Respuesta :
Answer:
16.6 kJ/°C
Explanation:
given,
Amount of heat absorbed = 45 kJ
initial temperature, T₁ = 25.5°C
final temperature, T₂ = 28.2°C
change in temperature = T₂ - T₁
= 28.2 - 25.5 = 2.7° C
[tex]Heat\ capacity = \dfrac{Heat\ absorbed}{\Delta T}[/tex]
[tex]Heat\ capacity = \dfrac{45\ kJ}{2.7}[/tex]
[tex]Heat\ capacity = 16.6\ kJ/^0C[/tex]
Heat capacity of the object is equal to 16.6 kJ/°C
Answer:
16666.67 J/°C
Explanation:
t1 = 25.5 °C
T2 = 28.2 °C
heat, H = 45 kJ = 45000 J
the amount of heat required to raise the temperature of substance by 1 °C is called heat capacity.
Heat capacity = heat / rise in temperature
heat capacity = 45000 / ( 28.2 - 25.5)
heat capacity = 16666.67 J/°C
Thus, the heat capacity of the substance is 16666.67 J/°C.
