Answer:
[tex]T_2=571.9K[/tex]
Explanation:
Hello,
In this case, we consider the following formula defining the energy and the temperature change for the sample of iron:
[tex]Q=n_{Fe}Cp_{Fe}(T_2-T_1)[/tex]
Now, solving the final temperature, considering a positive inlet heat, we have:
[tex]T_2=T_1+\frac{Q}{n_{Fe}Cp{Fe}} =293K+\frac{3500J}{0.5mol*25.1J/(mol*K)} \\T_2=571.9K[/tex]
Best regards.
Answer:
Explanation:
Step 1: Data given
Number of heat transfer = 3500 J
Number of moles of iron = 0.5 moles
Initial temperature = 293 K
The molar heat of iron is 25.1 J/(mol*K)
Step 2: Calculate ΔT
Q = n* C * ΔT
⇒with Q = the heat transfer = 3500 J of energy
⇒with n = the number of moles iron = 0.5 moles
⇒with C = the molar heat of iron = 25.1 J/mol*K
⇒ΔT = the change of temperature = T2 - T1 = T2 - 293 K
3500 J = 0.5 moles *25.1 J/mol * K * ΔT
ΔT = 278.9
Step 3: Calculate ΔT
ΔT = 278.9 = T2 - T1 = T2 - 293 K
T2 = 278.9 + 293 K
T2 = 551.9 K
