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A cardiac defibrillator stores 1275 J of energy when it is charged to 5.6kV What is the capacitance? O 11.3 pF 96.1 pF O 813 F
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A cardiac defibrillator stores 1275 J of energy when it is charged to 5.6kV What is the capacitance? O 11.3 pF 96.1 pF O 813 F

User Salmen Bejaoui
by
5.1k points

1 Answer

7 votes

Answer:
813.13(10)^(-7)F

Step-by-step explanation:

The answer is not among the given options. However, this is a good example of the relation between the energy stored in a capacitor
Wand its capacitance
C, which is given by the following equation:


W=(1)/(2)CV^(2) (1)

Where:


W=1275J


V=5.6kV=5.6(10)^(3)V is the voltage


C is the capacitance in Farads, the value we want to find

Isolating
C from (1):


C=(2W)/(V^(2)) (2)


C=(2(1275J))/((5.6(10)^(3)V)^(2)) (3)

Finally:


C=0.000081313F=813.13(10)^(-7)F This is the capacitance of the cardiac defibrillator

User Pierrebo
by
6.0k points
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