In this question use $g = 9.8 \, \text{m s}^{-2}$
A rough wooden ramp is 10 metres long and is inclined at an angle of $25^{\circ}$ above the horizontal - AQA - A-Level Maths Pure - Question 19 - 2022 - Paper 2
Question 19
In this question use $g = 9.8 \, \text{m s}^{-2}$
A rough wooden ramp is 10 metres long and is inclined at an angle of $25^{\circ}$ above the horizontal. The bottom... show full transcript
Worked Solution & Example Answer:In this question use $g = 9.8 \, \text{m s}^{-2}$
A rough wooden ramp is 10 metres long and is inclined at an angle of $25^{\circ}$ above the horizontal - AQA - A-Level Maths Pure - Question 19 - 2022 - Paper 2
Step 1
19 (a) Find the coefficient of friction between the crate and the ramp.
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Answer
To find the coefficient of friction, we begin by analyzing the forces acting on the crate. The weight of the crate can be resolved into two components: one parallel to the ramp and one perpendicular to the ramp.
Weight Resolution:
The weight of the crate is given by:
W=mg=20kg×9.8m s−2=196N
The component of the weight parallel to the slope is:
W∥=Wsin(25∘)=196sin(25∘)(approx. 82.4N)
The component of the weight perpendicular to the slope is:
W\perpendicular=Wcos(25∘)=196cos(25∘) (approx. 176.0N)
Applying Newton's Second Law:
The net force equation in the direction along the ramp is:
T−W∥−f=ma
Where:
T is the tension in the rope (230N)
f is the frictional force, which can be expressed as:
f=μR=μ(mgcos(25∘))=μ(196cos(25∘))
Substituting the values into the equation yields:
230−82.4−μ(176.0)=20×1.2
Simplifying gives:
230−82.4−176.0μ=24
Solving for the Coefficient of Friction:
Rearranging the equation:
176.0μ=230−82.4−24176.0μ=123.6μ=176.0123.6approx0.70
Step 2
19 (b) (i) Find the distance OA.
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Answer
To find the distance OA that the crate travels up the ramp during the 3.8 seconds, we can use the equation of motion:
s=ut+21at2
where:
u=0m s−1 (initial velocity)
a=1.2m s−2 (acceleration)
t=3.8s (time)
Substituting the values gives:
s=0×3.8+21×1.2×(3.8)2
Calculating:
s=0+21×1.2×14.44s=0.6×14.44≈8.664 m
Finally, since the ramp is 10 m long, the distance OA is:
OA \approx 1.336 \text{ m} $$
Step 3
19 (b) (ii) State one assumption you have made about the crate in answering part (b)(i).
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Answer
One assumption made in answering part (b)(i) is that the crate can be modeled as a particle. This means that we neglect its rotational effects and treat it as a point mass, simplifying the analysis of motion.