Views: 217 Author: Site Editor Publish Time: 2024-04-11 Origin: Site
ZNSHINE Solar, in collaboration with Jiangsu Guofu Hydrogen Energy Equipment Co., Ltd, recently began constructing the largest domestic distributed PV hydrogen production project in China, leading the further development of the clean energy industry. This project uses abundant solar energy by utilizing rooftop PV power generation to provide clean energy for hydrogen production equipment. Its primary off-grid operation is supplemented by grid connection, significantly reducing energy consumption and carbon emissions. Furthermore, by leveraging hydrogen-electric coupling technology, the project reduces dependence on the grid and develops new use cases for renewable energy, opening new avenues for sustainable development.
Under the leadership of ZNSHINE Solar and Guofu Hydrogen Energy, the PV installed capacity for this project is set to reach an impressive 7.33 MW. This milestone, supported by energy storage systems, is a testament to the technological prowess and industry leadership of both companies in the field of hydrogen energy. It not only represents a significant breakthrough in the clean energy sector but also advances the long-term strategic objectives of these forward-thinking clean energy companies.
In this partnership, ZNSHINE Solar is the driving force behind renewable energy system solutions, providing scheme design, component procurement, and technical implementation. ZNSHINE Hycean, on the other hand, leverages its expertise in PV solutions and construction services to lay a solid foundation for project implementation. This collaborative effort underscores the commitment of both entities to deliver robust energy systems for hydrogen-electric coupling.
ZNSHINE Hycean, a high-tech enterprise jointly established by ZNSHINE Solar, Xiamen Yida Energy Efficiency, and Yuqun Investment, focuses on the R&D and application of hydrogen energy. Leveraging its technological expertise and field experience, combined with technical integration and system integration, ZNSHINE Hycean overcomes solar energy's intermittency and instability to provide a stable supply of renewable energy in this project. With Guofu Hydrogen Energy's hydrogen production equipment and technical capabilities, ZNSHINE Solar ensures the quality of this project and sets the standards for future collaborations.
ZNSHINE Hycean’s Chief Technology Officer, Dr. Li Ning, has a wealth of innovation experience and academic accomplishments in the energy sector, making him a recognized leading expert in the industry. With the support of the Tan Kah Kee Innovation Laboratory and its technical team, ZNSHINE Hycean has assembled robust equipment, systems, and application R&D capabilities in hydrogen energy technology. This ensures a sustainable development trajectory for the green energy and hydrogen energy industries.
With the rapid growth of the global hydrogen energy industry, states are increasing their investment and policy support. According to current plans, it is estimated that by 2030, the global annual production of clean hydrogen will reach 38 million tons, with approximately two-thirds being green hydrogen. About half of the projects are in the planning stage or have already received funding support. As a leader in China's clean energy development, ZNSHINE Solar will continue to uphold our spirit of innovation, striving to boost the efficiency of green electricity generation.
The implementation of this project will provide valuable experience for similar projects, facilitating the further development of the hydrogen energy industry. With concerted efforts from all stakeholders in the industry, clean energy will see more breakthrough developments, contributing to the restoration of our environment and new sustainable development models.
Industrial and commercial energy storage systems, as innovative power management solutions, are transforming the way businesses and enterprises utilize energy. By storing electricity during off-peak hours and discharging during peak times, these systems help reduce energy costs while serving as emergency power sources to ensure continuous supply during unexpected outages. This article delves into the energy storage segment of ZNSHINE’s Integrated PV&ES&CS System, showcasing its unique features and application advantages.
In recent years, the rapid development of solar photovoltaic (PV) technology has been accompanied by the continuous iteration of solar cell sizes. From the early 156mm era to today’s widespread use of larger 182mm and 210mm cells, each technological advancement has driven improvements in module power and optimization of system costs.
Graphene is hailed as the most revolutionary material of the 21st century, earning the title of "king of new materials" due to its exceptional properties. Composed of a single layer of carbon atoms arranged in a honeycomb lattice, graphene exhibits a range of remarkable physical characteristics. It is 100 times stronger than steel and has excellent electrical conductivity, with its carrier mobility at room temperature being approximately 10 times that of silicon. Additionally, graphene boasts outstanding thermal conductivity, with a thermal conductivity coefficient of up to 5300 W/mK, far surpassing most materials. Graphene is also nearly transparent, with an absorption rate of just 2.3% in the optical range. It retains excellent flexibility, allowing it to bend and deform while maintaining its structural integrity. These unique properties make graphene a material of enormous potential across various fields and are widely believed to herald a materials revolution.
When purchasing solar modules, performance and price are the two key factors to consider. The performance of a solar module depends not only on its photovoltaic conversion efficiency but also on the strength and durability of its structure. As a crucial support and protective component, the frame material has a direct impact on the overall performance of the module. Additionally, solar module frames, being high-value auxiliary materials, play a significant role in the module’s total cost structure. For instance, *the commonly used aluminum frame, with its strong mechanical properties, accounts for around 13% of the total module cost—surpassing other auxiliary materials like EVA, glass, backsheets, and solder ribbons—second only to the 55% cost share of the solar cells themselves.
Installing a solar photovoltaic (PV) system on a roof is a crucial process that requires ensuring the system efficiently captures solar energy while maintaining its safety and stability. This article will describe how to use the SRS (Solar Racking System) to install PV modules more securely and efficiently.
Una célula fotovoltaica es algo relativamente sencillo. Un material semiconductor, en el que se ha creado un diodo (se le ha dado polaridad), al que se le pone una capa azul antirreflejante y se conectan unos conductores eléctricos para extraer la electricidad. Digamos que la arquitectura de la célu
The first bifacial photovoltaic cells were created in the laboratory several decades ago. The first company that commercialized them was the Spanish company Isofoton (1981), based on the studies of Antonio Luque at the Institute of Solar Energy in Madrid.Today’s bifacial solar modules are a simplifi
Double glass photovoltaic modules stand out with remarkable advantages in power generation, embodying authenticity in their performance. The transparency and robust UV resistance of glass seamlessly align with the characteristics of double-sided cells, establishing a flawless synergy. When it comes to the module backsheet, the industry widely acknowledges the superiority of glass backsheets. In 2018, Joshua S. Stein from Sandia National Laboratories and Dirk C. Jordan from the National Renewable Energy Laboratory (NREL) conducted an in-depth review of double glass photovoltaic modules, delving into various pertinent issues.