⚙️ Work, Energy & Simple Machines
— quick & colourful notes by @edugrown —
Work Done by a Constant Force
Work done on an object by a constant force = Force applied × Displacement in the direction of the force.
- Lifting 3 bags (one by one) to same height → 3× work vs lifting 1 bag
- Lifting all 3 bags together (3× force) → same task → 3× work
- Lifting 1 bag to 3× the height → 3× work
📏 SI Unit of Work — Joule (J)
1 J = 1 N × 1 m. So 1 joule = work done when 1 newton force displaces an object by 1 metre in the direction of the force.
1 J = 1 kg m² s⁻²
When is Work Done Equal to Zero?
Work done = 0 when:
- Force = 0 (no force applied)
- Displacement = 0 — e.g. pushing a rigid wall — you feel tired (muscles use internal energy) but scientifically zero work is done on the wall!
- Force is perpendicular to displacement — e.g. a girl carrying a box horizontally applies an upward force to balance weight, but box moves horizontally → no work done by that force
Positive & Negative Work Done
| Type | Condition | Example |
|---|---|---|
| Positive Work | Displacement in SAME direction as force | Boy pushing a wheelchair forward |
| Negative Work | Displacement OPPOSITE to force direction | Goalkeeper stopping a moving ball |
W = 200 N × (−0.15 m) = −30 J (negative — force opposite to displacement)
The Work-Energy Theorem
An object with the capacity to do work is said to possess energy. When positive work is done on an object, it gains energy; it can then transfer that energy to another object.
SI unit of energy = same as work = joule (J). Energy can transfer as mechanical work, heat, radiation, electricity, sound, or via nuclear reactions!
Forms of Energy
| Form | Description |
|---|---|
| Mechanical | Energy due to motion or position of objects |
| Thermal | Energy that makes things warm or hot |
| Light | Energy that allows us to see |
| Sound | Energy of vibrations of air/other molecules |
| Electrical | Energy related to position/motion of charges |
| Nuclear | Energy stored in the nuclei of atoms |
| Chemical | Energy stored in fuels/food (chemical bonds) |
Mechanical Energy — Kinetic Energy
Mechanical energy = energy an object has due to its motion or position.
Kinetic energy (KE) = energy possessed by an object due to its motion. An object at rest has zero KE.
- Positive work on object → velocity ↑ → KE ↑
- Negative work on object → velocity ↓ → KE ↓
- No work done (W=0) → velocity unchanged → KE constant
- KE has no direction — it's a scalar!
Potential Energy
Potential energy (PE) = energy stored by an object due to its deformation (stretched/compressed) OR due to the relative positions of objects in a system (gravitational, magnetic, electric).
🌍 Gravitational Potential Energy
Object of mass m raised to height h above ground (PE = 0 at ground):
PE = mgh = 0.2 kg × 10 m/s² × 10 m = 20 J
Conservation of Mechanical Energy
Mechanical Energy = Kinetic Energy + Potential Energy
When an object moves due to gravity alone (no friction/air resistance), its mechanical energy stays constant — as PE decreases, KE increases by the same amount, and vice versa!
🔔 Pendulum Demo (Activity 7.2)
- At extreme point P: Only PE (KE=0)
- At lowest point Q: Only KE (PE=0)
- At other extreme R: Only PE again — reaches nearly the same height!
In real life, the pendulum eventually stops due to energy loss from friction & air resistance.
Power
Power = rate at which work is done. Doing the same work faster (or more work in the same time) requires more power.
W = mgh = 75×10×2 = 1500 J → P = 1500/5 = 300 W
W = ΔKE = ½×1000×20² − 0 = 200000 J → P = 200000/10 = 20000 W
Simple Machines — Pulley
Simple machines make work feel easier by changing the magnitude or direction of the applied force — but they DON'T reduce the total work needed!
Effort = force we apply. Load = force to be overcome.
🔗 Pulley
A wheel with a groove that guides a rope. A fixed pulley doesn't reduce force needed — it only changes the direction (pull down instead of lift up). Mechanical advantage = 1.
A movable pulley / pulley system CAN give mechanical advantage > 1 — lift heavier loads with smaller effort (used in elevators, cranes).
Simple Machines — Inclined Plane
An inclined plane helps move a heavy load to a height using a smaller force — but over a larger distance.
Since L > h always → mechanical advantage of an inclined plane is always > 1. Longer/gentler the ramp → smaller the effort needed (but you push it over a longer distance — total work stays the same)!
Mechanical advantage = 50/30 = 1.67
Simple Machines — Lever
A lever = rigid bar that rotates about a fixed point. Three parts:
- Fulcrum — the fixed point about which the lever rotates
- Load — the force to be overcome (with its load arm — distance from fulcrum)
- Effort — the force applied (with its effort arm — distance from fulcrum)
| Class | Arrangement | Examples |
|---|---|---|
| Class I | Fulcrum in between Load & Effort | Tongs, scissors, crowbar, pliers, seesaw |
| Class II | Load in between Fulcrum & Effort | Lemon squeezer, wheelbarrow, bottle opener |
| Class III | Effort in between Fulcrum & Load | Tweezers, broom, hammer, oar |
15×2 = 30×L → L = 1 m → sits at seat D
Machines don't create energy — they only help us use it more effectively. In every case, conservation of mechanical energy holds: work put in = useful work done on the load (ignoring friction).
Key Formulas Cheat-Sheet
| Quantity | Formula | SI Unit |
|---|---|---|
| Work | W = F × s | joule (J) |
| Work-Energy Theorem | W = ΔEnergy | joule (J) |
| Kinetic Energy | K = ½mv² | joule (J) |
| Potential Energy | U = mgh | joule (J) |
| Mechanical Energy | K + U (conserved, no friction) | joule (J) |
| Power | P = W / t | watt (W) |
| Mechanical Advantage | Load / Effort | no unit |
| Inclined Plane MA | L / h | no unit |
| Lever MA | Effort arm / Load arm | no unit |
At a Glance — Full Chapter Recap
- Work is done by a force when it displaces an object in the direction of the force
- An object with the capacity to do work possesses energy
- Work-Energy Theorem: Work done on an object/system = change in its energy
- Kinetic energy = energy due to motion; Potential energy = energy due to deformation/position
- Mechanical energy (KE + PE) is conserved when only gravity acts (no friction)
- Power = rate of doing work
- Simple machines (pulley, inclined plane, lever) make work easier by changing force magnitude/direction — but never reduce total work done
✨ Notes prepared by @edugrown ✨