Analysis of High-Temperature Solar Selective Coating

dc.contributor.advisor

Hotz, Nico

dc.contributor.author

Xiao, Qingyu

dc.date.accessioned

2018-05-31T21:18:19Z

dc.date.available

2018-05-31T21:18:19Z

dc.date.issued

2018

dc.department

Mechanical Engineering and Materials Science

dc.description.abstract

Abundant and widely available solar energy is one possible solution to the increasing demands for clean energy. The Thermodynamics and Sustainable Energy Laboratory (T-SEL) in Duke University has been dedicated to investigating methods to harness solar energy. Hybrid Solar System (HSS) is one of the promising methods to use solar energy, as it absorbs sunlight to produce hydrogen, which then can electrically power equipment through fuel cells. Hydrogen is produced through a biofuel reforming process, which occurs at a high temperature (over 700℃ for methane). Methods to design a high-temperature solar selective coating are investigated in this thesis.

The solar irradiance spectrum was assumed to be the same as Air Mass (AM) 1.5. A transfer-matrix method was adopted in this work to calculate the optical properties of the NREL #6, a design of nine-layer solar selective coating. Based on the design of NREL #6 coating, Differential Evolution (DE) algorithm was introduced to optimize this design. Two objective functions were considered: selectivity-oriented function and efficiency-oriented function, yielding the design of Revision #1 and Revision #2 respectively. The results showed a high selectivity (around 13) with low efficiency (66.6%) in Revision #1 and a high efficiency (82.6%) with moderate selectivity (around 9) in Revision #2.

dc.identifier.uri

https://hdl.handle.net/10161/17000

dc.subject

Energy

dc.subject

Optics

dc.subject

Thermodynamics

dc.subject

differential evolution

dc.subject

high temperature

dc.subject

Transfer matrix method

dc.subject

Optimization

dc.subject

solar selective coating

dc.subject

thin film

dc.title

Analysis of High-Temperature Solar Selective Coating

dc.type

Master's thesis

Files

Original bundle

Now showing 1 - 1 of 1
Loading...
Thumbnail Image
Name:
Xiao_duke_0066N_14517.pdf
Size:
1.23 MB
Format:
Adobe Portable Document Format

Collections