大学化学课件-国外原版教材.ppt
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1、ThermochemistryChapter 5David P.WhiteUniversity of North Carolina,WilmingtonCopyright 1999,PRENTICE HALL1Chapter 5The Nature of EnergyKinetic and Potential EnergyFrom Physics:Force is a push or pull on an object.Work is the product of force applied to an object over a distance:w=F dEnergy is the wor
2、k done to move an object against a force.Kinetic energy is the energy of motion:Copyright 1999,PRENTICE HALL2Chapter 5The Nature of EnergyKinetic and Potential EnergyPotential energy is the energy an object possesses by virtue of its position.Potential energy can be converted into kinetic energy.Exa
3、mple:a ball of clay dropping off a building.Copyright 1999,PRENTICE HALL3Chapter 5The Nature of EnergyEnergy UnitsSI Unit for energy is the joule,J:We sometimes use the calorie instead of the joule:1 cal=4.184 J(exactly)A nutritional Calorie:1 Cal=1000 cal=1 kcalCopyright 1999,PRENTICE HALL4Chapter
4、5The Nature of EnergySystems and SurroundingsSystem:part of the universe we are interested in.Surroundings:the rest of the universe.Copyright 1999,PRENTICE HALL5Chapter 5First Law of ThermodynamicsInternal EnergyInternal Energy:total energy of a system.Cannot measure absolute internal energy.Change
5、in internal energy,E=Efinal-EinitialCopyright 1999,PRENTICE HALL6Chapter 5Relating E to Heat and WorkEnergy cannot be created or destroyed.Energy of(system+surroundings)is constant.Any energy transferred from a system must be transferred to the surroundings(and vice versa).From the first law of ther
6、modynamics:when a system undergoes a physical or chemical change,the when a system undergoes a physical or chemical change,the change in internal energy is given by the heat added to or change in internal energy is given by the heat added to or absorbed by the system plus the work done on or by the
7、absorbed by the system plus the work done on or by the system:system:E E=q q+w w First Law of ThermodynamicsCopyright 1999,PRENTICE HALL7Chapter 5Relating E to Heat and WorkFirst Law of ThermodynamicsCopyright 1999,PRENTICE HALL8Chapter 5Relating E to Heat and WorkFirst Law of ThermodynamicsCopyrigh
8、t 1999,PRENTICE HALL9Chapter 5Endothermic and Exothermic ProcessesEndothermic:absorbs heat from the surroundings.Exothermic:transfers heat to the surroundings.An endothermic reaction feels cold.An exothermic reaction feels hot.First Law of ThermodynamicsCopyright 1999,PRENTICE HALL10Chapter 5State F
9、unctionsState function:depends only on the initial and final states of system,not on how the internal energy is used.First Law of ThermodynamicsCopyright 1999,PRENTICE HALL11Chapter 5State FunctionsFirst Law of ThermodynamicsCopyright 1999,PRENTICE HALL12Chapter 5Enthalpy,H:Heat transferred between
10、the system and surroundings carried out under constant pressure.Can only measure the change in enthalpy:H=Hfinal-Hinitial=qPEnthalpyCopyright 1999,PRENTICE HALL13Chapter 5For a reaction Hrxn=H(products)-H(reactants)Enthalpy is an extensive property(magnitude H is directly proportional to amount):CH4
11、(g)+2O2(g)CO2(g)+2H2O(g)H=-802 kJ2CH4(g)+4O2(g)2CO2(g)+4H2O(g)H=-1604 kJWhen we reverse a reaction,we change the sign of H:CO2(g)+2H2O(g)CH4(g)+2O2(g)H=+802 kJChange in enthalpy depends on state:H2O(g)H2O(l)H=-88 kJEnthalpies of Reaction Copyright 1999,PRENTICE HALL14Chapter 5Heat Capacity and Speci
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