| Electrical and thermal finite element modeling of arc faults in photovoltaic bypass diodes. | |
| Bower, Ward Isaac ; Quintana, Michael A. ; Johnson, Jay | |
| Sandia National Laboratories | |
| 关键词: Corrosion; Buildings; 14 Solar Energy; Thermoelectric Properties; Bypasses; | |
| DOI : 10.2172/1035329 RP-ID : SAND2012-0743 RP-ID : AC04-94AL85000 RP-ID : 1035329 |
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| 美国|英语 | |
| 来源: UNT Digital Library | |
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【 摘 要 】
Arc faults in photovoltaic (PV) modules have caused multiple rooftop fires. The arc generates a high-temperature plasma that ignites surrounding materials and subsequently spreads the fire to the building structure. While there are many possible locations in PV systems and PV modules where arcs could initiate, bypass diodes have been suspected of triggering arc faults in some modules. In order to understand the electrical and thermal phenomena associated with these events, a finite element model of a busbar and diode was created. Thermoelectrical simulations found Joule and internal diode heating from normal operation would not normally cause bypass diode or solder failures. However, if corrosion increased the contact resistance in the solder connection between the busbar and the diode leads, enough voltage potentially would be established to arc across micron-scale electrode gaps. Lastly, an analytical arc radiation model based on observed data was employed to predicted polymer ignition times. The model predicted polymer materials in the adjacent area of the diode and junction box ignite in less than 0.1 seconds.
【 预 览 】
| Files | Size | Format | View |
|---|---|---|---|
| 1035329.pdf | 2197KB |
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