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Unit economics · Modelled estimate

What a kilowatt-hour costs a business in Aruba

Grid electricity costs 0.314 USD per kWh. With solar sized at 120% of consumption and a battery that carries one night, every kilowatt-hour you consume costs 0.067 — grid purchase for the hours you are not covered, plus the installation written off, minus what you earn on exports.

Cost per kWh

Reliable
Grid only 0.314
Solar, no battery 0.146
Solar + battery 0.067
The panels themselves 0.016

0.247 USD per kWh cheaper than the grid — a 79% lower cost per consumed kilowatt-hour.

What shapes the cost here

Grid reliability
Reliable
Population with grid access
100.0%
Installation labour cost
0.72 × Belgium
Solar yield
1,750 kWh/kWp

Net saving over 25 years

6,108USD per kWp

Solar only, after deducting the installation. A 500 kWp roof: about 3,054,000 USD over the lifetime.

How long until it pays for itself

Against the grid tariff
Solar only 2.2years
Solar + day-night battery 2.9years
Solar + three-day battery 8.9years

Households, for reference

Grid
0.211
Solar + battery
0.097
Payback, solar only
5.4 years

What is in the calculation

Self-consumption at the retail price and exports at 25% of it. Installation split into hardware (similar worldwide) and labour, scaled per country. Solar written off over 25 years with output declining to 85%, batteries over 15 years.

What is not included

No discounting, maintenance, financing, subsidies, import duties or price rises. Peak shaving and arbitrage are left out until we hold the tariff data per country — so a real case is usually better than this, not worse.

These are modelled averages for the country, meant for comparing markets. Your own case runs on your roof, your load profile and your tariff — the configurator computes it with the rules that apply here.

Download these figures (JSON)

How each figure is calculated
FigureUnitDefinition
Installation labour cost×Cost of installation labour relative to Belgium (1.0). Eurostat construction labour cost for Europe, elsewhere derived from GDP per capita. Hardware is priced the same worldwide; only the labour part is scaled.
Grid access%Share of the population with an electricity connection (World Bank, most recent year).
Grid reliability1 = reliable (rare outages), 2 = moderate (occasional outages or regional load shedding), 3 = unreliable (frequent outages or structural load shedding). The tier decides what solar is compared against: the grid tariff, a diesel generator, or both.
Grid priceUSD/kWhAll-in retail price of a kilowatt-hour taken from the grid, the baseline every other figure is measured against.
Solar cost over 25 yearsUSD/kWhInstallation cost divided by everything the panels produce over 25 years, with output declining to 85 percent. The cost of the panels themselves, not of a consumed kilowatt-hour.
Cost per kWh with solarUSD/kWhWhat a consumed kilowatt-hour costs with solar and no battery: grid purchase for the uncovered hours, plus the installation written off, minus the revenue on exported power.
Cost per kWh with solar and batteryUSD/kWhThe same calculation with a battery that carries one night, written off over 15 years.
Cost per kWh against dieselUSD/kWhCost of a consumed kilowatt-hour where the alternative is a generator: solar with three days of storage, with the generator covering what is left.
Net saving over 25 yearsUSD/kWpWhat one kWp of solar saves over 25 years after deducting the installation: self-consumption at the retail price plus exports at a quarter of it.
Payback, solar onlyyearsYears until the annual saving has paid back the installation, without discounting. Longer than ten years is reported as "over ten years": at that horizon the assumptions matter more than the outcome.
Payback, solar and batteryyearsThe same, for solar plus a battery that carries one night.
Payback, solar and three-day batteryyearsThe same, for solar plus three days of storage measured against the grid tariff. Three days of storage buys autonomy; against a cheap tariff it rarely pays for itself.
Payback against dieselyearsYears until solar with three days of storage has paid for itself against the fuel and maintenance of a generator.
Annual savingUSD/kWp/yearWhat one kWp of solar saves in a year: self-consumption at the retail price plus exports at a quarter of it.

Solar autonomy scorecard · Modelled estimate

Can a business in Aruba run on solar and a battery?

With PV sized at 120% of annual consumption, a battery that carries one night covers 91% of the demand in Aruba; a battery holding three days of consumption lifts that to 100%.

Generation is almost flat through the year: the strongest month yields 1.4× the weakest, so there is no season to bridge.

Even in the three leanest months practically nothing is left uncovered.

Businesses pay on average 0.314 USD per kWh, households 0.211 USD per kWh.

Electricity price, businesses
0.314USD/kWh
Electricity price, households
0.211USD/kWh
PV yield
1,750kWh/kWp
Seasonal spread
1.4×strongest ÷ weakest month
Three-day battery
12.0kWh/kWp
Lean-season deficit
0.0%of annual consumption

Two battery scenarios

Both with PV sized at 120% of annual consumption.

Day-night battery

Stores the daytime surplus for the following night.

Self-sufficiency
91%
Self-consumption
76%
Battery size
2.2 kWh/kWp

Three-day battery

Holds three full days of consumption, to ride through overcast spells.

Self-sufficiency
100%
Self-consumption
83%
Battery size
12.0 kWh/kWp

Generation and demand through the year

Share of the annual total per month. Modelled from latitude and climate class, not measured.

0%6%12%JanFebMarAprMayJunJulAugSepOctNovDec
PV yield Consumption
Weakest month
6.5%
Strongest month
9.2%
Seasonal spread
1.4×
Consumption profile
summer peak (cooling)
Climate class
desert
PV yield / Consumption — Aruba
JanFebMarAprMayJunJulAugSepOctNovDec
PV yield (%)6.78.39.19.29.08.88.99.19.28.46.96.6
Consumption (%)6.96.97.38.18.99.810.210.29.48.17.36.9

No seasonal gap to bridge

Even in the three leanest months practically nothing is left uncovered.

Every modelled value for Aruba

The same fields as the downloadable dataset, with their definition.

VariableValueDefinition
ContinentcontinentNorth America / CaribbeanContinent the country belongs to.
CountrycountryArubaCountry name in English.
RegionregionClimate region within the country; empty when the country is modelled as one region.
Electricity price, householdsprice_households_usd_mwh0.211 USD/kWh USD/MWhAverage all-in retail price for households, national average. Static average, not a dynamic or market price.
Electricity price, businessesprice_businesses_usd_mwh0.314 USD/kWh USD/MWhAverage all-in retail price for businesses, national average. Empty where the source publishes no business price.
PV yieldpv_yield_kwh_kwp1,750 kWh/kWp/yearEstimated annual yield of a well-oriented PV system per installed kWp, rounded to the nearest fifty.
Weakest month shareweakest_month_share_pct6.5%Share of the annual yield produced in the weakest of the twelve months (the wet season in monsoon climates, winter elsewhere). A perfectly flat year gives one twelfth per month.
Strongest month sharestrongest_month_share_pct9.2%Share of the annual yield produced in the strongest of the twelve months.
Seasonal spreadseasonal_spread1.4×Strongest month divided by weakest month. Close to one means flat generation all year; above ten means strongly seasonal.
Self-consumption, day-night batteryself_consumption_daynight_pct76%Share of the PV generation that is used on site with a battery sized to carry one night. Equals self-sufficiency divided by the oversizing factor.
Self-sufficiency, day-night batteryself_sufficiency_daynight_pct91%Share of the annual consumption covered by PV plus a battery sized to carry one night. Never above one hundred percent.
Battery size, day-nightbattery_daynight_kwh_kwp2.2 kWh/kWpBattery capacity needed to carry the night-time share of one day of consumption, per kWp of PV.
Self-consumption, three-day batteryself_consumption_3day_pct83%Share of the PV generation that is used on site with a battery holding three days of consumption.
Self-sufficiency, three-day batteryself_sufficiency_3day_pct100%Share of the annual consumption covered by PV plus a battery holding three days of consumption. This is the figure the energy-island assessment is based on.
Battery size, three-daybattery_3day_kwh_kwp12 kWh/kWpBattery capacity equal to three days of consumption, per kWp of PV.
Consumption profileconsumption_profilesummer peak (cooling)Assumed seasonal shape of demand for the climate: winter peak (heating), summer peak (cooling), double peak or near-flat.
Lean-season deficitwinter_deficit_pct0%Demand that stays unmet during the three consecutive lowest-yield months, despite the three-day battery, as a share of annual consumption. It is what remains for the grid, a backup generator or seasonal storage.
Lean-season deficit, absolutewinter_deficit_kwh_kwp0 kWh/kWpThe same deficit expressed in kWh per kWp of PV.
Latitudelatitude12.5 °Representative latitude used by the astronomical yield model; negative is the southern hemisphere.
Climate classclimatedesertClimate class that sets the monthly cloud pattern, day-to-day variability and consumption profile.
Monthly yield sharesmonthly_yield_share_pct6.7 · 8.3 · 9.1 · 9.2 · 9.0 · 8.8 · 8.9 · 9.1 · 9.2 · 8.4 · 6.9 · 6.6Twelve values, January to December: share of the annual PV yield per month. Modelled from latitude and climate class, not measured.
Monthly consumption sharesmonthly_consumption_share_pct6.9 · 6.9 · 7.3 · 8.1 · 8.9 · 9.8 · 10.2 · 10.2 · 9.4 · 8.1 · 7.3 · 6.9Twelve values, January to December: assumed share of the annual consumption per month.

Download this scorecard as JSON

How the model works

Monthly PV yield comes from an astronomical model (latitude, declination, tilt) multiplied by a climate pattern for cloud and rain. Day-to-day variability follows a gamma distribution per climate; multi-day coverage is the sum of independent days. Seasonal consumption is set per climate: a winter peak for heating, a summer peak for cooling, a double peak in Mediterranean climates.

Fixed assumptions

PV sized at 120% of annual consumption; 55% of consumption falls outside direct sun hours; battery round-trip efficiency 92%.

What it is not

An analytical approximation, not an hourly simulation of your site. Prices are static national averages, not dynamic or market prices. The deficit is not a storage recommendation: it quantifies what remains for grid, backup or seasonal storage.

Sources

  • Electricity prices: national averages, Q2 2026.
  • PV yield: Estimates in line with Global Solar Atlas (World Bank / Solargis), rounded to the nearest 50 kWh/kWp.
  • Licence: CC BY 4.0.
  • Dataset updated 2026-09-22

From country average to your own roof

The configurator is not live for Aruba yet. See where it runs today, or ask us to model your site.

Aruba — solar autonomy in short

Can a business in Aruba go off-grid with solar and a battery?

With PV sized at 120% of annual consumption, a battery that carries one night covers 91% of the demand in Aruba; a battery holding three days of consumption lifts that to 100%. Even in the three leanest months practically nothing is left uncovered.

How large a battery does solar autonomy take in Aruba?

Per kWp of PV, carrying one night takes about 2.2 kWh of battery and holding three days of consumption about 12.0 kWh. With the three-day battery, self-sufficiency reaches 100%.

How much does solar generation in Aruba vary between seasons?

A well-oriented system yields about 1,750 kWh per kWp a year. The strongest month produces 1.4× the weakest: 9.2% against 6.5% of the annual yield.

What does electricity cost in Aruba?

Businesses pay on average 0.314 USD per kWh, households 0.211 USD per kWh.

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