COMPLETE SOLAR INVERTER PRODUCT PORTFOLIO
1. String Inverters
Flexible Conversion for Distributed Solar
Applications
- Residential Systems
- Commercial Rooftop
- Industrial Factories
- Distributed Grids
Key Features
- Multiple MPPTs
- High Efficiency
- Flexible Layouts
- Smart Monitoring
2. Central Inverters
High-Capacity Conversion for Utility Solar Plants
Applications
- Utility Solar Farms
- Ground Mount PV
- Large Industrial
- Energy Bases
Key Features
- High Power Density
- Central Management
- Reduced BOS Cost
- Grid Support Ready
3. MV Inverter Stations
Integrated Inverter and Transformer Solution
Applications
- Utility Mega Farms
- Grid-Tie Projects
- Large Scale PV
- High-Voltage Subs
Key Features
- Skid-Mounted Unit
- Transformer Inside
- Plug & Play Station
- High Reliability
COMPLETE SOLAR POWER CONVERSION & GRID INTEGRATION SYSTEM
Solar PV Modules
DC Combiner Box
String/Central Inverter
MV Transformer
MV Switchgear
Grid Connection
Splendor Energy provides complete inverter-based power conversion solutions, integrating inverters with transformers, switchgear, and energy management systems.
STRING INVERTER VS. CENTRAL INVERTER VS. MV INVERTER STATION
Integrated PV + BESS Solution
BEss Product Application Gallery
Frequently Asked Questions About Solar String, Central and MV Inverter Solutions
A solar PV inverter converts the direct current (DC) electricity generated by photovoltaic modules into alternating current (AC) electricity that can be used by electrical loads or exported to the grid. The inverter also provides functions such as maximum power point tracking (MPPT), grid synchronization, system monitoring, protection, and power management. For commercial and utility-scale solar projects, inverter selection directly affects system efficiency, reliability, maintenance, and overall project economics.
A string inverter is a distributed solar inverter that connects to individual PV strings or groups of strings, while a central inverter combines a larger number of PV strings into a high-capacity conversion system. String inverters generally provide more flexible system design, multiple MPPT inputs, and easier fault isolation. Central inverters are typically used for larger solar farms where high power density, centralized operation, and reduced balance-of-system costs are important.
An MV inverter station is an integrated medium-voltage power conversion solution that combines a solar inverter with equipment such as an MV step-up transformer and medium-voltage switchgear. It is designed to convert PV-generated DC power into AC power and increase the voltage to a suitable medium-voltage level for grid connection. Splendor Energy offers MV inverter station solutions in the 1MW–10MW+ range for utility-scale and large commercial solar PV projects.
String inverters are well suited for commercial and industrial rooftop systems, distributed solar projects, factories, warehouses, and installations with multiple roof orientations or different shading conditions. Multiple MPPT inputs allow different PV strings to operate more independently, which can improve energy harvesting when the solar array has complex layouts.
Central inverters are generally suitable for large ground-mounted solar farms and utility-scale photovoltaic power plants where hundreds of kilowatts or several megawatts of power need to be managed centrally. Their high power capacity and centralized architecture can simplify system design and reduce certain balance-of-system costs, especially for large, uniform PV arrays.
A central inverter is primarily the DC-to-AC power conversion equipment, while an MV inverter station is a more complete power conversion and grid-integration package. An MV inverter station can integrate the inverter, MV transformer, switchgear, protection, and related equipment into a compact skid-mounted or packaged system. This makes it particularly suitable for utility-scale solar plants requiring medium-voltage grid connection.
Splendor Energy provides a broad solar inverter portfolio covering different project scales. String inverter solutions range from approximately 3kW to 350kW+, central inverter solutions from 500kW to 5MW+, and MV inverter stations from 1MW to 10MW+. The final configuration can be selected according to PV capacity, DC/AC ratio, grid voltage, site conditions, and project requirements.
Inverter sizing depends on the total PV module capacity, DC/AC ratio, local solar resource, module characteristics, operating temperature, grid requirements, and project design objectives. For larger projects, engineers also consider inverter loading, clipping, MPPT voltage range, maximum DC input current, AC capacity, and grid-support requirements. A complete system assessment should be performed rather than selecting an inverter based only on its nominal power rating.
Multiple maximum power point tracking (MPPT) inputs allow different PV strings or array sections to operate at their optimal voltage and current conditions. This is particularly beneficial for commercial rooftops, industrial facilities, and distributed solar systems with different orientations, roof pitches, shading conditions, or string lengths. Multiple MPPTs can help reduce mismatch losses and improve overall energy harvesting.
Yes. High-capacity string inverter architectures can be used in utility-scale solar projects, particularly where designers want distributed power conversion, flexible array configuration, easier fault isolation, and detailed string-level monitoring. The optimal choice between string and central inverter architecture depends on project size, site layout, environmental conditions, O&M strategy, and total system cost.
Central inverters provide high-capacity power conversion in a centralized architecture. Key advantages can include high power density, centralized control, simplified equipment management, and potentially lower balance-of-system costs for large, uniform solar arrays. They are commonly considered for ground-mounted PV plants, large solar farms, renewable energy bases, and other utility-scale applications.
Yes. An MV inverter station can be configured as an integrated power conversion package incorporating the solar inverter and medium-voltage step-up transformer. Integrating these components into a packaged station can simplify transportation, installation, interconnection, and project coordination while reducing the amount of separate equipment that needs to be installed on site.
A utility-scale solar PV grid connection system may include solar inverters, step-up transformers, MV switchgear, protection equipment, metering, monitoring and control systems, and grid interconnection equipment. The exact configuration depends on the project’s AC capacity, grid voltage, interconnection requirements, protection strategy, and local electrical standards.
Yes. Splendor Energy provides integrated power conversion solutions that can combine solar PV modules, DC combiner boxes, string or central inverters, MV transformers, MV switchgear, grid connection equipment, and energy management systems. This approach allows customers and EPC contractors to source coordinated equipment for commercial, industrial, and utility-scale renewable energy projects.
Yes. Solar PV inverters can be integrated with battery energy storage systems through an appropriate system architecture and energy management system (EMS). A PV + inverter + EMS + BESS configuration can support applications such as peak shaving, energy shifting, renewable energy integration, grid support, and improved energy resilience. The specific architecture depends on whether the project uses AC-coupled or DC-coupled storage.
An energy management system (EMS) coordinates power generation, battery storage, electrical loads, and grid interaction. Depending on the project requirements, the EMS can monitor operating conditions and manage functions such as battery charging and discharging, solar energy utilization, peak shaving, load management, and grid-support strategies. It provides an important control layer for integrated solar-plus-storage systems.
Solar inverter efficiency can be affected by operating load, DC input voltage, temperature, MPPT operating conditions, power conversion losses, cooling conditions, and system design. Real-world project performance also depends on PV module mismatch, cable losses, transformer losses, environmental conditions, and inverter loading. Selecting an inverter with an appropriate operating range is therefore important for maximizing annual energy yield.
Maintenance requirements depend on the inverter architecture and site environment. String inverter systems can simplify troubleshooting because faults can be isolated to individual units or PV strings. Central inverter systems require more centralized maintenance, while MV inverter stations require coordinated inspection of the inverter, transformer, switchgear, protection equipment, and auxiliary systems. Remote monitoring and predictive maintenance can help reduce downtime.
Yes. Solar inverter and MV inverter station configurations can be customized according to project capacity, PV module configuration, DC voltage, AC voltage, medium-voltage grid requirements, transformer specifications, environmental conditions, communication requirements, protection systems, and applicable electrical standards. Custom engineering is particularly important for utility-scale projects with specific grid interconnection requirements.
Yes. Splendor Energy provides solar power conversion and grid integration solutions for residential, commercial, industrial, and utility-scale applications. The product portfolio includes string inverters, central inverters, MV inverter stations, transformers, MV switchgear, and related power equipment. Solutions can be configured according to project capacity, application, grid connection requirements, and EPC procurement needs.
