FMM3701 Assignment 01 Due 2026

UNIVERSITY OF SOUTH AFRICA
College of Science, Engineering and Technology


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FMM3701: Fluid Mechan-
ics and Turbomachines
Assignment 1 — Semester 1, 2026

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FMM3701
Module Code:
Fluid Mechanics and Turbomachines
Module Name:
Assignment 1
Assignment:
2026
Due Date:




Submitted in partial fulfilment of the requirements for FMM3701 — UNISA 2026

,UNISA | FMM3701 Assignment 1 – Fluid Mechanics



Question 1: Continuity Equation – Circular Pipe Flow

Question (Rewritten): A circular pipe has a diameter at sections 1 and 2 as 20 cm and 30
cm respectively. Determine the volume flow rate (discharge) through the pipe if the velocity
of water at section 1 is given as 5 m/s. Determine the velocity of fluid at the exit section 2.
Determine the diameter of an equivalent pipe if the tapered pipe is to be replaced with a pipe
of uniform diameter for the same discharge.


1.1 Given Information


Diameter at section 1: D1 = 20 cm = 0.20 m
Diameter at section 2: D2 = 30 cm = 0.30 m
Velocity at section 1: V1 = 5 m/s



1.2 Cross-sectional Areas


The cross-sectional area of a circular pipe is:

πD2
A=
4


Area at section 1:
π(0.20)2 π × 0.04 0.04π
A1 = = = = 0.01π
4 4 4

A1 = 0.03142 m2


Area at section 2:

π(0.30)2 π × 0.09 0.09π
A2 = = = = 0.0225π
4 4 4

A2 = 0.07069 m2


1.3 Volume Flow Rate (Discharge)


The volume flow rate Q is given by:
Q = A1 × V1



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, UNISA | FMM3701 Assignment 1 – Fluid Mechanics


Q = 0.03142 × 5

Q = 0.1571 m3 /s



1.4 Velocity at Section 2


Applying the continuity equation (conservation of mass for incompressible flow):


A1 V1 = A2 V2



Solving for V2 :
A1 V 1 Q
V2 = =
A2 A2
0.1571
V2 =
0.07069

V2 = 2.222 m/s


Verification using ratio method:
 2  2
A1 D1 0.20 4
V2 = V1 × = V1 × =5× =5× = 2.222 m/s✓
A2 D2 0.30 9


1.5 Diameter of Equivalent Uniform Pipe


For the same discharge Q through a uniform pipe, the average velocity Veq must be deter-
mined. Since no specific equivalent velocity is stated, the mean velocity of the tapered pipe is
used as the design velocity. The mean velocity between sections 1 and 2 is:


V1 + V2 5 + 2.222 7.222
Veq = = = = 3.611 m/s
2 2 2

The cross-sectional area of the equivalent pipe:

Q 0.1571
Aeq = = = 0.04350 m2
Veq 3.611


Therefore, the equivalent diameter:

2
πDeq 2 4Aeq 4 × 0.04350 0.17400
Aeq = =⇒ Deq = = = = 0.05538 m2
4 π π 3.1416

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