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A 110 V power line is protected by a 15 A fuse. What is the maximum number of 400 W lamps that can be simultaneously operated in parallel on this line without "blowing" the fuse because of an excess of
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A 110 V power line is protected by a 15 A fuse. What is the maximum number of 400 W lamps that can be simultaneously operated in parallel on this line without "blowing" the fuse because of an excess of current

User Omilke
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1 Answer

4 votes

Answer:

Total number of lamps will be 4

Step-by-step explanation:

We have given power of the lamp W = 400 watt

Potential difference across the lamp V=110 volt

We know that power is equal to
P=VI

So
400=110* I


I=3.636A

Total current is given 15 A

As it is given that lamps are connected in parallel so total current is the sum of current through each lamp

So number of lamp will be
n=(15)/(3.636)=4.125

As the lamp can not be in negative

So total number of lamps will be 4

User Intelekshual
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