(a) Interpretation: The following table is to be completed by assuming the gas at a constant volume. P 1 T 1 P 2 T 2 3.25atm 298K ? 398K Concept Introduction: According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as P ∝ T Or, P 2 = P 1 T 2 T 1 T 2 = P 2 T 1 P 1

Question

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Answer 1

Question

Chapter 7, Problem 7.59P

Interpretation Introduction

(a)

Interpretation:

The following table is to be completed by assuming the gas at a constant volume.

P1 T1 P2 T2
3.25atm 298K ? 398K

Concept Introduction:

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

Or,

P2=P1T2T1

T2=P2T1P1

Expert Solution

Answer to Problem 7.59P

P1	T1	P2	T2
5.0L	310K	4.34atm	250K

Explanation of Solution

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

P1T1=P2T2

P2=P1T2T1 .......................... (1)

For (a) −

Given that −

Initial pressure, P₁ = 3.25atm

Initial temperature, T₁ = 298K

Final temperature, T₂ = 398K

Put the above values in equation (1)

P2=5.0L×398K298K=4.34atm

The final pressure of gas that is P₂ = 4.34atm

Thus,

P1	T1	P2	T2
5.0L	310K	4.34atm	250K

Interpretation Introduction

(b)

Interpretation:

The following table is to be completed by assuming the gas at constant volume.

P1 T1 P2 T2
550mmHg 273K ? −100°C

Concept Introduction:

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

Or,

P2=P1T2T1

T2=P2T1P1

Expert Solution

Answer to Problem 7.59P

P1	T1	P2	T2
150mL	45K	349mmHg	45°C

Explanation of Solution

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

P1T1=P2T2

P2=P1T2T1 .......................... (1)

Given that −

Initial pressure, P₁ = 550mmHg

Initial temperature, T₁ = 273K

Final temperature, T₂ = −100°C

Or,

T2=273−100°C=173K

Put the above values in equation (1)

P2=550mL×173K273K=349mmHg

The final pressure of gas that is P₂ = 349mmHg

P1	T1	P2	T2
150mL	45K	349mmHg	45°C

Interpretation Introduction

(c)

Interpretation:

The following table is to be completed by assuming the gas at a constant volume.

P1 T1 P2 T2
0.25atm 250°C 955mmHg ?

Concept Introduction:

The gas at constant volume. This relation is represented as

P∝T

Or,

P2=P1T2T1

T2=P2T1P1

Expert Solution

Answer to Problem 7.59P

P1	T1	P2	T2
60.0L	0.0°C	180L	1300K

Explanation of Solution

According to Gay Lussac's law, the pressure of a gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

P1T1=P2T2

P2=P1T2T1 .......................... (1)

Given that −

Initial volume, P₁ = 0.50atm

Or,

1 atm = 760mm Hg

Hence,P1=0.50atm×760mmHg1atm=380mmHg

Final temperature, T₁ = 250.0°C

T1=273+250°C=523K

Final volume, P₂ = 955mmHg

T2=P2T1P1 .......................... (2)

Put the above values in equation (2)

T2=523K×955mmHg380mmHg=1300K

The final temperature of the gas that is T₂ = 1300K

P1	T1	P2	T2
60.0L	0.0°C	180L	1300K

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Answer 2

Question

Chapter 7, Problem 7.59P

Interpretation Introduction

(a)

Interpretation:

The following table is to be completed by assuming the gas at a constant volume.

P1 T1 P2 T2
3.25atm 298K ? 398K

Concept Introduction:

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

Or,

P2=P1T2T1

T2=P2T1P1

Expert Solution

Answer to Problem 7.59P

P1	T1	P2	T2
5.0L	310K	4.34atm	250K

Explanation of Solution

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

P1T1=P2T2

P2=P1T2T1 .......................... (1)

For (a) −

Given that −

Initial pressure, P₁ = 3.25atm

Initial temperature, T₁ = 298K

Final temperature, T₂ = 398K

Put the above values in equation (1)

P2=5.0L×398K298K=4.34atm

The final pressure of gas that is P₂ = 4.34atm

Thus,

P1	T1	P2	T2
5.0L	310K	4.34atm	250K

Interpretation Introduction

(b)

Interpretation:

The following table is to be completed by assuming the gas at constant volume.

P1 T1 P2 T2
550mmHg 273K ? −100°C

Concept Introduction:

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

Or,

P2=P1T2T1

T2=P2T1P1

Expert Solution

Answer to Problem 7.59P

P1	T1	P2	T2
150mL	45K	349mmHg	45°C

Explanation of Solution

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

P1T1=P2T2

P2=P1T2T1 .......................... (1)

Given that −

Initial pressure, P₁ = 550mmHg

Initial temperature, T₁ = 273K

Final temperature, T₂ = −100°C

Or,

T2=273−100°C=173K

Put the above values in equation (1)

P2=550mL×173K273K=349mmHg

The final pressure of gas that is P₂ = 349mmHg

P1	T1	P2	T2
150mL	45K	349mmHg	45°C

Interpretation Introduction

(c)

Interpretation:

The following table is to be completed by assuming the gas at a constant volume.

P1 T1 P2 T2
0.25atm 250°C 955mmHg ?

Concept Introduction:

The gas at constant volume. This relation is represented as

P∝T

Or,

P2=P1T2T1

T2=P2T1P1

Expert Solution

Answer to Problem 7.59P

P1	T1	P2	T2
60.0L	0.0°C	180L	1300K

Explanation of Solution

According to Gay Lussac's law, the pressure of a gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

P1T1=P2T2

P2=P1T2T1 .......................... (1)

Given that −

Initial volume, P₁ = 0.50atm

Or,

1 atm = 760mm Hg

Hence,P1=0.50atm×760mmHg1atm=380mmHg

Final temperature, T₁ = 250.0°C

T1=273+250°C=523K

Final volume, P₂ = 955mmHg

T2=P2T1P1 .......................... (2)

Put the above values in equation (2)

T2=523K×955mmHg380mmHg=1300K

The final temperature of the gas that is T₂ = 1300K

P1	T1	P2	T2
60.0L	0.0°C	180L	1300K

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Answer 3

Question

Chapter 7, Problem 7.59P

Interpretation Introduction

(a)

Interpretation:

The following table is to be completed by assuming the gas at a constant volume.

P1 T1 P2 T2
3.25atm 298K ? 398K

Concept Introduction:

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

Or,

P2=P1T2T1

T2=P2T1P1

Expert Solution

Answer to Problem 7.59P

P1	T1	P2	T2
5.0L	310K	4.34atm	250K

Explanation of Solution

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

P1T1=P2T2

P2=P1T2T1 .......................... (1)

For (a) −

Given that −

Initial pressure, P₁ = 3.25atm

Initial temperature, T₁ = 298K

Final temperature, T₂ = 398K

Put the above values in equation (1)

P2=5.0L×398K298K=4.34atm

The final pressure of gas that is P₂ = 4.34atm

Thus,

P1	T1	P2	T2
5.0L	310K	4.34atm	250K

Interpretation Introduction

(b)

Interpretation:

The following table is to be completed by assuming the gas at constant volume.

P1 T1 P2 T2
550mmHg 273K ? −100°C

Concept Introduction:

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

Or,

P2=P1T2T1

T2=P2T1P1

Expert Solution

Answer to Problem 7.59P

P1	T1	P2	T2
150mL	45K	349mmHg	45°C

Explanation of Solution

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

P1T1=P2T2

P2=P1T2T1 .......................... (1)

Given that −

Initial pressure, P₁ = 550mmHg

Initial temperature, T₁ = 273K

Final temperature, T₂ = −100°C

Or,

T2=273−100°C=173K

Put the above values in equation (1)

P2=550mL×173K273K=349mmHg

The final pressure of gas that is P₂ = 349mmHg

P1	T1	P2	T2
150mL	45K	349mmHg	45°C

Interpretation Introduction

(c)

Interpretation:

The following table is to be completed by assuming the gas at a constant volume.

P1 T1 P2 T2
0.25atm 250°C 955mmHg ?

Concept Introduction:

The gas at constant volume. This relation is represented as

P∝T

Or,

P2=P1T2T1

T2=P2T1P1

Expert Solution

Answer to Problem 7.59P

P1	T1	P2	T2
60.0L	0.0°C	180L	1300K

Explanation of Solution

According to Gay Lussac's law, the pressure of a gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

P1T1=P2T2

P2=P1T2T1 .......................... (1)

Given that −

Initial volume, P₁ = 0.50atm

Or,

1 atm = 760mm Hg

Hence,P1=0.50atm×760mmHg1atm=380mmHg

Final temperature, T₁ = 250.0°C

T1=273+250°C=523K

Final volume, P₂ = 955mmHg

T2=P2T1P1 .......................... (2)

Put the above values in equation (2)

T2=523K×955mmHg380mmHg=1300K

The final temperature of the gas that is T₂ = 1300K

P1	T1	P2	T2
60.0L	0.0°C	180L	1300K

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Answer 4

Question

Chapter 7, Problem 7.59P

Interpretation Introduction

(a)

Interpretation:

The following table is to be completed by assuming the gas at a constant volume.

P1 T1 P2 T2
3.25atm 298K ? 398K

Concept Introduction:

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

Or,

P2=P1T2T1

T2=P2T1P1

Expert Solution

Answer to Problem 7.59P

P1	T1	P2	T2
5.0L	310K	4.34atm	250K

Explanation of Solution

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

P1T1=P2T2

P2=P1T2T1 .......................... (1)

For (a) −

Given that −

Initial pressure, P₁ = 3.25atm

Initial temperature, T₁ = 298K

Final temperature, T₂ = 398K

Put the above values in equation (1)

P2=5.0L×398K298K=4.34atm

The final pressure of gas that is P₂ = 4.34atm

Thus,

P1	T1	P2	T2
5.0L	310K	4.34atm	250K

Interpretation Introduction

(b)

Interpretation:

The following table is to be completed by assuming the gas at constant volume.

P1 T1 P2 T2
550mmHg 273K ? −100°C

Concept Introduction:

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

Or,

P2=P1T2T1

T2=P2T1P1

Expert Solution

Answer to Problem 7.59P

P1	T1	P2	T2
150mL	45K	349mmHg	45°C

Explanation of Solution

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

P1T1=P2T2

P2=P1T2T1 .......................... (1)

Given that −

Initial pressure, P₁ = 550mmHg

Initial temperature, T₁ = 273K

Final temperature, T₂ = −100°C

Or,

T2=273−100°C=173K

Put the above values in equation (1)

P2=550mL×173K273K=349mmHg

The final pressure of gas that is P₂ = 349mmHg

P1	T1	P2	T2
150mL	45K	349mmHg	45°C

Interpretation Introduction

(c)

Interpretation:

The following table is to be completed by assuming the gas at a constant volume.

P1 T1 P2 T2
0.25atm 250°C 955mmHg ?

Concept Introduction:

The gas at constant volume. This relation is represented as

P∝T

Or,

P2=P1T2T1

T2=P2T1P1

Expert Solution

Answer to Problem 7.59P

P1	T1	P2	T2
60.0L	0.0°C	180L	1300K

Explanation of Solution

According to Gay Lussac's law, the pressure of a gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

P1T1=P2T2

P2=P1T2T1 .......................... (1)

Given that −

Initial volume, P₁ = 0.50atm

Or,

1 atm = 760mm Hg

Hence,P1=0.50atm×760mmHg1atm=380mmHg

Final temperature, T₁ = 250.0°C

T1=273+250°C=523K

Final volume, P₂ = 955mmHg

T2=P2T1P1 .......................... (2)

Put the above values in equation (2)

T2=523K×955mmHg380mmHg=1300K

The final temperature of the gas that is T₂ = 1300K

P1	T1	P2	T2
60.0L	0.0°C	180L	1300K

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Answer 5

Chapter 7, Problem 7.59P

Interpretation Introduction

(a)

Interpretation:

The following table is to be completed by assuming the gas at a constant volume.

P1 T1 P2 T2
3.25atm 298K ? 398K

Concept Introduction:

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

Or,

P2=P1T2T1

T2=P2T1P1

Expert Solution

Answer to Problem 7.59P

P1	T1	P2	T2
5.0L	310K	4.34atm	250K

Explanation of Solution

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

P1T1=P2T2

P2=P1T2T1 .......................... (1)

For (a) −

Given that −

Initial pressure, P₁ = 3.25atm

Initial temperature, T₁ = 298K

Final temperature, T₂ = 398K

Put the above values in equation (1)

P2=5.0L×398K298K=4.34atm

The final pressure of gas that is P₂ = 4.34atm

Thus,

P1	T1	P2	T2
5.0L	310K	4.34atm	250K

Interpretation Introduction

(b)

Interpretation:

The following table is to be completed by assuming the gas at constant volume.

P1 T1 P2 T2
550mmHg 273K ? −100°C

Concept Introduction:

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

Or,

P2=P1T2T1

T2=P2T1P1

Expert Solution

Answer to Problem 7.59P

P1	T1	P2	T2
150mL	45K	349mmHg	45°C

Explanation of Solution

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

P1T1=P2T2

P2=P1T2T1 .......................... (1)

Given that −

Initial pressure, P₁ = 550mmHg

Initial temperature, T₁ = 273K

Final temperature, T₂ = −100°C

Or,

T2=273−100°C=173K

Put the above values in equation (1)

P2=550mL×173K273K=349mmHg

The final pressure of gas that is P₂ = 349mmHg

P1	T1	P2	T2
150mL	45K	349mmHg	45°C

Interpretation Introduction

(c)

Interpretation:

The following table is to be completed by assuming the gas at a constant volume.

P1 T1 P2 T2
0.25atm 250°C 955mmHg ?

Concept Introduction:

The gas at constant volume. This relation is represented as

P∝T

Or,

P2=P1T2T1

T2=P2T1P1

Expert Solution

Answer to Problem 7.59P

P1	T1	P2	T2
60.0L	0.0°C	180L	1300K

Explanation of Solution

According to Gay Lussac's law, the pressure of a gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

P1T1=P2T2

P2=P1T2T1 .......................... (1)

Given that −

Initial volume, P₁ = 0.50atm

Or,

1 atm = 760mm Hg

Hence,P1=0.50atm×760mmHg1atm=380mmHg

Final temperature, T₁ = 250.0°C

T1=273+250°C=523K

Final volume, P₂ = 955mmHg

T2=P2T1P1 .......................... (2)

Put the above values in equation (2)

T2=523K×955mmHg380mmHg=1300K

The final temperature of the gas that is T₂ = 1300K

P1	T1	P2	T2
60.0L	0.0°C	180L	1300K

Answer 6

Chapter 7, Problem 7.59P

Interpretation Introduction

(a)

Interpretation:

The following table is to be completed by assuming the gas at a constant volume.

P1 T1 P2 T2
3.25atm 298K ? 398K

Concept Introduction:

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

Or,

P2=P1T2T1

T2=P2T1P1

Expert Solution

Answer to Problem 7.59P

P1	T1	P2	T2
5.0L	310K	4.34atm	250K

Explanation of Solution

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

P1T1=P2T2

P2=P1T2T1 .......................... (1)

For (a) −

Given that −

Initial pressure, P₁ = 3.25atm

Initial temperature, T₁ = 298K

Final temperature, T₂ = 398K

Put the above values in equation (1)

P2=5.0L×398K298K=4.34atm

The final pressure of gas that is P₂ = 4.34atm

Thus,

P1	T1	P2	T2
5.0L	310K	4.34atm	250K

Answer 7

Chapter 7, Problem 7.59P

Interpretation Introduction

(a)

Interpretation:

The following table is to be completed by assuming the gas at a constant volume.

P1 T1 P2 T2
3.25atm 298K ? 398K

Concept Introduction:

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

Or,

P2=P1T2T1

T2=P2T1P1

Answer 8

Expert Solution

Answer to Problem 7.59P

P1	T1	P2	T2
5.0L	310K	4.34atm	250K

Answer 9

Expert Solution

Answer 10

Expert Solution

Answer 11

Expert Solution

Answer 12

Explanation of Solution

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

P1T1=P2T2

P2=P1T2T1 .......................... (1)

For (a) −

Given that −

Initial pressure, P₁ = 3.25atm

Initial temperature, T₁ = 298K

Final temperature, T₂ = 398K

Put the above values in equation (1)

P2=5.0L×398K298K=4.34atm

The final pressure of gas that is P₂ = 4.34atm

Thus,

P1	T1	P2	T2
5.0L	310K	4.34atm	250K

Answer 13

Interpretation Introduction

(b)

Interpretation:

The following table is to be completed by assuming the gas at constant volume.

P1 T1 P2 T2
550mmHg 273K ? −100°C

Concept Introduction:

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

Or,

P2=P1T2T1

T2=P2T1P1

Expert Solution

Answer to Problem 7.59P

P1	T1	P2	T2
150mL	45K	349mmHg	45°C

Explanation of Solution

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

P1T1=P2T2

P2=P1T2T1 .......................... (1)

Given that −

Initial pressure, P₁ = 550mmHg

Initial temperature, T₁ = 273K

Final temperature, T₂ = −100°C

Or,

T2=273−100°C=173K

Put the above values in equation (1)

P2=550mL×173K273K=349mmHg

The final pressure of gas that is P₂ = 349mmHg

P1	T1	P2	T2
150mL	45K	349mmHg	45°C

Answer 14

Interpretation Introduction

(b)

Interpretation:

The following table is to be completed by assuming the gas at constant volume.

P1 T1 P2 T2
550mmHg 273K ? −100°C

Concept Introduction:

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

Or,

P2=P1T2T1

T2=P2T1P1

Answer 15

Expert Solution

Answer to Problem 7.59P

P1	T1	P2	T2
150mL	45K	349mmHg	45°C

Answer 16

Expert Solution

Answer 17

Expert Solution

Answer 18

Expert Solution

Answer 19

Explanation of Solution

According to Gay Lussac's law, the pressure of the gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

P1T1=P2T2

P2=P1T2T1 .......................... (1)

Given that −

Initial pressure, P₁ = 550mmHg

Initial temperature, T₁ = 273K

Final temperature, T₂ = −100°C

Or,

T2=273−100°C=173K

Put the above values in equation (1)

P2=550mL×173K273K=349mmHg

The final pressure of gas that is P₂ = 349mmHg

P1	T1	P2	T2
150mL	45K	349mmHg	45°C

Answer 20

Interpretation Introduction

(c)

Interpretation:

The following table is to be completed by assuming the gas at a constant volume.

P1 T1 P2 T2
0.25atm 250°C 955mmHg ?

Concept Introduction:

The gas at constant volume. This relation is represented as

P∝T

Or,

P2=P1T2T1

T2=P2T1P1

Expert Solution

Answer to Problem 7.59P

P1	T1	P2	T2
60.0L	0.0°C	180L	1300K

Explanation of Solution

According to Gay Lussac's law, the pressure of a gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

P1T1=P2T2

P2=P1T2T1 .......................... (1)

Given that −

Initial volume, P₁ = 0.50atm

Or,

1 atm = 760mm Hg

Hence,P1=0.50atm×760mmHg1atm=380mmHg

Final temperature, T₁ = 250.0°C

T1=273+250°C=523K

Final volume, P₂ = 955mmHg

T2=P2T1P1 .......................... (2)

Put the above values in equation (2)

T2=523K×955mmHg380mmHg=1300K

The final temperature of the gas that is T₂ = 1300K

P1	T1	P2	T2
60.0L	0.0°C	180L	1300K

Answer 21

Interpretation Introduction

(c)

Interpretation:

The following table is to be completed by assuming the gas at a constant volume.

P1 T1 P2 T2
0.25atm 250°C 955mmHg ?

Concept Introduction:

The gas at constant volume. This relation is represented as

P∝T

Or,

P2=P1T2T1

T2=P2T1P1

Answer 22

Expert Solution

Answer to Problem 7.59P

P1	T1	P2	T2
60.0L	0.0°C	180L	1300K

Answer 23

Expert Solution

Answer 24

Expert Solution

Answer 25

Expert Solution

Answer 26

Explanation of Solution

According to Gay Lussac's law, the pressure of a gas is directly proportional to the Kelvin temperature of the gas at constant volume. This relation is represented as

P∝T

P1T1=P2T2

P2=P1T2T1 .......................... (1)

Given that −

Initial volume, P₁ = 0.50atm

Or,

1 atm = 760mm Hg

Hence,P1=0.50atm×760mmHg1atm=380mmHg

Final temperature, T₁ = 250.0°C

T1=273+250°C=523K

Final volume, P₂ = 955mmHg

T2=P2T1P1 .......................... (2)