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Figure 23-36 shows two non-conducting spherical shells fixed in place. Shell 1 has uniform surface charge density+6.0μ°ä/m2on its outer surface and radius 3.0cm; shell 2 has uniform surface charge density +4.0μ°ä/m2on its outer surface and radius 2.0 cm ; the shell centers are separated by L = 10cm. In unit-vector notation, what is the net electric field at x= 2.0 cm ?

Short Answer

Expert verified

The net electric field at x = 2 cm is(-2.8×104N/C)j^

Step by step solution

01

The given data

Shell 1:

Uniform charge densityσ=+6.0μ°ä/m2

Outer surface radius, r0=3.0cm

Shell 2:

Uniform charge density localid="1657344798468" σ=+4.0μ°ä/m2

Outer surface radius,r0=2.0cm

The centers of the shells are separated by L = 10 cm, at x = 2 cm

02

Understanding the concept of Gauss law-planar symmetry

Using the concept of the electric field at a point at a distance due to another charge, we can get the required value of the net field with its direction.

Formula:

The electric field at a point, e=q4πε0r2inthedirctionofr (1)

03

Calculation of the net electric field

We note that only the smaller shell contributes a (nonzero) field at the designated point since the point is inside the radius of the large sphere (and E = 0 inside of a spherical charge) and the field points toward the x-direction. Thus, the net electric field at is given using equation (1) as follows:

E→=E-j^=-q4πε0r2j^=-4Ï€¸é2σ24πε0(L-x)2j^=-R2σ2ε0(L-x)2j^E→=(0.020m)2(4.0×10-6C/m2)(8.85×10-12C2/N.m2)(0.10m-0.020m)2j^=(-2.8×104N/C)j^

Hence, the value of the field is (-2.8×104N/C)j^

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Most popular questions from this chapter

In Fig. 23-54, a solid sphere of radius a=2.00cmis concentric with a spherical conducting shell of inner radius b=2.00a and outer radius c=2.40a. The sphere has a net uniform charge q1=+5.00fC ; the shell has a net charge q2=-q1 . What is the magnitude of the electric field at radial distances (a) r=0, (b) r=a/2.00, (c) r=a, (d) r=1.50a, (e) r=2.30a, and (f) r=3.50a? What is the net charge on the (g) inner and (h) outer surface of the shell?

A uniform surface charge of density 8.0nC/m2is distributed over the entire x-yplane. What is the electric flux through a spherical Gaussian surface centered on the origin and having a radius of5.0cm ?

A spherical ball of charged particles has a uniform charge density. In terms of the ball’s radius R, at what radial distances

(a) inside and

(b) outside the ball is the magnitude of the ball’s electric field equal to14of the maximum magnitude of that field?

Figure 23-22 show, in cross-section, three solid cylinders, each of length L and uniform charge Q. Concentric with each cylinder is a cylindrical Gaussian surface, with all three surfaces having the same radius. Rank the Gaussian surfaces according to the electric field at any point on the surface, greatest first.

The box-like Gaussian surface shown in Fig. 23-38 encloses a net charge of+24.0ε0Cand lies in an electric field given by role="math" localid="1657339232606" E→=[(10.0+2.00)j^+bzk^]N/Cwith xand zin meters and ba constant. The bottom face is in the plane; the top face is in the horizontal plane passing through y2=1.00m. For x1=1.00m, x2=4.00m,z1=1.00m , andz2=3.00m, what is b?

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