Identification of gas flow regimes in adiabatic microtubes by means of wall temperature measurements

There exists the laminar flow, transitional flow, turbulent flow and choked flow regimes in a microtube gas flow. Development of a non-invasive identification method of the flow regimes within a microdevice is expected. This paper demonstrated how the internal gas flow regimes can be identified by m...

Full description

Bibliographic Details
Main Authors: Kashiwagi, R., Hong, C., Asako, Y., Morini, G. L., Faghri, M.
Format: Conference or Workshop Item
Language:English
Published: 2020
Subjects:
Online Access:http://eprints.utm.my/92465/1/YAsako2020_IdentificationofGasFlowRegimesinAdiabaticMicrotubes.pdf
_version_ 1796865430101426176
author Kashiwagi, R.
Hong, C.
Asako, Y.
Morini, G. L.
Faghri, M.
author_facet Kashiwagi, R.
Hong, C.
Asako, Y.
Morini, G. L.
Faghri, M.
author_sort Kashiwagi, R.
collection ePrints
description There exists the laminar flow, transitional flow, turbulent flow and choked flow regimes in a microtube gas flow. Development of a non-invasive identification method of the flow regimes within a microdevice is expected. This paper demonstrated how the internal gas flow regimes can be identified by measuring the distribution of the external wall temperature of the microchannel along the flow direction. A series of experiments were conducted by using nitrogen as working fluid through a stainless steel micro-tube with an inner diameter of 523 μm and a fused silica micro-tube having a diameter of 320 μm. The experiments were performed by fixing the back pressure at the exit of the microchannel at the atmospheric value and by varying the inlet pressure in order to modify the gas flow regime. In order to measure the external wall temperature along the microtube, two or three bare type-K thermocouples with a diameter of 50 μm were attached to the micro-tube external surface by using a high conductivity epoxy. In the case of the microtube having a diameter of 523 μm, local pressures were measured at three local pressure ports along the microtube. The pressure ports were placed on the opposite side of the tube wall where three thermocouples were attached. The microtube external wall was thermally insulated with foamed polystyrene to prevent heat gain or loss from the surrounding. The experimental results show that the wall temperature decreases in the laminar flow regime, increases in the transitional flow regime, decreases in the turbulent flow regime and it stays nearly constants in the choked flow regime. The behavior of the average Fanning friction factor and the local Mach number can be explained by identifying the flow regime. It is clarified that the microtube external wall temperature is a reliable indicator of the flow regime.
first_indexed 2024-03-05T20:56:52Z
format Conference or Workshop Item
id utm.eprints-92465
institution Universiti Teknologi Malaysia - ePrints
language English
last_indexed 2024-03-05T20:56:52Z
publishDate 2020
record_format dspace
spelling utm.eprints-924652021-09-30T15:11:47Z http://eprints.utm.my/92465/ Identification of gas flow regimes in adiabatic microtubes by means of wall temperature measurements Kashiwagi, R. Hong, C. Asako, Y. Morini, G. L. Faghri, M. T Technology (General) There exists the laminar flow, transitional flow, turbulent flow and choked flow regimes in a microtube gas flow. Development of a non-invasive identification method of the flow regimes within a microdevice is expected. This paper demonstrated how the internal gas flow regimes can be identified by measuring the distribution of the external wall temperature of the microchannel along the flow direction. A series of experiments were conducted by using nitrogen as working fluid through a stainless steel micro-tube with an inner diameter of 523 μm and a fused silica micro-tube having a diameter of 320 μm. The experiments were performed by fixing the back pressure at the exit of the microchannel at the atmospheric value and by varying the inlet pressure in order to modify the gas flow regime. In order to measure the external wall temperature along the microtube, two or three bare type-K thermocouples with a diameter of 50 μm were attached to the micro-tube external surface by using a high conductivity epoxy. In the case of the microtube having a diameter of 523 μm, local pressures were measured at three local pressure ports along the microtube. The pressure ports were placed on the opposite side of the tube wall where three thermocouples were attached. The microtube external wall was thermally insulated with foamed polystyrene to prevent heat gain or loss from the surrounding. The experimental results show that the wall temperature decreases in the laminar flow regime, increases in the transitional flow regime, decreases in the turbulent flow regime and it stays nearly constants in the choked flow regime. The behavior of the average Fanning friction factor and the local Mach number can be explained by identifying the flow regime. It is clarified that the microtube external wall temperature is a reliable indicator of the flow regime. 2020 Conference or Workshop Item PeerReviewed application/pdf en http://eprints.utm.my/92465/1/YAsako2020_IdentificationofGasFlowRegimesinAdiabaticMicrotubes.pdf Kashiwagi, R. and Hong, C. and Asako, Y. and Morini, G. L. and Faghri, M. (2020) Identification of gas flow regimes in adiabatic microtubes by means of wall temperature measurements. In: 7th UIT Heat Transfer Conference and Symposium Refrigerants: Heat Transferand Applications, 24 - 26 June 2019, Padova, Italy. http://dx.doi.org/10.1088/1742-6596/1599/1/0120193
spellingShingle T Technology (General)
Kashiwagi, R.
Hong, C.
Asako, Y.
Morini, G. L.
Faghri, M.
Identification of gas flow regimes in adiabatic microtubes by means of wall temperature measurements
title Identification of gas flow regimes in adiabatic microtubes by means of wall temperature measurements
title_full Identification of gas flow regimes in adiabatic microtubes by means of wall temperature measurements
title_fullStr Identification of gas flow regimes in adiabatic microtubes by means of wall temperature measurements
title_full_unstemmed Identification of gas flow regimes in adiabatic microtubes by means of wall temperature measurements
title_short Identification of gas flow regimes in adiabatic microtubes by means of wall temperature measurements
title_sort identification of gas flow regimes in adiabatic microtubes by means of wall temperature measurements
topic T Technology (General)
url http://eprints.utm.my/92465/1/YAsako2020_IdentificationofGasFlowRegimesinAdiabaticMicrotubes.pdf
work_keys_str_mv AT kashiwagir identificationofgasflowregimesinadiabaticmicrotubesbymeansofwalltemperaturemeasurements
AT hongc identificationofgasflowregimesinadiabaticmicrotubesbymeansofwalltemperaturemeasurements
AT asakoy identificationofgasflowregimesinadiabaticmicrotubesbymeansofwalltemperaturemeasurements
AT morinigl identificationofgasflowregimesinadiabaticmicrotubesbymeansofwalltemperaturemeasurements
AT faghrim identificationofgasflowregimesinadiabaticmicrotubesbymeansofwalltemperaturemeasurements