What is the specific heat of titanium in j/(g⋅∘c) if it takes 89.7 j to raise the temperature of a 33.0 g block by 5.20 ∘c?

Specific heat capacity is the amount of energy required to raise one gram of substances by 1 degree celsius . Therefore specific heat capacity for tatanium is 89.7j /( 33.0g x5.2 degree celsius) = 0.52j/g degree celcius
Molar mass for tatanium is 47.9 g/mole
heat is therefore 47.9 g/mole x 0.52j/g =24.9j/mole

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jescaherga jescaherga · Answer 2 · 2019-10-21T22:11:36+02:00

Answer:

[tex] 0.52 \frac{J}{g~^{\circ}C}[/tex]

Explanation:

The to start with the equation:

[tex]Q=m~Cp[/tex]ΔT

Where:

Q= Heat (J)

m= mass (in grams)

Cp= Specific heat ([tex]\frac{J}{g~^{\circ}C}[/tex])

ΔT=Tfinal-Tinitial

Then we have to put the values into the equation:

[tex]89.7~J=33.0~g*Cp*5.20^{\circ}C[/tex]

The next step would be the to solve for "Cp":

[tex]Cp=\frac{89.7~J}{30.0~g*5.20^{\circ}C}=0.52 \frac{J}{g~^{\circ}C}[/tex]