The given pair of linear equations is
kx + 3y = k – 3 ......(i)
12x + ky = k ......(ii)
On comparing the equations (i) and (ii) with ax + by = c = 0,
We get,
a1 = k, b1 = 3, c1 = –(k – 3)
a2 = 12, b2 = k, c2 = – k
Then,
`a_1/a_2 = k/12`
`b_1/b_2 = 3/k`
`c_1/c_2 = (k - 3)/k`
For no solution of the pair of linear equations,
`a_1/a_2 = b_1/b_2 ≠ c_1/c_2`
`k/12 = 3/k ≠ (k - 3)/k`
Taking first two parts, we get
`k/12 = 3/k`
k2 = 36
k = ± 6
Taking last two parts, we get
`3/k ≠ (k - 3)/k`
3k ≠ k(k – 3)
k2 – 6k ≠ 0
So, k ≠ 0, 6
Therefore, value of k for which the given pair of linear equations has no solution is k = – 6.
