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A piston-cylinder assembly contains carbon monoxide modeled as an ideal gas with constant specific heat ratio, k = 1.4. The carbon monoxide undergoes a polytropic expansion with n = k from an initial state, where T1 = 200degree F and p1 = 40 1bf/in.2 to a final state, where the volume is twice the initial volume. Determine (a) the final temperature, in DegreeF, and Final pressure, in 1bf/in.2 and (b) the work and heat transfer, each in Btu/1b. Show transcribed image text A piston-cylinder assembly contains carbon monoxide modeled as an ideal gas with constant specific heat ratio, k = 1.4. The carbon monoxide undergoes a polytropic expansion with n = k from an initial state, where T1 = 200degree F and p1 = 40 1bf/in.2 to a final state, where the volume is twice the initial volume. Determine (a) the final temperature, in DegreeF, and Final pressure, in 1bf/in.2 and (b) the work and heat transfer, each in Btu/1b.
A piston-cylinder assembly contains carbon monoxide modeled as an ideal gas with constant specific heat ratio, k = 1.4. The carbon monoxide undergoes a polytropic expansion with n = k from an initial state, where T1 = 200degree F and p1 = 40 1bf/in.2 to a final state, where the volume is twice the initial volume. Determine (a) the final temperature, in DegreeF, and Final pressure, in 1bf/in.2 and (b) the work and heat transfer, each in Btu/1b.
Show transcribed image text A piston-cylinder assembly contains carbon monoxide modeled as an ideal gas with constant specific heat ratio, k = 1.4. The carbon monoxide undergoes a polytropic expansion with n = k from an initial state, where T1 = 200degree F and p1 = 40 1bf/in.2 to a final state, where the volume is twice the initial volume. Determine (a) the final temperature, in DegreeF, and Final pressure, in 1bf/in.2 and (b) the work and heat transfer, each in Btu/1b.0
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