Advertisements
Advertisements
Question
Factorise the following:
3(x – 2y)2 + 4(x – 2y) – 15
Advertisements
Solution
We are given the expression:
3(x – 2y)2 + 4(x – 2y) – 15
Step 1: Substitution for simplification
Let z = (x – 2y).
Substituting this into the expression simplifies it to 3z2 + 4z – 15.
Step 2: Factor the quadratic expression
Now, we need to factor 3z2 + 4z – 15.
We are looking for two numbers that multiply to 3 × (–15) = –45 (the product of the coefficient of z2 and the constant term) and add up to 4 (the coefficient of z).
The two numbers that satisfy this are 9 and –5, because:
9 × (–5) = –45 and 9 + (–5) = 4
Step 3: Rewrite the middle term
We can now rewrite 4z as 9z – 5z:
3z2 + 9z – 5z – 15
Step 4: Group the terms
Now, group the terms in pairs:
(3z2 + 9z) – (5z + 15)
Step 5: Factor each group
Factor out the common factor from each group:
3z(z + 3) – 5(z + 3)
Step 6: Factor out the common binomial
Now, factor out the common binomial factor (z + 3):
(3z – 5) (z + 3)
Step 7: Substitute back for z
Now, substitute z = (x – 2y) back into the factored form:
[3(x – 2y) – 5] [(x – 2y) + 3]
Final factorisation:
Thus, the fully factorised form is (3x – 6y – 5) (x – 2y + 3)
