Troubleshooting Steam Plant Output: Tips for Evening Class Assignment

  • Thread starter Thread starter anthonyk2013
  • Start date Start date
  • Tags Tags
    Plant Steam
AI Thread Summary
The discussion focuses on troubleshooting the calculation of steam output for a class assignment. The participant is unsure about rearranging the formula and seeks clarity on using the overall efficiency of 77% in their calculations. The correct formula for steam output is confirmed as Q = M(h2 - h1), and it's emphasized that the 77% efficiency can be applied directly without considering additional components like the economizer and super heater. The participant is guided to divide 0.77 by the difference in enthalpy (h2 - h1) to find the steam output, ultimately aiming for a result of 6244.09 kg/h. The conversation highlights the importance of correctly applying efficiency in steam calculations.
anthonyk2013
Messages
125
Reaction score
0
Im attempting this question for an evening class I am attending. hope I am posting in the right place. I'm not sure where I have gone wrong think its where I rearranged my formula to find steam output.

Question attached below
 

Attachments

  • steam plant 1 001.jpg
    steam plant 1 001.jpg
    14.9 KB · Views: 470
  • steam plant 2 001.jpg
    steam plant 2 001.jpg
    33.6 KB · Views: 458
  • 2015-01-25 001 001.jpg
    2015-01-25 001 001.jpg
    31 KB · Views: 459
Physics news on Phys.org
The work is a bit unclear. I'll get back to you in a day or so.
 
  • Like
Likes anthonyk2013
Ok Thanks
 
I think I calculated the steam output wrong, I have the over all efficiently of the system 77%, what formula do I use the calculate steam output?
Q=M(h2-h1)
 
Yeah that's the one..!
For calculating the steam output, you can directly use the 77% efficiency without involving the economizer and super heater (if I'm not wrong).
So 77% of the heat obtained from the combustion of coal is used to convert water to steam.
 
siddharth23 said:
Yeah that's the one..!
For calculating the steam output, you can directly use the 77% efficiency without involving the economizer and super heater (if I'm not wrong).
So 77% of the heat obtained from the combustion of coal is used to convert water to steam.

77% is the overall efficiency am I right ? So did I divide .77 by h2-h1 to get steam output?
 
anthonyk2013 said:
77% is the overall efficiency am I right ? So did I divide .77 by h2-h1 to get steam output?
Yes! And equate it with the energy provided by the combustion of coal. Tell me if that gives the right answer.
 
6244.09 kg/h
 
I meant did you get the right answer?
 

Similar threads

Engineering Understanding Rankine Cycle Pressures: Should P2 Equal P3?
Replies
1
Views
1K
Heat Transfer. Ice and steam in a container (easy)
Replies
2
Views
4K
Calculating Efficiency and Thermal Source Rate in a Steam-Electric Power Plant
Replies
4
Views
3K
Superheater - pressure and temperature distribution
Replies
3
Views
1K
Massflow of steam to be supplied to a drying cylinder
Replies
7
Views
2K
Thermodynamics: Waste heat and total ice converted to steam
Replies
2
Views
3K
I Simulating a 2-Phase Water System: Tips and Resources for Dynamic Simulation
Replies
4
Views
2K
How do you Calculate Ampacity of a Conductor Geometry?
2
Replies
64
Views
5K
Steam and Gas Turbines - The Rankine Cycle
Replies
8
Views
5K
Power output of a coal burning power plant
Replies
2
Views
6K

Hot Threads

Recent Insights

Back
Top