54 ENGINEERING THERMODYNAMICS
dharm
M-therm/th2-2.pm5
Solution. Area of diesel engine piston
= 45 cm^2 = 45 × 10–4 m^2
Fig. 2.37
Amount of fresh air drawn in from atmosphere
= 300 cm^3 = 300 × 10–6 m^3
The pressure inside the cylinder during suction stroke
= 0.9 × 10^5 N/m^2
Atmospheric pressure = 1.013 × 10^5 N/m^2
Initial and final conditions of the system are shown in Fig. 2.37.
Net work done = Work done by free air boundary + work done on the piston
The work done by the free air = – ve because boundary contracts
The work done by the cylinder on the piston = + ve because the boundary expands
∴ Net work done = pdV pdV
Piston Free air
boundary
zz+
=××× × − ×××L
NM
O
QP
0 9 10 45 10−−^5
100 1013 10 300 10
..^54 5 6
= [20.25 – 30.39] = – 10.14 Nm or J.(Ans.)
Example 2.19. The properties of a closed system change following the relation between
pressure and volume as pV = 3.0 where p is in bar V is in m^3. Calculate the work done when the
pressure increases from 1.5 bar to 7.5 bar.
Solution. Initial pressure, p 1 = 1.5 bar
Final pressure, p 2 = 7.5 bar
Relation between p and V, pV = 3.0
Work done, W :