A18 kg/s of steam expands in a turbine producing 550 kw of power output. The steam enters at a velocity of 18 m/s and exits at 70 m/s. The reduction of specific enthalpy is 400 k/kg. Determine that the heat flow per second when the inlet of the turbine is located 900 mm above the outlet. W= 0- OPE -4K: -OWA -AU USING THIS FORMULAl | THERMODYNAMICS USE THE FIRST LAW OF THERMODYNAMICSS
A18 kg/s of steam expands in a turbine producing 550 kw of power output. The steam enters at a velocity of 18 m/s and exits at 70 m/s. The reduction of specific enthalpy is 400 k/kg. Determine that the heat flow per second when the inlet of the turbine is located 900 mm above the outlet. W= 0- OPE -4K: -OWA -AU USING THIS FORMULAl | THERMODYNAMICS USE THE FIRST LAW OF THERMODYNAMICSS
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![A 1.8 kg/s of steam expands in a turbine producing 550
kw of power output. The steam enters at a velocity of
18 m/s and exits at 70 m/s. The reduction of specific
enthalpy is 400 kl/kg. Determine that the heat flow per
second when the inlet of the turbine is located 900
mm above the outlet.
W= 0- APE -AKr -AWA-AU
USING THIS FORMULAl
| THERMODYNAMICS
USE THE FIRST LAW OF THERMODYNAMICS](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F5481ed96-3e46-4dd4-9e54-21d88bd00758%2F6ca27e78-a818-4e94-a631-0a971969492f%2Fah8thb6_processed.jpeg&w=3840&q=75)
Transcribed Image Text:A 1.8 kg/s of steam expands in a turbine producing 550
kw of power output. The steam enters at a velocity of
18 m/s and exits at 70 m/s. The reduction of specific
enthalpy is 400 kl/kg. Determine that the heat flow per
second when the inlet of the turbine is located 900
mm above the outlet.
W= 0- APE -AKr -AWA-AU
USING THIS FORMULAl
| THERMODYNAMICS
USE THE FIRST LAW OF THERMODYNAMICS
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