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Measures against electrolytic rail corrosion in Tokyo metro subway tunnels

机译:对东京地铁地铁隧道电解槽腐蚀的措施

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Tokyo Metro Co., Ltd. is operating nine railroad lines (195.1 km) forming a network mainly consisting of subways in Tokyo, the capital of Japan. Good maintenance of tracks is essential to the safety of passengers. However, rail breakage due to electrolytic rail corrosion is occurring in some underground spaces. Rail corrosion occur frequently in subway tunnel due to underground water leakage. For some place, we have to change rails every a half year. So it is big problem for underground space. We have been examining electrolytic rail corrosion for three years. By producing maps of places prone to electrolytic rail corrosion, divided into 25-m sections, we analyzed track conditions and identified the causative factors of electrolytic corrosion depending on track conditions. In addition, we focused our attention on chemical approaches to the prevention of electrolytic corrosion. First, we conducted chemical analyses of samples of electrolytic corrosion products and samples of water collected from the environment where electrolytic corrosion occurred. The results suggested that akaganeite, which forms in the high Cl-concentration in underground spaces, promoted the loss of rail strength. Next, we examined the effectiveness of the sacrificial metal method in delaying electrolytic corrosion. The use of zinc, a metal with higher ionizing tendency than iron, in the form of adhesive tape attached to steel surfaces, was effective in delaying electrolytic rail corrosion. This report discusses the details of the conventional physical approach relying on rail replacement planning and the chemical approach to the prevention of electrolytic corrosion with some insight into future developments.
机译:东京地铁有限公司经营九条铁路线(195.1公里),形成一个主要由日本首都东京地铁组成的网络。良好的曲目维护对于乘客的安全至关重要。然而,在一些地下空间中发生由于电解槽腐蚀引起的铁路破损。由于地下漏水,地铁隧道经常发生轨道腐蚀。对于某个地方,我们必须每半年更换铁路。所以它是地下空间的大问题。我们已经检查了三年的电解轨腐蚀。通过俯瞰电解轨腐蚀的地点,分为25米,我们分析了跟踪条件,并根据轨道条件确定了电解腐蚀的致病因子。此外,我们将注意力集中在预防电解腐蚀的化学方法。首先,我们对电解腐蚀产品样品和从电解腐蚀的环境中进行的水的样品进行了化学分析。结果表明,在地下空间中的高Cl浓度中形成的阿卡酮促进了轨道强度的损失。接下来,我们检查了牺牲金属法在延迟电解腐蚀方面的有效性。在附着在钢表面上的粘合带的形式中,使用具有更高的电离倾向的金属,具有更高的电离倾向的金属,在延迟电解轨腐蚀方面是有效的。本报告讨论了依托铁路替代规划的传统物理方法的细节以及预防电解腐蚀的化学方法,深入了解未来发展。

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