Introduction To Chemistry 5th Edition
Introduction To Chemistry 5th Edition
5th Edition
ISBN: 9781260162097
Author: BAUER
Publisher: MCG
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Chapter 9, Problem 136QP
Interpretation Introduction

Interpretation:

The volume of CO2 gas released into the atmosphere daily by the company is to be determined.

Concept Introduction:

The number of moles of a gas n is equal to the ratio of amount of gas m present in the container to the molar mass M of that gas.

n=mM … (1)

Ideal gas law is the law followed by ideal gases. It states that pressure P and volume V of the gas is directly proportional to the number of moles n present in the gas and the temperature T of the gas.

PVnTPV=nRT … (2)

Where, R is universal gas constant.

Expert Solution & Answer
Check Mark

Answer to Problem 136QP

Solution:

The volume of CO2 gas released into the atmosphere daily by the company is 2.53×107L .

Explanation of Solution

Given Information: The amount of limestone used daily is 1.00×105 kg at 735 torr and 25.0°C .

The reaction is as follows,

CaCO3sheatCaOs+CO2g

The number of moles of CaCO3 decomposed upon heating is determined by using equation (1). The molar mass of CaCO3 is,

MCaCO3=40.09 g mol1+12 g mol1+16×3 g mol1=100.09 g mol1

Now, substitute M as 100.09 g mol1 and m as 1.00×108 g in equation (1) to determine n .

n=1.0×108 g100.09 g mol1=9.99×105 mol

According to the reaction,

1 mol CaCO3 produces=1 mol CO29.99×105 mol CaCO3 produces=1 mol CO21 mol CaCO3×9.99×105 mol CaCO3=9.99×105 mol CO2

Therefore, 9.99×105 mol CO2 is produced by 1.00×105 kg of limestone at 735 torr and 25.0°C . So, the volume of CO2 is determined by equation (2).

Convert degree Celsius temperature into Kelvin.

T K=T°C+273.15

Temperature 25°C is converted into Kelvin.

T=25.0°C+273.15=298.2 K

Convert pressure units from torr to atm .

1 atm=760 torr1 torr=1760 atm

For 735 torr , pressure P is,

1 torr=1760 atm735 torr=1 atm760 torr×735 torr=0.967 atm

Substitute P as 0.967 atm , T as 298.2 K , R as 0.08206 L atm mol1 K1 , and n as 9.99×105 mol in equation (2) to determine volume V of H2 gas.

0.967 atm×V=9.99×105 mol×0.08206 L atm mol1 K1×298.2 KV=9.99×105 mol×0.08206 L atm mol1 K1×298.2 K0.967 atm=2.53×107L

Conclusion

The volume of CO2 gas released into the atmosphere daily by the company is 2.53×107L .

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Chapter 9 Solutions

Introduction To Chemistry 5th Edition

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