How many BTUs are removed from 2000 lbs. of ice at 32 F to give ice at 28 F?

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Prepare for the New Jersey Blue Seal Refrigeration Exam. Study with interactive quizzes featuring hints and detailed explanations. Ace your test and obtain the credentials you need!

Multiple Choice

How many BTUs are removed from 2000 lbs. of ice at 32 F to give ice at 28 F?

To determine how many BTUs are removed from 2000 lbs. of ice when cooling it from 32°F to 28°F, it is essential to consider the specific heat of ice. The specific heat of ice is 0.5 BTU/lb°F.

First, calculate the temperature change, or delta T, which is the difference between the initial and final temperatures. In this case, the temperature change is 32°F - 28°F, resulting in a delta T of 4°F.

Next, to find the total BTUs removed, use the formula:

BTUs = weight (lbs) × specific heat (BTU/lb°F) × temperature change (°F).

Substituting the known values:

BTUs = 2000 lbs × 0.5 BTU/lb°F × 4°F.

BTUs = 2000 × 0.5 × 4 = 4000 BTUs.

This calculation shows that 4000 BTUs are removed from the ice to cool it from 32°F to 28°F, making this the correct answer.

How many BTUs are removed from 2000 lbs. of ice at 32 F to give ice at 28 F?

Prepare for the New Jersey Blue Seal Refrigeration Exam. Study with interactive quizzes featuring hints and detailed explanations. Ace your test and obtain the credentials you need!

How many BTUs are removed from 2000 lbs. of ice at 32 F to give ice at 28 F?

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