一人在塔頂拋下一球,若初速度為29.4m/s 向下,塔高196m,試求:(a)拋出後幾秒鐘,球 恰著地? (b)球恰著地時,速度若干?
回答 (1)
2017-03-14 2:12 pm
Sol
(a)
V=29.4+9.8t
196=29.4t+(1/2)*9.8t^2
4.9t^2+29.4t-196=0
t^2-6t-40=0
(t-10)(t+4)=0
t=10 or t=-4(不合)
(b)
V=29.4+98=127.4 m/s
(a)
V=29.4+9.8t
196=29.4t+(1/2)*9.8t^2
4.9t^2+29.4t-196=0
t^2-6t-40=0
(t-10)(t+4)=0
t=10 or t=-4(不合)
(b)
V=29.4+98=127.4 m/s
收錄日期: 2021-04-30 21:57:58
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