[1] |
HITT D L, ZAKRZWSKI C M, THOMAS M A.MEMS-based satellite micro propulsion via catalyzed hydrogen peroxide decomposition[J]. Smart Mater. Struct., 2001, 10:1163-1175.
|
[2] |
过增元. 国际传热研究前沿——微细尺度传热[J]. 力学进展, 2000, 1:1-6. GUO Z Y. Frontier of heat transfer-microscale heat transfer[J]. Advances in Mechanics, 2000, 1:1-6.
|
[3] |
魏进家, 张永海. 柱状微结构表面强化沸腾换热研究综述[J]. 化工学报, 2016, 67(1):97-107. WEI J J, ZHANG Y H. Review of enhanced boiling heat transfer over micro-pin-finned surfaces[J]. CIESC Journal, 2016, 67(1):97-107.
|
[4] |
郭亚军, 徐应坤, 毕勤成, 等. 竖直方管内两相流动临界热通量的实验研究[J]. 西安建筑科技大学学报(自然科学版), 2013, 45(1):126-129. GUO Y J, XU Y K, BI Q C, et al. Experimental study on critical heat flux of two-phase flow in a vertical square tube[J]. J. Xi'an Univ. of Arch. & Tech.(Natural Science Edition), 2013, 45( 1):126-129.
|
[5] |
刘振华, 杨荣华, 秋雨豪. 倾斜管内自然对流沸腾临界热通量的研究[J]. 航空动力学报, 2004, 19( 3):342-345. LIU Z H, YANG R H, QIU Y H. Critical heat flux during natural convective boiling in inclined tubes[J]. Journal of Aerospace Power, 2004, 19(3):342-345.
|
[6] |
彭劲枫, 徐建军, 黄彦平, 等. 竖直圆形通道周向均匀和非均匀加热临界热通量实验研究[J]. 核动力工程, 2016, 37(1):38-42. PENG J F, XU J J, HUANG Y P, et al. Experimental research of critical heat flux under uniform heating and circumferential nonuniform heating in vertical circular channel[J]. Nuclear Power Engineering, 2016, 37(1):38-42.
|
[7] |
彭云康, 陈炳德. 管内竖直向上流动水的临界热通量研究[J]. 核动力工程, 1995, 16(1):51-54. PENG Y K, CHEN B D. Investigation for critical heat flux in upflow vertical tubes[J]. Nuclear Power Engineering, 1995, 16(1):51-54.
|
[8] |
VANDERVORT L, BERGLES A, JENSEN M. An experimental study of critical heat flux in very high heat flux subcooled boiling[J]. Heat Mass Transfer, 1994, 37:161-173.
|
[9] |
周继军, 徐进良, 甘云华, 等. 微通道中临界热通量的实验研究[J]. 自然科学进展, 2005, 15(5):585-590. ZHOU J J, XU J L, GAN Y H, et al. Experimental investigation of critical heat flux in micro channels[J]. Progress in Natural Science, 2005, 15(5):585-590.
|
[10] |
陈志静, 罗小平. 竖直微槽道内沸腾换热CHF实验研究[J]. 低温与超导, 2012, 40(3):40-44. CHEN Z J, LUO X P. Experimental study of the critical heat flux on boiling heat transfer in vertical micro channel[J]. Cryo.&Supercond., 2012, 40(3):40-44.
|
[11] |
WOJTAN L, REVELLIN R, THOME J R. Investigation of saturated critical heat flux in a single, uniformly heated microchannel[J]. Experimental Thermal and Fluid Science, 2006, 30:765-774.
|
[12] |
BASU S, NDAO S, MICHNA G J, et al. Flow boiling of R134a in circular microtubes(Ⅱ):Study of critical heat flux condition[J]. Journal of Heat Transfer, 2011, 133:051503-1-051503-9.
|
[13] |
张瑞达, 罗小平, 王维. 微槽道纳米流体饱和沸腾CHF特性研究[J]. 低温与超导, 2013, 41(6):75-80. ZHANG R D, LUO X P, WANG W. Study on the saturated boiling critical heat flux characteristics of nano-fluids in micro channels[J]. Cryo.&Supercond., 2013, 41(6):75-80.
|
[14] |
罗小平, 唐杨. 矩形微槽道纳米流体饱和沸腾临界热通量特性[J]. 低温与超导, 2010, 38(9):76-80. LUO X P, TANG Y. Properties of saturated flow boiling critical heat flux through rectangular micro-channel[J]. Cryo.&Supercond., 2010, 38(9):76-80.
|
[15] |
CHEN T, GARIMELLA S V. A study of critical heat flux during flow boiling in microchannel heat sinks[J]. Journal of Heat Transfer, 2012, 134:011504-1-011504-9.
|
[16] |
KOSAR A, KUO C J, PELES Y. Boiling heat transfer in rectangular micro-channels with reentrant cavities[J]. International Journal of Heat and Mass Transfer, 2005, 48:4867-4886.
|
[17] |
KOSAR A, PELES Y. Boiling heat transfer in a hydrofoil-based micro pin fin heat sink[J]. International Journal of Heat and Mass Transfer, 2007, 50:1018-1034.
|
[18] |
GUO D, WEI J J, ZHANG Y H. Enhanced flow boiling heat transfer with jet impingement on micro-pin-finned surfaces[J]. Applied Thermal Engineering, 2011, 31:2042-2051.
|
[19] |
RAINEY K N, LI G, YOU S M. Flow boiling heat transfer from plain and microporous coated surfaces in subcooled FC-72[J]. Journal of Heat Transfer, 2011, 123:918-925.
|
[20] |
WANG L S, KHANA A R, ERKANB N, et al. Critical heat flux enhancement on a downward face using porous honeycomb plate in saturated flow boiling[J]. International Journal of Heat and Mass Transfer, 2017, 109:454-461.
|
[21] |
DENG D X, CHEN R X, HE H, et al. Effects of heat flux, mass flux and channel size on flow boiling performance of reentrant porous microchannels[J]. Experimental Thermal and Fluid Science, 2015, 64:13-22.
|
[22] |
WEI J J, ZHAO J F, XUE Y Y. Boiling heat transfer enhancement by using micro-pin-finned surface for electronics cooling[J]. Microgravity Sci. Technol., 2009, 21:S159-S173.
|
[23] |
杨世铭, 陶文铨. 传热学[M]. 4版. 北京:高等教育出版社, 2006:5-7. YANG S M, TAO W Q. Heat Transfer[M]. 4th ed. Beijing:Higher Education Press, 2006:5-7.
|
[24] |
MOFFAT R J. Describing the uncertainties in experimental results[J]. Exp. Thermal Fluid Sci., 1988, 1:3-17.
|
[25] |
LU C T, PAN C. Convective boiling in a parallel microchannel heat sink with a diverging cross section and artificial nucleation sites[J]. Experimental Thermal and Fluid Science, 2011, 35:810-815.
|
[26] |
LEE J, MUDAWAR I. Two-phase flow in high-heat-flux micro channel heat sink for refrigeration cooling applications(Ⅱ):Heat transfer characteristics[J]. International Journal of Heat and Mass Transfer, 2005, 48:941-955.
|
[27] |
谢鸣宇, 罗小平, 胡丽琴. 微通道内R22制冷剂流动沸腾的压降特性[J]. 化学工程, 2016, 44(1):38-42. XIE M Y, LUO X P, HU L Q. Pressure drop of flow boiling R22 in microchannel[J]. Chemical Engineering(China), 2016, 44(1):38-42.
|
[28] |
QU W, MUDAWAR I. Measurement and correlation of critical heat flux in two-phase microchannel heat sinks[J]. International Journal of Heat and Mass Transfer, 2004, 47:2045-2059.
|
[29] |
PRAJAPATI Y K, PATHAK M, KALEEM K M. A comparative study of flow boiling heat transfer in three different configurations of microchannels[J]. International Journal of Heat and Mass Transfer, 2015, 85:711-722.
|
[30] |
PRAJAPATI Y K, PATHAK M, KALEEM K M. Transient heat transfer characteristics of segmented finned microchannels[J]. Experimental Thermal and Fluid Science, 2016, 79:134-142.
|
[31] |
BOWERS M B, MUDAWAR I. High flux boiling in low flow rate, low pressure drop mini-channel and micro-channel heat sinks[J]. Int. J. Heat Mass Transfer, 1994, 39:321-334.
|