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To remove chlorides from a strong acid mixture containing some residual chlorine and a large amount of salts, it is necessary to heat the solution to 80–90°C in a container. Due to the highly corrosive nature of the medium, steel-lined glass containers can only be used for one to two years; it is even more difficult to select materials for heating coils. To this end, specimen pieces of several alloy materials were immersed in the production solution in the laboratory to conduct material selection tests. The selected materials include nickel, Hastelloy, stainless steel, and titanium. The results show that only titanium is corrosion-resistant. However, the heating coil made of titanium suffered corrosion damage within two days, with a corrosion rate as high as 38 millimeters per year. The difference between the test results and the actual corrosion behavior of titanium is quite large. According to the introduction, the testing was carried out by placing test pieces of several materials in the same container. This approach is clearly incorrect. Because interactions may occur between different materials, leading to incorrect results. In this case, the Fe2+ ions generated by the corrosion of the iron-based alloy specimen located near the titanium specimen are oxidized to Fe3+ ions in this halide solution, and Fe3+ ions act as an extremely effective corrosion inhibitor for titanium. Therefore, a basic principle of corrosion testing is that only test specimens of one material should be placed in a test container to ensure full contact with the solution. Gaps should be avoided between the test piece and the container, as well as between the test piece and the support frame. No metal support frames are used. In short, it is necessary to avoid introducing corrosion factors that are difficult to estimate.
When conducting corrosion resistance tests on materials, it is necessary to avoid placing test pieces of different materials in the same container for testing. This is because interactions may occur between different materials, affecting the accuracy of the test results. For example, in experiments, the Fe2+ ions generated by corrosion near the titanium specimens were oxidized to Fe3+ in the iron-based alloy specimens; these Fe3+ ions had a corrosion-inhibiting effect on titanium, making it appear to have good corrosion resistance in tests, but it would corrode and be damaged rapidly in actual applications. Therefore, when conducting corrosion tests, it is necessary to ensure that each test container contains specimens of only one material type. Care should be taken to prevent any gaps between the specimens and the container or supports, and metal supports should be used as little as possible to avoid introducing other factors that could affect corrosion behavior. .