AP Chemistry calorimetry key terms

Key terms related to calorimetry important for AP Chemistry understanding and exam preparation.

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What is calorimetry?

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The measurement of heat transfer in chemical reactions.

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Quiz(17 vragen)

Vraag 1 van 17

1. What does a calorimeter measure?

Termen in deze set(25)

What is calorimetry?

The measurement of heat transfer in chemical reactions.

Define specific heat capacity.

The amount of heat required to raise the temperature of 1 gram of a substance by 1 °C.

Fill in the blank: q = ____.

The heat absorbed or released, often calculated as q=mcriangleT\displaystyle q = mc riangle T.

True or false: Calorimetry can only measure exothermic reactions.

False, because it measures both exothermic and endothermic reactions.

What is a calorimeter?

An instrument used to measure the heat of chemical reactions.

Difference between endothermic and exothermic.

Endothermic absorbs heat; exothermic releases heat.

What is the formula for heat transfer?

The formula is q=mcriangleT\displaystyle q = mc riangle T where m\displaystyle m is mass, c\displaystyle c is specific heat, and riangleT\displaystyle riangle T is temperature change.

Define enthalpy change (ΔH).

The heat content change of a system at constant pressure.

True or false: A higher specific heat means a substance heats up quickly.

False, because a higher specific heat means it requires more energy to change temperature.

What is the purpose of a bomb calorimeter?

To measure the heat of combustion reactions under constant volume.

Define heat capacity.

The amount of heat needed to increase the temperature of an object by 1 °C.

Fill in the blank: In calorimetry, the surroundings are often treated as ____.

The system's heat reservoir, usually water.

Which is NOT a type of calorimeter?

Thermometer.

What is the relationship between heat and temperature change?

Heat is proportional to temperature change for a given mass and specific heat.

Difference between constant pressure and constant volume calorimetry.

Constant pressure measures enthalpy; constant volume measures internal energy.

What does a negative ΔH indicate?

The reaction is exothermic, releasing heat to the surroundings.

True or false: Calorimetry can be used to determine reaction rates.

False, because it measures heat changes, not reaction rates.

Fill in the blank: The unit of heat is ____.

Joules (J) or calories.

What is the heat of fusion?

The energy required to change a substance from solid to liquid at its melting point.

Define the term 'thermal equilibrium.'

The state where two substances reach the same temperature and heat transfer stops.

Difference between q_p and q_v.

q_p is heat at constant pressure; q_v is heat at constant volume.

What is Hess's Law?

The total enthalpy change for a reaction is the sum of changes for individual steps.

Fill in the blank: The symbol ΔH_f refers to the ____ of formation.

Standard enthalpy change of formation.

True or false: Water has a high specific heat capacity.

True, because it can absorb a lot of heat before changing temperature.

What is the heat of vaporization?

The energy required to change a substance from liquid to gas at its boiling point.

Vragen in deze set(17)

1. What does a calorimeter measure?

A.A. Heat transfer
B.B. Pressure
C.C. Volume
D.D. Density

2. Which statement about specific heat is true?

A.A. It is the same for all substances.
B.B. It indicates how fast a substance heats up.
C.C. It varies for different substances.
D.D. It is always a negative value.

3. What does a negative enthalpy change (ΔH) indicate?

A.A. The reaction absorbs heat
B.B. The reaction releases heat
C.C. The reaction is at equilibrium
D.D. The reaction is spontaneous

4. Which calorimeter is used for measuring combustion reactions?

A.A. Coffee cup calorimeter
B.B. Bomb calorimeter
C.C. Simple calorimeter
D.D. Water calorimeter

5. If the specific heat of a substance is high, which is true?

A.A. It heats up quickly.
B.B. It requires more energy to heat.
C.C. It cools quickly.
D.D. It has low thermal conductivity.

6. Which of the following is NOT a unit of heat?

A.A. Joules
B.B. Calories
C.C. Kilojoules
D.D. Liters

7. What does the heat of fusion refer to?

A.A. Solid to gas
B.B. Liquid to gas
C.C. Solid to liquid
D.D. Liquid to solid

8. Which process absorbs heat?

A.A. Freezing
B.B. Melting
C.C. Condensation
D.D. Combustion

9. In a calorimetry experiment, what is the system?

A.A. The calorimeter
B.B. The container
C.C. The substance undergoing reaction
D.D. The surroundings

10. What is thermal equilibrium?

A.A. Different temperatures
B.B. Equal temperatures
C.C. No heat transfer
D.D. Constant volume

11. Which of the following describes Hess's Law?

A.A. Heat is conserved
B.B. Total heat change equals sum of steps
C.C. Heat changes are spontaneous
D.D. Heat can be ignored in reactions

12. What does q represent in calorimetry equations?

A.A. Mass
B.B. Temperature
C.C. Heat
D.D. Entropy

13. What is the primary purpose of a calorimeter?

A.A. Measure pressure
B.B. Measure temperature
C.C. Measure heat changes
D.D. Measure concentration

14. Which statement is true about a substance with low specific heat capacity?

A.A. Absorbs heat slowly
B.B. Heats up quickly
C.C. Requires more energy
D.D. Is always solid

15. What happens in an exothermic reaction?

A.A. Heat is absorbed
B.B. Heat is released
C.C. No temperature change
D.D. It is spontaneous

16. Which is an example of an endothermic process?

A.A. Combustion
B.B. Photosynthesis
C.C. Freezing
D.D. Condensation

17. What does the term 'enthalpy' refer to?

A.A. Total heat of a system
B.B. Volume of gas
C.C. Weight of a substance
D.D. Speed of reaction

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