GENERAL,ORGANIC, & BIOLOGICAL CHEM-ACCES
GENERAL,ORGANIC, & BIOLOGICAL CHEM-ACCES
4th Edition
ISBN: 9781265982959
Author: SMITH
Publisher: MCG
Question
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Chapter 7, Problem 43P
Interpretation Introduction

(a)

Interpretation:

The following table is to be completed by assuming a fixed amount of gas.

P1V1T1P2V2T2
0.90atm4.0L265K?3.0L310K

Concept Introduction:

The concept of the combination gas will be used

  P1V1T1=P2V2T2

Or,

  P2=P1V1T2T1V2

Or,

  V2=P1V1T2T1P2

Or,

  T2=V2T1P2P1V1

Here,

  P1 = initial pressure of the gas

  V1 = initial volume of the gas

  T1 = initial temperature of the gas

  P2 = final pressure of the gas

  V2 =final volume of the gas

  T2 = final temperature of the gas

Expert Solution
Check Mark

Answer to Problem 43P

P1V1T1P2V2T2
0.90atm4.0L265K1.4atm3.0L310K

Explanation of Solution

The combined gas law is used to determine the unknown values. The combined gas law includes the change in pressure-temperature and the volume of the gas. This relation is represented as

  P1V1T1=P2V2T2 .......................... (1)

Given that

Initial volume, V1 = 4.0L

Initial temperature, T1 = 265K

Initial pressure, P1 = 0.90atm

Final temperature, T2 = 310K

Final volume, V2 = 3.0L

  P2=P1V1T2T1V2

Put the values in the above equation.

  P2=0.90atm×4.0L×310K265K×3.0L=1.4atm

The final pressure of gas that is P2 = 1.4atm

Thus,

P1V1T1P2V2T2
a.0.90atm4.0L265K1.4atm3.0L310K
Interpretation Introduction

(b)

Interpretation:

The following table is to be completed by assuming a fixed amount of gas.

P1V1T1P2V2T2
1.2atm75L5.0°C700mmHg?50°C

Concept Introduction:

The concept of the combination gas will be used

  P1V1T1=P2V2T2

Or,

  P2=P1V1T2T1V2

Or,

  V2=P1V1T2T1P2

Or,

  T2=V2T1P2P1V1

Here,

  P1 = initial pressure of the gas

  V1 = initial volume of the gas

  T1 = initial temperature of the gas

  P2 = final pressure of the gas

  V2 =final volume of the gas

  T2 = final temperature of the gas

Expert Solution
Check Mark

Answer to Problem 43P

P1V1T1P2V2T2
1.2atm75L5.0°C700mmHg110L50°C

Explanation of Solution

The combined gas law is used to determine the unknown values. The combined gas law includes the change in pressure-temperature and the volume of the gas. This relation is represented as

  P1V1T1=P2V2T2 .......................... (1)

Given that

Initial volume, V1 = 75L

Initial temperature, T1 = 5.0°C

  T1=273+5.0°C=278K

Initial pressure, P1 = 1.2atm

Final pressure, P2 = 700mmHg

Final temperature, T2 = 50°C

Or,

  T2=273+50°C=323K

  V2=P1V1T2T1P2

Put the values in the above equation.

  V2=75L×1.2atm×323K278K×(700mmHg× 1atm 760mmHg)=1.1×102L

The final volume of gas that is V2 = 1.1×102L

Thus,

P1V1T1P2V2T2
1.2atm75L5.0°C700mmHg110L50°C
Interpretation Introduction

(c)

Interpretation:

The following table is to be completed by assuming a fixed amount of gas.

P1V1T1P2V2T2
200mmHg125mL298K100mmHg0.62L?

Concept Introduction:

The concept of the combination gas will be used

  P1V1T1=P2V2T2

Or,

  P2=P1V1T2T1V2

Or,

  V2=P1V1T2T1P2

Or,

  T2=V2T1P2P1V1

Here,

  P1 = initial pressure of the gas

  V1 = initial volume of the gas

  T1 = initial temperature of the gas

  P2 = final pressure of the gas

  V2 =final volume of the gas

  T2 = final temperature of the gas

Expert Solution
Check Mark

Answer to Problem 43P

P1V1T1P2V2T2
200mmHg125mL298K100mmHg0.62L740K

Explanation of Solution

The combined gas law is used to determine the unknown values. The combined gas law includes the change in pressure-temperature and the volume of the gas. This relation is represented as −

  P1V1T1=P2V2T2 .......................... (1)

Given that −

Initial volume, V1 = 125mL

Initial pressure, P1 = 200mmHg

Initial temperature, T1 = 298K

Final pressure, P2 = 100mmHg

Final volume, V2 = 0.62L

  T2=V2T1P2P1V1

Put the values in the above equation.

  T2=0.62L×298K×100mmHg200mmHg×0.125L=7.4×102K

The final volume of gas that is T2 = 740K

The final table is

P1V1T1P2V2T2
200mmHg125mL298K100mmHg0.62L740K

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