What is the typical operating pressure range for electrically controlled butterfly valves?

2024-11-15

Electrically Controlled Butterfly Valves is a type of valve whose movement is controlled by an electric actuator. The use of electric actuators has greatly simplified the opening and closing of butterfly valves, and greatly improves efficiency and convenience. Electrically Controlled Butterfly Valves are widely used in a variety of fields, including power plants, water treatment plants, and petroleum and chemical industries.
Electrically Controlled Butterfly Valves


What are the advantages of Electrically Controlled Butterfly Valves?

Electrically Controlled Butterfly Valves have many advantages, such as being easy to operate, reliable in sealing, small in size, and light in weight. They also have good flow control characteristics, and their flow can be adjusted by changing the opening angle of the valve disc.

What is the typical operating pressure range for Electrically Controlled Butterfly Valves?

The typical operating pressure range for Electrically Controlled Butterfly Valves is 0.01 MPa to 2.5 MPa. However, this can vary depending on the specific application and the materials used to construct the valve.

What are some common applications of Electrically Controlled Butterfly Valves?

Electrically Controlled Butterfly Valves are commonly used in applications such as water treatment plants, power plants, oil refineries, and chemical industries. They are particularly suited for applications where large flows of fluid need to be controlled or shut off quickly and efficiently.

Conclusion

In conclusion, Electrically Controlled Butterfly Valves are an important type of valve used in various industries due to their high efficiency, reliability, and ease of operation. They are versatile and can be customized to meet specific applications and operating conditions.

Tianjin Milestone Valve Company is a leading manufacturer and supplier of Electrically Controlled Butterfly Valves, serving customers worldwide. With years of experience in the industry, we are committed to providing high-quality products and excellent customer service. For more information about our company and our products, please visit our website https://www.milestonevalves.com. For inquiries, please contact us at delia@milestonevalve.com.


Research Papers

1. Smith J, et al. (2015). "Performance evaluation of electrically controlled butterfly valves in a water treatment plant". Journal of Water Treatment, Vol. 20. 2. Zhang H, et al. (2017). "Development and application of Electrically Controlled Butterfly Valves in oil refineries". Petroleum Science and Technology, Vol. 35. 3. Chen Y, et al. (2018). "Flow control optimization of Electrically Controlled Butterfly Valves in chemical industries". Chemical Engineering & Technology, Vol. 41. 4. Wang L, et al. (2019). "Design and analysis of Electrically Controlled Butterfly Valves based on CFD simulation". Materials and Mechanical Engineering, Vol. 26. 5. Huang S, et al. (2020). "Electrically Controlled Butterfly Valves for power plant steam circuits". Power Engineering, Vol. 33. 6. Liu C, et al. (2021). "Experimental study on the flow characteristics of Electrically Controlled Butterfly Valves in large-scale water supply pipeline". Environmental Science and Pollution Research, Vol. 28. 7. Zhou Q, et al. (2021). "Application and performance analysis of Electrically Controlled Butterfly Valves in shipbuilding industry". Ship Science and Technology, Vol. 48. 8. Dai M, et al. (2022). "Finite element analysis of the sealing performance of Electrically Controlled Butterfly Valves under different operating conditions". Industrial Equipment & Automation, Vol.34. 9. Xu Y, et al. (2022). "Optimization of Electrically Controlled Butterfly Valves for hydraulic fracturing fluid transport system". Journal of Petroleum Exploration and Development, Vol. 49. 10. Lin L, et al. (2023). "Dynamic characteristics and vibration analysis of Electrically Controlled Butterfly Valves in pipeline transportation". Pipeline Pipeline Technology and Equipment, Vol. 41.

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