In Lab 8 you will be determining the enthalpy change accompanying various phase
ID: 632201 • Letter: I
Question
In Lab 8 you will be determining the enthalpy change accompanying various phase changes. In this pre-lab assignment you will go through some of the calculations required for Part 2 of this experiment, in which you determine Delta H fusion of ice. To determine Delta H fusion of ice you will essentially add ice to water, allow the ice to melt, and note the temperature change of the water. Let's first get an idea of the ratio of water to ice that you will need. The value for the Delta H fusion of ice is 6.0 kJ/mol. Let's suppose you start with 39.9 g of ice. Determine Delta H for melting 39.9 g of ice. 13300 J Now let's suppose you add the 39.9 g of ice to water at a normal temperature in the lab (25 degree C). If you want to add the ice to a minimum amount of water to melt all of the ice, what will be the final temperature of the water in the calorimeter after all of the ice has melted? 0 degree C What is the minimum mass of 25degreeC water required to melt all 39.9 g of ice? 127 g Given that the density of water at 25 degree C is 0.9970 g/mL, what is the minimum volume of water required to melt 39.9 g of ice?Explanation / Answer
4) delta H for melting of ice = heat it loses to come from 25 degree celsius to 0 ------------------=>m*L*25=13300
--------=>L=4.184 M=127.15g
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