[1] Bejan A, Kraus AD. Heat transfer handbook: John Wiley & Sons, 2003.
[2] Zohuri B. Heat pipe design and technology: Modern applications for practical thermal management: Springer, 2016.
[3] Dickson PF. Heat transfer, JP Holman, McGraw Hill Book Company, 530 pages, price: $17.00. Wiley Online Library; 1977.
[4] com A. Isobar Heat Pipe Transfer System | Electronic Heating & Cooling Operations. [online] Available at. acrolab com/isobar-heat-pipes. 2019.
[5] Reay D, McGlen R, Kew P. Heat pipes: theory, design and applications: Butterworth-Heinemann, 2013.
[6] Lee H. Thermal design: heat sinks, thermoelectrics, heat pipes, compact heat exchangers, and solar cells: John Wiley & Sons, 2022.
[7] Noie S. Heat transfer characteristics of a two-phase closed thermosyphon. Applied Thermal Engineering.2005;25:495-506.
[8] Faghri A, Buchko M, Cao Y. A study of high-temperature heat pipes with multiple heat sources and sinks: Part I—Experimental methodology and frozen startup profiles. 1991.
[9] Gross U. Reflux condensation heat transfer inside a closed thermosyphon. International journal of heat and mass transfer. 1992;35:279-94.
[10] Harley C, Faghri A. Complete transient two-dimensional analysis of two-phase closed thermosyphons including the falling condensate film. 1994.
[11] Hirashima M, Kawabata K, Negishi K. Experimental study on a separate type thermosyphon. Wärme-und Stoffübertragung. 1994;29:479-86.
[12] Bezrodnyi M, Alekseenko D. Investigation of the critical region of heat and mass transfer in low-temperature wickless heat pipes. Teplofizika Vysokikh Temperatur. 1977;15:370-6.
[13] Negishi K, Sawada T. Heat transfer performance of an inclined two-phase closed thermosyphon. International journal of heat and mass transfer. 1983;26:1207-13.
[14] Imura H, Sasaguchi K, Kozai H, Numata S. Critical heat flux in a closed two-phase thermosyphon. International journal of heat and mass transfer. 1983;26:1181-8.
[15] Abou-Ziyan H, Helali A, Fatouh M, El-Nasr MA. Performance of stationary and vibrated thermosyphon working with water and R134a. Applied Thermal Engineering. 2001;21:813-30.
[16] Azouni MA, Normand C, Pétré G. Surface-Tension-Driven Flows in a Thin Layer of a Water–n-Heptanol Solution. Journal of colloid and interface science. 2001;239:509-16.
[17] Abe Y, Iwaski A, Tanaka K. Thermal management with self-rewetting fluids. Microgravity-Science and Technology. 2005;16:148-52.
[18] Ma X. Investigation of novel thermoelectric refrigeration systems: University of Nottingham, 2004.
[19] Faghri A, Thomas S. Performance characteristics of a concentric annular heat pipe: Part I—Experimental prediction and analysis of the capillary limit. 1989.
[20] Çiftçi E, Sözen A. Heat transfer enhancement in pool boiling and condensation using h-BN/DCM and SiO2/DCM nanofluids: experimental and numerical comparison. International Journal of Numerical Methods for Heat & Fluid Flow. 2021;31:26-52.
[21] Zhu K, Zheng M, Wang B, Dai B, Wang Y, Wei J, et al. Experimental study of energy saving performances in chip cooling by using heat sink with embedded heat pipe. Energy Procedia. 2017;105:5160-5.
[22] Faghri A. Heat pipe science and technology: Global Digital Press, 1995.
[23] Wang Y, Wang X, Wang J, Liu Y, Chen J. Heat transfer performance of a two-phase closed thermosyphon with different inclination angles based on the core-tube monitoring. Case Studies in Thermal Engineering.2023:102738.
[24] Fadhl B, Wrobel LC, Jouhara H. Numerical modelling of the temperature distribution in a two-phase closed thermosyphon. Applied Thermal Engineering. 2013;60:122-31.
[25] Cisterna LH, Cardoso MC, Fronza EL, Milanez FH, Mantelli MB. Operation regimes and heat transfer coefficients in sodium two-phase thermosyphons. International journal of heat and mass transfer.2020;152:119555.
[26] Santos Pd, Krambeck L, Santos Dd, Alves TA. Analysis of a stainless steel heat pipe based on operation limits. International Review of Mechanical Engineering. 2014;8:599-608.