96 Chapter 4 Engineering Communication
ME 101
Mass of air inside the tank, m =?
Problem 3.1
A tank of compressed airP = 20.8 MPa
V = 10 liters = 0.01 m^3
R = 287
T = 20°C = 293 K
Assuming ideal gas behavior
PV = m RT Eq(1)where
P = 20.8 MPa = 20.8 X 10^6V = 10 liters = 0.01 m^3
R = 287
T = 273 + 20 = 293 K
Substituting into Eq (1)
( 20.8 X 10^6 )(0.01 m^3 ) = m( 287 )(293 K)
and realizing that 1 J = 1 N · m,
m
12 Sept. 2001 ASGT. No. 1 Happy, Joe
1
1GIVEN
FIND
SOLUTION
Any assisting diagrams
Always double-underline answers
and state unitsIndex answer
Calculations on the right
m = 2.473 Kg
air
N
m^2N
m^2J
Kg·KJ
Kg·KJ
Kg·K■Figure 4.2 An example of engineering homework presentation for Example 4.1.
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