A large punch bowl holds 3.35 kg of lemonade (which is essentially water) at 20.0° C.

A 1.62-kg ice cube at. - 10.2°. C is placed in the lemonade.

What is the final temperature of the system, and the amount of ice (if any) remaining?

Ignore any heat exchange with the bowl or the surroundings.

Question

Nathanael Meza

Physics

25 June, 14:04

A large punch bowl holds 3.35 kg of lemonade (which is essentially water) at 20.0° C.

A 1.62-kg ice cube at. - 10.2°. C is placed in the lemonade.

What is the final temperature of the system, and the amount of ice (if any) remaining?

Ignore any heat exchange with the bowl or the surroundings.

+5

Answers (1)

Know the Answer?

Paola Gibson · Answer 1

Using heat balance, mass times heat capacity times temperature difference, the balance looks like:

3.35 * 1000 g * 4.18 J / g C * (20-T) = 1.62 * 1000 g * 80 * 4.1858 J / g + 1.62 * 1000 g * 4.18/2 J / g C * (10.2 C) + 1.62 * 1000 g * 4.18 J / gC * (T-0)

Final temperature, T is equal to 14.29 C

A large punch bowl holds 3.35 kg of lemonade (which is essentially water) at 20.0° C.A 1.62-kg ice cube at. - 10.2°. C is placed in the lemonade.What is the final temperature of the system, and the amount of ice (if any) remaining?Ignore any heat exchange with the bowl or the surroundings.

A large punch bowl holds 3.35 kg of lemonade (which is essentially water) at 20.0° C.

A 1.62-kg ice cube at. - 10.2°. C is placed in the lemonade.

What is the final temperature of the system, and the amount of ice (if any) remaining?

Ignore any heat exchange with the bowl or the surroundings.