InterviewSolution
Saved Bookmarks
| 1. |
A cell of constant emf first connected to a resistance `R_(1)` and then connected to resistance `R_(2)`. If power deliverd in both cases is same, then the internal resistance of the cell isA. `sqrt(R_(1)R_(2))`B. `sqrt((R_(1))/(R_(2)))`C. `(R_(1)-R_(2))/(2)`D. `(R_(1)+R_(2))/(2)` |
|
Answer» Correct Answer - A Current given by cell `l= E/(R+r)` Power delivered in firstcase ltbegt `P_(1)=l^(2)R_(1)=((E )/(R_(1)+r))^(2)R_(1)` Power delivered in first case `P_(2)=l^(2)R_(2)=((E )/(R_(2)+r))^(2)R_(2)` Power delivered is same in the both cases. `((E )/(R_(1)+r))^(2)R_(1)=((E )/(R_(2)+r))^(2)R_(2)`ltbegt `((E )/(R_(1)+r))^(2)R_(1)=((E )/(R_(2)+r))^(2)R_(2)` `R_(1)(R_(2)^(2)+r^(2)+2R_(2)r)=R_(2)(R_(1)^(2)+r^(2)+2R_(1)r)` `R_(1)R_(2)^(2)+R_(1)r^(2)+2R_(1)R_(2)r=R_(2)R_(1)^(2)+R_(2)r^(2)+2R_(1)R_(1)r` `R_(1)R_(2)^(2)-R_(2)R_(1)^(2)=R_(2)R_(1)^(2)-R_(1)r^(2)` `R_(1)R_(2)(R_(2)-R_(1))=r^(2)(R^(2)-R_(1))` `r=sqrtR_(1)R_(2)` |
|