Login or Sign Up

Ask a New Question

Find the point on the curve y = 1/x^2 ,( x > 0 ), where the curvature is maximum.

k = |y"|/(1+y'^2)^(3/2) = (6/x^4)/(1 + 4/x^6)^(3/2)

so, maximum k is where
24(5-x^6)/(x^6+4)^(5/2) = 0
That is, at x = 5^(1/6)
That would make the point (5^(1/6),5^(-1/3))

Similar Questions

1. Given the curvea. Find an expression for the slope of the curve at any point (x, y) on the curve. b. Write an equation for

Top answer: sorry here's the equation: x+xy+2y^2=6 Read more.
1. a.) Find an equation for the line perpendicular to the tangent curve y=x^3 - 9x + 5 at the point (3,5)[* for a. the answer

Top answer: a) correct b) smallest slope ---> minimum slope so set derivative of slope = 0 that is, the 2nd Read more.
sketch the curve using the parametric equation to plot the points. use an arrow to indicate the direction the curve is traced as

Top answer: To sketch the curve using the parametric equation, we need to plot the points for various values of Read more.
Given the curve x^2-xy+y^2=9A) write a general expression for the slope of the curve. B) find the coordinates of the points on

Top answer: A and B are right. C is the second derivative Read more.
Given that x²cos y-sin y=0 ,(0,π):a)verfiy that given point is on the curve. b)use implicit differentiation to find the slope

Top answer: (a) trés simples, non? (b) 2x cosy - x^2 siny y' - cosy y' = 0 y' = (2x cosy)/(cosy + x^2 siny) So, Read more.
a curve ahs parametric equations x=t^2and y= 1-1/2t for t>0. i)find the co-ordinates of the point P where the curve cuts the

Top answer: you could change it to cartesian form ... t^2 = x t = √x y = 1 - (1/2)t 2y = 2 - t t = 2 - 2y so Read more.
. Given that x²cos y_sin y=0,(0,π).A. Verify that the given points on the curve. B.use implicit differention to find the slope

Top answer: check your prior post in the related questions below ... Read more.
Given the curve of C defined by the equation x^2 - 2xy +y^4 =4.1) Find the derivative dy/dx of the curve C by implicit

Top answer: x^2 - 2xy + y^4 =4 2x - 2y - 2xy' + 4y^3 y' = 0 y' = (x-y)/(x-2y^3) Plug in (1,-1) Now find a line Read more.
1. Consider the curve y=x^2.a. write down (dy)/(dx) My answer: 2x The point P(3,9) lies on the curve y=x^2. b. Find the gradient

Top answer: 1. a) and b) are correct c) the normal is perpendicular to the tangent So if the slope of the Read more.
Point P in the curve y=x^3 has coordinates (3,27) and PQ is the tangent to the curve at P.Point Q touches the x-axis.Find the

Top answer: You cannot just integrate on [0,2] to get the area. That ignores the part between the curve and the Read more.