ANNULAR SEAL HAVING A GARTER SPRING FOR ESTABLISHING A MINIMUM INTERIOR DIAMETER AND SEAL PLUG INCLUDING THE SEAL
20200017259 ยท 2020-01-16
Inventors
Cpc classification
International classification
Abstract
An annular seal element includes a seal body having a radially inner surface and at least one seal lip extending radially outward from the seal body. There is an open, radially inwardly facing circumferential channel in the radially inner surface and a garter spring is disposed entirely within the circumferential channel. Also, a seal plug including the annular seal element.
Claims
1. A seal plug comprising: a plug body having a top, a bottom, and a cylindrical or truncated-cone shaped side wall extending from the top to the bottom and having an upper end adjacent the top and a lower end adjacent the bottom; a radially outwardly facing groove at the upper end of the side wall, the groove having a bottom and first and second sides extending radially outwardly from the groove bottom; an annular seal element in the groove, the seal element comprising a seal body having a radially inner surface facing the groove bottom and at least one seal lip extending radially outward from the seal body and from the groove, the radially inner surface of the annular seal element including a circumferential channel; and a garter spring in the circumferential channel and in the groove.
2. The seal plug according to claim 1, wherein the garter spring is a zero-gap garter spring.
3. The seal plug according to claim 2, wherein the garter spring is in a rest state.
4. The seal plug according to claim 1, wherein at least a portion of a radially inner side of the garter spring is spaced from the bottom of the groove along the entire circumference of the garter spring.
5. The seal plug according to claim 1, wherein the plug body is hollow and has an open top, a bottom wall at the lower end of the plug body and an interior at least partially defined by an inner surface of the cylindrical side wall.
6. The seal plug according to claim 5, wherein the bottom wall has a through opening.
7. The seal plug according to claim 2, wherein the entire garter spring is located radially outwardly of the radially inner surface.
8. The seal plug according to claim 1, wherein the groove is formed in an annular member connected to the upper end of the side wall by a flange.
9. The seal plug according to claim 3, wherein at least a portion of a radially inner side of the garter spring is spaced from the bottom of the groove along the entire circumference of the garter spring, wherein the plug body is hollow and has an open top, a bottom wall at the lower end of the plug body having a through opening, and an interior at least partially defined by an inner surface of the cylindrical side wall, wherein the entire garter spring is located radially outwardly of the radially inner surface, and wherein the groove is formed in an annular member connected to the upper end of the side wall by a flange.
10. An annular seal element comprising: a seal body having a radially inner surface and at least one seal lip extending radially outward from the seal body, the annular seal element including an open, radially inwardly facing circumferential channel in the radially inner surface; and a garter spring disposed entirely within the circumferential channel.
11. The annular seal element according to claim 10, wherein the garter spring is a zero-gap garter spring.
12. The annular seal element according to claim 11, wherein the garter spring is in a rest state.
13. The annular seal element according to claim 10, wherein the entire garter spring is located radially outwardly of the radially inner surface.
14. A seal plug comprising: a truncated-cone shaped side wall having an open upper end and a lower end; a radially outwardly facing groove at the upper end having a bottom and first and second sides extending radially outwardly from the groove bottom; and the annular seal element according to claim 10 in the groove.
15. A seal plug comprising: a side wall having an open upper end and an open lower end and a circular cross section; a radially outwardly facing groove at the upper end having a bottom and first and second sides extending radially outwardly from the groove bottom; an annular seal element in the groove, the seal element comprising a seal body having a radially inner surface facing the groove bottom and at least one seal lip extending radially outward from the seal body and from the groove, the annular seal element including a circumferential channel; and a zero-gap garter spring in the circumferential channel and in the groove.
16. The seal plug according to claim 15, including a bottom wall extending radially inward from the side wall at the lower end and having a through opening.
17. The seal plug according to claim 15, wherein the side wall has a shape of a truncated cone.
18. The seal plug according to claim 17, wherein the circumferential channel is open in a radially inward direction facing the groove bottom.
19. The seal plug according to claim 18, wherein at least a portion of a radially inner side of the garter spring is spaced from the bottom of the groove along the entire circumference of the garter spring.
20. The seal plug according to claim 19, wherein the garter spring is located entirely on a first side of the radially inner surface.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014] These benefits and others will be better appreciated after a reading of the following detailed description of an embodiment of the invention together with the attached drawings in which:
[0015]
[0016]
[0017]
[0018]
DETAILED DESCRIPTION
[0019] Referring now to the drawings, wherein the showings are for purposes of illustrating an embodiment of the disclosure only and not for limiting same,
[0020] A spill prevention bucket 24 is provided at the top of the riser 18. The spill prevention bucket has a top opening 26 and a side wall 28 that has an interior surface 30 that partially defines an interior 32 of the spill prevention bucket 24 and a shoulder 34 projects radially inward from the interior surface 30. The spill prevention bucket 24 also has a bottom wall 36 with an opening 38 that allows the spill prevention bucket 24 to be mounted over the riser 18. A cover 40, illustrated in
[0021] A removable seal plug 42 is mounted in the interior 32 of the spill prevention bucket 24 to collect water and other debris and prevent it from reaching the interior of the spill prevention bucket 24. Because the disclosed embodiment of the seal plug 42 has a hollow interior, the seal plug 42 will function as a bucket which will retain accumulated debris when the seal plug 42 is lifted out of the spill prevention bucket 24. Seal plugs of this type are therefore sometimes referred to as debris buckets or debris collection buckets.
[0022] Referring now to
[0023] An annular seal element 68 is mounted in the groove 60, and the seal element 68 (shown removed from the grove 60 in
[0024] The radially inner surface 72 of the seal body 70 has a circumferential channel 78 in which a garter spring 80 is mounted. The channel 78 is open in a radially inward direction and has first and second sides 82 and a bottom 84, and the sides 82 connect to the radially inner surface 72 of the seal body 68 at two angled wall portions 86 which may sometimes be referred to as chamfers.
[0025] The garter spring 80 has a predetermined minimum internal diameter when it is in a zero-gap state, that is, a state in which all circumferentially adjacent coils of the garter spring are in contact with each other such that the internal diameter of the garter spring 80 cannot be further reduced. When mounted in the channel 78, the garter spring 80 thus also defines a minimum internal diameter for the seal element 68 because the seal element 68 will be prevented from contracting by the fixed diameter of the garter spring 80.
[0026] As used herein, a rest state of a spring is a state in which no external radial forces are applied against the spring and the spring is applying no radial forces against an external body. The zero gap state can occur when an expansion garter spring is fully contracted or in its rest state. A zero gap state can also exist when a compression garter spring, one with gaps between circumferentially adjacent coils when in a rest state, is compressed to the point that all circumferentially adjacent coils of the spring are in contact with each other. Thus a compression garter spring can be held in a zero-gap state by a radial inward force. Both a fully contracted expansion garter spring and a compression garter spring held in a zero-gap state by a radially inwardly acting force may be described as a zero-gap garter spring.
[0027] When the garter spring 80 is mounted in the channel 78, no portion thereof projects from the channel, and when the seal element 68 is mounted in the groove 60, the garter spring 80 is spaced from the groove bottom 62. The garter spring 80 thus functions to establish a minimum inner diameter of the annular seal element 68 because the diameter of the spring cannot be further decreased (in the case of a zero-gap or fully contracted expansion spring) or can be decreased only slightly until the zero-gap state is reached (in the case of a compression garter spring). Thus, as noted previously, even though the coefficient of thermal expansion of the elastomer from which the seal element 68 is formed is many times greater than that of the surrounding materials, the metallic garter spring 80, which cannot be non-destructively compressed to have a diameter less than a predetermined minimum, will set the smallest diameter of the seal body 68 and therefore prevent the seal lips 74 from pulling away from the inner surface 30 of the spill prevention bucket 24 even at very low temperatures while not interfering with the expansion of the seal element 68 either at higher temperatures or when the seal element 68 is radially stretched over the annular body 58 to place it into the groove 62 during the assembly of the seal plug 42.
[0028] In use, the elastomer seal body 68 is formed by conventional techniques so that it includes a channel 78, and a garter spring 80 having a predetermined minimum inner diameter, e.g., in its zero-gap state, is mounted in the channel 80. The seal body 68 and garter spring 80 are then stretched around the top of the annular body 58 and allowed to contract into the groove 60 with the first and second protrusions 76 in contact with the first and second sides 64 of the groove 60 and the first and second seal lips 74 extending from the groove 60. The seal plug 42 with the seal body 68 is then inserted into a spill prevention bucket 42 by sliding the seal lips 74 axially along the inner surface 30 of the spill prevention bucket 24 until the axial body 58 contacts the shoulder 34 and stops further movement of the seal plug 42. The cover 40 is placed into position on the top of the spill prevention bucket 24. Over time, water, dirt, leaves and other debris may enter beneath the cover 40 and collect in the interior 32 of the seal plug 42. When it becomes necessary to refill the underground storage tank 10, the cover 40 is removed, and the seal plug 42 (acting as a debris collection bucket) is pulled from the spill prevention bucket 24 leaving behind a spill prevention bucket 24 that is free from debris. After the tank 10 is filled, the seal plug 42 is cleaned and replaced in the spill prevention bucket 24, and the cover 40 is replaced.
[0029] The present invention has been described herein in terms of a preferred embodiment. However, modifications and additions to this invention will become apparent to persons of ordinary skill in this field upon a reading of the foregoing description. For example, the seal plug 42 only requires an open interior 30 when it is used as a debris collection bucket. When debris collection is not required, the seal plug 42 could include a top wall and/or a closed interior. It is intended that all such modifications and additions form a part of the present invention to the extent they fall within the scope of the several claims appended hereto.