Course Hero

Register now to access 7 million high quality study materials (What's Course Hero?) Course Hero is the premier provider of high quality online educational resources. With millions of study documents, online tutors, digital flashcards and free courseware, Course Hero is helping students learn more efficiently and effectively. Whether you're interested in exploring new subjects or mastering key topics for your next exam, Course Hero has the tools you need to achieve your goals.

90 Pages

ch28

Course: PHYSIC 2, Spring 2008
School: Lehigh
Rating:
 
 
 
 
 

Word Count: 8555

Document Preview

(a) 1. Eq. 28-3 leads to 6.50 10-17 N FB v= = = 4.00 105 m s . -19 -3 eB sin 160 10 C 2.60 10 T sin 23.0 . c hc h (b) The kinetic energy of the proton is K= 2 1 2 1 mv = 167 10-27 kg 4.00 105 m s = 134 10-16 J. . . 2 2 c hc h This is (1.34 10 16 J) / (1.60 10 19 J/eV) = 835 eV. 2. (a) We use Eq. 28-3: FB = |q| vB sin = (+ 3.2 1019 C) (550 m/s) (0.045 T) (sin 52) = 6.2 1018 N. (b) a = FB/m =...

Register Now
Search

Unformatted Document Excerpt

Coursehero >> Pennsylvania >> Lehigh >> PHYSIC 2

Course Hero has millions of student submitted documents similar to the one
below including study guides, practice problems, reference materials, practice exams, textbook help and tutor support.

Course Hero has millions of student submitted documents similar to the one below including study guides, practice problems, reference materials, practice exams, textbook help and tutor support.
(a) 1. Eq. 28-3 leads to 6.50 10-17 N FB v= = = 4.00 105 m s . -19 -3 eB sin 160 10 C 2.60 10 T sin 23.0 . c hc h (b) The kinetic energy of the proton is K= 2 1 2 1 mv = 167 10-27 kg 4.00 105 m s = 134 10-16 J. . . 2 2 c hc h This is (1.34 10 16 J) / (1.60 10 19 J/eV) = 835 eV. 2. (a) We use Eq. 28-3: FB = |q| vB sin = (+ 3.2 1019 C) (550 m/s) (0.045 T) (sin 52) = 6.2 1018 N. (b) a = FB/m = (6.2 10 18 N) / (6.6 10 27 kg) = 9.5 108 m/s2. (c) Since it is perpendicular to v , FB does not do any work on the particle. Thus from the work-energy theorem both the kinetic energy and the speed of the particle remain unchanged. 3. (a) The force on the electron is ^ FB = qv B = q vx ^ + v y ^ Bx ^ + By j = q ( vx By - v y Bx ) k i j i = -1.6 10-19 C -14 ( = ( 6.2 10 ( ) ( 2.0 10 ^ N ) k. ) ( 6 m s ( -0.15 T ) - 3.0 106 m s ( 0.030 T ) ) ) ( ) Thus, the magnitude of FB is 6.2 1014 N, and FB points in the positive z direction. (b) This amounts to repeating the above computation with a change in the sign in the charge. Thus, FB has the same magnitude but points in the negative z direction, namely, ^ F = - 6.2 10-14 N k. B ( ) 4. The magnetic force on the proton is F = qvB where q = +e . Using Eq. 3-30 this becomes (4 10-17 )i + (2 10-17)j = e[(0.03vy + 40)i + (20 0.03vx)j (0.02vx + 0.01vy)k] ^ ^ ^ ^ ^ with SI units understood. Equating corresponding components, we find (a) vx = -3.5103 m/s, and (b) vy = 7.0103 m/s. 5. Using Eq. 28-2 and Eq. 3-30, we obtain F = q v x By - v y Bx k = q v x 3Bx - v y Bx k d i d b g i where we use the fact that By = 3Bx. Since the force (at the instant considered) is Fz k where Fz = 6.4 1019 N, then we are led to the condition q 3v x - v y Bx = Fz d i Bx = Fz . q 3v x - v y d i Substituting Vx = 2.0 m/s, vy = 4.0 m/s and q = 1.6 1019 C, we obtain Bx = 2.0 T. 6. Letting F = q E + v B = 0 , we get vB sin = E. We note that (for given values of d i the fields) this gives a minimum value for speed whenever the sin factor is at its maximum value (which is 1, corresponding to = 90). So vmin = E / B = (1.50 103 V / m) / (0.400 T) = 3.75 103 m / s. 7. Straight line motion will result from zero net force acting on the system; we ignore gravity. Thus, F = q E + v B = 0 . Note that v B so v B = vB . Thus, obtaining the d i speed from the formula for kinetic energy, we obtain 100 V ( 20 10-3 m ) E E B= = = = 2.67 10-4 T. 3 -19 -31 v 2 K / me 2 (1.0 10 V ) (1.60 10 C ) / ( 9.1110 kg ) ^ In unit-vector notation, B = -(2.67 10-4 T)k . 8. We apply F = q E + v B = me a to solve for E : E= me a + Bv q -31 d i c9.11 10 = e kg 2.00 1012 m s i 2 -19 hd -160 10 . C i + b400Tgi b12.0 km sg j + b15.0 km sgk . = -114 i - 6.00 j + 4.80k V m . j 9. Since the total force given by F = e E + v B vanishes, the electric field E must be perpendicular to both the particle velocity v and the magnetic field B . The magnetic field is perpendicular to the velocity, so v B has magnitude vB and the magnitude of the electric field is given by E = vB. Since the particle has charge e and is accelerated 1 through a potential difference V, mv 2 = eV and v = 2eV m . Thus, 2 d i 2 1.60 10-19 C 10 103 V 2eV E=B = (1.2 T ) = 6.8 105 V m. -27 m 9.99 10 kg ( ( )( ) ) 10. (a) The force due to the electric field ( F = q E ) is distinguished from that associated with the magnetic field ( F = q v B ) in that the latter vanishes at the speed is zero and the former is independent of speed. The graph (Fig.28-34) shows that the force (ycomponent) is negative at v = 0 (specifically, its value is 2.0 1019 N there) which (because q = e) implies that the electric field points in the +y direction. Its magnitude is E = (2.0 1019)/(1.60 1019) = 1.25 V/m. (b) We are told that the x and z components of the force remain zero throughout the motion, implying that the electron continues to move along the x axis, even though magnetic forces generally cause the paths of charged particles to curve (Fig. 28-11). The exception to this is discussed in section 28-3, where the forces due to the electric and magnetic fields cancel. This implies (Eq. 28-7) B = E/v = 2.50 10-2 T. For F = q v B to be in the opposite direction of F = q E we must have v B in the opposite direction from E which points in the +y direction, as discussed in part (a). Since the velocity is in the +x direction, then (using the right-hand rule) we conclude that ^ ^ ^ the magnetic field must point in the +z direction ( i k = -j ). In unit-vector notation, we ^ have B = (2.50 10-2 T)k . 11. For a free charge q inside the metal strip with velocity v we have F = q E + v B . d i We set this force equal to zero and use the relation between (uniform) electric field and potential difference. Thus, 3.90 10-9 V E Vx - Vy d xy v= = = = 0.382 m s . B B 120 10-3 T 0.850 10-2 m . c h c hc h 12. We use Eq. 28-12 to solve for V: V= ( 23A )( 0.65 T ) iB = = 7.4 10-6 V. 28 3 -19 nle ( 8.47 10 m ) (150 m ) (1.6 10 C ) 13. (a) We seek the electrostatic field established by the separation of charges (brought on by the magnetic force). With Eq. 28-10, we define the magnitude of the electric field as | E |= v | B |= ( 20.0 m/s )( 0.030 T ) = 0.6 V m . Its direction may be inferred from Figure 288; its direction is opposite to that defined by v B . In summary, ^ E = -(0.600 V m)k which insures that F = q E + v B vanishes. (b) Eq. 28-9 yields V = (0.600 V/m)(2.00 m) = 1.20 V. d i 14. We note that B must be along the x axis because when the velocity is along that axis there is no induced voltage. Combining Eq. 28-7 and Eq. 28-9 leads to d = V / vB where one must interpret the symbols carefully to ensure that d , v and B are mutually perpendicular. Thus, when the velocity if parallel to the y axis the absolute value of the voltage (which is considered in the same "direction" as d ) is 0.012 V, and d = dz = (0.012)/(3)(0.02) = 0.20 m. And when the velocity if parallel to the z axis the absolute value of the appropriate voltage is 0.018 V, and d = dy = (0.018)/(3)(0.02) = 0.30 m. Thus, our answers are (a) dx = 25 cm (which we arrive at "by elimination" since we already have figured out dy and dz ), (b) dy = 30 cm, and (c) dz = 20 cm 15. From Eq. 28-16, we find 9.11 10-31 kg 1.30 106 m s me v = = 2.1110-5 T. B= -19 er 1.60 10 C ( 0.350 m ) ( ( )( ) ) 16. (a) The accelerating process may be seen as a conversion of potential energy eV into 1 kinetic energy. Since it starts from rest, me v 2 = eV and 2 2 1.60 10-19 C ( 350 V ) 2eV = = 1.11107 m s. v= -31 9.1110 kg me ( ) (b) Eq. 28-16 gives 9.1110-31 kg 1.11 107 m s me v = = 3.16 10-4 m. r= -19 -3 eB 1.60 10 C 200 10 T ( ( )( )( ) ) 17. (a) From K = 1 me v 2 we get 2 2 120 103 eV 160 10-19 eV J . . 9.11 10 -31 2K v= = me c hc kg h = 2.05 10 m s. 7 (b) From r = mev/qB we get 9.11 10-31 kg 2.05 107 m s me v B= = = 4.67 10-4 T. -19 -2 qr 160 10 C 25.0 10 m . c c hc hc h h (c) The "orbital" frequency is f = v 2.07 107 m s = = 131 107 Hz. . -2 2 r 2 25.0 10 m c h (d) T = 1/f = (1.31 107 Hz)1 = 7.63 108 s. 18. (a) Using Eq. 28-16, we obtain . . 2 4.50 10-2 m 160 10-19 C 120 T rqB 2eB v= = = = 2.60 106 m s . -27 m 4.00 u . 4.00 u 166 10 kg u c hc b gc hb h g (b) T = 2r/v = 2(4.50 102 m)/(2.60 106 m/s) = 1.09 107 s. (c) The kinetic energy of the alpha particle is . 4.00 u 166 10-27 kg u 2.60 106 m s 1 2 K = m v = 2 . 2 160 10-19 J eV b gc hc h 2 c h . = 140 105 eV . (d) V = K/q = 1.40 105 eV/2e = 7.00 104 V. 19. (a) The frequency of revolution is 35.0 10-6 T 160 10-19 C . Bq f = = = 9.78 105 Hz. -31 2 me 2 9.11 10 kg c hc h c h (b) Using Eq. 28-16, we obtain 2 9.11 10-31 kg 100 eV 160 10-19 J eV . 2me K me v = 0.964 m . r= = = qB qB 160 10-19 C 35.0 10-6 T . c hb gc h c hc h 20. Referring to the solution of problem 19 part (b), we see that r = 2mK qB implies K = (rqB)2/2m q2m1. Thus, (a) K = ( q q p ) ( m p m ) K p = ( 2 ) (1 4 ) K p = K p = 1.0MeV; 2 2 (b) K d = ( qd q p ) ( m p md ) K p = (1) (1 2 ) K p = 1.0 MeV 2 = 0.50MeV. 2 2 21. Reference to Fig. 28-11 is very useful for interpreting this problem. The distance traveled parallel to B is d|| = v||T = v||(2me /|q|B) using Eq. 28-17. Thus, v|| = d|| e B = 50.3 km/s 2 me using the values given in this problem. Also, since the magnetic force is |q|Bv, then we find v = 41.7 km/s. The speed is therefore v = v2 + v||2 = 65.3 km/s. m v2 1 22. Using F = r (for the centripetal force) and K = 2 mv2 , we can easily derive the relation 1 K = 2 Fr . With the values given in the problem, we thus obtain K = 2.09 10-22 J. 23. (a) If v is the speed of the positron then v sin is the component of its velocity in the plane that is perpendicular to the magnetic field. Here is the angle between the velocity and the field (89). Newton's second law yields eBv sin = me(v sin )2/r, where r is the radius of the orbit. Thus r = (mev/eB) sin . The period is given by 2 ( 9.1110-31 kg ) 2me 2r T= = = = 3.58 10-10 s. -19 v sin eB (1.60 10 C ) ( 0.100T ) The equation for r is substituted to obtain the second expression for T. (b) The pitch is the distance traveled along the line of the magnetic field in a time interval 1 of one period. Thus p = vT cos . We use the kinetic energy to find the speed: K = 2 me v 2 means 2 ( 2.00 103 eV )(1.60 10-19 J eV ) 2K = = 2.65 107 m s . v= -31 9.1110 kg me Thus p = 2.65 107 m s 3.58 10-10 s cos 89 = 1.66 10-4 m . ( )( ) (c) The orbit radius is 9.1110-31 kg 2.65 107 m s sin 89 me v sin = = 1.5110-3 m . R= -19 eB 1.60 10 C ( 0.100 T ) ( ( )( ) ) 24. We consider the point at which it enters the field-filled region, velocity vector pointing downward. The field points out of the page so that v B points leftward, which indeed seems to be the direction it is "pushed''; therefore, q > 0 (it is a proton). (a) Eq. 28-17 becomes T = 2 mp / e | B | , or 2 (130 10 which yields B = 0.252 T . (b) Doubling the kinetic energy implies multiplying the speed by 2 . Since the period T does not depend on speed, then it remains the same (even though the radius increases by a factor of 2 ). Thus, t = T/2 = 130 ns, again. -9 )= (1.60 10 ) | B | -19 2 (1.67 10-27 ) 25. (a) We solve for B from m = B2qx2/8V (see Sample Problem 28-3): B= 8Vm . qx 2 We evaluate this expression using x = 2.00 m: B= 8 100 103 V 3.92 10-25 kg c hc c3.20 10 Chb2.00 mg -19 2 h = 0.495 T . (b) Let N be the number of ions that are separated by the machine per unit time. The current is i = qN and the mass that is separated per unit time is M = mN, where m is the mass of a single ion. M has the value M= 100 10-6 kg = 2.78 10-8 kg s . 3600 s Since N = M/m we have 3.20 10-19 C 2.78 10-8 kg s qM i= = = 2.27 10-2 A . -25 m 3.92 10 kg (c) Each ion deposits energy qV in the cup, so the energy deposited in time t is given by E = NqV t = iqV t = iV t . q c hc h For t = 1.0 h, E = 2.27 10-2 A 100 103 V 3600 s = 817 106 J . . c hc hb g To obtain the second expression, i/q is substituted for N. 26. Eq. 28-17 gives T = 2me /eB. Thus, the total time is T 2 T + tgap + 2 1 me 1 1 = e B + B + tgap . 1 2 2 The time spent in the gap (which is where the electron is accelerating in accordance with Eq. 2-15) requires a few steps to figure out: letting t = tgap then we want to solve 1 d = vo t + 2 a t2 0.25 m = 2Ko 1 e V 2 me t + 2 me d t for t. We find in this way that the time spent in the gap is t 6 ns. Thus, the total time is 8.7 ns. 27. Each of the two particles will move in the same circular path, initially going in the opposite direction. After traveling half of the circular path they will collide. Therefore, using Eq. 28-17, the time is given by ( 9.1110-31 kg ) T m = = 5.07 10-9 s. t= = -3 -19 2 Bq (3.53 10 T) (1.60 10 C ) 28. (a) Using Eq. 28-23 and Eq. 28-18, we find (1.60 10-19 C ) (1.20T ) = 1.83107 Hz. qB = f osc = 2m p 2 (1.67 10-27 kg ) (b) From r = mp v qB = 2mP k qB we have ( rqB ) K= 2m p 2 = 2 (1.67 10-27 kg )(1.60 10-19 J eV ) ( 0.500m ) (1.60 10-19 C ) (1.20T ) 2 = 1.72 107 eV. 29. We approximate the total distance by the number of revolutions times the circumference of the orbit corresponding to the average energy. This should be a good approximation since the deuteron receives the same energy each revolution and its period does not depend on its energy. The deuteron accelerates twice in each cycle, and each time it receives an energy of qV = 80 103 eV. Since its final energy is 16.6 MeV, the number of revolutions it makes is n= 16.6 106 eV = 104 . 2 80 103 eV c h Its average energy during the accelerating process is 8.3 MeV. The radius of the orbit is given by r = mv/qB, where v is the deuteron's speed. Since this is given by v = 2 K m , the radius is r= m 2K 1 2 Km . = qB m qB For the average energy 2 8.3 106 eV 160 10-19 J eV 3.34 10-27 kg . . . c160 10 Chb157 Tg -19 r= c hc hc h = 0.375 m . The total distance traveled is about n2r = (104)(2)(0.375) = 2.4 102 m. 30. (a) The magnitude of the field required to achieve resonance is B= 2 fm p q = 2(12.0106 Hz) (1.67 10-27 kg ) 1.60 10-19 C = 0.787T. (b) The kinetic energy is given by 1 1 2 K = 1 mv 2 = m ( 2Rf ) = (1.67 10-27 kg ) 4 2 (0.530 m) 2 (12.0 106 Hz) 2 2 2 2 6 -12 = 1.33 10 J = 8.34 10 eV. (c) The required frequency is (1.60 10-19 C ) (1.57T ) = 2.39 107 Hz. qB = f= 2m p 2 (1.67 10-27 kg ) (d) The kinetic energy is given by 1 1 2 K = 1 mv 2 = m ( 2Rf ) = (1.67 10-27 kg ) 4 2 (0.530 m) 2 (2.39 107 Hz) 2 2 2 2 -12 = 5.3069 10 J = 3.32 107 eV. 31. (a) By conservation of energy (using qV for the potential energy which is converted into kinetic form) the kinetic energy gained in each pass is 200 eV. (b) Multiplying the part (a) result by n = 100 gives K = n(200 eV) = 20.0 keV. 1 (c) Combining Eq. 28-16 with the kinetic energy relation (n(200 eV) = 2 mpv2 in this particular application) leads to the expression mp r=eB 2n(200 eV) . mp which shows that r is proportional to n . Thus, the percent increase defined in the problem in going from n = 100 to n = 101 is 101/100 1 = 0.00499 or 0.499%. 32. The magnetic force on the (straight) wire is FB = iBL sin = (13.0A ) (1.50T ) (1.80m ) ( sin 35.0 ) = 20.1N. 33. (a) The magnitude of the magnetic force on the wire is given by FB = iLB sin , where i is the current in the wire, L is the length of the wire, B is the magnitude of the magnetic field, and is the angle between the current and the field. In this case = 70. Thus, FB = 5000 A 100 m 60.0 10-6 T sin 70 = 28.2 N . b gb gc h (b) We apply the right-hand rule to the vector product FB = iL B to show that the force is to the west. 34. (a) From symmetry, we conclude that any x-component of force will vanish (evaluated over the entirety of the bent wire as shown). By the right-hand rule, a field in the k direction produces on each part of the bent wire a y-component of force pointing in the - j direction; each of these components has magnitude | Fy | = i | B|sin 30 = 8 N . Therefore, the force (in Newtons) on the wire shown in the figure is -16 j . (b) The force exerted on the left half of the bent wire points in the - k direction, by the right-hand rule, and the force exerted on the right half of the wire points in the + k direction. It is clear that the magnitude of each force is equal, so that the force (evaluated over the entirety of the bent wire as shown) must necessarily vanish. 35. (a) The magnetic force on the wire must be upward and have a magnitude equal to the gravitational force mg on the wire. Since the field and the current are perpendicular to each other the magnitude of the magnetic force is given by FB = iLB, where L is the length of the wire. Thus, iLB = mg 0.0130 kg 9.8 m s2 mg i= = = 0.467 A. LB 0.620 m 0.440 T b b gc gb h g (b) Applying the right-hand rule reveals that the current must be from left to right. 36. The magnetic force on the wire is ^ ^ i j j FB = iL B = iL^ By ^ + Bz k = iL - Bz ^ + By k ( ) ( ) ^ j = ( 0.500A ) ( 0.500m ) - ( 0.0100T ) ^ + ( 0.00300T ) k ^ = -2.50 10-3 ^ + 0.750 10-3 k N. j ( ) 37. (a) The magnetic force must push horizontally on the rod to overcome the force of friction, but it can be oriented so that it also pulls up on the rod and thereby reduces both the normal force and the force of friction. The forces acting on the rod are: F, the force of the magnetic field; mg, the magnitude of the (downward) force of gravity; FN , the normal force exerted by the stationary rails upward on the rod; and f , the (horizontal) force of friction. For definiteness, we assume the rod is on the verge of moving eastward, which means that f points westward (and is equal to its maximum possible value sFN). Thus, F has an eastward component Fx and an upward component Fy, which can be related to the components of the magnetic field once we assume a direction for the current in the rod. Thus, again for definiteness, we assume the current flows northward. Then, by the right-hand rule, a downward component (Bd) of B will produce the eastward Fx, and a westward component (Bw) will produce the upward Fy. Specifically, Fx = iLBd and Fy = iLBw . Considering forces along a vertical axis, we find FN = mg - Fy = mg - iLBw so that f = f s , max = s mg - iLBw . It is on the verge of motion, so we set the horizontal acceleration to zero: Fx - f = 0 iLBd = s mg - iLBw . b g b g The angle of the field components is adjustable, and we can minimize with respect to it. Defining the angle by Bw = B sin and Bd = B cos (which means is being measured from a vertical axis) and writing the above expression in these terms, we obtain iLB cos = s mg - iLB sin b g B= s mg iL cos + s sin b g which we differentiate (with respect to ) and set the result equal to zero. This provides a determination of the angle: = tan -1 s = tan -1 0.60 = 31 . Consequently, b g b g Bmin = ( 50 A )(1.0 m )( cos 31 + 0.60sin 31 ) 0.60 (1.0 kg ) 9.8 m s 2 ( ) = 0.10 T. (b) As shown above, the angle is = tan -1 ( s ) = tan -1 ( 0.60 ) = 31. 38. We use dFB = idL B , where dL = dx i and B = Bx i + By j . Thus, FB = idL B = = ( -5.0A ) xf xi 3.0 1.0 idx^ Bx ^ + By ^ = i i i j 2 ( ^ ^ (8.0 x dx ) ( m mT ) ) k = (-0.35N)k. ( ) xf xi ^ By dxk 39. The applied field has two components: Bx > 0 and Bz > 0. Considering each straightsegment of the rectangular coil, we note that Eq. 28-26 produces a non-zero force only for the component of B which is perpendicular to that segment; we also note that the equation is effectively multiplied by N = 20 due to the fact that this is a 20-turn coil. Since we wish to compute the torque about the hinge line, we can ignore the force acting on the straight-segment of the coil which lies along the y axis (forces acting at the axis of rotation produce no torque about that axis). The top and bottom straight-segments experience forces due to Eq. 28-26 (caused by the Bz component), but these forces are (by the right-hand rule) in the y directions and are thus unable to produce a torque about the y axis. Consequently, the torque derives completely from the force exerted on the straight-segment located at x = 0.050 m, which has length L = 0.10 m and is shown in Figure 28-41 carrying current in the y direction. Now, the Bz component will produce a force on this straight-segment which points in the x direction (back towards the hinge) and thus will exert no torque about the hinge. However, the Bx component (which is equal to B cos where B = 0.50 T and = 30) produces a force equal to NiLBx which points (by the right-hand rule) in the +z direction. Since the action of this force is perpendicular to the plane of the coil, and is located a distance x away from the hinge, then the torque has magnitude = NiLBx x = NiLxB cos = 20 010 010 0.050 0.50 cos 30 = 0.0043 . . in SI units (Nm). Since = r F , the direction of the torque is y. In unit-vector ^ notation, the torque is = (-4.3 10-3 N m)j An alternative way to do this problem is through the use of Eq. 28-37. We do not show those details here, but note that the magnetic moment vector (a necessary part of Eq. 2837) has magnitude b gb g b gb gb gb gb g = NiA = 20 010 A 0.0050 m2 . b gb gc h and points in the z direction. At this point, Eq. 3-30 may be used to obtain the result for the torque vector. 40. We establish coordinates such that the two sides of the right triangle meet at the origin, and the y = 50 cm side runs along the +y axis, while the x = 120 cm side runs along the +x axis. The angle made by the hypotenuse (of length 130 cm) is = tan1 (50/120) = 22.6, relative to the 120 cm side. If one measures the angle counterclockwise from the +x direction, then the angle for the hypotenuse is 180 22.6 = +157. Since we are only asked to find the magnitudes of the forces, we have the freedom to assume the current is flowing, say, counterclockwise in the triangular loop (as viewed by an observer on the +z axis. We take B to be in the same direction as that of the current flow in the hypotenuse. Then, with B = B = 0.0750 T, Bx = - B cos = -0.0692 T and By = B sin = 0.0288 T. (a) Eq. 28-26 produces zero force when L || B so there is no force exerted on the hypotenuse of length 130 cm. (b) On the 50 cm side, the Bx component produces a force i y Bx k, and there is no contribution from the By component. Using SI units, the magnitude of the force on the side is therefore . b4.00 Agb0.500 mgb0.0692 Tg = 0138 N. y (c) On the 120 cm side, the By component produces a force i x By k, and there is no contribution from the Bx component. Using SI units, the magnitude of the force on the side is also . . b4.00 Agb120 mgb0.0288 Tg = 0138 N. x (d) The net force is i y Bx k + i x By k = 0, keeping in mind that Bx < 0 due to our initial assumptions. If we had instead assumed B went the opposite direction of the current flow in the hypotenuse, then Bx > 0 but By < 0 and a zero net force would still be the result. 41. Consider an infinitesimal segment of the loop, of length ds. The magnetic field is perpendicular to the segment, so the magnetic force on it has magnitude dF = iB ds. The horizontal component of the force has magnitude dFh = (iB cos) ds and points inward toward the center of the loop. The vertical component has magnitude dFv = (iB sin) ds and points upward. Now, we sum the forces on all the segments of the loop. The horizontal component of the total force vanishes, since each segment of wire can be paired with another, diametrically opposite, segment. The horizontal components of these forces are both toward the center of the loop and thus in opposite directions. The vertical component of the total force is Fv = iB sin ds = 2aiB sin = 2 (0.018 m)(4.6 10 -3 A)(3.4 10-3 T) sin 20 = 6.0 10-7 N. We note that i, B, and have the same value for every segment and so can be factored from the integral. 42. We use max =| B |max = B = ir 2 B, and note that i = qf = qv/2r. So max = qv 1 1 r 2 B = qvrB = (1.60 10-19 C)(2.19 106 m/s)(5.29 10-11 m)(7.10 10-3 T) 2r 2 2 = 6.58 10-26 N m. 43. (a) The current in the galvanometer should be 1.62 mA when the potential difference across the resistor-galvanometer combination is 1.00 V. The potential difference across the galvanometer alone is iRg = 162 10-3 A 75.3 = 0122 V, so the resistor must be . . c hb g in series with the galvanometer and the potential difference across it must be 1.00 V 0.122 V = 0.878V. The resistance should be R = 0.878 V b . g c162 10 Ah = 542 . -3 (b) As stated above, the resistor is in series with the galvanometer. (c) The current in the galvanometer should be 1.62 mA when the total current in the resistor and galvanometer combination is 50.0 mA. The resistor should be in parallel with the galvanometer, and the through current it should be 50.0 mA 1.62 mA = 48.38 mA. The potential difference across the resistor is the same as that across the galvanometer, 0.122 V, so the resistance should be R = 0122 V 48.38 10-3 A = 2.52 . . b gc h (d) As stated in (c), the resistor is in parallel with the galvanometer. 44. The insight central to this problem is that for a given length of wire (formed into a rectangle of various possible aspect ratios), the maximum possible area is enclosed when the ratio of height to width is 1 (that is, when it is a square). The maximum possible value for the width, the problem says, is x = 4 cm (this is when the height is very close to zero, so the total length of wire is effectively 8 cm). Thus, when it takes the shape of a square the value of x must be of 8 cm; that is, x = 2 cm when it encloses maximum area (which leads to a maximum torque by Eq. 28-35 and Eq. 28-37) of A = (0.02 m)2 = 0.0004 m2. Since N = 1 and the torque in this case is given as 4.8 10-4 N.m, then the aforementioned equations lead immediately to i = 0.0030 A. 45. We use Eq. 28-37 where is the magnetic dipole moment of the wire loop and B is the magnetic field, as well as Newton's second law. Since the plane of the loop is parallel to the incline the dipole moment is normal to the incline. The forces acting on the cylinder are the force of gravity mg, acting downward from the center of mass, the normal force of the incline FN, acting perpendicularly to the incline through the center of mass, and the force of friction f, acting up the incline at the point of contact. We take the x axis to be positive down the incline. Then the x component of Newton's second law for the center of mass yields mg sin - f = ma. For purposes of calculating the torque, we take the axis of the cylinder to be the axis of rotation. The magnetic field produces a torque with magnitude B sin, and the force of friction produces a torque with magnitude fr, where r is the radius of the cylinder. The first tends to produce an angular acceleration in the counterclockwise direction, and the second tends to produce an angular acceleration in the clockwise direction. Newton's second law for rotation about the center of the cylinder, = I, gives fr - B sin = I . Since we want the current that holds the cylinder in place, we set a = 0 and = 0, and use one equation to eliminate f from the other. The result is mgr = B. The loop is rectangular with two sides of length L and two of length 2r, so its area is A = 2rL and the dipole moment is = NiA = 2NirL. Thus, mgr = 2NirLB and 0.250 kg 9.8 m s2 mg i= = = 2.45 A . . 2 NLB 2 10.0 0100 m 0.500 T b gc h b gb gb g 46. From = NiA = ir2 we get i= r 2 = 8.00 1022 J T 3500 10 3 m c h 2 = 2.08 109 A. 47. (a) The magnitude of the magnetic dipole moment is given by = NiA, where N is the number of turns, i is the current in each turn, and A is the area of a loop. In this case the loops are circular, so A = r2, where r is the radius of a turn. Thus i= Nr 2 = 2.30 A m2 b160gbgb0.0190 mg 2 = 12.7 A . (b) The maximum torque occurs when the dipole moment is perpendicular to the field (or the plane of the loop is parallel to the field). It is given by max = B = ( 2.30 A m 2 )( 35.0 10-3 T ) = 8.05 10-2 N m. 48. (a) = NAi = r 2i = 0.150 m (b) The torque is b . g b2.60 Ag = 0184A m . 2 2 = B = B sin = ( 0.184 A m 2 ) (12.0 T ) sin 41.0 = 1.45 N m. 49. (a) The area of the loop is A = b30 cmgb40 cmg = 6.0 10 cm , so = iA = b5.0 A gc6.0 10 m h = 0.30 A m . 1 2 2 2 -2 2 2 (b) The torque on the loop is = B sin = 0.30 A m2 80 103 T sin 90 = 2.4 10-2 N m. c hc h 50. (a) The kinetic energy gained is due to the potential energy decrease as the dipole swings from a position specified by angle to that of being aligned (zero angle) with the field. Thus, K = U i - U f = - B cos - - B cos 0 . Therefore, using SI units, the angle is b g = cos-1 1 - FG H 0.00080 K = cos-1 1 - B 0.020 0.052 IJ K F GH b gb I = 77 . gJK (b) Since we are making the assumption that no energy is dissipated in this process, then the dipole will continue its rotation (similar to a pendulum) until it reaches an angle = 77 on the other side of the alignment axis. 51. (a) The magnitude of the magnetic moment vector is = n in An = r12i1 + r22i2 = ( 7.00A ) ( 0.200m ) + ( 0.300m ) 2 2 = 2.86A m 2 . (b) Now, = r22i2 - r12i1 = ( 7.00A ) ( 0.300m ) - ( 0.200m ) = 1.10A m 2 . 2 2 52. Let a = 30.0 cm, b = 20.0 cm, and c = 10.0 cm. From the given hint, we write ^ ^ = 1 + 2 = iab -k + iac ^ = ia c^ - bk = ( 5.00A )( 0.300m ) ( 0.100m ) ^ - ( 0.200m ) k j j ^ j 2 ( ) () ( ^ j = ( 0.150^ - 0.300k ) A m . ) 53. The magnetic dipole moment is = 0.60 i - 0.80 j , where e j = NiA = Nir2 = 1(0.20 A)(0.080 m)2 = 4.02 104 Am2. Here i is the current in the loop, N is the number of turns, A is the area of the loop, and r is its radius. (a) The torque is = B = 0.60 i - 0.80 j 0.25i + 0.30k j e j = b0.60gb0.30ge i k j - b0.80gb0.25ge j i j - b0.80gb0.30ge j k j = -018 j + 0.20k - 0.24 i . . e Here i k = - j, j i = - k, and j k = i are used. We also use i i = 0 . Now, we substitute the value for to obtain ^ = -9.7 10-4 ^ - 7.2 10-4 ^ + 8.0 10-4 k N m. i j (b) The potential energy of the dipole is given by U = - B = - 0.60 i - 0.80 j 0.25i + 0.30k ( ) e je j . = - 0.60 0.25 = -015 = -6.0 10 J. -4 b gb g Here i i = 1, i k = 0, j i = 0, and j k = 0 are used. 54. Looking at the point in the graph (Fig. 28-47-2(b)) corresponding to i2 = 0 (which means that coil 2 has no magnetic moment) we are led to conclude that the magnetic moment of coil 1 must be 2.0 10-5 A.m2. Looking at the point where the line crosses the axis (at i2 = 5 mA) we conclude (since the magnetic moments cancel there) that the magnitude of coil 2's moment must also be 2.0 10-5 A.m2 when i2 = 0.005 A which means (Eq. 28-35) N2A2 = (2.0 10-5)/(0.005) = 0.004 in SI units. Now the problem has us consider the direction of coil 2's current changed so that the net moment is the sum of two (positive) contributions from coil 1 and coil 2 specifically for the case that i2 = 0.007 A. We find that total moment is (2.0 10-5 A.m2) + (N2A2 i2) = 4.8 10-5 A.m2. 55. If N closed loops are formed from the wire of length L, the circumference of each loop is L/N, the radius of each loop is R = L/2N, and the area of each loop is 2 A = R 2 = L 2 N = L2 4 N 2 . b g (a) For maximum torque, we orient the plane of the loops parallel to the magnetic field, so the dipole moment is perpendicular (i.e., at a 90 angle) to the field. (b) The magnitude of the torque is then = NiAB = Ni b iL B g FGH 4LN IJK B = 4N . 2 2 2 To maximize the torque, we take the number of turns N to have the smallest possible value, 1. Then = iL2B/4. (c) The magnitude of the maximum torque is = iL2 B (4.5110-3 A)(0.250 m) 2 (5.7110-3 T) = = 1.28 10-7 N m 4 4 56. Eq. 28-39 gives U = - B = -B cos , so at = 0 (corresponding to the lowest point on the graph in Fig. 28-48) the mechanical energy is K + U = Ko + (-B) = 6.7 10-4 J + (-5 10-4 J) = 1.7 10-4 J. The turning point occurs where K = 0, which implies Uturn = 1.7 10-4 J. So the angle where this takes place is given by = -cos-1 1.7 x 10-4 J = 110 B where we have used the fact (see above) that B = 5 10-4 J. 57. Let v|| = v cos . The electron will proceed with a uniform speed v|| in the direction of B while undergoing uniform circular motion with frequency f in the direction perpendicular to B: f = eB/2me. The distance d is then d = v||T = v|| f ( v cos ) 2me = 2 (1.5 107 m s )( 9.1110-31 kg ) ( cos10 ) = 0.53m. = eB (1.60 10 -19 C )(1.0 10-3 T ) 1 58. Combining Eq. 28-16 with energy conservation (eV = 2 mev2 in this particular application) leads to the expression me r=eB 2eV me which suggests that the slope of the r versus V graph should be 2me /eB2 . From Fig. 28-49, we estimate the slope to be 5 10-5 in SI units. Setting this equal to 2me /eB2 and solving we find B = 6.7 10-2 T. 59. The period of revolution for the iodine ion is T = 2r/v = 2m/Bq, which gives 45.0 10-3 T 160 10-19 C 129 10-3 s . . BqT m= = = 127 u. 2 7 2 166 10-27 kg u . c hc b gb gc hc h h 60. Let stand for the ratio ( m/|q| ) we wish to solve for. Then Eq. 28-17 can be written as T = 2/B. Noting that the horizontal axis of the graph (Fig. 28-50) is inverse-field (1/B) then we conclude (from our previous expression) that the slope of the line in the graph must be equal to 2. We estimate that slope as 7.5 10-9 T.s, which implies = 1.2 10-9 kg/C. 61. The fact that the fields are uniform, with the feature that the charge moves in a straight line, implies the speed is constant (if it were not, then the magnetic force would vary while the electric force could not -- causing it to deviate from straight-line motion). This is then the situation leading to Eq. 28-7, and we find | E | = v| B| = 500 V m. j Its direction (so that F = q E + v B vanishes) is downward, or -^ , in the "page" d i ^ coordinates. In unit-vector notation, E = (-500 V/m)j 62. The unit vector associated with the current element (of magnitude d ) is - j . The (infinitesimal) force on this element is dF = i d - j 0.3 y i + 0.4 yj e j e j with SI units (and 3 significant figures) understood. Since j i = - k and j j = 0 , we obtain dF = 0.3iy d k = 6.00 10-4 N m2 y d k . c h We integrate the force element found above, using the symbol to stand for the coefficient 6.00 104 N/m2, and obtain ^ F = dF = k 0.25 0 2 ^ 0.25 = (1.88 10-5 N)k. ^ ydy = k 2 63. By the right-hand rule, we see that v B points along - k . From Eq. 28-2 ^ F = qv B , we find that for the force to point along + k , we must have q < 0. Now, d i examining the magnitudes (in SI units) in Eq. 28-3, we find | F |= | q | v | B |sin , or 0.48 = | q | ( 4000 ) ( 0.0050 ) sin 35 which yields |q| = 0.040 C. In summary, then, q = 40 mC. 64. (a) The net force on the proton is given by F = FE + FB = qE + qv B ( = (1.44 10 (b) In this case = 1.60 10-19 C -18 ^ ) ( 4.00 V m ) k+ ( 2000 m s ) ^j ( -2.50 10 T ) ^i ^ N ) k. -3 F = FE + FB = qE + qv B ( = (1.60 10 (c) In the final case, = 1.60 10-19 C -19 ^ ) ( -4.00 V m ) k+ ( 2000 m s ) ^j ( -2.50 mT ) ^i ^ N ) k. F = FE + FB = qE + qv B ( = ( 6.41 10 = 1.60 10-19 C -19 ) ( 4.00 V m ) ^i+ ( 2000 m s ) ^j ( -2.50 mT ) ^i ^ N ) ^ ( 8.01 10 N ) k. i+ -19 65. Letting Bx = By = B1 and Bz = B2 and using Eq. 28-2 and Eq. 3-30, we obtain (with SI units understood) F = qv B 4 i - 20 j + 12 k = 2 4 B2 - 6 B1 i + 6 B1 - 2 B2 j + 2 B1 - 4 B1 k . Equating like components, we find B1 = 3 and B2 = 4. In summary (with the unit Tesla understood), B = -3.0 i - 3.0 j - 4.0k . eb g b g b gj 66. (a) Eq. 3-20 gives = cos-1(2/19) = 84. (b) No, the magnetic field can only change the direction of motion of a free (unconstrained) particle, not its speed or its kinetic energy. (c) No, as reference to to Fig. 28-11 should make clear. (d) We find v = v sin = 61.3 m/s, so r = mv /eB = 5.7 nm. 67. (a) Using Eq. 28-35 and Figure 28-23, we have = (NiA) (j) = 0.0240j Am2 . Then, Eq. 28-38 gives U = B = (0.0240) (3.00 10-3) = 7.20 10-5 J . (b) Using the fact that j j = 0, Eq. 28-37 leads to ^ ^ ^ ^ = B = (0.0240j) (2.00 10-3 i) + (0.0240j) (4.00 10-3 k) ^ ^ = (4.80 10-5 k + 9.60 10-5 i ) Nm. ^ ^ ^ ^ 68. (a) We use Eq. 28-10: vd = E/B = (10 106V/1.0 102 m)/(1.5 T) = 6.7 104 m/s. (b) We rewrite Eq. 28-12 in terms of the electric field: n= Bi Bi Bi = = V e Ed e EAe b g which we use A = d . In this experiment, A = (0.010 m)(10 106 m) = 1.0 107 m2. By Eq. 28-10, vd equals the ratio of the fields (as noted in part (a)), so we are led to n= Bi i 3.0 A = = = 2.8 1029 m3 . -4 -7 -19 2 E Ae vd Ae 6.7 10 m s 1.0 10 m 1.6 10 C ( )( )( ) (c) Since a drawing of an inherently 3-D situation can be misleading, we describe it in terms of horizontal north, south, east, west and vertical up and down directions. We assume B points up and the conductor's width of 0.010 m is along an east-west line. We take the current going northward. The conduction electrons experience a westward magnetic force (by the right-hand rule), which results in the west side of the conductor being negative and the east side being positive (with reference to the Hall voltage which becomes established). ^ i 69. The contribution to the force by the magnetic field B = Bx ^ = -0.020i T is given by Eq. 28-2: ^ ^ FB = qv B = q 17000i Bx ^ + -11000^ Bx ^ + 7000k Bx ^ i j i i ^ = q -220k - 140^ j ( ) ( (( ) ) ( ) ( )) ) j j in SI units. And the contribution to the force by the electric field E = E y ^ = 300^ V/m is given by Eq. 23-1: FE = qE y j . Using q = 5.0 106 C, the net force on the particle is ^ F = (0.00080^ - 0.0011k) N. j ( 70. (a) We use Eq. 28-2 and Eq. 3-30: F = qv B = ( +e ) = 1.60 10-19 ^ (( v B - v B ) ^i + ( v B - v B ) ^j + ( v B - v B ) k ) ) ( ( ( 4 )( 0.008) - ( -6 ) ( -0.004) ) ^i+ y z z y z x x z x y y x ( i j = (1.28 10-21 ) ^ + ( 6.4110-22 ) ^ ^ ( ( -6 )( 0.002 ) - ( -2 ) ( 0.008) ) ^j + ( ( -2 )( -0.004 ) - ( 4 )( 0.002 ) ) k ) with SI units understood. (b) By definition of the cross product, v F . This is easily verified by taking the dot (scalar) product of v with the result of part (a), yielding zero, provided care is taken not to introduce any round-off error. (c) There are several ways to proceed. It may be worthwhile to note, first, that if Bz were 6.00 mT instead of 8.00 mT then the two vectors would be exactly antiparallel. Hence, the angle between B and v is presumably "close" to 180. Here, we use Eq. 3-20: = cos -1 vB = cos -1 | v || B | -68 = 173 56 84 71. (a) The magnetic force on the wire is FB = idB, pointing to the left. Thus v = at = FB t idBt = m m -3 (9.13 10 A)(2.56 10-2 m)(5.6310-2 T)(0.0611s) = = 3.34 10-2 m/s. -5 2.4110 kg (b) The direction is to the left (away from the generator). 72. (a) We are given B = Bx i = 6 10-5 i T , so that v B = - v y Bx k where vy = 4104 m/s. We note that the magnetic force on the electron is - e - v y Bx k and therefore points in b ge j the + k direction, at the instant the electron enters the field-filled region. In these terms, Eq. 28-16 becomes r= me v y e Bx = 0.0038 m. (b) One revolution takes T = 2r/vy = 0.60 s, and during that time the "drift" of the electron in the x direction (which is the pitch of the helix) is x = vxT = 0.019 m where vx = 32 103 m/s. (c) Returning to our observation of force direction made in part (a), we consider how this is perceived by an observer at some point on the x axis. As the electron moves away from him, he sees it enter the region with positive vy (which he might call "upward'') but "pushed" in the +z direction (to his right). Hence, he describes the electron's spiral as clockwise. 73. The force associated with the magnetic field must point in the j direction in order to cancel the force of gravity in the - j direction. By the right-hand rule, B points in the - k direction (since i - k = j ). Note that the charge is positive; also note that we need e j to assume By = 0. The magnitude |Bz| is given by Eq. 28-3 (with = 90). Therefore, with m = 10 103 kg, v = 2.0 104 m/s and q = 80 106 C, we find mg ^ ^ ^ k = (-0.061 T)k B = Bz k = - qv 74. With the B pointing "out of the page," we evaluate the force (using the right-hand rule) at, say, the dot shown on the left edge of the particle's path, where its velocity is down. If the particle were positively charged, then the force at the dot would be toward the left, which is at odds with the figure (showing it being bent towards the right). Therefore, the particle is negatively charged; it is an electron. (a) Using Eq. 28-3 (with angle equal to 90), we obtain v= F eB = 4.99 106 m s . (b) Using either Eq. 28-14 or Eq. 28-16, we find r = 0.00710 m. (c) Using Eq. 28-17 (in either its first or last form) readily yields T = 8.93 109 s. 75. The current is in the + i direction. Thus, the i component of B has no effect, and (with x in meters) we evaluate F = ( 3.00A ) 1 0 i ( -0.600 T m ) x dx ( ^ ^j) = 2 2 -1.80 13 ^ ^ A T m k = (-0.600N)k. 3 76. (a) The largest value of force occurs if the velocity vector is perpendicular to the field. Using Eq. 28-3, FB,max = |q| vB sin (90) = ev B = (1.60 10 19 C) (7.20 106 m/s) (83.0 10 3 T) = 9.56 10 14 N. (b) The smallest value occurs if they are parallel: FB,min = |q| vB sin (0) = 0. (c) By Newton's second law, a = FB/me = |q| vB sin /me, so the angle between v and B is = sin -1 F m a I = sin GH q vB JK e -1 LM c9.11 10 kghd4.90 10 m s i . MN c160 10 Chc7.20 10 m shc83.0 10 -31 14 2 -16 6 -3 OP = 0.267 . Th P Q 77. (a) We use = B, where points into the wall (since the current goes clockwise around the clock). Since B points towards the one-hour (or "5-minute'') mark, and (by the properties of vector cross products) must be perpendicular to it, then (using the right-hand rule) we find points at the 20-minute mark. So the time interval is 20 min. (b) The torque is given by =| B |= B sin 90 = NiAB = Nir 2 B = 6 ( 2.0A )( 0.15m ) ( 70 10-3 T ) 2 = 5.9 10-2 N m. 78. From m = B2qx2/8V we have m = (B2q/8V)(2xx). Here x = 8Vm B 2 q , which we substitute into the expression for m to obtain F B q IJ 2 m = G H 8V K 2 mq 8mV x = B x . 2 Bq 2V Thus, the distance between the spots made on the photographic plate is x = = m 2V B mq ( 37 u - 35 u ) (1.66 10-27 kg 0.50 T u ) ( 36 u ) (1.66 10-27 kg 2 7.3 103 V ( u 1.60 10-19 C )( ) ) = 8.2 10-3 m. 79. (a) Since K = qV we have K p = 1 K ( as q = 2 K p ) , or K p / K = 0.50. 2 (b) Similarly, q = 2 K d , K d / K = 0.50. (c) Since r = 2mK qB mK q , we have rd = md K d q p rp = m p K p qd ( 2.00u ) K p r = 10 (1.00u ) K p p 2cm=14cm. (d) Similarly, for the alpha particle, we have r = m K q p rp = m p K p q ( 4.00u ) K erp = 10 (1.00u ) ( K 2 ) 2e 2cm=14cm. 80. (a) Equating the magnitude of the electric force (Fe = eE) with that of the magnetic force (Eq. 28-3), we obtain B = E / v sin . The field is smallest when the sin factor is at 1 its largest value; that is, when = 90. Now, we use K = mv 2 to find the speed: 2 v= . 2 2.5 103 eV 160 10-19 J eV 2K = = 2.96 107 m s . -31 me 9.11 10 kg c hc h Thus, B= E 10 103 V m = = 3.4 10-4 T. v 2.96 107 m s j The direction of the magnetic field must be perpendicular to both the electric field ( -^ ) i j and the velocity of the electron ( + ^ ). Since the electric force Fe = (-e) E points in the + ^ j direction, the magnetic force F = (-e)v B points in the -^ direction. Hence, the B ^ ^ direction of the magnetic field is - k . In unit-vector notation, B = (-3.4 10-4 T)k. 81. (a) In Chapter 27, the electric field (called EC in this problem) which "drives" the current through the resistive material is given by Eq. 27-11, which (in magnitude) reads EC = J. Combining this with Eq. 27-7, we obtain EC = nevd . Now, regarding the Hall effect, we use Eq. 28-10 to write E = vdB. Dividing one equation by the other, we get E/Ec = B/ne. (b) Using the value of copper's resistivity given in Chapter 27, we obtain E B 0.65 T = = = 2.84 10-3. -19 -8 28 3 Ec ne 8.47 10 m 1.60 10 C 1.69 10 m ( )( )( ) 82. (a) For the magnetic field to have an effect on the moving electrons, we need a nonnegligible component of B to be perpendicular to v (the electron velocity). It is most efficient, therefore, to orient the magnetic field so it is perpendicular to the plane of the page. The magnetic force on an electron has magnitude FB = evB, and the acceleration of the electron has magnitude a = v2/r. Newton's second law yields evB = mev2/r, so the radius of the circle is given by r = mev/eB in agreement with Eq. 28-16. The kinetic 1 energy of the electron is K = 2 me v 2 , so v = 2 K me . Thus, r= me 2 K 2me K = . eB me e2 B 2 This must be less than d, so 2me K 2me K d , or B . 2 2 e2d 2 e B (b) If the electrons are to travel as shown in Fig. 28-33, the magnetic field must be out of the page. Then the magnetic force is toward the center of the circular path, as it must be (in order to make the circular motion possible). 83. The equation of motion for the proton is F = qv B = q v x i + v y j + vz k B i = qB vz j - v y k e e j LF dv IJ i + FG dv IJ j + FG dv IJ kOP . = m a = m MG NH dt K H dt K H dt K Q x y z p p j Thus, dv y dvx dvz = 0, = vz , = - v y , dt dt dt where = eB/m. The solution is vx = v0x, vy = v0y cos t and vz = v0y sin t. In summary, we have v t = v0 x i + v0 y cos t j - v0 y sin t k . bg b g b g 84. Referring to the solution of problem 19 part (b), we see that r = 2mK qB implies the proportionality: r mK qB . Thus, (a) rd md K d q p 2.0u e = = = 2 1.4 , and 1.0u e rp m p K p qd r m K q p 4.0u e = = = 1.0. 1.0u 2e rp m p K p q (b) 85. (a) The textbook uses "geomagnetic north" to refer to Earth's magnetic pole lying in the northern hemisphere. Thus, the electrons are traveling northward. The vertical component of the magnetic field is downward. The right-hand rule indicates that v B is to the west, but since the electron is negatively charged (and F = qv B ), the magnetic force on it is to the east. We combine F = mea with F = evB sin . Here, B sin represents the downward component of Earth's field (given in the problem). Thus, a = evB / me. Now, the electron 1 speed can be found from its kinetic energy. Since K = mv 2 , 2 . 2 12.0 103 eV 160 10-19 J eV 2K v= = = 6.49 107 m s . -31 me 9.11 10 kg c hc h Therefore, -19 7 -6 evB (1.60 10 C ) ( 6.49 10 m s ) ( 55.0 10 T ) 2 2 a= = = 6.27 1014 m s 6.3 1014 m s . -31 me 9.1110 kg (b) We ignore any vertical deflection of the beam which might arise due to the horizontal component of Earth's field. Technically, then, the electron should follow a circular arc. However, the deflection is so small that many of the technicalities of circular geometry may be ignored, and a calculation along the lines of projectile motion analysis (see Chapter 4) provides an adequate approximation: x = vt t= x 0.200m = v 6.49 107 m s which yields a time of t = 3.08 109 s. Then, with our y axis oriented eastward, y = 2 1 2 1 at = ( 6.27 1014 ) ( 3.08 10-9 ) = 0.00298m 0.0030 m. 2 2 86. We replace the current loop of arbitrary shape with an assembly of small adjacent rectangular loops filling the same area which was enclosed by the original loop (as nearly as possible). Each rectangular loop carries a current i flowing in the same sense as the original loop. As the sizes of these rectangles shrink to infinitesimally small values, the assembly gives a current distribution equivalent to that of the original loop. The magnitude of the torque exerted by B on the nth rectangular loop of area An is given by n = NiB sin An . Thus, for the whole assembly = n n = NiB n An = NiAB sin . 87. The total magnetic force on the loop L is FB = i We note that L ( dL B ) = i ( L dL ) B = 0. z L dL = 0. If B is not a constant, however, then the equality zd L dL B = ( i z L dL) B is not necessarily valid, so FB is not always zero. 88. (a) Since B is uniform, FB = where we note that z wire idL B = i ez wire dL B = iLab B , j z wire dL = Lab , with Lab being the displacement vector from a to b. (b) Now Lab = 0 , so FB = iLab B = 0 . 89. With Fz = vz = Bx = 0, Eq. 28-2 (and Eq. 3-30) gives Fx i + Fy j = q ( vyBz i - vxBz j + vxBy k ) where q = -e for the electron. The last term immediately implies By = 0, and either of the other two terms (along with the values stated in the problem, bearing in mind that "fN" means femtonewtons or 10-15 N) can be used to solve for Bz . We therefore find that ^ the magnetic field is given by B = (0.75 T)k. ^ ^ ^ ^ ^
Find millions of documents on Course Hero - Study Guides, Lecture Notes, Reference Materials, Practice Exams and more. Course Hero has millions of course specific materials providing students with the best way to expand their education.

Below is a small sample set of documents:

Lehigh - PHYSIC - 2
1. Our notation is as follows: x1 = 0 and y1 = 0 are the coordinates of the m1 = 3.0 kg particle; x2 = 2.0 m and y2 = 1.0 m are the coordinates of the m2 = 4.0 kg particle; and, x3 = 1.0 m and y3 = 2.0 m are the coordinates of the m3 = 8.0 kg particl
Lehigh - PHYSIC - 2
1. (a) The magnitude of r is5.02 + ( -3.0) 2 + 2.02 = 6.2 m.(b) A sketch is shown. The coordinate values are in meters.2. Wherever the length unit is not specified (in this solution), the unit meter should be understood.^ (a) The position vect
Lehigh - PHYSIC - 2
1. (a) The second hand of the smoothly running watch turns through 2 radians during 60 s . Thus,=2 = 0.105 rad/s. 60(b) The minute hand of the smoothly running watch turns through 2 radians during 3600 s . Thus,=2 = 1.75 10 -3 rad / s. 360
Lehigh - PHYSIC - 2
1. (a) All the energy in the circuit resides in the capacitor when it has its maximum charge. The current is then zero. If Q is the maximum charge on the capacitor, then the total energy is2.90 10-6 C Q2 U= = = 117 10-6 J. . -6 2C 2 3.60 10 Fc
Lehigh - PHYSIC - 2
1. The vector area A and the electric field E are shown on the diagram below. The angle between them is 180 35 = 145, so the electric flux through the area is = E A = EA cos = (1800 N C ) 3.2 10-3 m cos145 = -1.5 10-2 N m 2 C.2()2. We u
Lehigh - PHYSIC - 2
1. (a) The amplitude is half the range of the displacement, or xm = 1.0 mm. (b) The maximum speed vm is related to the amplitude xm by vm = xm, where is the angular frequency. Since = 2f, where f is the frequency,vm = 2 fxm = 2 (120 Hz ) (1.0 10 -
Lehigh - PHYSIC - 2
1. The time it takes for a soldier in the rear end of the column to switch from the left to the right foot to stride forward is t = 1 min/120 = 1/120 min = 0.50 s. This is also the time for the sound of the music to reach from the musicians (who are
Lehigh - PHYSIC - 2
1. We take p3 to be 80 kPa for both thermometers. According to Fig. 18-6, the nitrogen thermometer gives 373.35 K for the boiling point of water. Use Eq. 18-5 to compute the pressure:pN =T 373.35 K p3 = 273.16 K 273.16 K(80 kPa) = 109.343kPa.
Lehigh - PHYSIC - 2
1. According to Eq. 39-4 En L 2. As a consequence, the new energy level E'n satisfiesEn L = En LFG IJ = FG L IJ H K H L K-22=1 , 2which gives L = 2 L. Thus, the ratio is L / L = 2 = 1.41.2. (a) The ground-state energy is( 6.63 10
Lehigh - PHYSIC - 2
1. Our calculation is similar to that shown in Sample Problem 42-1. We set K = 5.30 MeV=U = (1/ 4 0 )( q qCu / rmin ) and solve for the closest separation, rmin:rmin-19 9 q qCu kq qCu ( 2e )( 29 ) (1.60 10 C )( 8.99 10 V m/C ) = = = 4 0 K 4 0 K
Lehigh - PHYSIC - 2
1. The x and the y components of a vector a lying on the xy plane are given byax = a cos , a y = a sin where a =| a | is the magnitude and is the angle between a and the positive x axis. (a) The x component of a is given by ax = 7.3 cos 250 = 2
A.T. Still University - SDF - asdf
Economics 100b Professor Wood1/31/08 Lecture 4ASUC Lecture Notes Online is the only authorized note-taking service at UC Berkeley. Please do not share, copy or illegally distribute these notes. Our non-profit, student-run program depends on your i
Lehigh - PHYSIC - 2
1. Conservation of momentum requires that the gamma ray particles move in opposite directions with momenta of the same magnitude. Since the magnitude p of the momentum of a gamma ray particle is related to its energy by p = E/c, the particles have th
Lehigh - PHYSIC - 2
1. Each atom has a mass of m = M/NA, where M is the molar mass and NA is the Avogadro constant. The molar mass of arsenic is 74.9 g/mol or 74.9 103 kg/mol. 7.50 1024 arsenic atoms have a total mass of (7.50 1024) (74.9 103 kg/mol)/(6.02 1023 mol
Lehigh - PHYSIC - 2
1. From the time dilation equation t = t0 (where t0 is the proper time interval, = 1 / 1 - 2 , and = v/c), we obtain = 1-FG t IJ . H t K2 0The proper time interval is measured by a clock at rest relative to the muon. Specifically, t0 = 2.2
Lehigh - PHYSIC - 2
1. (a) The flux through the top is +(0.30 T)r2 where r = 0.020 m. The flux through the bottom is +0.70 mWb as given in the problem statement. Since the net flux must be zero then the flux through the sides must be negative and exactly cancel the tota
Lehigh - PHYSIC - 2
1. The air inside pushes outward with a force given by piA, where pi is the pressure inside the room and A is the area of the window. Similarly, the air on the outside pushes inward with a force given by poA, where po is the pressure outside. The mag
Lehigh - PHYSIC - 2
1 1. The potential energy stored by the spring is given by U = 2 kx 2 , where k is the spring constant and x is the displacement of the end of the spring from its position when the spring is in equilibrium. Thusk=2 25 J 2U = 2 x 0.075 mb g b g
Lehigh - PHYSIC - 2
1. If R is the fission rate, then the power output is P = RQ, where Q is the energy released in each fission event. Hence, R = P/Q = (1.0 W)/(200 106 eV)(1.60 10 19 J/eV) = 3.1 1010 fissions/s.2. We note that the sum of superscripts (mass number
Lehigh - PHYSIC - 2
1. (a) An Ampere is a Coulomb per second, so84 A h = 84FG HCh sIJ FG 3600 s IJ = 3.0 10 K H hK5C.(b) The change in potential energy is U = qV = (3.0 105 C)(12 V) = 3.6 106 J.2. The magnitude is U = eV = 1.2 109 eV = 1.2 GeV.3. T
Lehigh - PHYSIC - 2
1. In air, light travels at roughly c = 3.0 108 m/s. Therefore, for t = 1.0 ns, we have a distance of d = ct = (3.0 108 m / s) (1.0 10-9 s) = 0.30 m.2. (a) From Fig. 33-2 we find the smaller wavelength in question to be about 515 nm, (b) and the
Lehigh - PHYSIC - 2
1. We are only concerned with horizontal forces in this problem (gravity plays no direct role). We take East as the +x direction and North as +y. This calculation is efficiently implemented on a vector-capable calculator, using magnitude-angle notati
Lehigh - PHYSIC - 2
1. (a) Let E = 1240 eVnm/min = 0.6 eV to get = 2.1 103 nm = 2.1 m. (b) It is in the infrared region.2. The energy of a photon is given by E = hf, where h is the Planck constant and f is the frequency. The wavelength is related to the frequency b
Lehigh - PHYSIC - 2
1. Comparing the light speeds in sapphire and diamond, we obtainv = vs - vd = cFG 1 - 1 IJ Hn n K F 1 - 1 IJ = 4.55 10 m s. = c2.998 10 m sh G H 177 2.42 K .s d 8 72. (a) The frequency of yellow sodium light is c 2.998 108 m s f = = = 5.09
Lehigh - PHYSIC - 2
1. Charge flows until the potential difference across the capacitor is the same as the potential difference across the battery. The charge on the capacitor is then q = CV, and this is the same as the total charge that has passed through the battery.
Lehigh - PHYSIC - 2
1. (a) For a given value of the principal quantum number n, the orbital quantum number ranges from 0 to n 1. For n = 3, there are three possible values: 0, 1, and 2. (b) For a given value of , the magnetic quantum number m ranges from - to + . For =
Lehigh - PHYSIC - 2
1. With speed v = 11200 m/s, we findK= 1 2 1 mv = (2.9 105 ) (11200) 2 = 18 1013 J. . 2 22. (a) The change in kinetic energy for the meteorite would be1 1 K = K f - K i = - K i = - mi vi2 = - 4 106 kg 15 103 m/s 2 2()()2= -5 1014 J
Lehigh - PHYSIC - 2
Instructor's Manual forFUNDAMENTALS OF PHYSICSSeventh Edition by David Halliday, Robert Resnick, and Jearl WalkerPrepared byJ. Richard ChristmanProfessor Emeritus United States Coast Guard Academywith the assistance of Stanley A. Williams I
Lehigh - PHYSIC - 2
1. (a) The motion from maximum displacement to zero is one-fourth of a cycle so 0.170 s is one-fourth of a period. The period is T = 4(0.170 s) = 0.680 s. (b) The frequency is the reciprocal of the period:f = 1 1 = = 1.47 Hz. T 0.680 s(c) A sinuso
Lehigh - PHY - 2
1. (a) The magnitude of the magnetic field due to the current in the wire, at a point a distance r from the wire, is given byB= 0i2r.With r = 20 ft = 6.10 m, we havec4 10 B=hb 2 b6.10 mg-7T m A 100 Ag = 3.3 10-6T = 3.3 T.(b
Lehigh - PHYSIC - 2
Chapter 1:MEASUREMENT1. The SI standard of time is based on: A. the daily rotation of the earth B. the frequency of light emitted by Kr86 C. the yearly revolution of the earth about the sun D. a precision pendulum clock E. none of these Ans: E 2.
Lehigh - PHYSIC - 2
1. The image is 10 cm behind the mirror and you are 30 cm in front of the mirror. You must focus your eyes for a distance of 10 cm + 30 cm = 40 cm.2. The bird is a distance d2 in front of the mirror; the plane of its image is that same distance d2
Lehigh - PHYSIC - 2
1. The magnitude of the force of one particle on the other is given by F = Gm1m2/r2, where m1 and m2 are the masses, r is their separation, and G is the universal gravitational constant. We solve for r:Gm1m2 = r= F( 6.67 10-11N m 2 / kg 2 ) (
Lehigh - PHYSIC - 2
1. (a) The charge that passes through any cross section is the product of the current and time. Since 4.0 min = (4.0 min)(60 s/min) = 240 s, q = it = (5.0 A)(240 s) = 1.2 103 C. (b) The number of electrons N is given by q = Ne, where e is the magnitu
Lehigh - IE - 111
Applied Statistics and Probability for EngineersThird EditionDouglas C. MontgomeryArizona State UniversityGeorge C. RungerArizona State UniversityJohn Wiley &amp; Sons, Inc.ACQUISITIONS EDITOR Wayne Anderson ASSISTANT EDITOR Jenny Welter MARKE
Cornell - HADM - 2225
HADM225 Practice FinalName:_1. A stock has an expected rate of return of 8.3 percent and a standard deviation of 6.4 percent. Which one of the following best describes the probability that this stock will lose 11 percent or more in any one given y
Cal Poly Pomona - HIST - 101
Seung Yeo Per:2 Chapter 3 VocabsExercise 1 1. C 2. C 3. A 4. D 5. B 6. D 7. B 8. C 9. B 10. D Exercise 2 1. Delightful 2. Arousing pity 3. Plight 4. Blandishment 5. Careworn 6. Self-denying 7. Perfect happiness 8. Weakened 9. Slavish Follower 10. Ho
USC - MUHL - 232
Ch. 59 Music and Ballet in 19th Cent. Russia No. 161 Modest Mussorgsky, &quot;with in four walls&quot; from Sunless 1874 Genre: Russian song cycle - 1st song of song cycle - chords hover over D major triad; D is constant - m2-4 contrast in textures between clo
USC - MUHL - 232
Terms Ballets Russes Russian Ballet; established by Sergei Diaghilev in 1909; toured in Europe and Americas. &quot;Beethoven's 10th&quot; Brahms 3rd symphony illustrates his modern extension of Beethoven symphonic style. Ex of this are non tradition tonal pl
USC - GEOG - 100gm
HOLY LAND (Pg. 61, # 116) I cannot tell you what I care for, I can only tell you what I fear to lose. This quote embodies what Lakewood is all about, and how the people there lived their lives, and why they would even want to go there in the first pl
Cal Poly Pomona - ENG - 1B
Seung Yeo Per:2 English IB Mr.Costa CeremonyThe struggles engulfed in Ceremony had plenty to do with before, during, and after the war. It not only captured the people who were physically involved in the war but also, among others around them. Even
USC - MUHL - 232
Modest Mussorsgsky Russia. The mighty handful: folksong were more imp than anything that they learned in school. was totally Russian Peter Ilyich Tchaikovsky Born in Russia. Western influenced. Did not exemplify Russian nationalism. Bedrich Smetana C
USC - MUHL - 232
Ch.55 German Opera of the 19th Century: Weber &amp; Wagner Singspiel play w/ singing; far more modest Carl Maria Von Weber 1786-1826 Friderich kind was librettist for Der Freischutz Romantic opera term used by Weber for certain of his operas and by W
Cal Poly Pomona - COM - 413
Man Kiu Chu COM 413 Mariusz Ozminkowski, Ph.D. 2:06 p.m. 3:40pm 10/10/07 &quot;Though Letter&quot;At each naturalization ceremony, every newly &quot;naturalized&quot; U.S. citizens have to declare if they are Democratic or Republican, etc. So it is very hard to be un
USC - POSC - 130g
Question 1: Is Galanter wrong? Galanter is right 1. same argument that Galanter made, RP's have relationships with judges, know the system, have more resources 2. you can't reform A-L, due to capture, the distrust of agencies, bargaining in the shado
Cal Poly Pomona - COM - 106
COM 106 Writing for Communication PractitionersEssay 1: Topic 50 pointsWe sometimes say or think: &quot;There needs to be a change.&quot; About the 2008 presidential elections, we think: there needs to be a change in the way people vote. There needs to be a
USC - POSC - 130g
Nation of strangers o ID: idea that America is diverse and not close-knit o SIG: need for more A-L in America since we sue others more (not neighborneighbor); comparison of American courts to other nations with smaller, more homogeneous populations w
USC - BUAD - 304
CHAPTER 14 POWER AND POLITICS Formal power based on indiv position in org 1. coercive power dependent on fear; one reacts out of fear of the negative results that might occur if one failed to comply 2. reward power opposite of coercive; people co
USC - BUAD - 304
Leader as Sense Maker Biographical Features Age: older turnover less than younger, older are absent less Gender: women don't turnover/perform/etc. less than men; women absent more than men Tenure: the greater the tenure the more productive, happier,
USC - POSC - 130g
Essay Questions 1. When are courts most likely to be constrained/dynamic? CCV: Definition: courts are limited in ability to make a difference and thus &quot;constrained&quot; When: Basically when all forms of constraints are strong: Strong doctrinal constraint
USC - POSC - 130g
Part I: Identify and give significance of 3 of 5 terms and concepts, which will be selected from the following list: The logic of the triad o ID: Triadic relationship between the Courts and Litigants 1 and 2, propped up by consent (agreement by sides
Cal Poly Pomona - COM - 413
Man Kiu Chu COM 413 Maurisz Ozminkowski, Ph.D. 2:06 p.m. 3:40 p.m. 10/07/07 Propaganda Example: MUFON (Mutual UFO Network) The propaganda example I am using is the Mutual UFO Network of United States. From reporting of the latest daily sightings to
Cal Poly Pomona - COM - 413
PUBLIC OPINION Definitional preliminaries Measurements Formation Ideological differences in the U.S.What constitutes a &quot;public&quot;? a group of people who are confronted by an issue who are divided in the ideas as how to meet the issue who
Cal Poly Pomona - COM - 260
Com260:Access to Places and InformationPower Point Presentations for Cal Poly Pomona COM 260 Based on J.D. Zelezny's &quot;Communications Law&quot; Copyright 2006 by Mariusz Ozminkowski For permission to use email mozminkowski@csupomona.eduThe First Amen
Binghamton - ENG - 117D
1The novel One flew Over The Cuckoo's Nest focuses on ideas of conformity and power distribution. The best and easiest way to achieve these two things in society is through Jeremy Bentham's idea and strategies involved with the Panopticon. Characte
Cal Poly Pomona - HIST - 370
In terms of their work force, American farmers and ranchers a. continued to use Indian laborers to work their lands b. hired Chinese immigrants d. relied on black workersThe Big Four included all of the following except a. Leland Stanford b. Collis
Binghamton - ENG - 117G
The Big Sleep's SignificanceThe Big Sleep by Raymond Chandler contains many symbols and themes that are socially, culturally, and historically significant in real life. Much of the novel is focused around the demand for money and the countless acti
Cal Poly Pomona - HIST - 370
What event greatly contributed to California's increasing importance in world trade? the opening of the Suez Canal the opening of the Panama Canal the international exposition held in Los Angeles in 1915 all of the above Which of the following statem
USC - ANTH - 200Lg
ANTH Exam 1 ReviewEvolution9/26/2007 8:56:00 PMGradual change over time Change in gene allele frequencies over generations Framework used to explain the origin of adaptations Mechanisms: o Mutation o Gene flow o Genetic drift o Natural selection
Cal Poly Pomona - HIST - 370
What has been the result of extensive water development in California? a. It has augmented the power of both state and local governments. b. It has tendedto favor large-scale commercial farming over small family farms. c. It has intensified political
Cal Poly Pomona - HIST - 370
The foreigners who arrived in California in the late 1840s could best be described as a. people who came mostly in families or as part of communities and, as aresult, were unwilling to assimilate into Californio society b. mainly single men who often