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The Modeling of Technological Trade-off in Battery System Design Based on an Ergonomic and Low-Cost Alternative Battery Technology

机译:基于符合人体工程学和低成本替代电池技术的电池系统设计技术折衷所造型

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The author and a co-inventor published earlier an ergonomic and low-cost alternative battery technology in a bid to tackle batteries' long-standing conundrums of slow charging and costly charging infrastructures. The technology adopts modularization of battery systems and prioritization of the charging/discharging of battery module(s) according to users' human effort to unload/(re)load individual battery module(s), enabling users to unload preferentially, substantially discharged battery module(s) individually for (re)charging them with the domestic mains supply before reloading them instead of (re)charging the whole battery system in situ. As the charging speed is irrelevant to domestic charging, for example, at home overnight, which also avoids specialized charging infrastructures, the two conundrums above can no longer be concerns. However, this technology is confronted with a trade-off of users' human effort between unloading/reloading many small battery modules and unloading/reloading fewer larger and heavier battery modules. This paper models this trade-off for the ultimate goal of optimization.
机译:提交人和一名共同发明人之前发布了符合人体工程学和低成本的替代电池技术,以解决电池的电池的慢速充电和昂贵的充电基础设施的长期难忘。该技术采用电池系统的模块化和电池模块充电/放电的优先级,根据用户的人类努力卸载/(重新)负载单独的电池模块,使用户能够卸载大量放电的电池模块(s)单独为(重新)在重新加载它们之前用国内电源供应将其充电,而不是(重新)原位为整个电池系统充电。由于充电速度与国内充电无关,例如,在家过夜,这也避免了专业的充电基础设施,上面的两个难题不再是担忧。然而,这项技术面临着卸载/重新加载许多小电池模块和卸载/重装较少较大和更重的电池模块之间的用户人力努力的权衡。本文为优化的最终目标进行了此权衡。

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