-
Hotline
+86 599 550 7800 -
E-mail
sales@intellvation.com -
Address
No.2 Lingkong Ave, Suining, Xuzhou, Jiangsu, China.
Supercapacitor Battery SPC-8.2L-F
Ultra low temp battery SPN-4.5L-PT
Underground solid-state battery
Supercapacitor Battery SPC-6.8L-F
In today's rapidly evolving energy landscape, commercial and industrial (C&I) facilities face unprecedented challenges regarding electricity costs. A significant portion of these expenses is driven not just by the total volume of energy consumed, but by peak demand charges. These charges are calculated based on the highest energy usage during a specific interval, often accounting for up to 30% to 50% of a facility's total monthly utility bill. Enter the Hybrid Solar Battery for cost-effective peak shaving—a revolutionary technological synergy designed to flatten load profiles, maximize renewable energy utilization, and drastically reduce operational expenditures (OPEX).
By integrating high-efficiency photovoltaic (PV) systems with advanced energy storage solutions, such as large-capacity solid-state batteries, businesses can intelligently store excess solar energy generated during off-peak hours. When the facility's power demand spikes—whether due to heavy machinery startup, HVAC system activation, or EV charging loads—the hybrid solar battery system seamlessly discharges. This process, known as peak shaving, prevents the facility from pulling expensive grid power during peak tariff periods, thereby circumventing exorbitant demand charges and ensuring a highly lucrative Return on Investment (ROI).
Globally, grid instability and fluctuating fossil fuel prices are accelerating the transition toward decentralized energy resources. Historically, industries relied on diesel generators to manage peak loads or ensure uninterruptible power supply (UPS). However, stringent ESG (Environmental, Social, and Governance) regulations and carbon tax implementations have rendered traditional fossil-fuel-based peak shaving obsolete.
Currently, the commercial sector is witnessing a massive deployment of Battery Energy Storage Systems (BESS). Innovations like Cell-to-Container (CTC) technology and hybrid inverters have significantly lowered the Levelized Cost of Storage (LCOS). Enterprises are no longer viewing solar batteries merely as backup power; they are active, revenue-generating assets. Through smart grid interactions, these hybrid systems participate in demand response programs, grid frequency regulation, and energy arbitrage, turning energy management from a cost center into a profit center.
At Super Power New Energy Co., Ltd., our core strength lies in continuous technological innovation. Since our establishment, we have mastered advanced solid-state battery technologies, placing us at the forefront of the industry. Our pioneering Cell To Container (CTC) technology and large-capacity 500Ah pouch laminated batteries not only enhance energy density and safety but also significantly extend the lifespan of our products—making them the perfect backbone for Hybrid Solar Battery Peak Shaving systems.

Customer-centric strategy improve product and service quality.

A sustainable business strategy addresses the needs of the ESG.

Comprehensive QMS to continuously improve customer satisfaction.

Independent material research institute for material R&D.

Service Center

Factory Showcase

Countries Served

Inovation Team
The versatility of a hybrid solar battery system extends far beyond simple energy storage. By leveraging AI-driven Energy Management Systems (EMS) and solid-state battery architecture, these systems are redefining operational efficiency across multiple sectors. Below is an in-depth analysis of how cost-effective peak shaving is applied in high-demand environments.
Manufacturing facilities often utilize heavy machinery such as industrial motors, compressors, and arc furnaces. The startup of these machines creates massive, instantaneous "inrush currents," leading to severe demand charge penalties. A hybrid solar battery system acts as a high-discharge buffer. Utilizing supercapacitor technology or high C-rate solid-state batteries, the system instantly injects power during these micro-second spikes, completely shielding the facility's utility meter from the surge. Furthermore, solar integration ensures the battery is recharged sustainably between machine cycles.
For commercial skyscrapers and data centers, HVAC (Heating, Ventilation, and Air Conditioning) and server cooling loads dominate the energy profile, especially during summer afternoons—which perfectly aligns with peak utility pricing. Hybrid solar arrays on rooftops or carports charge the battery systems in the morning. As the afternoon peak hits, the building's EMS automatically switches the HVAC load from the grid to the battery. For data centers, these batteries perform a dual role: providing cost-effective peak shaving daily, while serving as a zero-latency Uninterruptible Power Supply (UPS) during grid outages.
The exponential growth of Electric Vehicles has led to the proliferation of DC Fast Charging (DCFC) stations. When multiple EVs plug in simultaneously, the local grid experiences extreme, localized stress, triggering exorbitant demand charges. Integrating a hybrid solar battery eliminates this bottleneck. The battery continuously trickle-charges from the grid during off-peak hours and from local solar canopies. When EVs arrive, the high-power demand is supplied directly from the battery, effectively decoupling the charging station's peak load from the grid.
In mining operations, island communities, or remote agricultural sites, extending the main grid is often economically unfeasible. These sites traditionally rely on expensive, highly polluting diesel fuel. Containerized hybrid solar battery systems (like the 20' and 40' Solid State BESS) form the heart of resilient microgrids. By intelligently balancing solar generation with battery discharge, these systems shave the peaks of localized demand, minimize generator runtime, and cut fuel logistics costs by up to 80%, providing a highly cost-effective and sustainable energy ecosystem.
Real-world implementations demonstrating the cost-effective power of our energy storage integration.

The project uses Super Power solid-state batteries and consists of 32 energy storage units, each including two 2.5MWh battery cabins and a 2.5MW PCS booster cabin. It provides massive peak shaving capabilities.

Planned energy storage capacity of 101MW/202MWh, integrating 100MW/200MWh solid-state battery tech for optimal time-of-use energy arbitrage.

A 50MW(100MWh) energy storage system consisting of 40 1.25MW/2.5MWh BESS and 80 630kW PCS, significantly lowering industrial demand charges.

Equipped with a battery pack, BMS, and liquid cooling, serving as an emergency hybrid power source, shaving peak generator demands on ships.

Provides UPS and communication power supply, primarily supporting ESP and voltage regulation while flattening the building's peak load profile.
The future of the Hybrid Solar Battery for cost-effective peak shaving is being shaped by rapid advancements in artificial intelligence, materials science, and grid interconnectivity. As industries strive for Net-Zero emissions, the integration of these systems is transitioning from a competitive advantage to an operational necessity.
AI-Driven Predictive Dispatch: Modern Energy Management Systems are moving beyond simple time-of-use scheduling. Next-generation hybrid batteries utilize machine learning algorithms that analyze real-time weather forecasts, historical facility load data, and dynamic grid pricing signals. This AI integration allows the system to pre-emptively charge from solar arrays before a forecasted cloudy period or discharge precisely moments before a predicted peak demand spike, optimizing financial returns with zero human intervention.
The Solid-State Revolution: Traditional lithium-ion batteries, while effective, face limitations regarding thermal runaway risks and degradation over thousands of high-depth-of-discharge (DoD) cycles required for daily peak shaving. The industry is rapidly pivoting toward large-capacity solid-state batteries. By replacing liquid electrolytes with solid conductive materials, these batteries offer exponentially higher energy densities, broader operating temperature ranges (crucial for outdoor commercial installations), and lifespans that can exceed 15-20 years. This drastically lowers the total cost of ownership (TCO) and enhances the safety profile for indoor commercial deployments.
Vehicle-to-Grid (V2G) and Virtual Power Plants (VPP): The definition of a "solar battery" is expanding. Commercial electric fleets are being integrated into the peak shaving ecosystem. Through bidirectional chargers, a fleet of idle delivery trucks can discharge power back into a facility during peak hours. Furthermore, multiple distributed hybrid solar battery systems can be aggregated via cloud software to form a Virtual Power Plant, allowing commercial entities to sell aggregated peak capacity back to the utility grid, creating an entirely new revenue stream.

Highlighting the massive global shift towards solar energy integration and the subsequent need for peak shaving storage.
Data released by the Guangzhou Power Exchange Center shows significant growth in renewable trading.
National Energy Administration data highlights the urgent need for local grid peak shaving solutions.
We have integrated research and development, manufacturing and sales together.



The company's business scope includes large capacity solid state battery cells and its BMS research and development, production and sales of energy storage power station and charging station, R&D and production of new materials for large capacity solid state batteries.








We appreciate your interest in our Hybrid Solar Battery systems and would be happy to communicate with you regarding your peak shaving needs.
No.2 Lingkong Ave, Suining, Xuzhou, Jiangsu, China.