Transformador QDTB®

Configurador Híbrido Eólico + Solar + Armazenamento

Configure uma central híbrida eólica + solar + bateria — compatibilização de capacidade e análise de complementaridade, energia P50/P90, LCOE de custo total e uma BOM de equipamentos com preços e diagrama unifilar.

Começar a Calcular Soluções de Energia Renovável

Por que usar esta calculadora

A energia eólica e a solar são complementares — o vento atinge o pico à noite e no inverno, o solar ao meio-dia e no verão. Esta calculadora dimensiona as três tecnologias em conjunto, estima a geração anual a partir dos seus recursos eólico e solar e calcula um LCOE de custo total transparente e conservador.

Worked Examples

Example 1 — 20 MW Wind + 30 MW PV + 20 MWh Storage (Grid) · FOB $54,500,000
Wind + Solar + Storage hybrid · 35kV · grid-connected
91,980 MWh/yr
P50 91,980 · P90 78,183 MWh/yr · LCOE $61.7/MWh
Wind
20 MW
Solar
30 MWp
Storage
20 MWh / 4 h
LCOE (P50)
$61.7/MWh
Est. BOM (FOB)
POA
📦 Bill of Materials
EquipmentModelSpecQty
Wind turbine generators20 MW totalonshore · turbine only $282/kW (FOB reference; tower & BOP quoted per project)1
Wind farm box transformer22000 kVA> 1600 kVA — outside catalogue, quoted per project1
Wind collector cable (集电电缆)35 kV MVradial collector feeders + trenching · quoted per project1
Site access roads & crane pads (场内道路)civilturbine access roads, hardstands & foundations · quoted per project1
Wind turbine erection & crane (吊装)installationheavy-lift crane + erection crew · quoted per project1
PV modules54545 × 550 Wpmono PERC · 30 MWp DC1
String inverters30 MW ACthree-phase · grid-tied1
PV mounting structure30 MWpground-mount1
Battery energy storage (BESS)20 MWhLFP · 90% DoD · 90% RTE1
Power conversion system (PCS)5000 kW4 h duration · bidirectional1
Battery management system (BMS)clustercell monitoring & balancing1
Step-up power transformer52.6 MVAMV/35 kV grid connection · outside distribution catalogue1
📐 Single-line diagram
Wind farm20 MW - 30% CFPV plant30 MWp - 4.5 kWh/m2/dBattery (BESS)20 MWh / 4 hStep-up transformer52.6 MVA (POA)Grid35 kV connection
LEGENDBreaker (52)CTCT (current transformer)PTPT (voltage transformer)50/51Protection relay 50/51/51NkWhMeter (kWh)SPD (surge protection)
⚙️ Electrical schematic (protection & metering)
ELECTRICAL SCHEMATIC - PROTECTION & METERING35 kV / 35 kV - 52632 kVA - secondary circuits (schematic)INCOMING 35 kVCT.../5Aprotection CT5250/5151Novercurrent / earth-faultPT35kV/100Vbus PT (voltage)TRANSFORMER52632 kVAZ = 10%kWhrevenue meteringLV 5235 kV LV BUSSPDCT.../5AWind farm - 330 A50/51CT.../5APV plant - 495 A50/51CT.../5ABESS - 82 A50/51
⛳ Grounding grid layout
SUBSTATION GROUNDING GRID LAYOUTsite 40 m x 30 m - ring earth electrode (schematic)HYBRID PLANTR1R2R3R4R5R6R7R840 mGround rods: 8 x dia 16 mm x 2.5 m copper-bonded steelRod spacing: 5 m (= 2 x rod length, ring electrode)Target resistance: <= 4 ohm (measure after installation)Standard: IEEE 80 / GB-T 50065 (earthing design) - indicative layout
🔌 Cable schedule & routing
CABLE SCHEDULE - HYBRID PLANTIDFromToCable (model / spec)LengthC1Wind farm35 kV collector busYJV 26/35kV - 330 A11000 mC2PV plant35 kV collector busYJV 26/35kV - 495 A11000 mC3BESS35 kV collector busYJV 26/35kV - 82 A11000 mPOI35 kV bus35 kV POI (step-up 52632 kVA)35 kV XLPE16500 mROUTING (schematic)LV PANELL1L2L3L4Cable lengths are indicative (run-length based); confirm on site before installation.
🗄 Switchgear arrangement
SWITCHGEAR ARRANGEMENT - HYBRID PLANTpanel lineup (front view, schematic)CB1Wind farmCB2PV plantCB3BESSTR52632 kVAPOI35 kV5 panel(s) - each 128 mm (typical)Clearance / aisle per IEC 61936-1 - layout indicative
🛡 Protection configuration
PROTECTION CONFIGURATION35 kV / 35 kV - 52632 kVA - protection zones (schematic)INCOMING 35 kVCTCT 900/5A505151Novercurrent / earth-fault52TRANSFORMER52632 kVA - Z=10%8749differential + thermalCTCT 900/5A505151NLV incoming protection5235 kV LV BUSCTCT .../5A50/5151NWind farm330 ACTCT .../5A50/5151NPV plant495 ACTCT .../5A50/5151NBESS82 AProtection layout & CT ratios are schematic / illustrative final settings per IEC 60255 / IEEE 242.
📋 Protection settings
CircuitProtectionSettingTimeStandard
Wind farm collector50/51 overcurrent396 A0.1 sIEC 60255-151
PV plant collector50/51 overcurrent594 A0.1 sIEC 60255-151
BESS collector50/51 overcurrent99 A0.1 sIEC 60255-151
Step-up transformer 52632 kVA87 differential0.2 x CTinstIEEE C37.91 / GB/T 14285
Step-up transformer 52632 kVA50/51 overcurrent1042 A0.3 sIEC 60255-151
Step-up transformer 52632 kVA49 thermal100% ratedalarm 90%IEC 60076-7 / IEEE C57.91
Grid interconnection 35 kVanti-islanding / ROCOFper grid codeper grid codeIEEE 1547 / GB/T 19964-2024
Grid interconnection 35 kVAGC / AVC dispatch interfaceper grid codeper grid codeGB/T 19963 / IEEE 1547
Dispatch data networkIEC 60870-5-104 telecontrolRTU + comm linkper grid codeIEC 60870-5-104
Power forecastPV / wind power forecast interface15-min resolutionper grid codeGB/T 19964-2024
Settings are illustrative starting points — confirm with a protection coordination study per IEC 60255 / IEEE 242.
📚 Calculation book
CALCULATION BOOK
Wind-solar-storage hybrid - 35 kV - grid-tied - illustrative
1. Wind resource
Standard: IEC 61400 (wind energy)
ParameterFormulaValue
CapacityPwind20 MW
Capacity factorcf @ 7 m/s30%
Annual energyE = P x cf x 876052,560 MWh/yr
2. PV resource
Standard: IEC 61724
ParameterFormulaValue
CapacityPpv30 MWp
Specific yieldGHI x 365 x PR1314 kWh/kWp/yr
Annual energyE = P x specific yield39,420 MWh/yr
3. Storage
Standard: IEC 62933 (EES)
ParameterFormulaValue
Energy capacityMWh20 MWh / 4 h
PowerP = MWh / h5.0 MW
Round-trip efficiencyrte90% - DoD 90%
4. Generation & complementarity
Standard: resource assessment (illustrative)
ParameterFormulaValue
Total energy (P50)E_wind + E_pv91,980 MWh/yr
P90P50 x 0.8578,183 MWh/yr
Complementaritywind sharestrong (balanced wind + solar)
5. Step-up & economics
Standard: IEC 60076 - NREL ATB
ParameterFormulaValue
Step-up transformerkVA52632 kVA (52.6 MVA)
Installed CAPEXwind + PV + storage$54,500,000
LCOE (P50)full-cost$61.7/MWh
This calculation book is illustrative resource factors and costs are typical assumptions. A licensed engineer must verify and seal final design documents.
🔧 Secondary schematic (control & signal)
SECONDARY CONTROL & SIGNAL CIRCUIT35 kV circuit breaker close/trip + indication + interlock (TYPICAL)+control supplyCS (close)interlock52Cclose coil-TC (trip)prot trip52Ttrip coilSIGNAL (indication)52a (closed)REDbreaker closed-TYPICAL CIRCUITStandard control/signal scheme for COLLECTOR FEEDER 1.Project detailing required (wiring, terminal assignment).
🔩 Terminal strip (typical)
TERMINAL STRIP (TYPICAL)X1 secondary wiring terminals (typical project detailing required)TerminalFunctionWireX1:1control supply L+1.5 mm2X1:2control supply L-1.5 mm2X1:3close command1.5 mm2X1:4trip command1.5 mm2X1:5breaker 52a status1.5 mm2X1:6breaker 52b status1.5 mm2X1:7trip circuit healthy1.5 mm2X1:8earth / shield2.5 mm2
🌬️☀️ Resource & generation
ParameterValue
Wind capacity factor30% at 7 m/s (illustrative)
Wind energy52,560 MWh/yr
PV specific yield1,314 kWh/kWp/yr (4.5 kWh/m²/day, PR 0.8)
PV energy39,420 MWh/yr
Complementaritystrong (balanced wind + solar)
💰 Economics (full-cost, illustrative)
ParameterValue
Installed CAPEX$54,500,000 (wind $1,150/kW · PV $850/kW · storage $300/kWh)
Annual OPEX$1,000,000
P50 generation91,980 MWh/yr
P90 generation78,183 MWh/yr
LCOE (P50)$61.7/MWh
LCOE (P90)$72.6/MWh
📏 Standard basis (依据标准)
TopicStandard
Wind grid connectionGB/T 19963 — technical rule for connecting wind farm to power system
PV grid connectionGB/T 19964-2024 — technical rule for connecting photovoltaic power station to power system
Wind turbinesIEC 61400 — wind turbines (design requirements)
Battery storageGB/T 36547 — technical rule for electrochemical energy storage connecting to power grid
🧮 How it was calculated
1. Wind: 20 MW × CF 0.30 (at 7 m/s) × 8760 h = 52,560 MWh/yr
2. PV: 30 MWp × 4.5 kWh/m²/day × 365 × PR 0.8 = 39,420 MWh/yr
3. Combined P50 = 91,980 MWh/yr · P90 = 78,183 MWh/yr (0.85 × P50, illustrative)
4. Storage: 20 MWh / 4 h = 5000 kW PCS · DoD 90% · RTE 90%
5. Complementarity: strong (balanced wind + solar)
6. Full-cost LCOE = (CAPEX × CRF + OPEX) ÷ energy = ($54,500,000 × 0.0858 + $1,000,000) ÷ 91,980 MWh = $61.7/MWh (illustrative)
Summary
Estimated total (FOB Qingdao, EXW) — priced equipment$14,577,056
📋 Design notes
Economics basis (illustrative): LCOE uses installed-cost basis: wind $1,150/kW, PV $850/kW, storage $300/kWh (NREL 2024 ATB / Lazard 2024 typical ranges). Excludes taxes, financing fees, degradation and curtailment. Actual project economics vary by site.
BOM vs economics reconciliation (P2-12): The BOM FOB total ($14,577,056) prices only the catalogue items (PV + storage); wind turbines and the step-up transformer are POA. The illustrative installed CAPEX ($54,500,000) adds wind at $1,150/kW and covers full turnkey installed cost — the two figures use different bases and are not directly comparable.
P50 / P90: P50 = expected annual generation; P90 = 0.85 × P50 (conservative one-year exceedance, illustrative resource variability). A bankable P90 uses site-measured interannual variability, not a fixed 0.85 factor.
Wind BOP: The wind farm balance-of-plant — collector cables, site access roads, crane pads, foundations and heavy-lift erection — is quoted per project and is included in the illustrative installed CAPEX (not the FOB BOM).
POA equipment: Wind turbine generators and the step-up power transformer (outside the distribution catalogue) are quoted per project (POA) — the BOM prices only the PV and storage from the catalogue.
Grid mode: Grid-connected: the hybrid plant sells energy and uses storage for shifting/firming.
Example 2 — 50 MW PV + 30 MWh Storage (Off-grid) · FOB $51,500,000
Wind + Solar + Storage hybrid · 35kV · off-grid
80,300 MWh/yr
P50 80,300 · P90 68,255 MWh/yr · LCOE $65.0/MWh
Wind
0 MW
Solar
50 MWp
Storage
30 MWh / 2 h
LCOE (P50)
$65.0/MWh
Est. BOM (FOB)
POA
📦 Bill of Materials
EquipmentModelSpecQty
PV modules90909 × 550 Wpmono PERC · 50 MWp DC1
String inverters50 MW ACthree-phase · grid-tied1
PV mounting structure50 MWpground-mount1
Battery energy storage (BESS)30 MWhLFP · 90% DoD · 90% RTE1
Power conversion system (PCS)15000 kW2 h duration · bidirectional1
Battery management system (BMS)clustercell monitoring & balancing1
Step-up power transformer52.6 MVAMV/35 kV grid connection · outside distribution catalogue1
📐 Single-line diagram
Wind farm0 MW - 23% CFPV plant50 MWp - 5.5 kWh/m2/dBattery (BESS)30 MWh / 2 hStep-up transformer52.6 MVA (POA)Load / microgridoff-grid
LEGENDBreaker (52)CTCT (current transformer)PTPT (voltage transformer)50/51Protection relay 50/51/51NkWhMeter (kWh)SPD (surge protection)
⚙️ Electrical schematic (protection & metering)
ELECTRICAL SCHEMATIC - PROTECTION & METERING35 kV / 35 kV - 52632 kVA - secondary circuits (schematic)INCOMING 35 kVCT.../5Aprotection CT5250/5151Novercurrent / earth-faultPT35kV/100Vbus PT (voltage)TRANSFORMER52632 kVAZ = 10%kWhrevenue meteringLV 5235 kV LV BUSSPDCT.../5APV plant - 825 A50/51CT.../5ABESS - 247 A50/51
⛳ Grounding grid layout
SUBSTATION GROUNDING GRID LAYOUTsite 40 m x 30 m - ring earth electrode (schematic)HYBRID PLANTR1R2R3R4R5R6R7R840 mGround rods: 8 x dia 16 mm x 2.5 m copper-bonded steelRod spacing: 5 m (= 2 x rod length, ring electrode)Target resistance: <= 4 ohm (measure after installation)Standard: IEEE 80 / GB-T 50065 (earthing design) - indicative layout
🔌 Cable schedule & routing
CABLE SCHEDULE - HYBRID PLANTIDFromToCable (model / spec)LengthC1PV plant35 kV collector busYJV 26/35kV - 825 A13000 mC2BESS35 kV collector busYJV 26/35kV - 247 A13000 mPOI35 kV bus35 kV POI (step-up 52632 kVA)35 kV XLPE19500 mROUTING (schematic)LV PANELL1L2L3Cable lengths are indicative (run-length based); confirm on site before installation.
🗄 Switchgear arrangement
SWITCHGEAR ARRANGEMENT - HYBRID PLANTpanel lineup (front view, schematic)CB1PV plantCB2BESSTR52632 kVAPOI35 kV4 panel(s) - each 160 mm (typical)Clearance / aisle per IEC 61936-1 - layout indicative
🛡 Protection configuration
PROTECTION CONFIGURATION35 kV / 35 kV - 52632 kVA - protection zones (schematic)INCOMING 35 kVCTCT 900/5A505151Novercurrent / earth-fault52TRANSFORMER52632 kVA - Z=10%8749differential + thermalCTCT 900/5A505151NLV incoming protection5235 kV LV BUSCTCT .../5A50/5151NPV plant825 ACTCT .../5A50/5151NBESS247 AProtection layout & CT ratios are schematic / illustrative final settings per IEC 60255 / IEEE 242.
📋 Protection settings
CircuitProtectionSettingTimeStandard
PV plant collector50/51 overcurrent990 A0.1 sIEC 60255-151
BESS collector50/51 overcurrent297 A0.1 sIEC 60255-151
Step-up transformer 52632 kVA87 differential0.2 x CTinstIEEE C37.91 / GB/T 14285
Step-up transformer 52632 kVA50/51 overcurrent1042 A0.3 sIEC 60255-151
Step-up transformer 52632 kVA49 thermal100% ratedalarm 90%IEC 60076-7 / IEEE C57.91
Grid interconnection 35 kVanti-islanding / ROCOFper grid codeper grid codeIEEE 1547 / GB/T 19964-2024
Grid interconnection 35 kVAGC / AVC dispatch interfaceper grid codeper grid codeGB/T 19963 / IEEE 1547
Dispatch data networkIEC 60870-5-104 telecontrolRTU + comm linkper grid codeIEC 60870-5-104
Power forecastPV / wind power forecast interface15-min resolutionper grid codeGB/T 19964-2024
Settings are illustrative starting points — confirm with a protection coordination study per IEC 60255 / IEEE 242.
📚 Calculation book
CALCULATION BOOK
Wind-solar-storage hybrid - 35 kV - off-grid - illustrative
1. Wind resource
Standard: IEC 61400 (wind energy)
ParameterFormulaValue
CapacityPwind0 MW
Capacity factorcf @ 6 m/s23%
Annual energyE = P x cf x 87600 MWh/yr
2. PV resource
Standard: IEC 61724
ParameterFormulaValue
CapacityPpv50 MWp
Specific yieldGHI x 365 x PR1606 kWh/kWp/yr
Annual energyE = P x specific yield80,300 MWh/yr
3. Storage
Standard: IEC 62933 (EES)
ParameterFormulaValue
Energy capacityMWh30 MWh / 2 h
PowerP = MWh / h15.0 MW
Round-trip efficiencyrte90% - DoD 90%
4. Generation & complementarity
Standard: resource assessment (illustrative)
ParameterFormulaValue
Total energy (P50)E_wind + E_pv80,300 MWh/yr
P90P50 x 0.8568,255 MWh/yr
Complementaritywind sharesolar-dominant (add wind for nighttime/winter coverage)
5. Step-up & economics
Standard: IEC 60076 - NREL ATB
ParameterFormulaValue
Step-up transformerkVA52632 kVA (52.6 MVA)
Installed CAPEXwind + PV + storage$51,500,000
LCOE (P50)full-cost$65.0/MWh
This calculation book is illustrative resource factors and costs are typical assumptions. A licensed engineer must verify and seal final design documents.
🔧 Secondary schematic (control & signal)
SECONDARY CONTROL & SIGNAL CIRCUIT35 kV circuit breaker close/trip + indication + interlock (TYPICAL)+control supplyCS (close)interlock52Cclose coil-TC (trip)prot trip52Ttrip coilSIGNAL (indication)52a (closed)REDbreaker closed-TYPICAL CIRCUITStandard control/signal scheme for COLLECTOR FEEDER 1.Project detailing required (wiring, terminal assignment).
🔩 Terminal strip (typical)
TERMINAL STRIP (TYPICAL)X1 secondary wiring terminals (typical project detailing required)TerminalFunctionWireX1:1control supply L+1.5 mm2X1:2control supply L-1.5 mm2X1:3close command1.5 mm2X1:4trip command1.5 mm2X1:5breaker 52a status1.5 mm2X1:6breaker 52b status1.5 mm2X1:7trip circuit healthy1.5 mm2X1:8earth / shield2.5 mm2
🌬️☀️ Resource & generation
ParameterValue
Wind capacity factor23% at 6 m/s (illustrative)
Wind energy0 MWh/yr
PV specific yield1,606 kWh/kWp/yr (5.5 kWh/m²/day, PR 0.8)
PV energy80,300 MWh/yr
Complementaritysolar-dominant (add wind for nighttime/winter coverage)
💰 Economics (full-cost, illustrative)
ParameterValue
Installed CAPEX$51,500,000 (wind $1,150/kW · PV $850/kW · storage $300/kWh)
Annual OPEX$800,000
P50 generation80,300 MWh/yr
P90 generation68,255 MWh/yr
LCOE (P50)$65.0/MWh
LCOE (P90)$76.5/MWh
📏 Standard basis (依据标准)
TopicStandard
Wind grid connectionGB/T 19963 — technical rule for connecting wind farm to power system
PV grid connectionGB/T 19964-2024 — technical rule for connecting photovoltaic power station to power system
Wind turbinesIEC 61400 — wind turbines (design requirements)
Battery storageGB/T 36547 — technical rule for electrochemical energy storage connecting to power grid
🧮 How it was calculated
1. Wind: 0 MW × CF 0.23 (at 6 m/s) × 8760 h = 0 MWh/yr
2. PV: 50 MWp × 5.5 kWh/m²/day × 365 × PR 0.8 = 80,300 MWh/yr
3. Combined P50 = 80,300 MWh/yr · P90 = 68,255 MWh/yr (0.85 × P50, illustrative)
4. Storage: 30 MWh / 2 h = 15000 kW PCS · DoD 90% · RTE 90%
5. Complementarity: solar-dominant (add wind for nighttime/winter coverage)
6. Full-cost LCOE = (CAPEX × CRF + OPEX) ÷ energy = ($51,500,000 × 0.0858 + $800,000) ÷ 80,300 MWh = $65.0/MWh (illustrative)
Summary
Estimated total (FOB Qingdao, EXW) — priced equipment$14,787,062
📋 Design notes
Economics basis (illustrative): LCOE uses installed-cost basis: wind $1,150/kW, PV $850/kW, storage $300/kWh (NREL 2024 ATB / Lazard 2024 typical ranges). Excludes taxes, financing fees, degradation and curtailment. Actual project economics vary by site.
BOM vs economics reconciliation (P2-12): The BOM FOB total ($14,787,062) prices only the catalogue items (PV + storage); wind turbines and the step-up transformer are POA. The illustrative installed CAPEX ($51,500,000) adds wind at $1,150/kW and covers full turnkey installed cost — the two figures use different bases and are not directly comparable.
P50 / P90: P50 = expected annual generation; P90 = 0.85 × P50 (conservative one-year exceedance, illustrative resource variability). A bankable P90 uses site-measured interannual variability, not a fixed 0.85 factor.
Wind BOP: The wind farm balance-of-plant — collector cables, site access roads, crane pads, foundations and heavy-lift erection — is quoted per project and is included in the illustrative installed CAPEX (not the FOB BOM).
POA equipment: Wind turbine generators and the step-up power transformer (outside the distribution catalogue) are quoted per project (POA) — the BOM prices only the PV and storage from the catalogue.
Grid mode: Off-grid mode: storage (and typically a diesel genset) must balance generation against load around the clock — contact us for a microgrid sizing.

Como foi calculado

Como funciona o dimensionamento

Energia eólica = capacidade × fator de capacidade × 8760 h (fator de capacidade a partir da velocidade do vento). Energia PV = capacidade × GHI × 365 × performance ratio (0,80). Potência de armazenamento = energia ÷ duração. P50 é a geração anual esperada; P90 é um valor conservador de 0,85 × P50. LCOE = (CAPEX × CRF + OPEX) ÷ energia anual, com base no custo instalado.

Normas aplicáveis

O dimensionamento segue GB/T 19963 (ligação à rede de parques eólicos), GB/T 19964-2024 (ligação à rede de centrais PV), IEC 61400 (turbinas eólicas) e GB/T 36547 (ligação à rede de armazenamento em baterias).

Perguntas frequentes

How do I size a wind + solar + storage hybrid plant?

Size PV and wind to match the load or export profile, then add storage to firm the output. The calculator's default is 20 MW wind + 30 MW PV + 20 MWh/4 h storage. Capacity is matched against hourly resource and load; storage covers the gap between variable generation and demand. The configurator reports capacity, energy and LCOE.

What is complementarity between wind and solar?

Wind often peaks at night and in winter while solar peaks by day and in summer, so combining them smooths total output and reduces the storage needed to firm it. Good wind-solar complementarity can raise the capacity factor 10-20% over either alone. The configurator analyzes the combined P50/P90 energy profile.

What is the typical capacity factor of a hybrid plant?

Solar-alone capacity factors run 15-20%, onshore wind 25-35%, and a well-matched hybrid 25-40%. The higher and smoother the capacity factor, the better the LCOE and grid value. The configurator computes the combined capacity factor from the wind speed and irradiation inputs.

How does storage firm a renewable hybrid plant?

Storage charges during high-generation, low-price hours and discharges when wind and solar fall short, converting a variable output into a firmer, dispatchable profile. A 4-hour battery covers most daily gaps; 20 MWh/4 h is the calculator default. This raises the share of energy deliverable during peak-price windows.

What grid codes apply to wind-solar-storage hybrids?

Wind turbines follow IEC 61400 and GB/T 19960; PV follows GB/T 19964; storage follows GB/T 36547 and IEC 62933; and hybrid plants follow GB/T 19963 for grid connection. The configurator cites these standards and applies their voltage/frequency ride-through requirements to the design.

What LCOE can a wind-solar-storage hybrid achieve?

Utility hybrids in good resource areas achieve $0.03-0.06/kWh, with storage adding $0.01-0.03/kWh depending on the storage-to-generation ratio. The 20 MW wind + 30 MW PV + 20 MWh default typically lands near $0.04-0.05/kWh. The configurator computes full-cost LCOE with WACC, O&M and degradation.

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Os resultados são estimativas de engenharia para referência. O dimensionamento final deve ser confirmado por um engenheiro local licenciado, de acordo com as condições do local e os códigos aplicáveis. Os preços são FOB Qingdao (EXW) e não incluem frete, direitos aduaneiros ou instalação.

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