Calculating Work Required to Move Charge -0.51x10^-12 C

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To calculate the work required to move a charge of -0.51x10^-12 C, the relevant equations are -W=qEl and W=qΔV. The voltage difference (ΔV) was determined to be -6V based on contour lines from a provided graph, which led to an initial calculation of 3.06x10^-12 J. However, it was later clarified that the contour intervals were actually in kilovolts (kV), meaning ΔV should be considered as -6 kV or -6000 V, resulting in a revised work calculation of 3x10^-9 J. Ultimately, the correct answer was confirmed to be around 3.06x10^-9 J, emphasizing the importance of accurate unit interpretation in such calculations.
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Homework Statement


Calculate the work required to move a charge of -0.51x10^-12 C from `i' to `b'.
http://capa-new.colorado.edu/msuphysicslib/Graphics/Gtype54/prob04a_threeqcontour.gif

Homework Equations


i know that the equation is -W=qEl and that it can also be expressed as -W=-q\DeltaV or W=q\DeltaV


The Attempt at a Solution


well q is given as -0.51x10^-12
the problem i am having is how do i find \DeltaV without knowing E? cause i know i can figure out l just by using the picture. So if you can just help me with find out how to get \DeltaV that would be great!
 
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Looks like your ΔV is going from +3 to -3. That looks like a Voltage drop of 6v from the image, or ΔV = -6.

Just count the contours is my method.
 
The figure is a contour plot of the potential. Each contour line represents a constant potential value.

The figure also indicates which contour lines correspond to -5V, 0V, and +5V. Using that, can you say:
What is the voltage at point i?
What is the voltage at point b?
 
ok so i did the (-.51x10^-12)(-6) and got an answer of 3.06x10^-12 J and it was said to be wrong. Where did i got wrong?
 
oh and i was given this hint when i put my answer in

The equipotential lines shown are separated by 1 kV. (NOTE! That's kV, not volts!) Work to move a charge is the increase in potential energy of the charge. The potential energy is the potential times the charge.
 
The answer remains the same though, whether it is kV or V. It's still a matter of counting contour lines.
 
shimizua said:
ok so i did the (-.51x10^-12)(-6) and got an answer of 3.06x10^-12 J and it was said to be wrong. Where did i got wrong?

If it's actually 1 kV, and not 1 V, for the contour intervals, then instead of 6V it is really ____?
 
ok so then it would mean that it was really 6 kV or 6000 V and then when i did that i got 3x10^-9 J and that also came up wrong
 
your graph is ill-made...
 
  • #10
haha, it is the graph that they gave up. i didnt make it
 
  • #11
ok i give up... i am having my own probelms...
 
  • #12
It's plus Work moving an opposite charge away from + and toward a - V.

If the contours are 103v then it's 3.06 * 10-9 J or 306 ergs.

If it's not precision or units then I've no idea what is asked.
 
  • #13
i got the answer. i did the 3.06e-09 J and it seemed to work even though i did 3.1e-09 before. i guess it had to be 06. thanks for all your help guys
 

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