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Download Handout 2: Electric flux and Gauss` Law Electric flux Consider a
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1 Handout 2: Electric flux and Gaussβ Law Electric flux Consider a uniform electric field π passing through a surface area π΄ as in Figure 1. The direction of the vector area π is defined to be perpendicular to the surface. The electric flux through the surface is defined as Ξ¦ = π β π. If electric field is not constant, the electric flux is given in form of integral over a surface π: Ξ¦ = π β ππ. π Example 1 A thin circular disc of radius π = 10 cm is placed in a uniform electric field πΈ = 500 NC-1. The normal to the disc is making angle π = 30° with the electric field. Determine the flux through the disc. Example 2 Consider a closed triangular box resting within a horizontal electric field of magnitude πΈ = 7.8 × 104 NC-1 as shown in Figure. Calculate the electric flux through a) he vertical rectangular surface, b) the slanted surface, c) the entire surface of the box. Figure 1: Electric flux 2 Gaussβ law Consider Figure 2. An electric charge is inside a closed surface. The electric field from the charge causes electric flux through the surface. Gaussβ law states that the total electric flux through a closed surface is equal to the net electric charge inside the surface divided by π0 : π β ππ = π πππ . π0 It can be deduced from the Gaussβ law that if there is no net charge inside a closed surface, the electric flux through the whole surface must be zero. The example of this can be seen in Figure 3. Figure 2: Flux from a charge inside a closed surface Example 3 Charge π1 = 1.5 ΞΌC is placed inside cube and charge π2 = 2.0 ΞΌC is outside. Determine the total electric flux through the cube. Example 4 Given that π = 1.6 nC, determine the electric flux through the surface π1 , π2 , π3 and π4 . Example 5 A charge π = 1.5 × 10β7 C is located at distance π/2 from the center of a square plate of length π. Calculate the flux through the plate. Figure 3: The total flux through the closed surface is zero because πππ = 0. 3 Applications of Gaussβ law Gaussβ law is a powerful technique used to find electric field from a system of charge with certain symmetry (spherical, cylindrical). The method of finding electric field by using Gaussβ law follows the following steps: 1. Imagine electric field lines from the charge. 2. Draw Gaussian surface such that π is perpendicular to the surface and the magnitude of π is constant throughout the surface: π β ππ = πΈ π ππ΄. Figure 4: Spherical Gaussian surface π 3. Determine πππ . 4. Solve for πΈ: πΈ ππ΄ = π πππ . π0 Point charge Point charge creates electric field with spherical symmetry. Therefore, it is sensible to choose the Gaussian surface to be a sphere of radius π around the charge as in Figure 4. From Gaussβ law, π π β ππ = πΈ ππ΄ = πΈ(4ππ 2 ) = . π0 π π Therefore, the electric field on the Gaussian surface π πΈ(π) = . 4ππ0 π 2 Line of charge A line of charge creates electric field with cylindrical symmetry. Hence, it is helpful to draw the Gaussian surface to be a cylinder of radius π and length π around the line of charge as in Figure 5. Because the flat surfaces of the cylinder are parallel to the field, the flux through these surfaces is zero; the flux comes from the curved surface of the cylinder only. From Gaussβ law, π β ππ = πΈ π ππ΄ = πΈ(2πππ) = π πππ . π0 The electric field on the Gaussian surface is given by πΈ π = πππ π = , 2ππ0 ππ 2ππ0 π Figure 5: Cylindrical Gaussian surface 4 where π = πππ π is charge per unit length along the line. It should be noted that the above treatment is valid only when the line is infinitely long so that the cylindrical symmetry is attained. Surface charge Consider a positively charged plate as in Figure 6. The electric field points away from both sides of the plate in the direction perpendicular of the plate. If the plate is large enough, the field can be taken to be uniform. Hence, the reasonable Gaussian surface is a βpillboxβ through the plate. The flux through the curved surface of the pillbox is zero, leaving the flux through the two flat surfaces each of area π΄. From Gaussβ law, π β ππ = πΈ π ππ΄ = πΈ(2π΄) = π Figure 6: Gaussian βpillboxβ πππ . π0 Therefore, the electric field on the flat surface of the pillbox is given by πΈ = πππ π = , 2π0 π΄ 2π0 where π is charge per unit area of the plate. Note that the electric field strength from a infinitely large plated does not depend on the distance from the plate; the electric field is uniform near the plate. Parallel charged plates Consider two parallel charged plates of equal magnitude and opposite signs in Figure 7. Each plate produced the field according to the formula πΈ = π 2 π0 . By considering the directions of the fields from the plates, the fields cancel outside the plates and add up between the plates. Therefore, the field outside the plates is zero and the field between the plates is given by πΈ = π . π0 Example 6 The electric charge is spread on the surface of a conductor. Use Gaussβ law to explain why the electric field inside conductors is always zero. Figure 7: Electric field between two parallel plates 5 Example 7 Two parallel plates with equal surface charge density π but opposite signs are brought close to each other. Determine the pressure on each plate. *Example 8 An insulating solid sphere of radius π has electric charge π uniformly spread inside. Let π be distance measured from the center of the sphere. a) Determine the electric field πΈ(π) when π < π and π β₯ π . b) Sketch the graph πΈ(π). Example 9 A spherical insulator of radius π is placed at the center of a hollow spherical conductor. The inner and outer radii of the conductor are π and c respectively. A charge π is given to the insulator. Find the formulae for electric field πΈ(π) for π < π < π, π < π < π and π > π.
