2020年6月29日星期一

Data Center Mount Lithium Battery System

PRODUCT DESCRIPTION
 2U Height Module, fits on 19 “ Standard  Rack
 System consists of cylindrical LFP cells in series and parallels, with a maximum system capacity of 2.42kWH
 Touch screen display monitoring the state of the system and each battery cell
 Support 20 minutes backup time for 6KVA  UPS
 Equipped with 3 layers  adaptive equalization BMS,CAN and RS48 communication
Lithium-Ion Battery Cabinet Application Area
 UPS, Data Center,  Telecom, Residential
 Rack Mount LFP Battery System for UPS
 Rack Mount Li-Ion Battery System for Data center UPS
 Rack Mount Lithium Battery System for Telecom UPS
 UPS Rack Mount Lithium Battery System 
 Telecom Rack Mount Lithium Battery System
 Data Center Mount Lithium Battery System
 Lithium iron phosphate battery for business certer
 Lithium iron phosphate Battery Pack for Hospital
 Lithium iron phosphate Battery Module for Subway
 Lithium-Ion Battery Module for Train Station
 LFP Battery Pack for PV system
 LFP Battery Module for Solar power
 Lithium-Ion Battery with BMS for ESS
 Lithium-Ion Battery Pack with BMS for Wind turbine
 Lithium-Ion Battery Module with BMS for Warehouse backup power supply
 Li-Ion Battery Pack with BMS for Super Market
 Li-Ion Battery Module with BMS for Office UPS
 LFP battery with BMS for Grid connection
 LFP Battery Module with BMS for Off-grid connection
 Lithium-Ion Battery System for Bus station
 Frequency Regulation Lithium-Ion Battery System
 Peak Load Shifting Lithium-Ion Battery System

 Up to 480V DC out put with handy size.
 High power density supports maximum 3C discharge
 Highly modular system convenient for maintenance  and expansion
 Systems parallelizable


2020年6月23日星期二

Telecom Rack Mount Lithium Battery System

PRODUCT DESCRIPTION
 2U Height Module, fits on 19 Standard  Rack
 System consists of cylindrical LFP cells in series and parallels, with a maximum system capacity of 2.42kWH
 Touch screen display monitoring the state of the system and each battery cell
 Support 20 minutes backup time for 6KVA  UPS
 Equipped with 3 layers  adaptive equalization BMS,CAN and RS48 communication
APPLICATION AREA
 UPS, Data Center,  Telecom, Residential
 Rack Mount LFP Battery System for UPS
 Rack Mount Li-Ion Battery System for Data center UPS
 Rack Mount Lithium Battery System for Telecom UPS
 UPS Rack Mount Lithium Battery System 
 Telecom Rack Mount Lithium Battery System
 Data Center Mount Lithium Battery System
 Lithium iron phosphate battery for business certer
 Lithium iron phosphate Battery Pack for Hospital
 Lithium iron phosphate Battery Module for Subway
 Lithium-Ion Battery Module for Train Station
 LFP Battery Pack for PV system
 LFP Battery Module for Solar power
 Lithium-Ion Battery with BMS for ESS
 Lithium-Ion Battery Pack with BMS for Wind turbine
 Lithium-Ion Battery Module with BMS for Warehouse backup power supply
 Li-Ion Battery with BMS for State Grid
 Li-Ion Battery Pack with BMS for Super Market
 Li-Ion Battery Module with BMS for Office UPS
 LFP battery with BMS for Grid connection
 LFP Battery Module with BMS for Off-grid connection
 UPS Lithium-ion Battery System 
 Lithium-Ion Battery System for Bus station
 Frequency Regulation Lithium-Ion Battery System
 Peak Load Shifting Lithium-Ion Battery System

 Up to 480V DC out put with handy size.
 High power density supports maximum 3C discharge
 Highly modular system convenient for maintenance  and expansion
 Systems parallelizable


2020年6月17日星期三

Rack Mount Lithium Battery System

PRODUCT DESCRIPTION
 2U Height Module, fits on 19 Standard  Rack
 System consists of cylindrical LFP cells in series and parallels, with a maximum system capacity of 2.42kWH
 Touch screen display monitoring the state of the system and each battery cell
 Support 20 minutes backup time for 6KVA  UPS
 Equipped with 3 layers  adaptive equalization BMS,CAN and RS48 communication
APPLICATION AREA
 UPS, Data Center,  Telecom, Residential
 Rack Mount Li-Ion Battery System for Data center UPS
 Rack Mount Lithium Battery System for Telecom UPS
 Telecom Rack Mount Lithium Battery System
 Residential Rack Mount Lithium Battery System for Backup power
 Data Center Mount Lithium Battery System
 Lithium iron phosphate battery for business certer
 Lithium iron phosphate Battery Pack for Hospital
 Lithium iron phosphate Battery Module for Subway
 Lithium-Ion Battery Module for Train Station
 LFP Battery Pack for PV system
 LFP Battery Module for Solar power
 Lithium-Ion Battery with BMS for ESS
 Lithium-Ion Battery Pack with BMS for Wind turbine
 Lithium-Ion Battery Module with BMS for Warehouse backup power supply
 Li-Ion Battery with BMS for State Grid
 Li-Ion Battery Pack with BMS for Super Market
 Li-Ion Battery Module with BMS for Office UPS
 LFP battery with BMS for Grid connection
 LFP Battery Module with BMS for Off-grid connection
 UPS Lithium-ion Battery System 
 Lithium-Ion Battery System for Bus station
 Frequency Regulation Lithium-Ion Battery System
 Peak Load Shifting Lithium-Ion Battery System

 Up to 480V DC out put with handy size.
 High power density supports maximum 3C discharge
 Highly modular system convenient for maintenance  and expansion
 Systems parallelizable

2020年6月11日星期四

What Are The Types And Characteristics Of Common Lithium Batteries?

With the increasing use of lithium batteries in the market, many products have been replaced by lithium batteries. Compared with ordinary lead-acid batteries, lithium batteries have the advantages of long life, no pollution, energy-saving and lightweight. So, what are the types of lithium batteries? Li-Ion Battery Energy Storage System Supplier is here to give you science.

Lithium manganate, as a lithium battery material with a long history of use, has high safety, especially strong overcharge resistance, which is a major advantage. Due to the good structural stability of lithium manganese oxide, the amount of positive electrode material need not exceed that of the negative electrode when designing the battery cell. In this way, the number of active lithium ions in the entire system is not large, and after the negative electrode is full, there will not be too many lithium ions stored in the positive electrode. Even if an overcharge situation occurs, a large number of lithium ions will not deposit on the negative electrode to form crystals. Therefore, the overcharge resistance of lithium manganese oxide is good among common materials.

The advantages of Lithium Iron Phosphate Battery is mainly reflected in safety and cycle life. The main determinant comes from the olivine structure of lithium iron phosphate. This structure, on the one hand, leads to lower ion diffusion capacity of lithium iron phosphate, on the other hand, it also has better high-temperature stability and good cycle performance.

The disadvantages of lithium iron phosphate are also obvious, low energy density, poor consistency and poor low-temperature performance. The low energy density is determined by the chemical nature of the material itself. A lithium iron phosphate macromolecule can only accommodate one lithium-ion.

High Energy Lithium-ion Battery System
High Energy Lithium-ion Battery System

Consistency, especially batch stability is not only related to production management level, but also to its own chemical properties. Lithium iron phosphate is one of the more difficult to prepare in the positive electrode materials of various lithium batteries. The high difficulty of the consistency and uniformity of this chemical reaction also brings another problem. The iron element and the iron ion impurities in the lithium iron phosphate material always exist, which brings hidden danger to the battery.

The ternary lithium cathode material combines the advantages of LiCoO2, LiNiO2 and LiMnO2 materials form a synergistic effect within the same cell and take into account the three requirements of material structure stability, activity and lower cost. One of the cathode materials with higher energy density. Its low-temperature effect is also significantly better than lithium iron phosphate batteries.

Among the three elements, the higher the content of Ni, the higher the energy density of the cell, and the lower the safety of the cell. In practical applications, the ratio of the three materials in the cell has been changing with time. People's pursuit of energy density is getting higher and higher, so the proportion of Ni is getting higher and higher.

High Energy Lithium-ion Battery System is now in daily life. If you are interested, please contact us.

2020年6月5日星期五

Lithium Battery Technology Development, Lithium Battery Manufacturers

Lithium battery has become an indispensable product in daily life. Especially in the field of electric vehicles, lithium batteries are playing a growing role. Today, Science magazine launched two articles in a row, introducing the latest development of lithium batteries.
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One paper is research progress. It comes from FengWang of bruckhawn national laboratory and Gerbrand Ceder team of the University of California, Berkeley. It reports the abnormal principle of lithium titanate negative charge in the field of lithium battery. Another paper, outlook, by Jun Lu of Argonne national laboratory and Matthew Li of the University of Waterloo in Canada, describes the unique role and reduction of Co in lithium-ion batteries.

The evolution of lithium batteries

1. Science: to reveal the dynamic mechanism of lithium titanate rapid charging
In lithium batteries capable of fast charging, lithium and negative electrode generally form a solid solution. In this case, there is almost no dynamic barrier. Lithium can be continuously contained through solid solution transformation, and ion diffusion is the only limiting factor.

However, the negative electrode of lithium titanate (Li4Ti5O12) is an exception.

In the lithium titanate negative electrode, the lithium-ion interacts with both phases and diffuses slowly, but still has a high rate capacity. The bizarre behavior, which has caught the attention of scientists, could open the way for the development of entirely new, fast-rechargeable batteries.
With this in mind, Feng Wang of the Brookhaven national laboratories and Gerbrand Ceder of the University of California, Berkeley, used electron energy loss spectroscopy and density functional theory to investigate this abnormal Li + migration behavior.
They found that between the initial Li4Ti5O12 and the final Li7Ti5O12 materials, a diffusion interface was formed, along the metastable intermediate Li polyhedron dynamics path of the two-phase interface, to ensure the rapid migration of Li4+xTi5O12, which is a key factor for the rapid propagation of lithium ions.
This study provides a new direction for finding high - speed electrode materials.
2. Science: cobalt in lithium-ion batteries
LCO has been used in photovoltaic applications in lithium-ion batteries, giving them high conductivity and stable structure. Given that Co is mined in Africa in a less abundant way, at a higher price, and because of political and ethical issues, it is now being replaced with nickel and manganese to develop cheaper cathode materials.
Currently, most lithium-ion batteries use two kinds of positive electrode materials, NCA and NMC. In this way, Co can ensure high speed and flexible energy, and to some extent enhance cycle stability. How to further reduce or even not use Co on the premise of ensuring battery performance, in order to further reduce the cost, is a practical problem in today's lithium-ion battery field.
In view of this, Jun Lu of Argonne national laboratory in the United States and Matthew Li of the University of Waterloo in Canada introduced the unique role and reduction of Co in lithium-ion batteries.
This paper first summarizes the unique role and important advantage of Co in NCA and NMC: adding Co improves the stability of LNO. The content of Co can be reduced reasonably, but it is impossible to eliminate it completely.
Secondly, the culture introduces the use of other metals such as Ti in place of Co to achieve important progress in acceptable performance. However, other metals tend to limit the mixing of lithium and nickel, resulting in a decrease in kinetic performance and capacity.
The authors point out that determining the best composition of the new anode material will require a lot of rigorous experimental comparison, and machine learning may lead to new ideas. Whether to avoid Co altogether depends on the future market in cobalt mining and cobalt recycling.