consists of crossed electric and magnetic fields and velocity of 10° m/s (E 1 B). The value of the magnetic field in region I is 5 T. (a) What is the value of the Electric field in region I? (b)The ion then enters region II with the same velocity it had in region I. The magnetic field in region II is 8 T Find the radius of its path taken by the charge in region II. X Figure 1 х х +++++++++ +++++- Region I X. Region II
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- Find the direction of the magnetic field acting on a positively charged particle moving in the various situations shown if the direction of the magnetic force acting on it is as indicated.The two insulated wires in the diagram above cross at a 30° angle but do not make electrical contact. Each wire carries 7.01 A current. Point 1 is 5.27 cm from the intersection and equally distant from both wires. What is the magnitude of the magnetic field (in T) at point 1?A singly charged positive ion has a mass of 2.46 x 10-26 kg. After being accelerated through a potential difference of 242 V, the ion enters a magnetic field of 0.590 T, in a direction perpendicular to the field. Calculate the radius of the path of the ion in the field. cm
- A circular region 4.00 m in radius is filled with an electric field perpendicular to the face of the circle. The magnitude of the field in the circle varies with radius and time as E(r, t) = Arcos (@t) where A = 1000. V/m² and w = 3.00 x 10⁹ s¨¹. What is the maximum value of the magnetic field at the edge of the region? i TAn electric field with initial magnitude 210 V/m directed into the page and increasing at a rate of 13.0 V/(ms) is confined to the area of radius R = 15.0 cm in the figure below. If r = 45.0 cm, what are the magnitude and direction of the magnetic field at point A? magnitude direction ---Select--- Ø Ø A O R1. A magnetic field has a magnitude of 1.50 × 10-³ T, and an electric field has a magnitude of 4.00 × 10³ N/C. Both fields -3 point in the same direction. A positive 2.5 µC charge moves at a speed of 2.50 × 106 m/s in a perpendicular to both fields. Determine the magnitude of the net force that acts on the charge. N ssfánection that is 0 ssf60 sf60 ss 50 ssf6 €60 ssf60 ss
- A 3.0 cm section of a horizontal wire carrying a 6.7 A current from east to west is place in a north to south 0.42 T magnetic field in the lab. In what direction is the magnetic force on the 3.0 cm section? north south up down southwestA charged particle moves through a velocity selector at constant velocity. The velocity selector is configured with "crossed" electric and magnetic fields of magnitude E = 1.50 x 104 N/C and B = 0.4 T. %3D Hint a. What is the velocity of the charged particle? Velocity of the charged particle is x 104 m/s. b. When the electric field is turned off, the charged particle travels in a circular path of radius 6 mm, as it travels through the magnetic field (still at B = 0.4 T). What is the mass-to-charge ratio of the particle? Hint for (b) Mass-to-charge ratio of the part is kg/C. (Use the "E" notation to enter your answer in scientific notation. For example, to enter 3.14 × 10´ 12".) - 12 enter "3.14E-wrong
- A long cylindrical conductor of radius a has two cylindrical cavities diameter a along its entire length, as shown in figure. An I current is directed out of the page and has a uniform value across the entire cross-section of the conductor. Determine the magnitude and direction of the magnetic field based on μ0, I, r and a at a) point P1 and b) at point P2.A single charged ion of oxygen-16 (with a mass of 2.68×10-26 kg), moves at constant velocity through a velocity selector with the electric field E= 4x104 N/C. When the electric field is turned off, the ion travels in a circular path of radius 1.33 mm. Determine the magnetic field in the selector (in T). Enter your answer with two digits after the decimal point.magnetic fields Problem 19: Consider the two wires in the figure, running at a right angle to each other. The wires carry the same current I = 6.5 mA, in the directions shown. The distances shown are d1 = 31 cm and d2 = 11.5 cm. Part (a) What is the magnitude of the magnetic field, in tesla, at point A? Part (b) What is the magnitude of the magnetic field, in tesla, at point B? Part (c) What is the magnitude of the magnetic field, in tesla, at point C?