Question

1. Calculate the difference, to the nearest kJ, in the amount of heat energy required to...

1. Calculate the difference, to the nearest kJ, in the amount of heat energy required to melt 500g of ice at 0 degrees Celsius and to evaporate 500g of water at 100 degrees Celsius.

2. Calculate the mass of water that could be evaporated at 100 degrees Celsius if 1000 kJ of heat were absorbed by the water.

0 0
Add a comment Improve this question Transcribed image text
Answer #1

The heat of fusion for water at 0 °C is approximately 334 joules (79.7 calories) per gram

The heat of vaporization for water at 0 °C is approximately 2260 joules (540 calories) per gram

The amount of heat energy required to melt 500g of ice at 0 degrees Celsius is calculated as follows:

334 joules / gram * 500 grams

= 167000 J

The amount of heat energy required to evaporate 500g of water at 100 degrees is calculated as follows:

2260 joules / gram * 500 grams

= 1130000 J

The difference, to the nearest kJ, in the amount of heat energy required to melt 500g of ice at 0 degrees Celsius and to evaporate 500g of water at 100 degrees Celsius is calculate as follows:

1130000 J - 167000 J

= 963000 J*1 KJ/1000 J

= 963 KJ

Now calculate the mass of water that could be evaporated at 100 degrees Celsius if 1000 kJ of heat were absorbed by the water as follows:

The heat of vaporization for water at 100 °C is approximately 2260 joules (540 calories) per gram

the mass of water = Total heat / heat of vaporization per gram

= ( 1000 kJ *1000 J/1 kj) 2260 joule / g

= 442.5 g

Add a comment
Know the answer?
Add Answer to:
1. Calculate the difference, to the nearest kJ, in the amount of heat energy required to...
Your Answer:

Post as a guest

Your Name:

What's your source?

Earn Coins

Coins can be redeemed for fabulous gifts.

Not the answer you're looking for? Ask your own homework help question. Our experts will answer your question WITHIN MINUTES for Free.
Similar Homework Help Questions
  • calculate the amount of heat in KJ that is required to heat 25.0g of ice from...

    calculate the amount of heat in KJ that is required to heat 25.0g of ice from -25c to 105degrees celciusto 105 degrees celcius in a close vessel and sketch a heating curve for the process.The specific heat of ice is 2.11J/(g.degrees celcius);4.18J/(g.degrees celcius for water2.00J/g.degrees celcius.DH for water is 6.01KJ/mol;DH for water 40.67KJ/mol

  • 13,16,19 1. Which unit of measure represents the greater change amount of temperature change: Fahremheit or...

    13,16,19 1. Which unit of measure represents the greater change amount of temperature change: Fahremheit or Celsius EXPLAIN YOUR ANSWER in a few words. 14 A) Convert 42 degC to degF. B) At what temperature, if any, do the Fahremheit and Celsius scales read the same number? 15. 180 dęgF to Kelvin degrees 80'F-32)xA+213.15:355.372K 16. Given a temperature of so degC, what would be the new temperature in degC if the temperature of the material were to triple? 17. How...

  • Calculate the amount of heat in kJ that is required to heat 20.0 g of ice...

    Calculate the amount of heat in kJ that is required to heat 20.0 g of ice from -25 ºC to 90 ºC, and sketch a heating curve for the process. The specific heat of ice is 2.11 J/( g. ºC); water 4.18 J/( g. ºC) and the ΔHfus for water is 6.01 kJ/mol

  • a) Calculate the total amount of energy (cal) that is needed to melt 10.0 kg of...

    a) Calculate the total amount of energy (cal) that is needed to melt 10.0 kg of ice at 0.0°C. b) Calculate the total amount of energy (J) that is needed to melt 10.0 kg of ice at 0.0°C c) Calculate the total amount of energy (cal) that is needed to raise the temperature of 10.0 kg of water from 0.0°C to 20.0°C. d) Calculate the total amount of energy (cal) that is needed to melt 10.0 kg of ice at...

  • If 1340 kJ of heat is required to melt 4.00 kg of ice at 0 ℃℃...

    If 1340 kJ of heat is required to melt 4.00 kg of ice at 0 ℃℃ into water at 0 ℃℃  , what is the heat of fusion of water?

  • Question 5 How much heat (in kJ) is required to evaporate 1.54 mol of acetone at...

    Question 5 How much heat (in kJ) is required to evaporate 1.54 mol of acetone at the boiling point the values from the CH122 Equation Sheet for this question) 1 pts Question 6 What mass of ice (ing) can be melted if 8.42 kJ of thermal energy are added at the freezing point? Use molar mass = 18.02 g/mol D Question 5 1 pts How much heat (in kJ) is required to evaporate 1.54 mol of acetone at the boiling...

  • At 1 atm, how much energy is required to heat 0.0550 kg of ice at -22.0...

    At 1 atm, how much energy is required to heat 0.0550 kg of ice at -22.0 °C to steam at 129.0 °C? STRATEGY 1. Calculate the energy needed for each temperature change or phase change individually. A. The energy needed to heat 0.0550 kg of ice from -22.0 C to its melting point. B. The energy needed to melt 0.0550 kg of ice at its melting point C. The energy needed to heat 0.0550 kg of liquid water from the...

  • A Student wants to convert 75.0 g of ice at 0 degrees C to 75.0 g...

    A Student wants to convert 75.0 g of ice at 0 degrees C to 75.0 g of liquid water at 60 degrees C. a) Sketch the heating curve on the axis for the melting of 75g of ice at 0 degrees C followed by the subsequent heating of the water formed to 60 degrees C. b) What is the total heat needed to melt the 75g of ice? c) What is the total amount of heat required to raise the...

  • Using the provided data, calculate the amount of heat, in kJ, required to warm 21.7 g...

    Using the provided data, calculate the amount of heat, in kJ, required to warm 21.7 g of solid water, initially at -10. °C, to gaseous water at 112. °C. water molar mass 18.0153 g/mol melting point 0. °C boiling point 100. °C ΔHfus 6.02 kJ/mol ΔHvap at bp 40.7 kJ/mol Cs, solid 2.09 J/g⋅°C Cs, liquid 4.18 J/g⋅°C Cs, gas 1.87 J/g⋅°C 72.4 kJ 57.6 kJ 58.5 kJ 66.3 kJ 13.9 kJ

  • 30. How much heat energy, in joules, is required to raise the temperature of 1 mole of sulfur from 100. to 500.°C? S...

    30. How much heat energy, in joules, is required to raise the temperature of 1 mole of sulfur from 100. to 500.°C? Specific heat for sulfur is 0.705 J/g-°C. a. 280 b. 1.28 X 104 c. 9.04 X 103 d. 22.6 e. 567 31. What is the final temperature, in °C, when 60.0 g of water at 80°C is mixed with 40.0 g of water at 25°C? The specific heat of water is 4.184 J/g-°C. a. 53 b. 58 c....

ADVERTISEMENT
Free Homework Help App
Download From Google Play
Scan Your Homework
to Get Instant Free Answers
Need Online Homework Help?
Ask a Question
Get Answers For Free
Most questions answered within 3 hours.
ADVERTISEMENT
ADVERTISEMENT
ADVERTISEMENT