WO2013105866A1 - Access fitting for attaching a device within a process pipeline or vessel - Google Patents

Access fitting for attaching a device within a process pipeline or vessel Download PDF

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Publication number
WO2013105866A1
WO2013105866A1 PCT/NO2013/050007 NO2013050007W WO2013105866A1 WO 2013105866 A1 WO2013105866 A1 WO 2013105866A1 NO 2013050007 W NO2013050007 W NO 2013050007W WO 2013105866 A1 WO2013105866 A1 WO 2013105866A1
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WO
WIPO (PCT)
Prior art keywords
fitting
plug
seal
access
vessel
Prior art date
Application number
PCT/NO2013/050007
Other languages
French (fr)
Inventor
Geirfinn SIRNES
Original Assignee
Roxar Flow Measurement As
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Roxar Flow Measurement As filed Critical Roxar Flow Measurement As
Publication of WO2013105866A1 publication Critical patent/WO2013105866A1/en

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Classifications

    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N17/00Investigating resistance of materials to the weather, to corrosion, or to light
    • G01N17/04Corrosion probes
    • G01N17/043Coupons
    • G01N17/046Means for supporting or introducing coupons

Definitions

  • the present invention is concerning an access fitting for attaching a device within a process pipeline or vessel as described in the introductory part of claim 1.
  • the present invention relates to a sealing- and preload method for a conical plug in a pipe fitting.
  • the plug is in itself a conventional and accepted way of sealing a pipe fitting.
  • the invention covers a novel sealing device which intends to increase sealing efficiency and safety, with better lateral support to both the plug itself and possible extensions mounted to it.
  • Conical plugs in pipe fittings have become widely used in the oil-, gas- and process industries, e.g. to seal off various devices such as probes for measuring and monitoring purposes. Examples of this are the ER or LPR probes or weight-loss coupons which are mounted into process vessels, wellheads or water injection systems.
  • a probe By using a fitting provided with internal threads and a plug provided with external threads, a probe can be inserted into a pipe to become in direct contact with the process medium, while being sealed off with a preload from said threads acting on a conical seal between plug and fitting.
  • Another way to preload the conical seal is with the clamping force of a cover nut with internal threads, matching an outside such on the fitting.
  • a conventional seal for a conical plug is typically an annular packing made from a polymer material such as fiber-reinforced PTFE. Said packing needs to be preloaded through an axial force applied on the plug, all in order to overcome the counter-force from the line-pressure inside the pipe on the opposing side of the plug. With a line-pressure of more than 400 bar and
  • the counter-force can be as much as 50 kN or five metric tons.
  • the axial force on the plug should be considerably higher than the expected counter-force in order to provide a margin against leakage, which calls for a massive torque, as much as 1000 Nm, to be applied on either the large diameter threaded plug or threaded cover in the solutions described above.
  • a separate secondary seal must be applied up-streams for safety reasons.
  • the object of the present invention is therefore to provide an access fitting for attaching a device within a process pipeline or vessel that increases sealing efficiency and safety, reduces torque needed for necessary preload and improves the device's lateral stiffness.
  • the surprising technical effect is achieved by a combination of a radially compliant and self- energized seal, and a plurality of low-torque bolts acting directly on the device, preloading the latter with a conical metal-to-metal contact directly against the fitting.
  • device is here meant to include any physical device which is accommodated within the access fitting, temporarily as well as permanent. Examples of devices of this type are: devices for sample extraction from the interior of the pipeline or vessel, devices for injection of chemicals, a weight loss coupon for measuring corrosion within the pipeline or vessel, and a probe for measurement and monitoring purposes. However, other devices are conceivable as well and should be within the scope of the person skilled in the art.
  • the conical contact will guarantee that no external loads or vibration passes through the seal, when the preload-path is confined within a very short circuit, between said contact and bolts.
  • This access fitting will have a built in safety against blow-outs, by the device being held urged against the fitting with a high contact-pressure, creating a tight orifice even in case of a complete seal-failure.
  • Figure 1 illustrates a longitudinal cross-section of one example of a prior art access fitting for attaching a probe within a pipeline or vessel containing fluids
  • Figure 2 illustrates a longitudinal cross-section of another example of a prior art access fitting for attaching a probe within a pipeline or vessel containing fluids
  • Figure 3 illustrates a longitudinal cross-section of one embodiment of an access fitting in accordance with the present invention for attaching a probe within a pipeline or vessel containing fluids
  • Figure 4 illustrates a partial cross-section of the primary seal the encircled area indicated by SD in figure 3.
  • FIG. 1 the drawing illustrates a prior art access fitting for attaching a probe 6 within a fluid containing pipeline or vessel 7 in the form of a cross-section taken along the longitudinal axis of the probe 6 and its attachment device.
  • a pipe or vessel fitting 2 hereinafter also referred to as “fitting” is sealed and preloaded in a conventional fashion by a threaded plug 1, matching an equally threaded fitting 2, which together preloads a conical annular seal 3, arranged in an annular groove provided in the plug 1, against said fitting's conical inside, all in order to seal off the probe 6 from the atmosphere.
  • a cover 4 is attached at the rear end of the plug 1 for protection against the environment only.
  • FIG. 2 the drawing illustrates a prior art access fitting for attaching a probe 6b in a manner similar to Fig. 1.
  • a pipe fitting 2b is sealed off and preloaded in an alternative manner by a threaded cover 4b, matching an equally threaded fitting 2b, which together clamps the plug lb against said fitting and preloads the conical seal 3b against said fittings conical inside.
  • FIG. 3 One embodiment of an access fitting for attaching a device, e.g. a probe, in accordance with the present invention is illustrated in Fig. 3, where a pipe fitting 2c is sealed off and preloaded.
  • the plug lc is preloaded by externally threaded pins 5 accommodated within corresponding radially extending apertures 8 formed in the fitting 2c.
  • a seal 5' is inserted into an annular groove 5" formed in the surface of the aperture 8.
  • the plug Is is the region of the aperture 8 in the fitting 2c provided with a beveled surface lc'.
  • This arrangement provides a conical metal-to-metal contact directly between the fitting 2c the pin 5 and plug lc.
  • a radially compliant seal 3c becomes self- energized by the line-pressure in the pipe.
  • the cover 4c is equipped with a seal 4c' arranged between the cover 4c and the rear end of the fitting 2c, to seal against the atmosphere together with the fitting 2c.
  • the gap S indicates
  • Figure 3 illustrates two threaded pins 5 arranged at an angle less than 90° with regard to the longitudinal axis of the plug lc and probe.
  • the angle between the pins 5 and the longitudinal axis of the plug lc including the number of pins may vary. Accordingly, the number of pins could be three, four, five or even six. A person skilled in the art will be able to calculate the number of pins required in view of the present description and the pipeline pressure involved, pin dimensions, angle etc.
  • the angle between the longitudinal axis of the pins 5 and the longitudinal axis of the plug lc and probe may also vary with the material chosen, dimensions and pressure involved.
  • an exemplary angle between the longitudinal axis of the pins 5 and the longitudinal axis of the plug lc and probe could be 60°.
  • the invention is not limited to any specific number of pins 5 in excess of 5 or any specific angle less than 90°.
  • the encircled area (circle included for illustration purposes only) in Fig. 3 is detailed in Fig. 4.
  • the radially compliant seal 3c of Fig. 3 comprises an outer seal part 3c' of a substantially incompressible solid material, such as a hard polymer material, and an inner seal part 3c" of a substantially compressible or resilient material.
  • the directions “inner” and “outer” is here meant to indicate the directions with regard to the outer surface of the plug lc.
  • the seal 3c is arranged in an annular groove provided in the outer periphery of the plug lc.
  • the seal parts 3c' and 3c" are in fluid communication with the internal part of the pipe or vessel (not illustrated in Fig.
  • the plurality of angularly mounted and threaded pins 5 are tightened with a pre-determined torque in order to preload the plug lc with an equally pre-determined force, against conical surface 2c' of the fitting to provide a metal- to metal contact.
  • This conical contact will guarantee that no external loads or vibration passes through the seal, while the preload-path is confined within a very short circuit, between said contact and bolts, where the latter itself is beneficial in case of different thermal expansion between plug and fitting.
  • Said torque is designed to give said contact the proper level of preload, in order to overcome the expected counter-force from the line-pressure in to provide a certain margin against leakage.
  • the self energized primary seal 3c can have any numerous designs, as long as it is not dependant on a mechanical preload to serve its sealing functions. In case of a complete seal failure, the invention will still have a built in secondary seal against dramatic blow-outs, by the plug itself being held urged against the fitting's sealing surface 2c' with a high metal-to metal contact-pressure, creating a tight orifice which will hold its integrity even when subjected to the extreme temperatures from a petroleum-fueled fire.
  • the seal 4c' between cover 4c, and fitting 2c forms together with the threaded pin seals 5', a tertiary seal, which can be used for leakage detection by monitoring the pressure inside said cover, built up between secondary and tertiary seal.
  • the access fitting will also be fail-safe against human error if the pins 5 are unlocked by mistake during operation.
  • the plug lc can only travel a certain distance "S" before it will be supported by the cover, thereby limiting the gap to the sealing surface 2c' and securing the seal's function.
  • the access fitting in accordance with the present invention provides a pipe or vessel fitting which increases sealing efficiency and safety, reduces torque needed for necessary preload and at the same time improves the plug's lateral stiffness.

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  • Life Sciences & Earth Sciences (AREA)
  • Biodiversity & Conservation Biology (AREA)
  • Ecology (AREA)
  • Environmental & Geological Engineering (AREA)
  • Environmental Sciences (AREA)
  • Physics & Mathematics (AREA)
  • Health & Medical Sciences (AREA)
  • Chemical & Material Sciences (AREA)
  • Analytical Chemistry (AREA)
  • Biochemistry (AREA)
  • General Health & Medical Sciences (AREA)
  • General Physics & Mathematics (AREA)
  • Immunology (AREA)
  • Pathology (AREA)
  • Pressure Vessels And Lids Thereof (AREA)
  • Arrangement Of Elements, Cooling, Sealing, Or The Like Of Lighting Devices (AREA)

Abstract

The invention is related to an access fitting for attaching a device (6c), such as a probe,within a process pipeline or vessel containing fluids. The access fitting comprises a plug (1c), a fitting (2c) and a seal (3c)arranged in an annular groove in the surface of the plug (1c) to provide a sealing effect between the fitting (2c) and the plug (1c). The plug (1c) is preloaded against the fitting (2c) by means of torque- induced clamping force. The plug (1c)is preloaded by the threaded pins (5)accommodated within corresponding radially extending apertures (8) formed in the fitting (2c)to establish a conical metal-to- metal contact between the pins (5) and plug (1c). The radially compliant seal (3c) becomes self-energized by the line-pressure itself inside the pipe or vessel. The access fitting provides a pipe fitting which increases sealing efficiency and safety, reduces torque needed for necessary preload and at the same time improves the plug's lateral stiffness.

Description

ACCESS FITTING FOR ATTACHING A DEVICE WITHIN A PROCESS
IPELINE OR VESSEL
The present invention is concerning an access fitting for attaching a device within a process pipeline or vessel as described in the introductory part of claim 1.
In further detail, the present invention relates to a sealing- and preload method for a conical plug in a pipe fitting. The plug is in itself a conventional and accepted way of sealing a pipe fitting. More specifically, the invention covers a novel sealing device which intends to increase sealing efficiency and safety, with better lateral support to both the plug itself and possible extensions mounted to it.
Background
Conical plugs in pipe fittings have become widely used in the oil-, gas- and process industries, e.g. to seal off various devices such as probes for measuring and monitoring purposes. Examples of this are the ER or LPR probes or weight-loss coupons which are mounted into process vessels, wellheads or water injection systems. By using a fitting provided with internal threads and a plug provided with external threads, a probe can be inserted into a pipe to become in direct contact with the process medium, while being sealed off with a preload from said threads acting on a conical seal between plug and fitting. Another way to preload the conical seal is with the clamping force of a cover nut with internal threads, matching an outside such on the fitting.
Both methods above lack sealing efficiency, requires high preload, has no built-in secondary- seal safety and gives poor support to plug extensions such as a measuring probe described above.
A conventional seal for a conical plug is typically an annular packing made from a polymer material such as fiber-reinforced PTFE. Said packing needs to be preloaded through an axial force applied on the plug, all in order to overcome the counter-force from the line-pressure inside the pipe on the opposing side of the plug. With a line-pressure of more than 400 bar and
a packing diameter of 40 mm, the counter-force can be as much as 50 kN or five metric tons. Needless to say, the axial force on the plug should be considerably higher than the expected counter-force in order to provide a margin against leakage, which calls for a massive torque, as much as 1000 Nm, to be applied on either the large diameter threaded plug or threaded cover in the solutions described above. Moreover, in case of a seal failure, a separate secondary seal must be applied up-streams for safety reasons.
Another problem is that all external forces on the plug coming from mentioned extensions passes through the PTFE packing, which has a low stiffness in itself even if preloaded, leading to leakage and possible problems with natural frequencies on long measuring probes.
Object The object of the present invention is therefore to provide an access fitting for attaching a device within a process pipeline or vessel that increases sealing efficiency and safety, reduces torque needed for necessary preload and improves the device's lateral stiffness. The invention
The object of the present invention is achieved by an attachment fitting for attaching a device within a process pipeline or vessel as described in the characterizing part of claim 1. Further advantageous features appear from the respective dependent claims.
The surprising technical effect is achieved by a combination of a radially compliant and self- energized seal, and a plurality of low-torque bolts acting directly on the device, preloading the latter with a conical metal-to-metal contact directly against the fitting.
The term "device" is here meant to include any physical device which is accommodated within the access fitting, temporarily as well as permanent. Examples of devices of this type are: devices for sample extraction from the interior of the pipeline or vessel, devices for injection of chemicals, a weight loss coupon for measuring corrosion within the pipeline or vessel, and a probe for measurement and monitoring purposes. However, other devices are conceivable as well and should be within the scope of the person skilled in the art.
The conical contact will guarantee that no external loads or vibration passes through the seal, when the preload-path is confined within a very short circuit, between said contact and bolts. This access fitting will have a built in safety against blow-outs, by the device being held urged against the fitting with a high contact-pressure, creating a tight orifice even in case of a complete seal-failure.
Additionally, this invention will allow for a tertiary seal between threaded cover nut and fitting. Drawings
The invention will now be described in further detail by an example of an embodiment of the present invention by means of drawings, where equal numeral references have been used to identify similar or identical parts of the respective drawings, suffixed by a character were applicable:
Figure 1 illustrates a longitudinal cross-section of one example of a prior art access fitting for attaching a probe within a pipeline or vessel containing fluids;
Figure 2 illustrates a longitudinal cross-section of another example of a prior art access fitting for attaching a probe within a pipeline or vessel containing fluids; Figure 3 illustrates a longitudinal cross-section of one embodiment of an access fitting in accordance with the present invention for attaching a probe within a pipeline or vessel containing fluids; and
Figure 4 illustrates a partial cross-section of the primary seal the encircled area indicated by SD in figure 3.
Detailed description of the invention
Now referring to Fig. 1, the drawing illustrates a prior art access fitting for attaching a probe 6 within a fluid containing pipeline or vessel 7 in the form of a cross-section taken along the longitudinal axis of the probe 6 and its attachment device. A pipe or vessel fitting 2, hereinafter also referred to as "fitting", is sealed and preloaded in a conventional fashion by a threaded plug 1, matching an equally threaded fitting 2, which together preloads a conical annular seal 3, arranged in an annular groove provided in the plug 1, against said fitting's conical inside, all in order to seal off the probe 6 from the atmosphere. A cover 4 is attached at the rear end of the plug 1 for protection against the environment only.
Now referring to Fig. 2, the drawing illustrates a prior art access fitting for attaching a probe 6b in a manner similar to Fig. 1. A pipe fitting 2b is sealed off and preloaded in an alternative manner by a threaded cover 4b, matching an equally threaded fitting 2b, which together clamps the plug lb against said fitting and preloads the conical seal 3b against said fittings conical inside.
One embodiment of an access fitting for attaching a device, e.g. a probe, in accordance with the present invention is illustrated in Fig. 3, where a pipe fitting 2c is sealed off and preloaded. The plug lc is preloaded by externally threaded pins 5 accommodated within corresponding radially extending apertures 8 formed in the fitting 2c. A seal 5'is inserted into an annular groove 5" formed in the surface of the aperture 8. The plug Is is the region of the aperture 8 in the fitting 2c provided with a beveled surface lc'. This arrangement provides a conical metal-to-metal contact directly between the fitting 2c the pin 5 and plug lc. A radially compliant seal 3c becomes self- energized by the line-pressure in the pipe. The cover 4c is equipped with a seal 4c' arranged between the cover 4c and the rear end of the fitting 2c, to seal against the atmosphere together with the fitting 2c. The gap S indicates the clearance between the plug lc and the cover 4c after installation.
Figure 3 illustrates two threaded pins 5 arranged at an angle less than 90° with regard to the longitudinal axis of the plug lc and probe. The angle between the pins 5 and the longitudinal axis of the plug lc including the number of pins may vary. Accordingly, the number of pins could be three, four, five or even six. A person skilled in the art will be able to calculate the number of pins required in view of the present description and the pipeline pressure involved, pin dimensions, angle etc. The angle between the longitudinal axis of the pins 5 and the longitudinal axis of the plug lc and probe may also vary with the material chosen, dimensions and pressure involved. Accordingly, an exemplary angle between the longitudinal axis of the pins 5 and the longitudinal axis of the plug lc and probe could be 60°. However, the invention is not limited to any specific number of pins 5 in excess of 5 or any specific angle less than 90°.
The encircled area (circle included for illustration purposes only) in Fig. 3 is detailed in Fig. 4. The radially compliant seal 3c of Fig. 3 comprises an outer seal part 3c' of a substantially incompressible solid material, such as a hard polymer material, and an inner seal part 3c" of a substantially compressible or resilient material. The directions "inner" and "outer" is here meant to indicate the directions with regard to the outer surface of the plug lc. The seal 3c is arranged in an annular groove provided in the outer periphery of the plug lc. The seal parts 3c' and 3c" are in fluid communication with the internal part of the pipe or vessel (not illustrated in Fig. 4), so that the fluid pressure which act upon the seal parts 3c' and 3c" and thus urge the resilient seal part 3c" against the sealing surface 2c' of the probe. The presence of the substantially incompressible seal part 3c' will prevent the resilient seal part 3c" from being extruded by the fluid pressure and thus maintain its sealing effect. The person skilled in the art will readily be able to choose the applicable seal material with support in the present description. Examples of materials for use with the resilient seal art 3c" are: NB , FCM and EPDM. Similarly, examples of materials for the substantially incompressible seal part 3c' are PFTE based polymers and polymers reinforced by glass and/or carbon.
Whereas the description above has been directed to the constructional details of the present invention, the description below clarifies the surprising technical effect of the access fitting in accordance with the present invention.
As the access fitting according to the invention is assembled, the plurality of angularly mounted and threaded pins 5 are tightened with a pre-determined torque in order to preload the plug lc with an equally pre-determined force, against conical surface 2c' of the fitting to provide a metal- to metal contact. This conical contact will guarantee that no external loads or vibration passes through the seal, while the preload-path is confined within a very short circuit, between said contact and bolts, where the latter itself is beneficial in case of different thermal expansion between plug and fitting.
Said torque is designed to give said contact the proper level of preload, in order to overcome the expected counter-force from the line-pressure in to provide a certain margin against leakage.
The self energized primary seal 3c can have any numerous designs, as long as it is not dependant on a mechanical preload to serve its sealing functions. In case of a complete seal failure, the invention will still have a built in secondary seal against dramatic blow-outs, by the plug itself being held urged against the fitting's sealing surface 2c' with a high metal-to metal contact-pressure, creating a tight orifice which will hold its integrity even when subjected to the extreme temperatures from a petroleum-fueled fire.
The seal 4c' between cover 4c, and fitting 2c (Fig. 3), forms together with the threaded pin seals 5', a tertiary seal, which can be used for leakage detection by monitoring the pressure inside said cover, built up between secondary and tertiary seal.
The access fitting will also be fail-safe against human error if the pins 5 are unlocked by mistake during operation. The plug lc can only travel a certain distance "S" before it will be supported by the cover, thereby limiting the gap to the sealing surface 2c' and securing the seal's function.
Accordingly, the access fitting in accordance with the present invention provides a pipe or vessel fitting which increases sealing efficiency and safety, reduces torque needed for necessary preload and at the same time improves the plug's lateral stiffness.

Claims

Claims
1. Access fitting for attaching a device (6) within a process pipeline or vessel (7), said access fitting comprising a conical plug (1, lb, lc) accommodated within a fitting (2, 2b, 2c) attached to said pipe or vessel (7); and a cover means (4) arranged at the outer end of said access fitting toward the environments; whereby the access fitting exhibits a primary sealing means (3) arranged between the fitting (2) and plug (1) to provide a fluid tight primary sealing between the interior of the pipeline or vessel and the exterior of the same, characterized in that the access fitting comprises two or more threaded pins (5) accommodated within corresponding radially extending apertures (8) formed in the fitting (2c), said pins (5) extending from the periphery of the fitting (2) at an angle less than 90° with the longitudinal axis of the device (6c) and into metal-to- metal contact with the plug (1, lc) thus providing a preloading force on the plug (lc) and device (6c), whereby said primary sealing means (3c) is arranged within the conical section of the plug and is composed of an at least partially resilient material, thus providing a self-energized sealing by the fluid pressure and the preloading force from the pins (5) to seal off the fluid from the atmosphere.
2. Access fitting in accordance with claim 1, characterized in that it exhibits a secondary seal provided by a high contact pressure between the plug (lc) and the fitting (2c), creating a tight orifice.
3. Access fitting in accordance with claim 1, characterized in that the primary sealing means comprises a first sealing part (3c") of a compressible solid material arranged in an annular groove in the external surface of the plug (1), and a second sealing part (3c') of a substantially
incompressible solid material arranged between the first sealing part (3") and the internal surface of the surrounding fitting (2).
4. Access fitting in accordance with any one of claims 1 to 3, characterized in that a tertiary seal (4c') is arranged between the between cover (4c) and fitting (2c), thus enabling leakage detection by monitoring the pressure inside said cover, built up between secondary and tertiary seal.
5. Access fitting in accordance with any one of claims 1 to 4, characterized in that the plug (lc) is arranged with a small clearance (S) between the rear end of the plug (lc) and the internal surface of the cover (4c) thus allowing the plug to travel a short distance (S) in case of failure of the threaded pins (5) before being supported by the cover (4c), limiting the resulting conical gap between conical plug (lc) and sealing surface (2c') forming the secondary sealing, securing the function of the primary seal (3c).
PCT/NO2013/050007 2012-01-10 2013-01-10 Access fitting for attaching a device within a process pipeline or vessel WO2013105866A1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
NO20120024 2012-01-10
NO20120024A NO333688B1 (en) 2012-01-10 2012-01-10 Luminaire for mounting a device in a processor or container

Publications (1)

Publication Number Publication Date
WO2013105866A1 true WO2013105866A1 (en) 2013-07-18

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PCT/NO2013/050007 WO2013105866A1 (en) 2012-01-10 2013-01-10 Access fitting for attaching a device within a process pipeline or vessel

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WO (1) WO2013105866A1 (en)

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1987007374A1 (en) * 1986-05-27 1987-12-03 Bkm Bolender-Kubitz Maschinenkonstruktion Gmbh Device for connecting a pressure-gauge to a pipeline
US5971001A (en) * 1997-05-29 1999-10-26 Dresser Industries, Inc. Fitting assembly and method for tapping into a conduit
US6148681A (en) * 1997-01-06 2000-11-21 Rosemount Inc. Level probe with modular connection
US6357470B1 (en) * 2000-06-07 2002-03-19 Accurate Tool Company Vessel and pipeline insertion tool

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1987007374A1 (en) * 1986-05-27 1987-12-03 Bkm Bolender-Kubitz Maschinenkonstruktion Gmbh Device for connecting a pressure-gauge to a pipeline
US6148681A (en) * 1997-01-06 2000-11-21 Rosemount Inc. Level probe with modular connection
US5971001A (en) * 1997-05-29 1999-10-26 Dresser Industries, Inc. Fitting assembly and method for tapping into a conduit
US6357470B1 (en) * 2000-06-07 2002-03-19 Accurate Tool Company Vessel and pipeline insertion tool

Also Published As

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NO20120024A1 (en) 2013-07-11
NO333688B1 (en) 2013-08-12

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