Title of article :
Preliminary design study for a lunar solar power station using
local resources
Author/Authors :
Ramon Ferreiro Garcia، نويسنده ,
Issue Information :
ماهنامه با شماره پیاپی سال 2012
Abstract :
A preliminary design study of the viability of a megawatt-class power plant based on concentrated solar thermal energy by means of
high concentration parabolic dishes and appropriate volumetric receivers (due to the fact that this provides high temperatures and modularity
to be applied in the Moon’s surface exploitation industry) is considered. This consists of standalone power plants operating under
optional thermodynamic cycles including the closed Brayton cycle, Rankine cycle, and combined cycles operating with and without heat
storage as source and heat sink energies. Since some tenuous atmospheric components are relatively abundant on the Moon’s surface,
such as argon and helium, and hydrogen obtained from electrolyzed water in the event that frozen water is available, taking advantage of
the presence of these components as working fluids in thermal cycle-based energy conversion processes appears to be a viable task. The
key idea deals with applying the afore-mentioned available working fluids to the appropriate thermodynamic cycles to achieve high efficiency
power conversion under acceptable specific power. Furthermore, the possibility of taking advantage of the existence of high solar
radiation flux (which allows high temperatures associated with low ambient temperatures), means that the main ingredients necessary to
achieve acceptable thermal efficiencies without harmful emissions exist.
A study of the thermal efficiency of the existing working fluids, pressure ratios and power ratios is performed. The results show that
the proposed power plants are technically viable since most of the ingredients required are present in the Moon’s tenuous atmosphere
and on its surface.
2012 Elsevier Ltd. All rights reserved.
Keywords :
Volumetric receiver , Combined cycle , Brayton cycle , Parabolic dish , Solar energy , Rankine cycle
Journal title :
Solar Energy
Journal title :
Solar Energy