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50.00 g of a solid at 25.00 o C is placed in 250.00 g of its liquid in a 500.00 g can at 77.00 o C. The temp. equilibrates at 27.00 o C. Calculate: H f.

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Presentation on theme: "50.00 g of a solid at 25.00 o C is placed in 250.00 g of its liquid in a 500.00 g can at 77.00 o C. The temp. equilibrates at 27.00 o C. Calculate: H f."— Presentation transcript:

1 50.00 g of a solid at 25.00 o C is placed in 250.00 g of its liquid in a 500.00 g can at 77.00 o C. The temp. equilibrates at 27.00 o C. Calculate: H f of the solid C liquid = 2.00 J/gK C can = 1.00 J/gK MP solid = 25.00 o C

2 Chapter 13 States of Matter

3 Fluid Any substance that flow and has no definite shape

4 Fluids Both liquids & gases are fluids

5 Pressure Applying a force to a surface results in pressure

6 Pressure (P) Force per unit area P = F/A

7 Common Units of P AtmTorcelli mm Hginches Hg Barmillibar Pascalkilopascal

8 Std Unit for Pressure Kilopascal (kPa) Pa = N/m 2

9 Standard Pressure 101.3 kPa760 mmHg ~ 1 x 10 5 Pa 1.0 Atm 30 in Hg1013 mbar

10 If std. air pressure = 101.3 kPa, calculate the force on a desk top that is 50.0 cm x 100.0 cm.

11 Each car tire makes contact with the ground on an area that is 5.0 x 6.0 inches. The tire pressure is 40 psi. Calculate the weight of the car.

12 Fluids at Rest

13 Pascal’s Principle Pressure applied at any point in a confined fluid is transmitted undiminished throughout the fluid

14 Pressure Formula P = FAFA

15 In Constant Pressure P 1 = P 2

16 Thus F 1 F 2 A 1 A 2 =

17 Thus F 1 A 2 A 1 F 2 =

18 Thus A 2 A 1 F 2 =F 1 ( )

19 Using a car jack a person applies 50.0 lbs force on a 2.0 mm wide cylinder driving the fluid into a 2.0 cm wide piston. Calculate the force applied to the piston.

20 Density (  ) Mass/unit volume m V  =

21 In a fork lift, fluid is pumped through a 0.20 mm tube with a force of 15 N. The small tube opens up into a 20.0 cm cylinder driving a piston with ___ N

22 Gases

23 Boyle’s Law At constant temperature, pressure & volume are inversely proportioned

24 Boyle’s Law P 1 V 1 = P 2 V 2

25 Charles’ Law At constant pressure, volume & temperature are directly proportioned

26 Charles’ Law V 1 V 2 T 1 T 2 =

27 Guy L’ Law At constant volume, pressure & temperature are directly proportioned

28 GL’ Law P 1 P 2 T 1 T 2 =

29 C G Law P 1 V 1 P 2 V 2 T 1 T 2 =

30 Ideal Gas Law PV = nRT

31 Ideal Gas Constant R = 8.31 LkPa moleK

32 Ideal Gas Constant R = 8.31 J moleK

33 Ideal Gas Constant R= 0.0821 LAtm moleK

34 Calculate the new volume if the conditions of 20.0 L gas at 27 o C under 150 kPa is changed to 177 o C under 180 kPa:

35 Calculate the change in volume if the pressure on a gas is halved while its temperature is tripled:

36 Calculate the volume 0.831 moles of gas at 27 o C under 150 kPa: R = 8.31 LkPa/moleK

37 Calculate the number of moles of gas occupying 831 mL at 77 o C under 175 kPa: R = 8.31 LkPa/moleK

38 Pressure in Water The pressure applied by the weight of water pressing down on an area

39 Pressure Formula P = WAWA

40 W = mg, thus: P = mg A

41 m =  V, thus: P =  Vg A

42 V = Ah, thus: P =  Ahg A

43 A’s cancel, thus: P =  hg

44 The Pressure of a Body of Water P =  hg

45 The Pressure of a Body of Water Because  & g are constant, P depends on only the height

46 Buoyant Force The upward force applied by water due to the pressure difference between the top & bottom of a submerged object

47 Buoyant Force F top = P top A =  hgA F btm = P btm A =  h + l)gA

48 Buoyant Force F buoy = F btm - F top F buoy =  h + l)gA -  hgA F buoy =  lgA =  Vg

49 Buoyant Force F buoy =  Vg F buoy = W water

50 Archimedes’ Principle A object immersed in fluid has an upward force equal to the weight of fluid displaced

51 1.0 m 3 of aluminum is immersed in water.  al = 2.70 g/cm 3. Calculate: W, F buoy, & F net acting on the aluminum block.

52 Calculate the number of moles of gas at 127 o C under 83.1 kPa pressure in a spherical hot air balloon with a 40.0 m diameter. (1 cm 3 = 1 mL)

53 Calculate the volume of 5.00 moles of gas at 127 o C under 166.2 kPa pressure. R = 8.31 LkPa/moleK

54 Fluids in Motion

55 Bernoulli’s Principle As the velocity of a fluid increases, the pressure exerted by that fluid decreases

56 Cohesion Attractive forces between particles in the same substance or like particles

57 Adhesion Attractive forces between particles of different substances or different particles

58 Surface Tension Cohesive forces reduce surface area making a surface seem like it has a film holding it together

59 Capillary Action When a fluid rises up a thin tube due to adhesion being stronger than cohesion

60 Capillary Action When a fluid rises up a thin tube due to both adhesion & cohesion

61 Evaporation When particles gain enough kinetic energy to escape a surface

62 Volatile Evaporates easily

63 A boy pumps fluid with a force of 50.0 lbs through a 0.10 mm tube which opens up into a 40.0 cm cylinder driving a piston with ______ lbs of force.

64 Condensation Vapor particles clumping together enough to return to the liquid phase

65 Solids Rigid phase with a definite crystal structure

66 Solids All true solids have a definite crystal structure

67 Amorphous Solids Solids that do not have a definite crystal structure

68 Crystal Lattice Three dimensional arrangement of unit cells

69 Unit Cell The smallest repeating unit making up a solid

70 Elasticity The ability of a substance to return to its original form when bent or twisted

71 Thermal Expansion The increase in size of a substance due to an increase in temperature

72 Thermal Expansion Think of mercury in a thermometer, liquids just take up more space

73 Thermal Expansion Because solids are rigid, their length increases with increased temp.

74 Thermal Expansion  L =  L  T  L = change in length  = linear expansion coefficient

75 Thermal Expansion L f = L i +  L L f = L i +  L  T L f = L i +  L(T f - T i )

76 Thermal Expansion When dealing with volume: use   = volumetric expansion coefficient

77 Calculate the change in length of a 4.00 m strip of aluminum when the temperature rises from –25 o C to 75 o C.  Al = 25 x 10 -6 / o C

78 Calculate the length at its MP of 1221 o C of a 20.0 m strip of steel at 21 o C.  Fe = 12 x 10 -6 / o C

79 Calculate the length of a glass pole at 75 o C when it’s 10.00 m at -25 o C.  glass = 3 x 10 -6 / o C

80 A 2.0 m by 2.0 m window is enclosed in an aluminum frame. Determine gap size.  glass = 3 x 10 -6 / o C  Al = 25 x 10 -6 / o C

81 Calculate the length of a steel pole at 175 o C when it’s 10.00 m at -25 o C.  steel = 12 x 10 -6 / o C

82 A 20.000 m rod expanded to 20.075 m when heated from 25 o C to 275 o C. Calculate:  rod

83 Calculate the length of an aluminum pipe at 225 o C when it is 8.00 m at 25 o C.  Al = 25 x 10 -6 / o C

84 Calculate the increase in force when a fluid in a 2.0 mm line opens up into a 20.0 cm piston:

85 A 50.0 g rock at 76.00 o C is placed into 500.0 g of water in a 1.0 kg calorimeter both at 25.00 o C. The temperature equilibrates at 26.00 o C. Calculate the specific heat of the rock. C water = 4.18 J/gK C cal = 1.00 J/gK

86 50.0 g of steam at 100.0 o C is pumped into 250 g of water in a 500.0 g calorimeter both at 25.0 o C. Calculate the equilibrium temperature. C water = 4.18 J/gK, C cal = 1.00 J/gK, C steam = 2.02 J/gK, Hv = 2260 J/g

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