A lifeboat slides down a straight ramp inclined at an angle of 15° to the horizontal - Edexcel - A-Level Maths Mechanics - Question 4 - 2013 - Paper 1

The net force acting on the lifeboat along the ramp can be expressed as:

$F = mg \sin(\theta) - f$

Where:

• m = mass of the lifeboat = 800 kg
• g = acceleration due to gravity = 9.81 m/s²
• $\theta$ = angle of inclination = 15°
• f = frictional force = $\mu R$.

The normal force (R) acting on the lifeboat is:

$R = mg \cos(\theta) = 800 \cdot 9.81 \cdot \cos(15°)$

Substituting in the equations:

$800g \sin(15°) - \mu (800g \cos(15°)) = 800a$

We know $a = 1.5876$ m/s². Plugging values for g:

$800 \cdot 9.81 \cdot \sin(15°) - \mu (800 \cdot 9.81 \cdot \cos(15°)) = 800 \cdot 1.5876$

We can simplify and solve for the coefficient of friction ($\mu$). Rearranging gives us:

$\mu = \frac{800 \cdot 9.81 \sin(15°) - 800 \cdot 1.5876}{800 \cdot 9.81 \cos(15°)}$