Views: 12 Author: Site Editor Publish Time: 2020-11-25 Origin: Site
Shanghai – November 24th, 2020. On 21st and 22nd, the China National Accreditation Commission for Conformity Assessment (CNAs) appointed an evaluation expert group to visit ZNShine Solar testing center and conduct an on-site laboratory evaluation.
The evaluation expert group conducted a comprehensive review on the management and technical capabilities of the testing center by observing the overall environment of the testing center, on-site testing, verifying the use and calibration of the company’s testing instruments.
CNAs team agreed that ZNShine Solar management system meets the relevant requirements of CNAs, and that can effectively operate and continuously improve. After this on-site evaluation, the company will improve the quality management work of the testing center by implementing the CNAs review expert group suggestions and opinions.
ABOUT ZNSHINE SOLAR
Founded in 1988, ZNShine Solar is a BNEF Tier1 module manufacturer with over 32 years of manufacturing excellence and 5 GW module production capacity. Scored as a “Top Performer” in the DNV GL PV Module Reliability Scorecard, ZNSHINE SOLAR (NEEQ Stock Code: 838463) has developed as a PV plant partner and investor having delivered bespoke EPC solutions and O&M services.
ABOUT CNAs
As for CNAs, China National Accreditation Service for conformity assessment (CNAs) is the only institution qualified to issue Chinese national laboratory accreditation, which is established and authorized by CNAs. China’s national accreditation system for conformity assessment plays an important role in international accreditation activities. At present, the testing reports issued by CNAs are recognized by more than 150 countries in the world.
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.
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