Principles of Physics: A Calculus-Based Text
Principles of Physics: A Calculus-Based Text
5th Edition
ISBN: 9781133104261
Author: Raymond A. Serway, John W. Jewett
Publisher: Cengage Learning
bartleby

Concept explainers

bartleby

Videos

Textbook Question
Book Icon
Chapter 3, Problem 4P

It is not possible to see very small objects, such as viruses, using an ordinary light microscope. An electron microscope, however, can view such objects using an electron beam instead of a light beam. Electron microscopy has proved invaluable for investigations of viruses, cell membranes and subcellular structures, bacterial surfaces, visual receptors, chloroplasts, and the contractile properties of muscles. The “lenses” of an electron microscope consist of electric and magnetic fields that control the electron beam. As an example of the manipulation of an electron beam, consider an electron traveling away from the origin along the x axis in the xy plane with initial velocity v i = v i i ^ . As it passes through the region x = 0 to x = d, the electron experiences acceleration a ( t ) = a x i ^ + a y j ^ , where ax and ay are constants. For the case vi = 1.80 × 107 m/s, ax = 8.00 × 1014 m/s2, and ay = 1.60 × 1015 m/s2 determine at x = d = 0.010 0 m (a) the position of the electron, (b) the velocity of the electron, (c) the speed of the electron, and (d) the direction of travel of the electron (i.e., the angle between its velocity and the x axis).

(a)

Expert Solution
Check Mark
To determine

The position of the electron.

Answer to Problem 4P

The position of the electron is (0.010m)i^+(2.4×104 m)j^ .

Explanation of Solution

Section 1:

To determine: The time taken by the electron to pass the region.

Answer: The time taken by the electron to pass the region is 5.48×1010 s .

Given information:

The x component of velocity is 1.80×107 m/s , the x component of the acceleration is 8.00×1014 m/s2 , the y component of acceleration is 1.60×1015 m/s2 and the final distance is 0.0100 m .

The equation for the x component of the motion is,

xf=xi+vxt+12axt2

  • xf is the final distance.
  • xi is the initial distance.
  • vx is the x component of velocity.
  • ax is the x component of acceleration.

Substitute 0.0100 m for xf , 0 for xi , 1.80×107 m/s for vx and 8.00×1014 m/s2 for ax in above equation.

(0.0100 m)=[0+(1.80×107 m/s)t+12(8.00×1014 m/s2)t2](4.00×1014 m/s2)t2+(1.80×107 m/s)t0.01 m=0t=5.48×1010 s

Section 2:

To determine: The position of the electron.

Answer: The position of the electron is (0.010m)i^+(2.4×104 m)j^ .

Given information:

The x component of velocity is 1.80×107 m/s , the x component of the acceleration is 8.00×1014 m/s2 , the y component of acceleration is 1.60×1015 m/s2 and the final distance is 0.0100 m .

The equation for the y component of the motion is,

yf=yi+vyt+12ayt2

  • yf is the final distance.
  • yi is the initial distance.
  • vy is the y component of velocity.
  • ay is the y component of acceleration.

Substitute 0 for yi , 0 for vy , 5.48×1010 s for t and 1.60×1015 m/s2 for ay in above equation to find yf .

yf=0+(0)(5.48×1010 s)+12(1.60×1015 m/s2)(5.48×1010 s)2=12(1.60×1015 m/s2)(5.48×1010 s)2=2.4×104 m

Thus, the position of electron is,

r=(0.010m)i^+(2.4×104 m)j^

Conclusion:

Therefore, the position of the electron is (0.010m)i^+(2.4×104 m)j^ .

(b)

Expert Solution
Check Mark
To determine

The velocity of the electron.

Answer to Problem 4P

The velocity of the electron is (1.8×107 m/s2)i^+(8.76×105 m/s)j^ .

Explanation of Solution

Given information:

The x component of velocity is 1.80×107 m/s , the x component of the acceleration is 8.00×1014 m/s2 , the y component of acceleration is 1.60×1015 m/s2 and the final distance is 0.0100 m .

The formula to calculate velocity is,

vf=vi+at=(vx+axt)i^+((vy+ayt))j^

Substitute 1.80×107 m/s for vx , 0 for vy , 8.00×1014 m/s2 for ax , 5.48×1010 s for t and 1.60×1015 m/s2 for ay in above equation to find vf .

vf=[(1.80×107 m/s+(8.00×1014 m/s2)(5.48×1010 s))i^+(0+(1.60×1015 m/s2)(5.48×1010 s))j^]=(1.8×107 m/s2)i^+(8.76×105 m/s)j^

Conclusion:

Therefore, the velocity of the electron is (1.8×107 m/s2)i^+(8.76×105 m/s)j^ .

(c)

Expert Solution
Check Mark
To determine

The speed of the electron.

Answer to Problem 4P

The speed of the electron is 1.8×107 m/s .

Explanation of Solution

Given information:

The x component of velocity is 1.80×107 m/s , the x component of the acceleration is 8.00×1014 m/s2 , the y component of acceleration is 1.60×1015 m/s2 and the final distance is 0.0100 m .

The formula to calculate speed is,

v=|v|=vx2+vy2

Substitute (1.8×107 m/s2) for vx and (8.76×105 m/s) for vy to find the v .

v=(1.8×107 m/s2)2+(8.76×105 m/s)2=1.8×107 m/s

Conclusion:

Therefore, the speed of the electron is 1.8×107 m/s .

(d)

Expert Solution
Check Mark
To determine

The direction of travel of the electron.

Answer to Problem 4P

The direction of travel of the electron is 2.78° from x axis.

Explanation of Solution

Given information:

The x component of velocity is 1.80×107 m/s , the x component of the acceleration is 8.00×1014 m/s2 , the y component of acceleration is 1.60×1015 m/s2 and the final distance is 0.0100 m .

The formula to calculate direction of travel is,

θ=tan1(vyfvxf)

Substitute 1.8×107 m/s2 for vxf and (8.76×105 m/s) for vyf to find the direction.

θ=tan1(8.76×105 m/s1.8×107 m/s2)=2.78°

Conclusion:

Therefore, the direction of travel of the electron is 2.78° from x axis.

Want to see more full solutions like this?

Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!
Students have asked these similar questions
How can i solve this if n1 (refractive index of gas) and n2 (refractive index of plastic) is not known. And the brewsters angle isn't known
2. Consider the situation described in problem 1 where light emerges horizontally from ground level. Take k = 0.0020 m' and no = 1.0001 and find at which horizontal distance, x, the ray reaches a height of y = 1.5 m.
2-3. Consider the situation of the reflection of a pulse at the interface of two string described in the previous problem. In addition to the net disturbances being equal at the junction, the slope of the net disturbances must also be equal at the junction at all times. Given that p1 = 4.0 g/m, H2 = 9.0 g/m and Aj = 0.50 cm find 2. A, (Answer: -0.10 cm) and 3. Ay. (Answer: 0.40 cm)please I need to show all work step by step problems 2 and 3

Chapter 3 Solutions

Principles of Physics: A Calculus-Based Text

Ch. 3 - An astronaut hits a golf ball on the Moon. Which...Ch. 3 - A projectile is launched on the Earth with a...Ch. 3 - A baseball is thrown from the outfield toward the...Ch. 3 - A student throws a heavy red ball horizontally...Ch. 3 - A sailor drops a wrench from the top of a...Ch. 3 - A set of keys on the end of a string is swung...Ch. 3 - Prob. 12OQCh. 3 - Prob. 1CQCh. 3 - Prob. 2CQCh. 3 - Prob. 3CQCh. 3 - Prob. 4CQCh. 3 - Prob. 5CQCh. 3 - Prob. 6CQCh. 3 - A projectile is launched at some angle to the...Ch. 3 - A motorist drives south at 20.0 m/s for 3.00 min,...Ch. 3 - Prob. 2PCh. 3 - A particle initially located at the origin has an...Ch. 3 - It is not possible to see very small objects, such...Ch. 3 - A fish swimming in a horizontal plane has velocity...Ch. 3 - At t = 0, a particle moving in the xy plane with...Ch. 3 - Mayan kings and many school sports teams are named...Ch. 3 - The small archerfish (length 20 to 25 cm) lives in...Ch. 3 - Prob. 9PCh. 3 - Prob. 10PCh. 3 - Prob. 11PCh. 3 - Prob. 12PCh. 3 - Prob. 13PCh. 3 - Prob. 14PCh. 3 - Prob. 15PCh. 3 - A firefighter, a distance d from a burning...Ch. 3 - A soccer player kicks a rock horizontally off a...Ch. 3 - Prob. 18PCh. 3 - A student stands at the edge of a cliff and throws...Ch. 3 - Prob. 20PCh. 3 - A playground is on the flat roof of a city school,...Ch. 3 - Prob. 22PCh. 3 - Prob. 23PCh. 3 - Prob. 24PCh. 3 - As their booster rockets separate, Space Shuttle...Ch. 3 - Prob. 26PCh. 3 - The astronaut orbiting the Earth in Figure P3.27...Ch. 3 - Prob. 28PCh. 3 - Prob. 29PCh. 3 - A point on a rotating turntable 20.0 cm from the...Ch. 3 - Figure P3.31 represents the total acceleration of...Ch. 3 - Prob. 32PCh. 3 - Prob. 33PCh. 3 - Prob. 34PCh. 3 - Prob. 35PCh. 3 - Prob. 36PCh. 3 - Prob. 37PCh. 3 - Prob. 38PCh. 3 - Prob. 39PCh. 3 - Prob. 40PCh. 3 - A certain light truck can go around an unbanked...Ch. 3 - A landscape architect is planning an artificial...Ch. 3 - Why is the following situation impassible? A...Ch. 3 - An astronaut on the surface of the Moon fires a...Ch. 3 - The Vomit Comet. In microgravity astronaut...Ch. 3 - A projectile is fired up an incline (incline angle...Ch. 3 - A basketball player is standing on the floor 10.0...Ch. 3 - A truck loaded with cannonball watermelons stops...Ch. 3 - A ball on the end of a string is whirled around in...Ch. 3 - An outfielder throws a baseball to his catcher in...Ch. 3 - Prob. 51PCh. 3 - A skier leaves the ramp of a ski jump with a...Ch. 3 - A World War II bomber flies horizontally over...Ch. 3 - A ball is thrown with an initial speed vi at an...Ch. 3 - Prob. 55PCh. 3 - A person standing at the top of a hemispherical...Ch. 3 - An aging coyote cannot run fast enough to catch a...Ch. 3 - Prob. 58PCh. 3 - The water in a river flows uniformly at a constant...Ch. 3 - Prob. 61P
Knowledge Booster
Background pattern image
Physics
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, physics and related others by exploring similar questions and additional content below.
Recommended textbooks for you
Text book image
College Physics
Physics
ISBN:9781305952300
Author:Raymond A. Serway, Chris Vuille
Publisher:Cengage Learning
Text book image
University Physics (14th Edition)
Physics
ISBN:9780133969290
Author:Hugh D. Young, Roger A. Freedman
Publisher:PEARSON
Text book image
Introduction To Quantum Mechanics
Physics
ISBN:9781107189638
Author:Griffiths, David J., Schroeter, Darrell F.
Publisher:Cambridge University Press
Text book image
Physics for Scientists and Engineers
Physics
ISBN:9781337553278
Author:Raymond A. Serway, John W. Jewett
Publisher:Cengage Learning
Text book image
Lecture- Tutorials for Introductory Astronomy
Physics
ISBN:9780321820464
Author:Edward E. Prather, Tim P. Slater, Jeff P. Adams, Gina Brissenden
Publisher:Addison-Wesley
Text book image
College Physics: A Strategic Approach (4th Editio...
Physics
ISBN:9780134609034
Author:Randall D. Knight (Professor Emeritus), Brian Jones, Stuart Field
Publisher:PEARSON
Kinematics Part 3: Projectile Motion; Author: Professor Dave explains;https://www.youtube.com/watch?v=aY8z2qO44WA;License: Standard YouTube License, CC-BY