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M olar enthalpy of neutralization. Raw data. Calculation heat released. amount of energy released temperature rise = 32.0 o C – 21.0 o C = 6 .0 o C heat absorbed by the water = heat released by reaction = mass of water x shc water x temperature rise
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Calculation heat released amount of energy released • temperature rise = 32.0 oC– 21.0 oC =6.0oC • heat absorbed by the water = heat released byreaction = mass of water xshcwaterx temperaturerise =50.0 gx 4.2 J g-1x6.0 °C = 1260 J
Calculation for 1 mole of acid • moles = concentration x volume = 1.0 mol dm-3x 0.025 dm-3 = 0.025 moles • scaling up to 1 mole ofacidgives 1260/ 0.025 = 50400 J Answer: molar enthalpy of neutralization = -50.4kJ/mol