题目内容


如图所示,在光滑绝缘竖直细杆上,套有一小孔的带电小球,小球质量为m,带电荷量为﹣q,杆与以正电荷Q为圆心的某一圆周交于BC两点,小球从A点无初速释放,AB=BC=h,小球滑到B点时速度大小为,已知q远小于Q,求:                                                                                                                                

①AB两点间的电势差;                                                                                              

②AC两点间的电势差;                                                                                              

③小球滑到C点时速度的大小.                                                                                  

                                                                                                             

                                                                                                                                   


解:(1)小球由A到B重力和电场力做功,由动能定理得         

mgh+WAB=mv2﹣0                          

代入数据解得WAB=mgh 

故AB两点间的电势差为:

(2)由电势差的定义得:

UAC=UAB=

代入数据解得:

UAC=

(3)小球由A到C由动能定理得                

2mgh+WAB=mvc2﹣0                          

代入数据解得:

vC=

答:(1)AB两点间的电势差为

(2)A、C两点间的电势差为

(3)小球下滑到C点时速度大小为


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