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Techniques for jar formation of valve-regulated lead-acid batteries

机译:阀控式铅酸蓄电池罐形成技术

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The market for valve-regulated lead-acid (VRLA) batteries is growing steadily and will be given a further boost as the market for 36-V batteries for the 42-V PowerNet develops over the next few years. The manufacture of VRLA batteries poses, however, a number of complex technical problems that are not experienced in the manufacture of conventional flooded batteries. For the large-scale manufacture of automotive batteries or other small VRLA batteries of 100 Ah or less, jar formation rather than plate formation and dry charge would seem to be a logical and economically sound decision. For this to be successful, however, a number of key issues need to be reviewed, starting with a detailed consideration of battery design. This paper reviews issues associated with the jar formation of VRLA batteries. Guidance is given concerning filling techniques (gravity or vacuum fill), the formation process, charging techniques, and formation algorithms. Battery design and separator optimisation is discussed. The properties of the separator, e.g. wicking rate, fibre composition, surface area and compression, may have a critical impact on acid filling and jar formation, and may partially determine the filling and formation conditions to be used. The control of temperature during formation is particularly important. Formation algorithms and temperature data are presented. Attention is drawn to the possible loss of plate-group compression during the formation process, and how this may be avoided.
机译:阀控铅酸(VRLA)电池市场正在稳步增长,并且随着42 V PowerNet的36 V电池市场在未来几年内的发展,该市场将得到进一步的推动。但是,VRLA电池的制造带来了许多复杂的技术问题,而这些问题在常规满液式电池的制造中并未遇到。对于大规模制造100 Ah或以下的汽车电池或其他小型VRLA电池,形成罐而不是形成板以及干装似乎是合乎逻辑且经济上合理的决定。但是,要使此方法成功,就必须从电池设计的详细考虑入手,审查许多关键问题。本文回顾了与VRLA电池罐形成有关的问题。提供有关填充技术(重力或真空填充),形成过程,装料技术和形成算法的指南。讨论了电池设计和隔板优化。分隔符的属性,例如芯吸速率,纤维组成,表面积和压缩率可能对酸填充和广口瓶形成产生关键影响,并且可能部分确定要使用的填充和形成条件。形成期间的温度控制特别重要。介绍了形成算法和温度数据。请注意在成型过程中可能发生的板组压缩损失,以及如何避免这种损失。

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