Six lead acid type of secondary cells each of emf 2 V and internal resistance 0.015 Ω are joined in series to provide a supply to a 8.5 Ω resistance. The terminal voltage of the battery is

Question

Six lead acid type of secondary cells each of emf 2 V and internal resistance 0.015 Ω are joined in series to provide a supply to a 8.5 Ω resistance. The terminal voltage of the battery is (A) 16.2 V (B) 5.8 V (C) 22.5 V (D) 11.9 V

Tardigrade Admin · Accepted Answer

εe q=(2 × 6) V=12 V r eq =6(0.015) Ω=0.09 Ω i=((ε/R+re q))=(12 V /(8.5+0.09) Ω) V text terminal =ε-i r=12 -((12/8.5+0.09)) 0.09=11.9 V

Q. Six lead acid type of secondary cells each of emf $2 V$ and internal resistance $0.015Ω$ are joined in series to provide a supply to a $8.5Ω$ resistance. The terminal voltage of the battery is

16.2 V

5.8 V

22.5 V

11.9 V

$ε_{e q} = (2 \times 6) V = 12 V$
$r_{e q} = 6 (0.015) Ω = 0.09Ω$
$i = (\frac{ε}{R + r _{e q}}) = \frac{12 V}{( 8.5 + 0.09 ) Ω}$
$V_{terminal} = ε - i r = 12$
$- (\frac{12}{8.5 + 0.09}) 0.09 = 11.9 V$

Q. Six lead acid type of secondary cells each of emf 2V and internal resistance 0.015Ω are joined in series to provide a supply to a 8.5Ω resistance. The terminal voltage of the battery is