Question

**Determine all the values of the parameter m for which the operation: ** `4x^2-6mx+(2m+3)(m-3)` has TWO different real solutions. `x_1<x_2` `(4x_1-4x_2-1)(4x_1-4x_2+1)<0` ?

`4x^2-6mx+(2m+3)(m-3)`

`x_1<x_2`

`(4x_1-4x_2-1)(4x_1-4x_2+1)<0`

Answer 1

`m < -13/2` or `-1/6 < m`

Explanation:

Solving for `x`

`4 x^2 - 6 m x + (2 m + 3) (m - 3) = 0`

we obtain

`{(x_1=1/2(m-3)),(x_2=1/2(2m+3)):}`

so

`(4 x_1 - 4 x_2 - 1) (4 x_1 + 4 x_2 + 1) = -(12m^2+80m+13) < 0`

so we will determine `m` such that

`12m^2+80m+13 > 0`

so

`m < -13/2` or `-1/6 < m`