Optimal microchannel planar reactor as a switchable infrared absorber

This paper will propose methods to use leaf vasculature formations to advance a material to act as an infrared block. The research shows the use of microfluidics based flows to direct the structural assembly of a polymer into a thermally functional material. To manage IR radiation stop-band to lower...

Full description

Bibliographic Details
Main Author: Alston, Mark E.
Format: Article
Published: Cambridge University Press 2017
Online Access:https://eprints.nottingham.ac.uk/51936/
_version_ 1848798607538388992
author Alston, Mark E.
author_facet Alston, Mark E.
author_sort Alston, Mark E.
building Nottingham Research Data Repository
collection Online Access
description This paper will propose methods to use leaf vasculature formations to advance a material to act as an infrared block. The research shows the use of microfluidics based flows to direct the structural assembly of a polymer into a thermally functional material. To manage IR radiation stop-band to lower a polymer device phase transition temperature. This paper will determine this functionality by hierarchical multi microchannel network scaling, to regulate laminar flow rate by analysis as a resistor circuit. Nature uses vasculature formations to modulate irradiance absorption by laminar fluidic flow, for dehydration and autonomous self-healing surfaces as a photoactive system. This paper will focus specifically on pressure drop characterization, as a method of regulating fluidic flow. This approach will ultimately lead to desired morphology, in a functional material to enhance its ability to capture and store energy. The research demonstrates a resistor conduit network can define flow target resistance, that is determined by iterative procedure and validated by CFD. This algorithm approach, which generates multi microchannel optimization, is achieved through pressure equalization in diminishing flow pressure variation. This is functionality significant in achieving a flow parabolic profile, for a fully developed flow rate within conduit networks. Using precise hydrodynamics is the mechanism for thermal material characterization to act as a switchable IR absorber. This absorber uses switching of water flow as a thermal switching medium to regulate heat transport flow. The paper will define a microfluidic network as a resistor to enhance the visible transmission and solar modulation properties by microfluidics for transition temperature decrease.
first_indexed 2025-11-14T20:22:28Z
format Article
id nottingham-51936
institution University of Nottingham Malaysia Campus
institution_category Local University
last_indexed 2025-11-14T20:22:28Z
publishDate 2017
publisher Cambridge University Press
recordtype eprints
repository_type Digital Repository
spelling nottingham-519362020-05-04T18:29:23Z https://eprints.nottingham.ac.uk/51936/ Optimal microchannel planar reactor as a switchable infrared absorber Alston, Mark E. This paper will propose methods to use leaf vasculature formations to advance a material to act as an infrared block. The research shows the use of microfluidics based flows to direct the structural assembly of a polymer into a thermally functional material. To manage IR radiation stop-band to lower a polymer device phase transition temperature. This paper will determine this functionality by hierarchical multi microchannel network scaling, to regulate laminar flow rate by analysis as a resistor circuit. Nature uses vasculature formations to modulate irradiance absorption by laminar fluidic flow, for dehydration and autonomous self-healing surfaces as a photoactive system. This paper will focus specifically on pressure drop characterization, as a method of regulating fluidic flow. This approach will ultimately lead to desired morphology, in a functional material to enhance its ability to capture and store energy. The research demonstrates a resistor conduit network can define flow target resistance, that is determined by iterative procedure and validated by CFD. This algorithm approach, which generates multi microchannel optimization, is achieved through pressure equalization in diminishing flow pressure variation. This is functionality significant in achieving a flow parabolic profile, for a fully developed flow rate within conduit networks. Using precise hydrodynamics is the mechanism for thermal material characterization to act as a switchable IR absorber. This absorber uses switching of water flow as a thermal switching medium to regulate heat transport flow. The paper will define a microfluidic network as a resistor to enhance the visible transmission and solar modulation properties by microfluidics for transition temperature decrease. Cambridge University Press 2017-01-26 Article PeerReviewed Alston, Mark E. (2017) Optimal microchannel planar reactor as a switchable infrared absorber. MRS Advances, 2 (14). pp. 783-789. ISSN 2059-8521 https://www.cambridge.org/core/journals/mrs-advances/article/optimal-microchannel-planar-reactor-as-a-switchable-infrared-absorber/C802DDA9F034229964324A379C822EA5# doi:10.1557/adv.2017.112 doi:10.1557/adv.2017.112
spellingShingle Alston, Mark E.
Optimal microchannel planar reactor as a switchable infrared absorber
title Optimal microchannel planar reactor as a switchable infrared absorber
title_full Optimal microchannel planar reactor as a switchable infrared absorber
title_fullStr Optimal microchannel planar reactor as a switchable infrared absorber
title_full_unstemmed Optimal microchannel planar reactor as a switchable infrared absorber
title_short Optimal microchannel planar reactor as a switchable infrared absorber
title_sort optimal microchannel planar reactor as a switchable infrared absorber
url https://eprints.nottingham.ac.uk/51936/
https://eprints.nottingham.ac.uk/51936/
https://eprints.nottingham.ac.uk/51936/