Pressure and pressure differences in fluids

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Pressure in Fluids

  • A fluid is either a liquid or a gas.
  • Pressure is the concentration of a force, or the force per unit area.
  • Pressure is calculated using p = F / A, where p is in pascals (Pa), F in newtons (N) and A in metres squared (m²).
  • The area used is always the cross-sectional area — the area where the force acts at right angles.
  • A fluid exerts pressure evenly across the whole surface of an immersed object and in all directions.
  • The forces created by fluid pressure act at 90° (normal) to the surface.
  • Spreading a force over a large area gives a small pressure; concentrating it over a small area gives a large pressure.
  • Examples: tractor tyres are wide to reduce pressure and stop sinking into mud; nails and high heels have small areas to create large pressures.

Atmospheric Pressure

  • The atmosphere is a thin layer of air around the Earth, extending more than 100 km into space.
  • At sea level, atmospheric pressure is about 100–101 kPa.
  • Atmospheric pressure is caused by air molecules colliding with a surface, creating a force per unit area.
  • The atmosphere becomes less dense with increasing altitude, so pressure decreases as height increases.
  • The number of air molecules (and so the weight of air) above a surface decreases as the surface's height above ground increases.
  • As height increases there is always less air above a surface than at a lower height, so atmospheric pressure decreases with height.
  • Atmospheric pressure varies slightly from day to day with the weather; fine clear weather is usually linked to high pressure.

Pressure in a Liquid

  • The greater the depth of the liquid, the greater the pressure.
  • The greater the density of the liquid, the greater the pressure.
  • Liquid pressure is caused by the weight of the liquid pushing against objects immersed in it.
  • As depth increases, the amount (and weight) of liquid above a point increases, so pressure increases.
  • A more dense liquid has a greater weight, so it exerts a higher pressure.
  • In a column of water, the highest pressure is at the bottom — a hole there produces a strong jet, while a hole near the top produces a weak jet.
  • The pressure on the seabed is far higher than at the surface of the ocean.
  • Liquid pressure does not depend on the shape of the container or the total volume of liquid.

Pressure in a liquid increases with depth and density, and acts equally in all directions.

Pressure in a liquid increases with depth and density, and acts equally in all directions.

Calculating Pressure in a Liquid

  • The pressure due to a column of liquid is calculated using p = h × ρ × g.
  • p = pressure in pascals (Pa); h = height of the column in metres (m).
  • ρ = density of the liquid in kg/m³; g = gravitational field strength in N/kg.
  • The value of g will be given in any calculation.
  • This equation is given on the Physics equation sheet, but you must be able to rearrange it for h, ρ or g.
  • The equation gives the difference in pressure at different depths, since pressure changes with depth.
  • Example: at a depth of 10 m in water, the extra pressure is about 100 kPa; adding the 101 kPa atmospheric pressure gives a total of 201 kPa.

A hydraulic lift: a pump creates pressure in the liquid, transmitted to a piston of known cross-sectional area to raise the platform.

A hydraulic lift: a pump creates pressure in the liquid, transmitted to a piston of known cross-sectional area to raise the platform.

Upthrust

  • Upthrust is a force that pushes upwards on an object submerged in a fluid.
  • It always acts in the opposite direction to the object's weight.
  • Upthrust arises because a submerged object experiences greater pressure on its bottom surface than on its top surface.
  • This is because pressure is proportional to depth, so the difference in pressure creates a resultant force upwards.
  • The size of the upthrust depends on the density of the fluid and the volume of fluid displaced (equal to the volume of the object).
  • The denser the liquid, the greater the upthrust it exerts.
  • Upthrust equals the weight of fluid displaced.
  • Upthrust is why objects appear to weigh less when immersed in a liquid.

Floating and Sinking

  • If the upthrust equals (or is greater than) the object's weight, the object floats.
  • If the upthrust is smaller than the weight, the object sinks.
  • An object less dense than the fluid will float; an object more dense than the fluid will sink.
  • A denser-than-fluid object can never displace enough fluid to create an upthrust that supports its weight.
  • Polystyrene (0.05 g/cm³) floats in water (1.0 g/cm³); a wooden block (0.9 g/cm³) floats partially submerged; an iron block (7.9 g/cm³) sinks.
  • Objects float because upthrust balances weight, not simply because they are light.

Calculating Upthrust

  • To find upthrust, first calculate the volume of the object immersed in the fluid.
  • Use mass = density × volume (m = ρV) to find the mass of fluid displaced.
  • Use weight = mass × gravitational field strength (W = mg) to find the weight of displaced fluid.
  • The upthrust equals this weight of displaced fluid.
  • Example: a cube 40 cm × 40 cm × 40 cm submerged to 20 cm displaces 32 000 cm³ of water, giving a mass of 32 kg and an upthrust of 320 N (with g = 10 N/kg).

Key Equations and Units

  • p = F / A — pressure equals force normal to a surface divided by the area of that surface.
  • p = h ρ g — pressure due to a column of liquid.
  • Pressure is measured in pascals (Pa); 1 kPa = 1000 Pa.
  • Force is measured in newtons (N); large forces may be quoted in kN (1 kN = 1000 N).
  • Density is measured in kg/m³; gravitational field strength in N/kg.
  • Always convert areas from cm² to m² before substituting into equations.

Folien

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Übungsfragen

Gratis-Vorschau — 8 von 65 Fragen. Registriere dich, um alle zu sehen.
  1. 1.What is the correct definition of pressure?

    Easy
    • AThe force per unit area
    • BThe total force acting on a surface
    • CThe weight of an object
    • DThe volume of a fluid
  2. 2.Which of the following is the correct unit for pressure?

    Easy
    • ANewton (N)
    • BPascal (Pa)
    • CJoule (J)
    • DKilogram (kg)
  3. 3.The pressure in a fluid acts at right angles to any surface it contacts.

    Easy

    True or false?

  4. 4.Which of the following statements about atmospheric pressure are correct? (Select all that apply)

    Medium
    • AAtmospheric pressure decreases as altitude increases.
    • BAtmospheric pressure is caused by air molecules colliding with a surface.
    • CAtmospheric pressure increases as the density of air decreases.
    • DAtmospheric pressure at sea level is about 101 kPa.
    • EAtmospheric pressure is greater at the top of a mountain than at sea level.
  5. 5.How does the pressure beneath the surface of a liquid change with depth and density?

    Easy
    • AIt increases with depth and increases with density.
    • BIt increases with depth and decreases with density.
    • CIt decreases with depth and increases with density.
    • DIt decreases with depth and decreases with density.
  6. 6.A diver swims deeper into a lake. What happens to the pressure of the water on the diver?

    Medium
    • AIt increases.
    • BIt decreases.
    • CIt stays the same.
    • DIt first increases then decreases.
  7. 7.Why is the total pressure on a diver greater than just the pressure due to the water above the diver?

    Medium
    • ABecause the atmosphere also exerts pressure on the diver.
    • BBecause the diver's body creates additional pressure.
    • CBecause water pressure acts in all directions.
    • DBecause the diver is moving.
  8. 8.An aeroplane gains height after take-off. Which two factors affect the atmospheric pressure on the aeroplane as it rises?

    Medium
    • AThe density of the air and the height above the surface
    • BThe speed of the aeroplane and the temperature of the air
    • CThe weight of the aeroplane and the volume of air displaced
    • DThe gravitational field strength and the density of the aeroplane

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