Title :
Microstructured Arrayed Microfluidic Waveguide Structure for Infrared Radiation Focusing and Transfer
Author :
Laursen, Paul B. ; Alameh, Kamal ; Vasiliev, Mikhail ; Elliott, Nicholas C R
Abstract :
A microstructured arrayed microfluidic waveguide structure for infrared radiation focussing and transfer is proposed and demonstrated. The arrayed waveguide structure comprises Masterbond UV-curable epoxy UV15 optimised using ZEMAX optical design software to achieve high efficiency of heat capture through far-infrared light focussing and subsequent absorption of the radiation on a centralised fluid medium. A high degree of alignment of the precision-positioned fluidic microchannels with the symmetry axes and the focal plane locations of the cylindrical microlens array is demonstrated, which maximises the efficiency of absorption of the incident IR light energy within the moving fluid. Observation of ink flows through the initial device prototype confirms the suitability of our microfluidic channel fabrication technology for the transfer of far-infrared light (heat) transfer. This microstructured arrayed waveguide structure has application for development of a textile fabric that enhances surface heat removal.
Keywords :
fabrics; heat transfer; light absorption; micro-optomechanical devices; microchannel flow; microfabrication; microlenses; optical arrays; optical design techniques; optical fabrication; optical focusing; optical polymers; optical waveguide components; Masterbond UV-curable epoxy; ZEMAX optical design software; centralised fluid medium radiation absorption; cylindrical microlens array; far-infrared light focussing; focal plane location; heat transfer capture efficiency; microfluidic channel fabrication technology; microfluidic waveguide structure; microstructured array; precision-positioned fluidic microchannels alignment; Design optimization; Electromagnetic wave absorption; Fluidic microsystems; Lenses; Microchannel; Microfluidics; Microoptics; Optical arrays; Optical design; Optical waveguides; Cool Clothing; MicroPhotonics; Microfluidics; Optics; Surface Heat Removal;
Conference_Titel :
PhotonicsGlobal@Singapore, 2008. IPGC 2008. IEEE
Conference_Location :
Singapore
Print_ISBN :
978-1-4244-3901-0
Electronic_ISBN :
978-1-4244-2906-6
DOI :
10.1109/IPGC.2008.4781398