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Chapter 20 Heat and the First Law of Thermodynamics Mechanical Equivalent of Heat • • • Joule found that it took approximately 4.18 J of mechanical energy to raise the temperature of 1g water at 1oC Later, more precise, measurements determined the amount of mechanical energy needed to raise the temperature of 1g of water from 14.5oC to 15.5oC 1 cal = 4.186 J This is known as the mechanical equivalent of heat Heat Capacity • The heat capacity, C, of a particular sample is defined as the amount of energy needed to raise the temperature of that sample by 1oC • If energy Q produces a change of temperature of DT, then Q = C DT Specific Heat • Specific heat, c, is the heat capacity per unit mass • If energy Q transfers to a sample of a substance of mass m and the temperature changes by DT, then the specific heat is Q c m DT Specific Heat • The specific heat is essentially a measure of how insensitive a substance is to the addition of energy – The greater the substance’s specific heat, the more energy that must be added to cause a particular temperature change • The equation is often written in terms of Q : Q = m c DT Some Specific Heat Values More Specific Heat Values Sign Conventions • If the temperature increases: Q and DT are positive Energy transfers into the system • If the temperature decreases: Q and DT are negative Energy transfers out of the system Specific Heat Varies With Temperature • • • Technically, the specific heat varies with temperature Tf c dT The corrected equation is Q m Ti However, if the temperature intervals are not too large, the variation can be ignored and c can be treated as a constant There is only about a 1% specific heat variation between 0o and 100oC Specific Heat of Water • Water has the highest specific heat of common materials • This is responsible for many weather phenomena – Moderate temperatures near large bodies of water – Global wind systems – Land and sea breezes Calorimetry • One technique for measuring specific heat involves heating a material, adding it to a sample of water, and recording the final temperature • This technique is known as calorimetry – A calorimeter is a device in which this energy transfer takes place Calorimetry • The system of the sample and the water are isolated • Conservation of energy requires that the amount of energy that leaves the sample equals the amount of energy that enters the water – Conservation of Energy gives a mathematical expression of this: Qcold= -Qhot Calorimetry • • The negative sign in the equation is critical for consistency with the established sign convention Since each Q = mcDT, csample can be found by: mwcw (T f Tw ) ms cs (Ts T f ) cs mwcw T f Tw ms Ts T f Technically, the mass of the container should be included, but if mw >>mcontainer it can be neglected Phase Changes • A phase change is happened when a substance changes from one form to another – Two common phase changes are • Solid to liquid (melting) • Liquid to gas (boiling) • During a phase change, there is no change in temperature of the substance Latent Heat • • • Different substances react differently to the energy added or removed during a phase change due to their different molecular arrangements The amount of energy also depends on the mass of the sample If an amount of energy Q is required to change the phase of a sample of mass m, L = Q /m Latent Heat • • • If an amount of energy Q is required to change the phase of a sample of mass m, L = Q /m The quantity L is called the latent heat of the material Latent means “hidden” The value of L depends on the substance as well as the actual phase change The energy required to change the phase is Q = mL Latent Heat • The latent heat of fusion is used when the phase change is from solid to liquid • The latent heat of vaporization is used when the phase change is from liquid to gas • The positive sign is used when the energy is transferred into the system – This will result in melting or boiling • The negative sign is used when energy is transferred out of the system – This will result in freezing or condensation Sample Latent Heat Values Graph of Ice to Steam Warming Ice, Graph Part A • Start with one gram of ice at –30.0ºC • During phase A, the temperature of the ice changes from –30.0ºC to 0ºC. The specific heat of ice is 2090 J/kg·0C Q = mi ci ΔT = (1x10-3kg)(2090 J/kg·0C)(30.00C)=62.7J In this case, 62.7 J of energy are added Melting Ice, Graph Part B • • Once at 0ºC, the phase change (melting) starts The temperature stays the same although energy is still being added. The latent heat of fusion for water is 3.33x105 J/kg Q =mi Lf =(1x10-3 kg)(3.33x105 J/kg)=333J The energy required is 333 J On the graph, the values move from 62.7 J to 396 J Warming Water, Graph Part C • • Between 0ºC and 100ºC, the material is liquid and no phase changes take place Energy added increases the temperature. Specific heat for water 4186 J/kg·0C. Q = mwcw ΔT = 419J. 419 J are added The total is now 815 J Boiling Water, Graph Part D • • • At 100ºC, a phase change occurs (boiling) Temperature does not change. The latent heat of vaporization for water is 2.26x106J/kg. Use Q = mw Lv. This requires 2260 J The total is now 3075 J Heating Steam • • • • After all the water is converted to steam, the steam will heat up No phase change occurs The added energy goes to increasing the temperature. The specific heat for steam is 2010J/kg∙0C. Use Q = mscs ΔT In this case, 40.2 J are needed The temperature is going to 120o C • The total is now 3115 J If water with a mass mh at temperature Th is poured into an aluminum cup of mass mAl containing mass mc of water at Tc, where Th > Tc, what is the equilibrium temperature of the system? If water with a mass mh at temperature Th is poured into an aluminum cup of mass mAl containing mass mc of water at Tc, where Th > Tc, what is the equilibrium temperature of the system? Q cold Q hot m A lcA l T f Tc m ccw T f Tc m hcw T f Th m A lcA l m ccw T f m A lcA l m ccw Tc m hcw T f m hcw Th m A lcA l m ccw m hcw T f m A lcA l m ccw Tc m hcw Th m A lcA l m ccw Tc m hcw Th T f m A lcA l m ccw m hcw Molecular View of Phase Changes • • Phase changes can be described in terms of the rearrangement of molecules (or atoms in an elemental substance) Liquid to Gas phase change Molecules in a liquid are close together The forces between them are stronger than those in a gas Work must be done to separate the molecules The latent heat of vaporization is the energy per unit mass needed to accomplish this separation Molecular View of Phase Changes Solid to Liquid phase change • • • • • The addition of energy will cause the amplitude of the vibration of the molecules about their equilibrium position to increase At the melting point, the amplitude is great enough to break apart bonds between the molecules The molecules can move to new positions The molecules in the liquid are bound together less strongly than those of the solid The latent heat of fusion is the energy per unit mass required to go from the solid-type to the liquid-type bonds Molecular View of Phase Changes • The latent heat of vaporization is greater than the latent heat of fusion In the liquid-to-gas phase change, the liquidtype bonds are broken The gas molecules are essentially not bonded to each other • It takes more energy to completely break the bonds than to change the type of bonds Calorimetry Problem-Solving Strategy • Units of measure must be consistent For example, if your value of c is in J/kg.oC, then your mass must be in kg, the temperatures in oC and energies in J • Transfers of energy are given by • Q =mc DT only when no phase change occurs If there is a phase change, use Q = mL Calorimetry Problem-Solving Strategy • Be sure to select the correct sign for all energy transfers • Remember to use Qcold = - Qhot – The DT is always Tf - Ti State Variables • • • State variables describe the state of a system In the macroscopic approach to thermodynamics, variables are used to describe the state of the system Pressure, temperature, volume, internal energy These are examples of state variables The macroscopic state of an isolated system can be specified only if the system is in thermal equilibrium internally Work in Thermodynamics • • • Work can be done on a deformable system, such as a gas Consider a cylinder with a moveable piston A force is applied to slowly compress the gas The compression is slow enough for all the system to remain essentially in thermal equilibrium This is said to occur quasistatically Work • The piston is pushed downward by a force F through a displacement of dr: dW F dr Fˆj dyˆj Fdy PA dy A·dy is the change in volume of the gas, dV Therefore, the work done on the gas is dW = -P dV Work • Interpreting dW = - P dV – If the gas is compressed, dV is negative and the work done on the gas is positive – If the gas expands, dV is positive and the work done on the gas is negative – If the volume remains constant, the work done is zero • The total work done is: Vf W P dV Vi PV Diagrams The state of the gas at each step can be plotted on a graph called a PV diagram • • This allows us to visualize the process through which the gas is progressing The curve is called the path PV diagrams can be used when the pressure and volume are known at each step of the process PV Diagrams • The work done on a gas in a quasistatic process that takes the gas from an initial state to a final state is the negative of the area under the curve on the PV diagram, evaluated between the initial and final states –This is true whether or not the pressure stays constant –The work done does depend on the path taken Work Done By Various Paths • Each of these processes has the same initial and final states • The work done differs in each process • The work done depends on the path Work From a PV Diagram • • • The volume of the gas is first reduced from Vi to Vf at constant pressure Pi Next, the pressure increases from Pi to Pf by heating at constant volume Vf W = -Pi (Vf – Vi) Work From a PV Diagram • • • The pressure of the gas is increased from Pi to Pf at a constant volume The volume is decreased from Vi to Vf W = -Pf (Vf – Vi) Work From a PV Diagram • • • The pressure and the volume continually change The work is some intermediate value between Pf (Vf – Vi) and Pi (Vf – Vi) To evaluate the actual amount of work, the function P(V) must be known V A sample of ideal gas is expanded to twice its original volume of 1.00 m3 in a quasi-static process for which P = V 2, with = 5.00 atm/m6, as shown in Figure. How much work is done on the expanding gas? A sample of ideal gas is expanded to twice its original volume of 1.00 m3 in a quasi-static process for which P = V 2, with = 5.00 atm/m6, as shown in Figure. How much work is done on the expanding gas? f W if PdV i . The work done on the gas is the negative of the area under 2 the curve P V between V and i f 1 3 3 W if V dV V f Vi 3 i 2 V f 2V i 2 1.00 m 3 2.00 m 3 Vf A sample of ideal gas is expanded to twice its original volume of 1.00 m3 in a quasi-static process for which P = V 2, with = 5.00 atm/m6, as shown in Figure. How much work is done on the expanding gas? f W if PdV . i 1 atm 5 Pa 3 3 3 Wif 5.00 6 1.013 10 2.00m 1.00m 3 m atm 1.18MJ 3 (a) Determine the work done on a fluid that expands from i to f as indicated in Figure. (b) How much work is performed on the fluid if it is compressed from f to i along the same path? (a) Determine the work done on a fluid that expands from i to f as indicated in Figure. (b) How much work is performed on the fluid if it is compressed from f to i along the same path? (a) W PdV 4.00 10 Pa 3.00 2.00 m 2.00 10 Pa 4.00 3.00 m (b) W 6.00 106 Pa 2.00 1.00 m 3 6 3 6 3 W i f 12.0 M J W fi 12.0 M J Heat Transfer • The energy transfer, Q, into • or out of a system also depends on the process The piston is pushed upward, the gas is doing work on the piston Heat Transfer • • • • This gas has the same initial volume, temperature and pressure as the previous example The final states are also identical No energy is transferred by heat through the insulating wall No work is done by the gas expanding into the vacuum Energy Transfer, Summary • Energy transfers by heat, like the work done, depend on the initial, final, and intermediate states of the system • Both work and heat depend on the path taken • Neither can be determined solely by the end points of a thermodynamic process The First Law of Thermodynamics • • The First Law of Thermodynamics is a special case of the Law of Conservation of Energy It takes into account changes in internal energy and energy transfers by heat and work Although Q and W each are dependent on the path, Q + W is independent of the path • The First Law of Thermodynamics states that DEint = Q + W All quantities must have the same units of measure of energy The First Law of Thermodynamics • • • One consequence of the first law is that there must exist some quantity known as internal energy which is determined by the state of the system For infinitesimal changes in a system dEint = dQ + dW The first law is an energy conservation statement specifying that the only type of energy that changes in a system is internal energy Isolated Systems • An isolated system is one that does not interact with its surroundings • No energy transfer by heat takes place • The work done on the system is zero Q = W = 0, so DEint = 0 • The internal energy of an isolated system remains constant Cyclic Processes • A cyclic process is one that starts and ends in the same state • This process would not be isolated • On a PV diagram, a cyclic process appears as a • • closed curve The change in internal energy must be zero since it is a state variable If DEint = 0, Q = -W In a cyclic process, the net work done on the system per cycle equals the area enclosed by the path representing the process on a PV diagram Adiabatic Process • An adiabatic process is one during which no energy enters or leaves the system by heat Q=0 This is achieved by: Thermally insulating the walls of the system Having the process proceed so quickly that no heat can be exchanged Adiabatic Process • Since Q = 0, DEint = W • If the gas is compressed adiabatically, W is positive so DEint is positive and the temperature of the gas increases • If the gas expands adiabatically, the temperature of the gas decreases Adiabatic Processes • Some important examples of adiabatic processes related to engineering are: –The expansion of hot gases in an internal combustion engine –The liquefaction of gases in a cooling system –The compression stroke in a diesel engine Adiabatic Free Expansion • • • • This is an example of adiabatic free expansion The process is adiabatic because it takes place in an insulated container Because the gas expands into a vacuum, it does not apply a force on a piston and W = 0 Since Q = 0 and W = 0, DEint = 0 and the initial and final states are the same – No change in temperature is expected Isobaric Processes • An isobaric process is one that occurs at a • • constant pressure The values of the heat and the work are generally both nonzero The work done is W = P (Vf – Vi) where P is the constant pressure Isovolumetric Processes • • • • An isovolumetric process is one in which there is no change in the volume Since the volume does not change, W = 0 From the first law, DEint = Q If energy is added by heat to a system kept at constant volume, all of the transferred energy remains in the system as an increase in its internal energy Isothermal Process • An isothermal process is one that occurs at a constant temperature • Since there is no change in temperature, DEint = 0 • Therefore, Q=-W • Any energy that enters the system by heat must leave the system by work Isothermal Process • • • At right is a PV diagram of an isothermal expansion The curve is a hyperbola The curve is called as isotherm Isothermal Expansion • The curve of the PV diagram indicates PV = constant The equation of a hyperbola • Because it is an ideal gas and the process is quasi-static, PV = nRT and V V nRT V dV W P dV dV nRT V V V V V Vi W nRT ln Vf f i f i f i Isothermal Expansion • Numerically, the work equals the area under the PV curve The shaded area in the diagram • If the gas expands, Vf > Vi and the work • done on the gas is negative If the gas is compressed, Vf < Vi and the work done on the gas is positive Special Processes, Summary • Adiabatic No heat exchanged Q = 0 and DEint = W • Isobaric Constant pressure W = P (Vf – Vi) and DEint = Q + W • Isothermal Constant temperature DEint = 0 and Q = -W A sample of an ideal gas goes through the process shown in Figure. From A to B, the process is adiabatic; from B to C, it is isobaric with 100 kJ of energy entering the system by heat. From C to D, the process is isothermal; from D to A, it is isobaric with 150 kJ of energy leaving the system by heat. Determine the difference in internal energy Eint,B – Eint,A. A sample of an ideal gas goes through the process shown in Figure. From A to B, the process is adiabatic; from B to C, it is isobaric with 100 kJ of energy entering the system by heat. From C to D, the process is isothermal; from D to A, it is isobaric with 150 kJ of energy leaving the system by heat. Determine the difference in internal energy Eint,B – Eint,A. W BC PB VC VB 3.00 atm 0.400 0.090 0 m 3 94.2 kJ DEint Q W Eint,C Eint,B 100 94.2 kJ Eint,C Eint,B 5.79 kJ A sample of an ideal gas goes through the process shown in Figure. From A to B, the process is adiabatic; from B to C, it is isobaric with 100 kJ of energy entering the system by heat. From C to D, the process is isothermal; from D to A, it is isobaric with 150 kJ of energy leaving the system by heat. Determine the difference in internal energy Eint,B – Eint,A. W BC PB VC VB 3.00 atm 0.400 0.090 0 m 3 94.2 kJ DEint Q W Eint,C Eint,B 100 94.2 kJ Eint,C Eint,B 5.79 kJ T=constant Eint,D Eint,C 0 W D A PD VA VD 1.00 atm 0.200 1.20 m 3 101 kJ A sample of an ideal gas goes through the process shown in Figure. From A to B, the process is adiabatic; from B to C, it is isobaric with 100 kJ of energy entering the system by heat. From C to D, the process is isothermal; from D to A, it is isobaric with 150 kJ of energy leaving the system by heat. Determine the difference in internal energy Eint,B – Eint,A. Eint,A Eint,D 150 kJ 101 kJ 48.7 kJ Eint,B Eint,A Eint,C Eint,B Eint,D Eint,C Eint,A Eint,D Eint,B Eint,A 5.79 kJ 0 48.7 kJ 42.9 kJ Mechanisms of Heat Transfer • We want to know the rate at which energy • is transferred There are various mechanisms responsible for the transfer: – Conduction – Convection – Radiation Conduction • The transfer can be viewed on an atomic scale – It is an exchange of energy between microscopic particles by collisions The microscopic particles can be atoms, molecules or free electrons – Less energetic particles gain energy during collisions with more energetic particles • Rate of conduction depends upon the characteristics of the substance Conduction example • • • • The molecules vibrate about their equilibrium positions Particles near the heat source vibrate with larger amplitudes These collide with adjacent molecules and transfer some energy Eventually, the energy travels entirely through the pan Conduction • • • In general, metals are good conductors They contain large numbers of electrons that are relatively free to move through the metal They can transport energy from one region to another Poor conductors include asbestos, paper, and gases Conduction can occur only if there is a difference in temperature between two parts of the conducting medium Conduction • • The slab at right allows energy to transfer from the region of higher temperature to the region of lower temperature The rate of transfer is given by: Q dT P kA Dt dx Conduction • A is the cross-sectional area • Δx is the thickness of the slab or the length of a rod • P is in Watts when Q is in Joules and t • is in seconds k is the thermal conductivity of the material Good conductors have high k values and good insulators have low k values Temperature Gradient • • The quantity |dT / dx| is called the temperature gradient of the material It measures the rate at which temperature varies with position For a rod, the temperature gradient can be expressed as: dT Th Tc dx L Rate of Energy Transfer in a Rod • Using the temperature gradient for the rod, the rate of energy transfer becomes: Th Tc P kA L Compound Slab • For a compound slab containing several materials of various thicknesses (L1, L2, …) and various thermal conductivities (k1, k2, …) the rate of energy transfer depends on the materials and the temperatures at the outer edges: ATh Tc P Li k i i Some Thermal Conductivities More Thermal Conductivities In Figure, the change in internal energy of a gas that is taken from A to C is +800 J. The work done on the gas along path ABC is –500 J. (a) How much energy must be added to the system by heat as it goes from A through B to C? (b) If the pressure at point A is five times that of point C, what is the work done on the system in going from C to D? (c) What is the energy exchanged with the surroundings by heat as the cycle goes from C to A along the green path? (d) If the change in internal energy in going from point D to point A is +500 J, how much energy must be added to the system by heat as it goes from point C to point D? In Figure, the change in internal energy of a gas that is taken from A to C is +800 J. The work done on the gas along path ABC is –500 J. (a) How much energy must be added to the system by heat as it goes from A through B to C? (b) If the pressure at point A is five times that of point C, what is the work done on the system in going from C to D? (c) What is the energy exchanged with the surroundings by heat as the cycle goes from C to A along the green path? (d) If the change in internal energy in going from point D to point A is +500 J, how much energy must be added to the system by heat as it goes from point C to point D? DEint,A BC DEint,A C (a) (conservation of energy) DEint,A BC Q A BC W A BC Q ABC 800 J 500 J 1300 J (First Law) In Figure, the change in internal energy of a gas that is taken from A to C is +800 J. The work done on the gas along path ABC is –500 J. (a) How much energy must be added to the system by heat as it goes from A through B to C? (b) If the pressure at point A is five times that of point C, what is the work done on the system in going from C to D? (c) What is the energy exchanged with the , surroundings by heat as the cycle goes from C to A along the green path? (d) If the change in internal energy in going from point D to point A is +500 J, how much energy must be added to the system by heat as it goes from point C to point D? (b) W CD PC DVCD DV AB DVCD Then, W CD , and PA 5PC 1 1 PA DV AB W AB 100 J 5 5 (+ means that work is done on the system) In Figure, the change in internal energy of a gas that is taken from A to C is +800 J. The work done on the gas along path ABC is –500 J. (a) How much energy must be added to the system by heat as it goes from A through B to C? (b) If the pressure at point A is five times that of point C, what is the work done on the system in going from C to D? (c) What is the energy exchanged with the surroundings by heat as the cycle goes from C to A along the green path? (d) If the change in internal energy in going from point D to point A is +500 J, how much energy must be added to the system by heat as it goes from point C to point D? (c) W CD A W CD so that Q CA DEint,CA W CD A 800 J 100 J 900 J (– means that energy must be removed from the system by heat) In Figure, the change in internal energy of a gas that is taken from A to C is +800 J. The work done on the gas along path ABC is –500 J. (a) How much energy must be added to the system by heat as it goes from A through B to C? (b) If the pressure at point A is five times that of point C, what is the work done on the system in going from C to D? (c) What is the energy exchanged with the surroundings by heat as the cycle goes from C to A along the green path? (d) If the change in internal energy in going from point D to point A is +500 J, how much energy must be added to the system by heat as it goes from point C to point D? (d) DEint,CD DEint,CD A DEint,D A 800 J 500 J 1300 J and Q CD DEint,CD W CD 1300 J 100 J 1400 J A bar of gold is in thermal contact with a bar of silver of the same length and area. One end of the compound bar is maintained at 80.0°C while the opposite end is at 30.0°C. When the energy transfer reaches steady state, what is the temperature at the junction? A bar of gold is in thermal contact with a bar of silver of the same length and area. One end of the compound bar is maintained at 80.0°C while the opposite end is at 30.0°C. When the energy transfer reaches steady state, what is the temperature at the junction? In the steady state condition, PA u PA g D T D T so that kA u A A u kA g A A g Dx A u Dx A g A A u A A g DxA u DxA g In this case DTA u 80.0 T DTA g T 30.0 A bar of gold is in thermal contact with a bar of silver of the same length and area. One end of the compound bar is maintained at 80.0°C while the opposite end is at 30.0°C. When the energy transfer reaches steady state, what is the temperature at the junction? In this case AA u AA g DxA u DxA g DTA u 80.0 T DTA g T 30.0 where T is the temperature of the junction. Therefore, kA u 80.0 T kA g T 30.0 T 51.2C