Bundle: Chemistry, Loose-Leaf Version, 10th + OWLv2 with Student Solutions Manual, 4 terms (24 months) Printed Access Card
Bundle: Chemistry, Loose-Leaf Version, 10th + OWLv2 with Student Solutions Manual, 4 terms (24 months) Printed Access Card
10th Edition
ISBN: 9781337538015
Author: Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Publisher: Cengage Learning
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Chapter 5, Problem 45E

A diagram for an open-tube manometer is shown below.

Chapter 5, Problem 45E, A diagram for an open-tube manometer is shown below. If the flask is open to the atmosphere, the , example  1

If the flask is open to the atmosphere, the mercury levels are equal. For each of the following situations where a gas is contained in the flask, calculate the pressure in the flask in torr, atmospheres, and pascals.

Chapter 5, Problem 45E, A diagram for an open-tube manometer is shown below. If the flask is open to the atmosphere, the , example  2

c. Calculate the pressures in the flask in parts a and b (in torr) if the atmospheric pressure is 635 torr.

(a)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

The pressure of the gases in given two situations of manometers (a) and (b) should be determined in units of torr, atm and pascals when the manometer shows a reading of 118mm and 215mm respectively. And also calculate the pressure of the gases in given two situations of manometers (a) and (b) If the atmospheric pressure is 635 torr.

Concept Introduction:

The manometer is a devise used measure the pressure of a gas. The pressure of gas is determined by the value of ‘h’ shown by the manometer. This ‘h’-value is added or subtracted with atmospheric pressure to determine the pressure of gas.

If the flask side mercury level is decreased after the filling of gas, then the ‘h’-value will be added to atmospheric pressure to get the pressure of gas.

If the flask side mercury level is increased after the filling of gas, then the ‘h’-value will be subtracted from the atmospheric pressure to get the pressure of gas.

The pressure equivalent of ‘h’ value is,

h=1mm=1mmHg

Pressure of a substance can be stated in various units. The units of pressure are interconvertible. The relations between units of pressure are,

  • Since the unit mm Hg and the unit torr is used interchangeably.

1mmHg = 1torr

  • Conversion of 1 torr into atm is,

                     1mmHg = 1760atm 

  • The 1 mm Hg pressure in Pa unit is,

                                 1mmHg = 101325760Pa

Answer to Problem 45E

The pressure of the given gas (figure-a) in units of torr, atm and pascal are,

642 torr, 0.8447 atm, 85593 Pa

Explanation of Solution

The given ‘h’ value for the gas in manometer is 118mm. The picture of manometer shows the    flask side mercury level is increased after the filling of gas.

Hence the equation for finding the pressure of gas is,

Atmospheric pressureh(inmm)

That is,

=    (760118)mmHg

=    642mmHg

The calculated pressure is 642 mm Hg; the mm Hg and torr units are used interchangeably,

Therefore,

642mmHg = 642torr

The calculated pressure is 642mm Hg. So the pressure in atm unit is,

642mmHg = 642mmHg*1760mmHgatm 

     =      0.8447atm

The calculated pressure is 642mm Hg. So the pressure in Pa unit is,

642mmHg = 642mmHg*101325760mmHgPa

   =85593Pa

(b)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

The pressure of the gases in given two situations of manometers (a) and (b) should be determined in units of torr, atm and pascals when the manometer shows a reading of 118mm and 215mm respectively. And also calculate the pressure of the gases in given two situations of manometers (a) and (b) If the atmospheric pressure is 635 torr.

Concept Introduction:

The manometer is a devise used measure the pressure of a gas. The pressure of gas is determined by the value of ‘h’ shown by the manometer. This ‘h’-value is added or subtracted with atmospheric pressure to determine the pressure of gas.

If the flask side mercury level is decreased after the filling of gas, then the ‘h’-value will be added to atmospheric pressure to get the pressure of gas.

If the flask side mercury level is increased after the filling of gas, then the ‘h’-value will be subtracted from the atmospheric pressure to get the pressure of gas.

The pressure equivalent of ‘h’ value is,

h=1mm=1mmHg

Pressure of a substance can be stated in various units. The units of pressure are interconvertible. The relations between units of pressure are,

  • Since the unit mm Hg and the unit torr is used interchangeably.

1mmHg = 1torr

  • Conversion of 1 torr into atm is,

                     1mmHg = 1760atm 

  • The 1 mm Hg pressure in Pa unit is,

                                 1mmHg = 101325760Pa

Answer to Problem 45E

The pressure of the given gas (figure-b) in units of torr, atm and pascal are,

878 torr, 1.1552 atm, 117057 Pa

Explanation of Solution

The given ‘h’ value for the gas in manometer is 118mm. The picture of manometer shows the    flask side mercury level is decreased after the filling of gas.

Hence the equation for finding the pressure of gas is,

Atmospheric pressure+h(inmm)

That is,

=   (760+118)mmHg

=   878mmHg

The calculated pressure is 878 mm Hg; the mm Hg and torr units are used interchangeably,

Therefore,

878mmHg = 878torr

The calculated pressure is 878mm Hg. So the pressure in atm unit is,

878mmHg = 878mmHg*1760mmHgatm 

     =      1.1552atm

The calculated pressure is 878mm Hg. So the pressure in Pa unit is,

878mmHg = 878mmHg*101325760mmHgPa

   =117057Pa

(c)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

The pressure of the gases in given two situations of manometers (a) and (b) should be determined in units of torr, atm and pascals when the manometer shows a reading of 118mm and 215mm respectively. And also calculate the pressure of the gases in given two situations of manometers (a) and (b) If the atmospheric pressure is 635 torr.

Concept Introduction:

The manometer is a devise used measure the pressure of a gas. The pressure of gas is determined by the value of ‘h’ shown by the manometer. This ‘h’-value is added or subtracted with atmospheric pressure to determine the pressure of gas.

If the flask side mercury level is decreased after the filling of gas, then the ‘h’-value will be added to atmospheric pressure to get the pressure of gas.

If the flask side mercury level is increased after the filling of gas, then the ‘h’-value will be subtracted from the atmospheric pressure to get the pressure of gas.

The pressure equivalent of ‘h’ value is,

h=1mm=1mmHg

Pressure of a substance can be stated in various units. The units of pressure are interconvertible. The relations between units of pressure are,

  • Since the unit mm Hg and the unit torr is used interchangeably.

1mmHg = 1torr

  • Conversion of 1 torr into atm is,

                     1mmHg = 1760atm 

  • The 1 mm Hg pressure in Pa unit is,

                                 1mmHg = 101325760Pa

Answer to Problem 45E

The pressure of the given gas (figure-a) in units of torr, atm and pascal when the atmospheric pressure is 635 torr are,

517 torr, 0.8141 atm, 82496 Pa

The pressure of the given gas (figure-b) in units of torr, atm and pascal when the atmospheric pressure is 635 torr are,

753 torr, 1.1858 atm, 120154 Pa

Explanation of Solution

The pressure of the gas in given situation of manometer (a) in units of torr, atm and pascals:

The given ‘h’ value for the gas in manometer (a) is 118mm. The picture of manometer shows the    flask side mercury level is increased after the filling of gas.

Hence the equation for finding the pressure of gas is,

Atmospheric pressureh(inmm)

That is,

=   (635118)mmHg

=   517mmHg

The calculated pressure is 517 mm Hg; the mm Hg and torr units are used interchangeably,

Therefore,

517mmHg = 517torr

The calculated pressure is 517mm Hg. So the pressure in atm unit is,

517mmHg = 517mmHg*1760mmHgatm 

     =      0.8141atm

The calculated pressure is 517mm Hg. So the pressure in Pa unit is,

517mmHg = 517mmHg*101325760mmHgPa

   =82496Pa

The pressure of the gas in given situation of manometer (b) in units of torr, atm and pascals:

The given ‘h’ value for the gas in manometer is 118mm. The picture of manometer shows the    flask side mercury level is decreased after the filling of gas.

Hence the equation for finding the pressure of gas is,

Atmospheric pressure+h(inmm)

That is,

=   (635+118)mmHg

=   753mmHg

The calculated pressure is 753 mm Hg; the mm Hg and torr units are used interchangeably,

Therefore,

753mmHg = 753torr

The calculated pressure is 753 mm Hg. So the pressure in atm unit is,

753mmHg = 753mmHg*1760mmHgatm 

     =      1.1858atm

The calculated pressure is 753 mm Hg. So the pressure in Pa unit is,

753mmHg = 753mmHg*101325760mmHgPa

   =120154Pa

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Chapter 5 Solutions

Bundle: Chemistry, Loose-Leaf Version, 10th + OWLv2 with Student Solutions Manual, 4 terms (24 months) Printed Access Card

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A...Ch. 5 - Prob. 85ECh. 5 - Silicon tetrachloride (SiCl4) and trichlorosilane...Ch. 5 - Prob. 87ECh. 5 - Prob. 88ECh. 5 - For scuba dives below 150 ft, helium is often used...Ch. 5 - Prob. 90ECh. 5 - Consider the flasks in the following diagram. What...Ch. 5 - Consider the flask apparatus in Exercise 85, which...Ch. 5 - Prob. 93ECh. 5 - At 0C a 1.0-L flask contains 5.0 102 mole of N2,...Ch. 5 - A mixture of cyclopropane and oxygen is sometimes...Ch. 5 - Prob. 96ECh. 5 - Prob. 97ECh. 5 - A tank contains a mixture of 52.5 g oxygen gas and...Ch. 5 - Prob. 99ECh. 5 - Helium is collected over water at 25C and 1.00 atm...Ch. 5 - At elevated temperatures, sodium chlorate...Ch. 5 - Xenon and fluorine will react to form binary...Ch. 5 - Methanol (CH3OH) can be produced by the following...Ch. 5 - In the Mthode Champenoise, grape juice is...Ch. 5 - Hydrogen azide, HN3, decomposes on heating by the...Ch. 5 - Prob. 106ECh. 5 - Prob. 107ECh. 5 - The oxides of Group 2A metals (symbolized by M...Ch. 5 - Prob. 109ECh. 5 - Prob. 110ECh. 5 - Prob. 111ECh. 5 - Prob. 112ECh. 5 - Prob. 113ECh. 5 - Prob. 114ECh. 5 - Prob. 115ECh. 5 - Prob. 116ECh. 5 - Prob. 117ECh. 5 - Prob. 118ECh. 5 - Prob. 119ECh. 5 - Prob. 120ECh. 5 - Prob. 121ECh. 5 - Prob. 122ECh. 5 - Prob. 123ECh. 5 - Prob. 124ECh. 5 - Use the data in Table 84 to calculate the partial...Ch. 5 - Prob. 126ECh. 5 - Prob. 127ECh. 5 - Prob. 128ECh. 5 - Prob. 129ECh. 5 - Prob. 130ECh. 5 - Prob. 131AECh. 5 - At STP, 1.0 L Br2 reacts completely with 3.0 L F2,...Ch. 5 - Prob. 133AECh. 5 - Prob. 134AECh. 5 - Prob. 135AECh. 5 - Cyclopropane, a gas that when mixed with oxygen is...Ch. 5 - The nitrogen content of organic compounds can be...Ch. 5 - Hyperbaric oxygen therapy is used to treat...Ch. 5 - A 15.0L tank is filled with H2 to a pressure of...Ch. 5 - A spherical glass container of unknown volume...Ch. 5 - Prob. 141AECh. 5 - A 20.0L stainless steel container at 25C was...Ch. 5 - Metallic molybdenum can be produced from the...Ch. 5 - Prob. 144AECh. 5 - Prob. 145AECh. 5 - One of the chemical controversies of the...Ch. 5 - An organic compound contains C, H, N, and O....Ch. 5 - Prob. 148AECh. 5 - Prob. 149CWPCh. 5 - Prob. 150CWPCh. 5 - A certain flexible weather balloon contains helium...Ch. 5 - A large flask with a volume of 936 mL is evacuated...Ch. 5 - A 20.0L nickel container was charged with 0.859...Ch. 5 - Consider the unbalanced chemical equation below:...Ch. 5 - Prob. 155CWPCh. 5 - Which of the following statements is(are) true? a....Ch. 5 - A chemist weighed out 5.14 g of a mixture...Ch. 5 - A mixture of chromium and zinc weighing 0.362 g...Ch. 5 - Prob. 159CPCh. 5 - You have an equimolar mixture of the gases SO2 and...Ch. 5 - Methane (CH4) gas flows into a combustion chamber...Ch. 5 - Prob. 162CPCh. 5 - Prob. 163CPCh. 5 - Prob. 164CPCh. 5 - You have a helium balloon at 1.00 atm and 25C. You...Ch. 5 - We state that the ideal gas law tends to hold best...Ch. 5 - You are given an unknown gaseous binary compound...Ch. 5 - Prob. 168CPCh. 5 - Prob. 170IPCh. 5 - In the presence of nitric acid, UO2+ undergoes a...Ch. 5 - Silane, SiH4, is the silicon analogue of methane,...Ch. 5 - Prob. 173IPCh. 5 - Prob. 174IPCh. 5 - Prob. 175MP
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