Q1. In an adiabatic turbine steam enters at 45 m/s, 7 MPa and 500°C as shown in Figure Q1. The pressure and velocity of the steam at exit are 100 kPa and 75 m/s, respectivly. Considering power output of the turbile is 5 MW and isentropic efficiency is 77%, considering and stating the necessary assumptions determine, (a) the mass flow rate of steam through the turbine, (b) the temperature at the turbine exit, and (c) the rate of entropy generation during this process.
Design Against Fluctuating Loads
Machine elements are subjected to varieties of loads, some components are subjected to static loads, while some machine components are subjected to fluctuating loads, whose load magnitude tends to fluctuate. The components of a machine, when rotating at a high speed, are subjected to a high degree of load, which fluctuates from a high value to a low value. For the machine elements under the action of static loads, static failure theories are applied to know the safe and hazardous working conditions and regions. However, most of the machine elements are subjected to variable or fluctuating stresses, due to the nature of load that fluctuates from high magnitude to low magnitude. Also, the nature of the loads is repetitive. For instance, shafts, bearings, cams and followers, and so on.
Design Against Fluctuating Load
Stress is defined as force per unit area. When there is localization of huge stresses in mechanical components, due to irregularities present in components and sudden changes in cross-section is known as stress concentration. For example, groves, keyways, screw threads, oil holes, splines etc. are irregularities.
th f Q1
![Q1.
In an adiabatic turbine steam enters at 45 m/s, 7 MPa and 500°C as shown in Figure Q1. The
pressure and velocity of the steam at exit are 100 kPa and 75 m/s, respectivly. Considering power
output of the turbile is 5 MW and isentropic efficiency is 77%, considering and stating the
necessary assumptions determine,
(a) the mass flow rate of steam through the turbine,
(b) the temperature at the turbine exit, and
(c) the rate of entropy generation during this process.
(d) The entropy of an actual turbine process increases as a result ofirreversibility. To maintain
the entropy of the seam at the exit at lower value, it is recommended to use cold water and
circulate in the turbine so that the entropy and enthalpy remain at low value when it leaves
the turbine, and hence the work output will increase. How do you evaluate this
recommendation in improving the efficiency of the turbine?
Steam, 7 MPa
500°C, 45 m/s
Turbine
100 kPa
75 m/s](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2Ff58a5c22-e04e-42f6-a0cd-07a56d436bbf%2F5cb9db40-6eaa-4bdd-b6b4-e53bd58f4513%2Fpmucn3q_processed.jpeg&w=3840&q=75)
![](/static/compass_v2/shared-icons/check-mark.png)
Step by step
Solved in 4 steps
![Blurred answer](/static/compass_v2/solution-images/blurred-answer.jpg)
![Elements Of Electromagnetics](https://www.bartleby.com/isbn_cover_images/9780190698614/9780190698614_smallCoverImage.gif)
![Mechanics of Materials (10th Edition)](https://www.bartleby.com/isbn_cover_images/9780134319650/9780134319650_smallCoverImage.gif)
![Thermodynamics: An Engineering Approach](https://www.bartleby.com/isbn_cover_images/9781259822674/9781259822674_smallCoverImage.gif)
![Elements Of Electromagnetics](https://www.bartleby.com/isbn_cover_images/9780190698614/9780190698614_smallCoverImage.gif)
![Mechanics of Materials (10th Edition)](https://www.bartleby.com/isbn_cover_images/9780134319650/9780134319650_smallCoverImage.gif)
![Thermodynamics: An Engineering Approach](https://www.bartleby.com/isbn_cover_images/9781259822674/9781259822674_smallCoverImage.gif)
![Control Systems Engineering](https://www.bartleby.com/isbn_cover_images/9781118170519/9781118170519_smallCoverImage.gif)
![Mechanics of Materials (MindTap Course List)](https://www.bartleby.com/isbn_cover_images/9781337093347/9781337093347_smallCoverImage.gif)
![Engineering Mechanics: Statics](https://www.bartleby.com/isbn_cover_images/9781118807330/9781118807330_smallCoverImage.gif)