Abhijit A. Adoni
Indian Space Research Organisation
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Featured researches published by Abhijit A. Adoni.
Heat Transfer Engineering | 2012
Amrit Ambirajan; Abhijit A. Adoni; Jasvanth S Vaidya; Anand A Rajendran; Dinesh Kumar; Pradip Dutta
The loop heat pipe (LHP) is a passive two-phase heat transport device that is gaining importance as a part of spacecraft thermal control systems and also in applications such as in avionics cooling and submarines. A major advantage of a loop heat pipe is that the porous wick structure is confuned to the evaporator section, and connection between the evaporator and condenser sections is by smooth tubes, thus minimizing pressure drop. A brief overview of loop heat pipes with respect to basic fundamentals, construction details, operating principles, and typical operating characteristics is presented in this paper. Finally, the paper presents the current developments in modeling of thermohydraulics and design methodologies of LHPs.
Journal of Thermophysics and Heat Transfer | 2007
Abhijit A. Adoni; Amrit Ambirajan; Vs Jasvanth; Dinesh Kumar; Pradip Dutta; Kandadai Srinivasan
Capillary pumped loop (CPL) and loop heat pipe (LHP) are passive heat transport devices that are gaining importance as a part of the thermal control system of modern high power spacecraft. A mathematical model to simulate the thermohydraulic performance of CPLs and LHPs is required for the design of such a thermal control system. In this study a unified mathematical model to estimate thermal and hydraulic performance of a CPL and an LHP with a two-phase or a hard-filled reservoir is presented. The steady-state model is based on conservation of energy and mass in the system. Heat exchange between the loop and the surroundings and pressure drops in the loop are calculated. This study presents the results of numerical studies on a CPL and an LHP. The constant conductance regime in a CPL or an LHP occurs when the reservoir is hard-filled. It also occurs in an LHP if the condenser is fully used. The heat leak across the wick becomes significant in a hard-filled LHP because the core is no longer saturated and hence the mass flow rate must be calculated using an energy balance on the outer surface of the wick.
Journal of Thermophysics and Heat Transfer | 2010
Abhijit A. Adoni; Amrit Ambirajan; Vs Jasvanth; D Nagesh Kumar; Pradip Dutta
Loop heat pipe is a passive two-phase heat transport device that is gaining importance as a part of spacecraft thermal control systems and also in applications (such as in avionic cooling and submarines). Hard fill of a loop heat pipe occurs when the compensation chamber is full of liquid. A theoretical study is undertaken to investigate the issues underlying the loop beat pipe hard-fill phenomenon. The results of the study suggest that the mass of charge and the presence of a bayonet have significant impact on the loop heat pipe operation. With a largern mass of charge, a loop heat pipe hard fills at a lower heat load. As the heat load increases, there is a steep rise in the loop heat pipe operating temperature. In a loop heat pipe with a saturated compensation chamber, and also in a hard-filled loop heat pipe without a bayonet, the temperature of the compensation chamber and that of the liquid core are nearly equal. When a loop heat pipe with a bayonet hard fills, the compensation chamber and the evaporator core temperatures are different.
IEEE Transactions on Components and Packaging Technologies | 2010
Abhijit A. Adoni; Amrit Ambirajan; Vs Jasvanth; Dinesh Kumar; Pradip Dutta
An ammonia loop heat pipe (LHP) with a flat plate evaporator is developed and tested. The device uses a nickel wick encased in an aluminum-stainless steel casing. The loop is tested for various heat loads and different sink temperatures, and it demonstrated reliable startup characteristics. Results with the analysis of the experimental observation indicate that the conductance between the compensation chamber and the heater plate can significantly influence the operating temperatures of the LHP. A mathematical model is also presented which is validated against the experimental observations.
Journal of Thermophysics and Heat Transfer | 2009
Abhijit A. Adoni; Amrit Ambirajan; Vs Jasvanth; Dinesh Kumar; Pradip Dutta
Experimental results on a loop heat pipe, using R134a as the working fluid, indicates that the liquid inventory in the compensation chamber can significantly influence the operating characteristics. The large liquid inventory in the compensation chamber, under terrestrial conditions, can result in loss of thermal coupling between the compensation chamber and the evaporator core. This causes the operating temperature to increase monotonically. This phenomenon, which has been experimentally observed, is reported in this paper. A theoretical model to predict the steady-state performance of a loop heat pipe with a weak thermal link between the compensation chamber and the core, as observed in the experiment, is also presented. The predicted and the experimentally determined temperatures correlate well.
Heat Transfer Engineering | 2012
Abhijit A. Adoni; Jasvanth S Vaidya; Amrit Ambirajan; Dinesh Kumar; Badarinarayana Krishnaswamy; Pradip Dutta
Capillary pumped loop (CPL) and loop heat pipe (LHP) are passive two-phase heat transport devices. They have been gaining importance as a part of the thermal control system of spacecraft. The evaporation heat transfer coefficient at the tooth–wick interface of an LHP or CPL has a significant impact on the evaporator temperature. It is also the main parameter in sizing of a CPL or LHP. Experimentally determined evaporation heat transfer coefficients from a three-port CPL with tubular axially grooved (TAG) evaporator and a TAG LHP with acetone, R-134A, and ammonia as working fluids are presented in this paper. The influences of working fluid, hydrodynamic blocks in the core, evaporator configuration (LHP or CPL), and adverse elevation (evaporator above condenser) on the heat transfer coefficient are presented.
Applied Thermal Engineering | 2017
Vs Jasvanth; Abhijit A. Adoni; V. Jaikumar; Amrit Ambirajan
Proceedings of the 20th National and 9th International ISHMT-ASME Heat and Mass Transfer Conference | 2010
Abhijit A. Adoni; Vs Jasvanth; Amrit Ambirajan; Dinesh Kumar; D. R. Bhandari; K. Badarinarayana; Pradip Dutta
Journal of Thermal Science and Engineering Applications | 2015
Prashant Kumar Rai; Simhachala Rao Chikkala; Abhijit A. Adoni; Dinesh Kumar
Archive | 2008
Vs Jasvanth; Amrit Ambirajan; Abhijit A. Adoni; Dr.Jitendra Kumar; Pp Gupta; Bhandari; Pradip Dutta