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Let’s talk about the hydraulic testing of equipment. Pressure testing of equipment is an important aspect of corrosion control. Because the water used for pressure testing is also a corrosive agent for the equipment materials. To prevent corrosion of the equipment caused by pressure testing, it is necessary to pay attention to the quality of the water used for testing. This water should be treated to remain clean and free from any substances that could cause severe corrosion to the equipment. Second, it is important to ensure that the pressure testing procedure is carried out correctly. For carbon steel equipment, due to its poor corrosion resistance to water, the main goal is to prevent rusting of the carbon steel during and after pressure testing. A corrosion inhibitor can be added to water to reduce its corrosive effect on carbon steel. After pressure testing, the water should be drained immediately, and the surface dried with hot air to remove all moisture, after which it should be sealed. For stainless steel equipment, the key is to prevent the surface from being contaminated by chlorides. Because chlorides can cause various types of local corrosion in stainless steel. Although the overall corrosion rate of stainless steel by tap water is low, tap water contains high levels of chlorides, making it unsuitable for pressure testing. Each factory has specific regulations regarding the allowable chloride content in the water used for pressure testing different stainless steel equipment. More importantly, after pressure testing, water should not remain in the equipment; it must be drained immediately and the surface made dry. Otherwise, it can lead to the initiation of pitting. Furthermore, during the evaporation of water, chlorides are concentrated, creating a harsh corrosive environment for stainless steel equipment, which may suffer from corrosion and damage even before it is put into use. For example: A newly built 304L stainless steel storage tank was put into use, and leakage appeared at its bottom immediately. After cleaning, inspection revealed numerous rust spots and small nodules on the bottom, along with micro-erosion pits the size of pinholes. There are approximately 50 pits at the bottom, and these pits have completely penetrated the 6.4 mm thick plate. The characteristics of the corrosion damage indicate microbial corrosion. A hydrostatic test was conducted 6 weeks ago, using untreated river water from near the coast, with a chloride content of about 200 ppm. After the pressure test, the water was not drained and remained in the tank for 6 weeks.