Work and Energy
4. Energy Flow Diagrams
Learning outcomes
- I can construct energy flow diagrams that show how energy is transferred between stores within a system.
- I can identify the energy stores and transfer pathways involved in a variety of physical situations.
- I can distinguish between useful energy transfers and energy dissipated to the surroundings.
- I can interpret and construct Sankey diagrams to represent energy transfers and transformations.
- I can use energy flow diagrams and Sankey diagrams to demonstrate the conservation of energy in real-world systems.
Introduction
Energy is constantly transferred between stores.
A battery powers a torch, a falling object speeds up, a kettle heats water, and a car slows when its brakes are applied. In each case, energy moves from one store to another through one or more transfer pathways.
Energy flow diagrams help us represent these changes clearly. They show:
- Where the energy starts.
- How the energy is transferred.
- Where the energy ends up.
- Which transfers are useful.
- Which transfers are dissipated to the surroundings.
A special type of energy flow diagram called a Sankey diagram also shows the relative amounts of energy involved.
Energy Stores and Transfer Pathways
Before constructing an energy flow diagram, it is important to distinguish between energy stores and transfer pathways.
Energy Stores
Energy stores describe where energy is held.
Common stores include:
- Kinetic
- Gravitational potential
- Chemical
- Elastic
- Nuclear
- Electrostatic
- Internal
Transfer Pathways
Transfer pathways describe how energy moves between stores.
The four main pathways are:
- Mechanical work
- Electrical work
- Heating
- Waves
What is an Energy Flow Diagram?
An energy flow diagram is a simple representation of energy being transferred between stores.
A typical diagram includes:
Example: Falling Ball
As the ball falls:
- Its gravitational potential energy decreases.
- Its kinetic energy increases.
If air resistance is present, some energy is also transferred to the internal stores of the air and the ball.
Constructing an Energy Flow Diagram
Use the following steps.
Step 1: Identify the System
Decide which objects are included.
Example:
A torch and its battery.
Step 2: Identify the Initial Energy Store
Ask:
Where is the energy stored at the beginning?
For a torch:
- Chemical store in the battery.
Step 3: Identify the Transfer Pathway
Ask:
How does the energy move?
For a torch:
- Electrical transfer through the circuit.
Step 4: Identify the Final Stores
Ask:
Where does the energy end up?
For a torch:
- Internal store of the lamp.
- Internal store of the surroundings.
- Energy transferred by light waves.
Step 5: Include Useful and Dissipated Transfers
Label which transfer is intended and which is less useful.
Example 1: Battery-Powered Torch
Useful transfer:
- Light emitted by the torch.
Dissipated transfer:
- Heating of the bulb, battery, and surroundings.
Example 2: Braking Bicycle
The bicycle's kinetic store decreases.
The energy is not destroyed. It is transferred mainly into internal energy stores.
Example 3: Electric Kettle
Useful transfer:
- Heating the water.
Dissipated transfer:
- Heating the kettle body and surrounding air.
- Sound.
Useful and Dissipated Energy
A useful energy transfer is the transfer intended to achieve the device's purpose.
A dissipated energy transfer spreads energy into the surroundings, usually increasing internal energy stores.
Examples:
| Device | Useful Transfer | Dissipated Transfer |
|---|---|---|
| Lamp | Light waves | Heating |
| Car | Increase in kinetic store | Heating and sound |
| Kettle | Increase in water's internal store | Heating surroundings |
| Speaker | Sound waves | Heating |
| Motor | Increase in kinetic store | Heating and sound |
Dissipated energy is not lost. It is still present but is usually less useful because it has spread into the surroundings.
What is a Sankey Diagram?
A Sankey diagram is a special type of energy flow diagram in which the width of each arrow represents the amount of energy transferred.
The input arrow represents the total energy supplied.
The output arrows show how that energy is divided into:
- Useful energy
- Dissipated energy
The total width of the output arrows must equal the width of the input arrow.
This demonstrates conservation of energy.
Reading a Sankey Diagram
Suppose a lamp receives 100 J of electrical energy.
It transfers:
- 20 J as useful light.
- 80 J into internal energy stores.
A Sankey diagram would show:
- One 100 J input arrow.
- A smaller 20 J arrow continuing forward.
- A larger 80 J arrow branching downward.
Because:
energy is conserved.
Constructing a Sankey Diagram
Follow these steps.
Step 1: Identify the Total Input Energy
Example:
200 J
Step 2: Identify Each Output
Example:
- Useful kinetic energy = 140 J
- Dissipated energy = 60 J
Step 3: Check Conservation
Step 4: Choose a Scale
For example:
Then:
- Input arrow width = 20 mm
- Useful arrow width = 14 mm
- Dissipated arrow width = 6 mm
Step 5: Draw and Label the Arrows
Ensure the widths are proportional.
Worked Example 1: Electric Motor
An electric motor receives 500 J of electrical energy.
It transfers:
- 350 J into kinetic energy.
- 100 J into internal energy stores.
- 50 J by sound waves.
Check:
Useful energy:
350 J
Dissipated energy:
The Sankey diagram must show a 500 J input divided into 350 J useful and 150 J dissipated.
Worked Example 2: Car Engine
A car engine receives 1,000 J of chemical energy.
Outputs:
- 250 J transferred into the car's kinetic store.
- 600 J transferred into internal energy stores.
- 150 J transferred by sound.
Check:
Only one-quarter of the input becomes useful kinetic energy.
The remaining energy is dissipated.
Conservation of Energy
The principle of conservation of energy states:
Energy cannot be created or destroyed. It can only be transferred between stores.
Energy flow diagrams demonstrate this by accounting for all energy transfers.
Sankey diagrams show conservation visually because:
The combined widths of all output arrows must equal the width of the input arrow.
Interpreting Energy Flow Diagrams
When reading a diagram, ask:
- What is the initial energy store?
- Which transfer pathway is involved?
- Which final stores gain energy?
- Which transfer is useful?
- Which transfers are dissipated?
- Is all input energy accounted for?
- Does the diagram obey conservation of energy?
Real-World Systems
Roller Coaster
At the top:
- Large gravitational potential store.
- Small kinetic store.
Moving downward:
Friction also transfers energy into internal stores.
Solar Panel and Battery
Some energy is dissipated through heating.
Hydroelectric Power Station
Some energy is dissipated through heating and sound.
Loudspeaker
Some energy also increases the internal energy stores of the speaker and air.
Energy Flow Diagrams vs Sankey Diagrams
| Energy Flow Diagram | Sankey Diagram |
|---|---|
| Shows stores and pathways | Shows stores/pathways and energy quantities |
| Arrows show direction | Arrow widths show amounts |
| Useful for conceptual explanations | Useful for comparing efficiency and losses |
| Does not need a numerical scale | Requires proportional arrow widths |
Both types can demonstrate conservation of energy.
Common Mistakes
Avoid these errors:
- Treating heat, light, or electricity as energy stores.
- Forgetting to include the initial energy store.
- Leaving out dissipated energy.
- Saying energy has been “used up” or “lost.”
- Drawing Sankey arrows with widths that do not match the energy values.
- Forgetting that all output energies must add to the input energy.
- Labelling all output energy as useful.
- Confusing a transfer pathway with a final energy store.
Key Vocabulary
- Energy Flow Diagram – A diagram showing transfers between energy stores.
- Sankey Diagram – A diagram in which arrow widths represent energy quantities.
- Useful Energy Transfer – Energy transferred in the intended way.
- Dissipated Energy – Energy spread into the surroundings, usually into internal stores.
- Energy Store – A way in which energy is held.
- Transfer Pathway – A process through which energy moves between stores.
- Conservation of Energy – The principle that energy cannot be created or destroyed.
- Input Energy – The total energy supplied to a system.
- Output Energy – Energy transferred from the system into one or more stores or pathways.
Summary
- Energy flow diagrams show how energy moves between stores through transfer pathways.
- The initial store, transfer pathway, and final stores should all be identified.
- Useful transfers achieve the intended purpose, while dissipated energy spreads into the surroundings.
- Sankey diagrams use proportional arrow widths to represent energy quantities.
- In every Sankey diagram, total input energy must equal total output energy.
- Both energy flow diagrams and Sankey diagrams provide clear evidence of the conservation of energy.
Suggested Images
1. Energy Flow Diagram and Sankey Diagram Comparison ⭐
A side-by-side example of the same device, such as a lamp:
- Standard flow diagram showing chemical store → electrical transfer → light and internal stores.
- Sankey diagram showing 100 J input, 20 J useful light, and 80 J dissipated heating.
This clearly distinguishes the purpose of each type of diagram.
2. Parts of a Sankey Diagram
A labelled Sankey diagram identifying:
- Input arrow
- Useful output
- Dissipated output
- Direction of energy transfer
- Arrow width proportional to energy
- Conservation check
3. Constructing a Sankey Diagram
A step-by-step visual:
- List input and outputs.
- Check that totals match.
- Choose a scale.
- Calculate arrow widths.
- Draw and label the diagram.
Use a simple 200 J example.
4. Useful vs Dissipated Energy
A four-panel infographic using:
- Lamp
- Kettle
- Motor
- Car
For each device, identify the useful and dissipated transfers.
5. Energy Conservation in Real Systems
A collage showing:
- Roller coaster
- Hydroelectric station
- Solar panel and battery
- Braking bicycle
Include simple flow arrows and numerical examples showing that total input equals total output.