Answer:
103.78 Calories
Explanation:
Given:
Diameter of the plate = 5 cm
Radius of the plate = [tex]\frac{\textup{5}}{\textup{2}}[/tex] = 2.5 cm
Thickness, t = 1 cm
Specific gravity = 4.5
Molecular weight = 47.9 grams/mol
specific heat capacity = 25 J/mol.K
Increase in temperature = 17° F = 17/1.8 = 9.44° C = 9.44 K
Volume of plate = πr²h = π(2.5)²(1) = 19.635 cm³
density of water = 1 g/cm³
therefore,
Density of titanium = specific gravity × density of water
or
Density of titanium = 4.5 × 1 = 4.5 g/cm³
Mass of titanium = Density × Volume
= 4.5 g/cm³ × 19.635 cm³
= 88.3575 g
Number of moles of titanium present = [tex]\frac{\textup{Mass}}{\textup{Molar mass}}[/tex]
= [tex]\frac{\textup{88.3575 g}}{\textup{47.9 g/mol}}[/tex]
= 1.84 moles
Energy absorbed by plate
= Number of moles × Specific heat × change in temperature
= 1.84 × 25 × 9.44
= 434.24 J
now,
1 calories = 4.184 J
or
1 J = [tex]\frac{\textup{1}}{\textup{4.184}}[/tex] calories
therefore,
434.24 J = [tex]\frac{\textup{434.24}}{\textup{4.184}}[/tex] calories
= 103.78 Calories
