| U2 |
| R |
R=
| U2 |
| P |
| (220V)2 |
| 100W |
灯泡的功率为81W时两端的电压:
U实=
| P实R |
| 81W×484Ω |
∵串联电路中各处的电流相等,
∴电路中的电流:
I=
| U实 |
| R |
| 198V |
| 484Ω |
| 9 |
| 22 |
∵串联电路中总电压等于各分电压之和,
∴导线分得的电压:
U线=U-U实=220V-198V=22V,
导线上消耗的电功率:
P线=U线I=22V×
| 9 |
| 22 |
故答案为:9.
| U2 |
| R |
| U2 |
| P |
| (220V)2 |
| 100W |
| P实R |
| 81W×484Ω |
| U实 |
| R |
| 198V |
| 484Ω |
| 9 |
| 22 |
| 9 |
| 22 |