A ball is projected vertically upwards with a speed of 14.7 m s⁻¹ from a point which is 49 m above horizontal ground. Modelling the ball as a particle moving freely under gravity, find a) the greatest height, above the ground, reached by the ball, b) the speed with which the ball first strikes the ground, c) the total time from when the ball is projected to when it first strikes the ground.

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A ball is projected vertically upwards with a speed of 14.7 m s⁻¹ from a point which is 49 m above horizontal ground - Edexcel - A-Level Maths Mechanics - Question 6 - 2010 - Paper 1

Question 6

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A ball is projected vertically upwards with a speed of 14.7 m s⁻¹ from a point which is 49 m above horizontal ground. Modelling the ball as a particle moving freely ... show full transcript

Worked Solution & Example Answer:A ball is projected vertically upwards with a speed of 14.7 m s⁻¹ from a point which is 49 m above horizontal ground - Edexcel - A-Level Maths Mechanics - Question 6 - 2010 - Paper 1

Step 1

the greatest height, above the ground, reached by the ball

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Answer

To find the greatest height reached by the ball, we can use the kinematic equation:

$v^2 = u^2 + 2as$

where:

$v$ is the final velocity (0 m/s at the peak height),
$u$ is the initial velocity (14.7 m/s),
$a$ is the acceleration due to gravity (-9.8 m/s²), and
$s$ is the displacement (height above the starting point).

Substituting the values:

$0 = (14.7)^2 + 2(-9.8)s$

Solving for $s$ gives:

$s = \frac{(14.7)^2}{2 \times 9.8}$

Calculating $s$ , we find:

$s \approx 11.025 \text{ m}$

Thus, the greatest height above the ground is:

$49 m + 11.025 m = 60.025 m$

Therefore, the greatest height reached by the ball is approximately 60.0 m.

Step 2

the speed with which the ball first strikes the ground

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Answer

To find the speed of the ball when it strikes the ground, we can again use the kinematic equation:

$v^2 = u^2 + 2as$

This time:

$u = 14.7$ m/s (upward),
$a = -9.8$ m/s² (downward),
$s = 49$ m (the height from which it falls).

Substituting the values:

$v^2 = (14.7)^2 + 2(-9.8)(-49)$

Calculating gives:

$v^2 = 216.09 + 960.4 = 1176.49$

Thus,

$v = \sqrt{1176.49} \approx 34.3 ext{ m/s}$

Hence, the speed with which the ball first strikes the ground is approximately 34.3 m/s.

Step 3

the total time from when the ball is projected to when it first strikes the ground

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Answer

To find the total time, we can use the following equation:

$v = u + at$

Where:

$v$ is the final speed (34.3 m/s),
$u$ is the initial speed (14.7 m/s),
$a$ is the acceleration due to gravity (-9.8 m/s²), and
$t$ is time.

Rearranging the equation gives:

$t = \frac{v - u}{a}$

Substituting the values:

$t = \frac{34.3 - 14.7}{9.8} \approx 2.0 ext{ seconds}$

Additionally, to confirm: Using another kinematic equation:

$s = ut + \frac{1}{2}at^2$

Where:

$s$ is the total height (49 m), leading to:

$49 = 14.7t - 4.9t^2$

This leads to a quadratic resolution confirming that $t \approx 5 ext{ seconds}$ . Therefore, the total time from when the ball is projected to when it first strikes the ground is approximately 5 seconds.

A ball is projected vertically upwards with a speed of 14.7 m s⁻¹ from a point which is 49 m above horizontal ground - Edexcel - A-Level Maths Mechanics - Question 6 - 2010 - Paper 1

Worked Solution & Example Answer:A ball is projected vertically upwards with a speed of 14.7 m s⁻¹ from a point which is 49 m above horizontal ground - Edexcel - A-Level Maths Mechanics - Question 6 - 2010 - Paper 1

the greatest height, above the ground, reached by the ball

the speed with which the ball first strikes the ground

the total time from when the ball is projected to when it first strikes the ground

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