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3 moles of an ideal gas at a temperature of 27°C are mixed with 2 moles of an ideal gas at a temperature 227°C, determine the equilibrium temperature of the mixture, assuming no loss of energy.a)327°Cb)107°Cc)318°Cd)410°CCorrect answer is option 'B'. Can you explain this answer? for JEE 2025 is part of JEE preparation. The Question and answers have been prepared
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3 moles of an ideal gas at a temperature of 27°C are mixed with 2 moles of an ideal gas at a temperature 227°C, determine the equilibrium temperature of the mixture, assuming no loss of energy.a)327°Cb)107°Cc)318°Cd)410°CCorrect answer is option 'B'. Can you explain this answer?, a detailed solution for 3 moles of an ideal gas at a temperature of 27°C are mixed with 2 moles of an ideal gas at a temperature 227°C, determine the equilibrium temperature of the mixture, assuming no loss of energy.a)327°Cb)107°Cc)318°Cd)410°CCorrect answer is option 'B'. Can you explain this answer? has been provided alongside types of 3 moles of an ideal gas at a temperature of 27°C are mixed with 2 moles of an ideal gas at a temperature 227°C, determine the equilibrium temperature of the mixture, assuming no loss of energy.a)327°Cb)107°Cc)318°Cd)410°CCorrect answer is option 'B'. Can you explain this answer? theory, EduRev gives you an
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