Methane in the gaseous state flows at a rate of 0.072 m^3/s in a pipe at a temperature of 27°C and gauge pressure of 148.675kPa (point 1). The pipe is divided into two branches (point 2 and 3), as seen in the figure. If the exit velocity in pipe 3 is 12 m/s with a density of 1.9 kg/m^3, what is the flow rate and velocity in pipe 2? Consider that in section 2 the fluid is leaving with a temperature of 402°C and an absolute pressure of 175 kPa. We have an atmospheric pressure of 101.325 kPa and R_methane = 0.5182 kJ/kg ⚫K. (1) Inflow D1 D3=50mm D2=100mm (3) (2)
Methane in the gaseous state flows at a rate of 0.072 m^3/s in a pipe at a temperature of 27°C and gauge pressure of 148.675kPa (point 1). The pipe is divided into two branches (point 2 and 3), as seen in the figure. If the exit velocity in pipe 3 is 12 m/s with a density of 1.9 kg/m^3, what is the flow rate and velocity in pipe 2? Consider that in section 2 the fluid is leaving with a temperature of 402°C and an absolute pressure of 175 kPa. We have an atmospheric pressure of 101.325 kPa and R_methane = 0.5182 kJ/kg ⚫K. (1) Inflow D1 D3=50mm D2=100mm (3) (2)
Elements Of Electromagnetics
7th Edition
ISBN:9780190698614
Author:Sadiku, Matthew N. O.
Publisher:Sadiku, Matthew N. O.
ChapterMA: Math Assessment
Section: Chapter Questions
Problem 1.1MA
Related questions
Question
![Methane in the gaseous state flows at a rate of 0.072 m^3/s in a pipe at a
temperature of 27°C and gauge pressure of 148.675kPa (point 1). The pipe is
divided into two branches (point 2 and 3), as seen in the figure. If the exit
velocity in pipe 3 is 12 m/s with a density of 1.9 kg/m^3, what is the flow rate and
velocity in pipe 2? Consider that in section 2 the fluid is leaving with a
temperature of 402°C and an absolute pressure of 175 kPa. We have an
atmospheric pressure of 101.325 kPa and R_methane = 0.5182 kJ/kg ⚫K.
(1)
Inflow
D1
D3=50mm
D2=100mm
(3)
(2)](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F83a0417f-cebd-4150-bc25-94e6dc13cdef%2Fe508e64e-6a73-45da-a1f6-ee3545916ab5%2Fix3z7x_processed.jpeg&w=3840&q=75)
Transcribed Image Text:Methane in the gaseous state flows at a rate of 0.072 m^3/s in a pipe at a
temperature of 27°C and gauge pressure of 148.675kPa (point 1). The pipe is
divided into two branches (point 2 and 3), as seen in the figure. If the exit
velocity in pipe 3 is 12 m/s with a density of 1.9 kg/m^3, what is the flow rate and
velocity in pipe 2? Consider that in section 2 the fluid is leaving with a
temperature of 402°C and an absolute pressure of 175 kPa. We have an
atmospheric pressure of 101.325 kPa and R_methane = 0.5182 kJ/kg ⚫K.
(1)
Inflow
D1
D3=50mm
D2=100mm
(3)
(2)
Expert Solution
![](/static/compass_v2/shared-icons/check-mark.png)
This question has been solved!
Explore an expertly crafted, step-by-step solution for a thorough understanding of key concepts.
Step by step
Solved in 2 steps with 2 images
![Blurred answer](/static/compass_v2/solution-images/blurred-answer.jpg)
Recommended textbooks for you
![Elements Of Electromagnetics](https://www.bartleby.com/isbn_cover_images/9780190698614/9780190698614_smallCoverImage.gif)
Elements Of Electromagnetics
Mechanical Engineering
ISBN:
9780190698614
Author:
Sadiku, Matthew N. O.
Publisher:
Oxford University Press
![Mechanics of Materials (10th Edition)](https://www.bartleby.com/isbn_cover_images/9780134319650/9780134319650_smallCoverImage.gif)
Mechanics of Materials (10th Edition)
Mechanical Engineering
ISBN:
9780134319650
Author:
Russell C. Hibbeler
Publisher:
PEARSON
![Thermodynamics: An Engineering Approach](https://www.bartleby.com/isbn_cover_images/9781259822674/9781259822674_smallCoverImage.gif)
Thermodynamics: An Engineering Approach
Mechanical Engineering
ISBN:
9781259822674
Author:
Yunus A. Cengel Dr., Michael A. Boles
Publisher:
McGraw-Hill Education
![Elements Of Electromagnetics](https://www.bartleby.com/isbn_cover_images/9780190698614/9780190698614_smallCoverImage.gif)
Elements Of Electromagnetics
Mechanical Engineering
ISBN:
9780190698614
Author:
Sadiku, Matthew N. O.
Publisher:
Oxford University Press
![Mechanics of Materials (10th Edition)](https://www.bartleby.com/isbn_cover_images/9780134319650/9780134319650_smallCoverImage.gif)
Mechanics of Materials (10th Edition)
Mechanical Engineering
ISBN:
9780134319650
Author:
Russell C. Hibbeler
Publisher:
PEARSON
![Thermodynamics: An Engineering Approach](https://www.bartleby.com/isbn_cover_images/9781259822674/9781259822674_smallCoverImage.gif)
Thermodynamics: An Engineering Approach
Mechanical Engineering
ISBN:
9781259822674
Author:
Yunus A. Cengel Dr., Michael A. Boles
Publisher:
McGraw-Hill Education
![Control Systems Engineering](https://www.bartleby.com/isbn_cover_images/9781118170519/9781118170519_smallCoverImage.gif)
Control Systems Engineering
Mechanical Engineering
ISBN:
9781118170519
Author:
Norman S. Nise
Publisher:
WILEY
![Mechanics of Materials (MindTap Course List)](https://www.bartleby.com/isbn_cover_images/9781337093347/9781337093347_smallCoverImage.gif)
Mechanics of Materials (MindTap Course List)
Mechanical Engineering
ISBN:
9781337093347
Author:
Barry J. Goodno, James M. Gere
Publisher:
Cengage Learning
![Engineering Mechanics: Statics](https://www.bartleby.com/isbn_cover_images/9781118807330/9781118807330_smallCoverImage.gif)
Engineering Mechanics: Statics
Mechanical Engineering
ISBN:
9781118807330
Author:
James L. Meriam, L. G. Kraige, J. N. Bolton
Publisher:
WILEY