Answer:
1835 J
Step-by-step explanation:
There are three heat flows in this question.
Heat lost by Fe + heat gained by water + heat gained by calorimeter = 0
q₁ + q₂ + q₃ = 0
m₁C₁ΔT₁ + m₂C₂ΔT₂ + q₃ = 0
Data:
m₁ = 65.06 g
C₁ = 0.450 J·°C⁻¹g⁻¹
Ti = 100.0 °C
T_f = 23.59 °C
m₂ = 32.49 g
C₂ = 4.184 J·°C⁻¹g⁻¹
Ti = 20.63 °C
T_f = 23.59 °C
Calculations:
(a) Heat lost by iron
ΔT₁ = 23.59 °C - 100.0 °C = -76.41 °C
q₁ = m₁C₁ΔT₁ = 65.06 g × 0.450 J·°C⁻¹g⁻¹ × (-76.41 °C) = -2237 J
(b) Heat gained by water
ΔT₂ = 23.59 °C - 20.63 °C = 2.96 °C
q₂ = m₂C₂ΔT₂ = 32.49 g × 4.184 J·°C⁻¹g⁻¹ × 2.96 °C = 402 J
(c) Heat gained by calorimeter
-2237 J + 402 J + q₃ = 0
-1835 J + q₃ = 0
q₃ = 1835 J
The heat gained by the calorimeter was 1835 J.