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1D Motion graphs We will only consider straight line motion (also called ‘one dimensional’ or ‘linear’ motion). For straight line motion, direction can.

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Presentation on theme: "1D Motion graphs We will only consider straight line motion (also called ‘one dimensional’ or ‘linear’ motion). For straight line motion, direction can."— Presentation transcript:

1 1D Motion graphs We will only consider straight line motion (also called ‘one dimensional’ or ‘linear’ motion). For straight line motion, direction can be indicated with a ‘+’ or ‘-’ sign as long as the positive direction has been specified. This PowerPoint show is designed to accompany (or remind you of) an oral presentation. Without the oral presentation some parts of this PowerPoint show may be meaningless.

2 Position-time graphs Position / m Time / s 02468 10 1214 1 2 3 4 5 On a position-time graph, the gradient gives the velocity. This line has zero gradient, so the velocity is zero.

3 Position / m Time / s 02468 10 1214 1 2 3 4 5 Line A has a gradient of 4/8 = 0.5 m/s. Line A is a steeper line -> higher velocity (forwards). On a position-time graph, the gradient gives the velocity. Line B has a gradient of 4/10 = 0.4 m/s.

4 Position / m Time / s 02468 10 1214 1 2 3 4 5 Negative slope so negative velocity (going backwards). Velocity = gradient = -4/10 = -0.4 m/s

5 Position / m Time / s 0 2468 10 1214 2 4 6 8 10 16 -2 -4 -6 After the first 5 seconds the object moves back behind the zero position. The velocity is constant and negative: v = -12 / 10 = - 1.2 m/s

6 Position / m Time / s 02468 10 1214 1 2 3 4 5 What is the average velocity over the 8 seconds? Over the first six seconds? Over the period t = 8s to t=10s ? V = 4/8 = 0.5 m/s V = 2 / 6 = 0.333 m/s V = 2 / 2 = 1 m/s

7 Position / m Time / s 02468 10 1214 1 2 3 4 5 What is the average velocity over the ten seconds? Over the first four seconds? Over the period t = 4s to t=10s ? V = 5/10 = 0.5 m/s V = 4/4 = 1 m/s V = 1/6 = 0.167 m/s

8 Position / m Time / s 02468 10 1214 1 2 3 4 5 What is the instantaneous velocity at t= 2s? On a position-time graph, instantaneous velocity at any time is the slope of a tangent to the curve at that time. Instantaneous velocity = slope of tangent = (4.3-1.7) / 4 = 0.65 m/s X X

9 Velocity-time graphs Warning: you MUST pay attention to the type of graph (p-t) or (v-t) because this changes EVERYTHING. Use your head to extract the meaning of each graph.

10 Velocity-time graphs Velocity (m/s) Time / s 02468 10 1214 1 2 3 4 5 On a velocity-time graph, the gradient gives the acceleration. Here the gradient is zero, so the acceleration is zero.

11 Velocity (m/s) Time / s 02468 10 1214 1 2 3 4 5 Acceleration = 4 / 10 = 0.4 m/s² On a velocity-time graph, the gradient gives the acceleration.

12 Velocity (m/s) Time / s 02468 10 1214 1 2 3 4 5 In the first four seconds: acceleration = zero In the next 10 seconds: acceleration = -4 / 10 = -0.4 m/s²

13 Velocity (m/s) Time / s 0 2468 10 1214 2 4 6 8 10 16 -2 -4 -6 Velocity is negative (backwards). Acceleration = zero

14 Velocity (m/s) Time / s 0 2468 10 1214 1 2 3 4 5 16 -2 -3 In the first four seconds: acceleration = -2 / 4 = -0.5 m/s² In the next 6 seconds: acceleration = zero

15 Velocity (m/s) Time / s 0 2468 10 1214 2 4 6 8 10 16 -2 -4 -6 Acceleration = -8 / 8 = -1 m/s² Note that the acceleration is constant here, whether the velocity is forwards, zero or backwards (negative).

16 Velocity (m/s) Time / s 02468 10 1214 1 2 3 4 5 In the first four seconds, a = 4 / 4 = 1 m/s² Between t= 4s and t = 10s, a = zero Between t= 10s and t = 12s, a = -4 / 2 = -2 m/s² Over the whole 12s, average acceleration = ZERO

17 On a velocity-time graph, the area under the graph gives the displacement (the change in position). Velocity (m/s) Time / s 02468 10 1214 1 2 3 4 5 Displacement = 4 x 10 = 40 m

18 Note that although we can get velocity from a position-time graph, we cannot get position from a velocity-time graph. We can get displacement (change in position) but can’t get position. For example, imagine that we know a car has had a velocity of zero for 10 seconds. From that information we can know that it’s displacement is zero (its position has not changed) but we can’t actually know where the car is (its position).

19 Velocity (m/s) Time / s 02468 10 1214 1 2 3 4 5 Δx = ½ x 4 x 10 = 20m

20 Velocity (m/s) Time / s 02468 10 1214 1 2 3 4 5 First four seconds: Δx = 4 x 4 = 16m Next ten seconds: Δx = ½ x 4 x 10 = 20m Total displacement = 16m + 20m = 36m

21 Velocity (m/s) Time / s 0 2468 10 1214 2 4 6 8 10 16 -2 -4 -6 An area below the time axis is a NEGATIVE AREA and corresponds to a NEGATIVE displacement i.e. a backwards displacement. Δx = -4 x 8 = -32m

22 Velocity (m/s) Time / s 0 2468 10 1214 1 2 3 4 5 16 -2 -3 First four seconds: Δx = ½ x -2 x 4 = -4m Next six seconds: Δx = -2 x 6 = -12m Total displacement = -4m + -12m = -16m

23 Velocity (m/s) Time / s 0 2468 10 1214 2 4 6 8 10 16 -2 -4 -6 Total displacement = 8m + -8m = 0m First four seconds: Δx = ½ x 4 x 4 = 8m Next four seconds: Δx = ½ x -4 x 4 = -8m THINK about that result!

24 Velocity (m/s) Time / s 02468 10 1214 1 2 3 4 5 Δx = 0.5 x 4 x 4 = 8mΔx = 0.5 x 4 x 2 = 4mΔx = 4 x 6= 24m Total displacement = 8m + 24m + 4m = 36m

25 Equations of motion (1) Velocity Time 0 t u v Displacement = area on graph = ut Total displacement Δx = ut + ½ (v-u)t = ut + ½vt - ½ut = ½(v+u)t Displacement = area on graph = ½(v-u)t v-u = average velocity x time

26 Equations of motion (2) You have already learnt that acceleration is the rate of change of velocity, or the change of velocity divided by the time taken a = (v-u)/t

27 Equations of motion (3) On the previous slide we had a = (v-u)/t Rearranging… at = v – u u + at v =

28 Equations of motion (4) Three slides back we had displacement Δx = ut + ½ (v-u)t ……… (1) but we’ve also seen a=(v-u)/t which means v-u = at Substituting for v-u in equation (1) we get Δx = ut + ½ (at)t Δx = ut + ½ at²

29 Equations of motion (all 5) In similar ways, we can find other equations of motion. Here are the five equations of motion you will find most useful, including the four we just found and one other which you may be able to find for yourself: a = (v-u)/t v = u + at Δx = ½ (v+u)t Δx = ut + ½ at² v² = u² + 2aΔx Bonus equation, not often needed and not usually included in the ‘official’ list: Δx = vt - ½ at²

30 Choosing the right equation of motion (1) Notice that in each equation of motion there is one quantity ‘missing’. For example, the equation v = u + at does not contain ‘Δx’. This is the clue that will help you choose which equation of motion may be appropriate to your problem. Identify the quantities given in the problem and the quantity that you are asked to find, then identify what quantity you are not given and not asked to find – that will tell you which equation to use.

31 Choosing the right equation of motion (2) An example: A car that is traveling at 4 m/s experiences an acceleration of 3m/s² for 5 s. What is its displacement during this time (assume the motion is linear). ‘Linear motion’ is straight line motion. You are given u, a and t and asked to find Δx so the missing quantity is v. The only equation of motion that does not mention v is… Δx = ut + ½ at² Substituting values into that equation: Δx = ut + ½ at² Δx = (4 m/s)· (5s) + ½ (3m/s²) ·(5s)² = 20m + ½ (3m/s²) ·(25s²) = 20m + ½ (75m) = 20m + 37.5m = 57.5m We were asked to find the displacement which is a vector. Shouldn’t our answer indicate the direction as well as the magnitude? Our answer does include the direction as long as it is understood that the forward direction is positive.

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