REG NASA-LLIS-0752--2000 Lessons Learned Check Valve Reliability in Aerospace Applications.pdf
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1、Best Practices Entry: Best Practice Info:a71 Committee Approval Date: 2000-04-04a71 Center Point of Contact: MSFCa71 Submitted by: Wil HarkinsSubject: Check Valve Reliability in Aerospace Applications Practice: In check valve design for aerospace applications examine all design features, materials,
2、and tolerances to evaluate the effects of contamination and exposure to cryogenic or hypergolic propellants. Conduct long term compatibility tests simulating the operational environment to assess material suitability for each unique application.Programs that Certify Usage: This practice has been use
3、d on the Saturn Launch Vehicles, Space Shuttle Main Engine (SSME), Space Shuttle Solid Rocket Booster (SRB) programs.Center to Contact for Information: MSFCImplementation Method: This Lesson Learned is based on Reliability Practice number PD-ED-1267, from NASA Technical Memorandum 4322A, Reliability
4、 Preferred Practices for Design and Test.Benefit:The benefits of using special design and test procedures for aerospace check valves are long life, consistent operation, and trouble-free performance during prelaunch, launch, and orbital operations.Implementation Method:Provided by IHSNot for ResaleN
5、o reproduction or networking permitted without license from IHS-,-,-Introduction:Aerospace check valves allow fluid flow of propellants and gasses in one direction and, if the system pressure reverses, close quickly to prevent flow in the opposite direction. Aerospace check valves are normally self-
6、contained, spring loaded devices, requiring no external actuation signals or sources of power. The valving elements are activated by the pressure forces of the flow media. Ball type check valves are suitable for smaller applications, while poppet type valves are more appropriate for large flows, suc
7、h as in the Space Shuttle Main Engine (SSME) application shown on Figure 1. Internal check valve leakage due to contamination is the main reliability detractor for both types of valve, although other failure modes such as external leakage, failure of the poppet or ball to open, and poppet or ball ch
8、atter are other potential failure modes. Highly reliable check valves have been designed, built, installed, and operated for extended periods in launch vehicle and propulsion applications with no detrimental in-flight failures.refer to D descriptionD Figure 1. SSME Purge Check Valve Design Practices
9、:Provided by IHSNot for ResaleNo reproduction or networking permitted without license from IHS-,-,-Successful design practices have evolved that have resulted in failure-free aerospace check valve configurations. Large flow paths are provided through poppet-type check valves to reduce flow velocitie
10、s and erosion of seats. Figure 1 is a cutaway view of the SSME purge check valve, a typical check valved used in aerospace applications. Teflon sleeves are provided for smooth operation and quick opening and closing of the poppets to permit rapid response to pressure differentials. Valve housings ar
11、e configured to avoid areas that can trap contaminants. “Swept-by“ designs are employed where the fluid flow tends to pass contaminants through the valve.Material compatibility with the working fluid is an important design consideration. The material evaluation includes dynamic as well as static imp
12、lications, and considers temperature, pressure, and phase variations of the fluid. To minimize valve-induced contamination, material selection includes consideration of wear particle size on useful life. (Particle sizes vary as the Youngs Modulus divided by the square of the compressive yield stress
13、.) Where threaded connectors are used, rolled threads are used in preference to machined threads to minimize burrs and to achieve higher strength. Pipe threads are avoided, and the check valve should have female threads to avoid thread damage. Dead-end passages and capillary passages are avoided. Al
14、l materials and tolerances must be examined to account for material properties after exposure to fluids and contaminants. Testing should include exposure to fluids and contaminants in the failure mode operation. Materials compatibility testing is particularly important for check valves used to isola
15、te bipropellant tanks of hypergolic systems where the valves can be exposed to both oxidizers and fuel vapors and their byproducts. Teflon in particular swells after exposure to nitrogen tetroxide vapor or liquid and adequate clearance must be provided in the valve after swelling to prevent binding
16、of moving parts.Aerospace check valves work best in a contamination-free system, but where contamination is likely to be present, internal leakage due to contamination is minimized if the spring force is matched with material softness to ensure compression and closure. Self-aligning poppets or balls
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