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Measurement of Velocity Profile in a Square Duct ME 400 Jafar Samarah Motasem Abu Shanap

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Page 1: Presentation(velocity profile in square duct)

Measurement of Velocity Profile in a Square Duct

ME 400

Jafar Samarah

Motasem Abu Shanap

Page 2: Presentation(velocity profile in square duct)

Aim of the experiments is to obtain the velocity profile in square duct at different location along x-axis.

Velocity Profile Measuring Devices. Pressure Measuring Devices. Pitot Static Tube. Pressure Transducers.

Introduction

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Viscous flow Laminar, Transition and Turbulent flow Reynolds Number Hydraulic diameter Entrance length

Principles

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Viscosity is a measure of the resistance of a fluid which is being deformed by shear stress.

Dynamic viscosity. Kinematic viscosity .

Viscous Flow

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Laminar Flow, Re<2300. Transition Flow, 2300<Re<4000. Turbulent Flow, Re>4000.

Flow Regimes

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Reynolds Number

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Hydraulic Diameter

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It is the length required to reach the fully developed flow.

Entrance Length

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Conservation of Mass Conservation of Momentum Navier stokes equation Euler's Equation Bernoulli's equation

Governing Equations

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Conservation of Mass

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Navier Stokes Equation

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Euler's Equation

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Bernoulli's Equation

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Square Cross Section (20X20cm) and 2 m long duct.

Fan. Glass piece on the side of the duct. Nozzle. Pitot Static Device. Signal Reading Device with Pressure

Transducers. Straighteners.

Experimental Setup

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Experimental Setup

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Experimental Results

We Obtained The Velocity Profiles at The Locations Shown in The Figures

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Figure 4.3 shows the velocity profile for the duct channel along x-axis with variation of y-axis, without straws at fixed

z=0 cm. For each location we took 5 readings of velocity, and then we took the average velocity ⊽.

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In figure 4.4, velocity profile Over y-Axis With Fixed Height z=0 cm, along x-Axis without straws. Normalized by dividing

each velocity by the mean one, ⊽/Vm.

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Figure 4.5 shows the velocity profile for the duct channel along x-axis with variation of z-axis, without straws and fixed

height y=0cm.For each location we took 5 readings of velocity, and then we

took the average ⊽.

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Figure 4.6 shows the velocity profile for the duct channel along x-axis with variation of z-axis, without straws and fixed

height y=0cm. it is normalized by dividing the velocity of each location by the mean velocity ⊽/Vm.

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Figure 4.7,Comparing the results at x=180 cm, for y & z

axis

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Vibration of the duct due to the fan rotation. Irregularity of the duct shape. Extra friction due to the flange connection. Eccentricity of the fan eye. Vibration of Pitot static tube due to the air

flow. The Frame of the glass which gives extra

friction.

Conclusion

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?Questions