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Neko [114]
2 years ago
10

How much heat is required to increase the temperature of 100.0 grams of iron from 15.0oC to 40.2oC? (The specific heat of iron i

s 0.46 J/g xoC) 2520 J 46 J 1160 J 1850 J 690 J
Chemistry
2 answers:
zysi [14]2 years ago
5 0

Answer : The heat required is 1160 J.

Explanation :

Formula used :

Q=m\times c\times \Delta T

or,

Q=m\times c\times (T_2-T_1)

where,

Q = heat required = ?

m = mass of iron = 100.0 g

c = specific heat of iron = 0.46J/g^oC

T_1 = initial temperature  = 15.0^oC

T_2 = final temperature  = 40.2^oC

Now put all the given value in the above formula, we get:

Q=100.0g\times 0.46J/g^oC\times (40.2-15.0)^oC

Q=1159.2J\approx 1160J

Therefore, the heat required is 1160 J.

Ksenya-84 [330]2 years ago
3 0
Answer is: 1160 J of heat Is required to increase the temperature.
m(Fe) = 100 g.
∆T = 40,2 - 15 = 25,2°C.
C(Fe) = 0,46 J/g•°C.
Q = m(Fe) • C • ∆T.
Q = 100 g • 0,46 J/g•°C • 25,2°C
Q = 1160 J.
C - specific heat.

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Explanation:

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4 0
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What is the empirical formula? A compound is used to treat iron deficiency in people. It contains 36.76% iron, 21.11% sulfur, an
Mandarinka [93]

Answer: The empirical formula of the compound is Fe_1S_1O_4

Explanation:

Empirical formula is defined formula which is simplest integer ratio of number of atoms of different elements present in the compound.

Percentage of iron in a compound = 36.76 %

Percentage of sulfur in a compound = 21.11 %

Percentage of oxygen in a compound = 42.13 %

Consider in 100 g of the compound:

Mass of iron in 100 g of compound = 36.76 g

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Now calculate the number of moles each element:

Moles of iron=\frac{36.76 g}{55.84 g/mol}=0.658 mol

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Divide the moles of each element by the smallest number of moles to calculated the ratio of the elements to each other

For Iron element = \frac{0.658 mol}{0.658 mol}=1

For sulfur element = \frac{0.658 mol}{0.658 mol}=1

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4 0
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Read 2 more answers
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To balance the equation,add3H+on the right,to cancel out the charges.

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6 0
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