Answer:
The work done at the pipe exit is W= 338.01 watts or J/min, the work done at the pipe entrance is W = 346.68 watts
Step-by-step explanation:
Solution
The work done at the entrance of the pipe
Let us assume that the water in the pipe as a system
The work done w is denoted by
W = F. V
V= velocity
F = exerted force
Now,
W = P.A.V this is the equation (1)
where P = F/A P = pressure at in let A = The cross sectional area
we can then say,
A . V = Q ( This is the volumetric flow rate)
also
Q = m/ ρ where m = mass flow rate, ρ = density
The equation 1 now becomes
W = P ( m/ρ)
= 2 * 10 ^ ⁻⁵ pa ( 100 kg min/ 961. 5 kgm³)
W = 20800.83 J/min
W = 346.68 J/s
Then
W = 346.68 watts
The work done at the pipe exist
W = P. Q
Now,
= P ( m/ρ)
W = 1.95 * 10 ^ 5 pax ( 100 kg min/ 961. 5 kgm³)
W = 2028.81 J/min
W= 338.01 watts or J/min
Note: At the entrance, the outside water will push the water inside, this means that work is carried out on the system, and it is a positive sign, but at the exit point it is vice versa and is known to be negative