This question is based on flue gas of power plants. There is a gas that is at 20 Mpa pressure in the power plant turbine, and then expands into a smokestack to 1 atm (101.325kPa) as it is released to the atmosphere. The amount of energy the plant makes is 46 MJ per M^3 of gas that comes out of the smoke stack (power plant has 1GJ per second). A) If this is a perfect gas and the flue gas is at room temp (25 Celsius) what is the n, да ΔΝ AV We assume that the amount of gas expands in the smokestack of a power plant in 1 second reversibly B) Do this again but with irreversibly process. The flue gas behaves like a perfect gas
This question is based on flue gas of power plants. There is a gas that is at 20 Mpa pressure in the power plant turbine, and then expands into a smokestack to 1 atm (101.325kPa) as it is released to the atmosphere. The amount of energy the plant makes is 46 MJ per M^3 of gas that comes out of the smoke stack (power plant has 1GJ per second). A) If this is a perfect gas and the flue gas is at room temp (25 Celsius) what is the n, да ΔΝ AV We assume that the amount of gas expands in the smokestack of a power plant in 1 second reversibly B) Do this again but with irreversibly process. The flue gas behaves like a perfect gas
Elements Of Electromagnetics
7th Edition
ISBN:9780190698614
Author:Sadiku, Matthew N. O.
Publisher:Sadiku, Matthew N. O.
ChapterMA: Math Assessment
Section: Chapter Questions
Problem 1.1MA
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![This question is based on flue gas of power plants. There is a gas that is at 20 Mpa pressure
in the power plant turbine, and then expands into a smokestack to 1 atm (101.325 kPa) as it
is released to the atmosphere. The amount of energy the plant makes is 46 MJ per M^3 of
gas that comes out of the smoke stack (power plant has 1GJ per second).
A) If this is a perfect gas and the flue gas is at room temp (25 Celsius) what is the n,
да
ΔW
AU
We assume that the amount of gas expands in the smokestack of a power plant in 1 second reversibly
B) Do this again but with irreversibly process. The flue gas behaves like a perfect gas](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F98f55b86-7303-4c60-8f43-d1d4ebde1187%2Fde2757ed-5fab-40e4-ae01-099185c552c6%2Fmmqggis_processed.jpeg&w=3840&q=75)
Transcribed Image Text:This question is based on flue gas of power plants. There is a gas that is at 20 Mpa pressure
in the power plant turbine, and then expands into a smokestack to 1 atm (101.325 kPa) as it
is released to the atmosphere. The amount of energy the plant makes is 46 MJ per M^3 of
gas that comes out of the smoke stack (power plant has 1GJ per second).
A) If this is a perfect gas and the flue gas is at room temp (25 Celsius) what is the n,
да
ΔW
AU
We assume that the amount of gas expands in the smokestack of a power plant in 1 second reversibly
B) Do this again but with irreversibly process. The flue gas behaves like a perfect gas
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