Photo AI

Find the set of values of x for which a) 3(x−2) < 8−2x b) (2x−7)(1+x) < 0 c) both 3(x−2) < 8−2x and (2x−7)(1+x) < 0 - Edexcel - A-Level Maths Pure - Question 5 - 2010 - Paper 1

Question 5

Find the set of values of x for which a) 3(x−2) < 8−2x b) (2x−7)(1+x) < 0 c) both 3(x−2) < 8−2x and (2x−7)(1+x) < 0

Worked Solution & Example Answer:Find the set of values of x for which a) 3(x−2) < 8−2x b) (2x−7)(1+x) < 0 c) both 3(x−2) < 8−2x and (2x−7)(1+x) < 0 - Edexcel - A-Level Maths Pure - Question 5 - 2010 - Paper 1

Step 1

96%

114 rated

Answer

To solve the inequality, we first expand and rearrange:

Answer: $x < 2.8$

Step 2

99%

104 rated

Answer

To solve this inequality, we first identify the critical values where the expression equals zero:

Setting each factor to zero:
- From $2x - 7 = 0$ , we find $x = rac{7}{2}$
- From $1 + x = 0$ , we find $x = -1$
The critical points are $x = -1$ and $x = rac{7}{2}$ . To determine the intervals:
- Test regions: Choose points from the intervals: (-∞, -1), (-1, 3.5), (3.5, ∞).
- Checking these:
  - For $x = -2$ (in (-∞, -1)), $(2(-2)-7)(1-2) = (-11)(-1) > 0$
  - For $x = 0$ (in (-1, 3.5)), $(2(0)-7)(1+0) = (-7)(1) < 0$
  - For $x = 4$ (in (3.5, ∞)), $(2(4)-7)(1+4) = (1)(5) > 0$
The solution is where the product is negative:

Thus, the solution for part (b) is:

Answer: $-1 < x < rac{7}{2}$

Step 3

96%

101 rated

Answer

We need to find the intersection of the solutions to both parts:

From part (a), we have $x < 2.8$ .
From part (b), we have $-1 < x < rac{7}{2}$ .
The intersection of these inequalities is:
- The lower bound is $-1$ and the upper bound is $2.8$ , but since $rac{7}{2} = 3.5$ which is greater than $2.8$ , it does not affect the upper limit. Thus, the combined solution based on the constraints is:

Answer: $-1 < x < 2.8$