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Explanation for Calculus question needed (1 Viewer)

jessnguyen3

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The acceleration a ms^-2 of a particle P moving in a straight line is given by a = 3(1-x^2) , where x metres is the displacement of the particle to the right of the origin. Initially the particle is at the origin moving with a velocity of 4ms^-1. Show that the velocity vms^-1 of the particle is given by v^2 = 16+6x-2x^3.
 

integral95

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You need to use the concept



From there you integrate with respect to x then find the constant with the initial condition then multiply both sides by 2.
 

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