The present disclosure relates to a sealing device and a method of assembling the same.
Recently, the automobile industry has been actively developing fuel-efficient vehicles in consideration of environmental problems. For the purpose of improving the fuel performance, what has been developed is a flow control valve which controls fluid such as oil or coolant. The flow control valve is equipped with a valve-use seal.
A conventionally known valve-use seal is a sealing device 111 shown in
Note that, the outer surface 121a of the valve rotor 121 is often a spherical or cylindrical surface. Correspondingly, the front-end surface 113a of the seal ring 113 is also a spherical or cylindrical surface.
As shown in
On the other hand, in Patent Literature 1, the packing 114 is mounted on a packing mounting groove 112b which is formed at an inner circumferential surface 112a of the housing 112. Accordingly, in assembling the sealing device 111, as shown in
That is, in inserting the seal ring 113 into the inner circumference of the housing 112, the packing 114 is already mounted on the packing mounting groove 11b. Accordingly, the inserting the seal ring 113 is associated with insert resistance attributed to the elasticity of the insert resistance packing 114. Furthermore, in the subsequent step, in an attempt to accurately align the center axis of the cylindrical surface which is the front-end surface 113a of the seal ring 113 with the center axis of the cylindrical surface which is the outer surface 121a of the valve rotor 121, rotating the seal ring 113 relative to the housing 112 in the ring circumferential direction suffers rotation resistance attributed to the elasticity of the packing 114. These insert resistance and rotation resistance attributed to the elasticity of the packing 114 may be adverse to smooth assembly work.
An object of the present disclosure is to provide a sealing device and a method of assembling the same which are free from insert resistance and rotation resistance attributed to the elasticity of a packing and hence facilitate the assembly work.
A sealing device of the present disclosure includes:
a housing;
a seal ring configured to be axially displaceably inserted along an inner circumference of the housing, the seal ring including
a packing configured to establish sealing between the housing and the seal ring, the packing being disposed in the packing mounting space; and
spring means disposed on the rear-end surface side of the seal ring to elastically bias the seal ring toward the front-end surface side.
A method of assembling a sealing device of the present disclosure includes:
inserting a seal ring into an inner circumference of a housing;
subsequently, inserting a packing into packing mounting space defined by a rear-end surface of the seal ring, to establish sealing between the housing and the seal ring; and
subsequently, inserting, from the rear-end surface side of the seal ring, spring means configured to elastically bias the seal ring toward a front-end surface side of the seal ring.
The present disclosure is free from insert resistance and rotation resistance attributed to the elasticity of a packing and hence facilitates assembly work of a sealing device.
With reference to
The sealing device 11 includes a housing (seal housing) 12, a seal ring 13, a packing 14, and spring means 15. The housing 12 is sleeve-like, and has an inner circumferential surface 12a which is cylindrical. The seal ring 13 is inserted along the inner circumference of the housing 12 so as to be axially displaceable, and brought into slidably contact with the outer surface 21a of the valve rotor 21 at a front-end surface 13a (the upper end in
The seal ring 13 is formed of a member whose coefficients of friction is low, such as PTFE (polytetrafluoroethylene).
As shown in
At the rear-end surface 13b of the seal ring 13, an annular tapered surface 13d is formed. Thus, annular packing mounting space 13c for mounting the packing 14 is defined at the rear-end surface 13b of the seal ring 13. That is, the packing mounting space 13c is defined as space whose cross section is triangular. When the packing 14 is mounted on the packing mounting space 13c, the packing 14 is brought into contact with the tapered surface 13d of the seal ring 13 and the inner circumferential surface 12a of the housing 12, to establish sealing against the clearance c between the housing 12 and the seal ring 13.
Here, the seal ring 13 including the tapered surface 13d exhibits excellent moldability in the case where a powder material such as PTFE is packed into a mold assembly and molded.
In order to prevent the packing 14 from coming off from the packing mounting space 13c, the rear-end surface 13b of the seal ring 13 may be combined with a plate-like stopper ring 16. In this case, the spring means 15 elastically biases the seal ring 13 via the stopper ring 16. While not shown in the drawings, a stopper ring as a spring bearing for supporting the rear end of the spring means 15 may be subsequently combined with the inner circumference of the rear end of the housing 12.
Next, with reference to
The inserting the stopper ring 16 may be omitted.
After the inserting the spring means 15, the stopper ring may be inserted from the rear end side of the housing 12.
According to the present embodiment, the seal ring 13 is inserted before the packing 14 is mounted on the inner circumference of the housing 12. Thus, the inserting the seal ring 13 is free from insert resistance or rotation resistance attributed to the elasticity of the packing 14, which contributes to smooth assembly work of the sealing device 11.
With reference to
Specifically, the sealing device 11 according to the present embodiment is different from the first embodiment in the structure of the rear-end surface 13b of the seal ring 13. At the rear-end surface 13b of the seal ring 13 according to the present embodiment, an annular groove 13e having a quadrangular cross section is formed. That is, the packing mounting space 13c is defined as space whose cross section is quadrangular. When the packing 14 is mounted on the packing mounting space 13c, the packing 14 is brought into contact with the groove 13e of the seal ring 13 and the inner circumferential surface 12a of the housing 12, to establish sealing against the clearance c between the housing 12 and the seal ring 13.
Next, a description will be given of a method of assembling the sealing device 11 according to the present embodiment. Firstly, the seal ring 13 is inserted from the rear end side of the housing 12. Next, from the rear end side of the housing 12, the packing 14 is inserted into the packing mounting space (13c) defined by the groove 13e. Next, the stopper ring 16 is inserted from the rear end side of the housing 12. Finally, the spring means 15 is inserted from the rear end side of the housing 12.
The inserting the stopper ring 16 may be omitted.
After the inserting the spring means 15, the stopper ring may be inserted from the rear end side of the housing 12.
Similarly to the first embodiment, according to the present embodiment, the seal ring 13 is inserted before the packing 14 is mounted on the inner circumference of the housing 12. Thus, the inserting the seal ring 13 is free from insert resistance or rotation resistance attributed to the elasticity of the packing 14, which contributes to smooth assembly work of the sealing device 11.
Number | Date | Country | Kind |
---|---|---|---|
JP2018-042707 | Mar 2018 | JP | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/JP2019/001074 | 1/16/2019 | WO |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2019/171771 | 9/12/2019 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3037738 | Jackson | Jun 1962 | A |
3416808 | Voitik | Dec 1968 | A |
4268232 | Haupt | May 1981 | A |
4637421 | Stunkard | Jan 1987 | A |
4900039 | Klecker | Feb 1990 | A |
9617994 | Walters | Apr 2017 | B2 |
20080315144 | Thomas | Dec 2008 | A1 |
Number | Date | Country |
---|---|---|
11 2014 002 468 | Feb 2016 | DE |
1 486 934 | Sep 1977 | GB |
50-94532 | Jul 1975 | JP |
52-22681 | Jun 1977 | JP |
2015-96747 | May 2015 | JP |
Entry |
---|
Japan Official Action received in JP application No. 2020-504828, dated Oct. 20, 2020. |
International Search Report issued in International Patent Application No. PCT/JP2019/001074, dated Mar. 26, 2019, English translation. |
German Office action issued with respect to German Application No. 112019001237.1, dated Feb. 18, 2022 and partial English translation (as obtained from Google Translate). |
Number | Date | Country | |
---|---|---|---|
20200292081 A1 | Sep 2020 | US |