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Shenzhen Green Power Energy Battery Co.,ltd specializes in a wide range of digital battery such as environmental cylindrical 18650 21700 32700 26650 14500 18500 lithium ion rechargeable battery, LifePO4 battery, 3.7V lithium polymer battery, NiMH battery, NiCD battery, dry cell battery, alkaline battery, heavy duty battery, button cell battery etc. we devote to R&D, innovation, production & sales. With automatic production machines we have been exported goods to all over the world over 15years. We have complete exported certificate such as KC, CE, UL, BSCI, ROHS, BIS, SGS, PSE etc
Dongguan Datapower New Energy Co.,ltd is a high-tech production enterprise which specialize in the R&D and production&sale of lithium polymer batteries,drone battery,airplane batteries &battery pack etc.
Anhui Seong-hee New Energy Technology Co.,ltd is a high-tech production enterprise which specialize in the R&D and production of primary batteries. And mainly produces and sells alkaline batteries & carbon zinc batteries. there are size AA, AAA, C, D, 9V etc
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release time:2023-10-18 Hits: Popular:AG11 battery
As one of the strategic models for the industrialization of new energy vehicles in my country, small pure electric vehicles have attracted more and more attention. As the only power source of pure electric vehicles, power lithium battery packs bear the mass of modules such as battery packs. Therefore, their strength and stiffness must meet the usage requirements to ensure driving safety. Design requirements for electric vehicle power lithium battery packs In the early stage architecture development of pure electric vehicle projects, how to reasonably arrange the integrated power lithium battery packs is crucial. The specific work elements mainly involve ground clearance, passability, collision safety and power requirements. Several aspects will be introduced separately below. 1. The battery's ground clearance requires that the lower surface of the battery be protected by structural parts, and it also needs to meet the following conditions: Under the maximum jump state, the battery needs to ensure a certain gap from the ground; it must be competitive under full load. The ground clearance; the battery RESS needs to be protected in the forward direction; the battery RESS arrangement must not be lower than the lowest surface of the surrounding body structure. 2. The human-machine layout of the crew cabin limits the Z-direction size of the battery. It can be seen from the human-machine layout of an electric vehicle project that there are 9 engineering indicators that need to be considered in the Z-direction latitude, specifically the distance H5 from the crew H point to the ground, the crew The sitting height is H30, the head space is H61, the distance from the heel point to the ground is H8, the Z-direction thickness of the battery pack, the battery pack ground clearance, the vehicle height is H100, the distance from the upper surface of the lithium battery pack to the upper surface of the floor, and the carpet and sound insulation Thickness of cotton. Therefore, the height of the vehicle body is limited based on the styling requirements, and the Z-direction size limit surface of the battery pack can be derived based on the human-machine layout requirements. 3. The collapse space limits the Y-direction size of the battery. Since the working voltage of the battery is generally higher than 300?V, and the electrolyte in the battery cell is highly corrosive, the lithium battery pack is placed in the entire vehicle. It is necessary to set a reasonable safety collapse gap, among which lateral collision conditions are particularly harsh. Specific vehicle models need to use CAE iterative analysis methods to arrive at a reasonable design of the lateral collapse distance from the battery to the rocker panel. 4. Limitations of the vehicle load transfer path on battery pack design The vehicle load transfer path can be roughly decomposed into: front cabin load path, front and center floor load transfer and rear floor load path. Since future lithium battery pack layout plans are basically laid out under the floor, the design of the front and middle floor load transfer paths is closely related to the structural plan of the battery pack. After topology optimization, the load transfer under the floor is mainly accomplished by arranging the longitudinal beam extension beam on the side of the battery and the No. 1.5 beam in front of the battery. As shown in Figure 8, the purple longitudinal beam in the figure passes through the triangular structure and the No. 1.5 beam. The beam is connected to the longitudinal beam of the front cabin for load transfer in a frontal collision; at the same time, the battery frame should also serve as a load transfer path to cooperate with the body load path; the beam structure inside the battery pack should be connected with the body's No. 2/3/4 beams and the central channel The beam position remains consistent. 5. The demand for power for the cruising range. For the same battery unit module, the cruising range is related to the energy density and capacity of the battery, and the capacity parameters of the battery are determined by the number and method of series and parallel connection of its internal battery cells. , which will eventually lead to changes in the overall shape and size of the power lithium battery pack. Table 2 details the differences in battery power and battery pack size due to differences in the energy density and series-parallel connection methods of cells and modules under the same cruising range target requirements for battery packs from different suppliers. 6. Battery pack installation interface requirements The installation method of the power lithium battery pack on the vehicle directly affects its mode and strength. Generally, an installation point needs to be arranged at intervals around the battery pack. If the overall battery pack length is greater than 2mm, it is recommended that Adding hanging points in the middle improves the modal. The power lithium battery pack is the core energy source of new energy vehicles, providing driving power for the entire vehicle. It mainly forms the main body of the battery pack through a metal shell envelope. The modular structural design realizes the integration of battery cells, and the thermal management performance of the battery pack is optimized through thermal management design and simulation. The electrical components and wiring harness realize the safety protection and connection path of the battery by the control system; the management of battery cells is realized through BMS. , as well as communication and information exchange with the entire vehicle. The production process of power lithium battery packs from a simple battery cell to a lithium battery pack is also quite complicated and requires multiple processes. It is no simpler than the manufacturing process of battery cells. 1. Loading materials transfer the battery core to the designated position, and the robot automatically grabs it and sends it to the module assembly line. 2. Give the cells a bath—the plasma cleaning process cleans the surface of each cell. Ion cleaning is used here to ensure that contaminants during the process do not adhere to the bottom of the battery cells. 3. Assemble the battery cores - Glue the battery cores. Before assembling the battery cores, the surface needs to be coated with glue. In addition to fixing, the glue also serves the purpose of insulation and heat dissipation. High-precision gluing equipment and robots work together to apply glue at a set trajectory, while monitoring the quality of the glue in real time to ensure the quality of the glue and further improve the consistency of each set of different battery modules. 4. Build a home for the battery core - welding of end plates and side plates. Power lithium battery modules are mostly welded with aluminum end plates and side plates. Robots are used to laminate and weld end plates and side plates. 5. After the wire harness isolation plate assembly and welding monitoring system accurately locates the welding position, bind the wire harness isolation plate material barcode to the MES production scheduling management system to generate a separate code for traceability. After coding, the wiring harness isolation board is automatically loaded into the module through a robot. 6. Complete the series and parallel connection of batteries - laser welding. Through automatic laser welding, the connection between the poles and the connecting piece is completed to realize the series and parallel connection of batteries. 7. An important step before offline - offline test. Check the full performance of the module before offline, including module voltage/resistance, battery cell voltage, withstand voltage test, and insulation resistance test. The standardized module design principle can be customized to match different models, and each module can also be installed in the best suitable space and predetermined position in the car. The above are the design requirements and production process of electric vehicle power lithium battery pack. In electric vehicles, the weight of power lithium battery pack accounts for about 30% of the vehicle mass. As the country continues to increase its support and promotion of new energy vehicles, industry regulations are becoming more and more perfect, and some battery pack factories that do not meet the requirements are gradually being eliminated..
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