CT16-8 Three charges of equal magnitude are arranged as shown. What is the direction of the Electric field at point P?An electron is fired into the region of the three charges from the lower right as shown. What is the direction of the acceleration of the electron when it is at point P? Answers: First question: The E-field points upward toward the (–) charge. The E-fields due to the two (+) charges cancel at point P. Second question: The direction of the acceleration of the electron is downward away from the (–) charge. The acceleration is related to the net force and the E-field by a = F/m = (1/m) q E = –(e/m)E. DCBAPE) zeroDCBAPE) zero or some other direction(The charge of an electron is q = –e). So at point P, where the direction of the E-field is straight up [toward the (–) charge] , the direction of the force on an electron at point P is straight down, away from the (–) charge. The direction of the acceleration has nothing to do with the direction of the velocity.CT16-9 A positive point charge is near a bar of metal. The electric field in the vicinity ofthe point charge and the bar are shown by the field lines in the figure.From the figure, what can you say about the net charge on the bar?A) Qbar = 0 B) Qbar > 0 (the bar has a net positive charge)C) Qbar < 0 (net negative charge)D) Not enough information in the figure to answer the question.From the figure, what can you say about the magnitude of the charge on the bar Qbar, compared to the magnitude of the charge Q of the positive point charge?A) Q QbarB) Q QbarC) Q QbarAnswers: Qbar < 0 (the bar has a net negative charge). In a field line diagram, a line exits from a certain amount of (+) charge and a line ends on the same amount of (–) charge. There are 5 lines entering the bar (5 units of negative charge) and only three lines exiting (3 units of positive charges). So the net charge on the bar is (–5 units + 3 units = –2 units). The physical situation here is a metal bar with a net negative charge near a positivepoint charge.QQbarAnswer: Q Qbar. In the diagram, there are 8 field lines exiting the charge Q. So the charge of Q is +8 units of charge. As explained above, the net charge on the bar is (–5 units + 3 units = –2 units). The net charge on the bar is –2 units.CT16-10 A dipole is placed in an external field as shown. In which situation(s) is the net force on the dipole zero?A) (1) only B) (2) onlyC) (1) and (2) D) (3) and (4) E) (2) and (4) Answer: D) (3) and (4)When the field is uniform [situations (3) and (4)] the net force is zero (but the torque might be non-zero). When the field is non-uniform [situations (1) and (2)], the net force on the dipole is non-zero(4)(3)(2)(1)CT16-11 Consider two infinite uniform planes of equal and opposite charge (as you might find on a parallel plate capacitor). The planes are seen edge-on in the diagram below. In each of the three regions I, II, and III, is the electric field up, down, or zero?A I. Up II. Zero III. UpB) I. Up II. Down III. Up. C) I. Zero II. Down III. Zero.D) I. Up II. Down III. Zero.Answer: I. Zero II. Down III. Zero.Above and below the plates, the fields from the two plates exactly cancel.The key thing to remember is that for an infinitely large plate, the E-field due to the plate does not get smaller as you move away from the plate.+ + + + + + + + + + + + + + + + + + + + +_ _ _ _ _ _ _ _ _ _ _ _ _ _ _ _ _ _ _ _I.II.III.+ + + + + + + + + + + + + + + + + + + + +_ _ _ _ _ _ _ _ _ _ _ _ _ _ _ _ _ _ _ _12E1E1E1E2E2E2CT16-12 A metal sphere has a net charge +Q which is spread uniformly over its surface. How does the magnitude of the electric field at point A inside near the surface compare tothe magnitude of the field at point B at the center of the sphere.A) EA > EB B) EA < EB C) EA = EB = 0D) EA = EB 0E) None of these is correctAnswer: EA = EB = 0. Everywhere inside a metal in electrostatic equilibrium, the E-field must be zero. Otherwise the electrons would accelerate due to the force from the E-field.CT16-13 A charge +Q is brought near a block of wood and induces a polarization as shown. The net force on the block due to the charge Q is A) Attractive B) RepulsiveC) ZeroAnswer: The net force due to induced polarization is always attractive. In the case shownhere, the attraction between the +Q and the nearby (–) charges is larger than the repulsionbetween the +Q and the further away (+) charges, so the net force is attractive.CT16-14 Two vectors A and Brr are shown. The magnitudes (A and B) and the angles and with the x-axis are known.What is the correct expression for the y-component of the sum vector S A B= +r rr?Sy = A) A cos + B cos AB+Q xyABB) A sin + B sin C) A sin – B sin D) A cos – B sin E) None of theseAnswer: Sy = Ay + By = A sin – B sin
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