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This product is a modular converter specifically designed for 1500V high-voltage energy storage systems. With a rated power of 215kW, it serves as the core power conversion unit in energy storage devices. It adopts a three-level topological structure, supports bidirectional energy flow and a wide range of battery voltages. Boasting an IP66 protection rating, it meets the demands of diverse application scenarios and offers flexible installation and usage.


Product Overview

This product is a modular converter specifically designed for 1500V high-voltage energy storage systems. With a rated power of 215kW, it serves as the core power conversion unit in energy storage devices. It adopts a three-level topological structure, supports bidirectional energy flow and a wide range of battery voltages. Boasting an IP66 protection rating, it meets the demands of diverse application scenarios and offers flexible installation and usage.

Key Features of PCS Converter

1. Bidirectional Energy Conversion

The PCS converter enables AC-DC conversion between the power grid and batteries, facilitating bidirectional energy flow. It acts as the primary executing mechanism and core component of the energy storage system.

2. Multi-machine Parallel Connection

It supports multi-machine parallel connection, providing excellent scalability for system expansion.

3. Active and Reactive Power Regulation

The converter supports active and reactive power regulation functions, enhancing power quality control.

4. Flexible Installation Modes

It supports various installation methods such as vertical placement (wiring at the lower end) and drawer-type installation, offering flexibility in deployment.

Advanced Application Functions with EMS Controller

1. Peak Shaving and Valley Filling

The EMS controller calculates the expected power value of the PCS based on historical or real-time load curves. The PCS output responds to this power value, achieving the “peak shaving and valley filling” function.

2. PCS Module Charge-Discharge Control

The EMS controller determines the charge-discharge state and current size of the PCS module based on specific control strategies and battery information returned by the BMS. It then forwards the instructions to the corresponding PCS module via the PCS cabinet. The PCS module can receive and execute the charge-discharge instructions sent by the EMS controller. Additionally, the PCS can receive instructions from the BMS.

3. Reactive Power Regulation

The PCS module can adjust its reactive power output according to the control instructions from the EMS controller. The reactive power regulation range does not exceed the apparent power range of the PCS module.

4. Response Characteristics under Abnormal Frequency

The inverter should possess a certain ability to withstand abnormal system frequencies, ensuring stable operation under varying grid conditions.

5. PCS Protection Functions

The PCS can perform real-time fault protection based on grid-side voltage, frequency, and its own operating status. Protection functions include:

  • Over-voltage and under-voltage protection for the grid
  • High and low-frequency protection for the grid frequency
  • DC over-voltage and under-voltage protection
  • DC over-current protection
  • DC polarity reverse connection protection
  • AC over-current protection
  • Over-temperature protection
  • Phase-loss protection
  • Anti-islanding protection
  • AC incoming line phase sequence error protection
  • Communication fault protection
  • Cooling system protection
  • Emergency stop protection
  • BMS linkage protection

This comprehensive protection mechanism ensures the safe and reliable operation of the energy storage system under various conditions.

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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