1. A uniform insulating sphere of radius a with charge Q1 0.8 nC 11.0 cm conducting spherical shell of 30.0 cm and is concentric with a = inner radius b charge Q2 = 2.0 nC as shown in the figure. If the center of the sphere is chosen as the origin of the coordinate system, find the potential difference 20.0 cm, outer radius c = %3D V(r = a/2,y= 0, z = 0) – V (x = 0, y = (b+c)/2, z = 0) in units of Volts. (Take = 9.0 x 10° Nm²/C² .) 4TEO

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Chapter7: Electric Potential
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A uniform insulating sphere of radius a with charge Q1 = 0.8 nC
is concentric with a = 11.0 cm conducting spherical shell of
inner radius b = 20.0 cm, outer radius c = 30.0 cm and
charge Q2 = 2.0 nC as shown in the figure.
If the center of the sphere is chosen as the origin of the
coordinate system, find the potential difference
V (x = a/2 , y = 0 , z = 0) − V (x = 0 , y = (b + c)/2 , z = 0)
in units of Volts.

Take 1
4πε0
= 9.0 × 109 Nm2/C
2
.

submissIon
1. A uniform insulating sphere of radius a with charge Q =0.8 nC
is concentric with a = 11.0 cm conducting spherical shell of
inner radius b = 20.0 cm, outer radius c = 30.0 cm and
charge Q2 = 2.0 nC as shown in the figure.
%3D
If the center of the sphere is chosen as the origin of the
coordinate system, find the potential difference
V(r = a/2,y= 0, z= 0) – V (x = 0,y= (b+c)/2, z = 0)
%3D
in units of Volts.
(Take = /C )
= 9.0 x 10° Nm2,
4TEO
Transcribed Image Text:submissIon 1. A uniform insulating sphere of radius a with charge Q =0.8 nC is concentric with a = 11.0 cm conducting spherical shell of inner radius b = 20.0 cm, outer radius c = 30.0 cm and charge Q2 = 2.0 nC as shown in the figure. %3D If the center of the sphere is chosen as the origin of the coordinate system, find the potential difference V(r = a/2,y= 0, z= 0) – V (x = 0,y= (b+c)/2, z = 0) %3D in units of Volts. (Take = /C ) = 9.0 x 10° Nm2, 4TEO
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