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rainnwind

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For a particle moving along the x-axis, a=2x^3 - 10x. When x=4, v=(105)^1/2, show that x>3
 

Timothy.Siu

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For a particle moving along the x-axis, a=2x^3 - 10x. When x=4, v=(105)^1/2, show that x>3
is this a 2unit question?

a=v(dv/dx)=2x^3-10x

0.5v^2=0.5x^4-5x^2+C
v^2=x^4-10x^2+K
v=(105)^1/2 x=4 soo
105=256-160+k
K=9
v^2=x^4-10x^2+9=(x^2-9)(x^2-1)
v^2=(x+3)(x-3)(x+1)(x-1)

hmm...this gives me x<-3 -1<x<1 x>3
since v^2>0
someone else can do it then.
 

lolokay

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timothy, you've basically got it all right
x<-3, -1 < x < 1 or x > 3, but as x=4 lies on the particle's motion, it must satisfy x > 3
 

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