Concept explainers
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
(a)
Answer to Problem 30.14P
Explanation of Solution
Given info: Current flowing through the first wire is
Explanation:
Formula to calculate magnetic field due to first wire is,
Here,
Formula to calculate magnetic field due to second wire is,
Here,
Total magnetic field given by both wire is,
Substitute
Substitute
Substitute
Thus, the location where total magnetic field is zero is
Conclusion:
Therefore, the location where total magnetic field is zero is
(b)
Answer to Problem 30.14P
Explanation of Solution
Given info: charge on particle on particle is
Explanation:
Formula to calculate total magnetic field is,
Substitute
Formula to calculate force acting on particle is,
Here,
Substitute
Hence, magnitude of vector magnetic force is
Conclusion:
Therefore, magnitude of vector magnetic force is
(c)
Answer to Problem 30.14P
Explanation of Solution
Formula to calculate electric field is,
Here,
Substitute
Hence, magnitude of vector electric field is
Conclusion:
Therefore, magnitude of vector electric field is
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Chapter 30 Solutions
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- 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 C is moving with a velocity of 150iMm/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.arrow_forwardIn Figure P22.43, the current in the long, straight wire is I1 = 5.00 A and the wire lies in the plane of the rectangular loop, which carries a current I2 = 10.0 A. The dimensions in the figure are c = 0.100 m, a = 0.150 m, and = 0.450 m. Find the magnitude and direction of the net force exerted on the loop by the magnetic field created by the wire. Figure P22.43 Problems 43 and 44.arrow_forwardA magnetic field directed into the page changes with time according to B = 0.030 0t2 + 1.40, where B is in teslas and t is in seconds. The field has a circular cross section of radius R = 2.50 cm (see Fig. P23.28). When t = 3.00 s and r2 = 0.020 0 m, what are (a) the magnitude and (b) the direction of the electric field at point P2?arrow_forward
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- A mass spectrometer (Fig. 30.40, page 956) operates with a uniform magnetic field of 20.0 mT and an electric field of 4.00 103 V/m in the velocity selector. What is the radius of the semicircular path of a doubly ionized alpha particle (ma = 6.64 1027 kg)?arrow_forwardA wire 2.80 m in length carries a current of 5.00 A in a region where a uniform magnetic field has a magnitude of 0.390 T. Calculate the magnitude of the magnetic force on the wire assuming the angle between the magnetic field and the current is (a) 60.0, (b) 90.0, and (c) 120.arrow_forwardA proton travels with a speed of 3.00 106 m/s at an angle of 37.0 with the direction of a magnetic field of 0.300 T in the +y direction. What are (a) the magnitude of the magnetic force on the proton and (b) its acceleration?arrow_forward
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