一道微积分题目。。。。
Thehigh(inmetres)ofamodelrockettsecondsafterlaunchingisgivenbyh(t)=3t^2untilthefuelru...
The high (in metres) of a model rocket t seconds after launching is given by
h(t)=3t^2
until the fuel runs out after 20s.
(1). find the average velocity of the rocket during each of the first four seconds.
(2). Find (in simplified form) the average velocity during an interval of time △t starting at t=2, t=6, and t=18.
(3). Using the results of part (2), , find the velocity at times t=2, t=6, and t=18
求过程。。。谢谢T T 展开
h(t)=3t^2
until the fuel runs out after 20s.
(1). find the average velocity of the rocket during each of the first four seconds.
(2). Find (in simplified form) the average velocity during an interval of time △t starting at t=2, t=6, and t=18.
(3). Using the results of part (2), , find the velocity at times t=2, t=6, and t=18
求过程。。。谢谢T T 展开
1个回答
展开全部
1、(h(4)-h(0))/4=12(m/s)
2、t=2处,平均速度是(h(2+△t)-h(2))/△t=12+3△t。
t=4处,平均速度是(h(4+△t)-h(4))/△t=24+3△t。
t=6处,平均速度是(h(6+△t)-h(6))/△t=36+3△t。
3、t=2处的瞬时速度是lim(△t→0) (h(2+△t)-h(2))/△t=12
t=4处的瞬时速度是lim(△t→0) (h(4+△t)-h(4))/△t=24
t=6处的瞬时速度是lim(△t→0) (h(6+△t)-h(6))/△t=36
2、t=2处,平均速度是(h(2+△t)-h(2))/△t=12+3△t。
t=4处,平均速度是(h(4+△t)-h(4))/△t=24+3△t。
t=6处,平均速度是(h(6+△t)-h(6))/△t=36+3△t。
3、t=2处的瞬时速度是lim(△t→0) (h(2+△t)-h(2))/△t=12
t=4处的瞬时速度是lim(△t→0) (h(4+△t)-h(4))/△t=24
t=6处的瞬时速度是lim(△t→0) (h(6+△t)-h(6))/△t=36
追问
= =第一个答案不对。。
然后后面是t=2,6,18
本回答由提问者推荐
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
推荐律师服务:
若未解决您的问题,请您详细描述您的问题,通过百度律临进行免费专业咨询
