2.50 mm 8.00 cm P 15.0 cm 2.50 mm A wire carrying a 35.0A current bends through a right angle. Consider two 2.50 mm segments of wire, 8.00 cm and 15.0 cm from the bend as shown in the figure. Find the magnitude and direction of the net magnetic field these two segments produce at Point P, which is midway between them.
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- 3. See the attached figure for this problem. A charge of 6.46 x 10^6 C moves to the right as shown through a region containing both a magnetic field of strength 4.03 T directed into the screen and an electric field of strength 8.72 x 10^5 N/C directed downward. The charge continues through the region at a constant velocity (no acceleration). What is the charge s speed? 2.16E+05 m/s 1.73E+05 m/s 8.64E+04 m/s 6.48E+04 m/sThe 1.0 [cm] × 4.0 [cm] rectangular loop is 1.0 [cm] away from a long straight wire. The wire carries a current of 1.0 [A]. What is the magnetic flux through the loop? Loop Long straight wire 4.0 cm 1.0 cm 1.0 cm3. In the diagram below there are two long, parallel, current carrying wires. The upper wire also has a semi-circular section of radius 15.0 cm. The distance between the wires is 20.0 cm. The upper wire carries a current of 2.00 A to the right and the lower wire carries a current of 14.0 A to the right. What is the magnitude of the net or total magnetic field at point P due to both wires (in uT)? Point P is at the center of the semi-circular section. 2A (A) 5.00 (B) 7.53 (C) 9.81 •P 个 (D) 12.3 (E) 2.31 (F) 15.0 20cm 14A
- A 32.7 A current flows in a long, straight wire. Find the strength of the resulting magnetic field at a distance of 61.3 cm from the wire. T3. In the diagram below there are two long, parallel, current carrying wires. The upper wire also has a semi-circular section of radius 15.0 cm. The distance between the wires is 20.0 cm. The upper wire carries a current of 2.00 A to the right and the lower wire carries a current of 14.0 A to the right. What is the magnitude of the net or total magnetic field at point P due to both wires (in µT)? Point P is at the center of the semi-circular section. (A) 5.00 (B) 7.53 (C) 9.81 2A 个 (D) 12.3 (E) 2.31 (F) 15.0 20cm 14AYou take a conducting wire with a total length of 10.0m and form a square with it. A uniform magnetic field is oriented 30.0° above the plane of the square. If the magnitude of the magnetic field is 1.20T, what is the magnetic flux through the square? Uniform B – field - 30° 3.75 T · m² 6.50 T · m2 12.0T· m² None of the other answers. 7.50 T · m²
- Three long, parallel conductors carry currents of I = 2.9 A. The figure below is an end view of the conductors, with each current coming out of the page. Given that a = 2.4 cm, determine the magnitude and direction of the magnetic field at points A, B, and C. Point Magnitude A B C B μT μT μ. Direction toward the top of the page toward the bottom of the page ✓ The magnitude is zero. I29.329.4