Answer:
Specific heat capacity, = 1.2942 J/g°C
Explanation:
Given the following data;
Heat capacity = 685 J
Mass = 7.9 g
Initial temperature = 31°C
Final temperature = 98°C
To find the specific heat capacity of the substance;
Heat capacity is given by the formula;
[tex] Q = mcdt[/tex]
Where;
Q represents the heat capacity or quantity of heat.
m represents the mass of an object.
c represents the specific heat capacity of water.
dt represents the change in temperature.
dt = T2 - T1
dt = 98 - 31
dt = 67°C
Making c the subject of formula, we have;
[tex] c = \frac {Q}{mdt} [/tex]
Substituting into the equation, we have;
[tex] c = \frac {685}{7.9*67} [/tex]
[tex] c = \frac {685}{529.3} [/tex]
Specific heat capacity, = 1.2942 J/g°C
