1 Answer

MOHAMED · Answer 1 · 2020-10-14T20:03:03+0000

Answer:

q = - 2067.2 J of Heat is giving out when 85.0g of lead cools from 200.0 c to 10.0 c.

Step-by-step explanation:

The Specific Heat capacity of Lead is 0.128
$(J)/(g\ ^(0)C)$

This means, increase in temperature of 1 gm of lead by
$1 ^(0)\ C$ will require 0.128 J of heat.

Formula Used :

$q = m.c.\Delta T$

q = amount of heat added / removed

m = mass of substance in grams = 85.0 g

c = specific heat of the substance = 0.128

$q = m.c.\Delta T$ = Change in temperature

= final temperature - Initial temperature

= 10 - 200

= -
$190 ^(0)\ C$

put value in formula

q = -
85* 0.128* 190

On calculation,

q = - 2067.2 J

- sign indicates that the heat is released in the process

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