Reassessment of cell to module gains and losses: Accounting for the current boost specific to cells located on the edges

The power produced by a photovoltaic module is not simply the sum of the powers of its constituents cells. The difference stems from a number of so-called “cell-to-module” (CTM) gain or loss mechanisms. These are getting more and more attention as improvements in cell efficiency are becoming harder to achieve. This work focuses on two CTM mechanisms: the gain due to the recapture of light hitting the apparent backsheet in the “empty” spaces around the cells and the loss from the serial connection of “mismatched” cells i.e. with different maximum power points. In general, for insulation purposes, the spaces on the edges of modules are larger than the spacing between cells. This study reveals that, when reflective backsheets are used, these “edge spaces” provide an additional current boost to the cells placed at the edges that can lead to a 0.5% gain in the output power of modules (with 60 or 72 cells). This location-dependent current boost adds to the usual variations in cell characteristics dictated by the binning size and results in larger “cell-to-cell mismatch losses”. However, the simulations reveal that for short-circuit current bin size smaller than 5%, this additional mismatch loss is lower than 0.05%. All considered, this study demonstrates that the spaces at the edges of PV modules have a significant impact on the cell to module ratios (≈+0.5%abs or ≈16% of the CTM gains) when reflective backsheets are used.The power produced by a photovoltaic module is not simply the sum of the powers of its constituents cells. The difference stems from a number of so-called “cell-to-module” (CTM) gain or loss mechanisms. These are getting more and more attention as improvements in cell efficiency are becoming harder to achieve. This work focuses on two CTM mechanisms: the gain due to the recapture of light hitting the apparent backsheet in the “empty” spaces around the cells and the loss from the serial connection of “mismatched” cells i.e. with different maximum power points. In general, for insulation purposes, the spaces on the edges of modules are larger than the spacing between cells. This study reveals that, when reflective backsheets are used, these “edge spaces” provide an additional current boost to the cells placed at the edges that can lead to a 0.5% gain in the output power of modules (with 60 or 72 cells). This location-dependent current boost adds to the usual variations in cell characteristics dictated by th...

[1]  M. Vogt,et al.  Development of physical models for the simulation of optical properties of solar cell modules , 2015 .

[2]  R. Wehrspohn,et al.  Light Management in Solar Modules , 2015 .

[3]  Richard M. Swanson,et al.  A simple ray tracer to compute the optical concentration of photovoltaic modules , 2006 .

[4]  S. Ponce-Alcántara,et al.  The importance of optical characterization of PV backsheets in improving solar module power , 2014 .

[5]  Ben A. Sudbury,et al.  Determination and evaluation of a backsheet’s intrinsic reflectance , 2018 .

[6]  Martin A. Green,et al.  Simplified technique for calculating mismatch loss in mass production , 2015 .

[7]  Mariano Sidrach-de-Cardona,et al.  PERFORMANCE OF PHOTOVOLTAIC MODULES WITH WHITE REFLECTIVE BACK SHEETS , 2008 .

[8]  K. Ramspeck,et al.  Industrial high performance crystalline silicon solar cells and modules based on rear surface passivation technology , 2014 .

[9]  Marcel Dyrba,et al.  Investigation of the short-circuit current increase for PV modules using halved silicon wafer solar cells , 2015 .

[10]  Max Mittag,et al.  Analysis of Backsheet and Rear Cover Reflection Gains for Bifacial Solar Cells , 2017 .

[11]  R. Seguin,et al.  Optimized module design: A study of encapsulation losses and the influence of design parameters on module performance , 2012, 2012 38th IEEE Photovoltaic Specialists Conference.

[12]  Louis L. Bucciarelli,et al.  Power loss in photovoltaic arrays due to mismatch in cell characteristics , 1979 .