I have a few questions about best* practices for modeling cell temperature with bifacial systems. Assuming I wanted to use the Faiman (or possibly PVsyst, faimain_rad) temperature model:
- Should modeled (or measured) rear POA irradiance be included in the effective irradiance that goes into the temperature model?
- If the answer to #1 is "yes", should it be after bifaciality (e.g., 0.8) is applied to rear POA?
- If the answer to #1 is "yes", how might default values of coefficients (U1, U0, etc.) be changed?
On #1, rear irradiance obviously matter for cell temperature, but it also matters (some) for monofacial modules, and I don't think it's common to calculate rear irradiance for monofacial and then apply some sort of backsheet absorptivity factor (e.g., 0.1 or something small but non-zero) to it. More importantly, I don't think Faiman or PVsyst models originally considered this.
On #2, bifaciality typically refers to electrical performance, not absorptivity, so I'm not sure it's the right value to apply. As an extreme example, First Solar Series 6 Plus Bificial has a bifacility of 0.15, but I don't think that means that it is 85% reflective.
On #3, I think this is the most important question. I think the answer to #1 is "yes" and the answer to 2 is "yes, sort of, it's better than nothing, maybe just use 0.8 or 0.9 no matter what the spec sheet says". Then the key thing is what to do about coefficients if you don't have time or data to fit your own. Re-using the same defaults could bias any monofacial-vs-bifacial modeling exercises.
This study [1] seems relevant. They fit coefficients, and it looks to me like scaling U0 and U1 up by about 5-10% might be a good approach. But how much the coefficients increase goes up with albedo, so it gets a bit circular: the more rear POA you have added to effective irradiance, the more you reduce the impact of irradiance in the temperature model.
Thanks!
Will
*"best" could mean many things here: "common", "worth-trying", "probably-not-terrible", etc...