Three resistor 4 Omega, 6 Omega and 8 Omega, are combined in parallel.If the combination is connected to a battery of emf 25 V and negligible Internal resistance, then determine the current through each resistor and total current drawn from the battery.

Three resistor 4 Omega, 6 Omega and 8 Omega, are combined in parallel.

1.	Three resistor 4 Omega, 6 Omega and 8 Omega, are combined in parallel.If the combination is connected to a battery of emf 25 V and negligible Internal resistance, then determine the current through each resistor and total current drawn from the battery.
Answer» SOLUTION :Given : `R_(1)=4 Omega, R_(2) = 6 Omega,R_(3)= 8OmegaV= EPSILON= 25 V, r=0` a. the total resistance of the PARALLEL COMBINATION `(1)/(R_(rho))=(1)/(R_(1))+(1)/(R_(2))+(1)/(R_(3))` `(1)/(R_(rho))=(1)/(4)+(1)/(6)+(1)/(8)` `(1)/(R_(rho))=(6+4+3)/(24)=(13)/(24)` `R_(rho)=(24)/(13)=1.846 Omega` B. The current through `4 Omega` is `I_(1)=(V)/(R_(1))=(25)/(4)` `I_(1)= 6.25 A` The current through `6 Omega`is `I_(2) = (V)/(R_(2))=(25)/(6)=4.16` A The current through `8 Omega` is`I_(3)=(V)/(R_(3))=(25)/(8) ` `I_(3)= 3.125` Total current drawn from the batter is `1=1_(1)+1_(2)+1_(3)=6.25+4.16+3.125` 1=13.535 A

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Three resistor 4 Omega, 6 Omega and 8 Omega, are combined in parallel.If the combination is connected to a battery of emf 25 V and negligible Internal resistance, then determine the current through each resistor and total current drawn from the battery.

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