27.0g of an unknown metal at 100 degrees Celcius was dropped into a beaker containing 313g of water initially at 22.3 degrees Celcius. The final temperature of the mixture was 25.1 degrees. What is the

asked Feb 22, 2021 23.5k views

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Answer:

1.81 J/g*^(o)C

Step-by-step explanation:

q = c_(p)*m*(T_(f) -T_(i))

q _(m)= c_(p)_(m)*27.0g*(25.1^(o)-100^(o))

$\\\\q_(water) = c_(p)_{water*313 g*(25.1^(o) -22.3^(o))$

$q_(m) = - q_(water)\\\\c_(p)_(m)*27.0g*(25.1^(o)-100^(o)) = - 4.18 J/g*^(o)C*313 g*(25.1^(o) -22.3^(o))$

$c_(p)_(m)*2022.3 = 3663.352\\\\c_(pm)=1.81 J/g*^(o)C$

Soviut answered Mar 1, 2021

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