Energy yield

Bifacial modules

Turning on rear-side generation, what the bifaciality factor and ground albedo mean, and how the rear-side gain is estimated.

A bifacial module generates from light reaching its rear face as well as its front. The rear face sees mostly light that has bounced off the ground between and under the rows, so the gain it produces is a property of the site as much as of the module: the same module over dry sand and over dark wet soil does not give the same answer.

Two inputs control it, and they sit on two different tabs. The module's own bifaciality lives in Module Specifications on the Array tab; the ground reflectance lives in the Energy Yield card on the Yield tab. Both are needed before any rear-side energy is counted.

Turning it on

The two module-side fields are in the Module Specifications card on the Array tab, under the module dimensions and wattage.

FieldDefaultRangeWhat it does
Bifacial moduleoffCounts rear-side generation in the yield. With it off the module is treated as monofacial, whatever it actually is
Bifaciality factor (φ)0.700.50–0.95Rear-side efficiency as a fraction of front-side efficiency. Greyed out until Bifacial module is ticked

Tick Bifacial module by hand, or let a module file do it for you. Load .PAN reads the manufacturer's .PAN file, and when that file declares the module bifacial it ticks the box and fills Bifaciality factor (φ) with the manufacturer's value; the file row's tooltip then notes the detected φ. You therefore do not have to know whether a given part number is bifacial to get the rear side modelled — see Module specifications.

Neither field moves a single table. Turning bifaciality on changes the energy calculation only; the placed layout, the module count and the DC capacity are identical either way. Run the energy calculation again after changing either one, but there is no need to generate the layout again.

The bifaciality factor

Bifaciality factor (φ) is the module's rear-side efficiency expressed as a fraction of its front-side efficiency. At φ = 0.70, the rear face converts light to power at 70 % of the efficiency of the front face, so one unit of irradiance landing on the back is worth 0.70 of the same unit landing on the front.

  • Typical published values are 0.65 to 0.80. The field accepts 0.50 to 0.95 and ships at 0.70.
  • On a datasheet it appears as a bifaciality, bifaciality factor or rear-side power ratio, usually as a percentage with a tolerance — 70 % ± 5 % is a common form. Divide by 100 before entering it.
  • It is a property of the module and nothing else. Take it from the datasheet or from the module file. Do not tune it to reach a target yield; the site input below is where a design legitimately differs from another.

Ground albedo

Ground albedo (ρ) is the fraction of the light striking the ground that the ground reflects back. Fresh concrete reflects a large fraction; dark tilled soil reflects little. It is the one input in the rear-side model that describes the site rather than the hardware, and on a real project it is the number a lender's reviewer will ask about first.

FieldDefaultRangeWhat it does
Ground albedo (ρ)0.250.05–0.80Ground reflectance used to estimate the light reaching the module's rear face

It is the last plain field of the Energy Yield card on the Yield tab, under its own Bifacial Ground Albedo heading — after the weather source, the irradiance figures and the ambient temperature, mounting type and wind speed, and just above the ADVANCED expanders.

With Bifacial module off there is no rear-side term at all, so raising the albedo changes no rear-side figure. The field is live on the tab either way, which is the first thing that catches people out.

The second is where it lives. Albedo is on a different tab from the module fields it works with, so a reader who ticks Bifacial module on the Array tab and stops there has accepted 0.25 without deciding on it. The split is deliberate — bifaciality is a module property and albedo is a ground property, and the Yield tab is where the site's conditions are gathered — but it does mean the two halves of the same calculation are never on screen together. Set both in one pass.

Albedo is a measured site property, not a default to leave alone. It varies with ground cover, season and how the ground is maintained under the array. Treat 0.25 as a placeholder until you have a figure you can defend.

The field affects the rear side only

Ground albedo (ρ) changes the bifacial gain and nothing else. In particular it does not change the front-side in-plane irradiance. The transposition that turns horizontal irradiance into in-plane irradiance has a ground-reflected term of its own, and that term uses a fixed internal reflectance of 0.20 — the field you set here is never passed to it. See Weather data for the transposition itself.

The practical reading: on a monofacial plant the albedo field is inert, exactly as its own tooltip says. On a bifacial plant it is the site input with the most authority over the rear-side gain — but if you raise it expecting the front-side GTI to move as well, it will not, and neither will the yield of a monofacial design.

How the gain is estimated

Three relations, applied in order. The first estimates the irradiance reaching the rear face, the second is the geometric factor inside it, and the third turns irradiance into a gain.

GTI_rear ≈ GHI × ρ × F_ground_rear × (1 − GCR)

F_ground_rear = (1 + cos(tilt)) / 2

bifacial_gain = φ × GTI_rear / GTI_front

Every term:

TermWhat it is
GTI_rearEstimated annual irradiance reaching the module's rear face, in kWh/m²/yr
GHIGlobal horizontal irradiance — the annual irradiation falling on a horizontal surface at the site, in kWh/m²/yr. The GHI field on the Yield tab, fetched or read from your weather data
ρGround albedo, the field above
F_ground_rearThe ground-to-rear view factor — the fraction of the rear face's field of view that is occupied by ground rather than sky
tiltThe module tilt angle from horizontal, either derived from latitude or overridden by you
GCRGround coverage ratio — the collector width as a fraction of the row pitch. The application reports it as table height divided by row pitch
1 − GCRThe fraction of the ground left uncovered by collectors, and therefore able to be lit and to reflect
GTI_frontGlobal tilted irradiance on the front face — the GTI (in-plane) field, in kWh/m²/yr
φBifaciality factor
bifacial_gainThe rear-side contribution as a fraction of the front-side in-plane irradiation

The view factor falls as tilt rises: at zero tilt the rear face looks straight down and the term is 1, and at 90° it sees half ground and half sky and the term is 0.5. A flatter array therefore has a rear face pointed more squarely at the reflecting ground.

Two consequences follow from these relations directly, and both are design levers rather than curiosities.

A denser array gains less from bifaciality

Rear-side irradiance carries the factor 1 − GCR. Ground coverage ratio is the collector width as a fraction of the row pitch, so packing rows closer raises GCR and shrinks 1 − GCR — there is less exposed ground left between the rows to catch light and bounce it under the modules.

The trade is the familiar one, now with a second term in it. Reducing the row pitch fits more capacity onto the same site, but it costs row-to-row shading and rear-side gain at the same time. On a bifacial plant the optimum pitch sits wider than the same exercise on monofacial modules would suggest. Pitch is set on Spacing and tilt.

A more reflective ground gains more

Rear-side irradiance is directly proportional to ρ. Doubling the albedo doubles the estimated rear irradiance and doubles the gain, everything else held still. That is why ground treatment under and between the rows is a genuine design decision on a bifacial plant, and why the albedo you enter has to match the ground you are actually going to build on — including how it will look after a few years of vegetation management, not on the day of handover.

How much gain to expect

Typical bifacial energy gain over the same plant built with monofacial modules is 5 to 15 %. Where a specific design lands inside that band is decided far more by the ground under the array and by how densely the rows are packed than by the bifaciality factor, which barely varies between current products.

A result outside that band is a signal to check the inputs rather than a result to report. The usual causes are an albedo entered for the wrong ground cover and a row pitch that does not match the design being priced.

Where the gain appears in the results

The gain is an energy effect, so it appears inside the energy figures and nowhere else:

  • The Year-1 energy and Specific yield tiles on the Energy view, the ENERGY rows of the Summary view — the three exceedance probabilities and the lifetime total — and the Year-1 P50 energy chip all carry it.
  • The CUF tile and row carry it, because the capacity factor is computed from first-year energy over the same installed DC capacity.
  • The layout rows — table counts, modules, DC capacity — do not change at all. There is no bifacial row in the Summary view.
  • The gain itself is computed as a percentage, and it is printed on the energy pages of the exported report, beside the inputs and the loss analysis that produced the figures. See Project report.

There is no separate on-screen readout of the gain. Nothing on the Yield tab, the Energy view or the Summary view shows it as its own percentage, so if you need the figure itself, take it from the report's energy pages.

Failing that, the cleanest way to see the effect on a design you have already run is to calculate energy with Bifacial module off, note the first-year figure, then tick it and calculate again. The layout is untouched between the two runs, so the difference is the rear-side contribution and nothing else.

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