In this problem, consider electrostatic forces only. In the figure, there is a p
ID: 1574393 • Letter: I
Question
In this problem, consider electrostatic forces only. In the figure, there is a particle of charge +Q at x = 0, and there is a particle of charge +16Q at x = +4a. You are going to bring in a third particle, with a charge of 4Q, and place it at an appropriate spot on the x-axis. Use Q = 60.0 106C, and a = 40.0 cm. Also, use k = 9.00 109 N · m2/C2. (a)First, place the particle of charge 4Q at the correct location so that the +Q charge experiences no net force because of the other two charged particles. In that situation, calculate the magnitude of the force that just one of the other charged particles exerts on the +Q charge. (b)Instead, at what location on the x-axis would you place the particle of charge 4Q so that the +16Q charge experiences no net force because of the other two charged particles? Note that we're looking for an answer in units of centimeters. (c)Finally, place the particle of charge 4Q at the correct location so that the 4Q charge experiences no net force because of the other two charged particles. In that situation, calculate the magnitude of the force that just one of the other charged particles exerts on the 4Q charge.
Explanation / Answer
Ans:-
Given data q1 = Q = 60*10^-6C, x = 0
q2 = 16Q = 60*16*10^-6 =960*10^-6C , x= 4a = 4*40 = 160cm = 1.6m
q3 = -4Q =- 64*10^-6C
a] F1 = K*q1*q3 /r1^2
= 9*10^9*60*10^-6*-64*10^-6 /r^2 = -34.56/r1^2
F2 = K*q2*q1 /r2^2
= 9*10^9* 960*10^-6*60*10^-6/(1.6)^2 = 202.5N
F1 + F2 = 0
-34.56/r1^2 + 202.5 = 0
r1^2 = 34.56/202.5 = 0.17
r1 = 0.4m
b}F1 = Kq2*q3 /r1^2 = 9*10^9 * 960*10^-6*-64*10^-6 / r1^2 =-552.96/r1^2
F2 = Kq2 q1 /r2^2 = 202.5N
F1 +F2 = 0
-552.96/r1^2 +202.5 =0
r1 = 1.7m
c]F1 Kq1*q3/r1^2 = -34.56/r^2
F2 = Kq2*q3/r2^2 = -552.96/(1.6-r)r^2
34.56/r^2 = 552.96/(1.6-r)^2
(1.6-r)^2*34.56 = 552.96*r^2
2.56-3.2r+r^2 = 16r^2
-15r^2-3.2r+2.56= 0
15r^2 + 3.2r -2.56= 0
By solving we get
r = 0.32m
Related Questions
drjack9650@gmail.com
Navigate
Integrity-first tutoring: explanations and feedback only — we do not complete graded work. Learn more.