题目内容


如图所示,有一质量为2kg的小球串在长为L=1m的轻杆顶部,轻杆与水平方向成θ=37°角.若从静止释放小球,则小球经过1s时间下滑到轻杆底端,求:                                                                              

(1)小球在轻杆上滑动的加速度大小?                                                                   

(2)小球与轻杆之间的动摩擦因数为多少?                                                            

(3)若在竖直平面内给小球施加一个垂直于轻杆方向的恒力,静止释放小球后保持它的加速度大小1m/s2,且沿杆向下运动,则这样的恒力大小为多少?                                                                               

( g=l0m/s2,sin37°=0.6,cos37°=0.8)                                                               

                                                                                                      

                                                                                                                                


(1)静止释放小球,根据运动学公式得:

L=at2

得:a===2m/s2

(2)小球下落过程中受到重力、支持力和摩擦力,将重力沿杆的方向和垂直于杆的方向分解,

根据牛顿第二定律得:

mgsinθ﹣f=ma 

mgcosθ=FN

根据摩擦力公式得:f=μFN

解得:μ=0.5

(3)给小球施加一个垂直于轻杆方向的恒力后,小球的加速度为1m/s2,由牛顿第二定律,得:

mgsinθ﹣f1=ma1

解得:f1=10N

杆以球的弹力大小为:N1==20N                        

若F垂直杆向上,则有:

F1=N1+mgcsoθ=20N+16N=36N

若F垂直杆向下,则有:

F2=N1﹣mgcsoθ=20N﹣16N=4N

答:(1)小球在轻杆上滑动的加速度大小是2m/s2

(2)小球与轻杆之间的动摩擦因数为0.5

(3)若在竖直平面内给小球施加一个垂直于轻杆方向的恒力,静止释放小球后保持它的加速度大小1m/s2,且沿杆向下运动,若F垂直杆向上,恒力大小为36N,若F垂直杆向下,恒力大小为4N.


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(1)实验中电压表应选用的量程为                                                              (填0~3V或0~15V);电流表应选用的量程为                                                                                                           填0~0.6A或0~3A);变阻器应选用       

(2)根据实验要求连接实物电路图(图1);                                                                  

(3)实验测得的6组数据已在U﹣I图2中标出,如图2所示.请你根据数据点位置完成U﹣I图线,并由图线求出该电池的电动势E=                                                                                                  V,电阻r= Ω.           

                                                                                                                                       

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