
TommaTech Trio Hybrid S HV AIO CMS CONTENT PACK
The TommaTech Trio Hybrid S HV AIO Series integrates a three-phase hybrid inverter and a modular high-voltage battery system into a unified residential energy storage platform.
Seven inverter ratings are available: 5, 6, 8, 10, 12, 15 and 20 kW. Unlike the LV AIO family, the HV platform uses a series-connected battery architecture based on TommaTech Hightech Power S 4 kWh HV modules. Two to six modules can be assembled into battery configurations ranging from 8 to 24 kWh nominal energy, with 7.2 to 21.6 kWh listed as usable energy under the manufacturer's stated test conditions.
The high-voltage battery architecture allows the system to operate at substantially higher DC battery voltage, reducing current for a given power level compared with a low-voltage architecture. The inverter accepts PV input, manages battery charging and discharging and interfaces with grid, backup loads and generator systems. The official documentation also provides AC coupling, Smart Load, time-of-use management, Wi-Fi monitoring and parallel-system functionality.
The current datasheet states that up to ten HV AIO inverter units may be connected in parallel and highlights three-phase unbalanced output capability.
Because 5–20 kW versions use the same underlying platform, they should be presented as one configurable HV AIO family rather than seven separate website products.
Main Advantages
- 5–20 kW three-phase hybrid inverter range
- Integrated high-voltage battery architecture
- 4 kWh LiFePO4 battery modules
- 8–24 kWh nominal battery configurations
- 7.2–21.6 kWh stated usable battery energy
- Series-connected battery architecture
- Two MPPT trackers
- 100% three-phase unbalanced output positioning
- AC coupling
- Generator compatibility
- Diesel generator support
- Plug-and-play modular design
- Up to 10 inverter units in parallel
- Intelligent energy management
- IP65 battery enclosure
Inverter Model Comparison
Values below are taken from the current HV family datasheet.
| Model | Rated AC / UPS | Max. PV Access Power | Full-Load DC Range | Max. AC Output |
|---|---|---|---|---|
| Trio Hybrid S 5K HV AIO | 5 kW | 6.5 kW | 195–850 V | 5.5 kW |
| Trio Hybrid S 6K HV AIO | 6 kW | 7.8 kW | 195–850 V | 6.6 kW |
| Trio Hybrid S 8K HV AIO | 8 kW | 10.4 kW | 260–850 V | 8.8 kW |
| Trio Hybrid S 10K HV AIO | 10 kW | 13.0 kW | 325–850 V | 11.0 kW |
| Trio Hybrid S 12K HV AIO | 12 kW | 15.6 kW | 340–850 V | 13.2 kW |
| Trio Hybrid S 15K HV AIO | 15 kW | 19.5 kW | 420–850 V | 16.5 kW |
| Trio Hybrid S 20K HV AIO | 20 kW | 26.0 kW | 500–850 V | 22.0 kW |
Cooling varies by inverter rating; the official family sheet uses both natural and intelligent air cooling within the range.
HV Battery Configuration Comparison
The battery is based on the Hightech Power S 4 kWh HV module.
| Battery Modules | Nominal Voltage | Nominal Energy | Usable Energy* | Approx. Dimensions | Approx. Weight |
|---|---|---|---|---|---|
| 2 | 204.8 V | 8 kWh | 7.2 kWh | 540 × 385 × 1100 mm | 137 kg |
| 3 | 307.2 V | 12 kWh | 10.8 kWh | 540 × 385 × 1320 mm | 176 kg |
| 4 | 409.6 V | 16 kWh | 14.4 kWh | 540 × 385 × 1540 mm | 215 kg |
| 5 | 512 V | 20 kWh | 18.0 kWh | 540 × 385 × 1760 mm | 254 kg |
| 6 | 614.4 V | 24 kWh | 21.6 kWh | 540 × 385 × 1980 mm | 293 kg |
*Manufacturer states usable energy under 90% DoD test conditions.
Common Battery Data
| Parameter | Specification |
|---|---|
| Cell chemistry | LiFePO4 |
| Module energy | 4 kWh |
| Module nominal voltage | 102.4 V |
| Module capacity | 40 Ah |
| Module arrangement | 2–6 modules in series |
| System operating voltage | 166.4–700.8 V |
| Recommended charge/discharge current | 20 A |
| Maximum current | 40 A |
| Peak current | 50 A for 2 minutes |
| Recommended DoD | 90% |
| Cycle life | ≥6,000 cycles under manufacturer test conditions |
| Battery warranty | 10 years |
| Communication | CAN 2.0 / RS485 |
| Thermal management | Natural cooling |
| Enclosure | IP65 |
| Installation | Floor mount |
| Certification stated | CE / IEC 62619 |
| Operating temperature | Charge −20 to +55°C / discharge −20 to +55°C |
Technical Architecture
The HV AIO platform consists of a three-phase hybrid inverter mounted above or integrated with a vertically stacked battery system.
Each battery module contributes 102.4 V and 4 kWh. The modules are connected in series, so adding modules increases both system voltage and stored energy. This produces nominal system voltages from 204.8 V with two modules up to 614.4 V with six modules.
The inverter connects separately to:
- PV strings
- High-voltage battery stack
- Utility grid
- Backup load
- Generator input
- Meter/CT
- BMS
- Parallel communication
- Wi-Fi / monitoring services
This series-connected battery topology is the major engineering distinction between the HV and LV AIO families.
How It Works
PV power is first managed by the inverter's MPPT stage. Depending on instantaneous load, battery state of charge and programmed operating strategy, energy can be supplied to the loads, stored in the HV battery or exported according to the applicable grid configuration.
When solar generation is insufficient, the battery can supply the loads through the hybrid inverter. Grid or generator power can also be incorporated according to system settings and charging priority.
The official system architecture supports grid, PV, generator, backup load and smart-load configurations, together with cloud-connected monitoring.
Intended Applications
- Residential solar energy storage
- Large residential properties
- Three-phase residential systems
- Residential backup systems
- Solar self-consumption
- Grid-interactive hybrid PV systems
- Generator-supported energy storage
- Applications requiring higher inverter power with lower battery-side current than a comparable LV architecture
The final statement is an engineering consequence of the higher-voltage architecture, rather than a manufacturer marketing specification.
Compatibility
Official documentation supports integration with:
- Hightech Power S 4 kWh HV battery system
- PV arrays
- Utility grid
- Backup loads
- Generator supply
- AC coupling
- Smart Load
- Meter / CT
- CAN / RS485 battery communication
- Wi-Fi monitoring
Do not publish a general statement that the system works with arbitrary third-party high-voltage batteries.
Engineering and Selection Notes
HV system selection must consider both inverter power and battery voltage configuration.
Before selecting the system, verify:
- Maximum continuous AC load
- Peak/starting load
- Phase imbalance
- Backup-load requirement
- Required battery autonomy
- Daily energy demand
- Required charge/discharge power
- Selected number of HV battery modules
- Resulting battery nominal voltage
- Inverter battery operating voltage
- PV module Voc
- Minimum site temperature
- PV string voltage under operating conditions
- Full-load DC voltage requirement for the selected inverter
- PV Isc and operating current
- Grid voltage/frequency
- Applicable grid code
- Generator capacity
- Installation temperature
- Outdoor/indoor installation requirements
- Expansion requirements
- Parallel inverter requirement
Particularly important
The increasing full-load PV voltage requirement as inverter power rises should not be ignored. For example, the 20 kW model requires a much higher full-load DC string voltage than the 5 kW model.
Therefore PV string design must be carried out using the actual module Voc/Vmp and minimum ambient temperature.
Information Required Before Quotation
Request:
- Project country
- Grid voltage/frequency
- Required inverter power
- Maximum simultaneous load
- Backup-load power
- Daily consumption
- Required backup hours
- Required usable battery energy
- Existing/planned PV capacity
- PV module datasheet/model
- Proposed panel quantity
- Available PV string voltage
- Generator model and rating
- Three-phase load distribution
- Installation ambient temperature
- Indoor/outdoor installation
- Applicable local grid code
- Required number of inverter units
- Parallel operation requirement
- Future battery expansion plan
Recommended Call to Action
Send us the project load profile, PV module data, required backup duration and installation country so that the correct Trio Hybrid S HV inverter and battery-stack configuration can be engineered for your project.
| Parameter Specs | HV Inverter Data |
|---|---|
| Max. DC input voltage | 1000 V |
| PV start-up voltage | 150 V |
| MPPT range | 150–850 V |
| Rated DC input voltage | 600 V |
| MPPT trackers | 2 |
| Battery input range | 160–700 V |
| Battery input type | Li-ion |
| Battery inputs | 1 |
| BMS communication | RS485 / CAN |
| Maximum efficiency | 97.6% |
| Euro efficiency | 97% |
| MPPT efficiency | 99.9% |
| Output | Three phase |
| AC output | 220/380 or 230/400 Vac |
| Frequency | 50 / 60 Hz |
| Surge protection | DC Type II / AC Type III |
| Inverter warranty | 5 years |
| Operating temperature | −40 to +60°C; derating above +45°C |
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