Do now!

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Do now! Hey dudes, can you go through your folders and make sure everything is in order?

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Do now!. Hey dudes, c an you go through your folders and make sure everything is in order?. Newton’s Laws of Motion. That’s me!. Newton’s 1 st Law. An object continues in uniform motion in a straight line or at rest unless a resultant external force acts. Newton’s 1 st Law. - PowerPoint PPT Presentation

Transcript of Do now!

Page 1: Do now!

Do now!Hey dudes, can

you go through your folders and make sure everything is in order?

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Newton’s Laws of Motion

That’s me!

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Newton’s 1st Law

An object continues in uniform motion in a straight line or at rest unless a resultant external force acts

Does this make sense?

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Newton’s 1st law

Newton’s first law was actually discovered by Galileo.

Newton nicked it!

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Newton’s first law

Galileo imagined a marble rolling in a very smooth (i.e. no friction) bowl.

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Newton’s first lawIf you let go of the ball, it always rolls up the opposite side until it reaches its original height (this actually comes from the conservation of energy).

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Newton’s first lawNo matter how long the bowl, this always happens

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Newton’s first lawNo matter how long the bowl, this always happens.

constant velocity

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Newton’s first lawGalileo imagined an infinitely long bowl where the ball never reaches the other side!

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Newton’s first lawThe ball travels with constant velocity until its reaches the other side (which it never does!).Galileo realised that this was the natural state of objects when no (resultant ) forces act.

constant velocity

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Other examples

Imagine a (giant) dog falling from a tall building

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Other examples

To start the dog is travelling slowly. The main force on the dog is gravity, with a little air resistance

gravity

Air resistance

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Other examples

As the dog falls faster, the air resistance increases (note that its weight (force of gravity) stays the same)

gravity

Air resistance

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Other examples

Eventually the air resistance grows until it equals the force of gravity. At this time the dog travels with constant velocity (called its terminal velocity)

gravity

Air resistance

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Oooops!

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Another example

Imagine Mr Porter cycling at constant velocity.

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Newton’s 1st law

He is providing a pushing force.

Constant velocity

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Newton’s 1st law

There is an equal and opposite friction force.

Constant velocity

Pushing force

friction

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Newton’s second law

Newton’s second law concerns examples where there is a resultant force.

I thought of this law myself!

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Let’s go back to Mr Porter on his bike.

Remember when the forces are balanced (no resultant force) he travels at constant velocity.

Constant velocity

Pushing force

friction

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Newton’s 2nd law

Now lets imagine what happens if he pedals faster.

Pushing force

friction

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Newton’s 2nd law

His velocity changes (goes faster). He accelerates!

Pushing force

friction

acceleration

Remember from last year that acceleration is rate of change of velocity. In other words

acceleration = (change in velocity)/time

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Newton’s 2nd law

Now imagine what happens if he stops pedalling.

friction

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Newton’s 2nd law

He slows down (decellerates). This is a negative acceleration.

friction

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Newton’s 2nd law

So when there is a resultant force, an object accelerates (changes velocity)

Pushing force

friction

Mr Porter’s Porche

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Newton’s 2nd law

There is a mathematical relationship between the resultant force and acceleration.

Resultant force (N) = mass (kg) x acceleration (m/s2)

FR = maIt’s physics,

there’s always a mathematical relationship!

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An example

What will be Mr Poter’s acceleration?

Pushing force (100 N)

Friction (60 N)

Mass of Mr Porter and bike = 100 kg

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An example

Resultant force = 100 – 60 = 40 NFR = ma

40 = 100aa = 0.4 m/s2

Pushing force (100 N)

Friction (60 N)

Mass of Mr Porter and bike = 100 kg

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Newton’s 3rd lawIf a body A exerts a force on body B, body B will exert an equal but opposite force on body A.

Hand (body A) exerts force on table (body B)

Table (body B) exerts force on hand (body A)

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Free-body diagrams

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Free-body diagrams

Shows the magnitude and direction of all forces acting on a single body

The diagram shows the body only and the forces acting on it.

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Examples

• Mass hanging on a rope

W (weight)

T (tension in rope)

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Examples

• Inclined slope

W (weight)

R (normal reaction force)

F (friction)

If a body touches another body there is a force of reaction or contact force. The force is perpendicular to the body exerting the force

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Examples

• String over a pulley

T (tension in rope)

T (tension in rope)

W1

W1

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Examples

• Ladder leaning against a wall

R

R

F

F

W

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Resolving vectors into components

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Resolving vectors into components

It is sometime useful to split vectors into perpendicular components

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Resolving vectors into components

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A cable car question

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Tension in the cables?

10 000 N

?? 10°

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Vertically 10 000 = 2 X ? X sin10°

10 000 N

?? 10°

? X sin10° ? X sin10°

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Vertically 10 000/2xsin10° = ?

10 000 N

?? 10°

? X sin10° ? X sin10°

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? = 28 800 N

10 000 N

?? 10°

? X sin10° ? X sin10°

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What happens as the angle deceases?

10 000 N

?? θ? = 10 000/2xsinθ

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Let’s try some questions!

Page 67 Question 2Page 68 Questions 6, 8, 10.Page 73 Questions 3, 4, 5

Page 74 Question 9, 12Page 75 Question 14

Page 84 Questions 2, 3, 4, 5, 6, 8, 9

Page 85 Questions 13, 16, 20, 21.