Some very hot rocks have a temperature of $320^{o} C$ $320 ^o C$ and a specific heat of $240 \frac{J}{K g \cdot K}$ $240 J/(Kg*K)$ . The rocks are bathed in $16 L$ $16 L$ of water at $70^{o} C$ $70 ^oC$ . If the heat of the rocks completely vaporizes the water, what is the minimum combined mass of the rocks?

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Some very hot rocks have a temperature of $320^{o} C$ $320 ^o C$ and a specific heat of $240 \frac{J}{K g \cdot K}$ $240 J/(Kg*K)$ . The rocks are bathed in $16 L$ $16 L$ of water at $70^{o} C$ $70 ^oC$ . If the heat of the rocks completely vaporizes the water, what is the minimum combined mass of the rocks?

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Answer 1 · 2018-03-03T21:13:19

About 720 kg

Explanation:

Let us first calculate how much heat would be required to completely vaporize the water

So
$q= mcDeltat+mL_v$
$(16 kg)(4184J/(kgC))(100°C-70 °C)+ (2,260,000 J/"kg")(16 kg)=$
$2,008,320 J+36,160,000 J= 38,168, 320 J$

So now for the rocks, the heat lost should be:
$q=-mcDeltat$
$q= m*-(240J/(kgK))(373 K-593 K)$
$38168320 J= 52800J/(kg)*m$
$m=720 kg$

Assumption made was: There was no more temperature rise after the water was completely vaporized, so that the final temperature of the system was 100 °C or 373 K

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Some very hot rocks have a temperature of 320 ^o C320oC320 ^o C and a specific heat of 240 J/(Kg*K)240JKg⋅K240 J/(Kg*K). The rocks are bathed in 16 L16L16 L of water at 70 ^oC70oC70 ^oC. If the heat of the rocks completely vaporizes the water, what is the minimum combined mass of the rocks?

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