A car starts from rest and moves with constant acceleration along a straight horizontal road. The car reaches a speed of $V$ m s$^{-1}$ in 20 seconds. It moves at constant speed $V$ m s$^{-1}$ for the next 30 seconds, then moves with constant deceleration $1/2$ m s$^{-2}$ until it has speed 8 m s$^{-1}$. It moves at speed 8 m s$^{-1}$ for the next 15 seconds and then moves with constant deceleration $1/3$ m s$^{-2}$ until it comes to rest. In the first 20 seconds of this journey the car travels 140 m. Find

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A car starts from rest and moves with constant acceleration along a straight horizontal road - Edexcel - A-Level Maths Mechanics - Question 3 - 2014 - Paper 2

Question 3

A car starts from rest and moves with constant acceleration along a straight horizontal road. The car reaches a speed of $V$ m s$^{-1}$ in 20 seconds. It moves at co... show full transcript

Worked Solution & Example Answer:A car starts from rest and moves with constant acceleration along a straight horizontal road - Edexcel - A-Level Maths Mechanics - Question 3 - 2014 - Paper 2

Step 1

(b) the value of $V$

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Answer

To determine the value of $V$ , we use the formula for distance under uniform acceleration:

$ext{Distance} = rac{1}{2} a t^2$

In the first 20 seconds, the distance travelled is 140 m:

$140 = rac{1}{2} imes rac{V}{20} imes (20)^2$

Solving for $V$ :

$140 = rac{1}{2} imes rac{V}{20} imes 400$

$140 = 10V$

Thus, we find:

$V = 14 ext{ m s}^{-1}$

Step 2

(c) the total time for this journey

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Answer

In this journey, there are three phases:

Acceleration Phase: In the first 20 seconds, the car accelerates to $V$ .
Constant Velocity Phase: The car moves at $V$ for 30 seconds.
Deceleration Phases:
- From $V$ (14 m/s) to 8 m/s with deceleration of $1/2$ m/s²:
  Using $v = u + at$ , $8 = 14 - rac{1}{2}t_1$ $t_1 = 12 ext{ seconds}$
- At 8 m/s for 15 seconds.
- Decelerating from 8 m/s to rest at $1/3$ m/s²: $0 = 8 - rac{1}{3}t_2$ $t_2 = 24 ext{ seconds}$

Thus, total time: $ext{Total Time} = 20 + 30 + 12 + 15 + 24 = 101 ext{ seconds}$

Step 3

(d) the total distance travelled by the car

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Answer

To calculate the total distance travelled, we sum up the distances for all phases:

Acceleration Phase: From rest to $V$ in 20 seconds:
- $140$ m (as given)
Constant Velocity Phase: Distance for 30 seconds at $V$ :
- Distance = $V imes t = 14 ext{ m/s} imes 30 ext{ s} = 420 ext{ m}$
Deceleration from $V$ to 8 m/s:
- Distance = $rac{(14 + 8)}{2} imes t_1 = rac{(14 + 8)}{2} imes 12 = 132 ext{ m}$
Distance at 8 m/s for 15 seconds:
- Distance = $8 imes 15 = 120 ext{ m}$
Deceleration from 8 m/s to rest:
- Distance = $rac{(8 + 0)}{2} imes t_2 = rac{(8 + 0)}{2} imes 24 = 96 ext{ m}$

Thus, total distance: $ext{Total Distance} = 140 + 420 + 132 + 120 + 96 = 908 ext{ m}$

A car starts from rest and moves with constant acceleration along a straight horizontal road - Edexcel - A-Level Maths Mechanics - Question 3 - 2014 - Paper 2

Worked Solution & Example Answer:A car starts from rest and moves with constant acceleration along a straight horizontal road - Edexcel - A-Level Maths Mechanics - Question 3 - 2014 - Paper 2

(b) the value of $V$

(c) the total time for this journey

(d) the total distance travelled by the car

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