Using the following diagrams, show the directions [in Figure] of (1) Induced Magnetic Field (Band) and (2) Induced-Current (lind) for the circular loop and rectangular loop, in the following terms: (1) Right; (2) Left; (3) Up; (4) Down; (5) Clock Wise; (6) Counter Clock Wise; (7) Into the page; (8) Out of the page. Current is decreasing downwardly The loop is pushed into the field O Consider a capacitor of capacitance C (25 µF) that is being discharged through a resistor R (100 KS). Find after how many time constants is the charge on the capacitor one-third of its initial value. q=qo exp (-t/t), where t = RC

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Chapter13: Electromagnetic Induction
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Using the following diagrams, show the directions [in Figure] of
(1) Induced Magnetic Field (Band) and
(2) Induced-Current (lind)
for the circular loop and rectangular loop, in the following terms: (1) Right; (2) Left; (3) Up; (4) Down; (5)
Clock Wise; (6) Counter Clock Wise; (7) Into the page; (8) Out of the page.
Current is decreasing downwardly
The loop is pushed into the field
O
Consider a capacitor of capacitance C (25 µF) that is being discharged through a resistor R (100 KS). Find after how many
time constants is the charge on the capacitor one-third of its initial value.
q=qo exp (-t/t), where t = RC
Transcribed Image Text:Using the following diagrams, show the directions [in Figure] of (1) Induced Magnetic Field (Band) and (2) Induced-Current (lind) for the circular loop and rectangular loop, in the following terms: (1) Right; (2) Left; (3) Up; (4) Down; (5) Clock Wise; (6) Counter Clock Wise; (7) Into the page; (8) Out of the page. Current is decreasing downwardly The loop is pushed into the field O Consider a capacitor of capacitance C (25 µF) that is being discharged through a resistor R (100 KS). Find after how many time constants is the charge on the capacitor one-third of its initial value. q=qo exp (-t/t), where t = RC
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