Experimental and Computational Investigation of Flow Boiling in a 52 μm Hydraulic Diameter Microchannel Evaporator With Inlet Restrictions and Heat Spreading

被引:1
作者
Anderson, Caleb [1 ]
Gao, Zhaosheng [2 ]
Hanchak, Michael [2 ]
Bandhauer, Todd [1 ]
机构
[1] Colorado State Univ, REACH Co Lab, 1374 Campus Delivery, Ft Collins, CO 80525 USA
[2] Univ Dayton, Thermal Management Grp Fuels & Combust Div, Res Inst, 300 Coll Pk, Dayton, OH 45469 USA
来源
ASME JOURNAL OF HEAT AND MASS TRANSFER | 2024年 / 146卷 / 06期
关键词
microchannel flow boiling; high heat flux thermal management; multiphase flow simulation; coupled level set volume of fluid; PRESSURE-DROP; 2-PHASE FLOW; TRANSFER COEFFICIENT; FLUX; CHANNELS; VOLUME; TUBE; SINK;
D O I
10.1115/1.4064688
中图分类号
O414.1 [热力学];
学科分类号
摘要
Microchannel flow boiling presents an effective thermal management strategy for high heat flux (>1 kW/cm2) devices. Fundamental mechanisms of microchannel flow boiling behaviors are difficult to determine due to macroscopic limitations of experimental hardware. In addition, flow stabilizing features of microchannel evaporators such as inlet restrictions and heat spreading further complicate fluid flow and heat transfer dynamics. Computational models, when utilized with experiments, can provide a more detailed understanding of behaviors which cannot be determined experimentally. The present study developed a computational model for flow boiling heat transfer in a 52 mu m silicon microchannel evaporator designed to cool a laser diode bar, with inlet restrictions and a nonuniform heating profile at the channel level. A conjugate heat transfer model along with a coupled level set and volume of fluid (CLSVOF) model was created in ansys fluent and compared with experimental flow boiling data to gain further insights into the performance of a realistic microdevice. Heat spreading in the channel outside of the heater footprint was observed due to the high thermal conductivity of the silicon substrate. The inlet orifices impacted local flow patterns by creating a large pressure drop and forming a recirculation zone immediately downstream. This behavior resulted in pressure recovery zones and regions of separated flow boiling behavior. Bubbly, slug, and churn flows were seen to be dominant flow regimes. The heat transfer coefficient was found to be dependent on heat flux and flow regime, and more weakly on mass flux and outlet vapor quality.
引用
收藏
页数:14
相关论文
共 49 条
[1]   Vertical flow boiling of refrigerant R134a in small channels [J].
Agostini, B ;
Bontemps, A .
INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2005, 26 (02) :296-306
[2]   State of the art of high heat flux cooling technologies [J].
Agostini, Bruno ;
Fabbri, Matteo ;
Park, Jung E. ;
Wojtan, Leszek ;
Thome, John R. ;
Michel, Bruno .
HEAT TRANSFER ENGINEERING, 2007, 28 (04) :258-281
[3]   MEMS-enabled thermal management of high-heat-flux devices EDIFICE: embedded droplet impingement for integrated cooling of electronics [J].
Amon, CH ;
Murthy, J ;
Yao, SC ;
Narumanchi, S ;
Wu, CF ;
Hsieh, CC .
EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2001, 25 (05) :231-242
[4]   Peak Temperature Mitigation of a Multimicrochannel Evaporator Under Transient Heat Loads [J].
Anderson, Caleb ;
Richey, Joshua ;
Fish, Michael ;
Bandhauer, Todd .
JOURNAL OF ELECTRONIC PACKAGING, 2021, 143 (04)
[5]  
Ansys Inc, 2021, Ansys fluent theory guide release 2021 R2
[6]  
Bandhauer TM, 2016, PROCEEDINGS OF THE ASME 14TH INTERNATIONAL CONFERENCE ON NANOCHANNELS, MICROCHANNELS, AND MINICHANNELS, 2016
[7]   A composite heat transfer correlation for saturated flow boiling in small channels [J].
Bertsch, Stefan S. ;
Groll, Eckhard A. ;
Garimella, Suresh V. .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2009, 52 (7-8) :2110-2118
[8]  
Bevis T.A., 2016, High Heat Flux Phase Change Thermal Management of Laser Diode Arrays
[9]   Experimental investigation of non-uniform heating effect on flow boiling instabilities in a microchannel-based heat sink [J].
Bogojevic, D. ;
Sefiane, K. ;
Walton, A. J. ;
Lin, H. ;
Cummins, G. ;
Kenning, D. B. R. ;
Karayiannis, T. G. .
INTERNATIONAL JOURNAL OF THERMAL SCIENCES, 2011, 50 (03) :309-324
[10]   A CONTINUUM METHOD FOR MODELING SURFACE-TENSION [J].
BRACKBILL, JU ;
KOTHE, DB ;
ZEMACH, C .
JOURNAL OF COMPUTATIONAL PHYSICS, 1992, 100 (02) :335-354