G. Dauphin-tanguy, A. Rahmani, and C. Sueur, Bond graph aided design of controlled systems Simulation Practice and Theory, LAGIS: Laboratoire d'Automatique et d'informatique Industrielle de Lille, pp.493-513, 1999.

M. Kebdani, G. Dauphin-tanguy, A. Dazin, and P. Dupont, Bond graph model of a mechanically Pumped Biphasic Loop. (MPBL)., 2015 23rd Mediterranean Conference on Control and Automation (MED), pp.16-19, 2015.
DOI : 10.1109/MED.2015.7158789

URL : https://hal.archives-ouvertes.fr/hal-01435310

M. Turki, M. Kebdani, G. Dauphin-tanguy, A. Dazin, and P. , Dupont Experimentally Validated Bond Graph Model of a Brazed Plates Condenser, International Conference on Integrated Modeling and Analysis in Applied Control and Automation part of I3M 2015 MultiConference, 2015.

Y. E. Dolgirev, Y. E. Gerasimov, Y. F. Maidanik, and V. M. Kiseev, Calculation of a heat pipe with separate channels for vapour and liquid, J. Eng.Phys. Thermophys, vol.34, issue.6, pp.988-994, 1978.

M. Furukawa, Model-Based Method of Theoretical Design Analysis of a Loop Heat Pipe, Journal of Thermophysics and Heat Transfer, vol.20, issue.1, 2006.
DOI : 10.2514/1.14675

M. Hamdan, F. M. Gerner, and H. T. Henderson, Steady state model of a loop heat pipe (LHP) with coherent porous silicon (CPS) wick in the evaporator, Ninteenth Annual IEEE Semiconductor Thermal Measurement and Management Symposium, 2003., pp.88-96, 2003.
DOI : 10.1109/STHERM.2003.1194344

J. Ku, E. J. Kroliczek, and R. Mcintosh, Analytical modeling of the capillary pumped loop, Proceedings of the sixth International Heat Pipe Conference, pp.405-415, 1987.

T. Kaya and T. T. Hoang, Mathematical modelling of loop heat pipes an experimental validation, Journal of Thermophysics and Heat Transfer, vol.13, issue.3, 1999.

S. Launay, V. Sartre, and J. Bonjour, Analytical Model for Characterization of Loop Heat Pipes, Journal of Thermophysics and Heat Transfer, vol.22, issue.4, 2008.
DOI : 10.2514/1.37439

Z. Y. Guo, D. X. Xiong, C. Yang, M. Chen, and Z. X. Li, « Continuous liquid-vapor phase transition in microscale, Int. J. of Thermal Sciences, vol.4, pp.481-489, 2000.

G. Wang, D. Mishkinis, and D. Nikanpour, Capillary heat loop technology: Space applications and recent canadian activities Applied thermal engineering, pp.284-303, 2008.
DOI : 10.1016/j.applthermaleng.2006.02.027

T. Kaya, R. Perez, C. Gregori, and A. Torres, Numerical simulation of transient operation of loop heat pipes, Applied Thermal Engineering, vol.28, issue.8-9, 2007.
DOI : 10.1016/j.applthermaleng.2007.06.037

E. Pouzet, J. L. Joly, V. Platel, J. Y. Grandpeix, and C. Butto, Dynamic response of a capillary pumped loop subjected to various heat load transients, International Journal of Heat and Mass Transfer, vol.47, issue.10-11, pp.2293-2316, 2004.
DOI : 10.1016/j.ijheatmasstransfer.2003.11.003

S. Launay, V. Platel, S. Dutour, and J. Joly, Transient modelling of loop heat pipes for the oscillating behaviour study, Journal of Thermophysics and Heat Transfer, vol.21, issue.3, 2007.

V. V. Vlassov and R. , Mathematical model of a loop heat pipe with cylindrical evaporator and integrated reservoir, Applied Thermal Engineering, vol.28, issue.8-9, 2007.
DOI : 10.1016/j.applthermaleng.2007.07.016

P. Y. Chuang, An improved steady-state model of loop heat pipes based on experimental and theoretical analyses, 2003.

A. A. Adoni, A. Ambirajan, V. S. Jasvanth, D. Kumarm, J. P. Rohsenow et al., Thermohydraulic modeling of capillary pumped loop and loop heat pipe On the stability of boiling heat transfer, Journ GANIC. ? Handbook of Heat Transfer Fundamentals Trans. ASME, vol.80, p.711, 1958.

J. Delhaye, «Transferts de chaleur : ébullition ou condensation des corps purs

L. Lachasagne, Numerical modeling and experimental development of a capillary pumped two-phase loop by gravity environment: application to the cooling of power electronic components in automotive context, Sch63] E. SCHMIDT, VDI tables constants steamKar75] D.C. Karnopp, and R.C. Rosenberg, System dynamics, 1963.

M. C. Riofrío, N. Caney, and J. Gruss, State of the art of efficient pumped two-phase flow cooling technologies, Applied Thermal Engineering, vol.104, pp.333-343, 2016.
DOI : 10.1016/j.applthermaleng.2016.05.061

V. Serin, Hydrodynamic and thermal study of the vaporization in a square section of micro channel: application to two-phase micro capillary pumped loops, 2007.