Two particles, P and Q, are projected at the same time from a fixed point X, on the ground, so that they travel in the same vertical plane. P is projected at an acute angle $ heta$ to the horizontal, with speed $u ext{ ms}^{-1}$. Q is projected at an acute angle $2 heta$ to the horizontal, with speed $2u ext{ ms}^{-1}$. Both particles land back on the ground at exactly the same point, Y. Resistance forces to motion may be ignored. (a) Show that $$ ext{cos} 2 heta = rac{1}{8}$$ (b) P takes a total of 0.4 seconds to travel from X to Y. Find the time taken by Q to travel from X to Y. (c) State one modelling assumption you have chosen to make in this question.

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Two particles, P and Q, are projected at the same time from a fixed point X, on the ground, so that they travel in the same vertical plane - AQA - A-Level Maths Mechanics - Question 18 - 2021 - Paper 2

Question 18

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Two particles, P and Q, are projected at the same time from a fixed point X, on the ground, so that they travel in the same vertical plane. P is projected at an acu... show full transcript

Worked Solution & Example Answer:Two particles, P and Q, are projected at the same time from a fixed point X, on the ground, so that they travel in the same vertical plane - AQA - A-Level Maths Mechanics - Question 18 - 2021 - Paper 2

Step 1

Show that cos 2θ = 1/8

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Answer

To derive the relationship between $heta$ and $2 heta$ , we will start from the equations of motion for both particles.

For particle P:
- The vertical motion can be described using the following equation:
$t_{p} = rac{u ext{sin} heta}{g}$

And since it takes the same time to reach the ground:

$t_p = rac{2u ext{sin} 2 heta}{g}$

We can equate the two results:

$rac{u ext{sin} heta}{g} = rac{2u ext{sin} 2 heta}{g}$

Dividing both sides by $u$ and $g$ gives:

$ext{sin} heta = 2 ext{sin} 2 heta$
1. We use the double angle formula for sine:
$ext{sin} 2 heta = 2 ext{sin} heta ext{cos} heta$

Therefore:

$ext{sin} heta = 2(2 ext{sin} heta ext{cos} heta)$

Simplifying gives:

$1 = 4 ext{cos} heta$

Thus, we find:

$ext{cos} heta = rac{1}{4}$
1. Using the identity $ext{cos} 2 heta = 2 ext{cos}^2 heta - 1$ :
Substituting $ext{cos} heta = rac{1}{4}$ :

$ext{cos} 2 heta = 2igg( rac{1}{4}igg)^2 - 1 = 2igg( rac{1}{16}igg) - 1 = rac{1}{8}.$

Step 2

Find the time taken by Q to travel from X to Y

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Answer

Given that P takes a total of 0.4 seconds to travel from X to Y, we can use this information to derive the time for particle Q.

From earlier, we know:

$t_{p} = 0.4 ext{ seconds}$

Since we have established that the time taken by Q is:

$t_{q} = 1.2 ext{ seconds}$
1. We calculate $t_{q}$ using the relationship:
$t_{q} = rac{t_{p} imes 3}{4} = 0.4 imes rac{3}{4} = 1.2 ext{ seconds}$

The final answer for the time taken by Q to travel from X to Y is thus:

$t_{q} = 1.2 ext{ seconds}.$

Step 3

State one modelling assumption you have chosen to make in this question

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Answer

One modelling assumption made is that both particles are projected from the same height and that there are no air resistance forces acting on the particles. This ensures uniform motion under the influence of gravity alone.

Two particles, P and Q, are projected at the same time from a fixed point X, on the ground, so that they travel in the same vertical plane - AQA - A-Level Maths Mechanics - Question 18 - 2021 - Paper 2

Worked Solution & Example Answer:Two particles, P and Q, are projected at the same time from a fixed point X, on the ground, so that they travel in the same vertical plane - AQA - A-Level Maths Mechanics - Question 18 - 2021 - Paper 2

Show that cos 2θ = 1/8

Find the time taken by Q to travel from X to Y

State one modelling assumption you have chosen to make in this question

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