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    • 9. 发明申请
    • Separator for alkaline batteriy and using same
    • 碱性电池分离器并使用
    • US20060121340A1
    • 2006-06-08
    • US10527315
    • 2003-09-05
    • Hiroyuki KawaiHitoshi ToyouraTakashi TatayamaYasunori MurateTomoyasu SonetakaShigeto NoyaYasuo Mukai
    • Hiroyuki KawaiHitoshi ToyouraTakashi TatayamaYasunori MurateTomoyasu SonetakaShigeto NoyaYasuo Mukai
    • H01M2/16
    • H01M2/162D01F2/00D01F6/805D21H13/08D21H13/26H01G11/52H01M2/1626H01M6/04H01M10/24Y02E60/13
    • A separator for alkaline batteries exhibits excellent property for holding the alkaline electrolyte, is not degraded even when the separator is used for alkaline batteries using a positive electrode mix containing an agent having a great oxidizing ability for enhancing the discharging property under a great load, maintains the function as the separator even when the separator is exposed to high temperatures for a long time and can be effectively used for alkaline batteries which are used for portable information instruments requiring the excellent discharging property under a great load such as digital cameras. The separator for alkaline batteries has a non-woven fiber structural material which comprises a polyamide fiber formed with a polyamide constituted with 60% to 100% by mole of a dicarboxylic acid unit and 40 to 99% by mole of 1,9-nonanediamine unit and a solvent-spun cellulose fiber as the main component fibers, and the ratio of the amounts by mass of the polyamide fiber to the cellulose fiber is 20:80 to 80:20. Preferably, the polyamide forming the polyamide fiber comprises the 2-methyl-1,8-octanediamine unit in combination with the 1,9-nonanediamine unit, and the ratio of the amounts by mole of the 1,9-nonanediamine unit to the 2-methyl-1,8-octanediamine unit is 99:1 to 40:60.
    • 碱性电池用隔膜具有良好的保持碱性电解质的性能,即使将隔膜用于使用含有具有大氧化性的试剂的正极混合物用于提高大负载下的放电性的碱性电池时,也不会劣化 作为分离器的功能,即使隔板长时间暴露于高温下,也可以有效地用于用于在诸如数码相机的大负载下具有优异的放电性能的便携式信息仪器的碱性电池。 碱性电池用隔膜具有非织造纤维结构材料,其包含由聚酰胺纤维形成的聚酰胺纤维,所述聚酰胺纤维与由二羧酸单元的60〜100摩尔%构成的聚酰胺和40〜99摩尔%的1,9-壬二胺单元 以溶剂纺丝纤维素纤维为主要成分纤维,聚酰胺纤维与纤维素纤维的质量比为20:80〜80:20。 优选地,形成聚酰胺纤维的聚酰胺包括与1,9-壬二胺单元组合的2-甲基-1,8-辛二胺单元,并且1,9-壬二胺单元的摩尔比与2 甲基-1,8-辛二胺单位为99:1〜40:60。
    • 10. 发明授权
    • Abnormality detection apparatus for preventing fuel gas emission
    • 用于防止燃料气体排放的异常检测装置
    • US6082337A
    • 2000-07-04
    • US113281
    • 1998-07-10
    • Takeshi FujimotoMasaaki NakayamaYasuo MukaiHisayo DohtaKeiji WakaharaJunya MorikawaMakoto Miwa
    • Takeshi FujimotoMasaaki NakayamaYasuo MukaiHisayo DohtaKeiji WakaharaJunya MorikawaMakoto Miwa
    • F02M25/08F02M37/04
    • F02M25/0809
    • When a diagnosis execution condition is established, a canister closure valve is closed, thereafter, a purge control valve is opened, a purge control valve is closed in a state where negative pressure is introduced into an evaporated gas system to thereby maintain the evaporated gas system in a hermetically-sealed state and the hermetically-sealed state is continued until abnormality diagnosis is finished. Time period for maintaining the evaporated gas system in the hermetically-sealed state is divided into three time periods of a pressure change determining time period at a first time, an awaiting time period and a pressure change determining time period at a second time. After determining a pressure change amount DPT1 of the evaporated gas system in the pressure change determining time period at the first time, the evaporated gas system is successively maintained in the hermetically-sealed state, after the predetermined awaiting time period has elapsed, the pressure change determination at the second time is carried out by which a pressure change amount DPT2 of the evaporated gas system is determined. Further, presence or absence of leakage of the evaporated gas system is diagnosed by comparing the pressure change amount DPT1 at the first time with the pressure change amount DPT2 at the second time.
    • 当建立诊断执行条件时,关闭罐关闭阀,此后打开净化控制阀,在将负压引入蒸发气体系统中的状态下关闭净化控制阀,从而保持蒸发气体系统 在气密密封状态下,气密密封状态持续直到异常诊断完成。 用于将蒸发气体系统保持在气密密封状态的时间段被分为在第一时间的压力变化确定时间段,等待时间段和第二时间的压力变化确定时间段的三个时间段。 在第一次在压力变化确定时间段内确定蒸发气体系统的压力变化量DPT1之后,蒸发气体系统依次保持在气密密封状态,在经过预定的等待时间之后,压力变化 进行第二次的测定,确定蒸发气体系统的压力变化量DPT2。 此外,通过将第一次的压力变化量DPT1与第二次的压力变化量DPT2进行比较来诊断蒸发气体系统的泄漏的存在或不存在。