SlideShare uma empresa Scribd logo
1 de 14
Baixar para ler offline
Gases
Lecture 2
1
Volumes of Gases in Chemical Reactions
 We are often concerned with knowing the identity and/or quantity of a gas involved in a chemical reaction.
 Thus, it is useful to be able to calculate the volumes of gases consumed or produced in reactions.
 Such calculations are based on the mole concept and balanced chemical equations.
 The coefficients in a balanced chemical equation tell us the relative amounts (in moles) of reactants and products in
a reaction.
 The ideal-gas equation relates the number of moles of a gas to 𝑷, 𝑽, 𝒂𝒏𝒅 𝑻.
2
Gas Mixtures and Partial Pressures
 How do we deal with mixtures of two or more different gases?
 While studying the properties of air, John Dalton made an important observation:
 The total pressure of a mixture of gases equals the sum of the pressures that each would exert if it
were present alone.
 The pressure exerted by a particular component of a mixture of gases is called the partial
pressure of that component.
 Dalton’s observation is known as Dalton’s law of partial pressures.
4
Partial Pressure and Mole Fractions
 For an ideal gas, we can write
 𝒚𝟏 =
𝒎𝒐𝒍𝒆𝒔 𝒐𝒇 𝒄𝒐𝒎𝒑𝒐𝒏𝒆𝒏𝒕 𝟏
𝒕𝒐𝒕𝒂𝒍 𝒎𝒐𝒍𝒆𝒔
=
𝒏𝟏
𝒏𝒕
𝑷𝟏
𝑷𝒕
= 𝒚𝟏 , 𝑷𝟏 = 𝒚𝟏𝑷𝒕
7
 The Kinetic –Molecular Theory of Gases
 To understand :
 Why does a gas expand when heated at constant pressure?
 Why does its pressure increase when the gas is compressed at constant
temperature?
 Consider the kinetic-molecular theory of gases
 The kinetic-molecular theory (the theory of moving molecules) is summarized by
the following statements:
1. Gases consist of large numbers of molecules that are in continuous, random motion.
2. The combined volume of all the molecules of the gas is negligible
relative to the total volume in which the gas is contained.
3. Attractive and repulsive forces between gas molecules
are negligible (the molecules behave as if they were perfectly
elastic solid spheres which rebound after collision without any
loss of energy or change of velocity)
3. Energy can be transferred between molecules during collisions
but, as long as temperature remains constant, the average
kinetic energy of the molecules does not change with time
9
5. The pressure of a gas is caused by collisions of the molecules with the walls
of the container .
6. The average kinetic energy of the molecules is 𝜶 to the absolute temperature ,
the molecules of all gases have the same average kinetic energy at the same
temperature.
a. The absolute temperature of a gas is a measure of the average K.E of its molecules
b. If two gases at the same temperature , their molecules
have the same K.E
c. If the absolute temperature of a gas is doubled
, the average K.E of its molecules doubles.
10
 According to Newton's second law of motion, the rate of change of momentum (i.e.,
change of momentum per second) is the applied force. So, we have,
 The gas pressure, by definition, is the force per unit area. Thus,
 This equation is known as kinetic equation of gases. This equation gives
the pressure exerted by an ideal gas.
 For 1 mole of a gas, 𝑷𝑽 =
𝟏
𝟑
𝒎𝑵𝒖𝟐
, where N = Avogadro's number.
13
 Derivation the ideal Equation 𝑷𝑽 = 𝑹𝑻 using the kinetic
theory of gases
 The average kinetic energy of the molecules is 𝜶 to the absolute
temperature (statement # 6)
 For 1 g mole of a gas, the value of constant, (
𝟐
𝟑
𝒌), is equal to R, i.e., gas
constant. Therefore,
14
Consistency of Various Gas Laws
 Boyle's law:

 At constant temperature, kinetic energy (E) of the gas is constant.
 𝑷𝑽 = 𝒄𝒐𝒏𝒔𝒕𝒂𝒏𝒕 ,
𝟐
𝟑
∗ 𝑬 = 𝒄𝒐𝒏𝒔𝒕𝒂𝒏𝒕 This is Boyle's law.
15
 Charles' law :
 According to it, 'at constant pressure, the volume of a given mass of
a gas is directly proportional to its absolute temperature, ' i.e.,
 𝑽 𝜶 𝑻 𝒂𝒕 𝒄𝒐𝒏𝒔𝒕𝒂𝒏𝒕 𝑷
 At constant pressure , so
𝟐
𝟑
∗
𝟏
𝑷
= 𝒄𝒐𝒏𝒔𝒕𝒂𝒏𝒕
 Since, 𝑬 𝜶 𝑻 , 𝐰𝐡𝐞𝐫𝐞 𝑻 𝐢𝐬 𝐭𝐡𝐞 𝐚𝐛𝐬𝐨𝐥𝐮𝐭𝐞 𝐭𝐞𝐦𝐩𝐞𝐫𝐚𝐭𝐮𝐫𝐞
 𝑽𝜶 𝑻 This is Charles' law.
16
 When the gases are also at the same temperature, their mean kinetic energy
will also be the same, i.e.,
 Dividing equation (1) by (2), we get, 𝒏𝟏 = 𝒏𝟐 , This is Avogadro's
hypothesis.
 From kinetic equation of gases, how to calculate the root mean
square velocity, u, of gas molecules under different conditions?
A. When only temperature is given
 For 1 mole of a gas we have, from kinetic equation
 Knowing the value of 𝑻, we can calculate 𝒖.
18
B. When both pressure and temperature are given
 From kinetic equation, we have for 1 mole of a gas,
 The value of V can be obtained from the above equation
 where,
 𝑷𝟎, 𝑽𝟎 𝒂𝒏𝒅 𝑻𝟎 arev correspond to STP conditions
19
C. When both pressure and density are given
 For 1 mole of a gas, the kinetic equation is written as,
 Knowing the values of 𝑷 and d, we can calculate 𝒖.
 Average velocity (𝒗):
 It is defined as, 'the average of the velocities of all molecules at any time
 If 𝒖𝟏, 𝒖𝟐, 𝒖𝟑, … . 𝒖𝒏 are the velocities of individual molecules in a gas and 𝒏
is the total number of molecules contained in a gas, then the average
velocity is given by,
 𝒗 =
𝒖𝟏+𝒖𝟐+𝒖𝟑+⋯𝒖𝒏
𝒏
 𝒗 =
𝟖𝑹𝑻
𝝅𝑴
20
 Most probable velocity
 It is defined as, 'the velocity possessed by the maximum number of
molecules of the gas
 𝒖𝒑 =
𝟐𝑹𝑻
𝑴
21

Mais conteúdo relacionado

Semelhante a Lecture 2 summary.pdf

Chemistry- JIB Topic 6 Gases
Chemistry- JIB Topic 6 GasesChemistry- JIB Topic 6 Gases
Chemistry- JIB Topic 6 GasesSam Richard
 
Chapter11new 120329111214-phpapp02
Chapter11new 120329111214-phpapp02Chapter11new 120329111214-phpapp02
Chapter11new 120329111214-phpapp02Cleophas Rwemera
 
Gas Laws
Gas LawsGas Laws
Gas Lawsitutor
 
Kinetic theory-
Kinetic theory-Kinetic theory-
Kinetic theory-RamlalShah
 
Chem-1101.pptx
Chem-1101.pptxChem-1101.pptx
Chem-1101.pptxthuzar29
 
Chemical thermodynamics(chem 2052)
Chemical thermodynamics(chem 2052)Chemical thermodynamics(chem 2052)
Chemical thermodynamics(chem 2052)MollaZewdie
 
kinetic theory of gas TSH PHYSICS .pptx
kinetic theory of gas TSH PHYSICS  .pptxkinetic theory of gas TSH PHYSICS  .pptx
kinetic theory of gas TSH PHYSICS .pptxthesciencehubprg
 
PHYSICS CLASS XII Chapter 3 - Kinetic theory of gases and radiation
PHYSICS CLASS XII Chapter 3 - Kinetic theory of gases and radiationPHYSICS CLASS XII Chapter 3 - Kinetic theory of gases and radiation
PHYSICS CLASS XII Chapter 3 - Kinetic theory of gases and radiationPooja M
 
CLASS XII PHYSICS Chapter 13 - Kinetic theory of gases and radiation
CLASS XII PHYSICS Chapter 13 - Kinetic theory of gases and radiationCLASS XII PHYSICS Chapter 13 - Kinetic theory of gases and radiation
CLASS XII PHYSICS Chapter 13 - Kinetic theory of gases and radiationPoojaKMore
 
Chem II - Kinetic Molecular Theory of Gases (Liquids and Solids)
Chem II - Kinetic Molecular Theory of Gases (Liquids and Solids)Chem II - Kinetic Molecular Theory of Gases (Liquids and Solids)
Chem II - Kinetic Molecular Theory of Gases (Liquids and Solids)Lumen Learning
 
Unit 10 kinetic theory fl14 final
Unit 10 kinetic theory fl14 finalUnit 10 kinetic theory fl14 final
Unit 10 kinetic theory fl14 finalLumen Learning
 
Thermodynamics
ThermodynamicsThermodynamics
ThermodynamicsSrilekhaV1
 
PHYSICS CLASS XII Chapter 3 - Kinetic theory of gases and radiation
PHYSICS CLASS XII Chapter 3 - Kinetic theory of gases and radiationPHYSICS CLASS XII Chapter 3 - Kinetic theory of gases and radiation
PHYSICS CLASS XII Chapter 3 - Kinetic theory of gases and radiationPooja M
 
Ideal gases
Ideal gasesIdeal gases
Ideal gasesSiyavula
 
Pressure and kinetic energy of particles
Pressure and kinetic energy of particlesPressure and kinetic energy of particles
Pressure and kinetic energy of particlescharmer08
 

Semelhante a Lecture 2 summary.pdf (20)

Chemistry- JIB Topic 6 Gases
Chemistry- JIB Topic 6 GasesChemistry- JIB Topic 6 Gases
Chemistry- JIB Topic 6 Gases
 
Chapter11new 120329111214-phpapp02
Chapter11new 120329111214-phpapp02Chapter11new 120329111214-phpapp02
Chapter11new 120329111214-phpapp02
 
Gas Laws
Gas LawsGas Laws
Gas Laws
 
Kinetic theory-
Kinetic theory-Kinetic theory-
Kinetic theory-
 
Chem-1101.pptx
Chem-1101.pptxChem-1101.pptx
Chem-1101.pptx
 
Chemical thermodynamics(chem 2052)
Chemical thermodynamics(chem 2052)Chemical thermodynamics(chem 2052)
Chemical thermodynamics(chem 2052)
 
Heat 3
Heat 3Heat 3
Heat 3
 
Properties of Gas Manik
Properties of Gas ManikProperties of Gas Manik
Properties of Gas Manik
 
kinetic theory of gas TSH PHYSICS .pptx
kinetic theory of gas TSH PHYSICS  .pptxkinetic theory of gas TSH PHYSICS  .pptx
kinetic theory of gas TSH PHYSICS .pptx
 
Gas and condensed matter
Gas and condensed matterGas and condensed matter
Gas and condensed matter
 
PHYSICS CLASS XII Chapter 3 - Kinetic theory of gases and radiation
PHYSICS CLASS XII Chapter 3 - Kinetic theory of gases and radiationPHYSICS CLASS XII Chapter 3 - Kinetic theory of gases and radiation
PHYSICS CLASS XII Chapter 3 - Kinetic theory of gases and radiation
 
CLASS XII PHYSICS Chapter 13 - Kinetic theory of gases and radiation
CLASS XII PHYSICS Chapter 13 - Kinetic theory of gases and radiationCLASS XII PHYSICS Chapter 13 - Kinetic theory of gases and radiation
CLASS XII PHYSICS Chapter 13 - Kinetic theory of gases and radiation
 
Chem II - Kinetic Molecular Theory of Gases (Liquids and Solids)
Chem II - Kinetic Molecular Theory of Gases (Liquids and Solids)Chem II - Kinetic Molecular Theory of Gases (Liquids and Solids)
Chem II - Kinetic Molecular Theory of Gases (Liquids and Solids)
 
Unit 10 kinetic theory fl14 final
Unit 10 kinetic theory fl14 finalUnit 10 kinetic theory fl14 final
Unit 10 kinetic theory fl14 final
 
Thermodynamics
ThermodynamicsThermodynamics
Thermodynamics
 
Chapter 5
Chapter 5Chapter 5
Chapter 5
 
PHYSICS CLASS XII Chapter 3 - Kinetic theory of gases and radiation
PHYSICS CLASS XII Chapter 3 - Kinetic theory of gases and radiationPHYSICS CLASS XII Chapter 3 - Kinetic theory of gases and radiation
PHYSICS CLASS XII Chapter 3 - Kinetic theory of gases and radiation
 
Ideal gases
Ideal gasesIdeal gases
Ideal gases
 
Gas Laws
Gas LawsGas Laws
Gas Laws
 
Pressure and kinetic energy of particles
Pressure and kinetic energy of particlesPressure and kinetic energy of particles
Pressure and kinetic energy of particles
 

Mais de FathiShokry

Lecture 4 Ammonia Production.ppt
Lecture 4  Ammonia Production.pptLecture 4  Ammonia Production.ppt
Lecture 4 Ammonia Production.pptFathiShokry
 
lec 2 dr. marwa.ppsx
lec 2 dr. marwa.ppsxlec 2 dr. marwa.ppsx
lec 2 dr. marwa.ppsxFathiShokry
 
Lect 1 PE 200.pptx
Lect 1 PE 200.pptxLect 1 PE 200.pptx
Lect 1 PE 200.pptxFathiShokry
 
Lecture 10 (1).pptx
Lecture 10 (1).pptxLecture 10 (1).pptx
Lecture 10 (1).pptxFathiShokry
 
lec. 3 dr,marwa.pptx
lec. 3 dr,marwa.pptxlec. 3 dr,marwa.pptx
lec. 3 dr,marwa.pptxFathiShokry
 
Hysys Course 2022.ppt
Hysys Course 2022.pptHysys Course 2022.ppt
Hysys Course 2022.pptFathiShokry
 
Intrduction to Simulation.ppt
Intrduction to Simulation.pptIntrduction to Simulation.ppt
Intrduction to Simulation.pptFathiShokry
 
Material selection and design - No audio.pptx
Material selection and design - No audio.pptxMaterial selection and design - No audio.pptx
Material selection and design - No audio.pptxFathiShokry
 
Chapter3-Engine Cyclesشرح محاضرة الاسبوع التاسع.ppt
Chapter3-Engine Cyclesشرح محاضرة الاسبوع التاسع.pptChapter3-Engine Cyclesشرح محاضرة الاسبوع التاسع.ppt
Chapter3-Engine Cyclesشرح محاضرة الاسبوع التاسع.pptFathiShokry
 

Mais de FathiShokry (18)

Lecture 4 Ammonia Production.ppt
Lecture 4  Ammonia Production.pptLecture 4  Ammonia Production.ppt
Lecture 4 Ammonia Production.ppt
 
lec 2 dr. marwa.ppsx
lec 2 dr. marwa.ppsxlec 2 dr. marwa.ppsx
lec 2 dr. marwa.ppsx
 
Lect 1 PE 200.pptx
Lect 1 PE 200.pptxLect 1 PE 200.pptx
Lect 1 PE 200.pptx
 
Lecture 10 (1).pptx
Lecture 10 (1).pptxLecture 10 (1).pptx
Lecture 10 (1).pptx
 
Lect 5.pptx
Lect 5.pptxLect 5.pptx
Lect 5.pptx
 
lec. 3 dr,marwa.pptx
lec. 3 dr,marwa.pptxlec. 3 dr,marwa.pptx
lec. 3 dr,marwa.pptx
 
2.pptx
2.pptx2.pptx
2.pptx
 
1.pptx
1.pptx1.pptx
1.pptx
 
summary 1.pptx
summary 1.pptxsummary 1.pptx
summary 1.pptx
 
Hysys Course 2022.ppt
Hysys Course 2022.pptHysys Course 2022.ppt
Hysys Course 2022.ppt
 
Intrduction to Simulation.ppt
Intrduction to Simulation.pptIntrduction to Simulation.ppt
Intrduction to Simulation.ppt
 
combustion.pptx
combustion.pptxcombustion.pptx
combustion.pptx
 
lect 2.pptx
lect 2.pptxlect 2.pptx
lect 2.pptx
 
Material selection and design - No audio.pptx
Material selection and design - No audio.pptxMaterial selection and design - No audio.pptx
Material selection and design - No audio.pptx
 
lecture.ppt
lecture.pptlecture.ppt
lecture.ppt
 
Chapter3-Engine Cyclesشرح محاضرة الاسبوع التاسع.ppt
Chapter3-Engine Cyclesشرح محاضرة الاسبوع التاسع.pptChapter3-Engine Cyclesشرح محاضرة الاسبوع التاسع.ppt
Chapter3-Engine Cyclesشرح محاضرة الاسبوع التاسع.ppt
 
CH1.ppt
CH1.pptCH1.ppt
CH1.ppt
 
base.pdf
base.pdfbase.pdf
base.pdf
 

Último

Learn the concepts of Thermodynamics on Magic Marks
Learn the concepts of Thermodynamics on Magic MarksLearn the concepts of Thermodynamics on Magic Marks
Learn the concepts of Thermodynamics on Magic MarksMagic Marks
 
data_management_and _data_science_cheat_sheet.pdf
data_management_and _data_science_cheat_sheet.pdfdata_management_and _data_science_cheat_sheet.pdf
data_management_and _data_science_cheat_sheet.pdfJiananWang21
 
Standard vs Custom Battery Packs - Decoding the Power Play
Standard vs Custom Battery Packs - Decoding the Power PlayStandard vs Custom Battery Packs - Decoding the Power Play
Standard vs Custom Battery Packs - Decoding the Power PlayEpec Engineered Technologies
 
A Study of Urban Area Plan for Pabna Municipality
A Study of Urban Area Plan for Pabna MunicipalityA Study of Urban Area Plan for Pabna Municipality
A Study of Urban Area Plan for Pabna MunicipalityMorshed Ahmed Rahath
 
Online food ordering system project report.pdf
Online food ordering system project report.pdfOnline food ordering system project report.pdf
Online food ordering system project report.pdfKamal Acharya
 
kiln thermal load.pptx kiln tgermal load
kiln thermal load.pptx kiln tgermal loadkiln thermal load.pptx kiln tgermal load
kiln thermal load.pptx kiln tgermal loadhamedmustafa094
 
Air Compressor reciprocating single stage
Air Compressor reciprocating single stageAir Compressor reciprocating single stage
Air Compressor reciprocating single stageAbc194748
 
scipt v1.pptxcxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxx...
scipt v1.pptxcxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxx...scipt v1.pptxcxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxx...
scipt v1.pptxcxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxx...HenryBriggs2
 
Block diagram reduction techniques in control systems.ppt
Block diagram reduction techniques in control systems.pptBlock diagram reduction techniques in control systems.ppt
Block diagram reduction techniques in control systems.pptNANDHAKUMARA10
 
Kuwait City MTP kit ((+919101817206)) Buy Abortion Pills Kuwait
Kuwait City MTP kit ((+919101817206)) Buy Abortion Pills KuwaitKuwait City MTP kit ((+919101817206)) Buy Abortion Pills Kuwait
Kuwait City MTP kit ((+919101817206)) Buy Abortion Pills Kuwaitjaanualu31
 
+97470301568>> buy weed in qatar,buy thc oil qatar,buy weed and vape oil in d...
+97470301568>> buy weed in qatar,buy thc oil qatar,buy weed and vape oil in d...+97470301568>> buy weed in qatar,buy thc oil qatar,buy weed and vape oil in d...
+97470301568>> buy weed in qatar,buy thc oil qatar,buy weed and vape oil in d...Health
 
2016EF22_0 solar project report rooftop projects
2016EF22_0 solar project report rooftop projects2016EF22_0 solar project report rooftop projects
2016EF22_0 solar project report rooftop projectssmsksolar
 
Generative AI or GenAI technology based PPT
Generative AI or GenAI technology based PPTGenerative AI or GenAI technology based PPT
Generative AI or GenAI technology based PPTbhaskargani46
 
DeepFakes presentation : brief idea of DeepFakes
DeepFakes presentation : brief idea of DeepFakesDeepFakes presentation : brief idea of DeepFakes
DeepFakes presentation : brief idea of DeepFakesMayuraD1
 
School management system project Report.pdf
School management system project Report.pdfSchool management system project Report.pdf
School management system project Report.pdfKamal Acharya
 
DC MACHINE-Motoring and generation, Armature circuit equation
DC MACHINE-Motoring and generation, Armature circuit equationDC MACHINE-Motoring and generation, Armature circuit equation
DC MACHINE-Motoring and generation, Armature circuit equationBhangaleSonal
 
COST-EFFETIVE and Energy Efficient BUILDINGS ptx
COST-EFFETIVE  and Energy Efficient BUILDINGS ptxCOST-EFFETIVE  and Energy Efficient BUILDINGS ptx
COST-EFFETIVE and Energy Efficient BUILDINGS ptxJIT KUMAR GUPTA
 
Rums floating Omkareshwar FSPV IM_16112021.pdf
Rums floating Omkareshwar FSPV IM_16112021.pdfRums floating Omkareshwar FSPV IM_16112021.pdf
Rums floating Omkareshwar FSPV IM_16112021.pdfsmsksolar
 

Último (20)

Learn the concepts of Thermodynamics on Magic Marks
Learn the concepts of Thermodynamics on Magic MarksLearn the concepts of Thermodynamics on Magic Marks
Learn the concepts of Thermodynamics on Magic Marks
 
data_management_and _data_science_cheat_sheet.pdf
data_management_and _data_science_cheat_sheet.pdfdata_management_and _data_science_cheat_sheet.pdf
data_management_and _data_science_cheat_sheet.pdf
 
Standard vs Custom Battery Packs - Decoding the Power Play
Standard vs Custom Battery Packs - Decoding the Power PlayStandard vs Custom Battery Packs - Decoding the Power Play
Standard vs Custom Battery Packs - Decoding the Power Play
 
A Study of Urban Area Plan for Pabna Municipality
A Study of Urban Area Plan for Pabna MunicipalityA Study of Urban Area Plan for Pabna Municipality
A Study of Urban Area Plan for Pabna Municipality
 
Online food ordering system project report.pdf
Online food ordering system project report.pdfOnline food ordering system project report.pdf
Online food ordering system project report.pdf
 
kiln thermal load.pptx kiln tgermal load
kiln thermal load.pptx kiln tgermal loadkiln thermal load.pptx kiln tgermal load
kiln thermal load.pptx kiln tgermal load
 
Air Compressor reciprocating single stage
Air Compressor reciprocating single stageAir Compressor reciprocating single stage
Air Compressor reciprocating single stage
 
Cara Menggugurkan Sperma Yang Masuk Rahim Biyar Tidak Hamil
Cara Menggugurkan Sperma Yang Masuk Rahim Biyar Tidak HamilCara Menggugurkan Sperma Yang Masuk Rahim Biyar Tidak Hamil
Cara Menggugurkan Sperma Yang Masuk Rahim Biyar Tidak Hamil
 
scipt v1.pptxcxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxx...
scipt v1.pptxcxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxx...scipt v1.pptxcxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxx...
scipt v1.pptxcxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxx...
 
Block diagram reduction techniques in control systems.ppt
Block diagram reduction techniques in control systems.pptBlock diagram reduction techniques in control systems.ppt
Block diagram reduction techniques in control systems.ppt
 
Kuwait City MTP kit ((+919101817206)) Buy Abortion Pills Kuwait
Kuwait City MTP kit ((+919101817206)) Buy Abortion Pills KuwaitKuwait City MTP kit ((+919101817206)) Buy Abortion Pills Kuwait
Kuwait City MTP kit ((+919101817206)) Buy Abortion Pills Kuwait
 
+97470301568>> buy weed in qatar,buy thc oil qatar,buy weed and vape oil in d...
+97470301568>> buy weed in qatar,buy thc oil qatar,buy weed and vape oil in d...+97470301568>> buy weed in qatar,buy thc oil qatar,buy weed and vape oil in d...
+97470301568>> buy weed in qatar,buy thc oil qatar,buy weed and vape oil in d...
 
2016EF22_0 solar project report rooftop projects
2016EF22_0 solar project report rooftop projects2016EF22_0 solar project report rooftop projects
2016EF22_0 solar project report rooftop projects
 
Generative AI or GenAI technology based PPT
Generative AI or GenAI technology based PPTGenerative AI or GenAI technology based PPT
Generative AI or GenAI technology based PPT
 
DeepFakes presentation : brief idea of DeepFakes
DeepFakes presentation : brief idea of DeepFakesDeepFakes presentation : brief idea of DeepFakes
DeepFakes presentation : brief idea of DeepFakes
 
School management system project Report.pdf
School management system project Report.pdfSchool management system project Report.pdf
School management system project Report.pdf
 
Call Girls in South Ex (delhi) call me [🔝9953056974🔝] escort service 24X7
Call Girls in South Ex (delhi) call me [🔝9953056974🔝] escort service 24X7Call Girls in South Ex (delhi) call me [🔝9953056974🔝] escort service 24X7
Call Girls in South Ex (delhi) call me [🔝9953056974🔝] escort service 24X7
 
DC MACHINE-Motoring and generation, Armature circuit equation
DC MACHINE-Motoring and generation, Armature circuit equationDC MACHINE-Motoring and generation, Armature circuit equation
DC MACHINE-Motoring and generation, Armature circuit equation
 
COST-EFFETIVE and Energy Efficient BUILDINGS ptx
COST-EFFETIVE  and Energy Efficient BUILDINGS ptxCOST-EFFETIVE  and Energy Efficient BUILDINGS ptx
COST-EFFETIVE and Energy Efficient BUILDINGS ptx
 
Rums floating Omkareshwar FSPV IM_16112021.pdf
Rums floating Omkareshwar FSPV IM_16112021.pdfRums floating Omkareshwar FSPV IM_16112021.pdf
Rums floating Omkareshwar FSPV IM_16112021.pdf
 

Lecture 2 summary.pdf

  • 2. Volumes of Gases in Chemical Reactions  We are often concerned with knowing the identity and/or quantity of a gas involved in a chemical reaction.  Thus, it is useful to be able to calculate the volumes of gases consumed or produced in reactions.  Such calculations are based on the mole concept and balanced chemical equations.  The coefficients in a balanced chemical equation tell us the relative amounts (in moles) of reactants and products in a reaction.  The ideal-gas equation relates the number of moles of a gas to 𝑷, 𝑽, 𝒂𝒏𝒅 𝑻. 2
  • 3. Gas Mixtures and Partial Pressures  How do we deal with mixtures of two or more different gases?  While studying the properties of air, John Dalton made an important observation:  The total pressure of a mixture of gases equals the sum of the pressures that each would exert if it were present alone.  The pressure exerted by a particular component of a mixture of gases is called the partial pressure of that component.  Dalton’s observation is known as Dalton’s law of partial pressures. 4
  • 4. Partial Pressure and Mole Fractions  For an ideal gas, we can write  𝒚𝟏 = 𝒎𝒐𝒍𝒆𝒔 𝒐𝒇 𝒄𝒐𝒎𝒑𝒐𝒏𝒆𝒏𝒕 𝟏 𝒕𝒐𝒕𝒂𝒍 𝒎𝒐𝒍𝒆𝒔 = 𝒏𝟏 𝒏𝒕 𝑷𝟏 𝑷𝒕 = 𝒚𝟏 , 𝑷𝟏 = 𝒚𝟏𝑷𝒕 7
  • 5.  The Kinetic –Molecular Theory of Gases  To understand :  Why does a gas expand when heated at constant pressure?  Why does its pressure increase when the gas is compressed at constant temperature?  Consider the kinetic-molecular theory of gases  The kinetic-molecular theory (the theory of moving molecules) is summarized by the following statements: 1. Gases consist of large numbers of molecules that are in continuous, random motion. 2. The combined volume of all the molecules of the gas is negligible relative to the total volume in which the gas is contained. 3. Attractive and repulsive forces between gas molecules are negligible (the molecules behave as if they were perfectly elastic solid spheres which rebound after collision without any loss of energy or change of velocity) 3. Energy can be transferred between molecules during collisions but, as long as temperature remains constant, the average kinetic energy of the molecules does not change with time 9
  • 6. 5. The pressure of a gas is caused by collisions of the molecules with the walls of the container . 6. The average kinetic energy of the molecules is 𝜶 to the absolute temperature , the molecules of all gases have the same average kinetic energy at the same temperature. a. The absolute temperature of a gas is a measure of the average K.E of its molecules b. If two gases at the same temperature , their molecules have the same K.E c. If the absolute temperature of a gas is doubled , the average K.E of its molecules doubles. 10
  • 7.  According to Newton's second law of motion, the rate of change of momentum (i.e., change of momentum per second) is the applied force. So, we have,  The gas pressure, by definition, is the force per unit area. Thus,  This equation is known as kinetic equation of gases. This equation gives the pressure exerted by an ideal gas.  For 1 mole of a gas, 𝑷𝑽 = 𝟏 𝟑 𝒎𝑵𝒖𝟐 , where N = Avogadro's number. 13
  • 8.  Derivation the ideal Equation 𝑷𝑽 = 𝑹𝑻 using the kinetic theory of gases  The average kinetic energy of the molecules is 𝜶 to the absolute temperature (statement # 6)  For 1 g mole of a gas, the value of constant, ( 𝟐 𝟑 𝒌), is equal to R, i.e., gas constant. Therefore, 14
  • 9. Consistency of Various Gas Laws  Boyle's law:   At constant temperature, kinetic energy (E) of the gas is constant.  𝑷𝑽 = 𝒄𝒐𝒏𝒔𝒕𝒂𝒏𝒕 , 𝟐 𝟑 ∗ 𝑬 = 𝒄𝒐𝒏𝒔𝒕𝒂𝒏𝒕 This is Boyle's law. 15
  • 10.  Charles' law :  According to it, 'at constant pressure, the volume of a given mass of a gas is directly proportional to its absolute temperature, ' i.e.,  𝑽 𝜶 𝑻 𝒂𝒕 𝒄𝒐𝒏𝒔𝒕𝒂𝒏𝒕 𝑷  At constant pressure , so 𝟐 𝟑 ∗ 𝟏 𝑷 = 𝒄𝒐𝒏𝒔𝒕𝒂𝒏𝒕  Since, 𝑬 𝜶 𝑻 , 𝐰𝐡𝐞𝐫𝐞 𝑻 𝐢𝐬 𝐭𝐡𝐞 𝐚𝐛𝐬𝐨𝐥𝐮𝐭𝐞 𝐭𝐞𝐦𝐩𝐞𝐫𝐚𝐭𝐮𝐫𝐞  𝑽𝜶 𝑻 This is Charles' law. 16
  • 11.  When the gases are also at the same temperature, their mean kinetic energy will also be the same, i.e.,  Dividing equation (1) by (2), we get, 𝒏𝟏 = 𝒏𝟐 , This is Avogadro's hypothesis.  From kinetic equation of gases, how to calculate the root mean square velocity, u, of gas molecules under different conditions? A. When only temperature is given  For 1 mole of a gas we have, from kinetic equation  Knowing the value of 𝑻, we can calculate 𝒖. 18
  • 12. B. When both pressure and temperature are given  From kinetic equation, we have for 1 mole of a gas,  The value of V can be obtained from the above equation  where,  𝑷𝟎, 𝑽𝟎 𝒂𝒏𝒅 𝑻𝟎 arev correspond to STP conditions 19
  • 13. C. When both pressure and density are given  For 1 mole of a gas, the kinetic equation is written as,  Knowing the values of 𝑷 and d, we can calculate 𝒖.  Average velocity (𝒗):  It is defined as, 'the average of the velocities of all molecules at any time  If 𝒖𝟏, 𝒖𝟐, 𝒖𝟑, … . 𝒖𝒏 are the velocities of individual molecules in a gas and 𝒏 is the total number of molecules contained in a gas, then the average velocity is given by,  𝒗 = 𝒖𝟏+𝒖𝟐+𝒖𝟑+⋯𝒖𝒏 𝒏  𝒗 = 𝟖𝑹𝑻 𝝅𝑴 20
  • 14.  Most probable velocity  It is defined as, 'the velocity possessed by the maximum number of molecules of the gas  𝒖𝒑 = 𝟐𝑹𝑻 𝑴 21