Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Aerodynamic Analysis on the Effects of Frontal Deflector on a Truck by using Ansys Software

View through CrossRef
The main causes of aerodynamic drag for automotive vehicles are the flow separation at the rear end of the vehicles. By reducing the drag force, it is possible to increase the fuel economy. Aerodynamic component i.e. Frontal Deflectors (FD) commonly used on trucks to prevent the flow separation. Frontal Deflectors themselves do create the drag, but they also reduce drags by preventing flow separation at downstream. The main aim of this paper is to quantify the effect of frontal deflectors on improving trucks aerodynamics. In this study, the simulation were ran for 6 different shapes of FD which acquires different height and different placement of FD that is mounted on the truck from the frontal roof by using ANSYS Fluent software. The design of the truck has been done in SOLIDWORK 2018 and the same design is used for analysis in ANSYS (Fluent). The two equation models used in this study are ????????− ???????? with applying the Reynolds-averaged Navier Stokes (RANS) equations for the behaviour of fluid flow around the truck. The Reynolds number used is ???????????????? = 1.1 × 106. Based on the result, all the FD’s resulted in reduction of ????????????????. The drag coefficient of all FD models differs. The velocity streamline acquired is different between the Frontal Deflector models mounted on the truck and the flow structure and vortex formation differs in various pattern formation. FD 4 produces the least value of drag. Hence, the efficiency of the truck improves. Therefore, FD 4 is the best model as the ???????????????? acquired is 0.508 with the height (15 mm) and placement of (230 mm) is the best FD to be used on a truck. Consequently, the drag reduction percentage of FD 4 compared to the truck without a FD is 32.2%.
Title: Aerodynamic Analysis on the Effects of Frontal Deflector on a Truck by using Ansys Software
Description:
The main causes of aerodynamic drag for automotive vehicles are the flow separation at the rear end of the vehicles.
By reducing the drag force, it is possible to increase the fuel economy.
Aerodynamic component i.
e.
Frontal Deflectors (FD) commonly used on trucks to prevent the flow separation.
Frontal Deflectors themselves do create the drag, but they also reduce drags by preventing flow separation at downstream.
The main aim of this paper is to quantify the effect of frontal deflectors on improving trucks aerodynamics.
In this study, the simulation were ran for 6 different shapes of FD which acquires different height and different placement of FD that is mounted on the truck from the frontal roof by using ANSYS Fluent software.
The design of the truck has been done in SOLIDWORK 2018 and the same design is used for analysis in ANSYS (Fluent).
The two equation models used in this study are ????????− ???????? with applying the Reynolds-averaged Navier Stokes (RANS) equations for the behaviour of fluid flow around the truck.
The Reynolds number used is ???????????????? = 1.
1 × 106.
Based on the result, all the FD’s resulted in reduction of ????????????????.
The drag coefficient of all FD models differs.
The velocity streamline acquired is different between the Frontal Deflector models mounted on the truck and the flow structure and vortex formation differs in various pattern formation.
FD 4 produces the least value of drag.
Hence, the efficiency of the truck improves.
Therefore, FD 4 is the best model as the ???????????????? acquired is 0.
508 with the height (15 mm) and placement of (230 mm) is the best FD to be used on a truck.
Consequently, the drag reduction percentage of FD 4 compared to the truck without a FD is 32.
2%.

Related Results

Aerodynamic Drag Reduction in Commercial Vehicle Using CFD-Based Design Optimisation
Aerodynamic Drag Reduction in Commercial Vehicle Using CFD-Based Design Optimisation
Background The aerodynamics of commercial vehicles is complex. The bluff body of a truck creates complex airflow patterns and induces drag. Numerous researchers have concentrated o...
Hydatid Disease of The Brain Parenchyma: A Systematic Review
Hydatid Disease of The Brain Parenchyma: A Systematic Review
Abstarct Introduction Isolated brain hydatid disease (BHD) is an extremely rare form of echinococcosis. A prompt and timely diagnosis is a crucial step in disease management. This ...
Interacting FDOs for Secure Processes
Interacting FDOs for Secure Processes
In modern industry, administration and research there are many processes that involve distributed actors needing to securely create, update and manage information. Typical examples...
Effect of the Structure of Flow Deflector on Ignition and Flame Shape of The Centrally Staged Combustor
Effect of the Structure of Flow Deflector on Ignition and Flame Shape of The Centrally Staged Combustor
Abstract Centrally staged premixed is a practical method to reduce NOx emission in aero-engines. Previous research has demonstrated that the flow inside the combusto...
Long‐term frontal sinus patency after endoscopic frontal sinusotomy
Long‐term frontal sinus patency after endoscopic frontal sinusotomy
AbstractBackground:The frontal recess is the drainage pathway that connects the frontal sinus to the anterior ethmoid sinus. Mechanical obstruction is the primary cause of chronic ...
Numerical Study on the Influence of Torque Performance Caused by Deflectors on Darrieus Wind Turbines
Numerical Study on the Influence of Torque Performance Caused by Deflectors on Darrieus Wind Turbines
This paper investigates the effects on the torque performance caused by deflectors of the Darrieus turbine. Various deflectors were placed in front of the turbine and disrupted the...
CFD Simulation of Aerodynamics Truck Using Cylinder as Drag Reduction Device
CFD Simulation of Aerodynamics Truck Using Cylinder as Drag Reduction Device
Reducing drag is an excellent approach to improving truck efficiency and saving fuel. The addition of the cylinder could be an alternative for drag reduction devices like the winds...
A wire electronic discharge machine saddle-type deflector for electron beam lithography systems
A wire electronic discharge machine saddle-type deflector for electron beam lithography systems
A new type of magnetic deflector [wire electron discharge machine (EDM) deflector] has been constructed for our gaussian round beam exposure system. To optimize the design of conve...

Back to Top