What is the equation of the line normal to #f(x)=-2x^2 +3x - 4 # at #x=-2#?
1 Answer
May 27, 2016
#y=-1/11x-18 2/11#
Explanation:
Given -
#y=-2x^2+3x-4#
The first derivative gives the slope at any given point
#dy/dx=-4x+3#
At
#dy/dx=-4(-2)+3=8+3=11#
It can be taken as the slope of the Tangent, drawn to that point on the curve.
Y- co-ordinate of the point -
#y=-2(-2)^2+3(-2)-4#
#y=-8-6-4=-18#
The point on the curve, the normal passing through is
If the two lines are perpendicular then -
#m_2 xxm_2=-1#
#11 xx m_2=-1#
#m_2=(-1)/11#
The equation of the normal is -
#mx+c = y#
#-1/11(-2)+c=-18#
#2/11+c=-18#
#c=-18-2/11=18 2/11#
Equation is -
#y=-1/11x-18 2/11#
