Thread Content
Example: The heating coil used in a certain factory is covered with 304-type stainless steel (coating thickness of 0.2 mm). It was used after being stored at the construction site for over 3 years. During installation, it was found that nearly 20% of the heating coils were cracked, and the heating coils received just now had cracks in many places. There are brownish-red rust spots on various parts of the coil surface, with cracks starting from these rust spots. The cause of corrosion is the contamination of the stainless steel coil surface with iron particles during processing, which rust under humid conditions. Corrosion products are hygroscopic, thus causing corrosion beneath the precipitates. In the marine atmosphere at the construction site, the adsorption and concentration of chloride ions are accelerated, leading to stress corrosion cracking. A 304 stainless steel pipeline in a factory leaked during pressure testing. Inspection revealed numerous longitudinal scratches on the surface of the stainless steel pipe, with rust forming on those scratches ; Leakage starts at the rust spots. Removing the rust revealed cracks. It turns out that carbon steel fixtures were used during the processing of this stainless steel pipe, resulting in wear and scratches on its surface as well as the embedding of iron particles. In a humid atmosphere, the scratched area rusts, leading to stress corrosion cracking and resulting in cracks in the pipeline. Commentary: These two examples illustrate that in the processing and manufacturing of stainless steel equipment, it is necessary to prevent surface damage and contamination, especially iron particle contamination. This is because the corrosion resistance of stainless steel comes from its ability to easily form a passive layer on its surface, creating a protective film. Many factors can cause the degradation of the passivation film; for example, active ions in the environment (with chloride ions being the most common) can lead to localized damage of the passivation film, thereby triggering local corrosion such as pitting, crevice corrosion, and stress corrosion cracking. Maintaining a uniformly clean surface on stainless steel is beneficial for improving the stability of the passivation film and preventing localized corrosion. Surface dirt, corrosion products, rust, and dust will lead to intensified corrosion conditions in localized areas, thereby reducing their corrosion resistance. Using wire brushes, carbon steel fixtures, etc. to treat stainless steel causes contamination of the surface with iron particles, which is particularly harmful and should be avoided.
Many equipment manufacturing plants lack the capability to process non-ferrous metals. During processing in the workshops, these metals are stored alongside carbon steel equipment; the tools used for processing, such as molds, are also made of carbon steel. Additionally, the pickling areas are in a chaotic state, which leads to contamination of the equipment during its manufacturing process and thus reduces its service life.
Problems can arise if you aren’t careful in a certain place
The loading and unloading processes are also major sources of pollution; wire ropes are often used for lifting (instead of slings), which causes scratches on the metal surface.
Currently, most of the stainless steel pipes and sheets in circulation are lifted using steel wire ropes and steel hooks; it is also necessary to explain this to the purchasing staff when placing orders