CFD Analysis of the Use of Desert Sand as Thermal Energy Storage Medium in a Solar Powered Fluidised Bed Harvesting Unit

Author(s):  
Mustapha Hamdan ◽  
Daniel Sebastia-Saez ◽  
Malak Hamdan ◽  
Harvey Arellano-Garcia
2016 ◽  
Author(s):  
Miguel Diago ◽  
Alberto Crespo Iniesta ◽  
Thomas Delclos ◽  
Audrey Soum-Glaude ◽  
Tariq Shamim ◽  
...  

2015 ◽  
Vol 75 ◽  
pp. 2113-2118 ◽  
Author(s):  
Miguel Diago ◽  
Alberto Crespo Iniesta ◽  
Thomas Delclos ◽  
Tariq Shamim ◽  
Nicolas Calvet

Energies ◽  
2020 ◽  
Vol 13 (17) ◽  
pp. 4298
Author(s):  
David Wünsch ◽  
Verena Sulzgruber ◽  
Markus Haider ◽  
Heimo Walter

Renewables should become more continuously available, reliable and cost-efficient to manage the challenges caused by the energy transition. Thus, analytic and numerical investigations for the layout of a pilot plant of a concept called Fluidisation-Based Particle Thermal Energy Storage (FP-TES)—a highly flexible, short- to long-term fluidised bed regenerative heat storage utilising a pressure gradient for hot powder transport, and thus enabling minimal losses, high energy densities, compact construction and countercurrent heat exchange—are presented in this article. Such devices in decentralised set-up—being included in energy- and especially heat-intensive industries, storing latent or sensible heat or power-to-heat to minimise losses and compensate fluctuations—can help to achieve the above-stated goals. Part I of this article is focused on geometrical and fluidic design via numerical investigations utilising Computational Particle Fluid Dynamics (CPFD). In the process a controlled transient simulation method called co-simulation of FP-TES is developed forming the basis for test bench design and execution of further co-simulation. Within this process an advanced design of rotational symmetric hoppers with additional baffles in the heat exchanger (HEX) and internal pipes to stabilise the particle mass flow is developed. Moreover, a contribution bulk heat conductivity is presented to demonstrate low thermal losses and limited needs for thermal insulation by taking into account the thermal insulation of the outer layer of the hopper.


2017 ◽  
Vol 13 (7) ◽  
pp. 6369-6375
Author(s):  
S. Kesavan ◽  
T.V. Arjunan ◽  
S. Vijayan

This paper involves with the experimental performance study of a triple pass solar flat plate collector integrated with  thermal energy storage medium for drying of blanched bitter gourd slices. The experimental setup consists of a blower, triple pass flat plate collector and a drying chamber. The experimets were carried out in the meterological conditions of Coimbatore, Tamil Nadu, India. The mass flow rate of air through the system was set as 0.06 kgs-1. From the results, it could be comprehended that, (i) triple pass arrangement of air improves the performance of flat plate collector (ii) thermal energy storage medium played an important role in consistent outlet air temperature and the thermal efficiency (iii) triple pass solar dryer took 5 hours to reach the final moisture content of bitter gourd (9% on wet basis) which is 29 % and 37.5% faster than without thermal storage and open sun drying system. It could be concluded that triple pass solar air collector performs better than without thermal storage and open sun drying.


Sign in / Sign up

Export Citation Format

Share Document