Within the green dashed circle shown in the figure below, the magnetic field changes with time according to the express B = 7.00t³ - 2.00t² + 0.800, where B is in teslas, t is in seconds, and R = 2.65 cm. ***** x x 897 x xx xx x x x x **** ***** P₂ IX R xxxxxx xxxx x x xix Bin n P₁ (a) When t = 2.00 s, calculate the magnitude of the force exerted on an electron located at point P₁, which is at distance = 5.30 cm from the center of the circular field region. N (b) When t = 2.00 s, calculate the direction of the force exerted on an electron located at point P₁, which is at a distance = 5.30 cm from the center of the circular field region. O tangent to the electric field line passing through point P₁ and clockwise tangent to the electric field line passing through point P₁ and counterclockwise O The magnitude is zero. (c) At what instant is this force equal to zero? (Consider the time after t = 0 s.)
Within the green dashed circle shown in the figure below, the magnetic field changes with time according to the express B = 7.00t³ - 2.00t² + 0.800, where B is in teslas, t is in seconds, and R = 2.65 cm. ***** x x 897 x xx xx x x x x **** ***** P₂ IX R xxxxxx xxxx x x xix Bin n P₁ (a) When t = 2.00 s, calculate the magnitude of the force exerted on an electron located at point P₁, which is at distance = 5.30 cm from the center of the circular field region. N (b) When t = 2.00 s, calculate the direction of the force exerted on an electron located at point P₁, which is at a distance = 5.30 cm from the center of the circular field region. O tangent to the electric field line passing through point P₁ and clockwise tangent to the electric field line passing through point P₁ and counterclockwise O The magnitude is zero. (c) At what instant is this force equal to zero? (Consider the time after t = 0 s.)
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ISBN:9781305952300
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Publisher:Raymond A. Serway, Chris Vuille
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![Within the green dashed circle shown in the figure below, the magnetic field changes with time according to the expression
B = 7.00t³ - 2.00t² + 0.800, where B is in teslas, t is in seconds, and R = 2.65 cm.
1
*****
P₂
xxxxx
897
x xx xx x
xxx
*****
xxxxxx
xxxxx
Bin
n
P₁
(a) When t = 2.00 s, calculate the magnitude of the force exerted on an electron located at point P₁, which is at a
distance r
= 5.30 cm from the center of the circular field region.
N
(b) When t = 2.00 s, calculate the direction of the force exerted on an electron located at point P₁, which is at a
distance r₁ = 5.30 cm from the center of the circular field region.
O tangent to the electric field line passing through point P₁ and clockwise
O tangent to the electric field line passing through point P₁ and counterclockwise
O The magnitude is zero.
(c) At what instant is this force equal to zero? (Consider the time after t = 0 s.)](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F1c9a3da8-b443-4c7b-9ddb-d4ba4f71dd14%2F0e37726e-eff3-471d-8831-4f2ea82bc558%2Fms01k_processed.png&w=3840&q=75)
Transcribed Image Text:Within the green dashed circle shown in the figure below, the magnetic field changes with time according to the expression
B = 7.00t³ - 2.00t² + 0.800, where B is in teslas, t is in seconds, and R = 2.65 cm.
1
*****
P₂
xxxxx
897
x xx xx x
xxx
*****
xxxxxx
xxxxx
Bin
n
P₁
(a) When t = 2.00 s, calculate the magnitude of the force exerted on an electron located at point P₁, which is at a
distance r
= 5.30 cm from the center of the circular field region.
N
(b) When t = 2.00 s, calculate the direction of the force exerted on an electron located at point P₁, which is at a
distance r₁ = 5.30 cm from the center of the circular field region.
O tangent to the electric field line passing through point P₁ and clockwise
O tangent to the electric field line passing through point P₁ and counterclockwise
O The magnitude is zero.
(c) At what instant is this force equal to zero? (Consider the time after t = 0 s.)
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