g a small smetal sphere, carrying a net charge is held stationarry. what is the speed are 0.4 m apart - QAmmunity.org

g a small smetal sphere, carrying a net charge is held stationarry. what is the speed are 0.4 m apart

asked Oct 24, 2021 175k views

1 Answer

Complete Question

A small metal sphere, carrying a net charge q1=−2μC, is held in a stationary position by insulating supports. A second small metal sphere, with a net charge of q2= -8μC and mass 1.50g, is projected toward q1. When the two spheres are 0.80m apart, q2 is moving toward q1 with speed 20ms−1. Assume that the two spheres can be treated as point charges. You can ignore the force of gravity.The speed of q2 when the spheres are 0.400m apart is.

Answer:

The value
$v_2 = 4 √(10) \ m/s$

Step-by-step explanation:

From the question we are told that

The charge on the first sphere is
$q_1 = 2\mu C = 2*10^(-6) \ C$

The charge on the second sphere is
$q_2 = 8 \mu C = 8*10^(-6) \ C$

The mass of the second charge is
$m = 1.50 \ g = 1.50 *10^(-3) \ kg$

The distance apart is
$d = 0.4 \ m$

The speed of the second sphere is
$v_1 = 20 \ ms^(-1)$

Generally the total energy possessed by when
q_2 and
q_1 are separated by
$0.8 \ m$ is mathematically represented

Q = KE + U

Here KE is the kinetic energy which is mathematically represented as

KE = (1 )/(2) m (v_1)^2

substituting value

KE = (1 )/(2) * ( 1.50 *10^(-3)) (20 )^2

$KE = 0.3 \ J$

And U is the potential energy which is mathematically represented as

U = (k * q_1 * q_2 )/(d )

substituting values

U = (9*10^9 * 2*10^(-6) * 8*10^(-6) )/(0.8 )

$U = 0.18 \ J$

So

Q = 0.3 + 0.18

$Q = 0.48 \ J$

Generally the total energy possessed by when
q_2 and
q_1 are separated by
$0.4 \ m$ is mathematically represented

Q_f = KE_f + U_f

Here
KE_f is the kinetic energy which is mathematically represented as

KE_f = (1 )/(2) m (v_2^2

substituting value

KE_f = (1 )/(2) * ( 1.50 *10^(-3)) (v_2 )^2

KE_f = 7.50 *10^( -4) (v_2 )^2

And
U_f is the potential energy which is mathematically represented as

U_f = (k * q_1 * q_2 )/(d )

substituting values

U_f = (9*10^9 * 2*10^(-6) * 8*10^(-6) )/(0.4 )

$U_f = 0.36 \ J$

From the law of energy conservation

Q = Q_f

So

0.48 = 0.36 +(7.50 *10^(-4) v_2^2)

$v_2 = 4 √(10) \ m/s$

Moustafa Sallam answered Oct 30, 2021

by Moustafa Sallam

6.0k points

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