题目内容
质点做直线运动,其位移随时间变化的函数关系是s=4t+2t2(s的单位为m,t的单位为s),则它运动的初速度v0和加速度a分别是( )
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(12分)一质点沿直线运动,其速度随时间变化的情况如图所示,设向右为正方向。由图求:
(1)质点在AB、BC分别做什么运动?
(2)质点在OA段的加速度
(3)质点在8s内的位移
试题答案
D质点做直线运动,其位移随时间变化的函数关系是:s = 4t-2t2(式中s的单位为m ,t的单位为s),则该质点运动的初速度v0和加速度a分别是
| A.v0 = 2m/s,a =﹣4m/s2 | B.v0 =" 4m/s" ,a =﹣2m/s2 |
| C.v0 =" 4m/s" ,a = 4m/s2 | D.v0 =" 4m/s" ,a =﹣4m/s2 |
质点做直线运动,其位移随时间变化的函数关系是:s = 4t-2t2(式中s的单位为m ,t的单位为s),则该质点运动的初速度v0和加速度a分别是
A.v0 = 2m/s,a =﹣4m/s2 B.v0 =" 4m/s" ,a =﹣2m/s2
C.v0 =" 4m/s" ,a = 4m/s2 D.v0 =" 4m/s" ,a =﹣4m/s2
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| A.v0=0,a=4m/s2 | B.v0=4m/s,a=2m/s2 |
| C.v0=4m/s,a=1m/s2 | D.v0=4m/s,a=4m/s2 |
| A.v0 = 2m/s,a =﹣4m/s2 | B.v0 =" 4m/s" ,a =﹣2m/s2 |
| C.v0 =" 4m/s" ,a = 4m/s2 | D.v0 =" 4m/s" ,a =﹣4m/s2 |
