一道英文的微积分题
Aparticlemoveswithvelocityv(t)=6e^-2tfor0t5.Findthetotaldistancetravelledbytheparti...
A particle moves with velocity v(t) = 6e^-2t for 0 t 5. Find the total distance travelled by the
particle. What is the acceleration of the particle at the end of 4 seconds? Assuming that at t = 0 the
particle was at the origin, nd the position of the particle at the end of 2 seconds.
不知道该怎么做,麻烦帮帮忙!谢谢! 展开
particle. What is the acceleration of the particle at the end of 4 seconds? Assuming that at t = 0 the
particle was at the origin, nd the position of the particle at the end of 2 seconds.
不知道该怎么做,麻烦帮帮忙!谢谢! 展开
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V(t)=6e^(-2t) (0<=t<=5)
4秒后的加速度a=V'(t)=-12e^(-2t)=-12e^(-2*4)=-12e^(-8)
V(0)=6时视为在原点,2秒后的位置:
S(t)=∫V(t)dt=∫6e^(-2t)dt=-3e^(-2t)
当t=0时,S=-3, (原点)
2秒后即t=2时,
S=(V0)t+(1/2)at²
=6t+(1/2)[-12e^(-2t)]t²
=12+(1/2)(-12e^-4)*4
=12-24e^(-4)
即离原点距离为 12-24e^(-4)-(-3)=15-24e^(-4)
4秒后的加速度a=V'(t)=-12e^(-2t)=-12e^(-2*4)=-12e^(-8)
V(0)=6时视为在原点,2秒后的位置:
S(t)=∫V(t)dt=∫6e^(-2t)dt=-3e^(-2t)
当t=0时,S=-3, (原点)
2秒后即t=2时,
S=(V0)t+(1/2)at²
=6t+(1/2)[-12e^(-2t)]t²
=12+(1/2)(-12e^-4)*4
=12-24e^(-4)
即离原点距离为 12-24e^(-4)-(-3)=15-24e^(-4)
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能不能麻烦你这道题也看看,谢谢你了!http://zhidao.baidu.com/question/1603742955509916227.html?quesup2&oldq=1
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