scholarly journals Visualization of Flow and Temperature Field around IC Packages with Liquid Crystal Particle Suspension Method

1989 ◽  
Vol 9 (Supplement) ◽  
pp. 137-142
Author(s):  
Toshiyuki KAMEOKA
1989 ◽  
Vol 55 (509) ◽  
pp. 146-151
Author(s):  
Kouji MORITA ◽  
Yasutomi MIKl ◽  
Youichirou NAKAMURA ◽  
Tetsuya KONDOH ◽  
Kenji FUKUDA ◽  
...  

Author(s):  
Sean C. Jenkins ◽  
Igor V. Shevchuk ◽  
Jens von Wolfersdorf ◽  
Bernhard Weigand

Measurements of transient fluid temperature distributions were made in a high aspect ratio (4:1) internally ribbed two-pass channel relating to the measurement of heat transfer using the transient thermochromic liquid crystal (TLC) technique. The temperature field was measured at several positions leading up to and around the 180° bend in a two-passage channel to account for variations in the bulk temperature used as a reference for the transient TLC technique. Results showed that the normalized distribution of the temperature field was time-invariant, an important result for the validation of heat transfer results using the transient TLC method. The normalized fluid temperature field was shown to be independent of the inlet temperature step and relatively independent of channel Reynolds number. Fluid temperature distributions were shown to be consistent over the length of the inlet channel, however, temperature field measurements made downstream of the bend exhibited a strong asymmetry. Finally, local temperature distributions were used to adjust the reference temperature used in calculating heat transfer coefficient distributions and to show the behavior of heat transfer due to 180° bends.


Nanophotonics ◽  
2020 ◽  
Vol 9 (4) ◽  
pp. 855-863 ◽  
Author(s):  
Yida Liu ◽  
Jinlin Song ◽  
Weixian Zhao ◽  
Xuecheng Ren ◽  
Qiang Cheng ◽  
...  

AbstractThermal camouflage, which is used to conceal objects in the infrared vision for confrontation with infrared detection in civilian or military applications, has garnered increasing attraction and interest recently. Compared with conductive thermal camouflage, that is to tune heat conduction to achieve equivalent temperature fields, radiative thermal camouflage, based on emissivity engineering, is more promising and shows much superiority in the pursuit of dynamic camouflage technology when resorting to stimuli-responsive materials. In this paper, we demonstrate the emissivity-engineered radiative metasurface to realize dynamic thermal camouflage functionality via a flying laser heat source on the metal-liquid-crystal-metal (MLCM) platform. We employ a rigorous coupled-wave algorithm to calculate the surface emissivity of Au/LC/Au microstructures, where the LC-orientation angle distribution is quantified by minimizing the emitted thermal energy standard deviation throughout the whole plate. Emissivity engineering on the MCLM platform is attributed to multiple magnetic polariton resonance, and agrees well with the equivalent electric circuit analysis. Through this electrical modulation strategy, the moving hot spot in the original temperature field is erased and a uniform temperature field is observed in the infrared camera instead, demonstrating the very good dynamic thermal camouflage functionality. The present MLCM-based radiative metasurface may open avenues for high-resolution emissivity engineering to realize novel thermal functionality and develop new applications for thermal metamaterials and meta-devices.


2011 ◽  
Vol 415-417 ◽  
pp. 1306-1309 ◽  
Author(s):  
Zheng Yu Ye ◽  
Zhi Yong Wang

The model of thermal effect for liquid crystal director was built. The temperature field of liquid crystal was numerically studied. The effects of laser irradiation time and the crystal size on the thermal effect were analyzed and compared. With the increase of laser irradiation time, the temperature field became stable.


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