Asked by Anonymous
In the figure below, four particles are fixed along an x axis, separated by distances d = 4.00 cm. The charges are q1 = +2e, q2 = -e, q3 = +e, and q4 = +5e, with e = 1.60 × 10-19 C. What is the value of the net electrostatic force on (a) particle 1 and (b) particle 2 due to the other particles?
q1 is at the origin and the rest of the particles are to the right a distance d from one another. therefore the order of particles is q1,q2,q3,q4 each with a distance d in between.
Got part a to be 5.596E-26 but i don't know how to do b. please help
q1 is at the origin and the rest of the particles are to the right a distance d from one another. therefore the order of particles is q1,q2,q3,q4 each with a distance d in between.
Got part a to be 5.596E-26 but i don't know how to do b. please help
Answers
Answered by
bobpursley
The only difference in part 2 from part 1 is that you have to consider space and direction of forces. Do this, sketch which way the forces are.
at q2, reverse the sign of F since it is on the left side.
Ftotal2= k/d^2 (-q1q2+q3q2+q4q2/2^2 )
That should do it.
If you want to the direction, You need to do the vector form of the equation.
at q2, reverse the sign of F since it is on the left side.
Ftotal2= k/d^2 (-q1q2+q3q2+q4q2/2^2 )
That should do it.
If you want to the direction, You need to do the vector form of the equation.
Answered by
Anonymous
i ended up with 2.8767E-29 but its incorrect...i don't understand what im doing wrong still
Answered by
sabrina
5. If the voltage between the two plates of an electric air cleaner is 500 V, how fast would a 10-12 kg soot particle with -1 „e 10-11 C of charge on it be moving if it went from the negative plate to the positive?
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