
Concept explainers
(a)
The volume flow rate of the mixture using the ideal gas mixture.
The mass flow rate of the mixture using the ideal gas mixture.
(a)

Answer to Problem 45P
The volume flow rate of the mixture using the ideal gas mixture is
The mass flow rate of the mixture using the ideal gas mixture is
Explanation of Solution
Refer to Table A-1E, Obtain the molar masses of
Consider 100 lbmol of the mixture. Since the volume fractions are equal to the mole fractions, calculate the mass of each component.
Here, the mole numbers of
Write the equation of total mass of the mixture.
Here, the mass of
Write the equation to calculate the apparent molecular weight of the mixture.
Write the equation to calculate the apparent gas constant of the mixture.
Here, the universal gas constant is
Write the equation of specific volume of the mixture.
Here, temperature of the mixture is T and atmospheric pressure is P.
Calculate the volume flow rate of the mixture.
Here, cross-sectional area of the pipe is A.
Calculate the mass flow rate of the mixture.
Conclusion:
Apply spreadsheet and substitute the given values of mole numbers and molar masses of
S.No | masses | Mole number (N), lbmol | Molar masses (M), lbm/lbmol | |
1 | 30 | 32 | 960 | |
2 | 40 | 28 | 1120 | |
3 | 10 | 44 | 440 | |
4 | 20 | 16 | 320 |
Substitute 960 lbm for
Substitute 2840 lbm for
Substitute
Substitute
Substitute
Thus, the volume flow rate of the mixture using the ideal gas mixture is
Substitute
Thus, the mass flow rate of the mixture using the ideal gas mixture is
(b)
The volume flow rate of the mixture using the compressibility factor based on Amagat’s law of additive volumes.
The mass flow rate of the mixture using the compressibility factor based on Amagat’s law of additive volumes.
(b)

Answer to Problem 45P
The volume flow rate of the mixture using the compressibility factor based on Amagat’s law of additive volumes is
The mass flow rate of the mixture using the compressibility factor based on Amagat’s law of additive volumes is
Explanation of Solution
Write the equation of reduced temperatures and pressures of
Here, the critical temperature of
Write the equation of compressibility factor of the mixture.
Here, the mole fraction of
Calculate the specific volume of the mixture.
Calculate the mass flow rate of the mixture using the compressibility factor based on Amagat’s law of additive volumes.
Here, the volume flow rate of mixture using the compressibility factor based on Amagat’s law of additive volumes is
Conclusion:
Refer to Table A-1E, obtain the critical temperatures and pressures of
Substitute 530 R for
Refer to Figure A-15, obtain the compressibility factor for
Substitute 0.30 for
Substitute 1500 psia for P, 0.869 for
Refer to part (a), the value calculated for volume flow rate is
Substitute
Thus, the mass flow rate of the mixture using the compressibility factor based on Amagat’s law of additive volumes is
(c)
The volume flow rate of the mixture using Kay’s pseudocritical pressure and temperature.
The mass flow rate of the mixture using Kay’s pseudocritical pressure and temperature.
(c)

Answer to Problem 45P
The volume flow rate of the mixture using Kay’s pseudocritical pressure and temperature is
The mass flow rate of the mixture using Kay’s pseudocritical pressure and temperature.
is
Explanation of Solution
Write the critical temperature of a gas mixture.
Write the critical pressure of a gas mixture.
Write the equation of reduced temperature and pressure.
Conclusion:
Substitute 0.30 for
Substitute 0.30 for
Substitute 530 R for
Refer to Figure A-15, obtain the compressibility factor for gas mixture by reading the values of
Substitute 1500 psia for P, 0.915 for
Refer to part (a), the value calculated for volume flow rate is
Substitute
Thus, the mass flow rate of the mixture using the compressibility factor based on Amagat’s law of additive volumes is
Want to see more full solutions like this?
Chapter 13 Solutions
Thermodynamics: An Engineering Approach
- Hints: Find the closed loop transfer function and then plot the step response for diFerentvalues of K in MATLAB. Show step response plot for different values of K. Auto Controls Show solutions and provide matlab code NO COPIED ANSWERS OR WILL REPORT!!!! Use own solutionarrow_forwardwhat is shear stress and normal? how to tell them while calculating?arrow_forward12 mm 45 mm 20 kN 20 kN 12 mm 45 mm PROBLEM 1.61 For the assembly and loading of Problem 1.60, determine (a) the average shearing stress in the pin at C, (b) the average bearing stress at C in member BC, (c) the average bearing stress at B in member BC. PROBLEM 1.60 Two horizontal 20-kN forces are applied to pin B of the assembly shown. Knowing that a pin of 20-mm diameter is used at each connection, determine the maximum value of the average normal stress (a) in link AB, (b) in link BC.arrow_forward
- How do you find these answers?arrow_forward250 mm 400 mm A B C E F 250 mm PROBLEM 1.52 Each of the two vertical links CF connecting the two horizontal members AD and EG has a 10 × 40-mm uniform rectangular cross section and is made of a steel with an ultimate strength in tension of 400 MPa, while each of the pins at C and F has a 20-mm diameter and are made of a steel with an ultimate strength in shear of 150 MPa. Determine the overall factor of safety for the links CF and the pins connecting them to the horizontal members. 24 kNarrow_forward50 mm 12 mm B O C OA 300 mm 450 mm E PROBLEM 1.51 Each of the steel links AB and CD is connected to a support and to member BCE by 25-mm-diameter steel pins acting in single shear. Knowing that the ultimate shearing stress is 210 MPa for the steel used in the pins and that the ultimate normal stress is 490 MPa for the steel used in the links, determine the allowable load P if an overall factor of safety of 3.0 is desired. (Note that the links are not reinforced around the pin holes.)arrow_forward
- 3. A 15% magnesium chloride solution is flowing through a 5-nom sch 40 commercial steel pipe at a rate of 325,000 lbm/h. The average temperature of the magnesium chloride solution as it flows through the pipe is 10°F. Determine the convective heat transfer coefficient inside the pipe.arrow_forward2. Jojoba oil is flowing through a ¾-nom stainless steel pipe at a flow rate of 1,850 lbm/h. After the velocity profile in the pipe is fully developed, the oil enters a heater, as shown in Figure P5.7. The length of the heater section is 5 ft. The properties of the jojoba oil at the average temperature in the heater section are given in Table P5.7. Determine the convective heat transfer coefficient inside the heater section of the pipe. ¾ nom stainless steel pipe Heater section L=5ft Fig. P5.7 TABLE P5.7 Thermophysical Properties of Jojoba Oil at the Average Temperature in the Heater P (lbm/ft³) 68.671 (Btu/lbm-R) 0.30339 μ (lbm/ft-s) 0.012095 k (Btu/h-ft-°F) 0.077424arrow_forward1. Water is flowing inside of a 3-std type K copper tube at a flow rate of 1.2 kg/s. The average temperature of the water is 50°C. Cold, dry air at a temperature of 5°C and atmospheric pressure flows outside of the tube in cross flow with a velocity of 85 m/s. Determine the UA product for this tube under clean conditions.arrow_forward
- Hints: Find the closed loop transfer function and then plot the step response for diFerentvalues of K in MATLAB. Show step response plot for different values of K. Auto Controls Show solutions and provide matlab code NO COPIED ANSWERS OR WILL REPORT!!!!arrow_forward37. The vertical shaft shown in Figure P12-37 is driven at a speed of 600 rpm with 4.0 hp entering through the bevel gear. Each of the two chain sprockets delivers 2.0 hp to the side to drive mixer blades in a chemical reactor vessel. The bevel gear has a diametral pitch of 5, a pitch diameter of 9.000 in, a face width of 1.31 in, and a pressure angle of 20°. Use SAE 4140 OQT 1000 steel for the shaft. See Chapter 10 for the methods for computing the forces on the bevel gear. Figure P12-37: P37-Bevel gear drive with two chain sprockets Each problem includes the following details: ■Design the complete shaft, including the specification of the overall geometry and the consideration of stress con- centration factors. The analysis would show the minimum acceptable diameter at each point on the shaft to be safe from the standpoint of strength. Homework Problems 12-24, 12-35, and 12-37 from textbook, done in spreadsheet form. Place drawings of the load, shear, and bending moment body diagrams…arrow_forward35. The double-reduction, helical gear reducer shown in Figure P12-35 transmits 5.0 hp. Shaft 1 is the input, rotating at 1800 rpm and receiving power directly from an electric motor through a flexible coupling. Shaft 2 rotates at 900 rpm. Shaft 3 is the output, rotating at 300 rpm. A chain sprocket is mounted on the output shaft as shown and delivers the power upward. The data for the gears are given in Table 12-5. Each gear has a 1412° normal pressure angle and a 45° helix angle. The combinations of left- and right-hand helixes are arranged so that the axial forces oppose each other on shaft 2 as shown. Use SAE 4140 OQT 1200 for the shafts. Figure P12-35: P35-Double-reduction helical drive Each problem includes the following details: ■Design the complete shaft, including the specification of the overall geometry and the consideration of stress con- centration factors. The analysis would show the minimum acceptable diameter at each point on the shaft to be safe from the standpoint of…arrow_forward
- Elements Of ElectromagneticsMechanical EngineeringISBN:9780190698614Author:Sadiku, Matthew N. O.Publisher:Oxford University PressMechanics of Materials (10th Edition)Mechanical EngineeringISBN:9780134319650Author:Russell C. HibbelerPublisher:PEARSONThermodynamics: An Engineering ApproachMechanical EngineeringISBN:9781259822674Author:Yunus A. Cengel Dr., Michael A. BolesPublisher:McGraw-Hill Education
- Control Systems EngineeringMechanical EngineeringISBN:9781118170519Author:Norman S. NisePublisher:WILEYMechanics of Materials (MindTap Course List)Mechanical EngineeringISBN:9781337093347Author:Barry J. Goodno, James M. GerePublisher:Cengage LearningEngineering Mechanics: StaticsMechanical EngineeringISBN:9781118807330Author:James L. Meriam, L. G. Kraige, J. N. BoltonPublisher:WILEY





