题目内容


在竖直的井底,将一物块以11m/s的初速度竖直向上抛出,物体冲出井口再落回到井口时被人接住,在被人接住前1s内物体的位移是4m,位移方向向上,不计空气阻力,取g=10m/s2.求:                            

(1)物体从抛出点到被人接住所经历的时间;                                                           

(2)竖直井的深度.                                                                                                  

                                                                                                                                   


(1)设最后1s内的平均速度为:

则:m/s

平均速度等于中间时刻的瞬时速度,即接住前0.5s的速度为v1=4m/s

设物体被接住前1s的速度为v2:则v1=v2﹣gt得:v2=4+10×0.5=9m/s,

则物体从抛出点到被人接住所经历的时间t=+1=+1=1.2s;

(2)竖直井的深度即抛出到接住物块的位移,则

h=v0t﹣gt2=11×1.2﹣×10×1.22=6m.

答:(1)物体从抛出点到被人接住所经历的时间为1.2s

(2)竖直井的深度为6m.


练习册系列答案
相关题目

(1)图1游标卡尺读数为                                                                               mm.    

(2)某兴趣小组的同学利用如图2所示的实验装置,测量木块与长木板之间的动摩擦因数,图中长木板水平固定.                                                                                                                                    

①实验过程中,打点计时器应接在交流电源上,调整定滑轮的高度,使绳子拉力方向跟平板平行.                        

②已知重力加速度为g,测得木块的质量为M,                                                         

砝码盘和砝码的总质量为m,砝码盘、砝码和木块                                                    

的加速度大小为a,则木块与长木板之间的动摩擦                                                      

因数μ=                                                                                                           .       

③实验时,某同学得到一条纸带,如图3所示,每隔三个计时点取一个计数点,记为图中0、1、2、3、4、5、6点.测得相邻两个计数点间的距离分别为s1=0.96cm,s2=2.88cm,s3=4.80cm,s4=6.72cm,s5=8.64cm,s6=10.56cm,打点计时器的电源频率为50Hz.计算此纸带的加速度大小a=                                                   m/s2,打计数点“4”时纸带的速度大小v=                                         m/s.(保留两位有效数字)

                          

                                                                                                                                 

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