docPhysics 216 Sample Exam 1 Solutions
download 
Report Transcription
Physics 216 Sample Exam 1 Solutions
Physics 216 Sample Exam 1 Solutions Print your name neatly. If you forget to write your name, or if the grader can’t read your writing, you can lose up to 100 points. Answer all the questions that you can. This exam will consist of 11 multiple-choice problems. You may not use calculators or other electronic devices on this exam. The use of such a device will be regarded as an attempt to cheat, and will be pursued accordingly. All diagrams and figures on this exam are rough sketches: they are not generally drawn to scale. No partial credit will be given for these problems. However, you can miss one of the 11 problems without penalty. Your grade will be based on your best 10 problems. You will not receive extra credit for getting all 11 right. Your grade on the exam will be based entirely on the answers that you circle on this sheet. If you have no answer or a wrong answer there, the grader will not look at the page with the problem to see if the right answer appears there. Illegible or ambiguous answers will be graded as wrong. You are responsible for copying your answers clearly, correctly, and in the right place. Although there is no partial credit on this exam, you must show your work in the space provided on the exam. There is additional scratch paper at the end of the exam: do not use it unless you have filled all the scratch space provided on the page with the problem. If you answer a difficult problem without doing any written work, the grader will assume that you got the answer by guessing or by copying from someone else, and will not give you credit for the problem even though you’ve indicated the correct solution on the answer sheet. Circle your answers here. Do not detach this sheet from the test. 1. a b a b 2. ○ c d ○ e a b 5. ○ c d e 9. a b c d ○ e c d e 6. a b c d ○ e 10. a b c d ○ e 11. a b c ○ 3. a b c ○ d e 7. a b c ○ d e 4. a b d e ○ 8. a b c ○ d e c Constant values. For ease of calculation on this exam, use the values Ke = 1 = 9 × 109 N m2 /C2 4π0 and g = 10 m/s2 d e physics 216 sample exam 1 solns Copyright ©Wayne Hacker 2012. All rights reserved. 2 Electric charge and Coulomb’s law Problem 1. Three small objects are given nonzero electrical charges. Object 1 and object 2 attract one another. Object 1 and object 3 repel one another. What can you conclude about the signs of the charges on the three objects? (a) All three charges have the same sign (b) Charges 1 and 2 have the same sign; charge 3, the opposite sign *(c) Charges 1 and 3 have the same sign; charge 2, the opposite sign (d) Charges 2 and 3 have the same sign; charge 1, the opposite sign (e) Not enough information Solution: Since objects 1 and 3 repel one another, they have the same sign; since objects 1 and 2 attract one another, they have opposite signs. Problem 2. In your physics lab, you conduct an experiment with three identical small conducting spheres. The three spheres initially have no electrical charge. Two of the spheres are brought into contact with one another and given a positive charge, then placed at a distance of x from one another. At this distance, the force exerted by each sphere on the other has magnitude F1 . The three spheres are then brought together so that all three are in contact. One of the spheres is carried out of the room; the other two are again placed at a distance of x from one another. The force exerted by each sphere on the other is now F2 . What is the relationship between F1 and F2 ? 4 2 *(a) F2 = F1 (b) F2 = F1 9 3 r 3 3 (c) F2 = F1 (d) F2 = F1 2 2 (e) None of these Solution: Let Q be the total charge initially placed on the two spheres. Since the spheres are identical, conductive, and in contact with one another, they divide the charge equally; so each has charge Q/2. After all three spheres have been brought together, the charge on each one is Q/3. Then 1 (Q/2)2 1 (Q/3)2 and F = 2 4πε0 x2 4πε0 x2 F2 (Q/3)2 4 4 ⇒ = = ⇒ F2 = F1 2 F1 (Q/2) 9 9 F1 = physics 216 sample exam 1 solns Copyright ©Wayne Hacker 2012. All rights reserved. 3 Problem 3. An insulating string is fastened to an insulating tabletop and stretched vertically upward. A bead with a positive charge of Q1 = 2×10−5 C is fastened to the bottom of the string, at y = 0. A second bead, with a mass of m2 = 0.09 kg and a positive charge of Q2 = 3 × 10−5 C, is free to slide on the string, as shown at right. At what height y2 will the second bead be in static equilibrium? r √ 3 (a) y2 = m *(b) y2 = 6 m 2 (c) y2 = 5.4 m (e) None of these (d) Q = 3 × 10−5 C u 2 6 m2 = 0.09 kg y2 Q1 = 2 × 10−5 C ?u y2 = 6 m Solution: At y2 , the Coulomb force pushing the bead upward will equal the force of gravity pulling it downward. 1/2 1 Q1 Q2 ⇒ y2 = 4πε0 m2 g 1/2 √ (9 × 109 N m2 /C2 )(2 × 10−5 C)(3 × 10−5 C) = = 6m (0.09 kg)(10 m/s2 ) 1 Q1 Q2 = m2 g 4πε0 y22 Problem 4. Two identical small metal spheres are both given negative charges, one of Q and the other of 2Q. The two spheres are then dropped into a vertical non-conductive tube, as shown at right. When they reach equilibrium, one sphere is at the bottom of the tube, at y = 0; the other is at height y1 . The spheres are pushed into contact with one another, then released. When they again reach equilibrium, one sphere is again at the bottom of the tube; the other is at height y2 . What is the relationship between y1 and y2 ? r r 2 3 (a) y2 = y1 (b) y2 = y1 3 2 2 3 (c) y2 = √ y1 *(d) y2 = √ y1 5 2 2 (e) None of these w y 6 w Solution: At equilibrium, the Coulomb force pushing the upper sphere upward equals the force of gravity pulling it downward. 1 q 1 q2 = mg 4πε0 y 2 Between the two situations, the values of q1 , q2 , and y change; everything else remains constant. Initially, q1 = Q, q2 = 2Q, and y = y1 ; after the two spheres have been pushed together, their charges are equal, so q1 = q2 = 3Q/2 and y = y2 . q1 q2 (Q)(2Q) (3Q/2)(3Q/2) = 4πε mg = = 0 y2 y12 y22 ⇒ y22 = 9 2 y 8 1 ⇒ 3 y2 = √ y1 2 2 physics 216 sample exam 1 solns Copyright ©Wayne Hacker 2012. All rights reserved. 4 Problem 5. Three small charged objects are placed in a line, as shown below. The distance between q1 and q2 is twice the distance between objects q2 and q3 . If the net electrical force on q3 is zero, what is the relationship between q1 and q2 ? q1 u q2 u - 2x *(a) q2 = − (b) q2 = − (c) q1 9 √ q 2 = − 3 q1 (d) q2 = −3q1 (e) None of these q3 x u - q1 3 Solution: The net electrical force on q3 is zero; so 1 q1 q 3 q 2 q3 + 2 = 0 ⇒ q1 + 9q2 = 0 4πε0 (3x)2 x ⇒ Problem 6. Electrical charges are placed at the four corners of a square, as shown at right: charges of q1 at two diagonally opposite corners, and charges of q2 at the other two. If the net electrical force on the q1 charges is zero, what is the relationship between q1 and q2 ? √ √ (a) q2 = −2 2 q1 (b) q2 = − 2 q1 q1 *(c) q2 = − √ 2 2 (e) None of these q2 = − q1 9 q2 u uq1 q1 u uq2 q1 (d) q2 = − √ 2 Solution: By symmetry, we need only consider either the horizontal or vertical components of the forces acting on one of the q1 charges. We will consider the horizontal forces acting on the q1 charge at upper right (UR). We can ignore the q2 charge at lower right, since it only exerts a vertical force on UR. Then if the side of the square is s, the net horizontal force on UR is 1 q1 q2 q1 q1 ◦ + √ cos 45 = 0 4πε0 s2 ( 2 s)2 q1 1 q1 ⇒ q2 + · √ = 0 ⇒ q2 = − √ 2 2 2 2 physics 216 sample exam 1 solns Copyright ©Wayne Hacker 2012. All rights reserved. 5 Electric fields Problem 7. Two positive point charges, one of Q and one of 2Q, are fixed in place along the y-axis as shown at right. Which of the following statements is true about the electric field generated by the charges, both on and off the y-axis? (a) *(b) (c) (d) (e) There are no points at which the electric field is zero There is exactly one point at which the electric field is zero There are exactly two points at which the electric field is zero There are infinitely many points at which the electric field is zero None of these 6 2Q u Q u ? Solution: The electric field cannot be zero at any point that’s not on the y-axis. If, for example, a point is to the left of the axis, then the electric fields generated by both charges have components pointing leftward; so the electric field has a nonzero leftward component at that point. The electric field cannot be zero at any point on the y-axis above the upper charge, or below the lower charge. At such a point, the electric fields from the two charges would both point in the same direction, so the net electric field there would be nonzero. There is only one point on the axis between the two charges where the electric field is zero. At this point, the field pushing downward from the upper charge equals the field pushing upward from the lower one. Above that point, the field from the upper charge is stronger and the field from the lower charge is weaker; below that point, the field from the lower charge is stronger than that from the upper charge. physics 216 sample exam 1 solns Copyright ©Wayne Hacker 2012. All rights reserved. 6 Problem 8. Two point charges, one of Q and one of −2Q, are fixed in place along the y-axis as shown at right. The charge of Q is at y = 0; the charge of 2Q is at y = 1. At what point along the y-axis is the electric field equal to zero? √ √ *(b) y = −1 − 2 (a) y = 1 − 2 √ √ −2 − 3 3−2 (c) y = (d) y = 2 2 (e) None of these 6 −2Q u y = 1 Q u y=0 ? Solution: We need to find a point at which the electric fields from the upper and lower charge are equal in magnitude, and point in opposite directions. This point can’t be between y = 0 and y = 1, because in that region both fields point in the positive y-direction. It can’t be at any y > 1, because although the fields point in opposite directions, such a point would be closer to the larger upper charge, so the field from that charge would be stronger than the field from the smaller and more distant lower charge. Hence we need to look in the region y < 0: there, the fields from the two charges point in opposite directions, and there will be a point where the magnitude of the field from the smaller but closer lower charge equals the magnitude of the field from the larger but more distant upper charge. We need to look for a point y where the magnitudes of the two electric fields are equal: 1 Q 2Q 1 = 4πε0 (y − 1)2 4πε0 y 2 ⇒ 2y 2 = (y − 1)2 ⇒ y 2 + 2y − 1 = 0 √ √ This gives us solutions of y = −1 ± 2. One of these solutions, y = −1 + 2, is spurious: it lies in the region 0 < y < 1. At this point, the electric fields produced by the two √ charges are equal; but both point in the same direction. Only the solution y = −1 − 2 lies in the region y < 0, so is valid. physics 216 sample exam 1 solns Copyright ©Wayne Hacker 2012. All rights reserved. 7 Problem 9. Aboard a space station, where there is zero gravity, a metal sphere with a mass of 60 g is given a charge of 4 × 10−4 C, and placed in a uniform electric field with magnitude 300 N/C. The sphere is held in place, then released. How far will it travel in the first 3 seconds after its release? (a) 4.5 m (b) 6 m *(c) 9 m (d) 12 m (e) None of these Solution: We know the sphere’s mass and charge, the strength of the electric field, and the time that it moves. We want to calculate the distance that it travels in that time. If we knew the acceleration, we could calculate the distance from the fundamental kinematic equations. Since we know the mass, if we knew the force then we could calculate the acceleration from Newton’s second law. We can calculate the force from the charge and the electric field, F = qE. 1 1 x = x0 + v0 t + at2 = at2 2 2 qE F = F = ma ⇒ a = m m 1 qE 2 (4 × 10−4 C)(300 N/C)(3 s)2 t = =9m x= 2m 2(0.06 kg) ⇒ Problem 10. A massless insulating rod with length l is pivoted at its lower end, where it makes an angle of θ to the horizontal. At the upper end of the rod is a small metal sphere with mass ms , which carries a positive charge Q. A string is fastened halfway along the rod and pulled horizontally. The entire system is within a uniform electric field with magnitude E, directed horizontally as shown at right. If the system is in static equilibrium, what is the tension T in the string? (a) T = QEl sin θ + ms gl cos θ *(c) T = 2QE + (e) 2ms g tan θ (b) E w Q T ?ms g l θ ms T = QEl cos θ + ms gl sin θ (d) T = 2QEl 2ms gl + cos θ sin θ None of these Solution: There are three torques about the lower end of the rod: τE , produced by the Coulomb force on the sphere; τw , produced by the weight of the sphere; and τT , produced by the tension in the string. When the system is in static equilibrium, the total torque τ will be zero. τ = τE + τw + τT = QEl sin θ + ms gl cos θ − T (l/2) sin θ = 0 ⇒ T sin θ = 2(QE sin θ + ms g cos θ) 2ms g ⇒ T = 2QE + tan θ physics 216 sample exam 1 solns Copyright ©Wayne Hacker 2012. All rights reserved. 8 Problem 11. A thin wire is bent into a ring with radius R and given a nonzero electrical charge. The ring is placed in the xy-plane, with its center at the origin. At what point along the positive z-axis is the electric field at a maximum? R R *(b) z = √ (a) z = 2 2 √ (d) z = 2R (c) z = 2 R (e) 6 z θ ? R - None of these ~ as a function of z for Solution: We will find the formula for E(z), the magnitude of E points on the z-axis. We will then find the point of maximum E by differentiating and setting dE/dz = 0. By symmetry, the electric field at a point on the z-axis must point in the positive or negative z-direction. Hence we need only consider the z-components of the electric field: the x- and y-components from opposite sides of the ring cancel one another out. The diagram above shows the ring viewed from the side, i.e. with our eyes in the xyplane. We use θ to indicate the angle between the plane and a vector that runs from a point on the ring to the point (0, 0, z). If φ is the measure of angle in the xy-plane, then the incremental charge on an infinitesimally short arc of the wire is dq = Qdφ Q (Rdφ) = 2πR 2π The magnitude of the electric field produced by that small segment of charge is 1 Qdφ 1 2 4πε0 2π z + R2 and the z-component of the electric field produced by the small segment is dE = 1 Qdφ 1 1 Q z sin θ = dφ 2 2 2 4πε0 2π z + R 4πε0 2π (z + R2 )3/2 Then we can find E by integrating dE around the circle φ = 0 to 2π. Z Z 2π 1 Q z Q z E = dE = dφ = 2 2 3/2 2 4πε0 2π (z + R ) 4πε0 (z + R2 )3/2 φ=0 To find the point of maximum E, we differentiate w.r.t. z and set the derivative equal to zero. dE Q d 2 Q 3 2 2 −3/2 2 2 −3/2 2 −5/2 = z(z + R ) = (z + R ) − z(z + R ) (2z) dz 4πε0 dz 4πε0 2 Q (z 2 + R2 ) − 3z 2 Q R2 − 2z 2 = = =0 4πε0 (z 2 + R2 )5/2 4πε0 (z 2 + R2 )5/2 R ⇒ 2z 2 = R2 ⇒ z = ± √ 2
