EP0564732B1 - Seal head for tube expansion apparatus - Google Patents
Seal head for tube expansion apparatus Download PDFInfo
- Publication number
- EP0564732B1 EP0564732B1 EP92303228A EP92303228A EP0564732B1 EP 0564732 B1 EP0564732 B1 EP 0564732B1 EP 92303228 A EP92303228 A EP 92303228A EP 92303228 A EP92303228 A EP 92303228A EP 0564732 B1 EP0564732 B1 EP 0564732B1
- Authority
- EP
- European Patent Office
- Prior art keywords
- rod
- tube
- sleeve
- ring
- shaft
- Prior art date
- Legal status (The legal status 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 status listed.)
- Expired - Lifetime
Links
- 239000012530 fluid Substances 0.000 claims abstract description 76
- 238000007789 sealing Methods 0.000 claims abstract description 59
- 238000000034 method Methods 0.000 description 16
- 230000006835 compression Effects 0.000 description 6
- 238000007906 compression Methods 0.000 description 6
- 230000006378 damage Effects 0.000 description 6
- 238000012423 maintenance Methods 0.000 description 5
- 238000004519 manufacturing process Methods 0.000 description 5
- 230000013011 mating Effects 0.000 description 4
- 238000006073 displacement reaction Methods 0.000 description 3
- 238000003780 insertion Methods 0.000 description 3
- 230000037431 insertion Effects 0.000 description 3
- 239000007788 liquid Substances 0.000 description 3
- 238000005520 cutting process Methods 0.000 description 2
- 230000003252 repetitive effect Effects 0.000 description 2
- 230000000717 retained effect Effects 0.000 description 2
- 238000012360 testing method Methods 0.000 description 2
- 238000013022 venting Methods 0.000 description 2
- 208000027418 Wounds and injury Diseases 0.000 description 1
- 238000005299 abrasion Methods 0.000 description 1
- 239000002131 composite material Substances 0.000 description 1
- 239000004020 conductor Substances 0.000 description 1
- 239000013536 elastomeric material Substances 0.000 description 1
- 208000014674 injury Diseases 0.000 description 1
- 239000000463 material Substances 0.000 description 1
- 238000012545 processing Methods 0.000 description 1
- 230000001681 protective effect Effects 0.000 description 1
- XLYOFNOQVPJJNP-UHFFFAOYSA-N water Substances O XLYOFNOQVPJJNP-UHFFFAOYSA-N 0.000 description 1
Images
Classifications
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B21—MECHANICAL METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
- B21D—WORKING OR PROCESSING OF SHEET METAL OR METAL TUBES, RODS OR PROFILES WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
- B21D26/00—Shaping without cutting otherwise than using rigid devices or tools or yieldable or resilient pads, i.e. applying fluid pressure or magnetic forces
- B21D26/02—Shaping without cutting otherwise than using rigid devices or tools or yieldable or resilient pads, i.e. applying fluid pressure or magnetic forces by applying fluid pressure
- B21D26/033—Deforming tubular bodies
- B21D26/045—Closing or sealing means
Definitions
- the invention is directed to an apparatus for filling a tube or similar workpiece with fluid and for pressurizing the fluid within the workpiece according to the preamble of claim 1 (US-A-3,359,624).
- tubes or vessels be filled with liquid and then pressurized.
- processes include: expanding tubes within a forming die cavity as described in U.S. Patents 4,567,743 and 4,829,803 to Cudini; expanding a tubular liner to form a composite lined pipe as described in U.S. Patent 3,359,624 to Cours et al; and pressure testing of fabricated pressure vessels.
- processes include the following steps: sealing of the openings of the tube or vessels workpiece; filling of the workpiece with fluid; pressurizing the fluid within the workpiece to achieve the particular desired result such as forming, expanding or pressure testing; depressurizing the fluid; draining the fluid; and removing the sealing means to release the workpiece.
- the invention provides a novel apparatus to fill a tube or like workpiece with fluid which reduces the costs of operation and maintenance, reduces the processing time required, and reduces or eliminates the risks of injury and machinery damage associated with the conventional devices described above.
- an apparatus for filling a tube with fluid comprises a first connection for a fluid at low pressure for filling the tube and a second connection for a fluid at high pressure for pressurising the tube; characterised in that the high pressure connection includes a shaft, having a longitudinal bore for communicating with a high pressure fluid source, tube sealing means, adjacent a forward end of the shaft, for sealing the tube when the shaft is advanced into engagement with the tube, shaft reciprocating means for advancing and retracting the forward end of the shaft into and out of engagement with the tube; and the low pressure connection includes a forwardly open shroud, housing the forward end of the shaft when withdrawn, and having a rearward opening slidably engaging the forward end of the shaft rearward of the tube sealing means, the interior of the shroud communicating with a low pressure fluid source, external sealing means being provided about the forward end of the shroud, for sealing against an external surface surrounding an end of the tube, shroud reciprocating means being provided for advancing and retracting the shroud forward and away from the
- the high pressure connection includes a shaft, said shaft comprising a rod having a longitudinal bore for communicating with a fluid source, and a sleeve outwards of the rod, a rod ring being connected to a forward end of the rod and a sleeve ring being connected to a forward end of the sleeve; an elastomeric ring is located between the rod ring and the sleeve ring, the elastomeric ring having an annular surface for sealingly engaging a surface of the tube; and means for axially displacing the rod and the sleeve relative to each other, whereby the elastomeric ring is axially compressed or decompressed, the elastomeric ring expanding and contracting radially to engage and disengage the tube, and wherein the rod ring and sleeve ring have a greater radial extent than the elastomeric ring adjacent its annular surface, whereby the annular surface of the e
- Figure 1 shows an axial cross-sectional view of one embodiment of the invention with its shaft in a fully withdrawn position and its shroud in a fully retracted position.
- Figure 2 shows a like view with the shroud fully advanced and fluid flowing through the shroud to fill the tube as indicated by the arrow B.
- Figure 3 shows a like view with the shaft fully inserted into the interior of the tube.
- Figure 4 shows a like view with the internal sealing means sealing the interior of the tube and high pressure fluid pressurising the fluid in the interior of the tube as indicated by the arrow A.
- Figures 5 and 6 show detailed views of the forward end of the shaft and internal sealing means corresponding to Figures 3 and 4 respectively.
- Figure 7 shows an axial cross-sectional view of a second embodiment of the invention with tube sealing means adapted to engage and seal the outer surface of the tube which projects beyond the forming die.
- the invention is applied in a tube forming process wherein a tube 20 is to be filled with liquid through an opening 21.
- the tube 20 is retained between the interior faces of a mating pair of forming die blocks 22. It will be understood that the following description is equally applicable to any process where a workpiece is to be filled and pressurized through such an opening 21.
- a shaft 1 having a longitudinal axis, includes a rod 2 and a sleeve 3 outward of the rod 2.
- the rod 2 has a forwardly open longitudinal bore 4 rearwardly communicating with a fluid source via end cap 5 and high pressure conduit 6 in the particular embodiment shown.
- tube sealing means comprising inner sealing means 7 are provided, adjacent the forward end of the shaft 1, for sealing the interior of the tube 20 when the shaft 1 is inserted into the tube 20.
- Shaft reciprocating means 7 may comprise, as shown, a double acting hydraulic cylinder 8 engaging the rearward end of the shaft 1 and a stationary member 12, and acting in a direction parallel to the axis of the shaft 1.
- the cylinder 8 provides means for advancing and retracting the shaft 7 into engagement with the tube 20 by inserting and withdrawing the forward end of the shaft 1, into and out of the interior of the tube 20 through the opening 21 in the end of the tube 20.
- the inner sealing means 7 includes: a rod ring 9, connected to the forward end of the rod 2, and having a rearward radially extending face; a sleeve ring 10 connected to the forward end of the sleeve 3 and having a forward radially extending face; and an elastomeric ring 11 between the rearward face of the rod ring 9 and the forward face of the sleeve ring 10.
- Displacing means are included in the inner sealing means 7 for axially displacing the rod 2 and sleeve 3 relative to each other thereby axially compressing and decompressing, and radially expanding and contracting the elastomeric ring 11 to engage and disengage the interior of the tube 20.
- the following sequence of operations is carried out.
- the shaft 1 of the device is in a fully withdrawn position and the opening 21 of the tube 20 is aligned with the longitudinal axis of the shaft 1.
- the forward end of the shaft 1 is inserted into the interior of the tube 20 by extending the hydraulic cylinder 8.
- the elastomeric ring 11 has an outer diameter less than the diameter of the rod ring 9 and the sleeve ring 10 whereby its annular sealing surface is nested inwardly between the rod and sleeve rings in order to protect it during insertion and withdrawal.
- the edges of the tube openings 21 often have burrs remaining from cutting operations or may otherwise abrade the annular sealing surface of an exposed elastomeric ring 11 thereby reducing its serviceable life.
- the elastomeric ring 11 is inserted a distance beyond the outer edge of the tube 20 in order to engage a relatively smooth area of the interior wall of the tube 20.
- the outer dimensions of the rod ring 9 may be less than the other dimensions of the sleeve ring 10 and the forward edges of the rod ring 9 may be rounded.
- the displacing means are activated to axially displace the rod 2 and sleeve 3 relative to each other.
- the fluid control means are activated to depressurize and drain the tube 20 of water via the longitudinal bore 4 and high pressure conduit 6.
- the displacing means are then activated to decompress and radially contract the elastomeric ring 11 disengaging it from the interior of the tube 20.
- the hydraulic cylinder 8 withdraws the forward end of the shaft 1 out of engagement with the interior of the tube 20 to the fully retracted position illustrated in Figure 1.
- the displacing means for axially displacing the rod 2 and sleeve 3 relative to each other, comprises sleeve backstop means moving radially inwardly toward the axis of the shaft 1, after the shaft 1 has been inserted into the tube.
- the sleeve backstop means may comprise two oppositely radially movable blocks 13 having a semi-annular inner surface 14 through which the shaft 1 extends.
- the sleeve 3 may include an annular sleeve stop ring 15 protruding outwardly of the rearward end of the sleeve 3.
- the movable blocks 13 are initially positioned radially withdrawn from the shaft 1 in order to allow the shaft 1 to be inserted into the tube 20, as shown in Figures 1 and 2.
- the movable blocks 13 are moved radially inwardly toward the axis of the shaft 1 to engage the rearward end of the sleeve 3 and thereby to prevent rearward movement of the sleeve 3.
- the hydraulic cylinder 8 is activated to rearwardly withdraw the rod 2 to seal the interior of the tube 20.
- rod limiting means may be included for limiting the extent to which the rod 2 may be withdrawn to seal the interior of the tube 20 after the shaft 1 has been inserted into the tube 20 and the movable blocks 13 have engaged the rearward end of the sleeve 3.
- the elastomeric ring 11 is compressed to an inadequate degree leakage may occur. If the elastomeric ring 11 is overcompressed it may fail prematurely due to overstressing or fatigue of the elastomeric material.
- the degree of compression of the elastomeric ring 11 may be accurately predetermined for optimal sealing and operating life.
- the rod limiting means may comprise: a rod abutment protruding from the rod 2 rearward of the sleeve 3; and rod backstop means for moving radially inwardly to engage a rearward face of the rod abutment.
- the rod abutment comprises a rod stop member 16 threadedly and adjustably engaging the rod 2.
- the rod backstop means may comprise two semi-annular interior grooves 17 in the semi-annular inner surface 14 of the movable blocks 13, and the rod stop member 16 may comprise a ring receivable in the grooves 17.
- a rod stop member 16 may include two outwardly knurled nuts engaging a threaded portion of the rod 2 whereby rotating the nuts in opposing directions will lock them at a desired axial position upon the rod 2.
- the movable blocks 13 are moved inwardly simultaneously to engage the rearward end of the sleeve 3 and to receive the rod stop member 16 within the grooves 17.
- both the sleeve 3 and the rod 2 are limited by positive contact to accurately set the extent to which the shaft 1 is inserted into the tube 20.
- a stationary block 25 may slidably support the forward end of the shaft 1 within bearings 25b between the inner sealing means 7 and the sleeve stop ring 15.
- the movable blocks 13 are moved inwardly to engage the rearward end of the sleeve stop ring 15 when the rod 2 is withdrawn.
- the forward surface of the rod stop member 16 is housed within the groove 17 of the movable blocks 13.
- the cylinder 8 is then activated to withdraw the rod 2 to seal the interior of the tube 20.
- the extent to which the rod 2 is withdrawn is limited when the rearward surface of the rod stop member 16 abuts the rearward shoulder of the groove 17.
- a preferred second embodiment of the invention may utilize two fluid circuits namely a high flow-low pressure circuit for filling and draining the workpiece and a low flow-high pressure circuit for pressurizing and depressurizing the fluid within the workpiece.
- a second method of operating the apparatus which utilizes a high flow-low pressure circuit and a low flow-high pressure circuit.
- the high pressure circuit conducts fluid via the high pressure conduit 6, end cap 5 and longitudinal bore 4 as indicated by the arrow A.
- the low pressure circuit conducts fluid through members of relatively larger internal dimensions, namely a low pressure conduit 18 and a shroud 19, into the tube opening 21 as indicated by the arrow B.
- shaft 1 has a forwardly open longitudinal bore 4 rearwardly communicating with a high pressure fluid.
- Inner sealing means 7 are provided adjacent the forward end of the shaft 1 for sealing the interior of the tube 20 when the shaft 1 is inserted into the tube 20.
- a particular preferred embodiment of such inner sealing means 7 has been described above in relation to a first embodiment of the invention, however, it will be understood that various other tube sealing means 7 may be adapted to perform the same function.
- Shaft reciprocating means in the form of a double acting hydraulic cylinder 8, are provided for inserting and withdrawing the forward end of the shaft 1 into and out of the interior of the tube 20.
- the cylinder 8 engages the rearward end of the shaft 1 and a stationary member 12.
- the cylinder 8 acts in a direction parallel to the axis of the shaft 1.
- a forwardly open shroud 19 houses the forward end of the shaft 1 when withdrawn.
- the shroud 19 has a rearward opening slidably engaging the forward end of the shaft 1 rearward of the inner sealing means 7.
- the interior of the shroud 19 communicates with a low pressure fluid source via low pressure conduit 18.
- the shroud 19 performs three functions as illustrated, namely, as a fluid conductor in the low pressure circuit, as a safety guard in the event of failure of the elastomeric ring 11, and as a means to protect the inner sealing means 7 from abrasion or other damage during operation or maintenance of the apparatus.
- FIG. 1 illustrates an application of the invention in association with a tube forming process wherein a tube 20 is retained between the interior faces of forming die blocks 22.
- a rearward external surface 23 of the die blocks 22 is adjacent an end of the tube 20.
- the gaps between the mating surface of the die blocks 22 and the mating surfaces between the tube exterior and the interior faces of the die blocks, are sufficiently narrow such that leakage of fluid under low pressure is insignificant.
- External sealing means such as a gasket ring 24 are provided about the forward end of the shroud 19 for sealing the rearward external surface 23 of the die blocks 22.
- Shroud reciprocating means engage the shroud 19 for advancing and retracting the shroud 19 forward and away from the external surface 23.
- the shaft 1 has a radially outwardly extending abutment surface inwardly of the shroud 19, namely an outward portion of the rearward face of the sleeve ring 10 which extends beyond the outer surface of the sleeve 3.
- the shroud reciprocating means comprises the stationary support 25, and spring means 26 between the stationary support 25 and the shroud 19, for biasing the shroud 19 forwardly toward the external surface 23 of the die blocks 22.
- the following sequence of operations is carried out.
- the shroud 19 is fully retracted away from the external surface 23 of the die blocks 22, and the shaft 1 is fully withdrawn out of the tube's interior.
- the outward rearward surface of the sleeve ring 10 abuts and engages the forward inner surface of the shroud 19 under the biasing action of the spring means 26.
- the cylinder 8 is activated to forwardly move the shaft 1 to an intermediate position, illustrated in Figure 2, prior to insertion of the shaft 1 into the tube 20.
- the cylinder 8 forces the rod 2 forward.
- the rod 2 has an area of enlarged diameter immediately rearward of the sleeve 3 forming a shoulder which abuts the rearward end of the sleeve 3 forcing the sleeve 3 forward.
- the engagement of the elastomeric ring 11 and the sleeve and rod rings 9 and 10 is thereby maintained.
- the gasket ring 24 at the forward end of the shroud 19 seals the external surface 23 as the shroud 19 is biased forwardly under the action of the spring means 26.
- Low pressure fluid control means communicating with a low pressure fluid source are activated to fill the tube 20 with fluid via low pressure conduit 18 and the interior of the shroud 19 as indicated by arrow B. Air from within the tube 20 is vented through means as described above.
- the fluid in the shroud 19 is under a low pressure such that the biasing force of the spring means 26 maintains the gasket ring 24 sufficiently compressed to retain an adequate fluid seal.
- An O-ring seal 27 is provided between the rearward opening of the shroud 19 and the outer surface of the shaft 1 to prevent rearward low pressure fluid leakage.
- the shaft 1 When filling of the tube 20 with low pressure fluid is substantially completed, the shaft 1 is inserted into the tube 20, as illustrated in Figure 2 and the inner sealing means 7 seals the interior of the tube 20, as illustrated in Figure 4 and as described fully above.
- high pressure fluid means communicating with a high pressure fluid source are activated to further fill and pressurize the tube 20 as indicated by arrow A, via high pressure conduit 6, end cap 5 and longitudinal bore 4.
- the high pressure fluid control means are activated to depressurize the tube 20.
- the inner sealing means 7 are disengaged from the interior of the tube 20 and the shaft 1 is partially withdrawn to the intermediate position shown in Figure 2.
- the low pressure fluid control means are activated to drain the fluid from the tube 20 in a direction opposite to arrow B, and air is allowed to reenter the tube 20 via the opened venting means.
- the cylinder 8 is activated to fully withdraw the shaft 1 to the position illustrated in Figure 1.
- the rearward surface of the sleeve ring 10 engages and retracts the shroud 19 against the action of the spring means 26 as the shaft 1 is withdrawn away from the tube 20.
- the elastomeric seal 11 and the gasket ring 24 are the components of the apparatus most susceptible to wear and damage, they are designed to be easily accessible for rapid replacement during maintenance.
- the rod ring 9 is internally threaded upon the forward end of the rod 2 and the elastomeric ring 11 and sleeve ring 10 slip over the rod 2.
- the elastomeric ring 11 is easily replaced by simply removing the rod ring 9.
- a sliding key 28 is provided engaging the rod 2 and sleeve 3 in order to prevent rotational displacement of the sleeve 3 relative to the rod 2 during removal of the rod ring 9. Such rotational displacement may induce torsional stresses in the elastomeric ring 11 reducing its serviceable life.
- the gasket ring 24 has an L-shaped cross section in order to flexibly engage a mating gasket groove in the forward end of the shroud 19, likewise for rapid replacement.
- the apparatus may be rapidly adapted to accommodate a range of tube opening 21 sizes by simply changing the rod ring 9, elastomeric ring and sleeve ring 10 to the desired size.
- the area of the exterior face 23 enveloped by the shroud 19 and gasket ring 24 may be increased by simply installing shrouds 19 of larger size to accommodate tubes 20 having larger openings 21.
- a second embodiment of the invention is illustrated wherein the tube sealing means are adapted to engage and seal the outer surface of the tube 20.
- the tube 20 projects beyond the die face 23 providing an outer surface available for sealing.
- the tube sealing means comprise outer sealing means adjacent the forward end of the shaft 1a for sealing the exterior of the tube 20.
- the sleeve ring 9a is forward of the rod ring 7a.
- the rod ring 7a is connected to the forward end of the rod 2a and has a forward radially extending face.
- the sleeve ring 9a is connected to the forward end of the sleeve 3a and has a rearward radially extending face.
- the elastomeric ring 11a is positioned between the forward face of the rod ring 7a and the rearward face of the sleeve ring 9a.
- displacing means are provided to axially displace the rod 2a and sleeve 3a thereby radially expanding and contracting the elastomeric ring 11a to engage and disengage the exterior of the tube 20.
- the shroud 19 and the low pressure - high flow circuit operates identically as described above and therefore will not be described in detail in association with the third embodiment.
- the stationary support 25a illustrated in Figure 7 differs slightly from the stationary support 25 in the other drawings in that the shroud is housed in and protected by the stationary support 25a when fully retracted.
- the displacing means shown in Figure 7 differ significantly from that of the first and second embodiments.
- the displacing means comprise rod backstop means, comprising two oppositely radially movable blocks 13a, which move inwardly toward the longitudinal axis after the shaft 1a has been advanced into engagement with the exterior of the tube 20.
- the rod backstop blocks 13a engage the rearward end of the rod 2a to prevent rearward movement of the rod 2a as the shaft reciprocating means rearwardly withdraws the sleeve 3a to seal the exterior of the tube 20.
- the rearward end of the rod 2a includes an annular rod stop ring 16a protruding outwardly of the rod 2a to engage the rod backstop blocks 13a.
- the sleeve limiting means comprises a sleeve backstop ring 15a protruding from the rod 2a rearward of the sleeve 3a and forward of the rod stop ring 16a.
- the sleeve backstop ring 15a is threaded upon the rod 2a in order to adjust its position thereby determining the degree of compression.
- the shroud 19 and shaft 1a are fully retracted.
- the forward end of the sleeve 3a within the shroud 19 is of enlarged diameter forming a shoulder 28a which abuts and engages the forward inner surface of the shroud 19 under the biasing action of the springs 26.
- the shaft reciprocating means comprise two double acting hydraulic cylinders 8a and 8b each engaging a beam 29.
- the beam 29 is centrally connected to the rearward end of the sleeve 3a by fasteners 30.
- the cylinders 8a and 8b are mounted on stationary members 12a and 12b, and act in a direction parallel to the longitudinal axis of the apparatus.
- the cylinders 8a and 8b are activated to move the shaft 1 forwardly to an intermediate position prior to engagement of the outer tube sealing means.
- the cylinders 8a and 8b force the sleeve 3a forward.
- the sleeve 3a has a forward inner shoulder 31 which abuts the rearward end of the rod ring 7a forcing the rod 2a forward.
- the elastomeric ring 11a is therefore not subjected to any tensile or compressive force as a result.
- the shaft 1 When filling of the tube 20 with low pressure fluid is substantially completed, the shaft 1 is fully advanced such that the outer tube sealing means is positioned about the rearward end of the tube 20.
- the rod stop ring 16a is as a result advanced forward of the rod backstop blocks 13a.
- the rod backstop blocks 13a are moved radially inwardly to engage the rearward face of the rod stop ring 16a and to prevent to the rod 2a from moving rearwardly.
- the cylinders 8a and 8b are activated to retract the sleeve 3a rearwardly.
- the elastomeric ring 11a is compressed between the rearward face of the sleeve ring 9a and the forward face of the rod ring 7a such that the elastomeric ring 11a radially expands sealing the exterior surface of the tube.
- the retraction of the sleeve 3a is limited when the rearward end of the sleeve 3a abuts the forward face of the sleeve backstop ring 15a which is positioned upon the stationary rod 2a.
- the gap 32 between the rearward end of the sleeve 3a and sleeve backstop ring 15a therefore determines the degree of compression of the elastomeric ring 11a.
- the high pressure fluid means are then activated to further fill and pressurize the tube 20 as described above. Upon completion of the pressurization process the above sequence of operations is reversed in a manner which need not be fully described in light of the above detailed description.
- the elastomeric ring 11a is of larger inner dimension than the sleeve and rod rings 9a and 7a and is nested inwardly between the rod and sleeve rings 7a and 9a to protect it during operation from cutting or abrading on the tube's rearward end.
- the inner dimensions of the sleeve ring 9a are preferably greater than the inner dimensions of the rod ring 7a, and the inner forward edges of the sleeve ring 9a are rounded.
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- Physics & Mathematics (AREA)
- Fluid Mechanics (AREA)
- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Shaping Of Tube Ends By Bending Or Straightening (AREA)
- Pipe Accessories (AREA)
- Joints With Sleeves (AREA)
- Heating, Cooling, Or Curing Plastics Or The Like In General (AREA)
- Sealing Devices (AREA)
- Percussion Or Vibration Massage (AREA)
- Coating With Molten Metal (AREA)
Abstract
Description
- The invention is directed to an apparatus for filling a tube or similar workpiece with fluid and for pressurizing the fluid within the workpiece according to the preamble of claim 1 (US-A-3,359,624).
- Various manufacturing and industrial processes require that tubes or vessels be filled with liquid and then pressurized. Examples of such processes include: expanding tubes within a forming die cavity as described in U.S. Patents 4,567,743 and 4,829,803 to Cudini; expanding a tubular liner to form a composite lined pipe as described in U.S. Patent 3,359,624 to Cours et al; and pressure testing of fabricated pressure vessels. In general, such processes include the following steps: sealing of the openings of the tube or vessels workpiece; filling of the workpiece with fluid; pressurizing the fluid within the workpiece to achieve the particular desired result such as forming, expanding or pressure testing; depressurizing the fluid; draining the fluid; and removing the sealing means to release the workpiece.
- Conventional devices to carry out the above processes generally utilize a single sealing means which operates to prevent fluid leakage during the low pressure filling and draining stages, as well as during the high pressure pressurized stages. Examples of such devices are described in U.S. Patents No. 4,788,843 to Seaman et al. and No. 3,625,040 to Gain. When such devices are used in a repetitive high volume manufacturing environment, such as automobile parts manufacturing for example, the sealing means are generally the first part of the device to fail, and are therefore the cause of significant delay and machine downtime. Such sealing means relies upon the contact between the workpiece and a flexible gasket to maintain a fluid seal. Workpieces often have burrs on the edges of their openings which damage the gasket, and in any case through repeated use the flexible gasket eventually fails necessitating replacement. Conventional devices often do not include means to accurately predetermine or limit the degree of flexible gasket compression. A gasket which is compressed to an inadequate degree will leak, whereas an over compressed gasket will fail prematurely due to material fatigue or over stressing. Frequent replacement of such gaskets results in costs associated with maintenance and inefficiency during machine downtime.
- The failure of such conventional sealing means also subjects the machine operators and adjacent machinery to the risk of harm from the leakage of high pressure fluid. Some form of machine guard or personal protective equipment may often be required by various local safety regulations in association with conventional devices as a result.
- In such conventional devices fluid often enters the workpiece via a single input-output circuit of piping. In order to quickly fill and drain the workpiece with fluid a relatively large diameter piping circuit is desirable, whereas to pressurize the fluid only a relatively small diameter piping circuit is required due to the low quantity of flow and a small diameter is desirable due to the increased wall thickness required if large diameter pipes are used for high pressure fluid circuits. In U.S. Patent No. 3,359,624 to Cours et al. a device is described which includes a high flow-low pressure circuit for filling and draining, as well as low flow - high pressure circuit for pressurizing the liquid. Such conventional devices reduce the amount of time required to fill and drain the workpiece but suffer from the disadvantage that costly valving and valve controls are required to separate the two circuits. In addition, the valving adds a further process time to operate, and introduces additional maintenance costs.
- The invention provides a novel apparatus to fill a tube or like workpiece with fluid which reduces the costs of operation and maintenance, reduces the processing time required, and reduces or eliminates the risks of injury and machinery damage associated with the conventional devices described above.
- According to one aspect of the present invention an apparatus for filling a tube with fluid comprises a first connection for a fluid at low pressure for filling the tube and a second connection for a fluid at high pressure for pressurising the tube; characterised in that the high pressure connection includes a shaft, having a longitudinal bore for communicating with a high pressure fluid source, tube sealing means, adjacent a forward end of the shaft, for sealing the tube when the shaft is advanced into engagement with the tube, shaft reciprocating means for advancing and retracting the forward end of the shaft into and out of engagement with the tube; and the low pressure connection includes a forwardly open shroud, housing the forward end of the shaft when withdrawn, and having a rearward opening slidably engaging the forward end of the shaft rearward of the tube sealing means, the interior of the shroud communicating with a low pressure fluid source, external sealing means being provided about the forward end of the shroud, for sealing against an external surface surrounding an end of the tube, shroud reciprocating means being provided for advancing and retracting the shroud forward and away from the external surface, low pressure fluid control means, communicating with the low pressure fluid source, for filling the tube with fluid when the shroud is advanced and the external sealing means seals the external surface before advancing the shaft, and for draining fluid from the tube after retraction of the shaft, and high pressure fluid control means, communicating with the high pressure fluid source, for further filling and pressurising the tube when the shaft is advanced into engagement with the tube and the tube sealing means seals the tube, and for depressurising the tube before the shaft is retracted.
- According to one embodiment of the invention the high pressure connection includes a shaft, said shaft comprising a rod having a longitudinal bore for communicating with a fluid source, and a sleeve outwards of the rod, a rod ring being connected to a forward end of the rod and a sleeve ring being connected to a forward end of the sleeve; an elastomeric ring is located between the rod ring and the sleeve ring, the elastomeric ring having an annular surface for sealingly engaging a surface of the tube; and means for axially displacing the rod and the sleeve relative to each other, whereby the elastomeric ring is axially compressed or decompressed, the elastomeric ring expanding and contracting radially to engage and disengage the tube, and wherein the rod ring and sleeve ring have a greater radial extent than the elastomeric ring adjacent its annular surface, whereby the annular surface of the elastomeric ring is normally nested inwardly between the rod and sleeve rings and extends radially beyond the rod and sleeve rings when the elastomeric ring is compressed between the rod and sleeve rings.
- Non-limiting examples of apparatus in accordance with the invention are shown in the accompanying drawings.
- Figure 1 shows an axial cross-sectional view of one embodiment of the invention with its shaft in a fully withdrawn position and its shroud in a fully retracted position.
- Figure 2 shows a like view with the shroud fully advanced and fluid flowing through the shroud to fill the tube as indicated by the arrow B.
- Figure 3 shows a like view with the shaft fully inserted into the interior of the tube.
- Figure 4 shows a like view with the internal sealing means sealing the interior of the tube and high pressure fluid pressurising the fluid in the interior of the tube as indicated by the arrow A.
- Figures 5 and 6 show detailed views of the forward end of the shaft and internal sealing means corresponding to Figures 3 and 4 respectively.
- Figure 7 shows an axial cross-sectional view of a second embodiment of the invention with tube sealing means adapted to engage and seal the outer surface of the tube which projects beyond the forming die.
- In the drawings the invention is applied in a tube forming process wherein a
tube 20 is to be filled with liquid through anopening 21. Thetube 20 is retained between the interior faces of a mating pair of forming dieblocks 22. It will be understood that the following description is equally applicable to any process where a workpiece is to be filled and pressurized through such anopening 21. - Referring to Figures 1 to 6 a first embodiment of the invention is illustrated. A shaft 1, having a longitudinal axis, includes a
rod 2 and asleeve 3 outward of therod 2. Therod 2 has a forwardly openlongitudinal bore 4 rearwardly communicating with a fluid source viaend cap 5 andhigh pressure conduit 6 in the particular embodiment shown. - Referring to Figures 1 and 4 tube sealing means comprising inner sealing means 7 are provided, adjacent the forward end of the shaft 1, for sealing the interior of the
tube 20 when the shaft 1 is inserted into thetube 20. Shaft reciprocating means 7 may comprise, as shown, a double actinghydraulic cylinder 8 engaging the rearward end of the shaft 1 and astationary member 12, and acting in a direction parallel to the axis of the shaft 1. Thecylinder 8 provides means for advancing and retracting theshaft 7 into engagement with thetube 20 by inserting and withdrawing the forward end of the shaft 1, into and out of the interior of thetube 20 through the opening 21 in the end of thetube 20. - The inner sealing means 7 includes: a
rod ring 9, connected to the forward end of therod 2, and having a rearward radially extending face; asleeve ring 10 connected to the forward end of thesleeve 3 and having a forward radially extending face; and anelastomeric ring 11 between the rearward face of therod ring 9 and the forward face of thesleeve ring 10. Displacing means, to be fully described below, are included in the inner sealing means 7 for axially displacing therod 2 andsleeve 3 relative to each other thereby axially compressing and decompressing, and radially expanding and contracting theelastomeric ring 11 to engage and disengage the interior of thetube 20. - In one method of utilizing the apparatus, the following sequence of operations is carried out. Referring to Figure 1, initially the shaft 1 of the device is in a fully withdrawn position and the
opening 21 of thetube 20 is aligned with the longitudinal axis of the shaft 1. Referring to Figure 3, the forward end of the shaft 1 is inserted into the interior of thetube 20 by extending thehydraulic cylinder 8. Theelastomeric ring 11 has an outer diameter less than the diameter of therod ring 9 and thesleeve ring 10 whereby its annular sealing surface is nested inwardly between the rod and sleeve rings in order to protect it during insertion and withdrawal. The edges of thetube openings 21 often have burrs remaining from cutting operations or may otherwise abrade the annular sealing surface of an exposedelastomeric ring 11 thereby reducing its serviceable life. Theelastomeric ring 11 is inserted a distance beyond the outer edge of thetube 20 in order to engage a relatively smooth area of the interior wall of thetube 20. To further aid smooth insertion and to allow for minor misalignment of thetube 20, the outer dimensions of therod ring 9 may be less than the other dimensions of thesleeve ring 10 and the forward edges of therod ring 9 may be rounded. Referring to Figure 4, the displacing means are activated to axially displace therod 2 andsleeve 3 relative to each other. As a result therod ring 9 andsleeve ring 10 are drawn toward each other thereby axially compressing and radially expanding theelastomeric ring 11. The outer surface of theelastomeric ring 11 engages the interior surface of thetube 20 sealing thetube 20. Fluid control means, communicating with a fluid source and thelongitudinal bore 4 viaend cap 5 andhigh pressure conduit 6, are then activated to fill thetube 20 with fluid and to pressurize thetube 20 as indicated by the arrow A. Venting of entrapped air from thetube 20 may be carried out by a valved vent conduit at the opposite end of thetube 20 or at some point along its length. Upon completion of the desired procedure which requires a pressurized workpiece, the above operating sequence is reversed. The fluid control means are activated to depressurize and drain thetube 20 of water via thelongitudinal bore 4 andhigh pressure conduit 6. The displacing means are then activated to decompress and radially contract theelastomeric ring 11 disengaging it from the interior of thetube 20. Thereafter thehydraulic cylinder 8 withdraws the forward end of the shaft 1 out of engagement with the interior of thetube 20 to the fully retracted position illustrated in Figure 1. - In the preferred form, the displacing means, for axially displacing the
rod 2 andsleeve 3 relative to each other, comprises sleeve backstop means moving radially inwardly toward the axis of the shaft 1, after the shaft 1 has been inserted into the tube. Referring to Figures 2 and 3, the sleeve backstop means may comprise two oppositely radiallymovable blocks 13 having a semi-annularinner surface 14 through which the shaft 1 extends. Thesleeve 3 may include an annularsleeve stop ring 15 protruding outwardly of the rearward end of thesleeve 3. In operation therefore themovable blocks 13 are initially positioned radially withdrawn from the shaft 1 in order to allow the shaft 1 to be inserted into thetube 20, as shown in Figures 1 and 2. Referring to Figure 3, when the shaft 1 is fully inserted, themovable blocks 13 are moved radially inwardly toward the axis of the shaft 1 to engage the rearward end of thesleeve 3 and thereby to prevent rearward movement of thesleeve 3. Referring to Figure 4, thehydraulic cylinder 8 is activated to rearwardly withdraw therod 2 to seal the interior of thetube 20. Since themovable blocks 13, engaging the rearward end of thesleeve 3, prevent thesleeve 3 from moving rearwardly, the withdrawal of therod 2 results in relative axial displacement between therod 2 andsleeve 3. Upon completion of the pressurization process, the above sequence of operations is reversed to release thetube 20. - In order to accurately predetermine or limit the degree of compression of the
elastomeric ring 11, rod limiting means may be included for limiting the extent to which therod 2 may be withdrawn to seal the interior of thetube 20 after the shaft 1 has been inserted into thetube 20 and themovable blocks 13 have engaged the rearward end of thesleeve 3. As described above in relation to conventional devices, if theelastomeric ring 11 is compressed to an inadequate degree leakage may occur. If theelastomeric ring 11 is overcompressed it may fail prematurely due to overstressing or fatigue of the elastomeric material. By limiting the extent ofrod 2 withdrawal, while securing thesleeve 3 in a stationary position by engaging themovable blocks 13, the degree of compression of theelastomeric ring 11 may be accurately predetermined for optimal sealing and operating life. - The rod limiting means may comprise: a rod abutment protruding from the
rod 2 rearward of thesleeve 3; and rod backstop means for moving radially inwardly to engage a rearward face of the rod abutment. Referring to Figure 2, in a preferred embodiment the rod abutment comprises arod stop member 16 threadedly and adjustably engaging therod 2. - The rod backstop means, referring to Figure 2, may comprise two semi-annular
interior grooves 17 in the semi-annularinner surface 14 of themovable blocks 13, and therod stop member 16 may comprise a ring receivable in thegrooves 17. For example: arod stop member 16 may include two outwardly knurled nuts engaging a threaded portion of therod 2 whereby rotating the nuts in opposing directions will lock them at a desired axial position upon therod 2. In operation therefore referring to Figure 3, when the shaft 1 is inserted into thetube 20, themovable blocks 13 are moved inwardly simultaneously to engage the rearward end of thesleeve 3 and to receive therod stop member 16 within thegrooves 17. Preferably the forward movement of both thesleeve 3 and therod 2 are limited by positive contact to accurately set the extent to which the shaft 1 is inserted into thetube 20. Astationary block 25 may slidably support the forward end of the shaft 1 withinbearings 25b between the inner sealing means 7 and thesleeve stop ring 15. When the shaft is moved forwardly the forward surface of thesleeve stop ring 15 abuts the rearward surface of thestationary block 25. Themovable blocks 13 are moved inwardly to engage the rearward end of thesleeve stop ring 15 when therod 2 is withdrawn. The forward surface of therod stop member 16 is housed within thegroove 17 of the movable blocks 13. Thecylinder 8 is then activated to withdraw therod 2 to seal the interior of thetube 20. The extent to which therod 2 is withdrawn is limited when the rearward surface of therod stop member 16 abuts the rearward shoulder of thegroove 17. - The preceding description has disclosed a method utilizing a single high pressure circuit to fill a workpiece with fluid and to pressurize the fluid. Such method is adequate where the volume of fluid required to fill the workpiece is relatively low. As will be apparent to those skilled in the art, the diameter of the
longitudinal bore 4 limits the quantity of fluid which may practically be conducted within any given period of time. - The diameter of the
longitudinal bore 4 is limited by thetube opening 21, the required radial thickness of theelastomeric ring 11, and the requiredrod 2 wall thickness. Therefore, when relatively large quantities of fluid are required to fill a workpiece through a relativelysmall opening 21, the time required to fill the workpiece with fluid conducted through thelongitudinal bore 4 may be considered excessive especially when the apparatus is used in a repetitive high volume manufacturing environment. In such a case therefore, a preferred second embodiment of the invention may utilize two fluid circuits namely a high flow-low pressure circuit for filling and draining the workpiece and a low flow-high pressure circuit for pressurizing and depressurizing the fluid within the workpiece. - Referring to Figure 2, a second method of operating the apparatus is illustrated which utilizes a high flow-low pressure circuit and a low flow-high pressure circuit. As described above, the high pressure circuit conducts fluid via the
high pressure conduit 6,end cap 5 andlongitudinal bore 4 as indicated by the arrow A. Referring to Figure 2, the low pressure circuit conducts fluid through members of relatively larger internal dimensions, namely alow pressure conduit 18 and ashroud 19, into thetube opening 21 as indicated by the arrow B. - In the preferred embodiment illustrated in the drawings, shaft 1 has a forwardly open
longitudinal bore 4 rearwardly communicating with a high pressure fluid. Inner sealing means 7 are provided adjacent the forward end of the shaft 1 for sealing the interior of thetube 20 when the shaft 1 is inserted into thetube 20. A particular preferred embodiment of such inner sealing means 7 has been described above in relation to a first embodiment of the invention, however, it will be understood that various other tube sealing means 7 may be adapted to perform the same function. - Shaft reciprocating means, in the form of a double acting
hydraulic cylinder 8, are provided for inserting and withdrawing the forward end of the shaft 1 into and out of the interior of thetube 20. As described above, thecylinder 8 engages the rearward end of the shaft 1 and astationary member 12. Thecylinder 8 acts in a direction parallel to the axis of the shaft 1. - Turning now to the low pressure circuit, and with reference to Figure 1, a forwardly
open shroud 19 houses the forward end of the shaft 1 when withdrawn. Theshroud 19 has a rearward opening slidably engaging the forward end of the shaft 1 rearward of the inner sealing means 7. The interior of theshroud 19 communicates with a low pressure fluid source vialow pressure conduit 18. Theshroud 19 performs three functions as illustrated, namely, as a fluid conductor in the low pressure circuit, as a safety guard in the event of failure of theelastomeric ring 11, and as a means to protect the inner sealing means 7 from abrasion or other damage during operation or maintenance of the apparatus. - As described above the drawings illustrate an application of the invention in association with a tube forming process wherein a
tube 20 is retained between the interior faces of forming die blocks 22. A rearwardexternal surface 23 of the die blocks 22 is adjacent an end of thetube 20. The gaps between the mating surface of the die blocks 22 and the mating surfaces between the tube exterior and the interior faces of the die blocks, are sufficiently narrow such that leakage of fluid under low pressure is insignificant. External sealing means such as agasket ring 24 are provided about the forward end of theshroud 19 for sealing the rearwardexternal surface 23 of the die blocks 22. Shroud reciprocating means engage theshroud 19 for advancing and retracting theshroud 19 forward and away from theexternal surface 23. - Referring to Figure 2, in a particularly advantageous variation of the second embodiment, the shaft 1 has a radially outwardly extending abutment surface inwardly of the
shroud 19, namely an outward portion of the rearward face of thesleeve ring 10 which extends beyond the outer surface of thesleeve 3. The shroud reciprocating means comprises thestationary support 25, and spring means 26 between thestationary support 25 and theshroud 19, for biasing theshroud 19 forwardly toward theexternal surface 23 of the die blocks 22. - In the preferred method, the following sequence of operations is carried out. Referring to Figure 1, initially the
shroud 19 is fully retracted away from theexternal surface 23 of the die blocks 22, and the shaft 1 is fully withdrawn out of the tube's interior. The outward rearward surface of thesleeve ring 10 abuts and engages the forward inner surface of theshroud 19 under the biasing action of the spring means 26. Thecylinder 8 is activated to forwardly move the shaft 1 to an intermediate position, illustrated in Figure 2, prior to insertion of the shaft 1 into thetube 20. Thecylinder 8 forces therod 2 forward. Therod 2 has an area of enlarged diameter immediately rearward of thesleeve 3 forming a shoulder which abuts the rearward end of thesleeve 3 forcing thesleeve 3 forward. The engagement of theelastomeric ring 11 and the sleeve and rod rings 9 and 10 is thereby maintained. Thegasket ring 24 at the forward end of theshroud 19 seals theexternal surface 23 as theshroud 19 is biased forwardly under the action of the spring means 26. Low pressure fluid control means communicating with a low pressure fluid source are activated to fill thetube 20 with fluid vialow pressure conduit 18 and the interior of theshroud 19 as indicated by arrow B. Air from within thetube 20 is vented through means as described above. The fluid in theshroud 19 is under a low pressure such that the biasing force of the spring means 26 maintains thegasket ring 24 sufficiently compressed to retain an adequate fluid seal. An O-ring seal 27 is provided between the rearward opening of theshroud 19 and the outer surface of the shaft 1 to prevent rearward low pressure fluid leakage. - When filling of the
tube 20 with low pressure fluid is substantially completed, the shaft 1 is inserted into thetube 20, as illustrated in Figure 2 and the inner sealing means 7 seals the interior of thetube 20, as illustrated in Figure 4 and as described fully above. - Referring to Figure 4, high pressure fluid means communicating with a high pressure fluid source are activated to further fill and pressurize the
tube 20 as indicated by arrow A, viahigh pressure conduit 6,end cap 5 andlongitudinal bore 4. - Upon completion of the pressurization process, the above sequence of operations is reversed. The high pressure fluid control means are activated to depressurize the
tube 20. The inner sealing means 7 are disengaged from the interior of thetube 20 and the shaft 1 is partially withdrawn to the intermediate position shown in Figure 2. The low pressure fluid control means are activated to drain the fluid from thetube 20 in a direction opposite to arrow B, and air is allowed to reenter thetube 20 via the opened venting means. Upon completion or partial completion of the draining of thetube 20, thecylinder 8 is activated to fully withdraw the shaft 1 to the position illustrated in Figure 1. The rearward surface of thesleeve ring 10 engages and retracts theshroud 19 against the action of the spring means 26 as the shaft 1 is withdrawn away from thetube 20. - Since the
elastomeric seal 11 and thegasket ring 24 are the components of the apparatus most susceptible to wear and damage, they are designed to be easily accessible for rapid replacement during maintenance. Therod ring 9 is internally threaded upon the forward end of therod 2 and theelastomeric ring 11 andsleeve ring 10 slip over therod 2. Theelastomeric ring 11 is easily replaced by simply removing therod ring 9. A slidingkey 28 is provided engaging therod 2 andsleeve 3 in order to prevent rotational displacement of thesleeve 3 relative to therod 2 during removal of therod ring 9. Such rotational displacement may induce torsional stresses in theelastomeric ring 11 reducing its serviceable life. Thegasket ring 24 has an L-shaped cross section in order to flexibly engage a mating gasket groove in the forward end of theshroud 19, likewise for rapid replacement. - Additionally, the apparatus may be rapidly adapted to accommodate a range of tube opening 21 sizes by simply changing the
rod ring 9, elastomeric ring andsleeve ring 10 to the desired size. The area of theexterior face 23 enveloped by theshroud 19 andgasket ring 24 may be increased by simply installingshrouds 19 of larger size to accommodatetubes 20 havinglarger openings 21. - Referring to Figure 7, a second embodiment of the invention is illustrated wherein the tube sealing means are adapted to engage and seal the outer surface of the
tube 20. Thetube 20 projects beyond thedie face 23 providing an outer surface available for sealing. - In light of the above detailed description of the first and second embodiments it is unnecessary to describe in detail the like components of the third embodiment. Like components in Figure 7 are identified with the subscripts "a" and "b", and perform like functions.
- Referring to Figure 7, the tube sealing means comprise outer sealing means adjacent the forward end of the shaft 1a for sealing the exterior of the
tube 20. In contrast to the other embodiments described above thesleeve ring 9a is forward of therod ring 7a. Therod ring 7a is connected to the forward end of therod 2a and has a forward radially extending face. Thesleeve ring 9a is connected to the forward end of thesleeve 3a and has a rearward radially extending face. Theelastomeric ring 11a is positioned between the forward face of therod ring 7a and the rearward face of thesleeve ring 9a. As described above displacing means are provided to axially displace therod 2a andsleeve 3a thereby radially expanding and contracting theelastomeric ring 11a to engage and disengage the exterior of thetube 20. - The
shroud 19 and the low pressure - high flow circuit operates identically as described above and therefore will not be described in detail in association with the third embodiment. Thestationary support 25a illustrated in Figure 7 differs slightly from thestationary support 25 in the other drawings in that the shroud is housed in and protected by thestationary support 25a when fully retracted. - The displacing means shown in Figure 7 differ significantly from that of the first and second embodiments. The displacing means comprise rod backstop means, comprising two oppositely radially
movable blocks 13a, which move inwardly toward the longitudinal axis after the shaft 1a has been advanced into engagement with the exterior of thetube 20. Therod backstop blocks 13a engage the rearward end of therod 2a to prevent rearward movement of therod 2a as the shaft reciprocating means rearwardly withdraws thesleeve 3a to seal the exterior of thetube 20. The rearward end of therod 2a includes an annularrod stop ring 16a protruding outwardly of therod 2a to engage therod backstop blocks 13a. - As described above it is desirable to limit the degree of compression of the
elastomeric ring 11a. To this end sleeve limiting means are provided for limiting the extent to which thesleeve 3a may be withdrawn to seal the exterior of thetube 20 after the shaft 1a has been advanced to engage the exterior of thetube 20 and therod backstop blocks 13a have engaged the rearward end of therod 2a. Referring to Figure 7 the sleeve limiting means comprises asleeve backstop ring 15a protruding from therod 2a rearward of thesleeve 3a and forward of therod stop ring 16a. Thesleeve backstop ring 15a is threaded upon therod 2a in order to adjust its position thereby determining the degree of compression. - Referring to Figure 7, the
shroud 19 and shaft 1a are fully retracted. The forward end of thesleeve 3a within theshroud 19 is of enlarged diameter forming ashoulder 28a which abuts and engages the forward inner surface of theshroud 19 under the biasing action of thesprings 26. The shaft reciprocating means comprise two double actinghydraulic cylinders beam 29. Thebeam 29 is centrally connected to the rearward end of thesleeve 3a byfasteners 30. Thecylinders stationary members cylinders cylinders sleeve 3a forward. Thesleeve 3a has a forwardinner shoulder 31 which abuts the rearward end of therod ring 7a forcing therod 2a forward. Theelastomeric ring 11a is therefore not subjected to any tensile or compressive force as a result. - The
gasket ring 24 at the forward end of theshroud 19 seals theexternal surface 23 and thetube 20 is filled with fluid by the low pressure - high flow circuit as described above. - When filling of the
tube 20 with low pressure fluid is substantially completed, the shaft 1 is fully advanced such that the outer tube sealing means is positioned about the rearward end of thetube 20. Therod stop ring 16a is as a result advanced forward of therod backstop blocks 13a. Therod backstop blocks 13a are moved radially inwardly to engage the rearward face of therod stop ring 16a and to prevent to therod 2a from moving rearwardly. Thecylinders sleeve 3a rearwardly. Theelastomeric ring 11a is compressed between the rearward face of thesleeve ring 9a and the forward face of therod ring 7a such that theelastomeric ring 11a radially expands sealing the exterior surface of the tube. The retraction of thesleeve 3a is limited when the rearward end of thesleeve 3a abuts the forward face of thesleeve backstop ring 15a which is positioned upon thestationary rod 2a. Thegap 32 between the rearward end of thesleeve 3a andsleeve backstop ring 15a therefore determines the degree of compression of theelastomeric ring 11a. The high pressure fluid means are then activated to further fill and pressurize thetube 20 as described above. Upon completion of the pressurization process the above sequence of operations is reversed in a manner which need not be fully described in light of the above detailed description. - The
elastomeric ring 11a is of larger inner dimension than the sleeve and rod rings 9a and 7a and is nested inwardly between the rod and sleeve rings 7a and 9a to protect it during operation from cutting or abrading on the tube's rearward end. To aid in placing the outer tube sealing means about the tube's end and to allow for misalignment of thetube 20, the inner dimensions of thesleeve ring 9a are preferably greater than the inner dimensions of therod ring 7a, and the inner forward edges of thesleeve ring 9a are rounded.
Claims (21)
- An apparatus for filling a tube (20) with fluid comprising a first connection for a fluid at low pressure for filling the tube (20) and a second connection for a fluid at high pressure for pressurising the tube (20); characterised in that the high pressure connection includes a shaft (1), having a longitudinal bore (4) for communicating with a high pressure fluid source, tube sealing means (11; 11a), adjacent a forward end of the shaft (1), for sealing the tube (20) when the shaft (1) is advanced into engagement with the tube (20), shaft reciprocating means (8, 8a, 8b) for advancing and retracting the forward end of the shaft (1) into and out of engagement with the tube (20); and the low pressure connection includes a forwardly open shroud (19), housing the forward end of the shaft (1) when withdrawn, and having a rearward opening slidably engaging the forward end of the shaft (1) rearward of the tube sealing means (11; 11a), the interior of the shroud (19) communicating with a low pressure fluid source, external sealing means (24) being provided about the forward end of the shroud (19), for sealing against an external surface (23) surrounding an end of the tube (20), shroud reciprocating means (25, 26) being provided for advancing and retracting the shroud (19) forward and away from the external surface (23), low pressure fluid control means, communicating with the low pressure fluid source (18), for filling the tube (20) with fluid when the shroud (19) is advanced and the external sealing means (24) seals the external surface (23) before advancing the shaft (1), and for draining fluid from the tube (20) after retraction of the shaft (1), and high pressure fluid control means, communicating with the high pressure fluid source (6), for further filling and pressurising the tube (20) when the shaft (1) is advanced into engagement with the tube (20) and the tube sealing means (11, 11a) seals the tube (20), and for depressurising the tube (20) before the shaft (1) is retracted.
- An apparatus according to Claim 1 characterised in that the external sealing means (24) comprises a gasket ring.
- An apparatus according to Claim 1 or 2 characterised in that the shaft (1) has a radially outwardly extending abutment surface (10) inwardly of the shroud (19), and the shroud reciprocating means comprises a stationary support (25) and biasing means (26), between the stationary support (25) and the shroud (19), for biasing the shroud (19) forwardly towards the external surface (23), as the shaft reciprocating means (8) moves forwardly to advance the shaft (1) into engagement with the tube (20), and the radially extending abutment surface (10) engages and retracts the shroud (19) against the action of the biasing means (26) when the shaft (1) is retracted away from the tube (20).
- An apparatus according to any one of the preceding claims characterised in that the shaft reciprocating means (8) comprise a double acting hydraulic cylinder connected between the rearward end (5) of said shaft (1) and a stationary member (12), the cylinder (8) acting in a direction parallel to said axis.
- An apparatus according to any one of the preceding claims characterised in that the shaft (1) comprises a rod (2) having a longitudinal bore (4) for communicating with a fluid source (6), and a sleeve (3) outwards of the rod (2), a rod ring (9) being connected to a forward end of the rod (2) and a sleeve ring (10) being connected to a forward end of the sleeve (3); an elastomeric ring (11, 11a) is located between the rod ring (9) and the sleeve ring (10), the elastomeric ring (11, 11a) having an annular surface for sealingly engaging a surface of the tube (20); and means (13, 15) for axially displacing the rod (2) and the sleeve (3) relative to each other, whereby the elastomeric ring (11, 11a) is axially compressed or decompressed, the elastomeric ring (11, 11a) expanding and contracting radially to engage and disengage the tube (20), and wherein the rod ring (9) and sleeve ring (10) have a greater radial extent than the elastomeric ring (11, 11a) adjacent its annular surface, whereby the annular surface of the elastomeric ring (11, 11a) is normally nested inwardly between the rod and sleeve rings (9 and 10) and extends radially beyond the rod and sleeve rings (9 and 10) when the elastomeric ring (11, 11a) is compressed between the rod and sleeve rings (9 and 10).
- An apparatus according to Claim 5 characterised in that the tube sealing means (11) is adapted to seal the inner surface of a tube (20), the rod ring (9) and sleeve ring (10) being disposed forwardly and rearwardly of the elastomeric ring (11), respectively, and the annular surface of the elastomeric ring (11) extends radially outwardly to engage the inner surface of the tube (20) when the elastomeric ring (11) is compressed between the rod and sleeve rings (9 and 10).
- An apparatus according to Claim 6 characterised in that the means (13, 15) for displacing the rod (2) relative to the sleeve (3) comprise sleeve backstop means (13) moving radially inwardly towards the axis, after the shaft (1) has been inserted into the tube (20), to engage the rearward end (15) of the sleeve (3) to prevent rearward movement of the sleeve (3) as the shaft reciprocating means (8) rearwardly withdraws the rod (2) to seal the inner surface of the tube (20).
- An apparatus according to Claim 7 characterised in that the rearward end of the sleeve includes an annular sleeve stop ring (15) protruding outwardly of the sleeve (3) and wherein the sleeve backstop means comprises two oppositely radially movable blocks (13) having a semi-annular inner surface through which the shaft (1) extends.
- An apparatus according to Claim 7 or 8 characterised by rod limiting means (16) for limiting the extent to which the rod (2) may be withdrawn to seal the interior of the tube (20) after the shaft (1) has been inserted into the tube (20) and the sleeve backstop means (13) have engaged the rearward end (15) of the sleeve (3), the rod limiting means (16) comprising a rod abutment protruding from the rod (2) rearward of the sleeve (3), and rod backstop means (13) for moving radially inwardly to engage a rearward face of the rod abutment (16).
- An apparatus according to Claim 9 characterised in that the rod abutment (16) comprises a rod stop member threadedly and adjustably engaging the rod (2).
- An apparatus according to Claim 9 or 10 characterised in that the rod backstop means (13) comprises two semi-annular interior grooves in the semi-annular inner surface and the rod stop member (16) is a ring receivable in the grooves.
- An apparatus according to any of Claims 6 to 11 characterised in that the annular surface of the elastomeric ring (11) is an outermost surface, and the width dimension of the outermost surface of the rod ring (9) is less than the dimension of the outermost surface of the sleeve ring (10), and the outermost surface of the elastomeric ring (11) is of smaller dimension than the outermost surfaces of the rod and sleeve rings (9 and 10).
- An apparatus according to any of Claims 6 to 12 characterised in that the rod ring (9) has outer forward edges which are convexly rounded.
- An apparatus according to Claim 5 characterised in that the tube sealing means (11a) is adapted to seal the outer surface of the tube (20), the sleeve ring (9a) and rod ring (7a) are disposed forwardly and rearwardly of the elastomeric ring (11a), respectively, and the annular surface of said elastomeric ring (11a) extends radially inwardly to engage an outer surface of the tube (20) when compressed between the sleeve and rod rings (9a and 7a).
- An apparatus according to Claim 14 characterised in that the displacing means comprises rod backstop means (13a) moving radially inwardly toward the axis, after the shaft (1a) has been advanced into engagement with the outer surface of the tube (20), to engage the rearward end (16a) of the rod (2a) to prevent rearward movement of the rod (2a) as the shaft reciprocating means (8a, 8b) rearwardly withdraws the sleeve (3a) to seal the outer surface of the tube (20).
- An apparatus according to Claim 15 characterised in that the rearward end of the rod (2a) includes an annular rod stop ring (16a) protruding outwardly of the rod (2a) and wherein the rod backstop means (13a) comprises two oppositely radially movable blocks.
- An apparatus according to Claim 15 or 16 characterised by sleeve limiting means (15a) for limiting the extent to which the sleeve (3a) may be withdrawn to seal the exterior of the tube (20) after the shaft (1a) has been advanced to engage the exterior of the tube (20) and said rod backstop means (13a) have engaged the rearward end of the rod (2a), the sleeve limiting means comprising a sleeve backstop ring (15a) protruding from the rod (2a), rearward of the sleeve (3a) and forward of the rearward end (16a) of the rod (2a).
- An apparatus according to Claim 17 characterised in that the sleeve backstop ring (15a) threadedly and adjustably engages the rod (2a).
- An apparatus according to any of Claims 14 to 18 characterised in that the inner dimension of the sleeve ring (9a) is greater than the inner dimension of the rod ring (7a), and the elastomeric ring (11a) is of larger inner dimension than the sleeve and rod rings (9a and 7a).
- An apparatus according to any of Claim 14 to 19 characterised in that the sleeve ring (9a) has convexly rounded inner forward edges.
- An apparatus according to any of Claims 14 to 20 characterised in that the shaft reciprocating means (8a, 8b) comprises two double acting hydraulic cylinders (8a, 8b) each engaging a beam (29) centrally connected between the rearward end of the sleeve (3a) and a stationary member (12a, 12b), the cylinders (8a, 8b) acting in a direction parallel to said axis.
Priority Applications (13)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
DK96202318T DK0740970T3 (en) | 1992-04-10 | 1992-04-10 | Sealing head for pipe expansion apparatus |
DE69231165T DE69231165T2 (en) | 1992-04-10 | 1992-04-10 | Sealing head for a device for expanding a pipe |
ES96202318T ES2146833T3 (en) | 1992-04-10 | 1992-04-10 | SEALING HEAD FOR TUBE EXPANSION DEVICE. |
ES92303228T ES2099210T3 (en) | 1992-04-10 | 1992-04-10 | CLOSING HEAD FOR PIPE DILATOR DEVICE. |
AT92303228T ATE149890T1 (en) | 1992-04-10 | 1992-04-10 | SEAL HEAD FOR A DEVICE FOR EXPANDING A PIPE |
DK92303228.8T DK0564732T3 (en) | 1992-04-10 | 1992-04-10 | Sealing head for pipe extension apparatus. |
PT96202318T PT740970E (en) | 1992-04-10 | 1992-04-10 | SEAL CABLES FOR TUBE EXPANSION APPLIANCES |
DE69218176T DE69218176T2 (en) | 1992-04-10 | 1992-04-10 | Sealing head for a device for expanding a pipe |
AT96202318T ATE193665T1 (en) | 1992-04-10 | 1992-04-10 | SEAL HEAD FOR A DEVICE FOR EXPANDING A PIPE |
EP92303228A EP0564732B1 (en) | 1992-04-10 | 1992-04-10 | Seal head for tube expansion apparatus |
EP96202318A EP0740970B1 (en) | 1992-04-10 | 1992-04-10 | Seal head for tube expansion apparatus |
GR970401115T GR3023466T3 (en) | 1992-04-10 | 1997-05-16 | Seal head for tube expansion apparatus |
GR20000401913T GR3034228T3 (en) | 1992-04-10 | 2000-08-17 | Seal head for tube expansion apparatus |
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
EP92303228A EP0564732B1 (en) | 1992-04-10 | 1992-04-10 | Seal head for tube expansion apparatus |
Related Child Applications (2)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
EP96202318A Division EP0740970B1 (en) | 1992-04-10 | 1992-04-10 | Seal head for tube expansion apparatus |
EP96202318.0 Division-Into | 1992-04-10 |
Publications (2)
Publication Number | Publication Date |
---|---|
EP0564732A1 EP0564732A1 (en) | 1993-10-13 |
EP0564732B1 true EP0564732B1 (en) | 1997-03-12 |
Family
ID=8211325
Family Applications (2)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
EP96202318A Expired - Lifetime EP0740970B1 (en) | 1992-04-10 | 1992-04-10 | Seal head for tube expansion apparatus |
EP92303228A Expired - Lifetime EP0564732B1 (en) | 1992-04-10 | 1992-04-10 | Seal head for tube expansion apparatus |
Family Applications Before (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
EP96202318A Expired - Lifetime EP0740970B1 (en) | 1992-04-10 | 1992-04-10 | Seal head for tube expansion apparatus |
Country Status (7)
Country | Link |
---|---|
EP (2) | EP0740970B1 (en) |
AT (2) | ATE149890T1 (en) |
DE (2) | DE69231165T2 (en) |
DK (2) | DK0740970T3 (en) |
ES (2) | ES2146833T3 (en) |
GR (2) | GR3023466T3 (en) |
PT (1) | PT740970E (en) |
Families Citing this family (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US5445002A (en) * | 1993-08-16 | 1995-08-29 | Ti Corporate Services Limited | Fill and pressurization apparatus |
US5709116A (en) * | 1996-02-29 | 1998-01-20 | General Electric Company | Hydraulic crimper and bolt assembly |
ES2336646T3 (en) * | 2000-09-18 | 2010-04-15 | ROTHMANS, BENSON & HEDGES INC. | LOW EMISSION CIGARETTE OF SECONDARY CURRENT SMOKE WITH FUEL PAPER. |
Family Cites Families (6)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US2299434A (en) * | 1941-05-05 | 1942-10-20 | Svirsky Bennett | Plumber's pipe testing device |
US2837810A (en) * | 1955-06-17 | 1958-06-10 | Flexonics Corp | Method of producing fittings |
US3359624A (en) * | 1965-11-29 | 1967-12-26 | Gray Tool Co | Pipe lining method |
US3963054A (en) * | 1974-08-01 | 1976-06-15 | Martin Carlyle J | Seal assemblies for water-well casings |
US3998245A (en) * | 1974-08-01 | 1976-12-21 | Martin Carlyle J | Seal assemblies for water well casings |
DE2709633C3 (en) * | 1976-03-26 | 1981-04-23 | Combustion Engineering, Inc., 06095 Windsor, Conn. | Device for fastening a sleeve in a pipeline |
-
1992
- 1992-04-10 DE DE69231165T patent/DE69231165T2/en not_active Expired - Fee Related
- 1992-04-10 AT AT92303228T patent/ATE149890T1/en not_active IP Right Cessation
- 1992-04-10 AT AT96202318T patent/ATE193665T1/en not_active IP Right Cessation
- 1992-04-10 DK DK96202318T patent/DK0740970T3/en active
- 1992-04-10 PT PT96202318T patent/PT740970E/en unknown
- 1992-04-10 DK DK92303228.8T patent/DK0564732T3/en active
- 1992-04-10 EP EP96202318A patent/EP0740970B1/en not_active Expired - Lifetime
- 1992-04-10 ES ES96202318T patent/ES2146833T3/en not_active Expired - Lifetime
- 1992-04-10 EP EP92303228A patent/EP0564732B1/en not_active Expired - Lifetime
- 1992-04-10 ES ES92303228T patent/ES2099210T3/en not_active Expired - Lifetime
- 1992-04-10 DE DE69218176T patent/DE69218176T2/en not_active Expired - Fee Related
-
1997
- 1997-05-16 GR GR970401115T patent/GR3023466T3/en unknown
-
2000
- 2000-08-17 GR GR20000401913T patent/GR3034228T3/en not_active IP Right Cessation
Also Published As
Publication number | Publication date |
---|---|
GR3023466T3 (en) | 1997-08-29 |
DE69218176D1 (en) | 1997-04-17 |
EP0740970A3 (en) | 1998-01-14 |
ATE193665T1 (en) | 2000-06-15 |
PT740970E (en) | 2000-09-29 |
DE69231165T2 (en) | 2000-11-16 |
DK0740970T3 (en) | 2000-10-09 |
GR3034228T3 (en) | 2000-12-29 |
EP0564732A1 (en) | 1993-10-13 |
EP0740970A2 (en) | 1996-11-06 |
DE69218176T2 (en) | 1997-06-19 |
ES2099210T3 (en) | 1997-05-16 |
DE69231165D1 (en) | 2000-07-13 |
DK0564732T3 (en) | 1997-09-22 |
EP0740970B1 (en) | 2000-06-07 |
ATE149890T1 (en) | 1997-03-15 |
ES2146833T3 (en) | 2000-08-16 |
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