题目内容


如图甲,某次电梯性能测试中,将一重物置于压力传感器上.电梯在竖直方向上由静止开始运动并计时的v﹣t图象如图乙,其中最大速度没有标出,压力传感器的F﹣t图象如图丙,3s﹣5s内对应的压力也没有标出.求(g取10m/s2)                                                                                                                                             

(1)0~3s内电梯的位移大小.                                                                                      

(2)3s~5s内电梯是在上升还是在下降?此过程中,压力传感器读数为多少?                                

                                        

                                                                                                                                       


(1)1s﹣3s内匀速运动可知:mg=F  

得:m=10kg

0﹣1s内物体加速运动,且由图丙可知物体处于超重状态,则物体向上做匀加速直线运动

a1==10m/s2

1s后速度为v1=a1t1=10m/s

所以,电梯在0﹣3s内位移为s=a1t12+v1t2=25m

(2)由乙图可知3s﹣5s内,物体在减速上升.

其加速度为a2==﹣5m/s2

此时,F2﹣mg=ma2

则:F2=50N

答:(1)0~3s内电梯的位移大小25m.

(2)3s~5s内电梯是在上升,此过程中,压力传感器读数为50N.


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