The present invention relates to a watertight testing device used for a watertight test of a pipe joint part provided with a seal member between the inner surface of a socket and the outer surface of a spigot with the spigot inserted into the socket.
Conventionally, as illustrated in, for example,
The water filling pipe 208 is a pipe for filling a test space 207 with water from the inside of the cylindrical body 201. The test space 207 is formed between the outer surface of the cylindrical body 201 and the inner surfaces of the pipes 202 and 204 in a pipe diameter direction B and between the first water-stop bag 203 and the second water-stop bag 205 in a pipe axial direction A.
With this configuration, as illustrated in
Thereafter, the test space 207 is filled with water from the water filling pipe 208, and then a watertight test is conducted on the pipe joint part 200 by checking the presence or absence of water leakage from an elastic seal member 209 of the pipe joint part 200.
After the completion of the watertight test, water in the test space 207 is drained, compressed air in the first and second water-stop bags 205 is exhausted from the injection pipe 206, the first and second water-stop bags 205 are shrunk as illustrated in
See Japanese Patent Laid-Open No. 2013-40866 for a description of such a watertight testing device.
In the conventional form, however, if the first and second water-stop bags 203 and 205 are thin and one of the first and second water-stop bags 203 and 205 is broken when being handled, one of the first and second water-stop bag 203 and 205 may be easily holed. The holed first or second water-stop bag 203 or 205 is not sufficiently expanded, disadvantageously reducing sealing performance between the outer surface of the cylindrical body 201 and the inner surfaces of the pipes 202 and 204.
If the first and second water-stop bags 203 and 205 are increased in thickness to be hardly holed, the first and second water-stop bags 203 and 205 are less likely to be deformed and expanded. Unfortunately, this may reduce sealing performance between the outer surface of the cylindrical body 201 and the inner surfaces of the pipes 202 and 204 when a watertight test is conducted.
An object of the present invention is to provide a watertight testing device that can improve sealing performance between the outer surface of a core and the inner surface of a pipe when a watertight test is conducted.
A watertight testing device for conducting a watertight test on a pipe joint part according to the present invention, in which a socket of one pipe receives an inserted spigot of the other pipe, the pipe joint part being provided with a seal member between the inner surface of the socket and the outer surface of the spigot, the watertight testing device including:
According to the watertight testing device of the present invention, it is preferable that the first seal-member insertion space is reduced in the pipe diameter direction along a pressing direction of the first seal member,
According to the watertight testing device of the present invention, it is preferable that the moving device moves the first pressing member and the second pressing member in a pressing direction that moves the pressing members toward each other in the pipe axial direction and a release direction that moves the pressing members away from each other in the pipe axial direction.
According to the watertight testing device of the present invention, it is preferable that the first seal member and the first pressing member are engaged with each other in the pipe axial direction, and
According to the watertight testing device of the present invention, it is preferable that the moving device includes a movable rod that is attached to one of the first pressing member and the second pressing member and is movable in the pipe axial direction, a receiving member provided on the movable rod, and an extendable drive that is extendable in the pipe axial direction,
According to the watertight testing device of the present invention, it is preferable that when the first and second pressing members each move in the release direction and return to a release position, the first and second seal members are released, and
The watertight testing device of the present invention further includes a plurality of wheels for movement in one of the pipes and the other pipe,
As has been discussed, according to the present invention, the core is set in the pipe joint part, and the moving device moves the first and second pressing members in the pipe axial direction, so that the first pressing member presses and compresses the first seal member into the first seal-member insertion space, and the second pressing member presses and compresses the second seal member into the second seal-member insertion space. Thus, the compressed first seal member provides sufficient sealing between the outer surface of the core and the inner surface of the one pipe, and the compressed second seal member provides sufficient sealing between the outer surface of the core and the inner surface of the other pipe, thereby improving seal performance between the outer surface of the core and the inner surface of the pipe.
Thereafter, the test fluid is fed into the test space by the test fluid feeder, and a watertight test is conducted on the pipe joint part by checking, for example, the presence or absence of leakage of the test fluid from the seal member of the pipe joint part.
Embodiments of the present invention will be described below with reference to the accompanying drawings.
In a first embodiment, as illustrated in
As illustrated in
The lock-ring storage groove 7 accommodates a lock ring 11 for preventing removal. In the seal-member attachment recess 8, an annular seal member 12 made of an elastic material such as rubber is attached. The seal member 12 is interposed between the inner surface of the socket 3 and the outer surface of the spigot 5 and is compressed in a pipe diameter direction B. This provides sealing between the socket 3 and the spigot 5.
Reference numeral 21 denotes a watertight testing device of the pipe joint 1. The watertight testing device 21 is configured as follows:
The watertight testing device 21 includes a core 22, first and second seal members 23 and 24, first and second pressing members 25 and 26, a moving device 27, a test fluid feeder 28, and a support member 29.
As illustrated in
The body 32 has an extended part 37, which extends outward in the pipe diameter direction B, at the center in the pipe axial direction A. The outer diameter of the extended part 37 is set larger than the outer diameters of both ends 38 and 39 of the body 32 in the pipe axial direction A. As illustrated in
The support plates 33 and 34 are opposed to each other in the pipe axial direction A. The short pipe 35 is disposed at the center in the body 32 such that the body 32 and the short pipe 35 are coaxially arranged.
The first seal member 23 is an annular member made of an elastic material such as rubber and provides sealing between the outer surface of the core 22 and the inner surface of the one pipe 2. The second seal member 24 is an annular member made of an elastic material such as rubber and provides sealing between the outer surface of the core 22 and the inner surface of the other pipe 4.
The first and second seal members 23 and 24 each have a valve part 30 circular in cross section and a proximal-end part 31 rectangular in cross section. The hardness of the proximal-end part 31 is set higher than that of the valve part 30. The first and second seal members 23 and 24 each have an engagement recess 44 circumferentially formed on the outer surface of the proximal-end part 31.
Between the outer surface of the core 22 and the inner surface of the one pipe 2, a first seal-member insertion space 46 is circumferentially formed. Between the outer surface of the core 22 and the inner surface of the other pipe 4, a second seal-member insertion space 47 is circumferentially formed.
As illustrated in
As illustrated in
In a part where the tapered surface 40 is formed, the first seal-member insertion space 46 is reduced in the pipe diameter direction B along a pressing direction C of the first seal member 23. Moreover, in a part where the tapered surface 41 is formed, the second seal-member insertion space 47 is reduced in the pipe diameter direction B along a pressing direction C of the second seal member 24. Thus, as illustrated in
As illustrated in
The moving device 27 moves the first pressing member 25 and the second pressing member 26 in the pressing direction C (
As illustrated in
The movable rod 55 is a cylindrical member that is inserted from the second pressing member 26 into the short pipe 35, penetrates the core 22, is inserted into the short cylinder 52, is inserted into the first pressing member 25, and penetrates the backside of the first pressing member 25 on the opposite side from the second pressing member 26. The receiving member 56 is opposed to the backside of the first pressing member 25 in the pipe axial direction A. The double-acting jacks 57 are attached between the first pressing member 25 and the receiving member 56.
The double-acting jack 57 includes a jack body 60 and an extendable plunger 61. The jack body 60 is attached to the receiving member 56 while the tip of the plunger 61 is attached to the first pressing member 25.
As illustrated in
Two of the leg frames 64 are provided at 90° from each other on each end of the shaft body 63 in a pipe circumferential direction E. As illustrated in
As illustrated in
As illustrated in
As illustrated in
When the watertight testing device 21 is set in the pipe joint 1, a test space 71 is circumferentially formed between the outer surface of the core 22 and the inner surfaces of the pipes 2 and 4 in the pipe diameter direction B and between the first seal member 23 and the second seal member 24 in the pipe axial direction A. The test space 71 communicates with the seal-member attachment recess 8 via a gap 73 between the rear end of the socket 3 and the distal end of the spigot 5.
As illustrated in
Connected to the upper part of the inner periphery of the body 32 of the core 22 is an air bleeding hose 78 for bleeding air in the test space 71. As illustrated in
A watertight test method for conducting a watertight test on the pipe joint 1 by using the watertight testing device 21 will be described below.
As illustrated in
Thereafter, as illustrated in
Thus, as illustrated in
At this point, the first and second seal-member insertion spaces 43 and 44 are reduced in the formation parts of the tapered surfaces 40 and 41 in the pipe diameter direction B. Thus, the first seal member 23 is compressed in the pipe diameter direction B while being pressed into the first seal-member insertion space 46, whereas the second seal member 24 is compressed in the pipe diameter direction B while being pressed into the second seal-member insertion space 47. This can easily and securely compress the first and second seal members 23 and 24.
Thereafter, the hydraulic pump 75 is driven to feed the water 72 into the test space 71 from the feeding hose 74. This fills the seal-member attachment recess 8 with the water 72, which is fed into the test space 71, through the gap 73 while bleeding air in the test space 71 and the seal-member attachment recess 8 through the air bleeding hose 78. In a state where the test space 71 and the seal-member attachment recess 8 are filled with the water 72 at a predetermined pressure, a watertight test is conducted on the pipe joint 1 by checking, for example, the presence or absence of leakage of the water 72 from the seal member 12.
After the completion of the watertight test, the water 72 in the test space 71 and the seal-member attachment recess 8 is drained. Thereafter, as illustrated in
At this point, the first seal member 23 is engaged with the first pressing member 25 via the engagement recess 44 and the engagement protrusion 53 and thus securely moves integrally with the first pressing member 25 in the release direction D. This releases the first seal member 23.
The second seal member 24 is engaged with the second pressing member 26 via the engagement recess 44 and the engagement protrusion 53 and thus securely moves integrally with the second pressing member 26 in the release direction D. This releases the second seal member 24.
When the first pressing member 25 returns to the release position P2, the disk part 51 of the first pressing member 25 comes into contact with the heads 69a of the moving-range regulating members 69. When the second pressing member 26 returns to the release position P2, the disk part 51 of the second pressing member 26 comes into contact with the heads 69a of the moving-range regulating members 69.
This can prevent the first and second pressing members 25 and 26 from excessively moving beyond the release position P2 in the release direction D. Thus, the first and second pressing members 25 and 26 can be easily and accurately returned to the release position P2.
The hardness of the proximal-end parts 31 of the first and second seal members 23 and 24 is set higher than that of the valve part 30, and the engagement recess 44 is formed on the proximal-end part 31. Thus, the proximal-end parts 31 are hardly deformed when the first and second seal members 23 and 24 move, thereby securely moving the first and second seal members 23 and 24.
Thereafter, by pushing and pulling the operation bar 66, the watertight testing device 21 is moved in the pipe axial direction A and is collected from the inside of the pipe joint 1. At this point, as illustrated in
In the watertight testing device 21, the first and second pressing members 25 and 26 can be moved in the pressing direction C and the release direction D by using the double-acting jacks 57 shared by the first and second pressing members 25 and 26, thereby reducing the kinds and the number of double-acting jacks 57.
In the first embodiment, as illustrated in
In the first embodiment, as illustrated in
In the second embodiment, as illustrated in
In the foregoing embodiments, as illustrated in
In the foregoing embodiments, the double-acting jack 57 is an example of an extendable drive. Multiple single-acting jacks in different orientations may be used instead. Alternatively, a hydraulic cylinder or the like may be used.
In the foregoing embodiments, the feeding hose 74 and the air bleeding hose 78 are connected to the core 22. The hoses may be replaced with a pipe arrangement or the like.
Number | Date | Country | Kind |
---|---|---|---|
2019-055792 | Mar 2019 | JP | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/JP2020/012958 | 3/24/2020 | WO |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2020/196496 | 10/1/2020 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
2481013 | Henderson | Sep 1949 | A |
3194310 | Loomis | Jul 1965 | A |
3760632 | Illyes | Sep 1973 | A |
3762446 | Tungseth | Oct 1973 | A |
3779068 | Forsythe | Dec 1973 | A |
4070904 | VanderLans | Jan 1978 | A |
4132111 | Hasha | Jan 1979 | A |
4136552 | Hasha | Jan 1979 | A |
4194389 | Laging | Mar 1980 | A |
4570485 | Lee, Jr. | Feb 1986 | A |
4577488 | Broadus | Mar 1986 | A |
4582551 | Parkes | Apr 1986 | A |
4646787 | Rush | Mar 1987 | A |
4852393 | Pate | Aug 1989 | A |
4890483 | Vetter | Jan 1990 | A |
5066208 | Warmerdam | Nov 1991 | A |
5209105 | Hasha | May 1993 | A |
5287893 | Elgar | Feb 1994 | A |
5295760 | Rowe | Mar 1994 | A |
5495750 | Dufresne | Mar 1996 | A |
5563336 | Mallet | Oct 1996 | A |
6026675 | Jansch | Feb 2000 | A |
6032515 | Huber | Mar 2000 | A |
6073481 | Barefoot | Jun 2000 | A |
6339953 | Ashworth | Jan 2002 | B1 |
6467336 | Gotowik | Oct 2002 | B1 |
6601437 | Gotowik | Aug 2003 | B2 |
6655413 | Condon | Dec 2003 | B2 |
7118137 | Deremiah | Oct 2006 | B2 |
7240697 | Beebe | Jul 2007 | B2 |
7523644 | Van Winkle | Apr 2009 | B2 |
7766341 | Okumura | Aug 2010 | B2 |
8739607 | Slack | Jun 2014 | B2 |
9217526 | Eccleston | Dec 2015 | B2 |
9463923 | Noyon | Oct 2016 | B2 |
9488302 | Gjerstad | Nov 2016 | B2 |
9631990 | Sun | Apr 2017 | B2 |
10006570 | Yoda | Jun 2018 | B2 |
10024753 | Rhee | Jul 2018 | B2 |
10119882 | Van Nest | Nov 2018 | B2 |
10393614 | Miller | Aug 2019 | B2 |
10416037 | Miller | Sep 2019 | B2 |
11118715 | Al Otaibi | Sep 2021 | B2 |
11467056 | Meehan | Oct 2022 | B2 |
11549622 | Choi | Jan 2023 | B2 |
11561151 | Van Nest | Jan 2023 | B2 |
20130213121 | Sundholm | Aug 2013 | A1 |
Number | Date | Country |
---|---|---|
06-221952 | Aug 1994 | JP |
08-062088 | Mar 1996 | JP |
08-062089 | Mar 1996 | JP |
H08-261867 | Oct 1996 | JP |
2013-040866 | Feb 2013 | JP |
5722729 | May 2015 | JP |
2017-007520 | Jan 2017 | JP |
Entry |
---|
Extended European Search Report issued in European Patent Application No. 20779967.7 dated Apr. 22, 2002. |
International Search Report from corresponding International Patent Application No. PCT/JP2020/012958, dated Jun. 30, 2020. |
Office Action issued in corresponding Japanese Patent Application No. 202080023836.7 dated Jan. 26, 2024. |
Office Action issued in corresponding Chinese Patent Application No. 202080023836.7 dated Jan. 26, 2024 along with the English-language translation. |
Number | Date | Country | |
---|---|---|---|
20220196509 A1 | Jun 2022 | US |