Solar photovoltaic (PV) cells arranged in complex 3D leaflike configurations—referred to as a solar tree—can potentially collect more sunlight than traditionally used flat configurations. It is hypothesized that this could be because of two reasons. First, the 3D space can be utilized to increase the overall surface area over which the sunlight may be captured. Second, as opposed to traditional flat panel configurations where the capture efficiency decreases dramatically for shallow angles of incidence, the capture efficiency of a solar tree is hampered little by shallow angles of incidence due to the 3D orientation of the solar leaves. In this paper, high fidelity Monte Carlo simulation of radiation transport is conducted to gain insight into whether the above hypotheses are true. The Monte Carlo simulations provide local radiation flux distributions in addition to global radiation flux summaries. The studies show that except for near-normal solar incidence angles, solar trees capture sunlight more effectively than flat panels—often by more than a factor of 5. The Monte Carlo results were also interpolated to construct a daily sunlight capture profile both for midwinter and midsummer for a typical North American city. During winter, the solar tree improved sunlight capture by 227%, while in summer the improvement manifested was 54%.
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April 2015
Research-Article
Monte Carlo Simulation of Sunlight Transport in Solar Trees for Effective Sunlight Capture
Navni N. Verma,
Navni N. Verma
Department of Mechanical
and Aerospace Engineering,
Suite E410, Scott Laboratory,
and Aerospace Engineering,
The Ohio State University
,Suite E410, Scott Laboratory,
201 West 19th Avenue
,Columbus
, OH 43210
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Sandip Mazumder
Sandip Mazumder
1
Fellow ASME
Department of Mechanical
and Aerospace Engineering,
Suite E410, Scott Laboratory,
e-mail: mazumder.2@osu.edu
Department of Mechanical
and Aerospace Engineering,
The Ohio State University
,Suite E410, Scott Laboratory,
201 West 19th Avenue
,Columbus
, OH 43210
e-mail: mazumder.2@osu.edu
1Corresponding author.
Search for other works by this author on:
Navni N. Verma
Department of Mechanical
and Aerospace Engineering,
Suite E410, Scott Laboratory,
and Aerospace Engineering,
The Ohio State University
,Suite E410, Scott Laboratory,
201 West 19th Avenue
,Columbus
, OH 43210
Sandip Mazumder
Fellow ASME
Department of Mechanical
and Aerospace Engineering,
Suite E410, Scott Laboratory,
e-mail: mazumder.2@osu.edu
Department of Mechanical
and Aerospace Engineering,
The Ohio State University
,Suite E410, Scott Laboratory,
201 West 19th Avenue
,Columbus
, OH 43210
e-mail: mazumder.2@osu.edu
1Corresponding author.
Contributed by the Solar Energy Division of ASME for publication in the JOURNAL OF SOLAR ENERGY ENGINEERING: INCLUDING WIND ENERGY AND BUILDING ENERGY CONSERVATION. Manuscript received January 2, 2014; final manuscript received August 4, 2014; published online November 7, 2014. Editor: Gilles Flamant.
J. Sol. Energy Eng. Apr 2015, 137(2): 021015 (9 pages)
Published Online: April 1, 2015
Article history
Received:
January 2, 2014
Revision Received:
August 4, 2014
Online:
November 7, 2014
Citation
Verma, N. N., and Mazumder, S. (April 1, 2015). "Monte Carlo Simulation of Sunlight Transport in Solar Trees for Effective Sunlight Capture." ASME. J. Sol. Energy Eng. April 2015; 137(2): 021015. https://doi.org/10.1115/1.4028915
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