Investigation of Bio-Inspired Pin Geometries for Heat Transfer Applications

Array of circular cylindrical pins or tubes are one of the most widely used type of convection cooling systems, profoundly used in the internal cooling of gas turbine blades. They promote heat transfer due to flow acceleration, secondary flows and wake shedding, at the expense of large pressure loss...

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Main Author: Prasad, Anish
Other Authors: 2393240
Format: Text
Language:unknown
Published: Scholarly Commons 2021
Subjects:
Online Access:https://commons.erau.edu/edt/589
https://commons.erau.edu/context/edt/article/1600/viewcontent/Prasad_Anish_2021_04_30.pdf
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spelling ftembryriddleaun:oai:commons.erau.edu:edt-1600 2024-09-15T18:10:40+00:00 Investigation of Bio-Inspired Pin Geometries for Heat Transfer Applications Prasad, Anish 2393240 2021-05-01T07:00:00Z application/pdf https://commons.erau.edu/edt/589 https://commons.erau.edu/context/edt/article/1600/viewcontent/Prasad_Anish_2021_04_30.pdf unknown Scholarly Commons https://commons.erau.edu/edt/589 https://commons.erau.edu/context/edt/article/1600/viewcontent/Prasad_Anish_2021_04_30.pdf Doctoral Dissertations and Master's Theses bio-inspired pin geometries heat transfer Aerospace Engineering Structures and Materials text 2021 ftembryriddleaun 2024-06-25T14:15:14Z Array of circular cylindrical pins or tubes are one of the most widely used type of convection cooling systems, profoundly used in the internal cooling of gas turbine blades. They promote heat transfer due to flow acceleration, secondary flows and wake shedding, at the expense of large pressure loss and unsteadiness in the flow. The need to reduce pressure loss and maintain the heat transfer rates are a much needed requirement for a variety of industries to improve the cooling efficiency. One such prominent line of research is conducted on optimizing the design of the circular cylindrical pins to increase their cooling performance. Bio-mimicked harbor seal whisker have been studied from an aerodynamic standpoint, due to their ability to reduce drag and flow unsteadiness. While applying this mimicked geometry in thermal management research, it was found that they lead to reduction in cooling system pumping power requirements, with the potential to maintain heat transfer performance. The seal whisker geometry consists of streamwise and spanwise undulations which reduce the size of the wake and coherent structures shed from the body; a result of an added component of streamwise vorticity along the pin surface. In addition, the vortex shedding frequency becomes less pronounced, leading to significantly reduced lateral loading on the modified cylinder. These whisker geometries are studied for their aero behavior but not from a thermal performance stand point. Hence the main objective of this study is to understand and utilize different flow physics of these whisker geometries in a wall bounded configuration. Computational studies have shown that the modified wake and vortex shedding structures resulting from the geometry tend to reduce the total pressure loss throughout the system without significantly degrading the cooling levels and experimental results agree with these findings. In comparison to a conventional elliptical pin the bio pins have an increase in thermal performance at constant pressure drop by 9% and ... Text harbor seal Embry-Riddle Aeronautical University: ERAU Scholarly Commons
institution Open Polar
collection Embry-Riddle Aeronautical University: ERAU Scholarly Commons
op_collection_id ftembryriddleaun
language unknown
topic bio-inspired
pin geometries
heat transfer
Aerospace Engineering
Structures and Materials
spellingShingle bio-inspired
pin geometries
heat transfer
Aerospace Engineering
Structures and Materials
Prasad, Anish
Investigation of Bio-Inspired Pin Geometries for Heat Transfer Applications
topic_facet bio-inspired
pin geometries
heat transfer
Aerospace Engineering
Structures and Materials
description Array of circular cylindrical pins or tubes are one of the most widely used type of convection cooling systems, profoundly used in the internal cooling of gas turbine blades. They promote heat transfer due to flow acceleration, secondary flows and wake shedding, at the expense of large pressure loss and unsteadiness in the flow. The need to reduce pressure loss and maintain the heat transfer rates are a much needed requirement for a variety of industries to improve the cooling efficiency. One such prominent line of research is conducted on optimizing the design of the circular cylindrical pins to increase their cooling performance. Bio-mimicked harbor seal whisker have been studied from an aerodynamic standpoint, due to their ability to reduce drag and flow unsteadiness. While applying this mimicked geometry in thermal management research, it was found that they lead to reduction in cooling system pumping power requirements, with the potential to maintain heat transfer performance. The seal whisker geometry consists of streamwise and spanwise undulations which reduce the size of the wake and coherent structures shed from the body; a result of an added component of streamwise vorticity along the pin surface. In addition, the vortex shedding frequency becomes less pronounced, leading to significantly reduced lateral loading on the modified cylinder. These whisker geometries are studied for their aero behavior but not from a thermal performance stand point. Hence the main objective of this study is to understand and utilize different flow physics of these whisker geometries in a wall bounded configuration. Computational studies have shown that the modified wake and vortex shedding structures resulting from the geometry tend to reduce the total pressure loss throughout the system without significantly degrading the cooling levels and experimental results agree with these findings. In comparison to a conventional elliptical pin the bio pins have an increase in thermal performance at constant pressure drop by 9% and ...
author2 2393240
format Text
author Prasad, Anish
author_facet Prasad, Anish
author_sort Prasad, Anish
title Investigation of Bio-Inspired Pin Geometries for Heat Transfer Applications
title_short Investigation of Bio-Inspired Pin Geometries for Heat Transfer Applications
title_full Investigation of Bio-Inspired Pin Geometries for Heat Transfer Applications
title_fullStr Investigation of Bio-Inspired Pin Geometries for Heat Transfer Applications
title_full_unstemmed Investigation of Bio-Inspired Pin Geometries for Heat Transfer Applications
title_sort investigation of bio-inspired pin geometries for heat transfer applications
publisher Scholarly Commons
publishDate 2021
url https://commons.erau.edu/edt/589
https://commons.erau.edu/context/edt/article/1600/viewcontent/Prasad_Anish_2021_04_30.pdf
genre harbor seal
genre_facet harbor seal
op_source Doctoral Dissertations and Master's Theses
op_relation https://commons.erau.edu/edt/589
https://commons.erau.edu/context/edt/article/1600/viewcontent/Prasad_Anish_2021_04_30.pdf
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