Respuesta :
Answer:- [tex]\frac{382.69J}{0C}[/tex] .
Solution:- Mass of Iron added to water is 93.3 g. Initial temperature of iron metal is 65.58 degree C and final temperature of the system is 19.68 degree C.
temperature change, [tex]\Delta T[/tex] for iron metal = 65.58 - 19.68 = 45.9 degree C
specific heat for the metal is given as 0.444 J per g per degree C.
let's calculate the heat lost by iron metal using the equation:
[tex]q=mc\Delta T[/tex]
where, q is the heat energy, m is mass, c is specific heat and delta T is change in temperature. let's plug in the values and calculate q for iron metal:
[tex]q=93.3g(45.9^0C)(\frac{0.444J}{g.^0C})[/tex]
q = 1901.42 J
Using same equation we will calculate the heat gained by water.
mass of water is 75.0 g.
[tex]\Delta T[/tex] for water = 19.68 - 16.95 = 2.73 degree C
specific heat for water is 4.184 J pr g per degree C. Let's plug in the values:
[tex]q=75.0g(\frac{4.184J}{g.^0C})(2.73^0C)[/tex]
q = 856.674 J
Total heat lost by iron metal is the sum of heat gained by water and calorimeter.
So, heat gained by calorimeter = heat lost by iron metal - geat gained by water
heat gained by calorimeter = 1901.42 J - 856.674 J = 1044.746 J
Change in temperature for calrimeter is same as for water that is 2.73 degree C
For calorimeter, [tex]q=C.\Delta T[/tex]
[tex]C=\frac{q}{\Delta T}[/tex]
[tex]C=\frac{1044.746J}{2.73^0C}[/tex]
[tex]C=\frac{382.69J}{0C}[/tex]
So, the heat capacity of calorimeter is [tex]\frac{382.69J}{0C}[/tex] .
