A 6 V battery is connected to the terminals of a three metre long wire of uniform thickness and resistance of 100 Ω . The difference of potential between two points on the wire separated by a distance of 50 cm will be

Question

A 6 V battery is connected to the terminals of a three metre long wire of uniform thickness and resistance of 100 Ω . The difference of potential between two points on the wire separated by a distance of 50 cm will be (A) 2 V (B) 3 V (C) 1 V (D) 1.5 V

Tardigrade Admin · Accepted Answer

Total current drawn from the battery i=(E/R+r)=(6/100+0)=0.06 A Resistance of 50 cm wire is R prime=(ρ l prime/A)=((ρ/A)) l prime =((R/l)) l prime(∵ R=(ρ l/A)) =(100/300) × 50 So, R prime=(50/30) Ω Hence, the potential between two point on the wire spareted by a distance l is V=i R=0.06 × (50/3)=1 V

Q. A 6V battery is connected to the terminals of a three metre long wire of uniform thickness and resistance of 100Ω . The difference of potential between two points on the wire separated by a distance of 50cm will be

2 V

3 V

1 V

1.5 V

Total current drawn from the battery i=R+rE​=100+06​=0.06A Resistance of 50cm wire is R′=Aρl′​=(Aρ​)l′ =(lR​)l′(∵R=Aρl​) =300100​×50 So, R′=3050​Ω Hence, the potential between two point on the wire spareted by a distance l is V=iR=0.06×350​=1V

Q. A $6 V$ battery is connected to the terminals of a three metre long wire of uniform thickness and resistance of $100 Ω$ . The difference of potential between two points on the wire separated by a distance of $50 c m$ will be