Four point charges `+8muC,-1muC,-1muC` and , `+8muC` are fixed at the points `-sqrt(27//2)m,-sqrt(3//2)m,+sqrt(3//2)m`
and `+sqrt(27//2)m` respectively on the y-axis. A particle of mass `6xx10^(-4)kg` and `+0.1muC` moves along the x-direction. Its speed at `x=+ infty` is `v_(0)`. find the least value of `v_(0)` for which the particle will cross the origin. find also the kinetic energy of the particle at the origin in tyhis case. Assume that there is no force part from electrostatic force.

In the figure `q=1muC=10^(-6)C,q_(0)+0`.
`1muC=10^(-7)C`
and `m=6xx10^(-4)kg` and `Q=8muC=8xx10^(-6)C`
Let P be any point at a distance x from origin O. Then
`AP=CP=sqrt(3/2+x^(2))`
`BP=DP=sqrt(27/2+x^(2))`
Electric potential at point P will be
`V=(2KQ)/(BP)-(2Kq)/(AP)`
Where `K=1/(4piepsilon_(0))`
where `K=1/(4pi epsilon_(0))`
`=9xx10^(9)Nm^(2)//C^(2)`
Therefore `V=2xx9xx10^(9)`
`[(8xx10^(-6))/(sqrt(27/2+x^(2)))-(10^(-6))/(sqrt(3/2+x^(2)))]`
`V=1.8xx10^(4)[8/(sqrt(27/2+x^(2)))-(10^(-6))/(sqrt(3/2+x^(2)))]`........i
electric field at P is
`E=-(dv)/(dx)=1.8xx10^(4)`
`[(8)[((-1)/2)(27/2+x^(2))^(-3/2)`
`-(-1/2)(3/2+x^(2))^(-3/2)(2x)`
E=0 on x-axis where x=0 or
`8/((27/2+x^(2))^(3/2))=1/((3/2+x^(2))^(3/2))`
`implies((4)^(3/2))/((27/2+x^(2))^(3/2))=1/((3/2+x^(2))^(3/2))`
`implies(27/2+x^(2))=4(3/2+x^(2))`
This equation gives `x=+-sqrt(5/2)m`
The least value of kietic energy of the particle at infinity should be enough to take the particle upto `x=+sqrt(5/2)m`
because at `x=+sqrt(5/2)m,E=0`,
`implies` Electrostatic force on charge q is zeor of `F_(e)=0`
For at `x gt sqrt(5/2)m` E is repulsive (towards positive x-axis)
and for `x lt sqrt(5/2)` m, E is attractive (towards negative x-axis)
Now from eq. (i) potential at `x=sqrt(5/2)`m
`V=1.8xx10^(4)[8/(sqrt(27/2+5/2))-1/(sqrt(3/2+5/2))]`
`V=2.7xx10^(4)` volt
Applying energy conservation at `x=oo` and `x=sqrt(5/2)m`
`1/3mv_(0)^(2)=q_(0)v_(p)`.....ii
`v_(0)=sqrt((2q_(0)V)/m)`
Substituting the values of `v_(0)=`
`sqrt((2xx10^(-7)xx2.7xx10^(4))/(6xx10^(-4)))`
`v_(0)=3m//s` therefore minimum value of `v_(0)` is 3m/s