Consider the combustion of liquid CH in oxygen gas to produce carbon dioxide gas and water vapor. In an experiment, 0.1063 g of 8 CH, is combusted to produce enough heat to raise the temperature of 5 8 150.0 g of water by 7.630 °C. If -4789 J of heat was produced from the combustion of 0.001561 moles of C₂H₂, what is the enthalpy change (in kJ/mol) for the combustion of C₂H₂? 5 8

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8
Consider the combustion of liquid CH in oxygen gas to produce
carbon dioxide gas and water vapor. In an experiment, 0.1063 g of
CH is combusted to produce enough heat to raise the temperature of
150.0 g of water by 7.630 °C.
8
If-4789 J of heat was produced from the combustion of 0.001561
moles of C₂H₂, what is the enthalpy change (in kJ/mol) for the
8⁹
combustion of CH?
Transcribed Image Text:8 Consider the combustion of liquid CH in oxygen gas to produce carbon dioxide gas and water vapor. In an experiment, 0.1063 g of CH is combusted to produce enough heat to raise the temperature of 150.0 g of water by 7.630 °C. 8 If-4789 J of heat was produced from the combustion of 0.001561 moles of C₂H₂, what is the enthalpy change (in kJ/mol) for the 8⁹ combustion of CH?
Expert Solution
Step 1

m = mass of water = 150.0 g

C = specific heat of water = 4.184 J/gºC

∆T = change in temperature = 7.630ºC 

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