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Gasket for pipe connections

2009-03-01View Original

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I haven’t been working at the company for very long, so I’m not very familiar with gaskets used for piping and equipment installation. Gaskets such as PTFE gaskets and asbestos gaskets – in what types of pipelines are they used (for steam, water, heat transfer oil, special substances like sulfuric acid, vacuum, etc.)? What gaskets are commonly used? I asked for advice! This post was last edited by Termitic Chief on 2009-3-1 10:21]
Reply #22009-03-01
We usually use graphite wound gaskets.
Reply #32009-03-01
These can be found on the forum; go and look for some by yourself!
Reply #42009-03-01
Steam piping systems are generally under high pressure, so graphite composite gaskets or metal wound gaskets are recommended; for plain water piping systems, rubber gaskets are sufficient. For instruments, PTFE gaskets or copper sheets are typically used
Reply #52009-03-01
The choice of gasket material depends mainly on the following three factors: temperature, pressure, and medium. I. Metal gasket materials 1. Carbon steel: It is recommended that the maximum operating temperature not exceed 538°C, especially when the medium is oxidizing. High-quality low-carbon steel plates are not suitable for use in equipment designed to handle inorganic acids or neutral or acidic salt solutions; if such carbon steel is subjected to stress, the accident rate in equipment operating under hot water conditions is very high. Carbon steel gaskets are commonly used in high-concentration acids and many alkaline solutions. Brinell hardness is about 120. 2. 304 stainless steel 18-8 (18-20% chromium, 8-10% nickel); the recommended maximum operating temperature is no more than 760°C. Within the temperature range of -196 to 538°C, stress corrosion and intergranular corrosion are likely to occur. Brinell hardness 160. 3. 304L stainless steel has a carbon content of no more than 0%. 03%. It is recommended that the maximum operating temperature not exceed 760°C. Its corrosion resistance is similar to that of 304 stainless steel. The low carbon content reduces the precipitation of carbon from the lattice, resulting in better resistance to intergranular corrosion compared to 304 stainless steel. Brinell hardness is about 140. 4. 316 stainless steel: 18-12 (18% chromium, 12% nickel); it contains about 2% more molybdenum than 304 stainless steel, and its strength and corrosion resistance increase as the temperature rises. It exhibits higher creep resistance than other ordinary stainless steels when the temperature rises. It is recommended that the maximum operating temperature not exceed 760°C. Brinell hardness is about 160. 5. The recommended maximum continuous operating temperature for 316L stainless steel is not more than 760°C to 815°C. The carbon content is such that it provides better resistance to stress and intergranular corrosion compared to 316 stainless steel. Brinell hardness is about 140. 6. 20 alloy: 45% iron, 24% nickel, 20% chromium, and small amounts of molybdenum and copper. It is recommended that the maximum operating temperature not exceed 760°C to 815°C. It is particularly suitable for manufacturing equipment resistant to sulfuric acid corrosion, with a Brinell hardness of about 160. 7. Aluminum-aluminum (content not less than 99%). Aluminum has excellent corrosion resistance and machinability, making it suitable for manufacturing double gasket materials. Brinell hardness is about 35. The recommended maximum continuous operating temperature is not exceeding 426°C. 8. Red copper: The composition of red copper is similar to that of pure copper, with trace amounts of silver added to increase its continuous operating temperature. It is recommended that the maximum continuous operating temperature not exceed 260°C. Brinell hardness is about 80. 9. Brass (66% copper, 34% zinc) exhibits good corrosion resistance under most operating conditions, but is not suitable for acetic acid, ammonia, salts, and acetylene. It is recommended that the maximum continuous operating temperature not exceed 260°C. Brinell hardness is about 58. 10. Hastelloy B-2 (26-30% molybdenum, 62% nickel, and 4-6% iron). It is recommended that the maximum operating temperature not exceed 1093°C. It exhibits excellent resistance to corrosion by concentrated hydrochloric acid. It also exhibits excellent resistance to corrosion by humid hydrogen chloride gas, as well as by sulfuric acid, phosphoric acid, and reducing salt solutions. It exhibits high strength under high-temperature conditions. Brinell hardness is about 230. 11. Hastelloy C-276: 16–18% molybdenum, 13–17.5% chromium, 3.7–5.3% tungsten, 4.5–7% iron; the remainder is nickel. It is recommended that the maximum operating temperature not exceed 1093°C. It has excellent corrosion resistance. It exhibits excellent corrosion resistance to various attempts using cold nitric acid or boiling nitric acid at a concentration of 70%, as well as good resistance to hydrochloric and sulfuric acid corrosion, along with outstanding resistance to stress corrosion. Brinell hardness is about 210. 12. Inconel 600 nickel-based alloy (77% nickel, 15% chromium, and 7% iron). It is recommended that the maximum operating temperature not exceed 1093°C. It possesses high strength at high temperatures and is typically used in equipment where stress corrosion issues need to be addressed. It exhibits excellent workability at low temperatures. Brinell hardness is about 150. 13. Monel 400 (30% copper, nickel); the recommended maximum continuous operating temperature is not exceeding 815°C. It exhibits excellent corrosion resistance to most acids and bases, except for strongly oxidizing acids. Stress corrosion cracks tend to occur in hydrofluoric acid, mercuric chloride, and mercury-based media; therefore, it is not suitable for use in these media. Equipment widely used in the production of hydrofluoric acid. Brinell hardness is about 120. 14. Titanium: The recommended maximum operating temperature is not exceeding 1093°C. It exhibits excellent corrosion resistance under high-temperature conditions. As is well known, it resists chloride corrosion, and exhibits excellent resistance to nitric acid corrosion over a wide range of temperatures and concentrations. Titanium is rarely used in most alkaline solutions and is suitable for oxidation conditions. Brinell hardness is about 216. Non-metallic gasket materials 1. Natural rubber NR exhibits good corrosion resistance to weak acids and bases, as well as to salt and chloride solutions; however, its resistance to oils and solvents is poor, and it is not recommended for use in ozone-containing environments. Recommended operating temperature: -57°C to 93°C. 2. Neoprene CR: Neoprene is a synthetic rubber that is suitable for withstanding corrosion from acids, bases, and salt solutions with moderate corrosivity. It provides excellent corrosion resistance for commercial oils and fuels. However, its corrosion resistance is poor in strongly oxidizing acids, aromatic hydrocarbons, and chlorinated hydrocarbons. Recommended operating temperature: -51°C to 121°C. 3. Nitrile rubber NBR: Nitrile rubber is a synthetic rubber that exhibits good resistance to corrosion by oils, solvents, aromatic hydrocarbons, basic hydrocarbons, as well as petroleum and natural gas, over a wide temperature range. It exhibits good corrosion resistance to hydroxides, salts, and nearly neutral acids. However, its corrosion resistance is poor in strongly oxidizing media, chlorinated hydrocarbons, alcohols, and lipids; the recommended operating temperature is 51°C to 121°C. 4. Fluororubber: Fluororubber compound is made by mixing binary and ternary fluorocarbon raw rubbers with additives and vulcanizing agents. In addition to having excellent heat resistance, chemical resistance, and good physical and mechanical properties, it also features low compressive set, good elasticity, and an extremely long service life. Fluororubber boasts excellent heat resistance (200–250°C) and oil resistance; it can be used to manufacture cylinder liner seals, rubber rings, and rotating lip seals, thereby significantly extending their service life. Recommended operating temperature: -40°C to 232°C. 5. Chlorosulfonylated polyethylene synthetic rubber exhibits excellent corrosion resistance to acid, alkali, and salt solutions, and is unaffected by climate, light, ozone, or commercial fuels such as diesel and kerosene. But it is not suitable for aromatic hydrocarbons, chlorinated hydrocarbons, chromic acid, and nitric acid. Recommended operating temperature: -45°C to 135°C. 6. Silicone Rubber: Silicone rubber boasts excellent resistance to high and low temperatures; it can be used for extended periods at 150°C without any change in its properties ; It can be used continuously at 200°C for 10,000 hours, and maintains its unique properties such as flexibility, ozone resistance, and weather resistance within an operating temperature range of -70 to 260°C. It is suitable for manufacturing gaskets required in thermal systems, such as sealing rings, valve gaskets, and oil seals (suitable for water-based media). Special silicone rubber can be used to produce oil seals. 7. EPDM exhibits good corrosion resistance to strong acids, strong bases, salts, and chloride solutions. But it is not suitable for oils, solvents, aromatic hydrocarbons, and hydrocarbons. Recommended operating temperature: -57°C to 176°C. 8. Graphite: This is a pure graphite material that contains no resins or inorganic substances; it can be divided into graphite materials with metal additives or those without such additives. This material can be bonded to manufacture pipe gaskets with a diameter exceeding 600 MM. It exhibits extremely excellent corrosion resistance against many acids, bases, salts, organic compounds, heat transfer fluids, and even high-temperature solutions. It cannot melt, but it will sublimate at temperatures above 3316°C. Use of this material in strongly oxidizing media at high temperatures should be approached with caution. In addition to being used for gaskets, this material can also be used to make packing and the non-metallic winding strips in spiral wound gaskets. 9. Ceramic fibers, especially those molded into strips, are excellent gasket materials suitable for high-temperature and low-pressure conditions as well as light flange applications. The recommended operating temperature is 1093°C, and they can be used to manufacture the non-metallic winding strips in spiral wound gaskets. 10. PTFE combines the advantages of most plastic gasket materials, including a temperature resistance range of -95°C to 232°C. It exhibits excellent corrosion resistance to chemicals, solvents, hydroxides, and acids, in addition to free fluoride and alkali metals. PTFE material can be filled into glass in order to reduce its cold flow and creep properties. The above was posted by a former sea friend; I copied it~ Sorry for that
Reply #62009-03-01
Rubber sheet materials: Nitrile rubber sheets, fluororubber sheets. Metal composite materials: Spiral wound gaskets, toothed composite gaskets, wavy toothed composite gaskets, PTFE-coated gaskets. Metal materials: Metal ring gaskets, oval gaskets, octagonal gaskets. PTFE-based materials: Pure PTFE sheets, glass fiber-reinforced PTFE sheets, glass bead-reinforced PTFE sheets. Asbestos-free fiber-based sheet materials: General-purpose aramid fiber sheets, fiber-reinforced sheets for steam use. Flexible graphite materials: Flexible graphite sheets, metal-reinforced flexible graphite sheets
Reply #72009-03-01
These common sense tips about gaskets shared on the fifth floor are very useful: lol
Reply #82009-03-01
The original poster can take a look at this: http://bbs.hcbbs.com/viewthread.php?tid=374199&page=1&authorid=208641
Reply #92009-03-01
Most of our pipes use graphite wound gaskets; on one of our lubricating oil pipes, we use PTFE gaskets. We generally do not use asbestos gaskets because they are difficult to replace, and after use, they stick to the sealing surfaces of the pipes and are hard to clean! !

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