The characterization of a low-profile channel–confined jet for targeted hot-spot cooling in microfluidic applications. (October 2016)
- Record Type:
- Journal Article
- Title:
- The characterization of a low-profile channel–confined jet for targeted hot-spot cooling in microfluidic applications. (October 2016)
- Main Title:
- The characterization of a low-profile channel–confined jet for targeted hot-spot cooling in microfluidic applications
- Authors:
- Waddell, A.M.
Punch, J.
Stafford, J.
Jeffers, N. - Abstract:
- Highlights: A low profile, inclined, impinging jet was created within a channel. PIV experiments were used to visualise the jet fluid flow. IR thermography experiments were used to measure local heat transfer coefficient. Area averaged heat transfer coefficient was improved 495%. Nusselt-Reynolds scaling showed similarity with that of normally impinging jets. Abstract: Photonics Integrated Circuits (PICs) are the backbone of the optical-fiber networks that enable high-speed communication on a global scale. Contemporary devices contain laser-bars ( ∼ μ m length-scale) which must be controlled within ± 0.1 K, and are capable of generating heat fluxes ∼ 1 kW/m 2 . This represents one of the highest heat fluxes found in nature or engineering applications, and the thermal challenge places a limitation on the density of laser-bar arrays on an individual chip. Chip-integrated μ fluidic cooling has been proposed for the thermal management of next-generation PICs to create more energy efficient devices, capable of greater data throughput. Jet impingements are of interest as the primary heat exchangers in this system due to the large heat transfer rates that can be achieved. The objective of this work is to generate a novel, low profile jet impingement within an individual channel suitable for targeting hot-spots in a densely packed circuit, at the low Reynolds numbers prevalent in micro-fluidic applications (Re < 500). To this end, two experiments were performed to non-invasivelyHighlights: A low profile, inclined, impinging jet was created within a channel. PIV experiments were used to visualise the jet fluid flow. IR thermography experiments were used to measure local heat transfer coefficient. Area averaged heat transfer coefficient was improved 495%. Nusselt-Reynolds scaling showed similarity with that of normally impinging jets. Abstract: Photonics Integrated Circuits (PICs) are the backbone of the optical-fiber networks that enable high-speed communication on a global scale. Contemporary devices contain laser-bars ( ∼ μ m length-scale) which must be controlled within ± 0.1 K, and are capable of generating heat fluxes ∼ 1 kW/m 2 . This represents one of the highest heat fluxes found in nature or engineering applications, and the thermal challenge places a limitation on the density of laser-bar arrays on an individual chip. Chip-integrated μ fluidic cooling has been proposed for the thermal management of next-generation PICs to create more energy efficient devices, capable of greater data throughput. Jet impingements are of interest as the primary heat exchangers in this system due to the large heat transfer rates that can be achieved. The objective of this work is to generate a novel, low profile jet impingement within an individual channel suitable for targeting hot-spots in a densely packed circuit, at the low Reynolds numbers prevalent in micro-fluidic applications (Re < 500). To this end, two experiments were performed to non-invasively observe the velocity field and local heat transfer in a square miniature channel containing a curved orifice-plate to manipulate the fluid flow. A range of Reynolds numbers (channel Re = 100 − 200) and obstruction opening area ratios ( β = 0.2 − 0.5) were investigated through Particle-Image Velocimetry and infrared thermography of a Joule-heated foil. The velocimetry data showed that the curved orifice-plate geometry successfully generated an inclined jet within the channel, and maximum improvements in the area-averaged heat transfer coefficient of 495% (relative to a channel containing no obstruction) were measured. The heat transfer data showed Nu ∼ Re 0.59 scaling, similar to that of a micro-fluidic array of normally impinging jets, and this physical relationship is beneficial in the design and modeling of μ fluidic cooling systems. The findings illustrate the impact of a channel confined jet on spatial heat transport, and demonstrate the potential for controlled heat transfer enhancement using unconventional obstructions within laminar channel flows. … (more)
- Is Part Of:
- International journal of heat and mass transfer. Volume 101(2016:Oct.)
- Journal:
- International journal of heat and mass transfer
- Issue:
- Volume 101(2016:Oct.)
- Issue Display:
- Volume 101 (2016)
- Year:
- 2016
- Volume:
- 101
- Issue Sort Value:
- 2016-0101-0000-0000
- Page Start:
- 620
- Page End:
- 628
- Publication Date:
- 2016-10
- Subjects:
- Laminar flow -- Liquid cooling -- Inclined -- Jet -- PIV -- Joule heated foil
Heat -- Transmission -- Periodicals
Mass transfer -- Periodicals
Chaleur -- Transmission -- Périodiques
Transfert de masse -- Périodiques
Electronic journals
621.4022 - Journal URLs:
- http://www.sciencedirect.com/science/journal/00179310 ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1016/j.ijheatmasstransfer.2016.04.108 ↗
- Languages:
- English
- ISSNs:
- 0017-9310
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 4542.280000
British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 7387.xml