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Portable 4-Way Fast Charging outdoors battery backup

Portable 4-Way Fast Charging outdoors battery backup

Outdoors Battery Backup

XU14K breaks the charging bottleneck of portable power supplies, with the industry's fastest mixed input power of 8000W, and can be fully charged in as little as 2 hours.

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Are you still troubled by the inconvenience of replenishing portable mobile energy?

XU14K breaks the charging bottleneck of portable power supplies, with the industry's fastest mixed input power of 8000W, and can be fully charged in as little as 2 hours. And it also offers four charging methods: EV Port, PV, AC, and diesel generator, maximizing compatibility with complex environments.


Key Advantages

EV-PORT 6000W Extreme Charging:

Utilizes the high powerof EV charging piles to achieve ultra-fast charging, drasticallycutting down replenishment waiting time.

 

3000W Smart PV Charging:

Supports up to 3000W of solarinput, making XU14K a truly independent off-grid power solution.

 

Adjustable Charging Power (AC/EV/DG):

Users can flexiblyregulate the maximum input power based on the local grid orgenerator load capacity, ensuring maximum compatibility andpreventing trips.

 

LFP Cell Safety:

Higher safety and longer lifespan automotive grade lithium iron phosphate battery cells.Cell cycle times ≥ 6000. Provides high thermal stability and inherent safety, critical for portable use and transportation.

 

Technical Specifications

Product Model XU14K
System Specifcations
Batter Type LFP
Capacity 14.3kWh
Rated Output Power 6000W
Cycle Life (@25℃) ≥6000
Input
AC Input 220-240V~2200W (MAX)
EV input 220-240V~6000W (MAX)
Car Charge Input 12V10A 120W
PV Input 12-150V30A 3000W
Output
DC Output 12V30A 360W 24V20A 480W
AC Output 230V~50Hz, 6000W, M29-4 CONNECTOR
General Specifcations
APP Suppor
Dimensions (L×W×H) 670.7×257×664.5mm
Weight ≈127kg

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Frequently
Asked Questions

  • What is an Energy Storage System (ESS)?

    An Energy Storage System (ESS) is a technology or set of technologies designed to capture, store, and release electrical energy (or energy in other forms that can be converted to electricity) on demand. Its core purpose is to address the temporal and spatial mismatches between energy supply and demand—for example, storing excess energy generated during low-demand periods (e.g., midday solar production) and releasing it during high-demand periods (e.g., evening peak usage) or when supply is limited (e.g., nighttime wind lulls).

  • What are the core functions of ESS?

    ESS solves critical challenges in modern energy systems by performing five key roles:
    Peak Shaving: Reduces reliance on expensive "peak power plants" (which only operate during high-demand hours) by releasing stored energy during peak periods. This lowers electricity costs for users and grid stress. 
    Load Leveling: Smooths out fluctuations in energy supply (e.g., variable output from solar/wind) by absorbing excess energy when production is high and discharging when production drops. 
    Backup Power: Provides emergency electricity during grid outages (e.g., residential battery systems for blackouts, hospital backup ESS). 
    Grid Stabilization: Maintains grid reliability by regulating frequency (frequency response) and voltage—critical for integrating high shares of renewable energy, which can cause sudden supply swings. 
    Renewable Integration: Enables more solar and wind power to be used (instead of wasted, or "curtailed") by storing surplus energy that would otherwise exceed immediate demand.

  • What’s the Core Components of ESS?

    Battery Cells and Modules: The main energy storage units, typically based on lithium-ion chemistries such as LFP for safety and longevity.
    Battery Management System (BMS): Ensures balanced voltage and temperature across cells for optimal safety. 
    Power Conversion System (PCS/Inverter): Converts energy between DC and AC for smooth integration with loads or grids. 
    Energy Management System (EMS): Acts as the “brain” — optimizing operation, predicting consumption, and maximizing ROI. 
    Thermal & Fire-Safety Systems: Maintain safe temperature levels and comply with UL/IEC standards.

  • How Energy Storage Systems Work?

    Charging: Energy source (grid/photovoltaic/wind power) → AC → PCS (rectification) → DC → energy storage medium (storage)
    Control: EMS (decision-making)+BMS (protection) → full process linkage PCS/energy storage medium
    Discharge: energy storage medium (release) → DC → PCS (inverter) → AC → energy destination (grid/load/emergency)
    Guarantee: Auxiliary system (cooling/fire protection) → Full process safety guarantee
    Core closed-loop: AC ↔ PCS ↔ Energy storage medium ↔ PCS ↔ AC (EMS/BMS+auxiliary system escort)

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