Show that
$$\frac{6x^3}{9x^2 - 144} \div \frac{2x^4}{3(x - 4)}$$
can be written in the form
$$\frac{1}{x(x + r)}$$
where r is an integer. - Edexcel - GCSE Maths - Question 23 - 2021 - Paper 3
Question 23
Show that
$$\frac{6x^3}{9x^2 - 144} \div \frac{2x^4}{3(x - 4)}$$
can be written in the form
$$\frac{1}{x(x + r)}$$
where r is an integer.
Worked Solution & Example Answer:Show that
$$\frac{6x^3}{9x^2 - 144} \div \frac{2x^4}{3(x - 4)}$$
can be written in the form
$$\frac{1}{x(x + r)}$$
where r is an integer. - Edexcel - GCSE Maths - Question 23 - 2021 - Paper 3
Step 1
Inverting the fractions and multiplying
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Answer
To show the expression can be written in the desired form, we start by rewriting the division of fractions as multiplication by the reciprocal:
9x2−1446x3×2x43(x−4)
This simplifies to:
9x2−144×2x46x3×3(x−4)
Step 2
Factoring the denominator
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Answer
Next, we factor the denominator. The expression 9x2−144 can be factored as follows:
9x2−144=9(x2−16)=9(x−4)(x+4)
Substituting this back into our expression gives us:
9×(x−4)(x+4)×2x46x3×3(x−4)
Step 3
Simplifying the expression
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Answer
Now, we can simplify the expression. Cancel the common factors of (x−4):
9×2x4(x+4)6x3×3=18x4(x+4)18x3
This simplifies to:
x(x+4)1
Thus, we can conclude that r=4, which is indeed an integer.
