Numerical Investigation of Flow Field Behaviour and Pressure Fluctuations within an Axial Flow Pump under Transient Flow Pattern Based on CFD Analysis Method
this present work, CFD numerical method is applied to analyses the flow field in
an axial flow pump qualitative and quantitative analyses. Qualitative analysis for these
parameters comprise static pressure variations, dynamic pressure variations, velocity magnitude,
turbulent kinetic energy, shear stress. Quantitative analysis including the pressure fluctuations in
frequency domain analysis under different operation conditions. Also, sliding mesh method and
turbulence model type k- epsilon are used. Various monitoring points are stalled in order to
analyses pressure fluctuation mechanism in the impeller blade. The numerical results revealed
that the flow field for pressure and velocity are increase start from the suction side of the pump
to discharge side. Also, the results found that the high pressure occurs at the discharge side
along the axial direction of the impeller. The maximum value of pressure fluctuations is
occurred at tip blade region due to high interaction flow at this particular area. Moreover, the
pressure decreases as flow rate in the pump increases. Additionally, the results shown that the
pressure fluctuations have four peaks and four valleys the similar impeller blades number.
Furthermore, there are different positive and negative pressure regions, the negative pressure
area occurs due to lower pressure zone at inlet impeller area and hence which can lead to cause
occurrence of cavitation in this specific area. The current numerical demonstration results can
help the researches for further axial flow pump design.
The effect of rotational speed variation on the static pressure in the centri...IOSR Journals
The current investigation is aimed to simulate the three-dimensional complex internal flow in a
centrifugal pump impeller with five twisted blades by using specialized computational fluid dynamics (CFD)
software ANSYS /FLUENT 14code with a standard k-ε two-equation turbulence model.
A single blade passage will be modeled to give more accurate results for static pressure contours on (blade,
hub, and shroud). The potential consequences of static pressure associated with operating a centrifugal
compressor in variable rotation speed.
A numerical three-dimensional, through flow calculations to predict static pressure through a
centrifugal pump were presented to examined the effect of rotational speed variation on the static pressure of
the centrifugal pump . The contours of the static pressure of the blade, hub, and shroud indicates negative low
static pressure in the suction side at high rotational speed (over operation limits )and the static pressure
increases gradually until reach maximum value at the leading edge (6×105 Pa) of the blade.
Performance, Optimization and CFD Analysis of Submersible Pump Impellerijsrd.com
To improve the efficiency of submersible flow pump, Computational Fluid Dynamics (CFD) analysis is one of the advanced tools used in the pump industry. A detailed CFD analysis was done to predict the flow pattern inside the impeller which is an active pump component. From the results of CFD analysis, the velocity and pressure in the outlet of the impeller is predicted. CFD analyses are done using ANSYS CFX software. In this research paper we will modified the impeller design by choosing some parameter.
The effect of rotational speed variation on the velocity vectors in the singl...IOSR Journals
The current investigation is aimed to simulate the three-dimensional complex internal flow in a
centrifugal pump impeller with five twisted blades by using a specialized computational fluid dynamics (CFD)
software ANSYS /FLUENT 14code with a standard k-ε two-equation turbulence model.
A single blade passage will be modeled to give more accurate results for velocity vectors on (blade, hub, and
shroud). The potential consequences of velocity vectors associated with operating a centrifugal compressor in
variable rotation speed.
A numerical three-dimensional, through flow calculations to predict velocity vectors through a
centrifugal pump were presented to examined the effect of rotational speed variation on the velocity vectors of
the centrifugal pump . The contours of the velocity vectors of the blade, hub, and shroud indicates low velocity
vectors in the suction side at high rotational speed (over operation limits )and the velocity vectors increases
gradually until reach maximum value at the leading edge (2.63×10 m/s) of the blade
International Journal of Engineering Research and Applications (IJERA) is an open access online peer reviewed international journal that publishes research and review articles in the fields of Computer Science, Neural Networks, Electrical Engineering, Software Engineering, Information Technology, Mechanical Engineering, Chemical Engineering, Plastic Engineering, Food Technology, Textile Engineering, Nano Technology & science, Power Electronics, Electronics & Communication Engineering, Computational mathematics, Image processing, Civil Engineering, Structural Engineering, Environmental Engineering, VLSI Testing & Low Power VLSI Design etc.
A REVIEW ON IMPROVEMENT OF EFFICIENCY OF CENTRIFUGAL PUMP THROUGH MODIFICATIO...ijiert bestjournal
The paper reviews the literature available on the i mprovement of efficiency of centrifugal pump through modification in suction manifolds. The paper discusses the available material of performance improvement through various paramete rs and mainly focuses on the research related to manifold modifications.
International Journal of Engineering Research and Applications (IJERA) is an open access online peer reviewed international journal that publishes research and review articles in the fields of Computer Science, Neural Networks, Electrical Engineering, Software Engineering, Information Technology, Mechanical Engineering, Chemical Engineering, Plastic Engineering, Food Technology, Textile Engineering, Nano Technology & science, Power Electronics, Electronics & Communication Engineering, Computational mathematics, Image processing, Civil Engineering, Structural Engineering, Environmental Engineering, VLSI Testing & Low Power VLSI Design etc.
The effect of rotational speed variation on the static pressure in the centri...IOSR Journals
The current investigation is aimed to simulate the three-dimensional complex internal flow in a
centrifugal pump impeller with five twisted blades by using specialized computational fluid dynamics (CFD)
software ANSYS /FLUENT 14code with a standard k-ε two-equation turbulence model.
A single blade passage will be modeled to give more accurate results for static pressure contours on (blade,
hub, and shroud). The potential consequences of static pressure associated with operating a centrifugal
compressor in variable rotation speed.
A numerical three-dimensional, through flow calculations to predict static pressure through a
centrifugal pump were presented to examined the effect of rotational speed variation on the static pressure of
the centrifugal pump . The contours of the static pressure of the blade, hub, and shroud indicates negative low
static pressure in the suction side at high rotational speed (over operation limits )and the static pressure
increases gradually until reach maximum value at the leading edge (6×105 Pa) of the blade.
Performance, Optimization and CFD Analysis of Submersible Pump Impellerijsrd.com
To improve the efficiency of submersible flow pump, Computational Fluid Dynamics (CFD) analysis is one of the advanced tools used in the pump industry. A detailed CFD analysis was done to predict the flow pattern inside the impeller which is an active pump component. From the results of CFD analysis, the velocity and pressure in the outlet of the impeller is predicted. CFD analyses are done using ANSYS CFX software. In this research paper we will modified the impeller design by choosing some parameter.
The effect of rotational speed variation on the velocity vectors in the singl...IOSR Journals
The current investigation is aimed to simulate the three-dimensional complex internal flow in a
centrifugal pump impeller with five twisted blades by using a specialized computational fluid dynamics (CFD)
software ANSYS /FLUENT 14code with a standard k-ε two-equation turbulence model.
A single blade passage will be modeled to give more accurate results for velocity vectors on (blade, hub, and
shroud). The potential consequences of velocity vectors associated with operating a centrifugal compressor in
variable rotation speed.
A numerical three-dimensional, through flow calculations to predict velocity vectors through a
centrifugal pump were presented to examined the effect of rotational speed variation on the velocity vectors of
the centrifugal pump . The contours of the velocity vectors of the blade, hub, and shroud indicates low velocity
vectors in the suction side at high rotational speed (over operation limits )and the velocity vectors increases
gradually until reach maximum value at the leading edge (2.63×10 m/s) of the blade
International Journal of Engineering Research and Applications (IJERA) is an open access online peer reviewed international journal that publishes research and review articles in the fields of Computer Science, Neural Networks, Electrical Engineering, Software Engineering, Information Technology, Mechanical Engineering, Chemical Engineering, Plastic Engineering, Food Technology, Textile Engineering, Nano Technology & science, Power Electronics, Electronics & Communication Engineering, Computational mathematics, Image processing, Civil Engineering, Structural Engineering, Environmental Engineering, VLSI Testing & Low Power VLSI Design etc.
A REVIEW ON IMPROVEMENT OF EFFICIENCY OF CENTRIFUGAL PUMP THROUGH MODIFICATIO...ijiert bestjournal
The paper reviews the literature available on the i mprovement of efficiency of centrifugal pump through modification in suction manifolds. The paper discusses the available material of performance improvement through various paramete rs and mainly focuses on the research related to manifold modifications.
International Journal of Engineering Research and Applications (IJERA) is an open access online peer reviewed international journal that publishes research and review articles in the fields of Computer Science, Neural Networks, Electrical Engineering, Software Engineering, Information Technology, Mechanical Engineering, Chemical Engineering, Plastic Engineering, Food Technology, Textile Engineering, Nano Technology & science, Power Electronics, Electronics & Communication Engineering, Computational mathematics, Image processing, Civil Engineering, Structural Engineering, Environmental Engineering, VLSI Testing & Low Power VLSI Design etc.
COMPUTATIONAL ANALYSIS OF FLUID FLOW THROUGH ROTATING VANELESS DIFFUSERIjripublishers Ijri
The main objective of the work is to analyze the behavior of the fluid flow through a rotating vaneless diffuser,
flow near wall conditions, performance characteristics and means to reduce the flow losses in a centrifugal
compressor. The project presents a numerical procedure to investigate the pressure distortion at
exit flow of impeller and flow fields around impeller blade and to validate computational results against experimental
data with various models. In rotating vane less diffuser, there are various concepts. The concept
of blade cut back is to be employed in back ward curved impeller to obtain the rotating vaneless diffuser,
which rotates with the speed of the centrifugal impeller and the performance parameters is to be compared
with the static vane less diffuser.
International Journal of Engineering Research and Applications (IJERA) is a team of researchers not publication services or private publications running the journals for monetary benefits, we are association of scientists and academia who focus only on supporting authors who want to publish their work. The articles published in our journal can be accessed online, all the articles will be archived for real time access.
Our journal system primarily aims to bring out the research talent and the works done by sciaentists, academia, engineers, practitioners, scholars, post graduate students of engineering and science. This journal aims to cover the scientific research in a broader sense and not publishing a niche area of research facilitating researchers from various verticals to publish their papers. It is also aimed to provide a platform for the researchers to publish in a shorter of time, enabling them to continue further All articles published are freely available to scientific researchers in the Government agencies,educators and the general public. We are taking serious efforts to promote our journal across the globe in various ways, we are sure that our journal will act as a scientific platform for all researchers to publish their works online.
Modeling And Simulation Swash Plate Pump Response Characteristics in Load Sen...IJMERJOURNAL
ABSTRACT: Fluid Power is widely employed in applications required high loads such as tractors, cranes, and airplanes. In load sensing hydraulic systems, loads are controlled by adjusting a pump-valve arrangement. In this paper, the swash plate pump hydraulic characteristics will be determined, the pump and its fluid gains will be derived to obtain the pump overall transfer function. Firstly, the swash plate pump mechanism is analyzed and its dynamic model is constructed; the pump pressure and flow rate are plotted and the possible improvement is introduced. The load sensing unit parameters such as orifice width, orifice area, maximum passage area, and piston area at X and Y will be examined to identify their influence on the pump characteristics; and the optimum parameters will be introduced. All results are developed and simulated numerically.
Dynamic Stability of Zaghloul Drainage Pumping Station, Kafr El Shiekh, EgyptIJERA Editor
Zaghloul Pumping Station located at El-Moheet drainage in Kafr El Sheikh Governorate. The station consists of four axial pumping units. The operating system depends on running not more than three pumping units. The old station is replaced by new one and the old sump is reused with some modifications. Each pump takes 20 second to start and takes 300 second to reach steady state. Activation more than two units lead to decrease the suction water level, disturbance of velocity distribution in suction intake and increase vibration and noise levels. The disturbance in velocity distribution generates dynamic instability of pumping units which leads to failure, damage and other operation and maintenance difficulties. Field measurements and numerical simulation were done to investigate dynamic stability of the station. The Solid Works flow simulation software, Computational Fluid Dynamics (CFD) is used to simulate the flow conditions at different water levels to predict the hydraulic problem at the suction side. The field measurements are used to investigate the dynamic problem. Measurements are used to measure pump flow rate, pump head and vibration levels. The (MVP2C OneproD/ ACOEM) two channel vibration analyzer and data collector was used to prepare dynamic balancing for each unit with different weights. In general, the results indicated that with the decrease of water level; approach velocity increases, swirl and vortices induce vibrations and excessive bearing loads. From simulation results the geometry of suction intake is proper for running three parallel axial flow pumps with the designed flow rate. The input data to simulation model were taken from the filed measurements and this data is validating to simulation model. The dynamic balancing as a solution leads to reduce vibration level and save bearing life. It is very important to investigate the dynamic stability and check the dynamic balancing for pumping units at the primary operation of the new stations as mentioned in the bidding
Numerical Investigation of Single Stage of an Axial Flow Compressor for Effec...IJERA Editor
In present work, a compressor configuration is taken from literature which will be studied for aspect ratio (ratio between length of blade to chord length) influence over performance. Performance in the sense is pressure ratio of compressor. The aspect ratio of the blade is an important parameter and has a strong influence on the performance of axial flow compressor. There are so many literatures available on influence of design parameters of axial flow compressor over its performance. Few literatures only are available for effects of aspect ratio of blade over performance of compressor. A study is proposed to be carried out to verify the effect of aspect ratio on the performance of single stage subsonic compressor through ANSYS-CFX software. The analysis will be carried out for the constant tip diameter of the compressor rotor blade having an aspect ratio 1, 2 and 3 and to obtain the pressure loss and flow parameters of the compressor stage. Further increase in aspect ratio will lead to structural problem of compressor. Therefore, there will be optimum aspect ratio between 2 and 3. Simulation will be conducted to aspect ratios of 2.1, 2.2, 2.3, 2.4, 2.5, 2.6, 2.7, 2.8 and 2.9 to find optimum ratio using ANSYS-CFX commercial CFD software.
Cavitation Effects in Centrifugal Pumps- A ReviewIJERA Editor
Cavitation is one of the most challenging fluid flow abnormalities leading to detrimental effects on both the
centrifugal pump flow behaviors and physical characteristics. Centrifugal pumps’ most low pressure zones are the
first cavitation victims, where cavitation manifests itself in form of pitting on the pump internal solid walls,
accompanied by noise and vibration, all leading to the pump hydraulic performance degradation. In the present
article, a general description of centrifugal pump performance and related parameters is presented. Based on the
literature survey, some light were shed on fundamental cavitation features; where different aspects relating to
cavitation in centrifugal pumps were briefly discussed.
International Journal of Engineering Research and Applications (IJERA) is an open access online peer reviewed international journal that publishes research and review articles in the fields of Computer Science, Neural Networks, Electrical Engineering, Software Engineering, Information Technology, Mechanical Engineering, Chemical Engineering, Plastic Engineering, Food Technology, Textile Engineering, Nano Technology & science, Power Electronics, Electronics & Communication Engineering, Computational mathematics, Image processing, Civil Engineering, Structural Engineering, Environmental Engineering, VLSI Testing & Low Power VLSI Design etc.
The two-phase flow through vertical transparent pipe is investigated
experimentally. The experimental rig designed to achieve the measurements of
pressure drop for various combinations of phases, flow pattern regimes such as
bubbly, slug and annular, with various range of water and air volumetric high speed
camera . The air volumetric ranged from 8.3334 L/min to 25 l/min, while the water
volumetric ranged from 5 l/min to 20 l/min and of 50 mm internal diameter along 1 m
length. The measured of the pressure will be done using four pressure sensors along
test pipe. The measured pressure values were used for different air volumetric and
different water volumetric. It has been found that the measuring of pressure gradient
through the distance of rig pipe are inversely changed with air volumetric. In
addition, it has been analyzed the flow pattern through obstruction, it has showed one
phase flow, bubbly and slug flow.
Influence of number of impeller and diffuser blades on the pressure recovery ...eSAT Journals
Abstract Impeller is a very important element in rotating devices to deliver energy to/from the fluid. The diffusers are essential for effective transformation of the kinetic power produced by the rotor in a centrifugal fan. Hence the flow in the impeller and diffuser passages is the important phenomenon in optimizing the performance. These impeller and diffuser flow passages are the most complex regions to predict the flow behavior. With the advanced development of Particle Image Velocimetry as well as convenient numerical CFD tools, it has become possible to reach at an accurate result well-matched with the real behavior of the flow. Hence, in this work moving mesh technique is used to get a numerical solution for the estimation of actual flow manner. Numerous research works have been done recently to get the physics of fluid flow through impeller and diffuser, both numerically and experimentally. But it is found from the literature that the study on the performance of the fan by changing the number of impeller and diffuser blades together in a combination has not been the emphasis of attention in these works. Hence a numerical analysis has been carried out in this paper to comprehensively lookout the fluid interaction in impeller-diffuser as well as to envisage the flow behavior of the fan by changing the number of impeller and diffuser blades together in combination. For the same number of impeller blades, it is found from the analysis that a higher static pressure rise coefficient is achieved at the outlet of the fan for smaller number of diffuser blades. It is also found that larger the number of impeller blades, larger is the static pressure rise coefficient for the same number of diffuser blades, hence performance gets improved. Key Words: Unsteady flow, Recirculation zone, Turbulence, Impeller vane, Diffuser vane, Static pressure rise.
Flow analysis of centrifugal pump using CFX solver and remedies for cavitatio...IJERA Editor
In this scholarly thesis pertinent to the working of centrifugal pump, a CFD solver namely CFX is employed in order to simulate fluid flow characteristics with well-defined constraints and boundary conditions defining the problem. Stringent solid model is meticulously prepared encompassing the present day usage and constructional features of a centrifugal pump and is constrained with various boundary conditions having fixed domain in order to evaluate plots and results. To spearhead and facilitate this analysis program a numerical approximation tool with high degree of convergence rate called ANSYS 15.0 software is used. The ASNYS software avoids tedious calculations presumably impending in the design procedure and uses ultimate numerical tool to approximate the solution of the partial differential equations associated with continuity, momentum and energy phases of a flow problem in a 3-D model. This exquisite feature of ANSYS enables designer to optimize the design procedure in an iterative manner based on the final plots of post-processing phase. In addition, the scholarly writing also constitutes the appraisal of the most debilitating and painstaking problem retarding the efficiency of the centrifugal pump known as cavitation. Possible remedies for overcoming this problem will be indirectly inferred from the various plots and figures derived from the post-processing phase of the design process.
Investigation of effect of pump rotational speed on performance and detection...Mustansiriyah University
Cavitation is an essential problem that occurs in any pump. It highly contributes to deteriorating the performance
of the pump. In industrial applications, it is important to detect and decrease the effect of the cavitation in pumps.
In this work, detecting and diagnosing the cavitation phenomenon within centrifugal pumps using vibration
technique was investigated. The results obtained for vibration signal in both time and frequency domains were
analysed in order to gain a better understanding about the detection of cavitation in the pumps in question. The
effect of different operating conditions including various flow rates and pump rotational speeds related to the
cavitation were measured. Different statistical features in time domain analysis (TDA) and also the Fast Fourier
Transform (FFT) technique for frequency domain analysis (FDA) were applied.
Automobile Management System Project Report.pdfKamal Acharya
The proposed project is developed to manage the automobile in the automobile dealer company. The main module in this project is login, automobile management, customer management, sales, complaints and reports. The first module is the login. The automobile showroom owner should login to the project for usage. The username and password are verified and if it is correct, next form opens. If the username and password are not correct, it shows the error message.
When a customer search for a automobile, if the automobile is available, they will be taken to a page that shows the details of the automobile including automobile name, automobile ID, quantity, price etc. “Automobile Management System” is useful for maintaining automobiles, customers effectively and hence helps for establishing good relation between customer and automobile organization. It contains various customized modules for effectively maintaining automobiles and stock information accurately and safely.
When the automobile is sold to the customer, stock will be reduced automatically. When a new purchase is made, stock will be increased automatically. While selecting automobiles for sale, the proposed software will automatically check for total number of available stock of that particular item, if the total stock of that particular item is less than 5, software will notify the user to purchase the particular item.
Also when the user tries to sale items which are not in stock, the system will prompt the user that the stock is not enough. Customers of this system can search for a automobile; can purchase a automobile easily by selecting fast. On the other hand the stock of automobiles can be maintained perfectly by the automobile shop manager overcoming the drawbacks of existing system.
Vaccine management system project report documentation..pdfKamal Acharya
The Division of Vaccine and Immunization is facing increasing difficulty monitoring vaccines and other commodities distribution once they have been distributed from the national stores. With the introduction of new vaccines, more challenges have been anticipated with this additions posing serious threat to the already over strained vaccine supply chain system in Kenya.
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Similar to Numerical Investigation of Flow Field Behaviour and Pressure Fluctuations within an Axial Flow Pump under Transient Flow Pattern Based on CFD Analysis Method
COMPUTATIONAL ANALYSIS OF FLUID FLOW THROUGH ROTATING VANELESS DIFFUSERIjripublishers Ijri
The main objective of the work is to analyze the behavior of the fluid flow through a rotating vaneless diffuser,
flow near wall conditions, performance characteristics and means to reduce the flow losses in a centrifugal
compressor. The project presents a numerical procedure to investigate the pressure distortion at
exit flow of impeller and flow fields around impeller blade and to validate computational results against experimental
data with various models. In rotating vane less diffuser, there are various concepts. The concept
of blade cut back is to be employed in back ward curved impeller to obtain the rotating vaneless diffuser,
which rotates with the speed of the centrifugal impeller and the performance parameters is to be compared
with the static vane less diffuser.
International Journal of Engineering Research and Applications (IJERA) is a team of researchers not publication services or private publications running the journals for monetary benefits, we are association of scientists and academia who focus only on supporting authors who want to publish their work. The articles published in our journal can be accessed online, all the articles will be archived for real time access.
Our journal system primarily aims to bring out the research talent and the works done by sciaentists, academia, engineers, practitioners, scholars, post graduate students of engineering and science. This journal aims to cover the scientific research in a broader sense and not publishing a niche area of research facilitating researchers from various verticals to publish their papers. It is also aimed to provide a platform for the researchers to publish in a shorter of time, enabling them to continue further All articles published are freely available to scientific researchers in the Government agencies,educators and the general public. We are taking serious efforts to promote our journal across the globe in various ways, we are sure that our journal will act as a scientific platform for all researchers to publish their works online.
Modeling And Simulation Swash Plate Pump Response Characteristics in Load Sen...IJMERJOURNAL
ABSTRACT: Fluid Power is widely employed in applications required high loads such as tractors, cranes, and airplanes. In load sensing hydraulic systems, loads are controlled by adjusting a pump-valve arrangement. In this paper, the swash plate pump hydraulic characteristics will be determined, the pump and its fluid gains will be derived to obtain the pump overall transfer function. Firstly, the swash plate pump mechanism is analyzed and its dynamic model is constructed; the pump pressure and flow rate are plotted and the possible improvement is introduced. The load sensing unit parameters such as orifice width, orifice area, maximum passage area, and piston area at X and Y will be examined to identify their influence on the pump characteristics; and the optimum parameters will be introduced. All results are developed and simulated numerically.
Dynamic Stability of Zaghloul Drainage Pumping Station, Kafr El Shiekh, EgyptIJERA Editor
Zaghloul Pumping Station located at El-Moheet drainage in Kafr El Sheikh Governorate. The station consists of four axial pumping units. The operating system depends on running not more than three pumping units. The old station is replaced by new one and the old sump is reused with some modifications. Each pump takes 20 second to start and takes 300 second to reach steady state. Activation more than two units lead to decrease the suction water level, disturbance of velocity distribution in suction intake and increase vibration and noise levels. The disturbance in velocity distribution generates dynamic instability of pumping units which leads to failure, damage and other operation and maintenance difficulties. Field measurements and numerical simulation were done to investigate dynamic stability of the station. The Solid Works flow simulation software, Computational Fluid Dynamics (CFD) is used to simulate the flow conditions at different water levels to predict the hydraulic problem at the suction side. The field measurements are used to investigate the dynamic problem. Measurements are used to measure pump flow rate, pump head and vibration levels. The (MVP2C OneproD/ ACOEM) two channel vibration analyzer and data collector was used to prepare dynamic balancing for each unit with different weights. In general, the results indicated that with the decrease of water level; approach velocity increases, swirl and vortices induce vibrations and excessive bearing loads. From simulation results the geometry of suction intake is proper for running three parallel axial flow pumps with the designed flow rate. The input data to simulation model were taken from the filed measurements and this data is validating to simulation model. The dynamic balancing as a solution leads to reduce vibration level and save bearing life. It is very important to investigate the dynamic stability and check the dynamic balancing for pumping units at the primary operation of the new stations as mentioned in the bidding
Numerical Investigation of Single Stage of an Axial Flow Compressor for Effec...IJERA Editor
In present work, a compressor configuration is taken from literature which will be studied for aspect ratio (ratio between length of blade to chord length) influence over performance. Performance in the sense is pressure ratio of compressor. The aspect ratio of the blade is an important parameter and has a strong influence on the performance of axial flow compressor. There are so many literatures available on influence of design parameters of axial flow compressor over its performance. Few literatures only are available for effects of aspect ratio of blade over performance of compressor. A study is proposed to be carried out to verify the effect of aspect ratio on the performance of single stage subsonic compressor through ANSYS-CFX software. The analysis will be carried out for the constant tip diameter of the compressor rotor blade having an aspect ratio 1, 2 and 3 and to obtain the pressure loss and flow parameters of the compressor stage. Further increase in aspect ratio will lead to structural problem of compressor. Therefore, there will be optimum aspect ratio between 2 and 3. Simulation will be conducted to aspect ratios of 2.1, 2.2, 2.3, 2.4, 2.5, 2.6, 2.7, 2.8 and 2.9 to find optimum ratio using ANSYS-CFX commercial CFD software.
Cavitation Effects in Centrifugal Pumps- A ReviewIJERA Editor
Cavitation is one of the most challenging fluid flow abnormalities leading to detrimental effects on both the
centrifugal pump flow behaviors and physical characteristics. Centrifugal pumps’ most low pressure zones are the
first cavitation victims, where cavitation manifests itself in form of pitting on the pump internal solid walls,
accompanied by noise and vibration, all leading to the pump hydraulic performance degradation. In the present
article, a general description of centrifugal pump performance and related parameters is presented. Based on the
literature survey, some light were shed on fundamental cavitation features; where different aspects relating to
cavitation in centrifugal pumps were briefly discussed.
International Journal of Engineering Research and Applications (IJERA) is an open access online peer reviewed international journal that publishes research and review articles in the fields of Computer Science, Neural Networks, Electrical Engineering, Software Engineering, Information Technology, Mechanical Engineering, Chemical Engineering, Plastic Engineering, Food Technology, Textile Engineering, Nano Technology & science, Power Electronics, Electronics & Communication Engineering, Computational mathematics, Image processing, Civil Engineering, Structural Engineering, Environmental Engineering, VLSI Testing & Low Power VLSI Design etc.
The two-phase flow through vertical transparent pipe is investigated
experimentally. The experimental rig designed to achieve the measurements of
pressure drop for various combinations of phases, flow pattern regimes such as
bubbly, slug and annular, with various range of water and air volumetric high speed
camera . The air volumetric ranged from 8.3334 L/min to 25 l/min, while the water
volumetric ranged from 5 l/min to 20 l/min and of 50 mm internal diameter along 1 m
length. The measured of the pressure will be done using four pressure sensors along
test pipe. The measured pressure values were used for different air volumetric and
different water volumetric. It has been found that the measuring of pressure gradient
through the distance of rig pipe are inversely changed with air volumetric. In
addition, it has been analyzed the flow pattern through obstruction, it has showed one
phase flow, bubbly and slug flow.
Influence of number of impeller and diffuser blades on the pressure recovery ...eSAT Journals
Abstract Impeller is a very important element in rotating devices to deliver energy to/from the fluid. The diffusers are essential for effective transformation of the kinetic power produced by the rotor in a centrifugal fan. Hence the flow in the impeller and diffuser passages is the important phenomenon in optimizing the performance. These impeller and diffuser flow passages are the most complex regions to predict the flow behavior. With the advanced development of Particle Image Velocimetry as well as convenient numerical CFD tools, it has become possible to reach at an accurate result well-matched with the real behavior of the flow. Hence, in this work moving mesh technique is used to get a numerical solution for the estimation of actual flow manner. Numerous research works have been done recently to get the physics of fluid flow through impeller and diffuser, both numerically and experimentally. But it is found from the literature that the study on the performance of the fan by changing the number of impeller and diffuser blades together in a combination has not been the emphasis of attention in these works. Hence a numerical analysis has been carried out in this paper to comprehensively lookout the fluid interaction in impeller-diffuser as well as to envisage the flow behavior of the fan by changing the number of impeller and diffuser blades together in combination. For the same number of impeller blades, it is found from the analysis that a higher static pressure rise coefficient is achieved at the outlet of the fan for smaller number of diffuser blades. It is also found that larger the number of impeller blades, larger is the static pressure rise coefficient for the same number of diffuser blades, hence performance gets improved. Key Words: Unsteady flow, Recirculation zone, Turbulence, Impeller vane, Diffuser vane, Static pressure rise.
Flow analysis of centrifugal pump using CFX solver and remedies for cavitatio...IJERA Editor
In this scholarly thesis pertinent to the working of centrifugal pump, a CFD solver namely CFX is employed in order to simulate fluid flow characteristics with well-defined constraints and boundary conditions defining the problem. Stringent solid model is meticulously prepared encompassing the present day usage and constructional features of a centrifugal pump and is constrained with various boundary conditions having fixed domain in order to evaluate plots and results. To spearhead and facilitate this analysis program a numerical approximation tool with high degree of convergence rate called ANSYS 15.0 software is used. The ASNYS software avoids tedious calculations presumably impending in the design procedure and uses ultimate numerical tool to approximate the solution of the partial differential equations associated with continuity, momentum and energy phases of a flow problem in a 3-D model. This exquisite feature of ANSYS enables designer to optimize the design procedure in an iterative manner based on the final plots of post-processing phase. In addition, the scholarly writing also constitutes the appraisal of the most debilitating and painstaking problem retarding the efficiency of the centrifugal pump known as cavitation. Possible remedies for overcoming this problem will be indirectly inferred from the various plots and figures derived from the post-processing phase of the design process.
Investigation of effect of pump rotational speed on performance and detection...Mustansiriyah University
Cavitation is an essential problem that occurs in any pump. It highly contributes to deteriorating the performance
of the pump. In industrial applications, it is important to detect and decrease the effect of the cavitation in pumps.
In this work, detecting and diagnosing the cavitation phenomenon within centrifugal pumps using vibration
technique was investigated. The results obtained for vibration signal in both time and frequency domains were
analysed in order to gain a better understanding about the detection of cavitation in the pumps in question. The
effect of different operating conditions including various flow rates and pump rotational speeds related to the
cavitation were measured. Different statistical features in time domain analysis (TDA) and also the Fast Fourier
Transform (FFT) technique for frequency domain analysis (FDA) were applied.
Similar to Numerical Investigation of Flow Field Behaviour and Pressure Fluctuations within an Axial Flow Pump under Transient Flow Pattern Based on CFD Analysis Method (20)
Automobile Management System Project Report.pdfKamal Acharya
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Numerical Investigation of Flow Field Behaviour and Pressure Fluctuations within an Axial Flow Pump under Transient Flow Pattern Based on CFD Analysis Method
1. Journal of Physics: Conference Series
PAPER • OPEN ACCESS
Numerical Investigation of Flow Field Behaviour and Pressure
Fluctuations within an Axial Flow Pump under Transient Flow Pattern
Based on CFD Analysis Method
To cite this article: Ahmed Ramadhan Al-Obaidi 2019 J. Phys.: Conf. Ser. 1279 012069
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Published under licence by IOP Publishing Ltd
First International Scientific Conference Al-Ayen University
IOP Conf. Series: Journal of Physics: Conf. Series 1279(2019) 012069
IOP Publishing
doi:10.1088/1742-6596/1279/1/012069
1
Numerical Investigation of Flow Field Behaviour and Pressure
Fluctuations within an Axial Flow Pump under Transient Flow
Pattern Based on CFD Analysis Method
Ahmed Ramadhan Al-Obaidi*
Department of Mechanical Engineering, Faculty of Engineering, Mustansiriyah University,
Baghdad, Iraq.
* E-mail: ahmedram@uomustansiriyah.edu.iq
Abstract: In this present work, CFD numerical method is applied to analyses the flow field in
an axial flow pump qualitative and quantitative analyses. Qualitative analysis for these
parameters comprise static pressure variations, dynamic pressure variations, velocity magnitude,
turbulent kinetic energy, shear stress. Quantitative analysis including the pressure fluctuations in
frequency domain analysis under different operation conditions. Also, sliding mesh method and
turbulence model type k- epsilon are used. Various monitoring points are stalled in order to
analyses pressure fluctuation mechanism in the impeller blade. The numerical results revealed
that the flow field for pressure and velocity are increase start from the suction side of the pump
to discharge side. Also, the results found that the high pressure occurs at the discharge side
along the axial direction of the impeller. The maximum value of pressure fluctuations is
occurred at tip blade region due to high interaction flow at this particular area. Moreover, the
pressure decreases as flow rate in the pump increases. Additionally, the results shown that the
pressure fluctuations have four peaks and four valleys the similar impeller blades number.
Furthermore, there are different positive and negative pressure regions, the negative pressure
area occurs due to lower pressure zone at inlet impeller area and hence which can lead to cause
occurrence of cavitation in this specific area. The current numerical demonstration results can
help the researches for further axial flow pump design.
1 Introduction
The axial pumps are broadly used in the different hydraulic engineering applications such as water treatment
systems, drainage, power plant and irrigation [1]. The flow within the pump was highly effected through various
parameters for example geometry of the pump, viscosity, turbulence and operations conditions [2-4]. When the
pump operate under unsteady flow that leads to generate high pressure fluctuation due the interaction and hence
induces more noise and vibration [5-6]. The highly computational development using computational fluid
dynamics methods can simulate and mimic different phenomenon and complex turbulent flows description in
pumps [7-9]. Many numerical and experimental studies were done to investigate the flow in the axial flow pump
such work carried out by Kang et al. [10] studied the characteristics of turbulent Flow inside the axial pump in
both reverse and direct modes. They found that the 15% pump head difference between the modes of reverse
and direct. These differences were occurred due to the hydraulic losses happened at both suction and discharge
pipes. Also, the results indicated the velocity magnitude in reverse mode was high than in direct mode. Xie et al.
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[11] numerically analysed the flow and pressure in the axial pump model. The results have shown that the
predictions of numerical simulation prototype model are similar pump model. Moreover, the pressure pulsation
amplitudes from numerical simulation were changed as flow changes in the pump in both high and low flow rate
operating conditions. As the flow rate decreased in pump the pressure fluctuations first reduce and after that
they increased. Aung et al. [12] also numerically investigated the flow in the axial flow pump. The results
revealed that the static pressure and velocity in the pump increase from the inlet of the pump to outlet. In
addition, the pressure was increased as guide vanes increase that leads to the pump head also increases. Li et al.
[13] studied the complex turbulent flow in the axial pump using CFD numerical calculations. They observed
that the incidence velocity at the impeller blade suction side wad lower than pressure side. Also, the results
shown that the recirculation appearance zone occurs at the impeller suction side closed to the leading edge.
Moreover, the pressure starts increase from the suction part to the pressure part. Shuai et al. [14] numerically
investigated the pressure fluctuations characteristics in the axial pump. They noticed that the dominant
frequencies were198Hz which equal four times the impeller rotation frequency at different impeller parts (inlet,
surface of impeller blade and outlet. Moreover, the results revealed that the minimum pressure fluctuation was
occurred at inlet impeller shroud and the maximum was at the centre between the shroud and impeller hub.
Manjunatha and Nataraj [15] analysed the flow in an axial pump impeller blade. Under the similar operation
conditions the numerical results of the pump performance compared with the experimental data. These results
indicated that the pump head was function of the flow rate. Also, the result shown that high recirculation flow
was happened near the blade suction side at low range of flow rates. The recirculation flow was decreased when
the flow rate increases in this area. Song and Liu [16] numerical analysed the effect of vortex flow in the axial
pump using CFD. They observed that the vortex location was occurred at the flare tube inlet near the low-
pressure region. Also, the results shown that the pressure fluctuation main frequency was twice higher than
impeller frequency. In this present study, to investigate the characteristics of flow field in an axial flow pump is
simulated using CFD method under different operating conditions. The numerical results was validated using
available experimental results. As a further analysis, transient numerical computational is carried out in order to
analyses the flow pattern in the pump qualitatively and quantitatively to offer deep insight into the flow field
such as static, dynamic and total pressures as well as velocity, turbulent kinetic energy and shear stress.
2 Pump Geometric Model
Computational numerical technique is used as an important method to capture and effectively visualise various
complicated turbulent flows inside the axial flow pump under different operating conditions. in this work, 3D of
axial flow pump is simulated using CFD technique. The computational model of the pump is achieved at the
transient conditions under a sliding mesh technique. All the numerical model including the axial impeller, inlet
and outlet pipes is depicted in Figure 1. To increase the numerical results accurately and to make ensure the
flow in the pipe is fully flow development the lengths of pipes are extended to 3 times the pipe diameter [17].
(a)
(b)
Figure 1: (a) Whole computational axial flow pump domain, (b) impeller axial pump
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2.1 Mesh Flow in Axial Pump Domain Model
The whole flow field including axial flow pump, inlet and outlet pipes are taken as the numerical computational
flow domain as shown in Figure 2. An unstructured grid mesh
scheme of meshing is applied with fine grid in
different pump parts. The mesh dependent test is used under different element cells including one, two and three
million and the all computational area has three million grids is used to analyses purpose due to it provides
accurate results. Moreover, two interfaces are formed between the stator and rotor (impeller).
(a)
(b)
Figure 2: Computational Meshing For all geometry including axial impeller inlet and outlet pipes
Governing Equations
The governing flow equations in turbulent incompressible are the unsteady 3-D Reynolds Average Navier-
Stokes (RANS) equations for the mass and momentum conservation define as [18]:
(1)
(2)
Where p and u represented the average pressure and the molecular viscosity. The Reynolds stress is .
2.2 Numerical Simulation Method Setup and Boundary Conditions
In order to simulate the interaction between the rotor-stator parts a sliding mesh technique (SMT) is applied as
mentioned above. Also, to mimic the boundary layers functions of standard wall are employed. For the turbulent
numerical simulation scheme of 2nd
order implicit is used. In time and space domains the governing equations
are discretized. The algorithm of SIMPLEC is adopted at each time step to solve the pressure and velocity
coupling. The boundary conditions at the inlet area is specified uniform axial velocity according to mass flow
rate for different run of numerical computation. At the outlet is specified outflow and assumed the flow is fully
developed flow. Moreover, the turbulence model of k-epsilon (k-ε) is used for calculating numerical simulation
in the pump. Three various time steps are selected to apply the independence test of time step in this numerical
study in order to get accurate results. Therefore, for analysis purpose the time step of 2.77778x10-4
sec is
chosen.
3 Experimental Axial Flow Pump Setup
To valid and compere the numerical results with experimental results, the loop system carried out by Mostafa et
al. [19] was selected. This test rig was consisting of from various equipment and instruments as displayed in
Table 1. The axial flow pump specifications are also summarised in Table 2 [19].
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Table 1: Test rig of the axial flow pump
Device Parameter Unit
Pressure transducer Pressure bar
Flow meter Flow rate (L/s)
Tachometer Speed (rpm)
Torque meter Force Newton' (N)
Voltmeter Voltage Volt (V)
Ammeter Current Ampere (A)
Table 2: Axial flow pump design specifications
Design
mass
flow
rate
Design
pump
speed
Impeller
blades
Number
Axial
impeller
diameter
Hub
impeller
diameter
Tip
impeller
diameter
Q N Z d dh dt
(l/min) (rpm) (-) (mm) (mm) (mm)
12.5 3000 4 101 50 102
4 Prediction of Validation the Numerical and Experimental Results
In this study, the overall pump performance is calculated using CFD technique. The results for the pressure
differences across the axial flow pump is validated with available experimental data as shown in Figure 3 under
different operating conditions. It can be clearly seen that the results are agreed well between them and the
maximum error is about 7.5%. Hence, from above figure it can be noticed that the numerical results using CFD
method can provide good accurately results in the axial pump.
Figure 3: Comparison and validation results between the numerical and experimental data
5 Results and Discussions
In order to understand the flow field in the pump a 3D of axial pump model is used by applied the CFD
numerical technique. A detailed discussion results of the pump characteristics are provided in the next sections.
5.1 Analysis the Static, Dynamic and Total Pressure Variations in the Pump
Figure 4 shows the static pressure in whole the axial pump, the operation conditions and design parameters are
used the impeller speed of 3000 rpm and flow rates are 5, 10, 12.5, 17.5 and 20 (l/min) respectively. Number of
impeller blades of 4, the outlet impeller diameters and hub 50 mm and 102mm. The numerical results indicated
that the minimum pressure take place at the suction side of an impeller and the maximum pressure occurs at the
discharge side of the impeller. Also, the pressure inside the pump increases from the inlet to outlet of the pump
along the axial flow direction as seen in this figure. Moreover, it can be clearly seen that the high pressure take
place near and closed to the tip impeller blade. The possible reasons behind that is due to the high interactions
between the water and the impeller blades as well as the between the tip blade and wall pipe.
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Q=5 (l/min) Q=10 (l/min) Q=12.5 (l/min) Q=17.5 (l/min) Q=20 (l/min)
Figure 4: Static pressure variations in the axial pump at various conditions
For further analysis in the pump, Figure 5 depicts the dynamic pressure variations in the axial pump at the same
various operation conditions in the previous figure. It can be seen that the maximum dynamic pressure happened
at the discharge of the pump near and after the impeller blades due to the high velocity and more interactions in
this especial area in the pump.
Q=5 (l/min) Q=10 (l/min) Q=12.5 (l/min) Q=17.5 (l/min) Q=20 (l/min)
Figure 5: Dynamic pressure variations in the axial pump at various conditions
Figure 6 depicts the total pressure variations in the pump. It can be seen that from this figure the total pressure
has approximately the same static pressure variations trend. The total pressure increases start from the suction
side to the discharge side along the axial flow directions. Moreover, it can be noticed that the total pressure
decreases as flow rate in the axial pump increase due to the hydraulic losses occur under high flow rate.
Q=5 (l/min) Q=10 (l/min) Q=12.5 (l/min) Q=17.5 (l/min) Q=20 (l/min)
Figure 6: Total pressure variations in the axial pump under various flow rates
For deep investigation in the pump, Figure 7 shows the static pressure variations at the middle cross section area
in the pump. It can be observed that the pressure changes in different pump parts. The high pressure
concentrates at the outlet of the pump (discharge section) and the maximum pressure take place closed to the tip
blades as expected. Also, the second high pressure region occurs near the outlet wall pipe at the discharge zone
for all cease under investigations. Furthermore, it can be notice that the pressure decreases when the flow rate
increases as expected. Based on the above analysis it can be concluded that the change range of flow rate in the
pump has high effect of the flow field analysis.
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Q=5 (l/min) Q=10 (l/min) Q=12.5 (l/min) Q=17.5 (l/min) Q=20 (l/min)
Figure 7: Static pressure variations in the middle cross-sectional area in the axial pump under different flow
rates
Also, Figure 8 depicts the static pressure variations in the middle cross-sectional region of the impeller blade
under different flow rates. It can be noticed that there are different high and low-pressure regions in the cross-
sectional area of the impeller blade. The maximum pressure region take place near the outlet of the impeller
blades closed to the tip blade as expected due to the high and more interactions in this region. Moreover, the
minimum pressure area occurs at the hub region due to the location of this area near the low-pressure zone in the
pump at the suction impeller blades.
Q=5 (l/min) Q=10 (l/min) Q=12.5 (l/min) Q=17.5 (l/min) Q=20 (l/min)
Figure 8: Static pressure variations in the middle cross-sectional area in impeller blade under various flow rates
Figure 9 illustrates the static pressure variations over the axial impeller. It can be clearly seen that the maximum
pressure take place at the outlet the impeller blade. Also, the minimum pressure at the inlet impeller hub.
Figure 9: Static pressure variations in the axial impeller.
To obtain more detailed information regarding the flow in the axial flow pump, Figure 10 depicts the velocity
magnitude, it can be seen that the velocity increases from the suction impeller side to the discharge side. Also,
due to the variations in velocity that leads to generates the local flow near the hub area the reason behind that is
due to the root clearance. In addition, it can be observed that the maximum velocity take place closed to the tip
blades for all ceases under investigations due to the high interactions region in this area as well as due to the
secondary flow and vortices. Moreover, the velocity variations in around the impeller is changed due to the high
complex axial impeller geometry. Furthermore, it can be seen that the velocity variations at the discharge side
and near the tip blades increase as flow rate in the pump increases.
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Q=5l/min Q=10l/min Q=12.5l/min Q=17.5l/min Q=20l/min
Figure 10: Velocity magnitude variations in the axial pump under various flow rates
For further analysis, Figure 11 demonstrated the turbulent kinetic energy variations in the axial pump. It can be
noticed that the high turbulent kinetic energy occurs near and around the impeller blades and the maximum
value of the turbulent kinetic energy is take placed closed the tip blades as expected. Furthermore, it can be
concluded that the high interaction in the pump play high impact on the flow field and it can be caused more
unstable flow and more vortexes and hence that leads to increase the noise and vibration in the pump due to
increase the pressure fluctuations near the tip blades regions.
Q=5 (l/min) Q=10 (l/min) Q=12.5 (l/min) Q=17.5 (l/min) Q=20 (l/min)
Figure 11: Turbulent kinetic energy variations in the axial pump under various conditions
Figure 12 depicts the shear stress variations in the axial pump. It can be seen that the analysis shear stress
variations can provide more information regarding the change in the pump. Again, it can be found that the
interactions have more effect on the shear stress in the pump. As expected the maximum value for the shear
stress occurs near the tip blades for all cases under investigations.
Q=5 (l/min) Q=10 (l/min) Q=12.5 (l/min) Q=17.5 (l/min) Q=20 (l/min)
Figure 12: Shear stress variations in the axial pump under different flow rates
5.2 Pressure Fluctuations Analysis at the Impeller Blade
The pressure fluctuation due to the high interaction between the rotor (impeller) and stator can cause more
fissures, blade cracking and that leads to increase the noise and vibration in the pump. Therefore, it is very
important to analyse this physical phenomenon. Various monitoring points are positioned in the blade of
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impeller in order to obtain more quantitative investigation. Figure 13 depicts the 25 monitoring points at
impeller blade in three regions.
Figure 13: Monitoring point distribution in the impeller blade
Figure 14 shows the different pressure fluctuations at the impeller blade for 25 monitoring points the operating
conditions pump speed chosen of 3000 rpm under various flow rates are 5, 7.5, 10, 12.5, 17.5 and 20 (l/min)
respectively. For analysis purpose, the monitoring point 1 is selected to investigate the pressure fluctuations in
the impeller blade. It can be observed that all the pressure fluctuations curves have peaks and four valleys with
the same impeller blades number. Also, Figure 15 depicts the average pressure at the monitoring point at various
flow rates. It can be notice that the pressure decreases when the flow rate in the pump increases and the
maximum value of average pressure is at flow rate of 5 (l/min).
Figure 14: Pressure fluctuations for the point 1 at various flow rates
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Figure 15: Average pressure for the point 1 at various flow rates in the pump
5.3 Pressure Fluctuations Analysis in the Blade of Impeller in Frequency Domain
The Fast Fourier Transform is used to transfer the pressure fluctuations from time domain analysis to the
frequency domain analysis. From using the FFT in this numerical work found that there are two important
frequencies such as rotational frequency (Rf) and related harmonics which can be calculated by below equation.
Rf = (N/60) (3)
Where, N represented the impeller rotational speed
The second important dominant frequency is Blade Passing Frequency which can be calculated as flowing:
BPF= (N/60) *Z (4)
Whjere, BPF is Blade Passing Frequency
Figure 16 shows the 3D plot figure of the pressure fluctuation amplitude with frequency spectra as well as its
harmonics for the monitoring points start from 1 to 8, corresponding to operation conditions of the axial flow
pump are 4 impeller blades, design flow rate of 12.5 (l/min), and pump speed of 3000 rpm. It can be found that
for entire the monitoring points the maximum amplitude of pressure fluctuations take place at dominated
rotational frequency (Rf) as well as its related harmonics. Moreover, the second dominated frequency is BPF as
expected. It can be noticed that the significant frequency spectra at the first harmonic for all monitoring points
under investigation. In addition, the numerical calculation results have observed that the deviation results
between the numerical transient results compared with results calculation by equation (3) for rotational
frequency (Rf) is around 7.4% as well as for the blade passing frequency is approximately 4.78%.
Figure 16: 3D frequency spectra domain at different monitoring points from 1 to 8
Also, Figure 17 depicts the 3D plot figure for the pressure fluctuations amplitudes against the frequency spectra
for the monitoring points between 9 to 21. It can be observed that the amplitude of pressure fluctuations have
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the same trend for all monitoring points under investigation. The amplitude of pressure fluctuations decreased
starts from the point 9 to 21. The numerical simulation results have revealed that the maximum amplitude of
pressure fluctuations happened at monitoring point 9 due to the effect of high interactions and location this
monitoring point at the discharge pressure near the tip blade. Furthermore, the minimum amplitude of pressure
fluctuations take place at point 21 the reason behind that is location this monitoring point at low pressure region.
Figure 17: 3D frequency spectra domain at the various monitoring points from 9 to 21.
Figure 18 illustrates the 3D for the pressure amplitude against the frequency spectra domain for the monitoring
points at the centre blade region from 22 to 25. It can be seen that the amplitude of pressure fluctuations
increase starts from the hub region to the outlet impeller blade. Also, the numerical results shown that the
maximum value pressure amplitude is at point 25 due to the location of this point is closed the tip blade area.
Figure 18: 3D frequency spectra domain at the points from 22 to 25.
6 Conclusions
1. It can be clearly seen that the numerical results are agreed well experimental data and the maximum
error is about 7.5%. Hence, the numerical results using CFD method can provide a good accurately
results.
2. The minimum pressure take place at the suction side of an impeller and the maximum pressure occurs at
the discharge side of the impeller.
3. The pressure inside the pump increases from the inlet to outlet of the pump along the axial flow
direction.
4. It can be clearly seen that the high pressure take place near and closed to the tip impeller blade.
5. The maximum dynamic pressure happened at the discharge of the pump near and after the impeller
blades due to the high velocity and more interactions.
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6. The total pressure decreases as flow rate in the axial pump increase due to the hydraulic losses occur
under high flow rate.
7. The minimum pressure area occurs at the hub region due to the location of this area near the low-
pressure zone in the pump at the suction impeller blades.
8. The velocity magnitude increases from the suction impeller side to the discharge side. Also, due to the
variations in velocity that leads to generates the local flow near the hub area.
9. The maximum amplitude of pressure fluctuations take place at dominated rotational frequency (Rf) as
well as its related harmonics. Moreover, the second dominated frequency is BPF
References
[1] Nelik, L. (1999). Centrifugal & Rotary Pumps: Fundamentals With Applications. CRC Press.
[2] Rabinowicz, W. (2006). Knowledge and inquiry: Essays on the pragmatism of Isaac Levi, 289.
[3] Moazami, N., Fukamachi, K., Kobayashi, M., Smedira, N. G., Hoercher, K. J., Massiello, A., ... & Starling,
R. C. (2013). The Journal of Heart and Lung Transplantation, 32(1), 1-11.
[4] Mancò, S., Nervegna, N., Lettini, A., & Gilardino, L. (2002). In Proceedings of the JFPS International
Symposium on Fluid Power (Vol. 2002, No. 5-1, pp. 251-258). The Japan Fluid Power System Society.
[5] Garay, P. N., & Scheuing, E. E. (1996). Pump application desk book.
[6] Nelik, L. (1999). Centrifugal & Rotary Pumps: Fundamentals With Applications. CRC Press.
[7] Al-Obaidi, A. (2018). (Doctoral dissertation, University of Huddersfield).
[8] Al-Obaidi, A., Pradhan, S., Asim, T., Mishra, R., & Zala, K. (2014). Numerical studies of the velocity
distribution within the volute of a centrifugal pump.
[9] Al-Obaidi, A. R. (2019). Journal of Applied Fluid Mechanics, 12(2), 445-459.
[10] Kang, C., Mao, N., Pan, C., & Zhou, Y. (2016). 19(4), 447-458.
[11] Xie, C., Tang, F., Zhang, R., Zhou, W., Zhang, W., & Yang, F. (2018). Advances in Mechanical
Engineering, 10(4), 1687814018769775.
[12] Aung Kyaw Soe, Zin Ei Win & Myat Myat Soe (2015). International Journal of Engineering and Applied
Sciences (IJEAS) ISSN: 2394-3661, Volume-2.
[13] Li, W. Y., Zhang, X. Y., Shuai, Z. J., Jiang, C. X., & Li, F. C. (2014). Advances in Mechanical
Engineering, 6, 521706.
[14] Shuai, Z. J., Li, W. Y., Zhang, X. Y., Jiang, C. X., & Li, F. C. (2014). Advances in Mechanical
Engineering, 6, 565061.
[15] Manjunatha & Nataraj J R (2015). International Journal of Engineering Researches and Management
Studies. 2(5), ISSN: 2394-7659.
[16] Song, X. J., & Liu, C. (2018, July) In IOP Conference Series: Earth and Environmental Science (Vol. 163,
No. 1, p. 012106). IOP Publishing.
[17] Brennen, C. E. (2011). Cambridge University Press.
[18] Zhang, D. S., Shi, W. D., Bin, C., & Guan, X. F. (2010). Journal of Hydrodynamics, Ser. B, 22(1), 35-43.
[19] Mostafa, N. H., & Mohamed, A. (2012) Journal of Applied Mechanical Engineering, 3(1), 1-6.