1 |
Wicking capability evaluation of multilayer composite micromesh wicks for ultrathin two-phase heat transfer devices Chen G, Fan DQ, Zhang SW, Sun YL, Zhong GS, Wang ZW, Wan ZP, Tang Y Renewable Energy, 163, 921, 2021 |
2 |
A novel ultra-thin flattened heat pipe with biporous spiral woven mesh wick for cooling electronic devices Zhou WJ, Li Y, Chen ZS, Deng LQ, Gan YH Energy Conversion and Management, 180, 769, 2019 |
3 |
Design, fabrication and thermal performance of a novel ultra-thin vapour chamber for cooling electronic devices Chen ZS, Li Y, Zhou WJ, Deng LQ, Yan YY Energy Conversion and Management, 187, 221, 2019 |
4 |
Experimental study on thermal performances of ultra-thin flattened heat pipes Tang YL, Hong SH, Wang SF, Deng DW International Journal of Heat and Mass Transfer, 134, 884, 2019 |
5 |
Visualization experiments on flat-plate heat pipes with composite mesh-groove wick at different tilt angles Wong SC, Liao WS International Journal of Heat and Mass Transfer, 123, 839, 2018 |
6 |
Thermal performance of miniature loop heat pipe with graphene-water nanofluid Tharayil T, Asirvatham LG, Ravindran V, Wongwises S International Journal of Heat and Mass Transfer, 93, 957, 2016 |
7 |
Performance analysis of cylindrical heat pipe using nanofluids - An experimental study Venkatachalapathy S, Kumaresan G, Suresh S International Journal of Multiphase Flow, 72, 188, 2015 |
8 |
Visualization and thermal resistance measurement for the sintered mesh-wick evaporator in operating flat-plate heat pipes Liou JH, Chang CW, Chao C, Wong SC International Journal of Heat and Mass Transfer, 53(7-8), 1498, 2010 |
9 |
Thermal resistance of screen mesh wick heat pipes using the water-based Al2O3 nanofluids Do KH, Ha HJ, Jang SP International Journal of Heat and Mass Transfer, 53(25-26), 5888, 2010 |
10 |
Characterization of saturated flow within mesh-type wicks based on the capillary suction potential corrected using the tortuosity Mori H, Mizuno M Journal of Chemical Engineering of Japan, 38(2), 87, 2005 |