Pressure in Fluids
5. Applications of Fluid Pressure
Learning outcomes
- I can explain how fluid pressure is used in hydraulic machinery.
- I can describe how pressure affects dams and underwater structures.
- I can explain how pressure contributes to weather systems.
- I can identify practical applications of fluid pressure in engineering.
- I can evaluate the benefits and limitations of pressure-based technologies.
Fluid pressure is used throughout science, engineering, transportation, construction, medicine, and everyday technology. Some machines deliberately create and transmit pressure, while other structures must be designed to withstand pressure.
The same basic ideas explain how a hydraulic lift raises a car, why a dam is thicker near its base, why deep-sea vehicles require extremely strong pressure hulls, and why differences in atmospheric pressure are connected to wind and weather.
Fluid Pressure in Hydraulic Machinery
A hydraulic system uses a confined liquid to transmit pressure from one part of a machine to another.
Hydraulic systems rely on Pascal's Principle:
A change in pressure applied to a confined fluid is transmitted throughout the fluid.
If a force is applied to a small piston, it creates pressure in the hydraulic fluid.
Because:
P = F/A
the pressure produced at the input piston can be transmitted through the fluid to another piston.
For an ideal hydraulic system:
P₁ = P₂
Therefore:
F₁/A₁ = F₂/A₂
If the output piston has a larger area than the input piston, the output force can be much larger.
This allows hydraulic machinery to move extremely heavy loads.
Example: Hydraulic Car Lift
Suppose a hydraulic car lift has:
Input piston area = 0.005 m²
Output piston area = 0.10 m²
A mechanic applies an input force of:
150 N
First calculate the pressure:
P = F/A
P = 150 ÷ 0.005
P = 30 000 Pa
This pressure is transmitted to the larger piston.
Now calculate the output force:
F = PA
F = 30 000 × 0.10
F = 3000 N
So:
150 N input → 3000 N output
The output force is 20 times greater than the input force.
This happens because the output piston has 20 times the area.
Hydraulic Excavators
Excavators provide an excellent real-world example of hydraulic pressure.
The boom, arm, and bucket are moved by hydraulic cylinders.
A hydraulic pump pressurizes the fluid.
The pressurized fluid enters a cylinder and pushes against a piston.
The piston moves and produces a large force.
Hydraulic systems allow an excavator to:
- raise its boom
- extend or retract its arm
- move its bucket
- dig through soil
- lift heavy materials
- control movements precisely
The operator does not directly provide the enormous force required. The machine's engine or motor powers the hydraulic pump.
Hydraulic Brakes
Cars, trucks, motorcycles, and many other vehicles use hydraulic braking systems.
When the driver presses the brake pedal:
- The pedal pushes a piston in the master cylinder.
- The piston increases the pressure of the brake fluid.
- The pressure travels through hydraulic lines.
- The pressure acts on pistons at the wheels.
- The pistons push brake pads against rotating discs.
- Friction slows the vehicle.
Hydraulic pressure makes it possible to transmit the driver's braking input efficiently to several wheels.
Other Hydraulic Technologies
Hydraulic systems are used in many machines.
Examples include:
- car jacks
- vehicle lifts
- cranes
- bulldozers
- forklifts
- hydraulic presses
- aircraft control systems
- industrial machinery
- agricultural equipment
- elevators
- dental chairs
- hospital equipment
Hydraulics are especially useful when a machine needs to produce large, controlled forces.
Why Hydraulics Are Useful
Hydraulic systems have several advantages.
Large Forces
A relatively small input can control a much larger output force.
Smooth Movement
Hydraulic systems can provide controlled and gradual movement.
Flexible Power Transmission
Fluid can travel through hoses and pipes, allowing forces to be transmitted around parts of a machine.
Compact Components
Hydraulic cylinders can produce very large forces without requiring extremely large mechanical systems.
Precise Control
Valves can control the direction and flow rate of hydraulic fluid.
This allows operators to control powerful machinery accurately.
Limitations of Hydraulic Systems
Hydraulic technology also has disadvantages.
Fluid Leaks
Hydraulic fluid can escape from damaged hoses, seals, or connections.
This can:
- reduce system performance
- create slippery surfaces
- damage equipment
- cause environmental contamination
Maintenance
Hydraulic systems contain pumps, valves, seals, hoses, and fluid that require maintenance.
Energy Losses
Real systems are not perfectly efficient.
Some energy is lost through:
- friction
- fluid resistance
- heat
- vibration
High-Pressure Hazards
Hydraulic fluid can be stored at very high pressure. Damaged equipment can therefore be dangerous.
So hydraulic technology offers enormous advantages, but it requires careful engineering and maintenance.
Fluid Pressure and Dams
A dam must hold back an enormous quantity of water.
Water pressure increases with depth according to:
p = ρgh
where:
p = liquid pressure
ρ = liquid density
g = gravitational field strength
h = depth
As depth increases, pressure increases.
Therefore, the lower parts of a dam experience much greater water pressure than the upper parts.
This is why many dams are constructed:
thinner near the top
and
thicker near the bottom
The base must withstand the greatest pressures and forces.
Pressure Is Not the Same Along the Dam
Imagine a dam holding water 50 m deep.
Near the surface, h is small, so the pressure caused by the water is relatively low.
Near the bottom, h is large, so the pressure is much greater.
The pressure distribution therefore looks approximately like this:
Water surface
│
│ → small pressure
│
│ ───→
│
│ ──────→
│
│ ─────────→
│
│ ────────────→ large pressure
└──────────────── dam bottom
The increasing arrow lengths represent increasing pressure with depth.
Worked Example: Pressure at the Bottom of a Dam
A reservoir is 30 m deep.
Calculate the pressure caused by the water at the bottom.
Use:
ρ = 1000 kg/m³
g = 10 N/kg
h = 30 m
Using:
p = ρgh
Substitute:
p = 1000 × 10 × 30
p = 300 000 Pa
Therefore:
p = 300 kPa
This is the pressure caused by the water alone.
If total absolute pressure were required, atmospheric pressure would also need to be considered.
Pressure and Underwater Structures
Anything placed underwater must withstand the pressure of the surrounding water.
Examples include:
- submarines
- research submersibles
- underwater pipelines
- underwater tunnels
- diving equipment
- offshore oil and gas equipment
- underwater research stations
- remotely operated vehicles
As depth increases:
depth ↑ → external pressure ↑
Engineers must therefore know the maximum depth at which equipment will operate.
Submarine Pressure Hulls
A submarine contains air for its crew.
The water outside the submarine may be at much greater pressure than the air inside.
This creates a pressure difference across the hull.
The deeper the submarine travels, the larger this pressure difference becomes.
The submarine's pressure hull must resist the inward forces produced by the surrounding water.
Engineers consider:
- hull material
- hull thickness
- hull shape
- maximum operating depth
- safety factors
- fatigue caused by repeated dives
Why Shape Matters Underwater
Deep-sea pressure vessels are often rounded or spherical.
Water pressure acts from all directions.
A curved structure can distribute these forces more evenly than a large flat surface.
This is one reason deep-sea submersibles often contain spherical or cylindrical pressure compartments.
Shape therefore becomes an important engineering consideration when designing structures for high-pressure environments.
Underwater Pipelines
Pipelines carry oil, natural gas, water, and other materials beneath oceans and lakes.
They experience pressure from both:
- the surrounding water
- the fluid inside the pipe
Engineers must consider the difference between internal and external pressure.
If external pressure becomes too large compared with internal pressure, a poorly designed pipe could deform inward.
If internal pressure becomes too large, the pipe could fail outward.
Engineering therefore often involves controlling pressure differences, not simply pressure itself.
Atmospheric Pressure and Weather
Fluid pressure is also important in Earth's atmosphere.
Air is a fluid, and the atmosphere exerts pressure.
Atmospheric pressure is not exactly the same everywhere.
Different regions can develop:
- high atmospheric pressure
- low atmospheric pressure
These pressure differences contribute to the movement of air.
Air tends to move because of pressure differences, with the pressure-gradient force directed from regions of higher pressure toward regions of lower pressure.
This movement contributes to wind.
High-Pressure Weather Systems
In a high-pressure system, air tends to sink over a broad region.
As air sinks, it is compressed and warms.
This often makes condensation and cloud formation less likely.
High-pressure systems are therefore often associated with:
- clearer skies
- drier conditions
- lighter winds near the centre
However, high pressure does not guarantee sunny weather in every situation.
Low-Pressure Weather Systems
In a low-pressure system, air tends to rise.
As rising air expands, it cools.
Cooling can cause water vapour to condense into tiny droplets.
This can contribute to:
- cloud formation
- rain
- storms
- unsettled weather
Pressure differences are therefore an important part of weather systems.
Pressure Gradients and Wind
The difference in atmospheric pressure between two locations is called a pressure gradient when considered over distance.
A large pressure change over a short distance creates a strong pressure gradient.
This can produce stronger winds.
Weather maps often show pressure using lines called isobars.
Closely spaced isobars → stronger pressure gradient
Widely spaced isobars → weaker pressure gradient
Wind direction is also affected by Earth's rotation, surface friction, and other factors, so real atmospheric circulation is more complex than simply "air moves straight from high to low pressure."
Measuring Atmospheric Pressure
Atmospheric pressure can be measured using a barometer.
Common pressure units used in weather include:
- pascals (Pa)
- kilopascals (kPa)
- hectopascals (hPa)
Meteorologists track changes in atmospheric pressure to help understand and forecast weather systems.
A changing barometer reading can provide information about changing atmospheric conditions.
Pneumatic Systems
Hydraulic systems use liquids, but some technologies use compressed gases instead.
These are called pneumatic systems.
Examples include:
- air-powered drills
- nail guns
- bus and truck brakes
- factory automation
- compressed-air tools
- pneumatic doors
- some robotic systems
Compressed air stores energy and can be released to produce motion.
Unlike liquids, gases are easily compressed. This makes pneumatic systems behave differently from hydraulic systems.
Hydraulics vs Pneumatics
| Feature | Hydraulic System | Pneumatic System |
|---|---|---|
| Fluid | Liquid | Gas |
| Compressibility | Very low | Relatively high |
| Typical force | Very large | Usually smaller |
| Movement | Smooth and powerful | Often fast |
| Leakage | Can create liquid contamination | Usually releases air |
| Common uses | Excavators, lifts, presses | Tools, automation, air brakes |
Neither system is always better.
Engineers choose the system that best suits the task.
Pressure in Aircraft
Atmospheric pressure decreases with altitude.
Commercial aircraft fly at altitudes where the outside atmospheric pressure is much lower than at ground level.
The passenger cabin is therefore pressurized.
The pressure inside the cabin is maintained at a comfortable level relative to the very low outside pressure.
This creates a pressure difference across the aircraft's fuselage.
Engineers must design the aircraft structure to withstand repeated cycles of:
pressurization → depressurization → pressurization
during its working life.
Pressure in Tyres
Vehicle tyres are another everyday pressure-based technology.
Compressed air inside a tyre pushes outward against the tyre walls.
The pressure helps the tyre maintain its shape and support the vehicle.
Correct tyre pressure is important for:
- handling
- tyre wear
- efficiency
- braking
- safety
This is another example of engineers carefully controlling gas pressure.
Benefits of Pressure-Based Technologies
Fluid-pressure technologies have transformed engineering.
Important benefits include:
Force multiplication – hydraulic systems can produce very large forces.
Control – pressure and fluid flow can be regulated precisely.
Power transmission – energy can be transferred through pipes and hoses.
Compact machinery – large forces can be produced using relatively compact components.
Flexibility – hydraulic hoses can connect moving parts.
Automation – hydraulic and pneumatic systems can be controlled using valves, sensors, and computers.
Limitations and Engineering Challenges
Pressure-based systems also create challenges.
Leakage
Hydraulic fluids can leak and cause environmental or maintenance problems.
Energy Loss
Friction and fluid resistance reduce efficiency.
Structural Stress
Pressure differences place forces on:
- pipes
- tanks
- dams
- aircraft
- submarines
- pressure vessels
Temperature Changes
Temperature can affect:
- gas pressure
- fluid viscosity
- seals
- system performance
Maintenance
High-pressure systems require inspection and maintenance.
Safety
Stored pressure contains energy.
A sudden failure can release that energy rapidly.
Engineers therefore use strong materials, pressure relief systems, careful testing, and safety factors.
Evaluating a Technology: Hydraulic Excavator
Consider a hydraulic excavator.
Benefits
- produces very large forces
- allows precise movement
- can lift heavy loads
- transfers power through flexible hoses
- can operate several hydraulic cylinders
Limitations
- hydraulic leaks are possible
- requires pumps and an energy source
- needs regular maintenance
- fluid can become contaminated
- energy is lost through friction and heat
An engineer must consider both advantages and disadvantages, rather than simply asking whether hydraulics "work."
Evaluating a Technology: Deep-Sea Submersible
A deep-sea submersible provides a different pressure challenge.
Its goal is not to use external water pressure but to survive it.
Benefits of a strong pressure hull
- protects occupants and equipment
- allows exploration at great depth
- maintains a suitable internal environment
Limitations
- strong materials can be expensive
- thicker structures increase mass
- extreme depths require increasingly demanding designs
- repeated pressure cycles can stress materials
- inspection and maintenance are essential
Engineering often involves balancing strength, mass, cost, reliability, and safety.
Connecting the Applications
Fluid pressure appears in very different situations, but the same scientific ideas connect them.
| Application | Important Pressure Idea |
|---|---|
| Hydraulic lift | Pressure transmitted through liquid |
| Excavator | Hydraulic pressure produces large forces |
| Car brakes | Pressure transmitted through brake fluid |
| Dam | Liquid pressure increases with depth |
| Submarine | External pressure increases with depth |
| Underwater pipeline | Internal and external pressure must be balanced |
| Weather | Pressure differences contribute to air movement |
| Aircraft | Cabin and outside pressures differ |
| Tyres | Compressed gas produces internal pressure |
| Pneumatic tools | Compressed gas transfers energy |
Common Mistakes
Mistake 1: Thinking hydraulic systems multiply pressure
Hydraulic systems primarily use transmitted pressure to multiply force.
The larger output force results because the pressure acts over a larger piston area.
Mistake 2: Thinking water pressure is the same at every depth
Liquid pressure increases with depth.
Greater depth → greater pressure
Mistake 3: Thinking dams are thicker at the bottom only because there is "more water"
The more precise explanation is that hydrostatic pressure increases with depth, so the lower part of the dam experiences greater pressure and greater resulting forces.
Mistake 4: Thinking pressure acts only downward
Fluids exert pressure in all directions.
This is particularly important when considering submarines, pipes, tanks, and pressure vessels.
Mistake 5: Saying wind is caused only by pressure
Pressure differences are important, but real wind patterns are also influenced by Earth's rotation, friction, temperature differences, geography, and other factors.
Mistake 6: Assuming high pressure always means dangerous pressure
Pressure itself is not automatically dangerous.
A system becomes hazardous when materials or components cannot safely withstand the pressure or pressure difference involved.
Mistake 7: Thinking hydraulic machines create energy
Hydraulics can multiply force, but they do not create energy.
A greater output force is accompanied by a smaller movement distance in an ideal force-multiplying system.
Check Your Understanding
1. Recall
What scientific principle allows hydraulic systems to transmit pressure through a confined liquid?
2. Explain
Why can a hydraulic machine produce a larger output force when the output piston has a larger area?
3. Calculate
A hydraulic system has:
Input area = 4 cm²
Output area = 80 cm²
An input force of 50 N is applied.
Calculate the ideal output force.
4. Apply
Explain why the wall of a large dam is usually much thicker near the bottom.
5. Underwater Engineering
A research submersible travels from a depth of 500 m to 2000 m.
What happens to the surrounding water pressure? Explain why.
6. Weather
Explain how differences in atmospheric pressure contribute to wind.
7. Compare
Give one advantage of a hydraulic system and one advantage of a pneumatic system.
8. Evaluate
An engineer is designing a machine that must repeatedly lift extremely heavy objects.
Explain why hydraulics might be suitable. Then identify two limitations the engineer should consider.
Key Terms
- Fluid pressure – pressure exerted by a liquid or gas
- Hydraulic system – system that uses pressurized liquid to transmit force
- Pneumatic system – system that uses compressed gas
- Pascal's Principle – a change in pressure applied to a confined fluid is transmitted throughout the fluid
- Hydrostatic pressure – pressure produced by a liquid at rest
- Pressure difference – difference in pressure between two regions
- Hydraulic cylinder – device in which pressurized fluid moves a piston
- Pressure hull – structure designed to withstand a pressure difference
- Atmospheric pressure – pressure exerted by Earth's atmosphere
- Pressure gradient – change in pressure over a distance
- Isobar – line on a weather map connecting places with equal atmospheric pressure
- Barometer – instrument used to measure atmospheric pressure
Key Takeaways
- Fluid pressure has important applications throughout engineering, transportation, construction, weather science, and underwater technology.
- Hydraulic machinery uses Pascal's Principle to transmit pressure through a confined liquid.
- Hydraulic systems can produce large forces because pressure can act over a large output piston area.
- Hydraulic lifts, excavators, presses, brakes, and jacks all use fluid pressure.
- Liquid pressure increases with depth, so dams must withstand greater pressure near their bases.
- Submarines, pipelines, and deep-sea vehicles must withstand large pressure differences.
- Atmospheric pressure differences contribute to wind and weather systems.
- Hydraulic systems can provide large forces and precise control, but they also involve maintenance, leakage, energy losses, and high-pressure hazards.
- Engineers must evaluate both the benefits and limitations of pressure-based technologies when choosing or designing a system.