High-fidelity modeling and optimization of conjugate heat transfer in arrays of heated cables

Following the development of modeling of heat transfer in two-phase flows [1], we have developed a new high-fidelity conjugate heat transfer capability that enables the design of effective cooling techniques in multi-solid/multi-fluid systems. We first verified and validated our model with analytical and experimental results. Subsequently, we used the new methodology to study heat transfer around power cables carrying high currents. We first considered an array of cables with staggered arrangement. Our direct numerical simulation (DNS) results demonstrated that the naturally convected flow leads to a strong horizontal traveling wave in between the cable rows. The strength of the traveling wave, however, is strongly non-uniform in different cable rows, resulting in a significant temperature difference of cables at different rows with the temperature of the cable carrying current of I = 1000 Amp above 90°C. We then considered a configuration with many more cables (120) but carrying lower current of I = 80 Amp. Using different cooling conditions around the box of cables, we found that the maximum temperature never exceeds 50°C. These two different configurations provide possible effective solutions for the design and optimization of the thermal cooling of cables in the 95MW All-Electric-Ship.

[1]  Chryssostomos Chryssostomidis,et al.  Space reservation for shipboard electric power distribution systems , 2015, 2015 IEEE Electric Ship Technologies Symposium (ESTS).

[2]  Xian Luo,et al.  Modeling electrokinetic flows by the smoothed profile method , 2010, J. Comput. Phys..

[3]  Hessam Babaee,et al.  Optimization of Forcing Parameters of Film Cooling Effectiveness , 2013 .

[4]  Xian Luo,et al.  Smoothed profile method for particulate flows: Error analysis and simulations , 2009, J. Comput. Phys..

[5]  G. Karniadakis,et al.  Spectral/hp Element Methods for Computational Fluid Dynamics , 2005 .

[6]  George Em Karniadakis,et al.  A phase-field method for 3D simulation of two-phase heat transfer , 2015 .

[7]  Hessam Babaee,et al.  Comprehensive system-level thermal modeling of all-electric ships: Integration of SMCS and vemESRDC , 2015, 2015 IEEE Electric Ship Technologies Symposium (ESTS).

[8]  Hessam Babaee,et al.  Effect of Uncertainty in Blowing Ratio on Film Cooling Effectiveness , 2013 .

[9]  Hessam Babaee,et al.  System-level analysis of chilled water systems aboard naval ships , 2015, 2015 IEEE Electric Ship Technologies Symposium (ESTS).

[10]  Mehdi Ashjaee,et al.  Experimental investigation on free convection from a horizontal cylinder beneath an adiabatic ceiling , 2007 .

[11]  G. Karniadakis,et al.  Multi-fidelity modelling of mixed convection based on experimental correlations and numerical simulations , 2016, Journal of Fluid Mechanics.