3D Printed Structured Porous Treatments for Flow Control around a Circular Cylinder
The use of porous coatings is one of the passive flow control methods used to reduce turbulence, noise and vibrations generated due to fluid flow. Porous coatings for flow stabilization have potential for a light-weight, cost-effective, and customizable solution. The design and performance of a stru...
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2020-08-01
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doaj-0e751e3058f34c75bffa98d779ff06812020-11-25T03:19:33ZengMDPI AGFluids2311-55212020-08-01513613610.3390/fluids50301363D Printed Structured Porous Treatments for Flow Control around a Circular CylinderPranjal Bathla0John Kennedy1Department of Mechanical and Manufacturing Engineering, Trinity College Dublin, D02 PN40 Dublin, IrelandDepartment of Mechanical and Manufacturing Engineering, Trinity College Dublin, D02 PN40 Dublin, IrelandThe use of porous coatings is one of the passive flow control methods used to reduce turbulence, noise and vibrations generated due to fluid flow. Porous coatings for flow stabilization have potential for a light-weight, cost-effective, and customizable solution. The design and performance of a structured porous coating depend on multiple control parameters like lattice size, strut thickness, lattice structure/geometry, etc. This study investigated the suitability of MSLA 3D printers to manufacture porous coatings based on unit cell designs to optimize porous lattices for flow control behind a cylinder. The Reynolds number used was <inline-formula><math display="inline"><semantics><mrow><mn>6.1</mn><mo>×</mo><msup><mn>10</mn><mn>4</mn></msup></mrow></semantics></math></inline-formula>–<inline-formula><math display="inline"><semantics><mrow><mn>1.5</mn><mo>×</mo><msup><mn>10</mn><mn>5</mn></msup></mrow></semantics></math></inline-formula> and the flow measurements were taken using a hotwire probe. Different experiment sets were conducted for single cylinder with varying control parameters to achieve best performing lattice designs. It was found that lattice structures with higher porosity produced lower turbulence intensity in the wake of the cylinder. However, for constant porosity lattice structures, there was negligible difference in turbulence and mean wake velocity levels. Coating thickness did not have a linear relationship with turbulence reduction, suggesting an optimal thickness value. For constant porosity coatings, cell count in coating thickness did not influence the turbulence or mean wake velocity. Partial coating designs like helical and spaced coatings had comparable performance to that of a full coating. MSLA printers were found capable of manufacturing thin and complex porous lattices.https://www.mdpi.com/2311-5521/5/3/136porous coatingcircular cylinderMSLA 3D printingflow controlturbulencenoise control |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Pranjal Bathla John Kennedy |
spellingShingle |
Pranjal Bathla John Kennedy 3D Printed Structured Porous Treatments for Flow Control around a Circular Cylinder Fluids porous coating circular cylinder MSLA 3D printing flow control turbulence noise control |
author_facet |
Pranjal Bathla John Kennedy |
author_sort |
Pranjal Bathla |
title |
3D Printed Structured Porous Treatments for Flow Control around a Circular Cylinder |
title_short |
3D Printed Structured Porous Treatments for Flow Control around a Circular Cylinder |
title_full |
3D Printed Structured Porous Treatments for Flow Control around a Circular Cylinder |
title_fullStr |
3D Printed Structured Porous Treatments for Flow Control around a Circular Cylinder |
title_full_unstemmed |
3D Printed Structured Porous Treatments for Flow Control around a Circular Cylinder |
title_sort |
3d printed structured porous treatments for flow control around a circular cylinder |
publisher |
MDPI AG |
series |
Fluids |
issn |
2311-5521 |
publishDate |
2020-08-01 |
description |
The use of porous coatings is one of the passive flow control methods used to reduce turbulence, noise and vibrations generated due to fluid flow. Porous coatings for flow stabilization have potential for a light-weight, cost-effective, and customizable solution. The design and performance of a structured porous coating depend on multiple control parameters like lattice size, strut thickness, lattice structure/geometry, etc. This study investigated the suitability of MSLA 3D printers to manufacture porous coatings based on unit cell designs to optimize porous lattices for flow control behind a cylinder. The Reynolds number used was <inline-formula><math display="inline"><semantics><mrow><mn>6.1</mn><mo>×</mo><msup><mn>10</mn><mn>4</mn></msup></mrow></semantics></math></inline-formula>–<inline-formula><math display="inline"><semantics><mrow><mn>1.5</mn><mo>×</mo><msup><mn>10</mn><mn>5</mn></msup></mrow></semantics></math></inline-formula> and the flow measurements were taken using a hotwire probe. Different experiment sets were conducted for single cylinder with varying control parameters to achieve best performing lattice designs. It was found that lattice structures with higher porosity produced lower turbulence intensity in the wake of the cylinder. However, for constant porosity lattice structures, there was negligible difference in turbulence and mean wake velocity levels. Coating thickness did not have a linear relationship with turbulence reduction, suggesting an optimal thickness value. For constant porosity coatings, cell count in coating thickness did not influence the turbulence or mean wake velocity. Partial coating designs like helical and spaced coatings had comparable performance to that of a full coating. MSLA printers were found capable of manufacturing thin and complex porous lattices. |
topic |
porous coating circular cylinder MSLA 3D printing flow control turbulence noise control |
url |
https://www.mdpi.com/2311-5521/5/3/136 |
work_keys_str_mv |
AT pranjalbathla 3dprintedstructuredporoustreatmentsforflowcontrolaroundacircularcylinder AT johnkennedy 3dprintedstructuredporoustreatmentsforflowcontrolaroundacircularcylinder |
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