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The last edit to this post was made by HaiChuan LaoYu on 2026-5-3 at 08:32. Proper management of valves is essential for stable operation. Everyone is welcome to engage in discussions and share insights regarding this topic. [HaiChuan Chemical Valve Management] series of posts: https://bbs.hcbbs.com/forum.php?mod=viewthread&tid=5719309 ---------------------------------------------------------------- Disclaimer: The content contained in this article is intended solely for technical exchange and reference purposes only; it does not constitute any form of professional engineering advice, design basis, or operational guidance. -----------------------------------------------------------------------------------During the operation of valves, many people encounter situations where there is a loud noise and severe vibration accompanying their operation; upon opening them, defects such as pitting and corrosion are found inside, and in some cases there is even perforation leading to leakage. This is known as valve cavitation – many people mistake it for corrosion or wear, and replace the valves blindly, which only provides temporary solutions rather than addressing the root cause. As a result, failures keep occurring, increasing costs and affecting production stability. In fact, cavitation is not simply a form of “damage”; it is a chain reaction resulting from physical changes in the fluid within the valve. By identifying the root cause, it is possible to eliminate or significantly reduce this phenomenon, thereby solving the problem at its source. First, understand the problem: What exactly is valve cavitation? In simple terms, cavitation occurs when a fluid flows through the throttling section of a valve, causing the flow velocity to increase sharply and the pressure to drop rapidly. When the pressure drops below the saturated vapor pressure of the fluid at that temperature, the liquid components in the fluid vaporize, resulting in the formation of numerous bubbles ; These bubbles move along with the fluid; when they reach areas of higher pressure, they burst rapidly, generating extremely high local shock forces (theoretical values can reach several thousand atmospheres). These forces continuously impact the inner surface of the valve, eventually causing pitting and corrosion. Additionally, vibrations and noise are produced, and in severe cases this can lead to the failure of the valve. Many people tend to confuse cavitation with corrosion; it is important to clarify that corrosion is a chemical process (such as a reaction between the medium and the material), while cavitation is caused by physical impacts. The causes of the two are different, and so are their solutions—if cavitation is mistaken for corrosion, replacing the material with one that is resistant to corrosion will not solve the problem and will only result in unnecessary cost wastage. It should be noted that in real media, cavitation damage may expose fresh metal surfaces, thereby accelerating chemical corrosion; the two effects can sometimes act together, and a comprehensive consideration is required when making judgments. To determine whether cavitation is occurring, three characteristics are sufficient to consider: sharp noises and vibrations during operation, pitting or honeycomb-like erosion inside the valve (rather than uniform rusting), and failures that often occur in the throttling parts of the valve (such as the valve core and seat). Cavitation occurs under two conditions: first, a large pressure difference before and after the valve, and second, a high flow velocity of the fluid; together, these factors cause the local pressure to drop below the saturated vapor pressure. Drawing on hands-on operation experience, there are mainly four common causes: first, improper valve selection – valves with too small a throttling gap (such as ordinary globe valves) are used, which results in a sharp increase in flow velocity as the fluid passes through ; Secondly, the valve opening degree is not appropriate; for ordinary single-seat valves, globe valves, etc., operating at a low opening degree for an extended period will intensify the throttling effect, resulting in a sharp increase in pressure difference ; Third, the operating parameters are not matched; the fluid temperature is too high and the flow rate is too large, which leads to an increase in the saturated vapor pressure, making it easier to reach the conditions for vaporization ; Fourth, the internal structure of the valve is unreasonable; there is no design for guiding flow or reducing pressure, which causes vortices to form within the valve and leads to abnormally low local pressures. To address cavitation, in most cases no complex equipment modifications are required; by focusing on reducing the pressure difference, slowing down the flow rate, and optimizing the structure, cavitation can be significantly suppressed or reduced. The following are practical methods that can be implemented right away. First, optimize valve selection to prevent cavitation at the source. Abandon the misconception that universal valves are suitable for all situations; select valves based on the specific operating conditions. In scenarios with large pressure differences (such as pressure reduction in high-pressure pipelines), it is advisable to use valves designed for multi-stage pressure reduction or anti-cavitation purposes (such as porous sleeve valves, labyrinth valves, etc.). These valves have specialized structures for pressure reduction and flow guidance, which help distribute pressure and prevent excessive local flow speeds ; Avoid using valves with small throttling clearances such as stop valves, as these types of valves are prone to severe throttling, which can lead to cavitation. At the same time, it is recommended to calculate the cavitation coefficient of the valve during selection, to ensure that it is suitable for the pressure difference and flow rate under actual operating conditions. Secondly, adjust the operating conditions to reduce the conditions that lead to cavitation. For ordinary single-seat valves, globe valves, etc., avoid operating them at a low opening degree for extended periods; adjust the opening degree according to production requirements, trying to keep it within the 30%-80% range to reduce the throttling effect ; If the operating conditions permit, it is possible to appropriately lower the fluid temperature and reduce the flow rate, thereby decreasing the saturated vapor pressure of the fluid and reducing bubble formation ; If the pressure difference before and after the valve is too large, a pressure reducing valve can be installed in front of the valve to reduce the pressure gradually, thereby preventing a sudden drop in pressure. Finally, optimize the valve internals and daily maintenance to delay cavitation damage. For valves that have already suffered mild cavitation, anti-cavitation components such as carbide valve cores and seats can be replaced; these components have high hardness and strong impact resistance, which can help to delay cavitation-induced wear, but they cannot completely prevent the formation of bubbles ; Regularly inspect the valve internals; repair or replace them promptly if pitting or wear is detected, to prevent further damage from occurring ; At the same time, regularly clean the impurities inside the valves to prevent them from blocking the throttling areas, which could increase flow rate and pressure fluctuations and lead to cavitation. In general, valve cavitation is not an insurmountable problem; it is a physical phenomenon that can be prevented and treated, provided that the pressure difference and flow rate are controlled to avoid fluid vaporization and the formation of bubbles.