| Pc |
| Uc |
| 0.15 |
| 1.5 |
灯B的电流为:IB=
| PB |
| UB |
| 0.075 |
| 1.5 |
灯A的电流为:IA=
| PA |
| UA |
| 0.1 |
| 2 |
变阻器右边部分的电阻为:R右=
| E− Ic r− Uc −UA |
| Ic |
代入以上数据解得:R右=20Ω
变阻器左边部分的电阻为:R左=
| U A −UB |
| IB |
| 2−1.5 |
| 0.05 |
故:R0=R左+R右=30Ω
所以滑动触头P应在据左端
| 1 |
| 3 |
答:变阻器R0的阻值应为30Ω;滑动触头P应在据左端
| 1 |
| 3 |
| Pc |
| Uc |
| 0.15 |
| 1.5 |
| PB |
| UB |
| 0.075 |
| 1.5 |
| PA |
| UA |
| 0.1 |
| 2 |
| E− Ic r− Uc −UA |
| Ic |
| U A −UB |
| IB |
| 2−1.5 |
| 0.05 |
| 1 |
| 3 |
| 1 |
| 3 |