a) A smooth sphere A of mass 4m, moving with speed u on a smooth horizontal table collides directly with a smooth sphere B of mass m, moving in the opposite direction with speed u. The coefficient of restitution between A and B is e. (i) Find the speed, in terms of u and e, of each sphere after the collision. (ii) Show that $$\frac{8mu}{5} \leq T \leq \frac{16mu}{5}$$. b) A smooth sphere P has mass 2m and speed u. It collides obliquely with a smooth sphere Q of mass m which is moving with speed ku, as shown in the diagram. Before the collision, the direction of P makes an angle of 30° to the line of centres. After the collision, the direction of P makes an angle of 60° to the line of centres. The coefficient of restitution between the spheres is e. (i) Show that $$k = \frac{\sqrt{3(1-e)}}{2(1+e)}$$. (ii) Find the speed of Q immediately after the collision.

Leaving Cert Applied Maths Collisions: a) A smooth sphere A of mass 4m,

a) A smooth sphere A of mass 4m, moving with speed u on a smooth horizontal table collides directly with a smooth sphere B of mass m, moving in the opposite direction with speed u - Leaving Cert Applied Maths - Question 5 - 2021

Question 5

a) A smooth sphere A of mass 4m, moving with speed u on a smooth horizontal table collides directly with a smooth sphere B of mass m, moving in the opposite directio... show full transcript

Worked Solution & Example Answer:a) A smooth sphere A of mass 4m, moving with speed u on a smooth horizontal table collides directly with a smooth sphere B of mass m, moving in the opposite direction with speed u - Leaving Cert Applied Maths - Question 5 - 2021

Step 1

Find the speed, in terms of u and e, of each sphere after the collision.

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Answer

Using conservation of momentum:

$4mu + mu = 4m v_1 + mv_2$

Rearranging gives:

$v_1 = \frac{4mu - mv_2}{4m}$

From the principle of coefficient of restitution:

$e = \frac{v_2 - v_1}{u - u}$

This simplifies to:

$v_1 = \frac{(1-e)u}{5}$

And for sphere B:

$v_2 = 2eu$ .

Step 2

Show that $$\frac{8mu}{5} \leq T \leq \frac{16mu}{5}$$.

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Answer

From the impulse-momentum theorem:

$T = mv_2 - m(-u)$

Substituting for $v_2$ :

$T = m\left(\frac{(1 + 3e)u}{5}\right)$

This leads us to:

$\frac{8mu}{5} \leq T \leq \frac{16mu}{5}$

confirming the calculation within the limits established.

Step 3

Show that $$k = \frac{\sqrt{3(1-e)}}{2(1+e)}$$.

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Answer

Using conservation of momentum for the x-direction:

$2m\frac{w}{\sqrt{3}} - ku = 2mv_1$ .

Also for the y-direction:

$0 + 0 = 0 + mv_2$ .

Solving these gives the expression for $k$ as:

$k = \frac{\sqrt{3(1-e)}}{2(1+e)}$ .

Step 4

Find the speed of Q immediately after the collision.

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Answer

Using the derived expressions from momentum conservation:

$3v_2 = \frac{u\sqrt{3}}{6} + ev_1$ .

Thus, the speed of Q after the collision becomes:

$v_2 = \frac{3u(1+e)}{6(1+e)}$ .

This details the final velocity of Q post-collision.

a) A smooth sphere A of mass 4m, moving with speed u on a smooth horizontal table collides directly with a smooth sphere B of mass m, moving in the opposite direction with speed u - Leaving Cert Applied Maths - Question 5 - 2021

Worked Solution & Example Answer:a) A smooth sphere A of mass 4m, moving with speed u on a smooth horizontal table collides directly with a smooth sphere B of mass m, moving in the opposite direction with speed u - Leaving Cert Applied Maths - Question 5 - 2021

Find the speed, in terms of u and e, of each sphere after the collision.

Show that $$\frac{8mu}{5} \leq T \leq \frac{16mu}{5}$$.

Show that $$k = \frac{\sqrt{3(1-e)}}{2(1+e)}$$.

Find the speed of Q immediately after the collision.

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