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Calculate the electric field at the center of a semicircular line of uniformly-distributed positive charge. Follow the steps provided in the problem.
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Example: calculate the electric field at “center” of semicircular line of uniformly-distributed positive charge, oriented as shown. +Q To be worked at the blackboard in lecture. R y You don’t have to follow the steps in the exact order I present here. Just let the problem tell you what to. You may do things in a different order; that’s probably OK. x d ds R dE
Example: calculate the electric field at “center” of semicircular line of uniformly-distributed positive charge, oriented as shown. +Q Start with our usual OSE. dq ds d R y Pick an infinitesimal dq of charge. x and an angle d. dq subtends an arc length ds, What is the charge dq?
Example: calculate the electric field at “center” of semicircular line of uniformly-distributed positive charge, oriented as shown. +Q Draw the dE due to the dq, and show its components. dq ds dq′ d R y Do you see any helpful symmetry? dE′ dE x Pick a dq′ horizontally across the arc from dq. The x-components of dq and dq′ will cancel. Because of this symmetry, Ex = 0 Each dEy points downward so Ey will be negative.
Example: calculate the electric field at “center” of semicircular line of uniformly-distributed positive charge, oriented as shown. +Q Recall that dq and ds are infinitesimal. dq is located at an anglealong the semicircle from the negative y-axis. dq ds dq R y dE x is also one of the angles in the vector triangle.
Example: calculate the electric field at “center” of semicircular line of uniformly-distributed positive charge, oriented as shown. +Q An arc of a circle has a length equal to the circle radius times the angle subtended (in radians): dq ds dq R y dE x Also,
+Q Let’s summarize what we have done so far. dq ds dq R y dE x Every dq is a distance R away from the arc center:
+Q dq ds dq R y dE x Awesome Youtube derivation: http://www.youtube.com/watch?v=L1n2EUvayfw