91Ó°ÊÓ

Equations of motion are essential for describing the movement of objects under uniform acceleration. In the given problem, the key equations help us to determine how far the car travels and its deceleration. These equations assume that acceleration is constant.
One of the primary equations used in this context is:

• \[v = v_0 + at\]

Here, \(v\) is the final velocity, \(v_0\) is the initial velocity, \(a\) is the acceleration, and \(t\) is the time. This equation is used to find acceleration when time and velocities are known.
Another essential equation is:

• \[v^2 = v_0^2 + 2ax\]

This equation helps calculate the distance (\(x\)) once you know the initial and final velocities and the acceleration. In the exercise, these equations allowed us to find how far the car traveled and its deceleration.

Before applying the equations of motion, the initial velocity must be in an appropriate unit. In physics, especially when dealing with the equations of motion, converting velocities to meters per second (m/s) is common.
The original velocity of the car is given as 60.0 km/h. To convert this to m/s:

• Multiply by \(1000\) to convert kilometers to meters.
• Divide by \(3600\) to convert hours to seconds.

The resulting conversion is: \[v_0 = 60.0 \frac{km}{h} \cdot \frac{1000 \, m}{1 \, km} \cdot \frac{1 \, h}{3600 \, s} = 16.7 \frac{m}{s}\] This initial step is crucial because all subsequent calculations depend on having the correct unit of measurement for velocity.

To find how far the car travels and its deceleration, we use the equations of motion with the information given. Since the car comes to a stop, its final velocity is zero. The initial velocity and time are already provided.
First, we determined the deceleration (\(a\)) using the formula \(v = v_0 + at\). By substituting \(v = 0\), \(v_0 = 16.7 \ m/s\), and \(t = 4.00 \ s\):

• \[0 = 16.7 \frac{m}{s} + a \times 4.00 \ s\]

Solving gives: \[a = -\frac{16.7 \frac{m}{s}}{4.00 \ s} = -4.18 \frac{m}{s^2}\] The negative sign indicates deceleration.
Then, using the equation \(v^2 = v_0^2 + 2ax\) and substituting the known values:

• \[0 = (16.7 \ m/s)^2 + 2 \times (-4.18 \ m/s^2) \times x\]

We find: \[x = \frac{(16.7 \ m/s)^2}{2 \times 4.18 \ m/s^2} = 33.4 \ m\] This calculation shows that the car travels 33.4 meters while stopping, with a deceleration of \(-4.18 \ m/s^2\).