參考文獻 |
[1] IEA (2020), Data Centres and Data Transmission Networks, IEA, Paris, https://www.iea.org/reports/data-centres-and-data-transmission-networks
[2] “Two-Phase Evaporative Precision Cooling Systems For heat loads from 3 to 300kW,” 2011 Parker Hannifin Corporation. (https://www.parker.com/literature/CIC%20Group/Precision%20Cooling/New%20literature/Two_Phase_Evaporative_Precision_Cooling_Systems.pdf)
[3] https://www.1-act.com/resources/pumped-two-phase-cooling/
[4] https://www.1-act.com/case-studies/pumped-two-phase-cooling-for-high-heat-flux-applications/
[5] Collier, J. G., and Thome, J. R., 1994, Convective Boiling and Condensation, Third Edition. Oxford University Press New York. Chapter 4, p. 17.
[6] Qu, W. and Mudawar, I., 2003, “Flow boiling heat transfer in two-phase micro-channel heat sinks-I Experimental investigation and assessment of correlation methods”, International Journal of Heat and Mass Transfer, Vol. 46, pp. 2755-2771.
[7] Markal, B., Aydin, O. and Avci, M., 2018, “Effect of hydraulic diameter on flow boiling in rectangular microchannels”, Heat and Mass Transfer, Vol. 55, pp. 1033-1044.
[8] Balasubramanian, P., and Kandlikar, S. G., 2005, “Experimental study of flow patterns, pressure drop and flow instabilities in parallel rectangular minichannels”, Heat Transfer Engineering, Vol. 26, pp. 20-27.
[9] Kandlikar, S. G., 2006, “Nucleation characteristics and stability considerations during flow boiling in microchannels”, Experimental Thermal and Fluid Science, Vol. 30(5), pp. 441-447.
[10] Lee, J., and Mudawar, I., 2008, “Fluid flow and heat transfer characteristics of low temperature two-phase micro-channel heat sinks – Part 1: Experimental methods and flow visualization results”, International Journal of Heat and Mass Transfer, Vol. 51, pp. 4315-4326.
[11] Kandlikar, S. G., Kuan, W. K., Willistein, D. A., & Borrelli, J., 2006, “Stabilization of Flow Boiling in Microchannels Using Pressure Drop Elements and Fabricated Nucleation Sites”, Journal of Heat Transfer, Vol. 128(4), pp. 389-396.
[12] Koşar, A., Kuo, C.-J., & Peles, Y., 2006, “Suppression of Boiling Flow Oscillations in Parallel Microchannels by Inlet Restrictors”, Journal of Heat Transfer, Vol. 128(3), pp. 251-260.
[13] Wang, G., Cheng, P., & Bergles, A. E., 2008, “Effects of inlet/outlet configurations on flow boiling instability in parallel microchannels”, International Journal of Heat and Mass Transfer, Vol. 51(9-10), pp. 2267-2281.
[14] Lee, H. J., Liu, D. Y., & Yao, S., 2010, “Flow instability of evaporative micro-channels”, International Journal of Heat and Mass Transfer, Vol 53(9-10)., pp. 1740-1749.
[15] Law, M., Lee, P.-S., & Balasubramanian, K., 2014, “Experimental investigation of flow boiling heat transfer in novel oblique-finned microchannels”, International Journal of Heat and Mass Transfer, Vol 76, pp. 419–431.
[16] Law, M., & Lee, P.-S., 2015, “A comparative study of experimental flow boiling heat transfer and pressure characteristics in straight- and oblique-finned microchannels”, International Journal of Heat and Mass Transfer, Vol 85, pp. 797–810.
[17] Liu, W.-C. and Yang, C.-Y., 2014, “Two-Phase Flow Visualization and Heat Transfer Performance of Convective Boiling in Micro Heat Exchangers”, Experimental Thermal and Fluid Science, Vol. 57, pp. 358-364.
[18] Kandlikar, S. G., Widger, T., Kalani, A., Mejia, V., 2013, “Enhanced flow boiling over open microchannels with uniform and tapered gap manifolds (OMM)”, Journal of Heat Transfer, Vol. 135., 061401-1.
[19] Lee, P. C. and Pan, C., 2007, “Boiling heat transfer and two-phase flow of water in a single shallow microchannel with a uniform or diverging cross section”, Journal of Micromechanics and Microengineering, Vol. 18., 025005.
[20] Lu, C. T. and Pan, C., 2008, “Stabilization of flow boiling in microchannel heat sinks with a diverging cross-section design.”, Journal of Micromechanics and Microengineering, Vol. 18, 075035.
[21] Balasubramanian, K., Lee, P.S., Jin, L.W., Chou, S.K., Teo, C.J., Gao, S., “Experimental investigations of flow boiling in straight and expanding microchannels — a comparative study”, International Journal of Thermal Sciences”, Vol. 50, pp. 2413-2421.
[22] Jiang, X., Zhang, S., Li, Y., & Pan, C., 2020, “High performance heat sink with counter flow diverging microchannels”, International Journal of Heat and Mass Transfer, Vol. 162., 120344.
[23] Fritz, W., 1935, “Berechnung des Maximal volumes von Dampfblasen”, physic. Zeitschr, Vol. 36, pp. 379-384.
[24] E. Lemmon, M. Huber, M. McLinden, REFPROP 9.1, NIST Standard Reference Database, vol. 23, 2013 <http://www.nist.gov/srd/nist23.cfm>.
[25] Shah, M. M., 2017, “Unified correlation for heat transfer during boiling in plain mini/micro and conventional channels”, International Journal of Refrigeration, Vol 74, pp. 606-626.
[26] Kandlikar, S. G., & Balasubramanian, P., 2004, ”An Extension of the Flow Boiling Correlation to Transition, Laminar, and Deep Laminar Flows in Minichannels and Microchannels” Heat Transfer Engineering, Vol 25(3), pp. 86-93.
[27] Kim, S.-M., & Mudawar, I., 2013, “Universal approach to predicting saturated flow boiling heat transfer in mini/micro-channels – Part II. Two-phase heat transfer coefficient”, International Journal of Heat and Mass Transfer, Vol 64, pp. 1239-1256.
[28] Kandlikar, S., Garimella, S., Li, D., Colin, S., King, M.R., 2005, “Heat Transfer and Fluid Flow in Minichannels and Microchannels”, Elsevier, Amsterdam.
[29] Kim, S.-M., & Mudawar, I, 2013, “Universal approach to predicting two-phase frictional pressure drop for mini/micro-channel saturated flow boiling”, International Journal of Heat and Mass Transfer, Vol 58(1-2), pp. 718-734.
[30] Friedle, L., 1979, “Improved friction pressure drop correlations for horizontal and vertical two-phase pipe flow”, Presented at the European Two-phase Flow Group Meeting, Ispra, Italy, Paper E2, June.
[31] Hewitt, G.F., Kearsey, H.A., Lacey, P.M.C., Pulling, D. J., “Burnout and nucleation in climbing film boiling flow”, International Journal of Heat and Mass Transfer. 8 (1965) 793-814. |