Heat & Temperature

Q. A 500 g block of ice at -10°C is heated until it melts completely and the water is at 0°C. How much heat is required? (Specific heat of ice = 2.1 J/g°C, Latent heat of fusion = 334 J/g) (2000)
  • A. 1050 J
  • B. 1340 J
  • C. 1500 J
  • D. 2000 J
Q. A metal block of mass 2 kg at 100°C is placed in 1 kg of water at 20°C. What is the final temperature of the system? (Specific heat of water = 4.2 J/g°C, Specific heat of metal = 0.9 J/g°C)
  • A. 30°C
  • B. 40°C
  • C. 50°C
  • D. 60°C
Q. How much heat is required to convert 1 kg of water at 100°C to steam at 100°C? (Latent heat of vaporization = 2260 J/g)
  • A. 1000 J
  • B. 2260 J
  • C. 2260000 J
  • D. 100000 J
Q. If 1 kg of water is heated from 20°C to 100°C, how much heat is absorbed? (Specific heat of water = 4.2 J/g°C)
  • A. 3360 J
  • B. 4000 J
  • C. 4200 J
  • D. 4800 J
Q. If 100 g of water at 0°C is mixed with 100 g of water at 100°C, what will be the final temperature?
  • A. 50°C
  • B. 25°C
  • C. 75°C
  • D. 0°C
Q. If 100 g of water at 0°C is mixed with 100 g of water at 100°C, what will be the final temperature of the mixture?
  • A. 50°C
  • B. 25°C
  • C. 75°C
  • D. 0°C
Q. If 100 g of water at 80°C is mixed with 200 g of water at 20°C, what will be the final temperature?
  • A. 30°C
  • B. 40°C
  • C. 50°C
  • D. 60°C
Q. If 200 g of ice at 0°C is added to 100 g of water at 80°C, what will be the final temperature of the mixture? (Latent heat of fusion of ice = 334 J/g)
  • A. 0°C
  • B. 20°C
  • C. 40°C
  • D. 60°C
Q. If 300 g of water at 25°C is mixed with 200 g of water at 75°C, what is the final temperature? (Specific heat of water = 4.2 J/g°C)
  • A. 40°C
  • B. 50°C
  • C. 60°C
  • D. 70°C
Q. If the temperature of an ideal gas is doubled at constant volume, what happens to its pressure?
  • A. It halves
  • B. It remains the same
  • C. It doubles
  • D. It quadruples
Q. In which of the following materials does heat transfer occur primarily through conduction?
  • A. Metal
  • B. Water
  • C. Air
  • D. Vacuum
Q. In which of the following processes does the internal energy of a system remain constant?
  • A. Isothermal process
  • B. Adiabatic process
  • C. Isobaric process
  • D. Isochoric process
Q. In which of the following processes does the temperature of a gas increase?
  • A. Isothermal expansion
  • B. Adiabatic compression
  • C. Isobaric expansion
  • D. Isochoric cooling
Q. In which of the following processes does the temperature of a substance remain constant?
  • A. Heating
  • B. Cooling
  • C. Phase change
  • D. Compression
Q. In which of the following processes does the temperature of the system remain constant?
  • A. Isothermal process
  • B. Adiabatic process
  • C. Isobaric process
  • D. Isochoric process
Q. In which of the following scenarios does conduction occur?
  • A. Heating water in a pot
  • B. Sun warming the Earth
  • C. Wind blowing
  • D. Ice melting in a drink
Q. In which process does a gas do work on its surroundings?
  • A. Isothermal expansion
  • B. Adiabatic compression
  • C. Isochoric process
  • D. Isobaric process
Q. What happens to the temperature of a gas when it expands adiabatically?
  • A. It increases
  • B. It decreases
  • C. It remains constant
  • D. It depends on the gas
Q. What happens to the temperature of a substance during a phase change?
  • A. It increases
  • B. It decreases
  • C. It remains constant
  • D. It fluctuates
Q. What is the effect of increasing the temperature of a gas at constant volume?
  • A. Pressure decreases
  • B. Pressure increases
  • C. Volume increases
  • D. Density increases
Q. What is the final temperature when 200 g of water at 90°C is mixed with 300 g of water at 30°C?
  • A. 50°C
  • B. 60°C
  • C. 70°C
  • D. 80°C
Q. What is the heat required to raise the temperature of 250 g of aluminum from 25°C to 75°C? (Specific heat of aluminum = 0.9 J/g°C)
  • A. 4500 J
  • B. 5000 J
  • C. 6000 J
  • D. 7000 J
Q. What is the latent heat of fusion for ice?
  • A. 334 J/g
  • B. 2260 J/g
  • C. 4190 J/g
  • D. 1000 J/g
Q. What is the latent heat of fusion?
  • A. Heat required to change a solid to a liquid
  • B. Heat required to change a liquid to a gas
  • C. Heat required to change a gas to a solid
  • D. Heat required to change a liquid to a solid
Q. What is the principle behind a thermometer?
  • A. Expansion of liquid with temperature
  • B. Contraction of gas with temperature
  • C. Change in color with temperature
  • D. Change in pressure with temperature
Q. What is the relationship between temperature and kinetic energy of particles in a substance?
  • A. Directly proportional
  • B. Inversely proportional
  • C. No relationship
  • D. Depends on the substance
Q. What is the relationship between temperature and kinetic energy of particles?
  • A. Directly proportional
  • B. Inversely proportional
  • C. No relation
  • D. Exponential relation
Q. What is the SI unit of temperature?
  • A. Celsius
  • B. Fahrenheit
  • C. Kelvin
  • D. Rankine
Q. What is the specific heat capacity of water if 500 J of heat is required to raise the temperature of 100 g of water by 5°C?
  • A. 1 J/g°C
  • B. 2 J/g°C
  • C. 4 J/g°C
  • D. 5 J/g°C
Q. What is the specific heat capacity of water?
  • A. 1 J/g°C
  • B. 4.18 J/g°C
  • C. 2 J/g°C
  • D. 0.5 J/g°C
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