Five hundred kilograms per hour (5000kg/h) of steam drives a turbine. The steam enters the turbine at 44 atm and 450 °C at a linear velocity of 60 m/s and leaves at a point 5 m below the turbine inlet at atmospheric pressure and a velocity of 360 m/s. The turbine delivers shaft work at a rate of 70 kW, and the heat loss from the turbine is estimated to be 104 kcal/h. Calculate the specific enthalpy change associated with the process.

Introduction to Chemical Engineering Thermodynamics
8th Edition
ISBN:9781259696527
Author:J.M. Smith Termodinamica en ingenieria quimica, Hendrick C Van Ness, Michael Abbott, Mark Swihart
Publisher:J.M. Smith Termodinamica en ingenieria quimica, Hendrick C Van Ness, Michael Abbott, Mark Swihart
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Five hundred kilograms per hour (500kg/h) of steam drives a turbine. The steam enters the
turbine at 44 atm and 450 °C at a linear velocity of 60 m/s and leaves at a point 5 m below
the turbine inlet at atmospheric pressure and a velocity of 360 m/s. The turbine delivers shaft
work at a rate of 70 kW, and the heat loss from the turbine is estimated to be 104 kcal/h.
Calculate the specific enthalpy change associated with the process.
Transcribed Image Text:Five hundred kilograms per hour (500kg/h) of steam drives a turbine. The steam enters the turbine at 44 atm and 450 °C at a linear velocity of 60 m/s and leaves at a point 5 m below the turbine inlet at atmospheric pressure and a velocity of 360 m/s. The turbine delivers shaft work at a rate of 70 kW, and the heat loss from the turbine is estimated to be 104 kcal/h. Calculate the specific enthalpy change associated with the process.
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