Trends and Opportunities in Direct-Absorption Solar Thermal Collectors

Author:

Phelan Patrick1,Otanicar Todd2,Taylor Robert3,Tyagi Himanshu4

Affiliation:

1. School for Engineering of Matter, Transport & Energy, Arizona State University, 501 E. Tyler Mall, ECG 303, Tempe, AZ 85287-6106 e-mail:

2. Mechanical Engineering Department, University of Tulsa, 800 South Tucker Drive, Tulsa, OK 74104-3189 e-mail:

3. School of Mechanical and Manufacturing Engineering, University of New South Wales, UNSW Sydney, NSW 2052, Australia e-mail:

4. School of Mechanical, Materials & Energy Engineering, Indian Institute of Technology Ropar, Nangal Road, Rupnagar-140001 (Punjab), India e-mail:

Abstract

Efficient conversion of sunlight into useful heat or work is of increasing global interest. Solar-to-thermal energy conversion, as opposed to solar-to-electricity, is enabled by solar thermal collectors that convert sunlight into heat at some useful temperature. We review here recent developments in solar thermal energy conversion. Our emphasis is on “direct-absorption” solar thermal collectors, in which incident sunlight is absorbed directly by a working fluid. This contrasts with conventional solar thermal collectors where the sunlight strikes and is absorbed by a solid receiver, which then transfers heat to the working fluid. Both liquid-based and gas-based direct-absorption collectors are described, although liquid-based systems are emphasized. We propose that if “direct-absorption” technologies could be developed further, it would open up a number of emerging opportunities, including applications exploiting thermochemical and photocatalytic reactions and direct absorption of a binary fluid for absorption refrigeration.

Publisher

ASME International

Subject

Fluid Flow and Transfer Processes,General Engineering,Condensed Matter Physics,General Materials Science

Reference132 articles.

1. Technology Roadmap: Solar Heating and Cooling;IEA,2012

2. Technology Roadmap Concentrating Solar Power;IEA,2010

3. Direct Solar Energy,2011

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