Find the value of k so that the graph of the following system of equations has no solution. 3x-2y-12=0 ; kx+6y-10=0

Question

asked Jul 9, 2020 169k views

1 Answer

Mopsyd · Answer 1 · 2020-07-16T07:49:44+0000

Answer:

k = -9

Explanation:

The equations are of the form

ax+by+c=0

Two equations have no solution when

$(a_1)/(a_2)=(b_1)/(b_2)\\eq (c_1)/(c_2)$

3x-2y-12=0 ; kx+6y-10=0

$(3)/(k)=(-2)/(6)\\\Rightarrow k=3* (6)/(-2)\\\Rightarrow k=-9$

(c_1)/(c_2)=(-12)/(-10)=1.2

So,

$(3)/(-9)=(-2)/(6)\\eq 1.2$

Hence, k = -9