A chemical reaction transfers 6250 J of thermal energy into 12.0 moles of a ideal gas while the system expands by 2.00 x 102 m at a constant pressure of 1.25 x 105 Pa. HINT (a) To find the change in internal energy, first calculate the work done on the gas and then apply the first law of thermodynamics. (b) For an ideal gas constant pressure, PAV = NRAT. Click the hint button again to remove this hint. (a) Find the change in the internal energy (in ). (b) Calculate the change in temperature of the gas (in K). K

Physics for Scientists and Engineers with Modern Physics
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Author:Raymond A. Serway, John W. Jewett
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Chapter20: The Kinetic Theory Of Gases
Section: Chapter Questions
Problem 34AP: In a cylinder, a sample of an ideal gas with number of moles n undergoes an adiabatic process. (a)...
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A chemical reaction transfers 6250 J of thermal energy into 12.0 moles of an ideal gas while the system expands by 2.00 x 10-2 m3 at a constant pressure of 1.25 x 10o5 Pa.
HINT
(a) To find the change in internal energy, first calculate the work done on the gas and then apply the first law of thermodynamics. (b) For an ideal gas at constant pressure, PAV = NRAT.
Click the hint button again to remove this hint.
(a) Find the change in the internal energy (in J).
(b) Calculate the change in temperature of the gas (in K).
Transcribed Image Text:A chemical reaction transfers 6250 J of thermal energy into 12.0 moles of an ideal gas while the system expands by 2.00 x 10-2 m3 at a constant pressure of 1.25 x 10o5 Pa. HINT (a) To find the change in internal energy, first calculate the work done on the gas and then apply the first law of thermodynamics. (b) For an ideal gas at constant pressure, PAV = NRAT. Click the hint button again to remove this hint. (a) Find the change in the internal energy (in J). (b) Calculate the change in temperature of the gas (in K).
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