The line (k-2)y = 3x meets the curve xy= 1 -x at two distinct points, Find the set of values of k. State also the values of k if the line is a tangent to the curve. How to find it?

Question

The answers from the book is
k<-10 or k>2

1105 views around the world

You can reuse this answer
Creative Commons License

Answer 1 · 2018-02-28T12:56:49

the equation of the line can be rewritten as
#((k-2)y)/3 = x#

Substituting the value of x in the equation of the curve,

#(((k-2)y)/3)y = 1-((k-2)y)/3#

let #k-2 = a#

#(y^2a)/3 = (3-ya)/3#

#y^2a+ya-3=0#

Since the line intersects at two different points, the discriminant of the above equation must be greater than zero.

#D = a^2-4(-3)(a)>0#

#a[a+12]>0#

The range of #a# comes out to be,
#a in (-oo,-12)uu(0,oo)#

therefore,

#(k-2) in (-oo,-12)uu(2,oo)#

Adding 2 to both sides,

#k in (-oo,-10),(2,oo)#

If the line has to be a tangent, the discriminant must be zero, because it only touches the curve at one point,

#a[a+12] = 0#

#(k-2)[k-2+12]=0#

So, the values of #k# are #2# and #-10#