what each of these symbols means.
 
  • #3
At first the potential of two line charges with charge densities [itex] \lambda [/itex] and [itex] -\lambda [/itex] is found to be:

[itex] \phi=\frac{\lambda}{2 \pi \varepsilon_0}\ln {\frac{\rho_-}{\rho_+}} [/itex]

Where [itex] \rho_- [/itex] and [itex] \rho_+ [/itex] are the distace of the observation point to the line with minus and plus charge,respectively,in
cylindrical coordinates.

The equipotential surfaces are found by equating [itex]\frac{\rho_-}{\rho_+}[/itex] to a constant, m.
They are cylinders with radius R.
And [itex] x_0 [/itex] is the center of the circle which is the intersection of the cylinder and the xy plane.
 

1. What is a line image in electrostatics?

A line image in electrostatics refers to the image of a charged object that is formed by the reflection of the field lines from a grounded conducting surface. It is a visual representation of the electrostatic field around the charged object.

2. How is a line image created?

A line image is created when a charged object is placed near a grounded conducting surface. The electrostatic field lines from the charged object are reflected off the surface, creating a mirrored image of the object. The image is formed in such a way that the electric field at any point on the surface is perpendicular to the surface, also known as the law of reflection.

3. What is the purpose of studying line images in electrostatics?

The study of line images in electrostatics helps us understand the behavior of electric fields and how they interact with charged objects and grounded surfaces. It also allows us to make predictions about the strength and direction of the electric field at different points in space.

4. Can line images be created with non-uniform electric fields?

Yes, line images can be created with non-uniform electric fields. However, the image will not be an exact replica of the charged object, as the field lines will not be evenly spaced. This is because the strength of the electric field is not constant in a non-uniform field.

5. How can we use line images in practical applications?

Line images have many practical applications, such as in the design of electrostatic shielding for sensitive electronic equipment. They are also used in the study of electric fields and their effects on biological systems, such as in medical imaging techniques like electrocardiography. Additionally, line images help us visualize and understand the behavior of electric fields in various situations, which can aid in problem-solving and engineering designs.

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