题目内容


两根固定在水平面上的光滑平行金属导轨MNPQ,一端接有阻值为R=4Ω的电阻,处于方向竖直向下的匀强磁场中.在导轨上垂直导轨跨放质量m=0.5kg的金属直杆,金属杆的电阻为r=1Ω,金属杆与导轨接触良好,导轨足够长且电阻不计.金属杆在垂直杆F=0.5N的水平恒力作用下向右匀速运动时,电阻R上的电功率是P=4W.

   (1)求通过电阻R的电流的大小和方向;

   (2)求金属杆的速度大小;

   (3)某时刻撤去拉力,当电阻R上的电功率为时,金属杆的加速度大小、方向.


(1)P=I2R                                                                            2分

I=1A                                                                                                                                                   1分

方向MP                                                2分

(2)Fv=I2R+r)                                                                       2分

v=10m/s                                                             2

或者:

F=BIL                                               1分       

BL=0.5Tm                                         1分

BLv=IR+r)                                          1分

v=10m/s                                             1分         

(3),                                                                                                                   1      

                                                            1分

                                                                     2分

a=0.5m/s2                                                                     1分

方向向左                                                  1分


练习册系列答案
相关题目

违法和不良信息举报电话:027-86699610 举报邮箱:58377363@163.com

精英家教网