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  • More Secure and Reliable

  • Higher Efficiency

  • More Intelligent and User-Friendly

  • More Flexible Configuration:


High-frequency isolated buck-boost type DCDC, with MPPT function, can directly charge the battery.

 Product Features:

  • More Secure and Reliable:
    • Full high-frequency isolation design ensures safety between the battery and DC busbar;
    • Full digital control with DSP + CPLD, multiple levels of software and hardware protection against overcurrent, overvoltage, and overtemperature, ensuring safety and reliability;
    • Reliable parallel operation function facilitates power expansion, allowing up to 16 modules to operate in parallel.
  • Higher Efficiency:
    • DC/DC employs soft-switching resonant technology, achieving a maximum efficiency of 95.8%;
    • Compared to traditional non-isolated DC/DC converters, this system eliminates the need for a line-frequency transformer in applications, with high-frequency isolation efficiency exceeding 95.8%.
  • More Intelligent and User-Friendly:
    • Covers multiple battery voltage levels for passenger vehicles (40V~750Vdc), with a wide battery voltage range;
    • Wider DC busbar voltage for easy connection to various specifications of DC busbars;
    • Supports MPPT photovoltaic input, integrates MPPT function, and can be applied to integrated photovoltaic-charging-inspection charging stations with shared DC busbars.
  • More Flexible Configuration:
    • Supports standard rack-mounted installation with a compact structure;
    • Modular hot-swappable design for flexible system configuration;
    • Facilitates system integrators in flexibly designing different forms of energy storage, photovoltaic storage, storage-charging inspection, or energy storage systems.

■ Product Specification Parameters:

Category Name Parameters
Environmental Conditions Operating Temperature -40°C ~ +75°C (derating required above 50°C)
Storage Temperature -40°C ~ +70°C
Relative Humidity ≤95% RH, no condensation
Cooling Method Forced air cooling
Altitude 2000m (derating required above 2000m)
Atmospheric Pressure 79kPa ~ 106kPa
IP Protection Rating IP20
DC Input Rated Voltage 710Vdc
Input Voltage Range 260Vdc~900Vdc
MPPT Operating Voltage Range 260Vdc ~ 720Vdc
MPPT Full-load Voltage Range 600Vdc ~ 720Vdc
MPPT Starting Voltage 325Vdc
MPPT Maximum Input Current ≤41A
MPPT Efficiency >99.5% (MPP≥5000W)
Input and Parallel MPPT Tracking Function Supports monitoring configuration, off-mode memory saving, maximum 2 modules in parallel
DC Output Voltage Range 150Vdc ~ 750Vdc
Current Range 0 ~ 50A (current limit can be set)
Rated Current 26A (current limit setting required)
Voltage Regulation Accuracy < ±0.5%
Current Regulation Accuracy ≤±1% (output load 20% ~ 100% of rated range)
Load Adjustment Rate ≤±0.5%
Start-up Overshoot ≤±3%
Ripple Indicators Voltage Ripple Factor ≤1% (150~750V, 0~20MHz)
Ripple Meets the technical specifications for non-vehicle-mounted DC charging machines for electric vehicles, NB/T 33001-1-2018, NB/T 33008-1-2013
EMC Indicators Input and Output 4kV: signal line 1kV
Reference Standards NB/T 33001-1-2018, NB/T 33008-1-2018
ESD 8kV/15kV; reference standards: NB/T 33001-1-2018, NB/T 33008-1-2018
3Vrms, 0.15~80MHz
Conducted Disturbance Reference standards: NB/T 33001-1-2018, NB/T 33008-1-2018
Radiated Disturbance 10V, 80~2GHz; reference standards: NB/T 33001-1-2018, NB/T 33008-1-2018
Power Frequency Magnetic Field 30A/m; reference standards: NB/T 33001-1-2018, NB/T 33008-1-2018
Conducted Emission Class A, meets the technical specifications for non-vehicle-mounted DC charging machines for electric vehicles, NB/T 33001-1-2018, NB/T 33008-1-2018
Radiated Emission Class A, meets the technical specifications for non-vehicle-mounted DC charging machines for electric vehicles, NB/T 33001-1-2018, NB/T 33008-1-2018
Other Compliance Requirements Meets the technical specifications for non-vehicle-mounted DC charging machines for electric vehicles, NB/T 33001-1-2018, NB/T 33008-1-2018
Efficiency ≥95.8%, @750V, 50% ~ 100% load current, rated 710V input
Standby Power Consumption 9W (input voltage 600Vdc)
Start-up Instantaneous Inrush Current Not greater than 10% of the rated current under the current input voltage
Average Current Within ±5% of the rated output current under 10% ~ 100% load, module current mean error
Temperature Coefficient (1/°C) ≤±0.01%
Start-up Time (through monitoring module selection start-up mode) Normal start-up mode: time delay from DC power-on to module output ≤8s
Output Delay Start-up time can be set through the monitoring module, default output start-up time 3~8s
Noise ≤65dB (A) (1m away)
Grounding Resistance Grounding resistance ≤0.1Ω, withstand current ≥25A
Leakage Current Leakage current ≤3.5mA
Insulation Resistance DC input, output to外壳(这里应改为英文“housing”) between housing, and DC input to DC output insulation resistance ≥10MΩ
DC input terminal to module body 3535V DC voltage for 1 minute, no breakdown, no flashover, steady-state leakage current <1mA;
DC input terminal to DC output terminal 3535V DC voltage for 1 minute, no breakdown, no flashover, steady-state leakage current <1mA;
Insulation Strength DC output terminal to module body 3535V DC voltage for 1 minute, no breakdown, no flashover, steady-state leakage current <1mA;
CAN to housing 707V DC voltage for 1 minute, no breakdown, no flashover, steady-state leakage current <1mA
ROHS R6
Mechanical Parameters Dimensions 85mm (height) × 226mm (width) × 390mm (depth, excluding socket and handle)
Weight ≤11kg

Project Overview

SunCare Hospital, a leading healthcare institution committed to sustainable operations and patient well-being, partnered with us to transition its energy source to solar. The project involved the full design and installation of a customized solar power system to reduce operating costs, increase energy reliability, and support the hospital's green initiatives.

Project Objectives

This project was designed to meet the hospital’s energy needs while promoting sustainability, reducing costs, and ensuring uninterrupted service for patients and essential medical operations.

Key Results & Benefits

What We Delivered

We provided a complete solar solution tailored to the hospital’s needs, ensuring performance, safety, and long-term energy savings without disrupting daily operations.

Custom Energy Assessment

We analyzed usage patterns and infrastructure to design a system that meets specific energy needs.

Seamless Installation Without Disruption

Our team installed efficiently with zero interruption to hospital operations and strict safety procedures.

Tailored Solar System Design

We created a solar layout that maximizes efficiency while matching the hospital’s structure and goals.

Reliable Backup and Monitoring System

We integrated smart monitoring and backup support to ensure continuous power for critical medical equipment.

Our Impact

This project is more than just an energy upgrade, it is a commitment to health, sustainability, and community leadership. The SunCare Hospital solar installation reflects how renewable energy can enhance essential services without compromise.

Client Testimonial

"Working with Solarize was a smooth experience. Their team truly understood our hospital’s needs and delivered a solution that saves energy, ensures reliability, and supports our long-term sustainability goals."

Dr. Lisa
Director of Operations, SunCare Hospital
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