When selecting a valve for an instrumentation system, your choices may seem overwhelming. Just to name a few, there are ball valves, diaphragm and bellows valves, as well as check valves, excess flow valves, fine metering, gate, multi-port, needle, plug, relief, rising plug, and safety valves. Furthermore, each of these valves comes in many sizes, configurations, materials of construction, and actuation modes. To make the best choice, it is always good practice to ask the first question in valve selection: What do I want the valve to do?
If you want to learn more, please visit our website Afbv Valve.
Most valves fulfill one of five primary functions:
- on-off
- flow control
- directional flow
- over- pressure protection
- excess-flow protection
Matching valve type to function is the first and most important step in the valve selection process. It is not unusual in the field to see the misapplication of valves, such as a ball valve used for throttling flow. In some cases, the mismatch can be catastrophic, say, if a ball valve were used in a high-pressure oxygen system. With a source of ignition, the sudden burst of oxygen – enabled by the fast opening of the valve – could lead to an oxygen fire.
Here is a tutorial reviewing the basic types of valves, how they work, what functions they fulfill, and what to think about when choosing one.
On-Off Valves
On-off control is the most basic valve function. Valves in this category stop and restart system fluid flow. Primarily on-off valves are ball, gate, diaphragm and bellows valves.
Perhaps the most common of all valve types, ball valves are designed for on-off control. Quarter turn actuation starts or stops flow by positioning a metallic ball in a straight-through flow path. The ball has a large hole through the center of it. When the hole is lined up with the flow path, it enables flow. When it is turned 90 degrees from the flow path, it stops flow. If you are seeking an on-off valve with quick shutoff and high flow capacity, then a ball valve is a good choice. The position of the handle provides a quick indication of whether the valve is open or closed, and, for safety purposes, ball valves are easy to lock out and tag. They are most practical and economical at sizes between 1/4 inch and 2 inches.
Typically used for process control rather than instrumentation applications, gate valves are commonly chosen for on-off control, particularly for lines above 2 inches. They are also used as the first valve off the process line for process instrumentation, often in a double block and bleed configuration. Among the oldest types of on/off valves, they are typically specified in general industrial applications, such as large process or transmission lines. Some can even be larger than 100 inches (2540 mm). Multiple rotations of the handle raise and lower a sealing mechanism in and out of a straight flow path. Shutoff is gradual. Packing surrounds the stem, preventing system media from escaping to atmosphere where the stem meets the valve body. Valves that seal to atmosphere with metal-to-metal seals are referred to as “packless” because they do not contain the soft packing material, e.g. gaskets and O-rings, normally found around the stem in other valves. The valve stem is the cylindrical part that connects the handle (or actuation) with the inner mechanism for shut-off, flow control and directional control. Usually, the stem turns and/or moves up and down.
All stem seals or packing are subject to wear, and wear can lead to leakage. Valves with packing must be serviced or replaced at regular intervals, although some types of packing create more effective seals and last longer than others, such as the two-piece chevron design.
Contrary to packed valves, diaphragm valves are packless, and provide rapid shutoff and precise actuation speeds. In some cases, they may also deliver consistent quantities of process fluid. Typically, diaphragm valves are employed in high purity applications in the biopharmaceutical and semiconductor industries. Among all valve types, they provide the highest cycle life, a product of the valve’s highly engineered anatomy. Each valve contains a thin metal or plastic diaphragm, which flexes up and down, creating a leak-tight seal over the inlet. This robust valve is usually small, with the largest orifice — or internal pathway — typically less than two inches.
Like the diaphragm valve, bellows valves are packless, making them a good choice when the seal to atmosphere is critical and access for maintenance is limited. Frequently, they are specified for the containment area in nuclear power plants. A welded seal divides the lower half of the valve, where the system media resides, from the upper parts of the valve, where actuation is initiated. The stem, which is entirely encased in a metal bellows, moves up and down without rotating, sealing over the inlet.
Bellows valves and diaphragm valves are said to have a globe-like flow path. In globe valves, fluid does not flow straight through on a level plane as it does with a ball valve. The flow path enters the valve under the seat and exits above the seat. Globe valves will have lower flow rates than valves a straight-through flow path of the same orifice size.
Flow-Control Valves
Flow-control valves enable the operator to increase or decrease flow by rotating the handle. The operator can adjust the valve to a desired flow rate, and the valve will hold that flow rate reliably. Some flow control valves also provide very reliable shut-off, but many turns of the handle are necessary to move from the fully open to the fully closed position.
The most common flow-control valves are needle, fine metering, quarter-turn plug, and rising plug. Needle valves provide excellent flow control and, depending on design, leak-tight shut-off. They consist of a long stem with a highly engineered stem-tip geometry (e.g., vee- or needle-shaped) that fits precisely into a seat over the inlet. The stem is finely threaded, enabling precise flow control. Stem packing provides the seal to atmosphere.
Some designs contain a metal-to-metal seat seal; consequently, needle valves may be a good choice for high-temperature applications. As discussed earlier, flow is limited because of the globe-style flow path. Needle valves are a good choice with lighter, less viscous fluids. For the most precise flow control, consider fine metering valves, typically found in laboratory settings. Fine metering valves are a type of needle valve, with a long, fine stem that lowers through a long, narrow channel. This anatomy makes for a pronounced globe pattern, ideal for marking fine gradations of flow. Some fine metering valves are not designed to shut off.
Quarter-turn plug valves are utility valves, economically priced. Quarter-turn actuation rotates a cylindrical plug in a straight-through flow path. The plug contains an orifice to permit flow. Plug valves are commonly used for low-pressure throttling applications, in addition to shut off.
Another type of plug valve is the rising plug valve. Like a needle valve, a tapered plug lowers into an orifice to reduce flow. It differs from a needle valve in its flow path, which is straight-through rather than globe patterned. Because of the straight path, the valve is not as effective at providing fine gradations of flow. The rising plug is roddable, which is a good choice if the valve becomes clogged with system media.
Directional Flow Valves
A third type of valve directs fluid flow. Check valves ensure flow in one direction only. In most designs, the upstream fluid force pushes a spring-loaded poppet open, allowing flow. In the case of an increase in downstream or back-pressure force, the poppet is forced back into the seat, stopping reverse flow. Check valves are available with fixed or adjustable cracking pressures.
Some ball valves and diaphragm valves are designed with multiple ports. In most multi-port valves, fluid enters through a single inlet but may exit through one of many outlets, depending on the position of the actuator.
Valve Selection Best Practices - Swagelok Chicago
When selecting a valve for an instrumentation system, your choices may seem overwhelming. Just to name a few, there are ball valves, diaphragm and bellows valves, as well as check valves, excess flow valves, fine metering, gate, multi-port, needle, plug, relief, rising plug, and safety valves. Furthermore, each of these valves comes in many sizes, configurations, materials of construction, and actuation modes. To make the best choice, it is always good practice to ask the first question in valve selection: What do I want the valve to do?
Most valves fulfill one of five primary functions:
- on-off
- flow control
- directional flow
- over- pressure protection
- excess-flow protection
Matching valve type to function is the first and most important step in the valve selection process. It is not unusual in the field to see the misapplication of valves, such as a ball valve used for throttling flow. In some cases, the mismatch can be catastrophic, say, if a ball valve were used in a high-pressure oxygen system. With a source of ignition, the sudden burst of oxygen – enabled by the fast opening of the valve – could lead to an oxygen fire.
Here is a tutorial reviewing the basic types of valves, how they work, what functions they fulfill, and what to think about when choosing one.
On-Off Valves
On-off control is the most basic valve function. Valves in this category stop and restart system fluid flow. Primarily on-off valves are ball, gate, diaphragm and bellows valves.
Perhaps the most common of all valve types, ball valves are designed for on-off control. Quarter turn actuation starts or stops flow by positioning a metallic ball in a straight-through flow path. The ball has a large hole through the center of it. When the hole is lined up with the flow path, it enables flow. When it is turned 90 degrees from the flow path, it stops flow. If you are seeking an on-off valve with quick shutoff and high flow capacity, then a ball valve is a good choice. The position of the handle provides a quick indication of whether the valve is open or closed, and, for safety purposes, ball valves are easy to lock out and tag. They are most practical and economical at sizes between 1/4 inch and 2 inches.
Typically used for process control rather than instrumentation applications, gate valves are commonly chosen for on-off control, particularly for lines above 2 inches. They are also used as the first valve off the process line for process instrumentation, often in a double block and bleed configuration. Among the oldest types of on/off valves, they are typically specified in general industrial applications, such as large process or transmission lines. Some can even be larger than 100 inches (2540 mm). Multiple rotations of the handle raise and lower a sealing mechanism in and out of a straight flow path. Shutoff is gradual. Packing surrounds the stem, preventing system media from escaping to atmosphere where the stem meets the valve body. Valves that seal to atmosphere with metal-to-metal seals are referred to as “packless” because they do not contain the soft packing material, e.g. gaskets and O-rings, normally found around the stem in other valves. The valve stem is the cylindrical part that connects the handle (or actuation) with the inner mechanism for shut-off, flow control and directional control. Usually, the stem turns and/or moves up and down.
All stem seals or packing are subject to wear, and wear can lead to leakage. Valves with packing must be serviced or replaced at regular intervals, although some types of packing create more effective seals and last longer than others, such as the two-piece chevron design.
Contrary to packed valves, diaphragm valves are packless, and provide rapid shutoff and precise actuation speeds. In some cases, they may also deliver consistent quantities of process fluid. Typically, diaphragm valves are employed in high purity applications in the biopharmaceutical and semiconductor industries. Among all valve types, they provide the highest cycle life, a product of the valve’s highly engineered anatomy. Each valve contains a thin metal or plastic diaphragm, which flexes up and down, creating a leak-tight seal over the inlet. This robust valve is usually small, with the largest orifice — or internal pathway — typically less than two inches.
Like the diaphragm valve, bellows valves are packless, making them a good choice when the seal to atmosphere is critical and access for maintenance is limited. Frequently, they are specified for the containment area in nuclear power plants. A welded seal divides the lower half of the valve, where the system media resides, from the upper parts of the valve, where actuation is initiated. The stem, which is entirely encased in a metal bellows, moves up and down without rotating, sealing over the inlet.
Bellows valves and diaphragm valves are said to have a globe-like flow path. In globe valves, fluid does not flow straight through on a level plane as it does with a ball valve. The flow path enters the valve under the seat and exits above the seat. Globe valves will have lower flow rates than valves a straight-through flow path of the same orifice size.
Flow-Control Valves
Flow-control valves enable the operator to increase or decrease flow by rotating the handle. The operator can adjust the valve to a desired flow rate, and the valve will hold that flow rate reliably. Some flow control valves also provide very reliable shut-off, but many turns of the handle are necessary to move from the fully open to the fully closed position.
The most common flow-control valves are needle, fine metering, quarter-turn plug, and rising plug. Needle valves provide excellent flow control and, depending on design, leak-tight shut-off. They consist of a long stem with a highly engineered stem-tip geometry (e.g., vee- or needle-shaped) that fits precisely into a seat over the inlet. The stem is finely threaded, enabling precise flow control. Stem packing provides the seal to atmosphere.
Some designs contain a metal-to-metal seat seal; consequently, needle valves may be a good choice for high-temperature applications. As discussed earlier, flow is limited because of the globe-style flow path. Needle valves are a good choice with lighter, less viscous fluids. For the most precise flow control, consider fine metering valves, typically found in laboratory settings. Fine metering valves are a type of needle valve, with a long, fine stem that lowers through a long, narrow channel. This anatomy makes for a pronounced globe pattern, ideal for marking fine gradations of flow. Some fine metering valves are not designed to shut off.
Quarter-turn plug valves are utility valves, economically priced. Quarter-turn actuation rotates a cylindrical plug in a straight-through flow path. The plug contains an orifice to permit flow. Plug valves are commonly used for low-pressure throttling applications, in addition to shut off.
Another type of plug valve is the rising plug valve. Like a needle valve, a tapered plug lowers into an orifice to reduce flow. It differs from a needle valve in its flow path, which is straight-through rather than globe patterned. Because of the straight path, the valve is not as effective at providing fine gradations of flow. The rising plug is roddable, which is a good choice if the valve becomes clogged with system media.
Directional Flow Valves
A third type of valve directs fluid flow. Check valves ensure flow in one direction only. In most designs, the upstream fluid force pushes a spring-loaded poppet open, allowing flow. In the case of an increase in downstream or back-pressure force, the poppet is forced back into the seat, stopping reverse flow. Check valves are available with fixed or adjustable cracking pressures.
Some ball valves and diaphragm valves are designed with multiple ports. In most multi-port valves, fluid enters through a single inlet but may exit through one of many outlets, depending on the position of the actuator.
Multi-port valves may or may not have a shut-off position.
Overpressure Protection Valves
Valves in this category prevent the buildup of system pressure beyond a certain pressure setting. They are available in two types: relief valves and rupture discs. One type of relief valve is a proportional relief valve. It contains a vent to atmosphere that opens when pressure in a system exceeds a certain point set by the operator. A spring-loaded poppet enables the measured release of fluid.The vent closes when pressure returns to a point below where it was set. A safety relief valve is designed to open very quickly, releasing a large amount of system media. Due to their critical safety function, safety relief valves are required by code in certain applications. Safety relief and proportional relief valves are not to be used interchangeably with check valves, since the three have different functions.
Rupture discs are used mainly on sample cylinders to protect against overpressurization, which may occur, for example, when temperatures rise during transport. Similar to relief valves, rupture discs vent to atmosphere. A metal diaphragm bursts when pressure reaches a set point. This value is preset by the manufacturer. Once activated, the rupture disc must be replaced. Transportation codes require that compressed gas cylinders be equipped with a pressure relief device. A rupture disc is an economical choice for this application.
Excess Flow Valves
Excess flow valves stop uncontrolled release of system media if a downstream line ruptures. Under normal conditions, a spring holds a poppet in the open position. In an excess flow condition downstream, the poppet moves to a tripped position stopping almost all the fluid flow. When the system is corrected, the valve resets automatically. These valves are available with fixed tripping values.
Conclusion
Once you have matched valve type to function, you are well on your way in the valve selection process. Many details remain, though. You will need to give detailed attention to each of the following, if you have not had occasion to so far in the process:
Installation issues, maintenance schedules and access:
- Installation issues, maintenance schedules and access
- Safety and code requirements
- System parameters, such as pressure, temperature, flow rates, and system media
Ultimately, you will need to determine:
- Valve size and actuation types
- Materials of construction (including O-rings and seals), which must be compatible with the chemical composition of the system media, pressures, and temperatures.
Questions on selecting the proper valve for your application? Email or call 866.901.0151.
Bellow Seal ValveBellow Seal ValveAll you need to know about ... - Valve GMK
What is a bellow seal valve?
A bellow seal valve is a control valve that does not have traditional gland packing and instead has a bellow cartridge that is welded to the valve’s bonnet and stem. Because it may be bent in compression or extension, the bellow is similar to a coiled spring. The main difference between a bellow seal valve and a globe valve is that a globe valve has gland packing along the stem, while a bellow seal valve uses bellows instead of packing to prevent leakage. These valves are completely leakproof and capable of handling caustic substances. These valves may be found in the butadiene extraction unit.
What are the characteristics of a bellow seal valve?
- These valves are resistant to extreme temperatures and pressures.
- The bellow seal may prevent the leaking of combustible sensitive material.
- Life span
- It can withstand a significant amount of steam pressure.
Why are the valves below sealed?
The majority of control valves are used to regulate the flow and pressure of process fluid. As a result, the risks of leakage are quite significant; leakage might result in material loss. The substance might be radioactive or chemical, causing several difficulties at a facility. The fluid utilized may be caustic, explosive, or toxic. So, to remedy this issue, we may utilize the seal valve.
How do you put in a bellow seal valve?
A bellow-sealed valve may be fitted in any position, however, it should not be installed with the stem upside down. So, by installing a bellow seal valve, we can avoid the collection of debris in the bellows region. So, before we install the bellow valves, we must check that the pipes and valves are clean. The pipes must be linked in such a manner that there is no unnecessary stress acting on the valve housing.
What is a bellow and how are bellow seal valves made?
The valve body material must be chosen based on the flow media’s pressure, temperature, corrosive, and erosive properties. The bellow cartridge will be welded; there are numerous convolutions in a bellow cartridge, and these convolutions may be squeezed or extended in response to valve stem movement. The bellow’s construction material would be stainless steel with titanium added to it, allowing the bellow to endure extreme temperatures.
Bellows Seal Globe Valve Construction
A Bellows globe seal valve is distinguished by its use of metal bellows. Bellows are classified into two types:
- Formed Bellows – These are formed by rolling a flat sheet into a tube and longitudinal fusion welding. The tube is then mechanically shaped into a bellow with rounded and evenly spaced folds.
- Welded leaf Bellow – The washer-like plates of thin metal are welded together in this kind. Welding is done on both the interior and exterior of the washer-like plate. Welded leaf bellows have more folds per unit length.
For both formed and welded-leaf bellows, the amount of movement in each fold is the same. As a result, mechanically produced bellows are two to three times longer than welded leaf equivalents at the same stroke rate.
The lower end and stem assembly are welded by automated seam welding, while the connecting plate is welded by automated seam welding, forming a metal shield between the fluid medium and the environment and assuring zero leakage from the valve stem.
The sealing surface of the valve disc and the valve structure is perfectly ground so that once installed, it is certified that it has 100% passed a pressure test and any risk of leaking is avoided. The stuffing box is constantly retained on the bellows as an auxiliary seal, which increases durability and protection. The metal bellows of the high-pressure valves are multi-layered, ensuring an open/close life of 10000 times at maximum pressure via hydroforming.
What Is the Function of a Bellow Seal Globe Valve?
A Bellows Seal Globe Valve is a kind of control valve with a compact construction that employs bellows to seal the valve stem components. The bellows valve has a bellow, and the lower end of the stainless-steel bellows is welded to the stem to prevent system fluid from eroding the stem. The other end is inserted between the valve’s body and its cover to form a permanent seal. This double-seal construction prevents leakage since the stem packing prevents additional leaking even if the bellows collapse. The bellows are welded to the valve stem to maintain constant working efficiency and to avoid valve stem vibration caused by valve insert movement.
Benefits of a Bellows Seal Globe Valve
- The double seal design (bellows + packing) is the most obvious benefit of any bellows valve. As a result, even if the bellows fail, the stem packing will prevent any leakage and fulfill international sealing requirements.
- It decreases medium fluid loss while also ensuring safety and environmental protection. This will finally increase the plant’s safety where the bellows valve has been put.
- It may help to reduce energy losses due to leakage, making it an energy saver.
- Because leakage is reduced, the valve does not need to be serviced as often. As a result, valve life is extended.
- Because of the extended service life, operating and maintenance costs are significantly decreased.
- The tough bellows seal construction assures no leaking from the valve stem, resulting in maintenance-free circumstances.
- The installation of a bellows valve improves the safety of workers by reducing emissions of flammable, poisonous, and dangerous substances.
Bellows Selection Guide
- Determine the inner diameter of the bellows based on the diameter of the valve stem. The inner diameter of the bellows should be larger than the 115 mm stem diameter.
- The outer diameter of the bellows is chosen based on the inner diameter of the bellows. The outer diameter and inner diameter are connected by the outer diameter to inner diameter ratio. In general, the outer diameter to inner diameter ratio is 113 to 115.
- The wall thickness, number of layers, number of corrugations, and length of the corrugated pipe must match the pressure resistance, stroke, and cycle life criteria. Under normal conditions, the higher the pressure, the bigger the thickness of the bellows. The thickness of the single layer may be lowered and the number of layers of the bellows can be increased to enhance displacement or reduce stiffness and increase life.
- The multiple designs bellows are suggested for managing larger pressures. The pressure that the bellows can sustain may be enhanced by utilizing two or three metal wall piles, as in the case of multiple designs of bellows. The pressure rating of a two-ply bellow may be increased by 80% to 100% when compared to a single-ply bellow of the same thickness. Alternatively, if a single-ply bellow with a thickness equal to the pressure rating of a two-ply bellow is employed, the stroke length is lowered. As a result, the multiple designs have a clear advantage over the single-ply thick bellows.
Bellows Selection Guide
- Determine the inner diameter of the bellows based on the diameter of the valve stem. The inner diameter of the bellows should be larger than the 115 mm stem diameter.
- The outer diameter of the bellows is chosen based on the inner diameter of the bellows. The outer diameter and inner diameter are connected by the outer diameter to inner diameter ratio. In general, the outer diameter to inner diameter ratio is 113 to 115.
- The wall thickness, number of layers, number of corrugations, and length of the corrugated pipe must match the pressure resistance, stroke, and cycle life criteria. Under normal conditions, the higher the pressure, the bigger the thickness of the bellows. The thickness of the single layer may be lowered and the number of layers of the bellows can be increased to enhance displacement or reduce stiffness and increase life.
- he multiple designs bellows are suggested for managing larger pressures. The pressure that the bellows can sustain may be enhanced by utilizing two or three metal wall piles, as in the case of multiple designs of bellows. The pressure rating of a two-ply bellow may be increased by 80% to 100% when compared to a single-ply bellow of the same thickness. Alternatively, if a single-ply bellow with a thickness equal to the pressure rating of a two-ply bellow is employed, the stroke length is lowered. As a result, the multiple designs have a clear advantage over the single-ply thick bellows.
Conclusion
The Bellows Seal Globe Valve’s distinctive design and efficiency in providing leak-proof operations make it the best-suited valve for a broad variety of applications, particularly hazardous compounds and when system media is at high temperatures. Bellows valves have the extra advantage of being durable, maintenance-free, and cost-effective. GMK Valve is a professional bellow seal valve manufacturer; please contact us if you have any questions.
Multi-port valves may or may not have a shut-off position.
Overpressure Protection Valves
Valves in this category prevent the buildup of system pressure beyond a certain pressure setting. They are available in two types: relief valves and rupture discs. One type of relief valve is a proportional relief valve. It contains a vent to atmosphere that opens when pressure in a system exceeds a certain point set by the operator. A spring-loaded poppet enables the measured release of fluid.The vent closes when pressure returns to a point below where it was set. A safety relief valve is designed to open very quickly, releasing a large amount of system media. Due to their critical safety function, safety relief valves are required by code in certain applications. Safety relief and proportional relief valves are not to be used interchangeably with check valves, since the three have different functions.
Rupture discs are used mainly on sample cylinders to protect against overpressurization, which may occur, for example, when temperatures rise during transport. Similar to relief valves, rupture discs vent to atmosphere. A metal diaphragm bursts when pressure reaches a set point. This value is preset by the manufacturer. Once activated, the rupture disc must be replaced. Transportation codes require that compressed gas cylinders be equipped with a pressure relief device. A rupture disc is an economical choice for this application.
Excess Flow Valves
Excess flow valves stop uncontrolled release of system media if a downstream line ruptures. Under normal conditions, a spring holds a poppet in the open position. In an excess flow condition downstream, the poppet moves to a tripped position stopping almost all the fluid flow. When the system is corrected, the valve resets automatically. These valves are available with fixed tripping values.
Conclusion
Once you have matched valve type to function, you are well on your way in the valve selection process. Many details remain, though. You will need to give detailed attention to each of the following, if you have not had occasion to so far in the process:
Installation issues, maintenance schedules and access:
- Installation issues, maintenance schedules and access
- Safety and code requirements
- System parameters, such as pressure, temperature, flow rates, and system media
Ultimately, you will need to determine:
- Valve size and actuation types
- Materials of construction (including O-rings and seals), which must be compatible with the chemical composition of the system media, pressures, and temperatures.
Questions on selecting the proper valve for your application? Email or call 866.901.0151.
What is a bellow seal valve?
A bellow seal valve is a control valve that does not have traditional gland packing and instead has a bellow cartridge that is welded to the valve’s bonnet and stem. Because it may be bent in compression or extension, the bellow is similar to a coiled spring. The main difference between a bellow seal valve and a globe valve is that a globe valve has gland packing along the stem, while a bellow seal valve uses bellows instead of packing to prevent leakage. These valves are completely leakproof and capable of handling caustic substances. These valves may be found in the butadiene extraction unit.
What are the characteristics of a bellow seal valve?
- These valves are resistant to extreme temperatures and pressures.
- The bellow seal may prevent the leaking of combustible sensitive material.
- Life span
- It can withstand a significant amount of steam pressure.
Why are the valves below sealed?
The majority of control valves are used to regulate the flow and pressure of process fluid. As a result, the risks of leakage are quite significant; leakage might result in material loss. The substance might be radioactive or chemical, causing several difficulties at a facility. The fluid utilized may be caustic, explosive, or toxic. So, to remedy this issue, we may utilize the seal valve.
How do you put in a bellow seal valve?
A bellow-sealed valve may be fitted in any position, however, it should not be installed with the stem upside down. So, by installing a bellow seal valve, we can avoid the collection of debris in the bellows region. So, before we install the bellow valves, we must check that the pipes and valves are clean. The pipes must be linked in such a manner that there is no unnecessary stress acting on the valve housing.
What is a bellow and how are bellow seal valves made?
The valve body material must be chosen based on the flow media’s pressure, temperature, corrosive, and erosive properties. The bellow cartridge will be welded; there are numerous convolutions in a bellow cartridge, and these convolutions may be squeezed or extended in response to valve stem movement. The bellow’s construction material would be stainless steel with titanium added to it, allowing the bellow to endure extreme temperatures.
Bellows Seal Globe Valve Construction
A Bellows globe seal valve is distinguished by its use of metal bellows. Bellows are classified into two types:
- Formed Bellows – These are formed by rolling a flat sheet into a tube and longitudinal fusion welding. The tube is then mechanically shaped into a bellow with rounded and evenly spaced folds.
- Welded leaf Bellow – The washer-like plates of thin metal are welded together in this kind. Welding is done on both the interior and exterior of the washer-like plate. Welded leaf bellows have more folds per unit length.
For both formed and welded-leaf bellows, the amount of movement in each fold is the same. As a result, mechanically produced bellows are two to three times longer than welded leaf equivalents at the same stroke rate.
The lower end and stem assembly are welded by automated seam welding, while the connecting plate is welded by automated seam welding, forming a metal shield between the fluid medium and the environment and assuring zero leakage from the valve stem.
The sealing surface of the valve disc and the valve structure is perfectly ground so that once installed, it is certified that it has 100% passed a pressure test and any risk of leaking is avoided. The stuffing box is constantly retained on the bellows as an auxiliary seal, which increases durability and protection. The metal bellows of the high-pressure valves are multi-layered, ensuring an open/close life of 10000 times at maximum pressure via hydroforming.
What Is the Function of a Bellow Seal Globe Valve?
A Bellows Seal Globe Valve is a kind of control valve with a compact construction that employs bellows to seal the valve stem components. The bellows valve has a bellow, and the lower end of the stainless-steel bellows is welded to the stem to prevent system fluid from eroding the stem. The other end is inserted between the valve’s body and its cover to form a permanent seal. This double-seal construction prevents leakage since the stem packing prevents additional leaking even if the bellows collapse. The bellows are welded to the valve stem to maintain constant working efficiency and to avoid valve stem vibration caused by valve insert movement.
Benefits of a Bellows Seal Globe Valve
- The double seal design (bellows + packing) is the most obvious benefit of any bellows valve. As a result, even if the bellows fail, the stem packing will prevent any leakage and fulfill international sealing requirements.
- It decreases medium fluid loss while also ensuring safety and environmental protection. This will finally increase the plant’s safety where the bellows valve has been put.
- It may help to reduce energy losses due to leakage, making it an energy saver.
- Because leakage is reduced, the valve does not need to be serviced as often. As a result, valve life is extended.
- Because of the extended service life, operating and maintenance costs are significantly decreased.
- The tough bellows seal construction assures no leaking from the valve stem, resulting in maintenance-free circumstances.
- The installation of a bellows valve improves the safety of workers by reducing emissions of flammable, poisonous, and dangerous substances.
Bellows Selection Guide
- Determine the inner diameter of the bellows based on the diameter of the valve stem. The inner diameter of the bellows should be larger than the 115 mm stem diameter.
- The outer diameter of the bellows is chosen based on the inner diameter of the bellows. The outer diameter and inner diameter are connected by the outer diameter to inner diameter ratio. In general, the outer diameter to inner diameter ratio is 113 to 115.
- The wall thickness, number of layers, number of corrugations, and length of the corrugated pipe must match the pressure resistance, stroke, and cycle life criteria. Under normal conditions, the higher the pressure, the bigger the thickness of the bellows. The thickness of the single layer may be lowered and the number of layers of the bellows can be increased to enhance displacement or reduce stiffness and increase life.
- The multiple designs bellows are suggested for managing larger pressures. The pressure that the bellows can sustain may be enhanced by utilizing two or three metal wall piles, as in the case of multiple designs of bellows. The pressure rating of a two-ply bellow may be increased by 80% to 100% when compared to a single-ply bellow of the same thickness. Alternatively, if a single-ply bellow with a thickness equal to the pressure rating of a two-ply bellow is employed, the stroke length is lowered. As a result, the multiple designs have a clear advantage over the single-ply thick bellows.
Bellows Selection Guide
- Determine the inner diameter of the bellows based on the diameter of the valve stem. The inner diameter of the bellows should be larger than the 115 mm stem diameter.
- The outer diameter of the bellows is chosen based on the inner diameter of the bellows. The outer diameter and inner diameter are connected by the outer diameter to inner diameter ratio. In general, the outer diameter to inner diameter ratio is 113 to 115.
- The wall thickness, number of layers, number of corrugations, and length of the corrugated pipe must match the pressure resistance, stroke, and cycle life criteria. Under normal conditions, the higher the pressure, the bigger the thickness of the bellows. The thickness of the single layer may be lowered and the number of layers of the bellows can be increased to enhance displacement or reduce stiffness and increase life.
- he multiple designs bellows are suggested for managing larger pressures. The pressure that the bellows can sustain may be enhanced by utilizing two or three metal wall piles, as in the case of multiple designs of bellows. The pressure rating of a two-ply bellow may be increased by 80% to 100% when compared to a single-ply bellow of the same thickness. Alternatively, if a single-ply bellow with a thickness equal to the pressure rating of a two-ply bellow is employed, the stroke length is lowered. As a result, the multiple designs have a clear advantage over the single-ply thick bellows.
Conclusion
The Bellows Seal Globe Valve’s distinctive design and efficiency in providing leak-proof operations make it the best-suited valve for a broad variety of applications, particularly hazardous compounds and when system media is at high temperatures. Bellows valves have the extra advantage of being durable, maintenance-free, and cost-effective. GMK Valve is a professional bellow seal valve manufacturer; please contact us if you have any questions.
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