国产一级精品毛片 I 亚洲男人天堂2023 I 自拍偷拍视频网站 I 曰曰av日日av I 摸胸舔下面视频 I 婴交从小就做h高辣 I 精品亚洲二区 I 日韩巨乳在线观看 I 特一级黄色大片 I 少妇毛片 I www.欧美国产 I 亚洲福利小视频 I 99精品成人 I 日韩在线一卡 I 91嫩草精品 I 在线观看福利片 I wwwwxxxx日韩 I 三级a做爰全过程 I 国产亚洲色婷婷久久 I 五十路熟女丰满大屁股 I av在线播放网站 I 山口珠理番号 I 亚洲有吗在线 I 亚洲一二三区视频在线观看 I 国内理论片 I 色mm亚洲 I 少妇激情在线观看 I 国产又大又长又粗又猛的视频 I 舔美女丝袜脚的网站在线观看 I 人妻少妇精品无码系列 I 久久精品88 I 国产国产成人久久精品 I 国产在线精品视频二区 I 牲交a欧美牲交aⅴ免费一 I 亚欧天堂 I 国产欧美日韩一级片 I 夜夜嗨av 禁果av 粉嫩av懂色av I 久久er99精品 I 无码纯肉动漫在线观看

FAQ
You are here:Home >> News >> FAQ
Analysis of the Differences between Lithium Iron Phosphate Power Battery and Lithium Iron Phosphate Energy Storage Battery
937 2023-10-18
The main differences between lithium iron phosphate power batteries and lithium iron phosphate energy storage batteries are: different battery capacities, different application scenarios, differences in battery management system BMS, different types of battery cells used, and different performance and design.
Battery Definition
Lithium iron phosphate power battery mainly provides power, that is, electricity is converted into driving power, traction power, and so on through an electric motor. Transportation vehicles that use power batteries to provide power include electric cars, electric trains, electric trucks, electric bicycles, electric tricycles, and electric ships; The traction type includes indoor and outdoor tractors and forklifts used in schools, factories, sports fields, and other places; Other power sources that can be used for electric tools, such as drones and electric toys.
Lithium iron phosphate energy storage battery, used for storing electrical energy. Mainly used in power stations, communication base stations, household energy storage, portable power sources, etc. for solar and wind power generation equipment, as well as batteries for renewable energy storage.
Basic Differences
Energy density and power density: lithium iron phosphate power battery>lithium iron phosphate energy storage battery
Lithium iron phosphate power batteries focus more on charging and discharging power, requiring fast charging rate, high output power, and vibration resistance, especially emphasizing high safety and high energy density to achieve long-lasting endurance, as well as lightweight requirements in terms of weight and volume.
Lithium iron phosphate energy storage batteries emphasize battery capacity, especially operational stability and service life. More attention should be paid to the consistency of battery modules. In terms of battery materials, attention should be paid to expansion rate, energy density, electrode material performance uniformity, etc., in order to pursue the long life and low cost of the overall energy storage equipment.
Structural composition
The structural composition of lithium iron phosphate power batteries and lithium iron phosphate energy storage batteries is different: the positive electrode material of the former is lithium iron phosphate or lithium iron phosphate derivative, while the latter is lithium iron phosphate; The former is carbon black or high specific surface area carbon material, while the latter is graphite.
Service life
Lithium iron phosphate power batteries are less than lithium iron phosphate energy storage batteries. For power lithium batteries, energy storage lithium batteries have higher requirements for their service life. The lifespan of new energy vehicles is generally 8 years, while the lifespan of energy storage facilities is greater than 10 years.
Number of cycles
Lithium iron phosphate power batteries are less than lithium iron phosphate energy storage batteries. The cycle life of the power battery is around 2000 times. The cycle life requirement of energy storage lithium batteries is to be greater than 3500 cycles. If the charging and discharging frequency is increased, the cycle life requirement is usually to be more than 5000 cycles.
Comprehensive Appearance
Lithium iron phosphate power batteries are smaller and lighter in weight; Lithium iron phosphate energy storage batteries generally have a more square and heavy appearance.

Weight: Weight requirements
The weight of lithium iron phosphate power battery is less than that of lithium iron phosphate energy storage battery.
As the power consumption of new energy vehicles increases with the weight of the vehicle, the power battery requires a lighter weight. The requirements for energy storage batteries in energy storage power stations are all large-scale, with no requirement for the importance of batteries at levels of megawatts or even hundreds of megawatts. Due to the lack of significant limitations on energy storage lithium batteries, the production cost requirement is lower than that of power lithium batteries, and the safety requirement is also higher.
Height: Size
The volume of lithium iron phosphate power batteries is equivalent to dozens or twenty large carpets stacked together, while lithium iron phosphate energy storage batteries are generally composed of multiple battery modules forming a large module, which is then combined with many large modules. Energy storage batteries with a volume close to that of a container.
Battery capacity
Battery capacity: Lithium iron phosphate power battery < Lithium iron phosphate energy storage battery.
Electrical performance
Discharge current: Lithium iron phosphate power battery > Lithium iron phosphate energy storage battery
Resistance: Lithium iron phosphate power battery < Lithium iron phosphate energy storage battery
If lithium iron phosphate power batteries and lithium iron phosphate energy storage batteries use the same battery material, but the quality of the same material is slightly better, the internal resistance will be lower, and the energy storage battery will be slightly worse, and the internal resistance will be higher.
Application Requirements
When discharging lithium iron phosphate power batteries, the current changes greatly, and more attention is paid to charging and discharging power. It requires fast charging rate, high output power, and impact resistance, especially high safety and energy density, achieving long-lasting endurance, and lightweight requirements in terms of weight and volume. Energy storage batteries can be considered to have a relatively stable output, generally with a small discharge current and a long discharge time. From the perspective of battery materials, it is necessary to consider the lithium storage performance of positive and negative electrode materials, as well as the related performance of electrolytes and separators.
Lithium iron phosphate energy storage batteries generally require continuous charging or discharging for more than two hours, while also undertaking frequency modulation and peak shaving applications. Energy based batteries are more suitable. Of course, in this scenario, power based and capacity based batteries can also be used together.

Component Cost
The lithium iron phosphate power battery PACK is basically composed of the following five systems: battery module, battery management system, thermal management system, electrical system, and structural system. The cost of the power battery system consists of comprehensive costs such as battery cells, structural components, BMS, box, accessories, and manufacturing costs. The battery cells account for about 80% of the cost, while the Pack (including structural components, BMS, box, accessories, manufacturing costs, etc.) cost accounts for about 20% of the entire battery pack cost.
The lithium iron phosphate energy storage battery system is mainly composed of battery packs, battery management systems (BMS), energy management systems (EMS), energy storage converters (PCS), and other electrical equipment. In the cost composition of energy storage systems, batteries are the most important component, accounting for 60% of the cost; Secondly, energy storage inverters account for 20%, EMS (Energy Management System) accounts for 10%, BMS (Battery Management System) accounts for 5%, and others account for 5%.
Management System
The Battery Management System (BMS) for lithium iron phosphate batteries is an important component of the battery pack. The coordination and consistency of various functions and components of the battery pack depend on the BMS, and can directly affect the power output of the battery and the safety of the battery pack.
There is a difference in the battery management system BMS between lithium iron phosphate power batteries and lithium iron phosphate energy storage batteries, as power batteries are often used in new energy vehicles and are often in high-speed motion. They have more stringent requirements for the power response speed and power characteristics, SOC estimation accuracy, and state parameter calculation quantity of the battery, and related adjustment functions also need to be implemented through BMS.

Source: SMM Cobalt Lithium New Energy    Author:Chaoxing  Yang
主站蜘蛛池模板: 色爽交 | 国产乱妇乱子 | 白嫩少妇bbw撒尿视频 | 欧洲精品一区二区 | 福利100合集 在线播放 | 日韩三级一区二区三区 | 少妇av一区二区 | 久久91视频 | 免费无码久久成人网站入口 | 亚洲成a∧人片在线观看无码 | 欧美一区二区激情 | 免费大片黄国产在线观看 | 免费视频国产在线观看 | 黄色毛片网站 | 日韩少妇内射免费播放 | 欧美性天天影院 | 亚洲日韩中文无码久久 | 国产福利91精品一区区二区三国产s | 久久中文字幕在线观看 | 久久夜色精品国产爽爽 | 亚洲成年人专区 | 亚洲啪啪av无码片 | 成人性生交视频免费观看 | 豆国产97在线 | 亚洲 | 午夜影院一区二区 | 色与欲影视天天看综合网 | 青操在线 | 波多野结衣美乳人妻hd电影欧美 | 人妻精品国产一区二区 | 一a本v道久久 | 四虎亚洲精品无码 | 久久香蕉国产线看观看精品yw | 老司机精品导航 | 一级片网站视频 | 欧美三级欧美成人高清www | 好男人www社区免费视频 | 欧美变态另类牲交 | 女主被强啪的动漫视频 | 久久男人av资源网站无码软件 | 久国产精品 | 中文字幕视频在线播放 | av av片在线看| 小12萝裸体视频国产 | 国产91色| 最新久久久 | 国内自拍99热 | 国产精品久久久久久久久久三级 | 欧美内射深插日本少妇 | 97国产精品视频人人做人人爱 | 不卡视频一区二区三区 | 特黄性暴力强在线线播放 | 国产一区二区毛片 | 毛片爱爱 | 人人妻人人爽日日人人 | 中文字幕人妻被公上司喝醉在线 | 无码日韩精品一区二区人妻 | 成年无码动漫av片在线尤物网站 | 久久久九九精品国产毛片a片 | 自拍 高清 日韩 欧美 另类 | 扒开女人内裤猛进猛出免费视频 | 亚洲国产精品av久久久 | 国产亚洲香蕉线播放αv38 | 三级毛片一 | 亚洲欧洲日产国码无码久久99 | 911国语对白| 天天躁夜夜躁狠狠躁婷婷 | 亚洲精品二三区 | 亚洲欧美999 | 亚洲一区二区精品 | 亚洲国产精品久久久天堂不卡海量 | 国产中文字幕在线观看 | 亚洲另类欧美综合久久图片区 | 青草视频在线观看免费 | 亚洲欧美精品无码一区二区三区 | www.在线观看网站 | 国产成人亚洲精品无码综合原创 | 青青草99久久精品国产综合 | 国产免费久久精品99re丫丫 | 在线播放国产一区二区三区 | 国产免费无遮挡吸乳视频下载 | 久久伊人中文字幕 | 久久免费国产精品 | 4455成人免费观看 | 欧美性猛交xxxx富婆 | 日韩欧美特级片 | 亚洲精品乱码久久久久久app | 亚洲人成网网址在线看 | 天天拍天天色 | 亚洲精品嫩草研究院久久 | 欧美韩国日本在线 | 亚洲精品7777| 亚洲国产精品久久久久秋霞小说 | 国产成人精品自在钱拍 | 色老大网站 | 久久老子午夜精品无码 | 日日日日做夜夜夜夜无码 | 午夜在线视频一区二区区别 | 精品一区二区三区波多野结衣 | 性ⅹⅹxxx瑜伽 |