Quiz: Fluid Properties and Cardiac Flow — 11 questions

Detailed questions and answers

1. What happens to a solvent’s freezing point when a solute is added?

It increases above the freezing point of the pure solvent.
It decreases below the freezing point of the pure solvent.
It remains equal to the freezing point of the pure solvent.
It changes the solvent’s boiling point but not its freezing point.

It decreases below the freezing point of the pure solvent.

Explanation

Freezing point depression refers to the lowering of a solvent’s freezing point after a solute is added. The increase in boiling point describes boiling-point elevation, which is a different colligative-property effect.

2. Why does adding salt cause water to freeze at a lower temperature?

The ions increase the temperature at which water molecules form ice.
The ions disrupt the formation of the extended solid ice structure.
The salt converts liquid water into a substance with a higher melting point.
The dissolved particles make water molecules form a more ordered ice network.

The ions disrupt the formation of the extended solid ice structure.

Explanation

Sodium and chloride ions attract water molecules and interfere with forming the large solid ice network, so the solution must be cooled further before freezing. The added ions do not promote a more ordered ice structure or raise the freezing temperature.

3. What does boiling-point elevation describe when a non-volatile solute is added to a solvent?

A decrease in the solvent’s boiling point.
No change in the solvent’s phase-transition temperatures.
A decrease in the solvent’s freezing point.
An increase in the solvent’s boiling point.

An increase in the solvent’s boiling point.

Explanation

Boiling-point elevation is the increase in a solvent’s boiling point caused by adding a non-volatile solute. A decrease in freezing point is instead associated with freezing point depression.

4. A solution has solute molality mm and solvent constant KbK_b. Which expression gives its boiling-point elevation relative to the pure solvent?

ΔTb=Kf×m\Delta T_b=K_f\times m
ΔTb=Kb×m\Delta T_b=K_b\times m
ΔTb=m−Kb\Delta T_b=m-K_b
ΔTb=Kbm\Delta T_b=\frac{K_b}{m}

$$\Delta T_b=K_b\times m$$

Explanation

The boiling-point elevation is calculated by multiplying the solvent’s boiling-point elevation constant by the solute molality, so ΔTb=Kb×m\Delta T_b=K_b\times m. The freezing-point constant applies to freezing-point depression, while division and subtraction do not represent the stated relationship.

5. What is freezing point depression?

The increase in a solvent’s boiling point when a solute is added.
The change in a solvent’s freezing point due to temperature fluctuations.
The process of a solvent turning into vapor at its boiling point.
The lowering of a solvent’s freezing point when a solute is added.

The lowering of a solvent’s freezing point when a solute is added.

Explanation

Freezing point depression is the phenomenon where the addition of a solute lowers the freezing point of a solvent. The other options describe different colligative properties or are incorrect descriptions of freezing point depression.

6. What is the primary effect of adding salt to water on its freezing point?

It causes the water to boil at a lower temperature.
It raises the freezing point by increasing water density.
It has no effect on the freezing point.
It lowers the freezing point by disrupting ice crystal formation.

It lowers the freezing point by disrupting ice crystal formation.

Explanation

Adding salt introduces ions that interfere with the formation of the ice crystal lattice, lowering the freezing point. The distractor suggesting it raises the freezing point is incorrect because salt's effect is to depress, not elevate, the freezing temperature.

7. What is the primary role of osmotic pressure in biological systems?

It directly controls the rate of chemical reactions within cells.
It regulates the movement of solvent across semipermeable membranes to balance solute concentrations.
It determines the temperature at which water boils in different environments.
It influences the viscosity of blood, affecting blood flow.

It regulates the movement of solvent across semipermeable membranes to balance solute concentrations.

Explanation

Osmotic pressure primarily functions to regulate the movement of solvent through semipermeable membranes, maintaining cellular and tissue homeostasis. It does not directly control reaction rates, boiling temperature, or blood viscosity, although these are related to other physical properties.

8. When was the concept of osmotic pressure first formally described in scientific literature?

In the mid-20th century, around 1950s
In the 17th century, during the 1600s
During the late 18th century, in the 1790s
In the early 19th century, around 1820s

In the early 19th century, around 1820s

Explanation

The formal description of osmotic pressure was developed in the early 19th century, with significant contributions made in the 1820s. The late 18th century predates the detailed understanding of osmotic phenomena, and the mid-20th century and 17th century are too late and too early, respectively, for the initial formal description.

9. How does tonicity differ from osmotic pressure in their effects on cells?

Tonicity measures the pressure exerted by plasma proteins, whereas osmotic pressure relates to the movement of water due to solute concentration.
Tonicity describes how extracellular solutions change cell volume by affecting osmosis, while osmotic pressure is the force needed to stop osmosis across a membrane.
Tonicity refers to the osmolarity of intracellular fluid, while osmotic pressure is the osmolarity of extracellular fluid.
Tonicity is the force that pulls water into blood vessels, and osmotic pressure is the change in cell volume caused by osmotic gradients.

Tonicity describes how extracellular solutions change cell volume by affecting osmosis, while osmotic pressure is the force needed to stop osmosis across a membrane.

Explanation

Tonicity specifically describes the effect of extracellular solutions on cell volume via osmosis, whereas osmotic pressure is the force required to prevent water movement across a membrane due to solute concentration differences.

10. Who proposed the fundamental principles explaining how water molecules organize into different states such as solid, liquid, and gas?

Theodor Schwann
Johannes Diderik van der Waals
Jules Verne
Albert Einstein

Johannes Diderik van der Waals

Explanation

Johannes Diderik van der Waals proposed the principles explaining the states and structure of water, including hydrogen bonding and molecular arrangements. The other scientists contributed to different fields, such as cell theory, physics, literature, and thermodynamics, but not specifically to water's states.

11. What is the primary cause of turbulence in blood flow within the aorta?

The presence of arterial plaques obstructing blood flow
Exceeding the critical velocity of 38 cm/sec for the vessel's diameter
An increase in blood pressure beyond systolic levels
A decrease in blood viscosity below normal levels

Exceeding the critical velocity of 38 cm/sec for the vessel's diameter

Explanation

Turbulence occurs when blood velocity exceeds the critical value of 38 cm/sec for a 2-cm-diameter aorta, disrupting laminar flow. Plaques or pressure changes can influence flow but do not directly cause turbulence at this specific velocity threshold.

Review with flashcards

Memorize the answers with 11 flashcards on Fluid Properties and Cardiac Flow.

What is freezing point depression?

It is the lowering of a solvent’s freezing point when a solute is added.

What is the formula for freezing point depression?

ΔTf=i×Kf×m\Delta T_f=i\times K_f\times m

What is boiling-point elevation?

The increase in a solvent’s boiling point when a non-volatile solute is added.

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