wiz-icon
MyQuestionIcon
MyQuestionIcon
1
You visited us 1 times! Enjoying our articles? Unlock Full Access!
Question

A particle carrying a charge q is shot with a speed v towards a fixed particle carrying a charge Q. It approaches Q up to a certain distance r and then returns as shown in Fig. 20.12

If charge q were moving with a speed 2v, the distance of the closest approach would be

A
r
No worries! We‘ve got your back. Try BYJU‘S free classes today!
B
r8
No worries! We‘ve got your back. Try BYJU‘S free classes today!
C
r2
No worries! We‘ve got your back. Try BYJU‘S free classes today!
D
r4
Right on! Give the BNAT exam to get a 100% scholarship for BYJUS courses
Open in App
Solution

The correct option is D r4
Charge q will momentarily come to rest at a distance r from charge Q when all its KE is converted to PE, i.e.,
12mv2=14πϵ0.qQr
Therefore, the distance of closest approach is given by
r=qQ4πϵ0.2mv2
Thus r1v2. Hence if v is doubled, r becomes one-fourth. Thus the correct choice is (d).

flag
Suggest Corrections
thumbs-up
4
Join BYJU'S Learning Program
similar_icon
Related Videos
thumbnail
lock
Electric Potential as a Property of Space
PHYSICS
Watch in App
Join BYJU'S Learning Program
CrossIcon