EBK PHYSICS FOR SCIENTISTS AND ENGINEER
EBK PHYSICS FOR SCIENTISTS AND ENGINEER
9th Edition
ISBN: 9780100454897
Author: Jewett
Publisher: YUZU
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Chapter 30, Problem 30.14P

One long wire carries current 30.0 A to the left along the x axis. A second long wire carries current 50.0 A to the right along the line (y = 0.280 m, z = 0). (a) Where in the plane of the two wires is the total magnetic field equal to zero? (b) A particle with a charge of −2.00 μC is moving with a velocity of 150 i ^ Mm/s along the line (y = 0.100 m, z = 0). Calculate the vector magnetic force acting on the particle. (c) What If? A uniform electric field is applied to allow this particle to pass through this region undetected. Calculate the required vector electric field.

(a)

Expert Solution
Check Mark
To determine
The location where total magnetic field is zero.

Answer to Problem 30.14P

The location where total magnetic field is zero is 0.42m .

Explanation of Solution

Given info: Current flowing through the first wire is 30.0A , current flowing through second wire is 50.0A , distance between plane of both wire is 0.28m ,

Explanation:

Formula to calculate magnetic field due to first wire is,

B1=μoI12πr1

Here,

μo is permeability in free space.

I1 is current in first wire.

r1 is is radius of first wire.

Formula to calculate magnetic field due to second wire is,

B2=μoI22πr2

Here,

I2 is current in second wire.

r2 is radius of second wire.

Total magnetic field given by both wire is,

B=B1+B2 (1)

Substitute μoI12πr1 for B1 and μoI22πr2 for B2 in equation (1).

B=μoI12πr1+μoI22πr2 (2)

Substitute 0 for B as per given condition in part (a),

0=μoI12πr1+μoI22πr2I1r1=I2r2

Substitute 30A for I1 , 50A for I2 , |y| for r1 and |y|+0.28m for r2 in above equation.

30A|y|=50A|y|+0.28m50A(|y|)=30A(|y|+0.28m)20(|y|)=30×0.28|y|=0.42m

Thus, the location where total magnetic field is zero is 0.42m .

Conclusion:

Therefore, the location where total magnetic field is zero is 0.42m .

(b)

Expert Solution
Check Mark
To determine
The magnitude of vector magnetic force.

Answer to Problem 30.14P

The magnitude of vector magnetic force is 3.47×102(j^)N .

Explanation of Solution

Given info: charge on particle on particle is 2μC , velocity of particle is 150i^Mm/s , location of particle is 0.1m .

Explanation:

Formula to calculate total magnetic field is,

B=μoI12πr1+μoI22πr2=μoI12π|y|+μoI22π(|y|+0.28m)=μo2π(I1|y|+I2(|y|+0.28m))

Substitute 4π×107Tm/A for μo , 30A for I1 , 50A for and 0.1m for |y| in above equation.

B=4π×107Tm/A2π(30A0.1m(k^)+50A(0.280.1)m(k^))=(1.16×104k^)T

Formula to calculate force acting on particle is,

F=qvB

Here,

q is charge on particle.

v is the velocity of particle.

B is magnetic field due to wire.

Substitute 1.16×104T(k) for B , 2μC for q and 150i^Mm/s for v in above equation.

F=(2μC)(150i^Mm/s)(1.16×104T(k^))=(2μC106C1μC)(150i^Mm/s106m/s1Mm/s)(1.16×104T(k^))=3.47×102N(i^k^)=3.47×102(j^)N

Hence, magnitude of vector magnetic force is 3.47×102(j^)N .

Conclusion:

Therefore, magnitude of vector magnetic force is 3.47×102(j^)N .

(c)

Expert Solution
Check Mark
To determine
The magnitude of vector electric field.

Answer to Problem 30.14P

The magnitude of vector electric field is 1.73×104N/C(j^) .

Explanation of Solution

Formula to calculate electric field is,

E=Fq

Here,

F force acting on charged particle.

q is charge on particle.

Substitute 3.47×102N(j^) for F and 2μC for q in above equation.

E=3.47×102N(j^)2μC=3.47×102N(j^)2μC106C1μC=1.73×104(j^)N/C

Hence, magnitude of vector electric field is 1.73×104(j^)N/C .

Conclusion:

Therefore, magnitude of vector electric field is 1.73×104(j^)N/C .

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Chapter 30 Solutions

EBK PHYSICS FOR SCIENTISTS AND ENGINEER

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