2005Unpublished venueRequires access

Silicon concentrator cells in an one-axis tracking concentrator system with a concentration ratio of 300/spl times/

Andreas Mohr, Thomas Roth, M. Epmeier, Stefan W. Glunz

Open publisher page 4 citations

Abstract

A solar concentrator system with one-axis tracking was developed at Fraunhofer ISE enabling a high geometrical concentration of 300/spl times/. This system uses a parabolic trough mirror and a three-dimensional second stage consisting of compound parabolic concentrators (CPCs). These CPCs are optimised for concentrating the sunlight by total internal reflection up to a geometrical concentration ratio of 7.7/spl times/. For this linear concentrator system and particularly for an easy cell integration, we have developed a rear-line-contacted silicon concentrator cell (RLCC) achieving a maximum efficiency of 25% at around 100 suns. The silicon concentrator cell has a small-sized active area of 0.2025 cm/sup 2/ matching with the exit area of the CPCs. The concentrator system consisting of mirror, CPCs and RLCC cells reaches an efficiency of over 16% under real outdoor conditions. In this paper outdoor measurement results of a cell string integrated in the concentrator system are presented, the performance losses are discussed in detail and a realistic estimation of the maximum efficiency of the concentrator system is given.

About this research paper

What this paper is about

A solar concentrator system with one-axis tracking was developed at Fraunhofer ISE enabling a high geometrical concentration of 300/spl times/. This system uses a parabolic trough mirror and a three-dimensional second stage consisting of compound parabolic concentrators (CPCs). These CPCs are optimised for concentrating the sunlight by total internal reflection up to a geometrical concentration ratio of 7.7/spl times/. For this linear concentrator system and particularly for an easy cell integration, we have developed a rear-line-contacted silicon concentrator cell (RLCC) achieving a maximum efficiency of 25% at around 100 suns. The silicon concentrator cell has a small-sized active area of 0.2025 cm/sup 2/ matching with the exit area of the CPCs. The concentrator system consisting of mirror, CPCs and RLCC cells reaches an efficiency of over 16% under real outdoor conditions. In this paper outdoor measurement results of a cell string integrated in the concentrator system are presented, the performance losses are discussed in detail and a realistic estimation of the maximum efficiency of the concentrator system is given.

Why it matters

OpenAlex reports 4 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

A solar concentrator system with one-axis tracking was developed at Fraunhofer ISE enabling a high geometrical concentration of 300/spl times/. This system uses a parabolic trough mirror and a three-dimensional second stage consisting of compound parabolic concentrators (CPCs). These CPCs are optimised for concentrating the sunlight by total internal reflection up to a geometrical concentration ratio of 7.7/spl times/. For this linear concentrator system and particularly for an easy cell integration, we have developed a rear-line-contacted silicon concentrator cell (RLCC) achieving a maximum efficiency of 25% at around 100 suns. The silicon concentrator cell has a small-sized active area of 0.2025 cm/sup 2/ matching with the exit area of the CPCs. The concentrator system consisting of mirror, CPCs and RLCC cells reaches an efficiency of over 16% under real outdoor conditions. In this paper outdoor measurement results of a cell string integrated in the concentrator system are presented, the performance losses are discussed in detail and a realistic estimation of the maximum efficiency of the concentrator system is given.

Key concepts: Concentrator, Suns in alchemy, Optics, Nonimaging optics, Materials science, Silicon, Parabolic trough, Optoelectronics

Related papers

Back to paper searchBrowse research topicsOriginal source
Silicon concentrator cells in an one-axis tracking concentrator system with a concentration ratio of 300/spl times/ — Research Paper | ScholarLens