کد مقاله کد نشریه سال انتشار مقاله انگلیسی نسخه تمام متن
1551144 998116 2011 13 صفحه PDF دانلود رایگان
عنوان انگلیسی مقاله ISI
Modeling and optimization of hybrid solar thermoelectric systems with thermosyphons
موضوعات مرتبط
مهندسی و علوم پایه مهندسی انرژی انرژی های تجدید پذیر، توسعه پایدار و محیط زیست
پیش نمایش صفحه اول مقاله
Modeling and optimization of hybrid solar thermoelectric systems with thermosyphons
چکیده انگلیسی

We present the modeling and optimization of a new hybrid solar thermoelectric (HSTE) system which uses a thermosyphon to passively transfer heat to a bottoming cycle for various applications. A parabolic trough mirror concentrates solar energy onto a selective surface coated thermoelectric to produce electrical power. Meanwhile, a thermosyphon adjacent to the back side of the thermoelectric maintains the temperature of the cold junction and carries the remaining thermal energy to a bottoming cycle. Bismuth telluride, lead telluride, and silicon germanium thermoelectrics were studied with copper–water, stainless steel–mercury, and nickel–liquid potassium thermosyphon-working fluid combinations. An energy-based model of the HSTE system with a thermal resistance network was developed to determine overall performance. In addition, the HSTE system efficiency was investigated for temperatures of 300–1200 K, solar concentrations of 1–100 suns, and different thermosyphon and thermoelectric materials with a geometry resembling an evacuated tube solar collector. Optimizations of the HSTE show ideal system efficiencies as high as 52.6% can be achieved at solar concentrations of 100 suns and bottoming cycle temperatures of 776 K. For solar concentrations less than 4 suns, systems with thermosyphon wall thermal conductivities as low as 1.2 W/mK have comparable efficiencies to that of high conductivity material thermosyphons, i.e. copper, which suggests that lower cost materials including glass can be used. This work provides guidelines for the design, as well as the optimization and selection of thermoelectric and thermosyphon components for future high performance HSTE systems.


► Proposed hybrid solar thermoelectric (HSTE) system using a thermosyphon for heat transfer to a bottoming cycle.
► Developed and optimized the HSTE model showing efficiencies as high as 52.6%.
► Comparable efficiency for low cost thermosyphons with k as low as 1.2 W/mK and C < 4 suns.
► Proposed five bottoming cycle applications for potential HSTE integration.

ناشر
Database: Elsevier - ScienceDirect (ساینس دایرکت)
Journal: Solar Energy - Volume 85, Issue 11, November 2011, Pages 2843–2855
نویسندگان
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