What is the second derivative of #y=x*sqrt(16-x^2)#?
1 Answer
Explanation:
Start by calculating the first derivative of your function
This will get you
#d/dx(y) = [d/dx(x)] * sqrt(16 - x^2) + x * d/dx(sqrt(16 - x^2))#
You can differentiate
#d/dx(sqrt(u)) = d/(du)sqrt(u) * d/dx(u)#
#d/dx(sqrt(u)) = 1/2 * 1/sqrt(u) * d/dx(16-x^2)#
#d/dx(sqrt(16-x^2)) = 1/color(red)(cancel(color(black)(2))) * 1/sqrt(16-x^2) * (-color(red)(cancel(color(black)(2)))x)#
#d/dx(sqrt(1-x^2)) = -x/sqrt(16-x^2)#
Plug this back into your calculation of
#y^' = 1 * sqrt(16-x^2) + x * (-x/sqrt(16-x^2))#
#y^' = 1/sqrt(16-x^2) * (16-x^2 - x^2)#
#y^' = (2(8-x^2))/sqrt(16-x^2)#
To find
#d/dx(y^') = 2 * ([d/dx(8-x^2)] * sqrt(16-x^2) - (8-x^2) * d/dx(sqrt(16-x^2)))/(sqrt(16-x^2))^2#
#y^('') = 2 * (-2x * sqrt(16-x^2) - (8-x^2) * (-x/sqrt(16-x^2)))/(16-x^2)#
#y^('') = 2 * (1/sqrt(16-x^2) * [-2x * (16-x^2) +x * (8-x^2)])/(16-x^2)#
#y^('') = 2/(sqrt(16-x^2) * (16-x^2)) * (-32x + 2x^3 + 8x - x^3)#
Finally, you have
#y^('') = color(green)((2 * x(x^2 - 24))/((16-x^2) * sqrt(16-x^2)))#