成人免费视频?国产免费-亚洲 高清 成人 动漫-人人妻人人澡人人爽精品日本-亚洲国产精品无码久久sm-国产av电影区二区三区曰曰骚网

應用場景
Application scenario

The new power system composed of photovoltaic power generation is an important part of achieving carbon peak and carbon neutrality, and it is bound to integrate with energy storage, promoting the development of integrated photovoltaic-storage-charging systems. With the rapid development of 800V new energy vehicles, fast charging piles will be integrated into the photovoltaic-storage-charging system in the future, forming a new power system or microgrid. On one hand, bidirectional charging and discharging at high voltage is a typical feature of the new photovoltaic-storage-charging system. Silicon carbide devices, by upgrading module power and energy conversion efficiency, will be widely used in super-fast charging infrastructure. On the other hand, new energy vehicles are the largest application scenario for silicon carbide power semiconductors. Silicon carbide, with its high voltage resistance, high temperature resistance, and high-frequency characteristics, is expected to rapidly replace silicon-based and IGBT in high-voltage systems, significantly improving vehicle performance and optimizing the overall vehicle architecture. In addition to charging piles and wireless charging, silicon carbide power semiconductors have multiple in-vehicle application scenarios, including motor controllers, onboard chargers (OBC), DC-DC converters, and air compressors.




PV Inverter

Photovoltaic inverters convert the direct current generated by photovoltaic panels into alternating current for use in the power grid, and are the core components of solar photovoltaic power generation systems. The conversion efficiency of photovoltaic inverters directly affects the power generation efficiency of the entire photovoltaic system. As a wide bandgap semiconductor, SiC devices have the advantage of higher energy conversion efficiency, and their performance advantages are highly compatible with the iterative requirements of photovoltaic inverters. Compared to Si based devices, SiC can bring higher conversion efficiency and lower energy loss to photovoltaic inverters, effectively reducing system size, increasing power density, extending device lifespan, and reducing production costs. At present, commercial photovoltaic systems mainly use two-stage photovoltaics. The function of the front-end (DC/DC converter) is to boost and MPPT, while the back-end (DC/AC) realizes inverter grid connection and is resistant to high voltage SiC; MOSFETs and high current SiC diodes will showcase their capabilities.

Energy storage

The energy storage system improves the efficiency of power grid operation and reduces line losses caused by local electricity congestion during peak periods of the power grid. Energy storage systems can also reduce the need to build more power plants to meet peak demand in the electricity system. The core components of ESS are bidirectional DC/DC and DC/AC power conversion systems, which connect all power grids, photovoltaic panels, wind turbines, electric vehicles, and batteries together and achieve power conversion between them. SiC technology can achieve high-voltage, high-frequency, and high-efficiency solutions, which are key requirements for all energy storage systems. The energy storage system based on SiC devices will play a greater role in optimizing power distribution, stabilizing the power grid, smoothing power demand, and better utilizing renewable energy.

Charging station

At present, fast charging capability (basically filling in 5-10 minutes) will be the last piece of the puzzle for new energy vehicles to fully replace fuel vehicles, and SiC will play an important role in it. More and more car companies are developing towards the 800V platform, which will inevitably introduce high-voltage and high-power modules in the field of charging piles. The traditional Si based and IGBT devices have low blocking voltages, and the combination of multi-level topologies will pose challenges to size and efficiency. SiC based ACDC converters can effectively solve these problems by using fewer devices, occupying less circuit area, and achieving higher peak efficiency. To introduce the 800V charging architecture, the charging efficiency of the charging station also needs to be further improved. The DC charging power will continue to increase from below 120kW to 350kW, or even 480kW. This means that it is necessary to smoothly expand the current mainstream 20kW and 30kW charging modules to 40kW or even higher power. Based on the technical features of high temperature resistance and high switching frequency brought by SiC solutions, it will assist in optimizing circuit design, device selection, air duct design, temperature protection, and achieve higher reliability of the module.

Quality first, stable quality, contact us immediately?
Contact Us
FMIC
Email:PR@founderic.com
Address:Fangzheng Microelectronics Industrial Park, No. 5 Baolong 7th Road, Longgang District, Shenzhen, Guangdong Province
Contact Us
主站蜘蛛池模板: 国产亚洲日韩a欧美在线人成| 国产日韩综合一区| 亚洲国产综合精品中文第一区| 乱色一区二区三区| 一区二区av在线| 欧洲美洲精品一区二区三区| 欧美日韩 一区二区三区不卡| 日本免费小视频一区二区三区| 久久性色欲av免费精品观看| 夜夜未满十八勿进的爽爽影院| 动漫精品无码h在线观看| 天天狠天天透天干天天怕∴| 久久不见久久见www免费| 国产小视频在线观看网站| 成人色视频| 国产精品成熟老妇女| 亚洲不卡一区免费视频| 无码日韩人妻av一区免费| 无码av无码一区二区桃花岛| 亚洲国产精品无码久久sm| 亚洲精品无码mv在线观看网站| 久久99精品久久久久婷婷暖| 国产成人av三级在线观看按摩| 亚洲一区二区三区大胆视频| 99热在线精品免费全部 | 国产又色又爽又黄的免费软件 | 蜜桃一区二区三区| 亚洲国产精品久久一区二区三区 | 亚洲欧美日韩久久精品第一区| 97精品伊人久久久大香线蕉| 久久精品国产第一区二区三区| 久久天天躁狠狠躁夜夜爽 | 无码国产成人午夜视频在线播放| 18禁裸乳无遮挡啪啪无码免费| 国内精品自线在拍| 国产精品免费一区二区三区都可以| 国产精品美脚玉足脚交| 久久精品国产99国产精品澳门| 色琪琪av中文字幕一区二区 | 午夜131美女爱做视频| 国产无内肉丝精品视频|