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Cameroon Physics: Density, Pressure & Surface Tension

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Quick true/false quiz on density, pressure, Archimedes & surface tension.

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Cameroon

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Cameroon Physics: Density, Pressure & Surface Tension
 

Cameroon Physics: Density, Pressure & Surface TensionVersion en ligne

Quick true/false quiz on density, pressure, Archimedes & surface tension.

par YAKILI LMS
1

Surface tension acts along the surface and tends to minimize the surface area.

2

A manometer can be used to compare the density of two liquids using a U-tube.

3

In a U-tube manometer, the liquid with greater density will have the smaller height change for a given pressure difference.

4

The buoyant force equals the weight of the displaced fluid, regardless of the object's shape.

5

Liquids with high surface tension have stronger cohesive forces at the surface than liquids with low surface tension.

6

A liquid with high viscosity does not directly affect surface tension but affects fluid flow.

7

A higher surface tension leads to larger upward menisci in capillary tubes of the same radius.

8

A soap film has surface tension due to cohesive forces within the film and adhesive forces with the surrounding air.

9

The contact line at the edge of a liquid surface is known as the contact angle region.

10

Pressure in a liquid increases with depth in all directions.

11

Surface tension on a clean water surface is influenced by temperature: higher temperature reduces surface tension.

12

Capillary rise or fall depends on the balance of surface tension, gravity, and the liquid's interaction with the tube material.

13

An object in air experiences a buoyant force equal to the weight of displaced air if it is submerged in air (rare in practice).

14

In a U-tube experiment, the heavier liquid side will have a smaller height difference for the same pressure change.

15

If ρ is doubled while height and gravity stay the same, liquid pressure at a given depth doubles.

16

Young-Laplace equation relates pressure difference across a curved surface to surface tension and curvature.

17

Surface tension arises from cohesive forces at the surface of a liquid.

18

The presence of surfactants reduces surface tension.

19

A denser liquid exerts greater pressure at the same depth than a less dense liquid.

20

Density is mass per unit volume.

21

Buoyant force acts upward on a submerged object.

22

The contact angle between a liquid and a solid affects how a liquid wets the surface.

23

Pressure at a point in a fluid depends on depth, not on the horizontal position of the point.

24

The depth of a fluid column determines the hydrostatic pressure at the bottom of the column.

25

The unit of work is the joule, not the unit of pressure.

26

The density of a gas is much lower than the density of a liquid under normal conditions.

27

Air density is about 1.2 kg/m^3 at sea level, much less than water density.

28

Archimedes' principle states that an object submerged in a fluid experiences an upthrust equal to the weight of the displaced fluid.

29

Archimedes' principle can be used to determine the density of irregularly shaped objects by submerging them in water.

30

The density of water at 4°C is approximately 1000 kg/m^3.

31

An object denser than the liquid it is in tends to sink.

32

The unit of density is kg/m^3, not m^2/s.

33

A barometer measures atmospheric pressure, not the pressure inside a liquid at depth.

34

In a liquid, pressure increases with both density and depth.

35

Archimedes' principle applies to liquids and gases alike, for buoyant force consideration.

36

Density has units of kilograms per cubic meter (kg/m^3).

37

The bottom of a submerged object experiences the greatest hydrostatic pressure.

38

Pressure in a fluid at rest is isotropic, meaning it acts equally in all directions at a given depth.

39

The formula for liquid pressure is P = ρgh, where ρ is fluid density, g is gravitational acceleration, and h is depth.

40

An object less dense than the liquid it is in tends to float.

41

The SI unit of pressure is the pascal (Pa).

42

Pressure increases with depth in a fluid due to the weight of the fluid above.

43

When an object is fully submerged, it experiences hydrostatic pressure on all surfaces.

44

Liquid pressure at a given depth depends only on the height of the fluid column above it, not on the shape of the container.

45

When you push on a fluid within a closed container, the pressure is transmitted equally throughout the fluid (Pascal's principle).

46

Capillary action combines cohesion and adhesion and can draw liquid up narrow tubes.

47

Surface tension can support small weighted objects if the weight is within the limiting capillary force.

48

The less dense an object compared to the surrounding liquid, the greater its buoyant force upwards.

49

Water droplets form spherical shapes in absence of external forces due to surface tension.

50

A manometer measures pressure differences using the heights of column of liquid.

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