Answer to Question #209257 in Differential Geometry | Topology for eyes

Question #209257

if v=2ti+t^2j+tk,find the position vector r of the particle at t=1 given that the particle initially was at i+2j+2k

Expert's answer

"\\vec v=\\dfrac{d\\vec r}{dt}=2t\\vec i+t^2\\vec j+t\\vec k"

"\\vec r(t)=t^2\\vec i+\\dfrac{t^3}{3}\\vec j+\\dfrac{t^2}{2}\\vec k+\\vec r_0"

"\\vec r(0)=\\vec r_0=\\vec i+2\\vec j+2\\vec k"

"\\vec r(t)=(t^2+1)\\vec i+(\\dfrac{t^3}{3}+2)\\vec j+(\\dfrac{t^2}{2}+2)\\vec k"

"\\vec r(1)=(1+1)\\vec i+(\\dfrac{1}{3}+2)\\vec j+(\\dfrac{1}{2}+2)\\vec k"

"\\vec r(1)=2\\vec i+\\dfrac{7}{3}\\vec j+\\dfrac{5}{2}\\vec k"

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prince

11.07.21, 12:10

good work but its seems to take long