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Testing of modules using this phenomenon can detect hidden defects in the structure of PV cells. This method makes the current distribution visible in the PV module and helps detect defects. With the help of an EL test, a PV manufacturer can evaluate the structural quality of the PV cells or any other defects generated while handling.
Indeed, today, everyone involved in PV project development is aware of the EL inspection as a non-invasive and hands-on methodology for the detection of electrical-based defects in solar PV modules .
With the help of an EL test, a PV manufacturer can evaluate the structural quality of the PV cells or any other defects generated while handling. Defects that can be found from EL are as given below: Microcracks can create an electrical separation, resulting in inactive cell part. Determining the power loss caused by microcracks is difficult.
Due to its importance, solar module manufacturers frequently undertake EL testing twice during the manufacturing process. If left unchecked, cold soldering can develop into hot spots, lowering the module’s power and causing a fire risk. Figure 3: Sample module with soldering defects
The introduction of EL imaging to testing in-situ at PV power plants has been imaging a transformative approach, providing a detailed examination of a module's internal condition to uncover hidden flaws.
Having the EL images allows the site owner to have a baseline from which to work. Particularly, given that microcracks may also occur during the handling, installation, and operation of the solar asset. Thus, conducting EL imaging in-situ at the PV power plants is a good measure.