O-ring for side channel blower and side channel blower including said o-ring
11248618 ยท 2022-02-15
Assignee
Inventors
Cpc classification
F04D23/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/4226
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/403
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/083
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D29/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An O-ring and a side channel blower employing an O-ring for providing a gap-free, air-tight seal of the blower channel and side-by-side pressure and vacuum ports. The O-ring includes a generally circular, main O-ring have two free ends for sealing a majority of the blower impeller channel, and two relatively smaller O-rings, each of which is attached to an opposite one of the free ends of the main O-ring and are spaced apart in a side-by-side manner and are connected to one another by a bridge member. The small O-rings are configured and dimensioned so that one of the small O-rings serves to seal the vacuum port of the blower and that the other of the small O-rings serves to seal the pressure port of the blower, with the two small O-rings and bridge member and free ends of the main O-ring arranged to create a generally spectacle-like shape.
Claims
1. An O-ring for providing an air-tight seal of a blower impeller channel and side-by-side pressure and vacuum ports of a side channel blower, comprising; a circular, main O-ring for sealing a majority of the blower impeller channel, said main O-ring having two free ends, wherein said main O-ring lies in a first plane, wherein the majority of said main O-ring has an annular shape and wherein a minority thereof defined by said two free ends thereof extend outwardly from said majority of said main O-ring; two relatively smaller, spaced-apart, side-by-side, identically-sized port O-rings lying in a second plane so that they are disposed perpendicular to said main O-ring, said port O-rings each having a distal side and a proximal side relative to one another, wherein each of said port O-rings is attached to an opposite one of said free ends of said main O-ring at a midpoint of said respective distal sides thereof, and wherein said port O-rings are connected to one another at a midpoint of their respective proximal sides by a U-shaped O-ring bridge member lying in the same plane as said main O-ring, and wherein said port O-rings are configured and dimensioned so that one of said port O-rings serves to seal the vacuum port of the side channel blower and that the other of said port O-rings serves to seal the pressure port of the side channel blower, with said two port O-rings and O-ring bridge member and free ends of said main O-ring arranged and configured to simulate a spectacle-like shape with said two port O-rings simulating a pair of spaced-apart eyeglass rims of an eyeglass frame, with said U-shaped bridge member simulating a bridge of the eyeglass frame, and wherein the free ends of said main O-ring simulating a front end portion of a pair of temples of the eyeglass frame; wherein said O-ring is made of a deformable resilient material so that it can adapt to the shape of the surfaces which are to be sealed; wherein said resilient material is a member selected from the group consisting of rubber, synthetic rubber and an elastomer; and wherein said main O-ring and said two smaller port O-rings are formed as one single unitary O-ring.
2. The O-ring according to claim 1, wherein said member is FKM.
3. A side channel blower of the type comprising: a housing comprising at least two casing members which are joined together to define a circular impeller channel and two side-by-side vacuum and pressure ports; a rotatable impeller received in said circular impeller channel; a circular, main O-ring having two free ends for sealing a majority of the blower impeller channel, said main O-ring having two free ends, wherein said main O-ring lies in a first plane, wherein a majority of said main O-ring has an annular shape and a remainder thereof defined by said two free ends thereof extend outwardly from said majority of said main O-ring; two relatively smaller, side-by-side, identically-sized port O-rings lying in a second plane so that they are disposed perpendicular to said main O-ring, said port O-rings each having a distal side and a proximal side relative to one another, wherein each of said port O-rings is attached to an opposite one of said free ends of said main O-ring at a midpoint of said respective distal sides thereof, and wherein said port O-rings are connected to one another by a U-shaped O-ring bridge member lying in the same plane as said main O-ring at a midpoint of their respective proximal sides thereof and wherein said port O-rings are configured and dimensioned so that one of said port O-rings serves to seal the vacuum port of the side channel blower and that the other of said port O-rings serves to seal the pressure port of the side channel blower, with said two smaller port O-rings and O-ring bridge member and free ends of said main O-ring arranged and configured to simulate a spectacle-like shape with said two port O-rings simulating a pair of spaced-apart eyeglass rims of an eyeglass frame, with said U-shaped bridge member simulating a bridge of the eyeglass frame, and wherein the free ends of said main O-ring simulate a front end portion of a pair of temples of the eyeglass frame; wherein said O-ring is made of a deformable resilient material so that it can adapt to the shape of the surfaces which are to be sealed; wherein said resilient material is a member selected from the group consisting of rubber, synthetic rubber and an elastomer; and wherein said main O-ring and said two port O-rings are formed as one unitary piece.
4. The side channel blower according to claim 3, wherein said member is FKM.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Other objects and features of the present invention will become apparent from the detailed description considered in connection with the accompanying drawings, which disclose a preferred embodiment of the invention. It is to be understood that the drawings are to be used for the purpose of illustration only and not as a definition of the limits of the invention.
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DETAILED DESCRIPTION OF THE PREFERRED AND ILLUSTRATED EMBODIMENT
(12) Referring now in detail to the drawings and in particular,
(13) The sealing of the outer perimeter of the blower 10 is best shown in both
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(15) As can be appreciated, the isolation or sealing of the inlet and outlet ports 28, 30 from the outside environment is provided by the two typically smaller eyeglass rim-shaped O-rings 38, 40. The small O-rings 38, 40 are each seated and mounted in a groove between the two casings 12, 16 and are disposed so that one O-ring 40 encircles the circumferences of the vacuum port and the other ring 38 encircles the circumferences of the pressure port.
(16) Due to the geometry of O-ring 11, there is a continuous sealed circumference without any gaps. O-ring 11 follows the complete perimeter of the blower unit and meets with the connecting piping of the system (not shown) to which it is attached at its pressure and vacuum ports, 28, 30. This continuity allows for a complete coverage of the blower's joining surfaces. As described previously, O-ring 11 has a spectacle shape in the region of the two port rings 38, 40, although the three rings 36, 38, 40 are linked together. The bridge 48 between the two port rings 38, 40 allows for continuity of the seal. As a result of the two smaller rings' 38, 40 change of orientation by 90 degrees from the main ring 36 at the joint to which they are attached to ends 46, the planar face of the ports 28, 30 defines a joint plane by which the O-rings 38, 40 recessed in faces 62, 64 can seal the joint to the connecting planar faces of the flanges of the system to which the blower is attached (not shown) as further described below. This novel arrangement allows for the pressure and vacuum ports to be located parallel to the impeller's rotational plane and to seal the full perimeter of the unit using only one continuous O-ring.
(17) As seen best in
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(19) More particularly, the spectacle-shaped O-ring 11 is preferably installed in a rectangular cross-sectional groove 42 in the circumference of the motor side casing 12. As the casing is assembled, the other outer housing or casing 16, which does not have the machined groove, compresses the O-ring 11 in the groove 42 and its surface abuts and seals groove 42 within the motor side casing 12. There is thus no dislocation or gap possible, either radially or axially. Likewise, the pressure and vacuum port rings 38, 40 are aligned axially with the external system's or installation's connecting flanges and its intake and outtake ports (not shown) which compress the rings 38, 40 into sealing position within grooves 42 when the installation's flanges (not shown) are connected to the blower flanges 62, 64. The installation of the smaller two O-rings 38, 40 at the ports also restrict rotation of the main O-ring 36. Thus, along with sealing the pipe connection of the piping system of the installation (not shown) to the blower 10, they also restrict rotation of the O-ring 11 axially.
(20) More particularly, as seen best in
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(22) Consequently, the spectacle-shaped single or unitary O-ring 11 also ensures a permanent and adaptable seal during operation. As the blower changes temperature and undergoes heat induced deformations, the O-ring is subject to the same changes. Indeed, the O-ring 11 also expands under heat and provides a continuous and uniform sealing of the casing elements.
(23) Moreover, the installation of the spectacle O-ring is not subject to tight tolerances or precision as the shape thereof is deformed by the casing elements themselves. Indeed, the required tolerances of the O-ring installation only rely on the dimensions of the machined groove in the casings which are dimensioned and configured for receipt of the O-ring 11 therein. The O-ring's orientation also follows the shape of the groove and placement of the ports of the side channel, thus self-adjusting into position during installation.
(24) The design allows an easy assembly and low tolerances for the O-ring seals as they are installed in machined grooves in the inner casing element such that the outer casing element is fixed, and its inner surface compresses the O-ring inside the groove and allows for a uniform sealing contact. The design also provides a dynamic adaptation of the seal under temperature fluctuations, as the thermal deformations occur in the whole assembly and the seal maintains its integrity.
(25) As noted above, the compressible O-ring is preferably made from rubber, synthetic rubber or an elastomer. Most desirably, it is made from FKM, a well-known synthetic rubber and fluoropolymer elastomer. Preferably, the main O-ring has an outer diameter in the range of about 200 to 300 mm, and the two smaller O-rings have a diameter in the range of about 30 to 50 mm.
(26) While a particular embodiment of the invention has been described, it is not intended that the invention be limited thereto, as it is intended that the invention be as broad in scope as the prior art will allow and that the specification be read likewise. It will therefore be appreciated by those skilled in the art that other modifications could be made thereto without departing from the spirit and scope of the invention. Accordingly, it is to be understood that the embodiments of the invention herein described are merely illustrative of the application of the principles of the invention.