Physics, asked by sahil3752, 1 year ago

16. The electric intensity due to a dipole of length
10 cm and having a charge of 500 uC, at a point on
the axis at a distance 20 cm from one of the charges
in air, is
(CBSE PMT-2001)
1) 6.25 X10N/C 2) 9.28 x10'N/C
3) 13.1x111|N/
C 4) 20.5 x 10?N/C

Answers

Answered by Anonymous
6

Answer:

6.25 × 10^7 N/C

Explanation:

Length if dipole = 10cm

Distance from point of axis = 20cm

Charge = 500 μC

The electric field intensity due a dipole at a point on the axial line is given as -  

E = 2kpr/(r²-l²)2

where p is the dipole moment of dipole, r is the separation between midpoint of dipole to the observation point.  

500 μC on each pole of dipole and separation between two dipoles will be 2l = 10cm  

Dipole moment , p = 500 × 100cm  

= 500 × 10^-6 C × 0.1 m  

= 5 × 10^-5 C.m  

Distance between the observation point to one charge, d = 20cm  

Distance between observation points to midpoint of dipole moment , r = (d + x/2) = 20cm + 5cm = 25cm = 0.25m

E = 2 × 9 × 10^9 × 5 × 10^-5 × 0.25/(0.25² - 0.05²)²  

= 90 × 10⁴ × 0.25/(0.30)²(0.20)²

= 2.25 × 10^5/(0.09 × 0.04)

= 2.25/(36) × 10^9  

= 225/36 × 10^7  

= 6.25 × 10^7 N/C  

Thus, one of the charges in air, is 6.25 × 10^7 N/C.

Answered by Anonymous
0

Hey Mate!

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Option :↓Choosen below↓

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The electric intensity due to a dipole of length

10 cm and having a charge of 500 uC, at a point on the axis at a distance 20 cm from one of the charges in air, is(CBSE PMT-2001)

1) 6.25 X10N/C 2) 9.28 x10'N/C

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