International Journal of Engineering Trends and Technology (IJETT) Volume 49 Number 6 July 2017

Similar documents
Keywords - Gas Turbine, Exhaust Diffuser, Annular Diffuser, CFD, Numerical Simulations.

Performance Investigation of High Pressure Ratio Centrifugal Compressor using CFD

Numerical Validation of Flow Through an S-shaped Diffuser

NUMERICAL INVESTIGATION OF FLOW THROUGH ANNULAR CURVED DIFFUSER. Department of Chemical Engineering, DIATM, Durgapur , India

Prediction of Performance Characteristics of Orifice Plate Assembly for Non-Standard Conditions Using CFD

CFD ANALYSIS OF CD NOZZLE AND EFFECT OF NOZZLE PRESSURE RATIO ON PRESSURE AND VELOCITY FOR SUDDENLY EXPANDED FLOWS. Kuala Lumpur, Malaysia

Predictionof discharge coefficient of Venturimeter at low Reynolds numbers by analytical and CFD Method

Effect of radius ratio on pressure drop across a 90 bend for high concentration coal ash slurries

International Journal of Scientific & Engineering Research, Volume 6, Issue 5, May ISSN

CHAPTER 4 OPTIMIZATION OF COEFFICIENT OF LIFT, DRAG AND POWER - AN ITERATIVE APPROACH

CFD Analysis for Thermal Behavior of Turbulent Channel Flow of Different Geometry of Bottom Plate

Investigation of Flow Profile in Open Channels using CFD

CHAPTER 2 REVIEW OF LITERATURE

THERMAL ANALYSIS OF SECOND STAGE GAS TURBINE ROTOR BLADE

CHAPTER 7 NUMERICAL MODELLING OF A SPIRAL HEAT EXCHANGER USING CFD TECHNIQUE

Computational study on non-asymptotic behavior of developing turbulent pipe flow

IJRASET: All Rights are Reserved

This section develops numerically and analytically the geometric optimisation of

COMPUTATIONAL INVESTIGATION OF PERFORMANCE CHARACTERISTICS IN A C-SHAPE DIFFUSING DUCT

Numerical Simulation of Supersonic Expansion in Conical and Contour Nozzle

Optimization of Divergent Angle of a Rocket Engine Nozzle Using Computational Fluid Dynamics

Design and Optimization of De Lavel Nozzle to Prevent Shock Induced Flow Separation

Chapter 3. CFD Analysis of Radiator

ABSTRACT I. INTRODUCTION

CFD ANALYSIS OF CONVERGENT- DIVERGENT AND CONTOUR NOZZLE

This chapter focuses on the study of the numerical approximation of threedimensional

DEVELOPMENT OF CFD MODEL FOR A SWIRL STABILIZED SPRAY COMBUSTOR

Numerical Investigation of flow through Annular Diffusing Duct

COMPUTATIONAL ANALYSIS OF LAMINAR FORCED CONVECTION IN RECTANGULAR ENCLOSURES OF DIFFERENT ASPECT RATIOS

WALL ROUGHNESS EFFECTS ON SHOCK BOUNDARY LAYER INTERACTION FLOWS

Numerical Investigation of Secondary Flow In An Axial Flow Compressor Cascade

Performance Improvement of S-shaped Diffuser Using Momentum Imparting Technique

ABSTRACT I. INTRODUCTION

Ejector Pump CFD Model Validation and Performance Improvement Studies

Heat Transfer Enhancement in Vertical Narrow Plates by Natural Convection

Experimental and CFD analysis of flow through venturimeter to determine the coefficient of discharge

COMPUTATIONAL ANALYSIS OF CD NOZZLE FOR SOLID PROPELLANT ROCKET

Numerical Study of Pressure and Velocity Distribution Analysis of Centrifugal Pump

CFD ANALYSIS OF PRESSURE DISTRIBUTION IN SLIDE CONICAL BEARING LUBRICATED WITH NON-NEWTONIAN OIL

Explicit algebraic Reynolds stress models for internal flows

[Prasanna m a*et al., 5(6): July, 2016] ISSN: IC Value: 3.00 Impact Factor: 4.116

Computational Fluid Dynamics Study Of Fluid Flow And Aerodynamic Forces On An Airfoil S.Kandwal 1, Dr. S. Singh 2

EVALUATION OF FOUR TURBULENCE MODELS IN THE INTERACTION OF MULTI BURNERS SWIRLING FLOWS

Flow analysis in centrifugal compressor vaneless diffusers

DRAG PREDICTION AND VALIDATION OF STANDARD M549, 155mm PROJECTILE

Heat Transfer Analysis of a Helical Coil Heat Exchanger by using CFD Analysis

FLUID FLOW AND HEAT TRANSFER INVESTIGATION OF PERFORATED HEAT SINK UNDER MIXED CONVECTION 1 Mr. Shardul R Kulkarni, 2 Prof.S.Y.

GENERALISATION OF THE TWO-SCALE MOMENTUM THEORY FOR COUPLED WIND TURBINE/FARM OPTIMISATION

Flow Analysis and Optimization of Supersonic Rocket Engine Nozzle at Various Divergent Angle using Computational Fluid Dynamics (CFD)

DEVELOPED LAMINAR FLOW IN PIPE USING COMPUTATIONAL FLUID DYNAMICS M.

Enhancement of Heat Transfer Effectiveness of Plate-pin fin heat sinks With Central hole and Staggered positioning of Pin fins

RANS Simulations for Sensitivity Analysis of Compressor Transition Duct

Turbulent Boundary Layers & Turbulence Models. Lecture 09

A Numerical study of effect of Return Channel Vanes Shroud Wall Divergence Angle on the Cross-over System Performance in Centrifugal Compressors

Simplified Model of WWER-440 Fuel Assembly for ThermoHydraulic Analysis

COMPUTATIONAL FLOW ANALYSIS THROUGH A DOUBLE-SUCTION IMPELLER OF A CENTRIFUGAL PUMP

Comparison of Turbulence Models in the Flow over a Backward-Facing Step Priscila Pires Araujo 1, André Luiz Tenório Rezende 2

GTINDIA CFD ANALYSIS TO UNDERSTAND THE FLOW BEHAVIOUR OF A SINGLE STAGE TRANSONIC AXIAL FLOW COMPRESSOR. 1 Copyright 2013 by ASME

IJSRD - International Journal for Scientific Research & Development Vol. 4, Issue 05, 2016 ISSN (online):

Tutorial: Premixed Flow in a Conical Chamber using the Finite-Rate Chemistry Model

Numerical analysis of fluid flow and heat transfer in 2D sinusoidal wavy channel

Analysis of Temperature Distribution Using Conjugate Heat Transfer in a HPT Stage via CFD

Mechanical Engineering Research Journal NUMERICAL MODELING OF TURBULENT FLOW THROUGH BEND PIPES

Computational and Experimental Studies of Fluid flow and Heat Transfer in a Calandria Based Reactor

INVESTIGATION OF SWIRLING FLOW IN DIFFUSERS INSTALLED AT THE EXIT OF AN AXIAL-FLOW PUMP

AN UNCERTAINTY ESTIMATION EXAMPLE FOR BACKWARD FACING STEP CFD SIMULATION. Abstract

An Experimental Investigation to Control the Flow Emerging From a Wide Angle Diffuser

LARGE EDDY SIMULATION OF FLOW OVER NOZZLE GUIDE VANE OF A TRANSONIC HIGH PRESSURE TURBINE

Development of Two-Dimensional Convergent-Divergent Nozzle Performance Rapid Analysis Project

FLOW DISTRIBUTION ANALYSIS IN A HEAT EXCHANGER WITH DIFFERENT HEADER CONFIGURATIONS

[Maddu, 5(12): December2018] ISSN DOI /zenodo Impact Factor

SIMULATION OF THERMAL CHARACTERISTICS OF RADIATORS USING A POROUS MODEL. YETSAN Auto Radiator Co. Inc Çorum, Turkey NOMENCLATURE

COMPUTATIONAL SIMULATION OF THE FLOW PAST AN AIRFOIL FOR AN UNMANNED AERIAL VEHICLE

DESIGN AND CFD ANALYSIS OF A CENTRIFUGAL PUMP

Impact of Magnetic Field Strength on Magnetic Fluid Flow through a Channel

Numerical Modelling For Hydro Energy Convertor: Impulse Turbine

Practical Analysis Of Turbulent Flow In A Pipe Using Computational Fluid Dynamics

COMPUTATIONAL FLUID DYNAMICS ANALYSIS OF A V-RIB WITH GAP ROUGHENED SOLAR AIR HEATER

m SThe Society shall not be responsible for statements or opinions advanced in papers or discussion at meetings of the Society or of its Divisions or

University of Maiduguri Faculty of Engineering Seminar Series Volume 6, december Seminar Series Volume 6, 2015 Page 58

Numerical investigation of swirl flow inside a supersonic nozzle

Numerical Study Of Flue Gas Flow In A Multi Cyclone Separator

Use of a CFD Code in the Analysis of Heat Transfer Surfaces

Design and Analysis of Cyclone Separator

A Computational Fluid Dynamics Investigation of Solar Air Heater Duct Provided with Inclined Circular Ribs as Artificial Roughness

Signature: (Note that unsigned exams will be given a score of zero.)

Study of Flow Patterns in Radial and Back Swept Turbine Rotor under Design and Off-Design Conditions

Department of Mechanical Engineering, VTU, Basveshwar Engineering college, Bagalkot, Karnataka, India

Analysis of the Cooling Design in Electrical Transformer

NUMERICAL INVESTIGATION OF COUNTER FLOW ISOSCELES RIGHT TRIANGULAR MICROCHANNEL HEAT EXCHANGER

Validation 3. Laminar Flow Around a Circular Cylinder

Modeling and simulation of Convergent-Divergent Nozzle Using Computational Fluid Dynamics

CFD Analysis of High Temperature and High Velocity System: Plasma Torch

NUMERICAL SIMULATION OF STATIC INFLOW DISTORTION ON AN AXIAL FLOW FAN

Analysis of Heat Transfer in Pipe with Twisted Tape Inserts

INTERNATIONAL JOURNAL OF SCIENTIFIC & TECHNOLOGY RESEARCH VOLUME 5, ISSUE 09, SEPTEMBER 2016 ISSN

FLOW PATTERN STUDY OF A CENTRIFUGAL PUMP USING CFD METHODS CONCENTRATING ON VOLUTE TONGUE ROLE

International Journal of Research in Advent Technology, Vol.6, No.11, November 2018 E-ISSN: Available online at

Design and simulation of Open Circuit Blowdown type Wind Tunnel

EFFECT OF ROTOR S ANGULAR SPEED AND ASPECT RATIO ON ENTROPY GENERATION IN A ROTOR-CASING ASSEMBLY

Transcription:

Effect of Divergence Angle on the Performance and Flow Analysis of 3D Annular Diffuser of an Aircraft Engine using CFD Technique Sharan Padashetty 1, Pravin Honguntikar 2, K. Rajagopal 3 1 Ph.D Research Scholar, JNTU, Hyderabad, TS, India & Associate Professor, PDA College of Engineering, Kalaburagi, Karnataka, India. 2 Professor, Dept of Mechanical Engineering, PDA College of Engineering, Kalaburagi, Karnataka, India. 3 Vice Chancellor, Sri Krishnadevaraya University, Anantapur, AP, India. ABSTRACT: The performance characteristics of diffusers depends on their geometry and the inlet conditions. The present investigation attempts to select an optimal divergence angle of diffuser. This is analysed on the basis of static pressure recovery and total pressure loss coefficients. Simulation of air flow in various annular diffuser geometry is carried out using ANSYS FLUENT. The geometric limitations of the aircraft engines in which the diffusers are to be designed so as to get maximum pressure recovery within shortest possible length led to the design and development of annular diffuser. Keywords: Annular diffuser, Gas turbine aircraft engine, divergence angle, static pressure recovery coefficient, velocity vector contours. 1. INTRODUCTION Annular diffuser as an integral component of gas turbine engines of high-speed aircraft. The performance of diffuser is dependent on geometrical and dynamical parameter. The design and optimization of diffuser geometry to achieve the best performance of the combustor is quite complex. Annular diffuser naturally exist in the gas turbines of aircraft because of presence of central hub or shaft. The annular diffuser have superior performance compared to conical or simular diffuser because of the presence of hub which act as a guide to the flow Kline SJ [1]. Majority of the previous research focussed primarily on 2D annular diffuser. Previous work by Cherry et al 2008 [2] stressed the need for rigorous database of experiments on separated flow to compare with CFD calculation and simulation. The geometry features of diffuser made to replicate general electric 8362 turbine CD diffuser as an author by Sovran and Klump (1987) [3] and Jason J Dunn 2007 [4]. Design and optimization of diffuser geometry to achieve best performance of combustor involves the compressor producing high-pressure ratio with minimum number of stages resulting in high axial velocity at compressor exit S.N. Singh, V. Seshadri, K. Saha, K.K. Vempati and S. Bharani 2005 [5]. 2. GEOMETRY AND MATHEMATICAL FORMULATION OF ANNULAR DIFFUSER: 2.1 Geometry: Geometry of the diffuser is created in ANSYS Designer modular. 3D model is generated using ANSYS 16. FIG.1 Key dimension for Annular diffuser geometry Geometry features of diffuser model to replicate general electric 8362 turbine CD diffuser as per author Sovran and Klump (1967) [3] and Jason J. Dunn (2007 [4] taken for divergence angle of 9º and 15º of diffuser. Geometry for diffuser of 22º and 29º of divergence angle created by calculation and drawing. ISSN: 2231-5381 http://www.ijettjournal.org Page 335

Table-1 Geometrical Features of Diffusers investigated Diffuser 1 Diffuser 2 Diffuser 3 Diffuser 4 Diffusers angle 0 9º 15º 22º 29º Radius of Hub RH 1 2.108 cm 2.108 cm 2.108 cm 2.108 cm Radius of diffuser at inlet RT 1 3.896 cm 3.896 cm 3.896 cm 3.896 cm Difference between radius of R 1 1.788 cm 1.788 cm 1.788 cm 1.788 cm inlet and hub radius Cross-section area at inlet A1 31.627cm 2 31.627cm 2 31.627cm 2 31.627cm 2 Cross-section area at outlet A2 86.63cm 2 138.153cm 2 217.20cm 2 316.58cm 2 Area Ratio AR 2.73 4.36 6.86 10.01 Diffuser wall length L 0 11.542cm 11.854cm 12.410cm 13.250cm Diffuser axial length L 11.40cm 11.40cm 11.40cm 11.40cm 2.2 Geometry in CFD analysis modular design: Geometry in ANSYS design module is created for preparation and analysing 2D and 3D models are generated. Figure 2 Geometry of Diffuser with Figure 3 Geometry of Diffuser with 9 0 divergance angle 15 0 divergance angle Figure 4 Geometry of Diffuser with 22 0 divergance angle 2.3 ANSYS Workbench Mesh: This work gives an insight of the findings that are obtained from the analysis of the 3-D annular diffuser done in CFD. Different modifications on the basic geometry were investigated to optimize the performance of the diffuser. First a model for the base diffuser was developed by taking its geometric data from literature and the performance data serve as a reference for comparing the Figure 5 Geometry of Diffuser with 29 0 divergance angle performance of the modified. In order to find the optimum performance results of the annular diffuser geometric parameters has been varied and these results are projected. It is assumed that the flow is exhausted to atmosphere, so pressure at exit of diffuser is assumed to be atmospheric. The meshed model of the annular diffuser is as shown in figure-6. ISSN: 2231-5381 http://www.ijettjournal.org Page 336

(a) 9º divergence angle of diffuser (b) 15º divergence angle of diffuser Figure 6 Meshed model of the annular diffuser The number of nodes used to obtain acceptable, mesh-independent solutions is 43000. Validation of the numerical solutions was obtained by comparing the values of Pressure coefficient with experimental results. 2.4 Boundary Condition & Fluent Setting (Preprocessing): All turbulence models implemented a COUPLED scheme to couple the pressure and velocity. Furthermore, the spatial discretization was accomplished by a second-order accurate upwind scheme for the momentum and a FLUENT standard scheme for the pressure. Any additional closure equations for the various turbulence models were spatially discretized by second-order accurate upwind schemes. In all cases, the corresponding calculation residuals were monitored to convergence at 1 10-05. These residuals included continuity, x-velocity, and y-velocity for all turbulence models. Beyond these generic residuals, any additional closure equations gave additional terms to monitor. The fluid properties were carefully chosen to ensure a matched Reynolds number with the experimental data. Figure 7 Residual plot for analysis The present approach requires the consideration of three sets of interlocking equations: (a) momentum and mass conservation for turbulent flow, (b) turbulence model (Shear Stress Transport), and (c) transitional flow model. The first of the sets encompasses the equation of continuity and the RANS equations, which are u i = 0 x i ρ(μ i u j x i ) = p x j + x i ((μ + μ t ) u j x i ) Here, μ t is the so-called turbulent viscosity. To obtain values of this quantity, it is necessary to make use of a supplementary pair of equations In all cases, agreement to within 1% or better was achieved. In addition, care was taken to achieve residuals of 10-6 or smaller for all variables, except for the intermittency residual which was typically 10-5 ISSN: 2231-5381 http://www.ijettjournal.org Page 337

Boundary conditions for the numerical simulation include the no-slip and permeability conditions on all solid boundaries. At the inlet of the diffuser, a fully developed velocity profile, either laminar or turbulent, depending on the situation under consideration, was imposed. At the downstream end of the solution domain, the streamwise second derivatives of the velocities were required to be zero Boundary Condition Solver Type Problem model Fluid Casing Mass Flow rate Hydraulic Diameter Table-2: Boundary conditions Pressure Based k-ε Turbulence Model With Wall enhanced treatment Air Acrylic 0.002259kg/sec 1.788 cm 3. RESULTS AND DISCUSSION 3.1 Contours of Pressure coefficient The pressure coefficient distribution along the diffuser is shown in the following figures at different diveregence angles(9 0,15 0,22 0 &29 0 ) Figure 8 Contours of pressure coefficient for 9 0 divergence angle of diffuser Figure 9 Contours of pressure coefficient for 15º divergence angle of diffuser ISSN: 2231-5381 http://www.ijettjournal.org Page 338

The pressure coefficient is dimensionless number which describes the relative pressures through out a flow field in fluid dynamics. Every point in the fluid flow has its own unique pressure coefficient. The distribution of the pressure coeffiecient along the diffuser is simulated on xy plane section Figure 10 Contours of pressure coefficient for 22º divergence angle of diffuser Figure 11 Contours of pressure coefficient for 29º divergence angle of diffuser 3.2 Contours of velocity Vectors Figure below shows velocity distribution along plane. Coloured line indicates that velocity decreases in diffuser section as angle goes on increasing. But increasing angle in divergence section will have effect on boundary layer separation due to adverse pressure gradient. ISSN: 2231-5381 http://www.ijettjournal.org Page 339

Figure 12 Velocity vectors of 9º divergence angle of diffuser Figure 13 Velocity Vectors for 15 0 divergence angle of diffuser As angle goes on increasing above 20 0, flow separation begins in diffuser section resulting in energy loss due to Backflow of the fluid. ISSN: 2231-5381 http://www.ijettjournal.org Page 340

Figure 14 Flow separation and velocity vectors for 22 0 divergence angle 6.3 Divergence angle vs Pressure Recovery Graphs are plotted taking horizontal distance on X axis and pressure coefficient on Y- axis to know the impact of the divergence angle on the pressure coefficient. The graphs are shown below Figure 15 Plot for Static pressure recovery coefficient for 9º divergence angle of diffuser ISSN: 2231-5381 http://www.ijettjournal.org Page 341

Figure 16 Plot for Static pressure recovery coefficient for 15º divergence angle of diffuser Figure 17 Plot for Static pressure recovery coefficient for 9º and 15º divergence angle of diffusers ISSN: 2231-5381 http://www.ijettjournal.org Page 342

Figure 18 Plot for Static pressure recovery coefficient for 9º, 15º and 22º divergence angle of diffusers From the above figure we can observe that pressure coefficient increseas as the angle of divergence increases. Due to this increase in pressure coeffiecient the pressure recovery increases which is very essential for a diffuser. Increase in pressure cofficient is very less in 22 0 and 29 0 as compared to intial investigated diffuser of divergence angle of 9º and 15º Figure 19 Plot for Static pressure recovery coefficient for 9º, 15º, 22º and 29º divergence angle of diffuser CONCLUSIONS Following inferences have been drawn from the predicted CFD results for various divergence angle of diffuser. The discussions have clearly highlighted the following aspects of diffuser flow analysis. 1. Pressure recovery within the diffuser increases as flow proceeds except at the beginning stage of the diffusers while velocity decreases as the flow proceeds. 2. The pressure coefficient plotted in figure 15 to figure 19 by taking x/l on x-axis and pressure ISSN: 2231-5381 http://www.ijettjournal.org Page 343

coefficient on y-axis to study the effect of divergence angle on the pressure coefficient. 3. It is observed that pressure coefficient increases as the angle of divergence increases. Due to this increase in pressure coefficient the pressure recovery increases. 4. Effect of divergence angle of diffuser is indicated on the pressure coefficient plot. Flow separation begins as the divergence angle increases above 20º which results in pressure loss. Increase in pressure coefficient is noticed drastically for diffuser with divergence angle from 15º to 20º. 5. Increase in divergence angle more than 22º has no effect on pressure recovery ans pressure coefficient. REFERENCES 1. Kline S.J. on the nature of stall. Trans. ASME Ser. D, 1959, 81, 305-320. 2. Cherry EM, Elkins CJ, Eaton JK, 2008. Geometric Sensitivity of 3D separated flows, International Journal of Heat and Fluid Flow, 29, 803-811. 3. Sovran G and Klomp ED, Fluid Mechanics of Internal Flow, edited by Sovran G. (Elsevier Science Publisher, Amstradam), 1967, 270. 4. Jason J. Dunn, 2007, On the nature of flow in separated annular diffuser, BSAE University of Central Florida, Orlando. 5. SN Singh, V Sheshadri, K Saha, KK Vempati and S Bharani, Effect of inlet swirl on the performance of annular diffuser having same equivalent cone angle, Vol.220, 2005, Journal of Aerospace Engineering, 129-143. 6. A Sheeba, V Ganesan, Modelling of annular pre-diffuser for marine gas turbine combustor with CFD, Journal of Naval Architecture and Marine Engineering, 2005, 41-52. APPENDIX: Notation: AR L 0 L RH C P Area Ratio Diffuser wall length Diffuser Axial Length Diffuser Divergence Angle Radius of Hub Static Pressure Recovery Coefficient. ISSN: 2231-5381 http://www.ijettjournal.org Page 344