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What is the final temperature when 123.55 grams of ice is placed at 50 degrees celsius of 304.79 grams of water?

What is the final temperature when 123.55 grams of ice is placed at 50 degrees celsius of 304.79 grams of water?
asked 43.4k views
23 votes
what is the final temperature when 123.55 grams of ice is placed at 50 degrees celsius of 304.79 grams of water?

asked
User Elida
by
8.6k points

1 Answer

12 votes

Answer:

Below in bold.

Step-by-step explanation:

The ice is at 273 degrees K and the water at 323 degrees K.

123.55* 273 + 304.79*323 = (123.55+304.79)* t

t =(123.55* 273 + 304.79*323) / (123.55+304.79)

=308.58 degrees K

= 35.6 degrees C

answered
User Jose Gomez
by
8.5k points
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