A 3800-mL flask is initially open in a room containing air at 1.00 atm and 20°C. The flask is then closed and immersed in boiling water. When the air in the flask has reached thermodynamic equilibrium, the flask is opened and air is allowed to escape. The flask is then closed and cooled back to 20°C. Part A Find the maximum pressure reached in the flask. Express your answer in atmospheres to three significant figures. ΑΣφ ? Pmax = atm Submit Request Answer Part B Find the number of moles that escape when air is released. Express your answer in moles to three significant figures. ? na =

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Chapter1: Units, Trigonometry. And Vectors
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Item 7
A 3800-mL flask is initially open in a room containing air at
1.00 atm and 20°C. The flask is then closed and immersed
in boiling water. When the air in the flask has reached
thermodynamic equilibrium, the flask is opened and air is
allowed to escape. The flask is then closed and cooled back
to 20°C.
nα ΑΣφ
?
n2 =
mol
Submit
Request Answer
Part C
Find the final pressure in the flask.
Express your answer in atmospheres to three significant figures.
atm
Submit
Request Answer
Transcribed Image Text:Item 7 A 3800-mL flask is initially open in a room containing air at 1.00 atm and 20°C. The flask is then closed and immersed in boiling water. When the air in the flask has reached thermodynamic equilibrium, the flask is opened and air is allowed to escape. The flask is then closed and cooled back to 20°C. nα ΑΣφ ? n2 = mol Submit Request Answer Part C Find the final pressure in the flask. Express your answer in atmospheres to three significant figures. atm Submit Request Answer
Item 7
A 3800-mL flask is initially open in a room containing air at
1.00 atm and 20°C. The flask is then closed and immersed
in boiling water. When the air in the flask has reached
thermodynamic equilibrium, the flask is opened and air is
allowed to escape. The flask is then closed and cooled back
to 20°C.
Part A
Find the maximum pressure reached in the flask.
Express your answer in atmospheres to three significant figures.
nνα ΑΣφ
Pmax =
atm
Submit
Request Answer
Part B
Find the number of moles that escape when air is released.
Express your answer in moles to three significant figures.
n ΑΣφ
n2 =
mol
Transcribed Image Text:Item 7 A 3800-mL flask is initially open in a room containing air at 1.00 atm and 20°C. The flask is then closed and immersed in boiling water. When the air in the flask has reached thermodynamic equilibrium, the flask is opened and air is allowed to escape. The flask is then closed and cooled back to 20°C. Part A Find the maximum pressure reached in the flask. Express your answer in atmospheres to three significant figures. nνα ΑΣφ Pmax = atm Submit Request Answer Part B Find the number of moles that escape when air is released. Express your answer in moles to three significant figures. n ΑΣφ n2 = mol
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