What is the specific heat capacity of a 50-gram piece of 100°C metal that will change 400 grams of 20°C water to 22°C?

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What is the specific heat capacity of a 50-gram piece of 100°C metal that will change 400 grams of 20°C water to 22°C?

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Answer 1 · 2016-05-20T21:36:04

$s_{metal} = 0.86 \frac{J}{g \cdot^{\circ} C}$ $s_("metal")=0.86J/(g*""^@C)$

Explanation:

According to the law of conservation of energy that sates:
Energy cannot be created nor destroyed, we can conclude that the energy lost from the metal is absorbed by water, and therefore;

$q_{l o s t} = q_{gained}$ $q_(lost)=q_("gained")$

in here, the metal will lose heat and water will gain heat. Note that the specific heat capacity of water is $s = 4.18 \frac{J}{g \cdot^{\circ} C}$ $s=4.18J/(g*""^@C)$ .

Thus, $m \times s_{metal} \times Δ T = m \times s_{w a t e r} \times Δ T$ $mxxs_("metal")xxDeltaT = mxxs_(water)xxDeltaT$

$50cancel(g)xxs_("metal")xx(100cancel(""^@C)-22cancel(""^@C))=400cancel(g)xx4.18J/(g*""^@C)xx(22cancel(""^@C)-20cancel(""^@C))$

Now we can solve for the specific heat capacity of the metal and we get:

$=>s_("metal")=0.86J/(g*""^@C)$

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What is the specific heat capacity of a 50-gram piece of 100°C metal that will change 400 grams of 20°C water to 22°C?

1 Answer

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