/*! This file is auto-generated */ .wp-block-button__link{color:#fff;background-color:#32373c;border-radius:9999px;box-shadow:none;text-decoration:none;padding:calc(.667em + 2px) calc(1.333em + 2px);font-size:1.125em}.wp-block-file__button{background:#32373c;color:#fff;text-decoration:none} 16E. Question: An electron at point A... [FREE SOLUTION] | 91Ó°ÊÓ

91Ó°ÊÓ

Question: An electron at point A in Fig. E27.15 has a speed \({v_0}\) of 1 41 10 m/s. Find (a) the magnitude and direction of the magnetic field that will cause the electron to follow the semicircular path from A to B, and

(b) the time required for theelectron to move from Ato B.

Repeat the exercise 27.15 for the case in which the particle is a proton rather than an electron.

Short Answer

Expert verified

(a) The magnitude of the magnetic field is \(0.29\;{\rm{T}}\) and is directed out of the page.

Step by step solution

01

Given data

Speed of the proton

\({v_0} = 1.41 \times {10^6}\;{{\rm{m}}\mathord{\left/{\vphantom {{\rm{m}} {\rm{s}}}} \right./{\rm{s}}}\)

The radius of the semi-circular path\(\begin{aligned}{c}r = 5\;{\rm{cm}}\\ = 5 \cdot \left( {1\;{\rm{cm}} \times \frac{{1\;{\rm{m}}}}{{100\;{\rm{cm}}}}} \right)\\ = 0.05\;{\rm{m}}\end{aligned}\)

02

Magnitude of magnetic field that causes a particle to move in a circular path

The magnitude of the magnetic field that causes a charge\(q\)of mass\(m\)and velocity\(v\)to move in a circular path of radius\(r\)is

\(B = \frac{{mv}}{{qr}}\) .....(i)

03

(a) Determination of the magnitude and direction of magnetic field

The charge of the proton is

\(q = 1.6 \times {10^{ - 19}}\;{\rm{C}}\)

The mass of the proton is

\(m = 1.67 \times {10^{ - 27}}\;{\rm{kg}}\)

From equation (i), the magnitude of the magnetic field is

\(\begin{aligned}B = \frac{{1.67 \times {{10}^{ - 27}}\;{\rm{kg}} \times 1.41 \times {{10}^6}\;{{\rm{m}}\mathord{\left/{\vphantom {{\rm{m}} {\rm{s}}}} \right.{\rm{s}}}}}{{1.6 \times {{10}^{ - 19}}\;{\rm{C}} \times 0.05\;{\rm{m}}}}\\ = 0.29 \cdot \left( {1\;{{{\rm{kg}}} \mathord{\left/{\vphantom {{{\rm{kg}}} {{\rm{C}}\cdot }}} \right.{{\rm{C}} \cdot }}{\rm{s}} \times \frac{{1\;{\rm{T}}}}{{1\;{{{\rm{kg}}} \mathord{\left/{\vphantom {{{\rm{kg}}} {{\rm{C}} \cdot }}} \right.{{\rm{C}} \cdot }}{\rm{s}}}}} \right)\\ =0.29{\rm{T}}\end{aligned}\)

Thus, the required magnitude is\(0.29\;{\rm{T}}\).

From the diagram it is evident that the initial force is towards the right. The direction of magnetic force on a positive charge is the direction of cross product of the velocity to the magnetic field. Thus, it is evident that the magnetic field is directed out of the page.

Unlock Step-by-Step Solutions & Ace Your Exams!

  • Full Textbook Solutions

    Get detailed explanations and key concepts

  • Unlimited Al creation

    Al flashcards, explanations, exams and more...

  • Ads-free access

    To over 500 millions flashcards

  • Money-back guarantee

    We refund you if you fail your exam.

Over 30 million students worldwide already upgrade their learning with 91Ó°ÊÓ!

One App. One Place for Learning.

All the tools & learning materials you need for study success - in one app.

Get started for free

Most popular questions from this chapter

A particle of mass 3m is located 1.00 mfrom a particle of mass m.

(a) Where should you put a third mass M so that the net gravitational force on M due to the two masses is precisely zero?

(b) Is the equilibrium of M at this point stable or unstable (i) for points along the line connecting m and 3m, and (ii) for points along the line passing through M and perpendicular to the line connecting m and 3m?

A jet fighter pilot wishes to accelerate from rest at a constant acceleration of to reach Mach 3 (three times the speed of sound) as quickly as possible. Experimental tests reveal that he will black out if this acceleration lasts for more than5.0s. Use331m/sfor the speed of sound. (a) Will the period of acceleration last long enough to cause him to black out? (b) What is the greatest speed he can reach with an acceleration ofbefore he blacks out?

The dwarf planet Pluto has an elliptical orbit with a semi-major axis of 5.91×1012 mand eccentricity 0.249.

(a) Calculate Pluto’s orbital period. Express your answer in seconds and in earth years.

(b) During Pluto’s orbit around the sun, what are its closest and farthest distances from the sun?

The most powerful engine available for the classic 1963 Chevrolet Corvette Sting Ray developed 360 horsepower and had a displacement of 327 cubic inches. Express this displacement in liters (L) by using only the conversions 1 L = 1000 cm3 and 1 in. = 2.54 cm.

The driver of a car wishes to pass a truck that is traveling at a constant speed of20.0m/s(about41mil/h). Initially, the car is also traveling at20.0m/s, and its front bumper is24.0mbehind the truck’s rear bumper. The car accelerates at a constant 0.600m/s2, then pulls back into the truck’s lane when the rear of the car is26.0mahead of the front of the truck. The car islong, and the truck is 21.0m long. (a) How much time is required for the car to pass the truck? (b) What distance does the car travel during this time? (c) What is the final speed of the car?

See all solutions

Recommended explanations on Physics Textbooks

View all explanations

What do you think about this solution?

We value your feedback to improve our textbook solutions.

Study anywhere. Anytime. Across all devices.