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Question: The electric potential at a point is \(V=-5x+3y+\sqrt{15}z\) .Find the magnitude of the electric fie...

The electric potential at a point is V=5x+3y+15zV=-5x+3y+\sqrt{15}z .Find the magnitude of the electric field intensity.

Explanation

Solution

The electric field at a point is defined as the gradient of the electric potential at that point. The variation of potential at any point in the space is given as V=5x+3y+15zV=-5x+3y+\sqrt{15}z. Hence by taking the gradient of the above electric potential we will be able to determine the electric field at that point.
Formula used:
Gradient(V)=.V E=.V=(δVδx+δVδy+δVδz) \begin{aligned} & Gradient(V)=\overline{\nabla }.V \\\ & E=\overline{\nabla }.V=-\left( \dfrac{\delta V}{\delta x}+\dfrac{\delta V}{\delta y}+\dfrac{\delta V}{\delta z} \right) \\\ \end{aligned}

Complete answer:
The potential due to some charge configuration is given by V=5x+3y+15zV=-5x+3y+\sqrt{15}z. From this expression we can conclude that the charge distribution has its influence along the entire space i.e. it has components along all the axes. For a point in space having a particular value of potential the electric field is defined as the negative gradient of electric potential. This can be mathematically represented as,
E=.V=(δVδx+δVδy+δVδz)E=\overline{\nabla }.V=-\left( \dfrac{\delta V}{\delta x}+\dfrac{\delta V}{\delta y}+\dfrac{\delta V}{\delta z} \right)
Substituting for the potential at appoint due to the charge distribution in the above equation we get,
E=(δVδx+δVδy+δVδz) E=(δ(5x+3y+15z)δx+δ(5x+3y+15z)δy+δ(5x+3y+15z)δz) \begin{aligned} & E=-\left( \dfrac{\delta V}{\delta x}+\dfrac{\delta V}{\delta y}+\dfrac{\delta V}{\delta z} \right) \\\ & E=-\left( \dfrac{\delta (-5x+3y+\sqrt{15}z)}{\delta x}+\dfrac{\delta (-5x+3y+\sqrt{15}z)}{\delta y}+\dfrac{\delta (-5x+3y+\sqrt{15}z)}{\delta z} \right) \\\ \end{aligned}
Since the derivative of a function with respect to it running variable is non zero, the above equation becomes,
E=(δ(5x+3y+15z)δx+δ(5x+3y+15z)δy+δ(5x+3y+15z)δz) E=(δ5xδx+δ3yδx+δ15zδx+δ5xδy+δ3yδy+δ15zδy+δ5xδz+δ3yδz+δ15zδz) E=(5δxδx+0+3δyδy+15δzδz) E=(5+3+15) E=5315 E=215 \begin{aligned} & E=-\left( \dfrac{\delta (-5x+3y+\sqrt{15}z)}{\delta x}+\dfrac{\delta (-5x+3y+\sqrt{15}z)}{\delta y}+\dfrac{\delta (-5x+3y+\sqrt{15}z)}{\delta z} \right) \\\ & \Rightarrow E=-\left( \dfrac{-\delta 5x}{\delta x}+\dfrac{\delta 3y}{\delta x}+\dfrac{\delta \sqrt{15}z}{\delta x}+\dfrac{-\delta 5x}{\delta y}+\dfrac{\delta 3y}{\delta y}+\dfrac{\delta \sqrt{15}z}{\delta y}+\dfrac{-\delta 5x}{\delta z}+\dfrac{\delta 3y}{\delta z}+\dfrac{\delta \sqrt{15}z}{\delta z} \right) \\\ & \Rightarrow E=-\left( \dfrac{-5\delta x}{\delta x}+0+\dfrac{3\delta y}{\delta y}+\dfrac{\sqrt{15}\delta z}{\delta z} \right) \\\ & \Rightarrow E=-\left( -5+3+\sqrt{15} \right) \\\ & \Rightarrow E=5-3-\sqrt{15} \\\ & \Rightarrow E=2-\sqrt{15} \\\ \end{aligned}
Therefore the electric field at a point in space of influence of the charge configuration is equal to (215)NC(2-\sqrt{15})NC .

Note:
If we analyze the above answer, i.e. the value of the electric field is negative. Hence we can conclude that the field is generated by some negative charge distribution. Hence we can say that the potential due to the system keeps on decreasing as we move towards the negative charge distribution. It is to be noted that the potential is always relative to the negative and the positive charge.