Experimental Thermo and Fluid Mechanics Lab. 4. Fluid Kinematics 4.1. Velocity Field 4.2. Continuity Equation.

Slides:



Advertisements
Similar presentations
Velocity and velocity profile
Advertisements

Integration Relation for Control Volume
Navier-Stokes.
FLOW FIELD SPECIFICATION Eulerian and Lagrangian descriptions: Eulerian Lagrangian.
A streakline is the path that a particle will follow in the flow, the locus of particles that have passed sequentially through a prescribed path in the.
Equations of Continuity
Chapter 4: Fluid Kinematics
Chapter 2 Reynolds Transport Theorem (RTT) 2.1 The Reynolds Transport Theorem 2.2 Continuity Equation 2.3 The Linear Momentum Equation 2.4 Conservation.
Chapter 4: Flowing Fluids & Pressure Variation (part 1)
Fluid Kinematics Fluid Dynamics . Fluid Flow Concepts and Reynolds Transport Theorem ä Descriptions of: ä fluid motion ä fluid flows ä temporal and spatial.
Conservation Vector Review Mass Balance General Statement Simplifications The Control Volume A Useable Form Problems.
Momentum flux across the sea surface
Chapter 4: Flowing Fluids & Pressure Variation (part 2) Review visualizations Frames of reference (part 1) Euler’s equation of motion.
CE 1501 CE 150 Fluid Mechanics G.A. Kallio Dept. of Mechanical Engineering, Mechatronic Engineering & Manufacturing Technology California State University,
Chapter 4: Fluid Kinematics
MECH 221 FLUID MECHANICS (Fall 06/07) Chapter 3: FLUID IN MOTIONS
Monroe L. Weber-Shirk S chool of Civil and Environmental Engineering Fluid Kinematics Fluid Mechanics July 14, 2015 
Monroe L. Weber-Shirk S chool of Civil and Environmental Engineering Fluid Kinematics Fluid Mechanics July 15, 2015 Fluid Mechanics July 15, 2015 
Fluid Mechanics and Fluid Dynamics
Eulerian Description • A finite volume called a flow domain or control volume is defined through which fluid flows in and out. • There is no need to keep.
Dynamics. Chapter 1 Introduction to Dynamics What is Dynamics? Dynamics is the study of systems in which the motion of the object is changing (accelerating)
Introduction to Fluid Mechanics
Fluid Mechanics FLOWING FLUIDS Engineering Fluid Mechanics 8/E by Crowe, Elger, and Roberson Copyright © 2005 by John Wiley & Sons, Inc. All rights reserved.
MAE 3130: Fluid Mechanics Lecture 5: Fluid Kinematics Spring 2003
CHAPTER (III) KINEMATICS OF FLUID FLOW 3.1: Types of Fluid Flow : Real - or - Ideal fluid : Laminar - or - Turbulent Flows : Steady -
KINEMATICS Kinematics describes fluid flow without analyzing the forces responsibly for flow generation. Thereby it doesn’t matter what kind of liquid.
By : Me Edited from Mr. Basirul notes
1 MAE 5130: VISCOUS FLOWS Conservation of Mass September 2, 2010 Mechanical and Aerospace Engineering Department Florida Institute of Technology D. R.
Abj 3.1: Introduction to Motion and Velocity Field: Pathlines, Streamlines, and Streaklines Geometry of Motion Pathline Streamline No flow across a.
Fluid Mechanics and Fluid Dynamics Fluid mechanics is the branch of physics that studies fluids (liquids, gases, and plasmas) and the forces on them. Fluid.
Lecture 3 Kinematics Part I
AOE 5104 Class 8 Online presentations for next class: –Kinematics 2 and 3 Homework 3 (thank you) Homework 4 (6 questions, 2 graded, 2 recitations, worth.
Chapter 4 FLUID KINEMATICS
Introduction to Fluid Mechanics
Chapter 4 Fluid Kinematics CE Fluid Mechanics Diogo Bolster.
Ch 4 Fluids in Motion.
Elementary Mechanics of Fluids
Abj1 1.System, Surroundings, and Their Interaction 2.Classification of Systems: Identified Volume, Identified Mass, and Isolated System Questions of Interest:
MAE 5360: Hypersonic Airbreathing Engines
IV. Kinematics of Fluid Motion. Contents 1. Specification of Fluid Motion 2. Material Derivatives 3. Geometric Representation of Flow 4. Terminology 5.
Outline Time Derivatives & Vector Notation
NNPC FSTP ENGINEERS Physics Course Code: Lesson 7.
1.What are fluid kinematics?  kinematic descriptions of motion describe position, velocity, and accelerations (NOT FORCE) [ physical interpretation: what.
ENT 257/4 FLUID MECHANICS Prof. Madya Dr. Ghulam Abdul Quadir School of Mechatronic Engineering H/P:
Fluid kinematics refers to features of a fluid in motion.
Faros University ME 253 Fluid Mechanics II
Chapter 4 Kinematics of Fluid Motion 1. 2 §4.1 The Velocity field 3.
Flowing Fluids ( 유체의 흐름 ) Fluid kinematics ( 유체운동학 ) – describes the motion of fluid elements such as translation ( 이동 ), transformation ( 변형 ), rotation.
Course : Civil Engineering Division : C (3 rd Semester). Subject : Fluid Mechanics Subject Code : Guided By :HIREN JARIWALA(H.O.D) :DIXIT CHAUHAN(ASSI.PROF.)
Sverdrup, Stommel, and Munk Theories of the Gulf Stream
CE 3305 Engineering FLUID MECHANICS
CE 3305 Engineering FLUID MECHANICS
MAE 5350: Gas Turbines Integral Forms of Mass and Momentum Equations
FLUID MECHANICS AND MACHINERY
Different types of flows and lines In fluid flow
Fluid Mechanics Dr. Mohsin Siddique Assistant Professor
Fluid kinematics Chapter 3
THERMO- AND FLUID MECHANICS LECTURE
Lecture no 13 &14 Kinetics & kinematics of fluid flow
Fluid Kinematics Fluid Dynamics.
Motion in One Dimension
MAE 3241: AERODYNAMICS AND FLIGHT MECHANICS
5. Describing Flow CH EN 374: Fluid Mechanics.
Flow is at +45° for 2 seconds, then at +90° for two seconds.
Describing Motion: Kinematics in One Dimension
FLUID DYNAMICS Ms.Arockia Jayaseely,M.sc.,M.Phil., Assistant professor
FLUID DYNAMICS Ms.Arockia Jayaseely,M.sc.,M.Phil., Assistant professor
Introduction to Fluid Mechanics
FLUID MECHANICS ME-10 MODULE - 2 KINEMATICS OF FLUID FLOW Presented by: Ayush Agrawal (Asst. Professor) Civil Engineering Department Jabalpur Engineering.
Chapter 4 Description of a Fluid in Motion
Presentation transcript:

Experimental Thermo and Fluid Mechanics Lab. 4. Fluid Kinematics 4.1. Velocity Field 4.2. Continuity Equation

Experimental Thermo and Fluid Mechanics Lab. Fluid Kinematics What is fluid kinematics? Fluid kinematics is the study on fluid motion in space and time without considering the force which causes the fluid motion. According to the continuum hypothesis the local velocity of fluid is the velocity of an infinitesimally small fluid particle/element at a given instant t. It is generally a continuous function in space and time.

How small an how large should be a fluid particle/element in frame of the continuum concept? The characteristic length of the fluid system of interest >> The characteristic length of a fluid particle/element >> The characteristic spacing between the molecules contained in the volume of the fluid particle/element : For air at sea-level conditions, - molecules in a volume of - (λ : mean free path) The continuum concept is valid!

Experimental Thermo and Fluid Mechanics Lab Velocity Field Eulerian Flow Description Lagrangian Flow Description Streamline Pathline Streakline

Experimental Thermo and Fluid Mechanics Lab. The flow quantities, like are described as a function of space and time without referring to any individual identity of the fluid particle : In the Eulerian Method

Experimental Thermo and Fluid Mechanics Lab Streamline A line in the fluid whose tangent is parallel to at a given instant t. The family of streamlines at time t are solutions of Where are velocity components in the respective direction

Steady flow : the streamlines are fixed in space for all time. Unsteady flow : the streamlines are changing from instant to instant. ▲ Fig. 4.1

Flow Dimensionality Most of the real flow are 3-dimensional and unsteady : For many situations simplifications can be made : 2-dimensional unsteady and steady flow 1-dimensional unsteady and steady flow

In the Lagrangian Method The flow quantities are described for each individually identifiable fluid particle moving through flow field of interest. The position of the individual fluid particle is a function of time : ▲ Fig. 4.2

Experimental Thermo and Fluid Mechanics Lab Pathline A line traced by an individual fluid particle : For a steady flow the pathlines are identical with the streamlines.

▲ Fig. 4.3

Experimental Thermo and Fluid Mechanics Lab Streakline A streakline consists of all fluid particles in a flow that have previously passed through a common point. Such a line can be produced by continuously injecting marked fluid (smoke in air, or dye in water) at a given location. For steady flow : The streamline, the pathline, and the streakline are the same.

Experimental Thermo and Fluid Mechanics Lab Stream-tube and Continuity Equation Stream-tube Continuity Equation of a Steady Flow

Experimental Thermo and Fluid Mechanics Lab Stream-tube is the surface formed instantaneously by all the streamlines that pass through a given closed curve in the fluid. ▲ Fig. 4.4

Continuity Equation of a Steady Flow For a steady flow the stream-tube formed by a closed curved fixed in space is also fixed in space, and no fluid can penetrate through the stream-tube surface, like a duct wall. ▲ Fig. 4.5

Considering a stream-tube of cylindrical cross sections with velocities perpendicular to the cross sections and densities at the respective cross sections and assuming the velocities and densities are constant across the whole cross section, a fluid mass closed between cross section 1 and 2 at an instant t will be moved after a time interval dt by to the cross section 1’ and 2’ respectively. Because the closed mass between 1 and 2 must be the same between 1’ and 2’, and the mass between 1’ and 2 for a steady flow can not change from t and t+dt, the mass between 1 and 1’ moved in dt, must be the same as the mass between 2 and 2’ moved in the same time dt, :

Therefore the continuity equation of steady flow : Interpretation : The mass flow rate through a steady stream-tube or a duct. For incompressible fluid with : Interpretation : The volume flow rate From the continuity equation for incompressible fluid : for a stream-tube. (4.1) (4.2)

▲ Fig. 4.6