Answer:
15.33° C
Step-by-step explanation:
We are given the following;
Mass of water as 27.10 g
Initial temperature of water is 25°C
But, K = °C + 273.15
Thus, temperature of water is 298.15 K
Specific heat capacity of gold is 0.128 J/g°C
Mass of gold sample as 182.0 g
The final temperature of the mixture is 27.5°C
we are required to calculate the initial temperature of gold sample;
Step 1: Calculating the amount of heat absorbed by water
We know that, heat absorbed, Q = mcΔT
Change in temperature, ΔT = 27.5°C - 25°C
= 2.5°C
Therefore;
Heat absorbed by water = 27.10 g × 4.184 J/g°C × 2.5°C
= 283.466 Joules
Step 2: Calculating the amount of heat released by gold sample
Q = mcΔT
Assuming the initial temperature of gold sample is X°C
Therefore, change in temperature, ΔT = (27.5 - X)°
Thus;
Q = 182.0 g × 0.128 J/g°C × (27.5 - X)°
= 640.64 - 23.296X Joules
Step 3: Calculating the initial temperature of gold, X°C
We need to know that;
Heat absorbed by water is equivalent to heat released by the gold sample
Therefore;
640.64 - 23.296X Joules = 283.466 Joules
Combining the like terms ;
23.296X = 357.174
X = 15.33°C
Therefore, the initial temperature of the gold sample is 15.33°C