FIELD OF TECHNOLOGY
[0001] This invention generally relates to rotary or "butterfly" valves and methods for
fabricating them, and more particularly to reducing valve friction and improving the
valve sealing and wear characteristics.
BACKGROUND
[0002] Rotary valves, commonly referred to as "butterfly" valves, are typically provided
with a disc which is rotationally drivable between an open position and a closed position
about a central axis diametrically extending through the interior of a generally annular
valve body. In the open position, the disc permits fluid flow through the valve body.
Upon rotation of the disc to the closed position, a peripheral edge of the disc operatively
engages an annular seal member portion of an annular seal cartridge structure supported
within the valve body, to prevent fluid flow through the valve and associated piping
sections.
[0003] Rotary valves are often utilized in applications requiring "bi-mode" operations,
i.e. where the valve is either open or closed, such as a safety shut-off valve that
generally remains open but must close, and disable the flow, during an emergency condition,
such as a fire or chemical spill. Another application of rotary valve usage is throttling
which regulates the amount of fluid flow per unit of time in a process. Pharmaceutical
manufacturing processes, by way of example, typically incorporate throttling rotary
valves to deliver precise quantities of the chemical components constituent to a product
batch. A sophisticated process control system, such as the pharmaceutical process
described above, may further control the throttling rotary valve to regulate the fluid
flow in a time varying or cyclical manner. Applications such as these often result
in the disc and the seal member remaining in constant sliding contact in relation
to one another throughout the control process resulting in increased wear on both
components.
[0004] While the use and operation of rotary valves in fluid throttling and shut-off applications
is well known in the art, the valves are still subject to several well-known problems,
limitations, and disadvantages. FIGS. 9 and 10 illustrate a prior art circular disc
or circular seal rotary valve, wherein a portion of the circular valve seal along
the rotational axis of the valve stem is continually in contact with a portion of
the circular disc adjacent to the valve shaft resulting in continuous wear on the
valve seal adjacent to the valve shaft. FIG. 9 illustrates a prior art circular rotary
valve 206 in a partially open position disposed within a passage 204. FIG. 10 is a
cross section of circular valve from FIG. 9 taken along the section line 10-10. The
circular rotary valve 206 includes a valve stem 202 rotatable along an axis 200. By
rotating the valve stem 202 along the axis 200, in the direction indicated by an arrow
211, the circular disc 203 comes into contact with a circular valve seal 209 to close
off a passage 204. A wear area 205 (FIG. 10), located proximate to the axis 200 of
the valve stem 202, is in continual engagement with the circular valve seal 209 as
the circular disc 203 rotates in relation to the circular valve seal 209. As a result
of continual engagement between the circular disc 203 and the circular valve seal
209, wear occurs either on the disc 203 or on the circular valve seal 209 at the wear
area 205 adjacent to valve stem 202. As the distance d between the circular disc 203
and the centerline of the valve seal 209 decreases, the wear area 205 between the
circular disc 203 and the circular valve seal 209 increases, thereby increasing the
total associated wear. Stated another way, the prior art rotary valve 206 when utilized
for actively throttling fluid flow to provide a small percentage of total flow capacity,
incurs significant wear as a result of the wiping motion of the circular disc 203
relative to the circular valve seal 209. The presence of abrasive particulates suspended
within the fluid may accelerate the wear experienced by the valve seal 209 and disc
203 at the contact area 205.
[0005] The wear inherent to this type of circular disc/seal interface often results in reduced
seal integrity leading to an inability to completely retard the fluid flow through
the rotary valve. The loss of accurate fluid flow control attributable to worn seals
may cost a manufacturer substantial sums of money in either lost process control or
valve services. As a result, a worn valve must be either repaired or replaced which
may cost hundreds of thousands of dollars in material and/or process downtime. For
example, shutting down a nuclear reactor to replace a valve or replacing a ruined
batch of pharmaceutical product caused by a malfunctioning control valve, can result
in significant losses due to lost productivity or product.
[0006] Another problem associated with the prior art rotary valves is overcoming the "break
away" friction of the valve, i.e. overcoming the static friction of the ball or disc
required to open, close, or adjust the valve. Typically "high performance" rotary
valves, which generally have a large break away friction, require a large initial
force to overcome the static friction which can cause valve positioning instability
because the large initial force is considerably greater than the force required to
overcome the dynamic friction and hence an actuator will likely overshoot the desired
setting. It would therefore be desirable to provide a "frictionless" rotary valve
that would solve such valve control problems.
[0007] Another problem associated with the prior art rotary valves is the complicated centering
and adjustment procedures required to position the disc relative to the valve seal.
Because the periphery of the disc is used as the seal contact surface for the valve,
it is critical to proper seal performance that the disc be precisely centered within
the valve body. Numerous structures have been incorporated into the prior an rotary
valve assemblies to address this problem and permit the installed disc to be adjusted
within the valve body in a manner effecting this necessary disc centering. This centering
adjustment, of course, must be carefully and accurately performed to achieve the desired
sealing effectiveness. Adjustment error, on the other hand, can seriously reduce the
valve's sealing efficiency.
[0008] Another problem associated with the prior art rotary valves is the complicated manner
in which an actuator, a motorized device used to rotate the disc between its open
and closed positions, is operatively mounted on the valve body. Typical rotary valves
include an actuator base structure integrally formed or joined to the valve body and
projecting radially outwardly from the valve body. An adaptor structure affixed to
the outwardly projecting base structure provides a platform for mounting the actuator
to the valve body. This complex mounting and adaptor structure undesirably adds to
the overall manufacturing cost and complexity of assembly of the prior art rotary
valve.
[0009] As highlighted by the foregoing discussion, a need exists for an improved rotary
valve assembly, and the fabrication methods associated therewith, to eliminate or
substantially reduce the above-mentioned problems, limitations, and disadvantages
typically associated with rotary valves of conventional construction. It is desirable
to provide a rotary valve having an effective mechanism for providing extended service
life. It is further desirable to reduce the wear between the disc and the sealing
surface of the valve over a relatively large range of rotational distances. It is
further desirable to provide a rotary valve having enhanced controllability, and substantially
no seal engagement and wear until the disc provides substantial closure of the valve
passageway, and to provide a simplified mechanism for the mounting of actuators to
a valve body.
SUMMARY
[0011] The present invention provides an apparatus in accordance with independent claim
1, and a method according to independent claim 34. Further preferred embodiments are
given in the dependent claims.
[0012] The claimed invention can be better understood in view of the embodiments described
hereinafter. In general, the described embodiments describe preferred embodiments
of the invention. The attentive reader will note, however, that some aspects of the
described embodiments extend beyond the scope of the claims. To the respect that the
described embodiments indeed extend beyond the scope of the claims, the described
embodiments are to be considered supplementary background information and do not constitute
definitions of the invention
per se. This also holds for the subsequent "Brief Description of the Drawings" as well as
the "Detailed Description".
[0013] The rotary valve of the present disclosure includes a valve body and sealing structure,
carried within the valve body, for forming a disc and seal interface which in operation
may cooperate to prevent fluid flow through the valve body. The disc is adapted to
cooperate with the elliptical seal to form a gap between the disc and the seal proximate
to a rotational axis of the round disc. In the open position, the major axis of elliptical
seal is greater than the round disc diameter insuring little or no contact between
the two components. As the disc rotates to near closure, an elliptical face formed
on the disc perimeter engages the minor axis of the elliptical seal (which is smaller
than the generally circular disc diameter), and the disc distorts the elliptical seal
along the minor axis thereby forcing a corresponding decrease along the major axis
such that the gap is closed bringing the elliptical seal into sealing contact with
the disc proximate to the rotational axis of the disc. The elliptical is formed into
an elliptical shape by a retaining mechanism. Because the disc and seal are not in
contact (or are in very limited contact) through the majority of the valve's range
of uses the wear and break away friction are minimized.
BRIEF DESCRIPTION OF THE DRAWINGS
[0014]
FIG. 1 is a perspective view of a rotary valve assembly in a closed position:
FIG. 2 is a perspective view of the rotary valve assembly in an open position:
FIG. 3 is an exploded perspective view of the rotary valve assembly;
FIG. 4 is partial cross-sectional view through the rotary valve assembly taken along
line 4-4 of FIG. 2;
FIG. 5 is partial cross-sectional view through the rotary valve assembly taken along
line 5-5 of FIG. 1;
FIG. 6 is an enlarged cross-sectional view of the circled area "6" in FIG. 5;
FIG. 6A is a cross-sectional view similar to that in FIG. 6, illustrating another
embodiment of the seal cartridge portion;
FIGS. 6B-6E are cross-sectional views similar to that in FIG. 6A. illustrating embodiments
of a press-fit seal assembly;
FIGS. 6F-6H are cross-sectional views similar to that in FIG. 6A. illustrating embodiments
of an annular metal seal;
FIG. 7 is an side view of a valve disc portion of the rotary valve assembly;
FIG. 8 is a side view of the completed valve disc;
FIG. 8A is a detail view of the circled area "8A" in FIG. 8:
FIG. 8B is a detail view of the circled area "8B" in FIG. 8:
FIG. 9 is a cross sectional view of a prior art rotary valve;
FIG. 10 is a cross-sectional view of the prior art rotary valve in FIG. 9 along line
10-10 with the valve partially open;
FIG. 11 is a cross-sectional view of another embodiment of the rotary valve;
FIG. 12 is a cross-section of the rotary valve of FIG. 11 along line 12-12;
FIG. 13 is an enlarged view of half an elliptical seal and disc interface; and
FIG. 14 is an enlarged view of the elliptical seal and disc interface.
DETAILED DESCRIPTION
[0015] FIGS. 1-3 illustrate one embodiment of a rotary valve 10. commonly referred to as
a "butterfly" valve, including a generally annular metal body portion 12, a metal
closure disc 14 rotatable between a closed position and an open position (respectively
illustrated in FIGS. 1 and 2) about an axis 16 extending diametrically through the
body portion 12, and an annular seal cartridge structure 18. FIG. 1 illustrates the
disc 14 in the closed position cooperating with the seal cartridge structure 18 to
prevent fluid flow through the interior of the body portion 12 and the piping sections
(not shown) operatively connected to its opposing sides. Alternatively, illustrated
in FIG. 2 is the disc 14 in the open position, such that fluid flow through the interior
of the valve body 12, and piping operatively coupled to the valve body 12, is permitted.
[0016] Turning to FIGS. 7-8B. the disc 14 has a body portion with a front or outer side
20, a rear or inner side 22, and a peripheral sealing edge portion 24. A diametrically
spaced pair of attachment bosses 26 (illustrated in FIG. 2) extend outwardly from
the rear side 22 and have aligned, circularly cross-sectioned bores 28 extending through
oppositely facing outer side surfaces 26a of the bosses 26 (as illustrated better
in FIGS 2-3). The outer side surfaces 26a are equidistant from the centerline of the
body portion of the disc 14.
[0017] FIG. 7 illustrates exemplary embodiment of the disc 14 having a centerline 30, and
formed (by appropriately machining its outer edge) as a segment of a cone 32 having
an axis 34 tilted at a relatively small angle A relative to the disc body centerline
30. The angle of the cone 32, by way of example, is approximately 34°, and the machining
tilt angle A is approximately 8°. This machining of the body of the disc 14 as a segment
of the cone 32 gives the peripheral sealing edge portion 24 of the disc 14 an elliptical
shape in which the major rear side diameter D of the circular disc body, which extends
transversely to the disc rotational axis 16. is greater than the minor rear side diameter
of the disc 14 which extends parallel to the disc rotational axis 16.
[0018] The machining of the disc 14 as a segment of the cone 32 results in portions of the
disc periphery 24 adjacent opposite ends of the major diameter D having different
slope angles from the rear side 22 of the disc body to the front side 20 of the disc
body. Representatively, an upper portion of the disc periphery 24 (as viewed in FIG.
7) slopes outwardly and radially inwardly at an angle B of approximately 15°, and
a lower portion of the disc periphery 24 (as viewed in FIG. 7) slopes outwardly and
radially inwardly at an angle C of approximately 31°. A bore centerline 36 of the
attachment bosses 26 may be offset a small distance E from the rotational axis 16
of the disc 14 to effect a "camming" action with respect to the disc as it moves between
the closed and open positions.
[0019] FIGS. 1-5 illustrate the disc 14 rotatably mounted within the annular valve body
12 and automatically centered using a cylindrical shaft 38 and upper and lower cylindrical
guide members 44, 46. The cylindrical shaft 38 has a pair of flats 40. 42 formed on
upper and lower end portions thereof (illustrated in detail in FIG. 3). The upper
guide member 44 is of a hollow tubular configuration and has an upper body portion
48, a reduced diameter lower body portion 50 having a lower end 52. and an elongated
transverse mounting flange 54 disposed at the junction of the body portions 48, 50.
The lower guide member 46 has a cylindrical upper body portion 56 with an upper end
58, an enlarged diameter cylindrical lower body portion 60, and an elongated transverse
mounting flange 62 at its bottom end. An upwardly facing annular shoulder 64 is defined
at the juncture of the upper and lower body portions 56, 60.
[0020] FIGS. 3-5 further illustrate the annular valve body portion 12 having an upper flat
portion 66 formed diametrically opposite a lower flat portion 68. and having circular
bores 70 formed there-through and spaced apart along the disc rotation axis 16. The
upper and the lower flat portions 66. 68 are positioned on the valve body 12 such
that they are equal radial distances away from the centerline of the body 12.
[0021] The disc 14 is mounted within the interior of the valve body 12 by placing the bosses
26 within the interior of the valve body 12 and inserting the tubular lower end portion
50 of the upper guide member 44 downwardly through an annular gasket 72, the upper
circular bore 70 and into the interior of the valve body 12. Contemporaneously with
the mounting of the upper guide member 44, the upper end portions of a pair of threaded
studs 74 pass upwardly through a corresponding pair of mounting holes disposed in
opposing ends of the flange 54. When the flange 54 bottoms out on the upper flat area
66, a pair of nuts 76 are threaded onto the studs 74 to secure the flange 66 adjacent
to the upper valve body flat area 66. The lower end portion of the shaft 38 is slidable
through the upper guide member 44 and the bore 28 of the upper disc boss 26, and is
adapted to be secured in place within the upper disc boss 26 by a set screw 77 threaded
into a corresponding opening in the upper disc boss 26 and forced against the lower
shaft flat area 42. FIG. 4 illustrates the lower end 52 of the lower body portion
50 of the upper guide member 44 abutting the upper side surface 26a of the upper disc
boss 26.
[0022] The upper end portion 56 of the lower guide member 46 is passed upwardly through
an annular gasket 78 and the lower valve body circular bore 70 into the circular bore
28 disposed in the lower disc boss 26 until the lower guide member flange 62 abuts
the lower flat area 68 formed into the annular valve body 12. The flange 62 is secured
to the flat area 68 via a pair of bolts 80 extended upwardly through corresponding
holes in the flange 62 and threaded into aligned holes in the valve body 12. The mounting
of the upper and the lower guide members 44, 46 in this manner supports the disc 14
within the valve body 12 for rotation relative thereto about the rotational axis 16.
[0023] The above-described mounting of the upper and the lower guide members 44, 46 serve
to automatically center the disc 14 within the valve body 12 relative to the annular
seal cartridge structure 18. The centering is accomplished without the necessity of
subsequent adjustments to the installed disc 14 relative to the valve body 12 or the
annular seal cartridge structure 18. In practice, automatic disc centering may be
achieved by axially configuring the upper and lower cylindrical guide members 44,
46 in such a manner such that they are operatively secured to the valve body 12 as
described above, and the distance between the lower end 52 of the upper guide member
44 and the annular flange portion 64 of the lower guide member 46 is precisely identical
to the distance between the oppositely facing outer sides 26a of the disc bosses 26
(which are representatively equidistant from the centerline of the disc body). In
this manner, because the distances between the valve body upper and lower flat areas
66, 68 are identical, the disc 14 is automatically centered within the valve body
12 by the abutments 26a, 52 and 26a, 64 between the guide members 44, 46 and the disc
bosses 26, when the guide member flanges 54, 62 respectively abut the valve body flat
areas 66, 68.
[0024] The shaft 38 extends upwardly through an annular packing structure 82 (illustrated
for clarity in FIG. 3) received within the upper body portion 48 of the upper guide
member 44. Shaft 38 also passes upwardly through and beyond a tubular packing retainer
member 84 telescoped within the upper body portion 48 and having a transverse flange
portion 86 on its upper end. The studs 74 pass upwardly through corresponding holes
in the outer ends of the flange 86. with the packing retainer member 84 being held
in place with nuts 88 threaded onto the upper ends of the studs 74. An upper end portion
of the shaft 38 is operatively connected to a conventional motorized actuator 90 (illustrated
in FIG. 2) operatively associated with the valve body 12 via a one-piece actuator
support bracket 140. The actuator 90 may be selectively utilized to rotate the shaft
38 about the disc rotation axis 16 to thereby rotate the disc 14 between its FIG.
1 closed position and its FIG. 2 open position.
[0025] FIGS. 1-6A illustrate various aspects of the seal cartridge structure 18. In one
embodiment, the seal cartridge structure is complementarily and removably received
within an annular recess 92 (illustrated in detail in FIG. 3) formed in a side 12a
of the valve body 12 and is captively retained within the recess 92 by means of a
snap ring 94 (illustrated in FIG. 5) removably received in an annular groove 96 (illustrated
in FIG. 3) in the valve body recess 92. FIG. 3 further illustrates the seai cartridge
structure 3 including a flat annular metal seal support members 98, a flat annular
metal seal retaining member 100, and an annular seal member 102 sandwiched between
the members 98 and 100.
[0026] In one embodiment, the annular seal member 102 is substantially identical to the
seal member 24 illustrated and described in
U.S. Patent Number 4,005.848 to Eggleston and comprises an annular TEFLONG® body having (as best illustrated in FIG. 6) an
annular, radially inner sealing portion 104; an annular, radially outer peripheral
portion 106; an annular, axially inwardly projecting flexible web portion 108; and
an annular, axially outwardly projecting lip portion 110. An annular resilient garter
spring member 112 outwardly circumscribes the annular sealing portion 104 and exerts
thereon a radially inwardly directed resilient biasing force.
[0027] In another embodiment, the seal member 102 is held by the balance of the seal cartridge
structure 18 to cause the sealing portion 104 of the seal member 102 to assume an
elliptical shape corresponding to the elliptical configuration of the peripheral edge
24 of the disc 14 to provide substantially improved valve sealing performance as later
described herein.
[0028] In order to hold the originally round annular seal member 102 in an elliptical configuration
the seal support member 98 is retained in a suitable clamping structure and is subjected
to diametrically opposite, radially inward directed clamping forces 114 (see FIG.
3) that resiliently deform opposite edge portions of the seal support member 98 radially
inward, while at the same time correspondingly and resiliently deforming the member
98 radially outwardly in directions 116 transverse to the clamping forces 114, thereby
giving the seal support member 98 an elliptical configuration.
[0029] While the seal support member 98 is being held in this resiliently deformed elliptical
configuration, a circular seal receiving depression 118 (illustrated in FIG. 3) is
suitably machined on one side of the deformed seal support member 98. The temporarily
clamped seal support member 98 is then released to permit it to return to original
circular configuration, thereby causing the circular depression 118 to assume an elliptical
configuration in the finished inner seal support member 98 (illustrated in FIG. 6).
[0030] Furthermore, the seal retainer member 100 is placed in the clamping stucture and
subjected to diametrically opposite, radially inwardly directed clamping forces 120
(illustrated in FIG. 3) that resiliently deform opposite edge portions of the seal
retaining member 100 radially inwardly, while at the same time correspondingly and
resiliently deforming the member 100 radially outwardly in directions 122 transverse
to the clamping forces 120, thereby giving the seal retaining member 100 an elliptical
configuration. A circular depression 124 (see FIG. 6) is formed in the side of the
seal retaining member 100 which will face the seal support member 98 while the seal
retaining member 100 is held in this elliptical configuration. The seal retainer member
100 is then released from the clamping structure to return to its original circular
configuration, thereby causing the circular depression 124 to assume an elliptical
configuration in the finished inner seal support member 98.
[0031] Suitable marks (not shown) are placed on each of the completed seal support and retainer
members 98, 100 so that when the seal member 102 is operatively sandwiched therebetween,
the elliptical depressions 118, 124 may be precisely aligned. When the seal member
102 is operatively sandwiched between the seal support and retainer members 98, 100
as illustrated in FIG. 6, the seal portion 108 is received in the elliptical depression
118. the seal portion 110 is received in the depression 124, and the seal portion
106 is clamped between facing portions of the seal support and retainer members 98
and 100 with an inner peripheral portion of the seal member sealing portion 104 projecting
radially inwardly beyond the inner peripheries of the seal support and retainer members
98 and 100. The annular seal member 102 is installed within the elliptical depressions
118 and 124, by slightly deforming the seal member 102 from its originally round configuration
to an elliptical configuration which geometrically matches the elliptical shape of
the periphery 24 of the disc 14. The resulting assembled seal cartridge structure
18 retains the inwardly projecting periphery of the seal member sealing portion 104
in the desired elliptical configuration.
[0032] With the seal support and retainer members 98, 100 rotationally aligned with one
another, the completed seal cartridge structure 18 is installed in the valve body
side recess 92 (as illustrated in FIGS. 1-3) in a manner such that aligned holes 126,
118, illustrated in FIG. 3. in the seal support and retainer members 98. 100 are aligned
with an underlying hole 130 in the axially inner surface of the valve body seal cartridge
recess 92 to thereby align the major axis of the now elliptical seal portion 104 with
the major axis of the elliptical disc periphery 24 when the disc is rotationally driven
to its FIG. 1 closed orientation. To retain the installed seal cartridge structure
18 in this operative orientation, a retaining pin 132 is operatively positioned in
the aligned holes 126, 128. and 130.
[0033] When the disc 14 is rotationally driven between its open and closed positions, as
indicated by the directional arrows in FIG. 8, the elliptical disc periphery 24 is
driven through the rotational arc 134 illustrated in FIGS. 8-8B to cause the indicated
portions 24a, 24b of the disc periphery 24 to be selectively wedged into sealing engagement
with the radially inner periphery of the resilient seal portion 104 (illustrated FIG.
6) and then be disengaged therefrom.
[0034] The exemplary mating of the elliptical disc 14 and the seal surfaces 104 (illustrated
in FIG. 6) in the valve 10, result in a number of advantages such as reducing the
torque required to seat and unseat the disc 14 from the associated seal element when
compared to the conventional torque requirements of a round disc seating against a
round seal element. Additionally, there is less wear on the disc and seal element.
Further, the reduced operational torque requirements, the parts carrying the actuation
load may be smaller, and a smaller actuator may be used to seat and unseat the valve
disc against the seal. Still further, broader manufacturing tolerances may be utilized
in conjunction with the disc and seal due to the compensation and wedging effects
provided by the elliptical seal and disc interface.
[0035] FIGS. 6B-6E illustrate alternate embodiments of the seal cartridge structure 18 and
the complementary annular seal member 102 and retainer member 100 assembled without
the need for a separate snap ring 94, as described above. The alternate embodiments
of the seal cartridge structure 18 provide for a press-fit seal assembly 300, 320,
340, and 360 positioned within a reverse-flow side recess 92a manufactured in the
valve body 12. The reverse-flow side recess 92a and the alternate embodiments, discussed
below, may be formed in a variety of shapes to provide an elliptical seal. For example,
the reverse-flow side recess 92a may be formed having an elliptical shape such that
a round seal, when position within the recess, is forced to assume the elliptical
profile; alternatively, the reverse-flow side recess 92a may be formed circular, as
previously described, and the seal may be formed with an elliptical shape.
[0036] FIG. 6B illustrates an embodiment of the press-fit sea! assembly 300 pressed into
the reverse-flow side recess 92a such that an interference is created between the
outer diameter 302 of the press-fit seal retainer 304 and the reverse-flow side recess
92a. The interference may be created by manufacturing the outer diameter 302 of the
press-fit seal retainer 304 slightly larger (generally between 0,08 mm and 0.15mm
(three and six thousandths of an inch, .003"-.006")) than an inner diameter of the
reverse-flow side recess 92a. The press-fit seal retainer 304, generally having the
larger outer diameter, may be mechanically forced into the reverse-flow side recess
92a such that the smaller inner diameter of the reverse-flow side recess 92a slightly
compresses the press-fit seal retainer 304. In this manner, the press-fit seal retainer
304 and an associated seal member 306 may be locked into position within the reverse-flow
side recess 92a. The assembly of the press-fit seal assembly 300 is accomplished from
the reverse flow side of the rotary valve 10. During operation of the valve 10. additional
support may alternately be supplied by the guide members 44, 46 and the valve body
12 depending the direction of fluid flow through the valve body 12.
[0037] Further support may be supplied by the interactions between the seal member 306 geometry
and the press-fit seal retainer 304. The seal member 306 includes a peripheral portion
308 cooperating with a receiving portion 310 formed in the press-fit seal retainer
304. The seal member 306 further cooperating with the resilient spring 312 to counter
the movement of the disc periphery 24 relative to the seal surface 314. The press-fit
seal retainer 304 may further include a retaining ridge 316 adapted to provide controlled
compression of the gasket portion 318 of the seal member 306.
[0038] FIG. 6C illustrates an embodiment of a press-fit seal assembly 320 generally assembled
to provide an interference between an outer diameter 322 of the press-fit seal retainer
324 and the reverse-slow side recess 92a. as described above. Further support may
be supplied by the interactions between the seal member 326 geometry and the press-fit
seal retainer 324. The seal member 326 includes a peripheral portion 328 cooperating
with a receiving portion 330 formed in the press-fit seal retainer 324. The seal member
326 further cooperates with a resilient spring 332 confirming to a surface distal
to the receiving portion 330. The resilient spring 332 is positioned to resist the
outward radial forces generated by the movement of the disc periphery 24 relative
to the seal surface 334.
[0039] FIG. 6D illustrates an embodiment of the press-fit seal assembly 340 generally assembled
to provide a press fit interference between an outer diameter 342 of the press-fit
seal retainer 344 and the reverse flow side recess 92a. as described above. Further
support may be supplied by the interactions between the seal member 346 geometry and
the press-fit seal retainer 344. The seal member 346 includes a peripheral portion
348, having a substantially rectangular configuration, the peripheral portion 348
cooperating with a substantially rectangular receiving portion 350 formed in the press-fit
seal retainer 344.
[0040] The seal member 346 configured to cooperate with a flat resilient spring 352 encapsulated
within the seal member 346 and positioned generally parallel the disc 14 in the closed
position as illustrated in FIG. 1. The flat spring 352 positioned to resist the outward
radial forces generated by the movement of the disc periphery 24 relative to the seal
surface 354. The seal member 346 further including a retaining ridge 356 adapted to
provide additional retention of the press-fit seal assembly 340 relative to the valve
body 12.
[0041] FIG. 6E illustrates an embodiment of a press-fit seal assembly 360, similar to the
press-fit seal assembly 320 illustrated in FIG. 6C, generally assembled to provide
an interference between the outer diameter 362 of the press-fit seal retainer 364
and the reverse-flow side body recess 92a. as described above. Further support may
be supplied by the interactions between the seal member 366 geometry and the press-fit
seal retainer 364. The seal member 366 includes a peripheral portion 368 cooperating
with a receiving portion 370 formed in the press-fit seal retainer 3664. The seal
member 366 further including a resilient spring 372 encapsulated within the seal member
366 and formed substantially parallel to the receiving portion .i70. The resilient
spring 372 positioned to resist the outward radial forces generated by the movement
of the disc periphery 24 relative to the seal surface 374.
[0042] FIG. 6A illustrates an embodiment of a seal cartridge structure 18a including a deformable
annular metal seal element 136 having a generally U-shaped cross-section around its
periphery. The seal element 136 is sandwiched between modified flat annular seal support
and retainer members 98a, 100a which are operatively received and retained within
the valve body side recess 92, with a rounded, radially inner annular portion 136a
of the meta! seal member 136 projecting inwardly from the seal support and retainer
members 98a, 100a for operative sealing engagement by the disc periphery 24.
[0043] In constructing the seal cartridge structure 18a, the seal support member 98a may
be left in its original flat annular configuration, and the seal retainer member 100a
may be resiliently deformed to an elliptical shape, by clamping it at diametrically
opposite portions as previously described for the seal retainer member 100. At this
time, a circular depression 138 is machined into the inner side surface of the seal
retainer member 10a on a radially inner peripheral area thereof. When the resiliently
deformed seal retainer member 100a is unclamped, it springs back from an elliptical
configuration to its original circular configuration to thereby reconfigure the circular
depression 138 in a manner such that its outer peripheral surface 138a has an elliptical
shape. An annular metal seal 136 is captively retained in the depression 138 of the
assembled seal cartridge structure 18a. such that forcible engagement of the seal
portion 136a by the disc periphery 24 deforms the seal 136 into the elliptical shape
bounded by the elliptical recess surface 138a, thereby providing the valve 10 with
the elliptical disk/seal interface. The modified seal cartridge structure 18a provides
advantages similar to those discussed above in conjunction with the flexible TEFLON®
seal structure 102 illustrated in FIG. 6.
[0044] FIGS. 6F-6H illustrate alternate embodiments of the annular metal seal 136 generally
indicated by the numerals 380. 400. and 420. An annular, one-piece metal seal 380,
400 and 420 may be interchangeable with the press-fit seal assemblies 300. 320, 340,
and 360 illustrated in FIGS. 6B-6E. The one-piece metal seal 380, 400 and 420 utilize
a press-fit assembly, as described above, to insure that continuous contact is maintained
between the one-piece metal seal 380, 400, and 420 and the vale body 12. The one-piece
metal seal 380, 400, and 420 includes a base portion 382, 402 and 422 pressed into
contact with the valve body 12 to provide an interference. The one-piece metal seal
380, 400, and 420 further includes a flexible arm portion 384, 404 and 424 in sliding
contact with the disc 14. The flexible arm portion 384, 404 and 424 may be manufactured
in a variety of configurations and materials to provide constant contact between the
one-piece metal seal 380,400, and 420 and the disc periphery 24.
[0045] During operation of the valve 10, the one-piece metal seals 380, 400, and 420 may
be contained by the either of the guide members 44, 46 and the valve body 12, defending
the direction of fluid flow and the pressure gradient, through the valve body 12.
Further the metal seals 400 and 420 may incorporate the retaining ridge member 406
and 426 to provide redundant retention against slippage or other movement in the event
of a catastrophic failure of the metal seals 400 and 420.
[0046] FIGS. 1-4, in addition to illustrating the self-centering disc support and elliptical
disc and seal interface features, also illustrate a structure for substantially simplifying
and reducing the cost of the rotational driving interconnection between the motor-driven
actuator 90 (illustrated in FIG. 2) and the shaft 38 and thus the disc 14. The one-piece
actuator support bracket 140, generally described above, is removably securable, to
the valve body 12 and may be customized to operatively mount motor-driven actuators
of a variety of types and configurations and permit them to be drivingly coupled to
the shaft 38.
[0047] The actuator bracket 140 has a generally inverted U-shaped configuration with a top
end support plate portion 142. and a pair of substantially parallel leg plate portions
144 each having an outwardly angled foot portion 146 that may be removably secured,
with suitable fasteners such as bolts 150, to a pair of flat portions 148 located
on opposite sides of the top flat portion 66 on periphery of the valve body 12. Alternatively,
the actuator bracket 140 may be welded to the valve body 12, or otherwise suitably
anchored thereto.
[0048] The top plate 142 is suitably drilled, as illustrated at openings 152 and 154. to
accommodate the particular motor-driven actuator (for example, the actuator 90 illustrated
in FIG. 2) used in conjunction with the balance of the valve 10. Accordingly, a single
actuator bracket may be used as a universal mount structure to operatively couple
a variety of differently configured actuators to a given rotary valve 10. The actuator
90, by way of further example, is operatively mounted atop the top end plate 142 (illustrated
in FIG. 2) and a rotational output portion 90a (as better illustrated in FIG. 4) of
the actuator 90 extends downwardly through the central upper end plate opening 152
and is drivingly coupled to the upper end of the shaft 38.
[0049] The actuator support structure feature described above eliminates the need to supply
and utilize additional intermediate bracket structures between a base support structure,
formed integrally with the valve body 12, and the selected actuator. This component
reduction simplifies the valve body 12 design allowing it to be produced from various
materials, depending on the valve flow media, without changing the bracket material.
[0050] FIGS. 11 and 12 are illustrative of the rotary valve 206, specifically a "butterfly"
valve, having reduced component wear and reduced breakaway friction. FIG. 13 illustrates
the rotary valve 206 including the valve body 208 and the disc 210 to close the passage
in the valve body 208. The disc 210 has a sealable surface on plug periphery 226 and
when plug 210 rotates with the shaft 216 it engages the seal 212 only upon closing
the passage. In an exemplary embodiment a round disc 210 and an elliptical seal 212
are utilized, wherein a gap 217 is present between the disc 210 and the seal 212 proximate
to the rotational axis 224 (illustrated in FIG. 12) of the disc 210 and a "greater
than norman" interference is present in interference area 219. Thus, when the disc
210 is in the open position, a major axis 232 of the elliptical seal 212 (oriented
parallel to the rotational axis 224 of the shaft 216) is greater than a minor axis
238 of the disc 210 and the seal 212 does not touch or only lightly contacts the disc
210. As the disc 210 rotates to near closure, the disc periphery 226 engages a minor
axis 234 of the elliptical seal 212 (which is smaller than the disc diameter 230),
and the disc 210 stretches the seal 212 in the minor axis 234 direction thereby decreasing
the major axis 232 such that the gap 217 is closed and seal 212 engages the disc 210
proximate to the rotational axis 224 of the disc 210.
[0051] Another embodiment of the rotary valve 206 includes the valve seal 212 formed in
a "more elliptical shape" than the disc 210, where again the major axis 232 of the
seal 212 is dimensionally greater than a major axis 236 of the disc 210 proximate
to the shaft 216. Thus, the disc 210 would be less elliptical than the seal 212. As
described above, when the disc 210 rotated towards the "closed position" the disc
periphery 226 engages and stretches the seal 212 perpendicular to the shaft 216 and
dimensionally shrinks seal major axis 232 reducing a gap area 260 to zero gap. The
gap area 260 between the seal 212 and the disc 210 is reduced to an interference with
the disc 210 such that the seal 212 conforms to the periphery 226 ot the disc 210
(the seal 212 is not illustrated in the stretched configuration in FIG. 11). As a
result of this configuration, the disc 210 does not engage the seal 212 (as illustrated)
until the passage is substantially obstructed by the disc 210 and the seal 212 only
provides substantial contact pressure on the disc periphery 226 when the disc 210
substantially closes the passage.
[0052] FIG. 12 illustrates the rotary valve 206 having a valve body 203 constructed from
a metallic material. Polymer based housings may also be utilized for specific applications.
The specific diameter of an inlet 220 and an outlet 222 may be selected based upon
the desired fluid flow through the valve. The inlet 220 and the outlet 222 may be
connected a plurality of associated piping 223 by respective flanges or threads (not
shown). It is contemplated, however, that a variety of inlet and outlet connections
may be provided.
[0053] The volume of fluid flowing through the valve 206 is regulated by the radial tilt
or positioning of the disc 210. In one exemplary embodiment, the disc 210 is shaped
generally as a circular planar disc described by the diameter 230. It is contemplated
that other embodiments of the disc 210 could be a hemisphere or any other sealable
shape. For example, the disc 210 could be an elliptical shape ball of any degree and
not depart from the scope of the described embodiments. Butterfly valves, their assembly,
applications, and functionality are well known by those having skill in the art, thus,
the variety of different features, optional shapes and configurations of components
for rotary valves will not be discussed in detail herein although many different valve
designs may be utilized with the present invention.
[0054] The disc major axis 236 may be mounted substantially perpendicular to the shaft 216.
The disc major axis 236 engages the seal 212 in interference area 219. The sealable
surface on the disc periphery 226 is typically manufactured smooth such that when
the disc periphery 226 engages with the seal 212, a leak proof valve 206 is accomplished.
The seal 212 may be formed from a variety of ductile materials. A metallic material,
such as stainless steel, is typically preferred, however, the seal 212 may be manufactured
to utilize many different materials. The seal material selection largely depends on
the type of fluid that will come into contact with the seal 212. A corrosive fluid
will require a corrosion resistant seal. Likewise, a high temperature fluid will require
a high temperature seal. Most importantly, the seal 212 should be flexible and have
spring like or resilient qualities such that the seal 212 is deformable, yet robust
enough to withstand sliding contact with the disc 210 as the disc 210 cycles through
rotations and/or opens and closes.
[0055] In another embodiment the seal 212 fits in a seat 214. The seat 214 may be formed
by a recess in the valve body 208. The seat 214 may be machined forged welded, threaded
or cast into valve body 208. Typically, the seal 212 has a retaining mechanism such
as the seal support member 98 and the flat annular metal seal retaining member 100
(as illustrated in FIG. 3).
[0056] FIGS. 13 and 14 are cross-sectional views of sealing and seal retention/forming embodiments.
In FIGS. 11- 14 like elements have like reference numerals. As illustrated in FIGS.
13 and 14 grooves or recesses are typically utilized to appropriately secure, shape
or form the seal 212 with the help of a retaining mechanism such as a snap ring 94
or the seal support member 98 and the flat annular metal seal retaining member 100
illustrated in FIG. 3.
[0057] Formation of the seal 212 into an elliptical shape within the body can be accomplished
by many methods. The seal 212 may be manufactured in an oval shape (elliptical) or
it may be manufactured in round shape. The seal 212 may have a circular outside shape
or circumference and an elliptical inner shape or circumference. When seal 212 is
manufactured in a round inner shape, the seal 212 must be elliptically deformed as
it is inserted into the valve seat 214 of valve body 208. Deformation of the seal
212 to an elliptical shape can also be accomplished for example, by an elliptically
shaped valve seat previously identified as 92, and 92a. Thus, the inside circumference
of seal remains relatively constant, but its shape is distorted elliptically.
[0058] Many methods of seal retention and formation are available and known to those having
skill in the art and would not part from the scope of the present invention as defined
by the appended claims. The disc 210 may include a slight chamfer to improve sealable
surface long the disc periphery 226, vary the rate of engagement, and reduce possible
damage to seal. A chamfer or radius on the sealable surface along the disc periphery
226 provides a larger seating area between the disc 210 and the seal 212 upon passage
closure by the disc 210. A greater sealing surface area provides a more robust seal.
[0059] The "inner" circumference of the seal 212 is slightly smaller than the "outer" circumference
of the disc 210. This provides an interference fit between the disc 210 and the seal
212 which is typically 0,38mm and 0,89mm (between fifteen and thirty-five thousands
of an inch (.015"-.035")) measured at an infinitesimal sector or are. Constructing
a valve 206 that incorporates this tolerance profile is well known in the art, although
due to the configuration of the disclosed embodiments the amount of the interference
is not uniform around the periphery of the disc 210 prior to closure.
[0060] During closure, the seal minor axis 234 (illustrated in FIG. 11) is elongated by
the disc 210, and the seal major axis 232 is reduced much like pulling on two ends
of an annual rubber band. Thus, in the open position the seal minor axis 234 has a
greater than normal interference with the disc major axis 236, and as the plug major
axis 236 approaches closure and contacts the seal 212, the seal 212 elongates along
the minor axis 234 and contracts along the major axis 232 to conform to the disc 210
shape. When the disc 210 substantially closes the passageway, the contact between
the valve seal major axis 232 and the disc minor axis 238 forces more seal to disc
210 contact until contact between the valve seal major axis 232 and the disc minor
axis 238 substantially seals the passage. For example, when the disc 210 is within
approximately three degrees (3°) of closure, measured from the axis of the seal 212,
the valve seal 212 may still provide clearance, and as the disc 210 engages the seal
212 approximately two degrees (2°) from closure, the seal 212 substantially engages
the disc 210 proximate to the shaft 216 and at zero degrees (0°) seals around the
entire circumference of the disc 210.
[0061] The present invention also provides for frictionless operation between the disc 210
and the seal 212 when the valve 206 is used for throttling and operating at more than,
for example, 5% flow capacity. Since the seal 212 does not contact the disc 210 there
is no resulting friction in the "typical" operating range. Thus, an actuator (not
shown) will not be affected by breakaway friction.
[0062] The foregoing detailed description is to be clearly understood as being given by
way of illustration of the preferred embodiments of this invention. Various modifications
and additions can be made without departing from the scope of this invention as defined
by the appended claims. For example, a flat plate disc is shown, but other shapes
and sizes of discs, such as cylinders, voids, or hemispherical plates can be substituted
where appropriate. Further, the seal structures described herein may be manufactured
from PTFE or a variety of reinforced PTFE materials, including but not limited to:
carbon filled PTFE, glass filled PTFE, PEEK filled PTFE, DYNEON™, TFM™ and polyethylene
(ultra high modular weight). Likewise, each of the components described herein can
be constructed as a fixed portion of the valve casing or can be made adjustable and
removable. Accordingly, this description is meant to be taken only by way of example
and not to otherwise limit the scope of the invention. The scope of the present invention
is limited solely by the claims.
1. A valve (10) having reduced seal wear comprising:
a valve body (12) having an inlet and an outlet forming a passage in the valve body
(12),
a valve shaft (38) having an axis and extending into the valve body (12);
a disc (14) rotable by the valve shaft (38) to open and close the passage, the disc
(14) having a perimeter (24) a disc sealable surface (24), a minor axis parallel to
the valve shaft axis (16) and a major axis perpendicular to the valve shaft axis (16),
and
an elliptical valve seal (18) having a major axis and a minor axis, the elliptical
valve seal major axis aligned with and larger than the disc minor axis when the passage
is open, and when the disc major axis engages the elliptical valve seal minor axis
during closure of the passage the portion of the elliptical valve seal (18) proximate
to the valve seal minor axis engages the disc sealable surface (24) proximate to the
disc major axis, wherein the valve seal (18) deforms to substantially match the disc
perimeter (24) and the elliptical valve seal (18) has minimum wear during operation.
2. The valve (10) as in claim 1, wherein the disc minor axis has minimal interference
with the seal major axis when the passage is not substantially closed.
3. The valve (10) as in claim 1 or 2, further comprising a valve seal retainer (98, 100)
to retain the valve seal (18) in an elliptical position.
4. The valve (10) as in any of claims 1 to 3, wherein the disc (14) has an elliptical
shape and the valve seal (18) has an elliptical shape and the valve seal minor axis
is smaller than the disc minor axis.
5. The valve (10) as in any of claims 1 to 4, wherein the disc minor axis is the same
dimension as the valve seal major axis.
6. The valve (10) as in any of claims 1 to 5, wherein the disc (14) includes a hemispherical
seating surface.
7. The valve (10) as in claim 1, wherein the valve seal (18) does not provide a pressure
contact with the disc (14) until the disc (14) substantially closes the passage.
8. The valve (10) as in claim 1, wherein the valve seal (18) is a ductile material.
9. The valve (10) as in claim 1, wherein the valve seal (18) is a deformable metallic
material.
10. The valve (10) as in claim 1, wherein the valve seal (18) cooperates with a garter
spring (112).
11. The valve (10) as in claim 1, wherein the valve seal (18) includes an integral spring.
12. The valve (10) as in claim 11, wherein the integral spring is formed along an external
surface of the valve seal (18).
13. The valve (10) as in claim 11, wherein the integral spring is encapsulated by the
valve seal (18).
14. The valve (10) as in claim 1, wherein the valve seal (18) is a two-piece assembly
including an outer surface in press-fit engagement with the valve body (12).
15. The valve (10) as in claim 14, wherein the valve seal (18) further comprises a retention
ring cooperating with a retention groove formed into the valve body (12).
16. The valve (10) as in claim 1, wherein the valve seal (18) is a one-piece seal including
an outer surface in press-fit engagement with the valve body (12).
17. The valve (10) as in claim 16, wherein the valve seal (18) further comprises a retention
ring in cooperation with a retention groove formed into the valve body (12).
18. The valve (10) of claim 16, wherein the one-piece seal is a deformable metal having
a flexible arm.
19. The valve (10) as claim 1, wherein the disc (14) has an elliptical shape and the valve
seal (18) has an elliptical shape and the valve seal (18) is retained in a more elliptical
shape than the disc (14).
20. The valve (10) as in claim 1, wherein the valve seal (18) has an outer circumference
which is substantially round and an inner circumference which is substantially elliptical.
21. The valve (10) as in claim 1, wherein the valve shaft (38) is coupled to an actuator
(90).
22. The valve (10) as in claim 1, wherein the valve (10) is used for throttling fluid
flow.
23. The valve (10) as in claim 1, wherein the disc (14) is generally planar.
24. The valve (10) as in claim 1, wherein during closure of the passage, an interference
engagement of the disc sealable surface (24) with a portion of the valve seal (18)
elongates the valve seal minor axis wherein elongating the valve seal in a minor axis
contracts the seal (18) in a major axis reducing the valve seal major axis dimension
and forces contact between the valve seal (18) proximate to the valve seal major axis
and the disc sealable surface (24) proximate to the disc minor axis to substantially
seal the passage.
25. The valve (10) as in claim 1, wherein the valve seal (18) does not wear on the disc
minor axis until the disc provides substantial closure.
26. The valve (10) as in claim 1, wherein the valve body (12) further comprises:
an elliptical valve seat (92) sized to accept the valve seal (18).
27. The valve (10) as in claim 26, wherein the elliptical valve seat (92) is formed in
a reverse flow side of the valve body (12).
28. The valve (10) as in claim 1, wherein the valve seal (18) further comprises:
an annular retaining ring (98,110);
a deformable sealing ring (102) secured between the retaining ring (98,100) and the
valve body (12).
29. The valve (10) as in claim 28, wherein the deformable sealing ring (102) is a non-metallic
material.
30. The valve (10) as in claim 29, wherein the deformable sealing ring (102) cooperates
with a garter spring (112).
31. The valve (10) as in claim 29, wherein the deformable sealing ring (102) includes
an integral spring.
32. The valve (10) as in claim 31, wherein the integral spring is formed along an external
surface of the deformable sealing ring (102).
33. The valve (10) as in claim 31, wherein the integral spring is encapsulated by the
deformable sealing ring (102).
34. A method for minimizing valve seal wear while controlling flow of fluids comprising:
placing a substantially circular disc (14) in a substantially circular valve body
(12) passage to control fluid flow, the disc (14) having a rotational axis (16), a
disc diameter perpendicular to the rotational axis and a circumference;
forming an elliptical valve seal (18), having a major axis greater than a minor axis,
in the valve body (12) such that the valve seal (18) does not engage the disc (14)
at the rotational axis (16) when the passageway is open and the elliptical valve seal
(18) interferes with the disc diameter upon substantial closure of the passage; and
deforming the elliptical valve seal (18) during closure of the passage, wherein the
disc diameter engages the minor axis of the valve seal (18), elongating the valve
seal (18) in the minor axis dimension and reducing the valve seal (18) in the major
axis dimension, such that the elliptical valve seal (18) engages the disc tangential
to the rotational arc (134) when the disc (14) substantially closes the passageway
thereby providing control of flowing fluids with minimum valve seal wear.
35. The method as in claim 34, further comprising throttling fluid flow with the substantially
circular disc (14).
36. The method as in claim 34 or 35, further including retaining the valve seal (18) with
a valve seal retainer (98,100).
37. The method as in any of claims 34 to 36, further including forming a valve body (12)
with an elliptical seal groove.
38. The method as in any of claims 34 to 37, further including forming a valve body (12)
with a round seal groove therein.
39. The method as in any of claims 34 to 38, further including installing a valve seal
(18) into the valve body (12).
40. The method as in any of claims 34 to 39, further including installing the valve body
(12) into a process control loop.
1. Ventil (10) mit reduziertem Dichtungsverschleiß, Folgendes aufweisend:
einen Ventilkörper (12) mit einem Einlass und einem Auslass, die einen Durchgang in
dem Ventilkörper (12) bilden;
eine Ventilwelle (38), die einen Einlass hat und sich in den Ventilkörper (12) erstreckt;
eine Scheibe (14), die durch die Ventilwelle (38) drehbar ist, um den Durchgang zu
öffnen und zu schließen, wobei die Scheibe (14) einen Umfang (24), eine scheibenabdichtbare
Fläche (24), eine zur Ventilwellenachse (16) parallele Nebenachse und eine zur Ventilwellenachse
(16) senkrechte Hauptachse hat; und
eine elliptische Ventildichtung (18) mit einer Hauptachse und einer Nebenachse, wobei
die Hauptachse der elliptischen Ventildichtung mit der Scheibennebenachse ausgerichtet
und größer als diese ist, wenn der Durchgang offen ist, und wenn die Scheibenhauptachse
während des Schließens des Durchgangs an der Nebenachse der Ventildichtung angreift,
der Abschnitt der elliptischen Ventildichtung (18), der der Ventildichtungsnebenachse
am Nächsten ist, an der scheibenabdichtbaren Fläche (24), die der Scheibenhauptachse
am Nächsten ist, angreift, wobei sich die Ventildichtung (18) verformt, um sich im
Wesentlichen dem Scheibenumfang (24) anzupassen, und die elliptische Ventildichtung
während einer Betätigung einen minimalen Verschleiß hat.
2. Ventil (10) nach Anspruch 1, wobei zwischen der Scheibennebenachse und der Dichtungshauptachse
eine minimale Eingriffsstörung besteht, wenn der Durchgang nicht im Wesentlichen geschlossen
ist.
3. Ventil (10) nach Anspruch 1 oder 2, darüber hinaus einen Ventildichtungshalter (98,
100) umfassend, um die Ventildichtung (18) in einer elliptischen Position zu halten.
4. Ventil (10) nach einem der Ansprüche 1 bis 3, wobei die Scheibe (14) eine elliptische
Form hat, und die Ventildichtung (18) eine elliptische Form hat, und die Ventildichtungsnebenachse
kleiner ist als die Scheibennebenachse.
5. Ventil (10) nach einem der Ansprüche 1 bis 4, wobei es sich bei der Scheibennebenachse
um dieselbe Abmessung handelt wie bei der Ventildichtungshauptachse.
6. Ventil (10) nach einem der Ansprüche 1 bis 5, wobei die Scheibe (14) eine halbkugelförmige
Sitzfläche umfasst.
7. Ventil (10) nach Anspruch 1, wobei die Ventildichtung (18) keinen Druckkontakt mit
der Scheibe (14) herstellt, bis die Scheibe (14) den Durchgang im Wesentlichen schließt.
8. Ventil (10) nach Anspruch 1, wobei es sich bei der Ventildichtung (18) um einen duktilen
Werkstoff handelt.
9. Ventil (10) nach Anspruch 1, wobei es sich bei der Ventildichtung (18) um einen verformbaren
metallischen Werkstoff handelt.
10. Ventil (10) nach Anspruch 1, wobei die Ventildichtung (18) mit einer in sich geschlossenen
ringförmigen Schraubenfeder (112) zusammenwirkt.
11. Ventil (10) nach Anspruch 1, wobei die Ventildichtung (18) eine integrale Feder umfasst.
12. Ventil (10) nach Anspruch 11, wobei die integrale Feder entlang einer Außenfläche
der Ventildichtung (18) ausgebildet ist.
13. Ventil (10) nach Anspruch 11, wobei die integrale Feder durch die Ventildichtung (18)
eingekapselt ist.
14. Ventil (10) nach Anspruch 1, wobei die Ventildichtung (18) eine zweiteilige Einheit
ist, die eine mit dem Ventilkörper (12) in Presssitzeingriff stehende Außenfläche
umfasst.
15. Ventil (10) nach Anspruch 14, wobei die Ventildichtung (18) darüber hinaus einen Sicherungsring
umfasst, der mit einer im Ventilkörper (12) ausgebildeten Sicherungsnut zusammenwirkt.
16. Ventil (10) nach Anspruch 1, wobei die Ventildichtung (18) eine einteilige Dichtung
ist, die eine mit dem Ventilkörper (12) in Presssitzeingriff stehende Außenfläche
umfasst.
17. Ventil (10) nach Anspruch 16, wobei die Ventildichtung (18) darüber hinaus einen Sicherungsring
umfasst, der mit einer im Ventilkörper (12) ausgebildeten Sicherungsnut zusammenwirkt.
18. Ventil (10) nach Anspruch 16, wobei es sich bei der einteiligen Dichtung um ein verformbares
Metall mit einem flexiblen Arm handelt.
19. Ventil (10) nach Anspruch 1, wobei die Scheibe (14) eine elliptische Form hat, und
die Ventildichtung (18) eine elliptische Form hat, und die Ventildichtung (18) in
einer elliptischeren Form gehaltert ist als die Scheibe (14).
20. Ventil (10) nach Anspruch 1, wobei die Ventildichtung (18) einen äußeren Umfang hat,
der im Wesentlichen rund ist, und einen inneren Umfang, der im Wesentlichen elliptisch
ist.
21. Ventil (10) nach Anspruch 1, wobei die Ventilwelle (38) mit einem Stellglied (90)
gekoppelt ist.
22. Ventil (10) nach Anspruch 1, wobei das Ventil (10) zum Drosseln eines Fluidstroms
verwendet wird.
23. Ventil (10) nach Anspruch 1, wobei die Scheibe (14) allgemein plan ist.
24. Ventil (10) nach Anspruch 1, wobei während eines Schließens des Durchgangs ein Störungseingriff
der scheibenabdichtbaren Fläche (24) mit einem Abschnitt der Ventildichtung (18) die
Ventildichtungsnebenachse dehnt, wobei das Dehnen der Ventildichtung in einer Nebenachse
die Dichtung (18) in einer Hauptachse zusammenzieht, wodurch die Ventildichtungshauptachsenabmessung
reduziert und zwangsläufig ein Kontakt zwischen der Ventildichtung (18), die der Ventildichtungshauptachse
am Nächsten ist, und der scheibenabdichtbaren Fläche (24), die der Scheibennebenachse
am Nächsten ist, bewirkt wird, um den Durchgang abzudichten.
25. Ventil (10) nach Anspruch 1, wobei die Ventildichtung (18) an der Scheibennebenachse
keinen Verschleiß erfährt, bis die Scheibe wesentlichen Verschluss bereitstellt.
26. Ventil (10) nach Anspruch 1, wobei der Ventilkörper (12) darüber hinaus umfasst:
einen elliptischen Ventilsitz (92), der zur Aufnahme der Ventildichtung (18) bemessen
ist.
27. Ventil (10) nach Anspruch 16, wobei der elliptische Ventilsitz (92) in einer Gegenstromseite
des Ventilkörpers (12) ausgebildet ist.
28. Ventil (10) nach Anspruch 1, wobei die Ventildichtung (18) darüber hinaus umfasst:
einen ringförmigen Haltering (98, 100);
einen verformbaren Dichtungsring (102), der zwischen dem Haltering (98, 100) und dem
Ventilkörper (12) befestigt ist.
29. Ventil (10) nach Anspruch 28, wobei es sich bei dem verformbaren Dichtungsring (102)
um einen nichtmetallischen Werkstoff handelt.
30. Ventil (10) nach Anspruch 29, wobei der verformbare Dichtungsring (102) mit einer
in sich geschlossenen ringförmigen Schraubenfeder (112) zusammenwirkt.
31. Ventil (10) nach Anspruch 29, wobei der verformbare Dichtungsring (102) eine integrale
Feder umfasst.
32. Ventil (10) nach Anspruch 31, wobei die integrale Feder entlang einer Außenfläche
des verformbaren Dichtungsrings (102) ausgebildet ist.
33. Ventil (10) nach Anspruch 31, wobei die integrale Feder durch den verformbaren Dichtungsring
(102) eingekapselt ist.
34. Verfahren zum Minimieren eines Ventildichtungsverschleißes während des Steuerns des
Flusses von Fluiden, Folgendes umfassend:
Einsetzen einer im Wesentlichen kreisförmigen Scheibe (14) in einen im Wesentlichen
kreisförmigen Durchgang eines Ventilkörpers (12), wobei die Scheibe (14) eine Drehachse
(16), einen zur Drehachse senkrechten Durchmesser und einen Umfang hat;
Ausbilden einer elliptischen Ventildichtung (18) mit einer Hauptachse, die größer
ist als eine Nebenachse, im Ventilkörper (12), und zwar so, dass die Ventildichtung
(18) nicht an der Drehachse (16) angreift, wenn der Durchgang offen ist, und die elliptische
Ventildichtung (18) bei einem wesentlichen Verschließen des Durchgangs einen Störeingriff
mit dem Scheibendurchmesser herstellt; und
Verformen der elliptischen Ventildichtung (18) während eines Verschließens des Durchgangs,
wobei der Scheibendurchmesser an der Nebenachse der Ventildichtung (18) angreift,
die Ventildichtung (18) in der Nebenachsenabmessung dehnt und die Ventildichtung (18)
in der Hauptachsenabmessung verkleinert, so dass die elliptische Ventildichtung (18)
tangential zum Drehungsbogen (134) an der Scheibe angreift, wenn die Scheibe (14)
den Durchgang im Wesentlichen schließt, wodurch eine Steuerung von strömenden Fluiden
mit minimalem Ventildichtungsverschleiß bereitgestellt wird.
35. Verfahren nach Anspruch 34, darüber hinaus ein Drosseln des Fluidstroms mit der im
Wesentlichen kreisförmigen Sacheibe (14) umfassend.
36. Verfahren nach Anspruch 34 oder 35, darüber hinaus ein Haltern der Ventildichtung
(18) mit einem Ventildichtungshalter (98, 100) umfassend.
37. Verfahren nach einem der Ansprüche 34 bis 36, darüber hinaus ein Ausbilden eines Ventilkörpers
(12) mit einer elliptischen Dichtungsnut umfassend.
38. Verfahren nach einem der Ansprüche 34 bis 37, darüber hinaus ein Ausbilden eines Ventilkörpers
(12) mit einer darin befindlichen runden Dichtungsnut umfassend.
39. Verfahren nach einem der Ansprüche 34 bis 38, darüber hinaus ein Einsetzen einer Ventildichtung
(18) in den Ventilkörper (12) umfassend.
40. Verfahren nach einem der Ansprüche 34 bis 39, darüber hinaus ein Einsetzen des Ventilkörpers
(12) in eine Prozessregelschleife umfassend.
1. Robinet (10) ayant une usure réduite du joint d'étanchéité, comprenant :
un corps de robinet (12) ayant une entrée et une sortie formant un passage dans le
corps de robinet (12) ;
une tige de robinet (38) ayant un axe et s'étendant dans le corps de robinet (12)
;
un disque (14) pouvant tourner grâce à la tige de robinet (38) pour ouvrir et fermer
le passage, le disque (14) ayant un périmètre (24), une surface scellable de disque
(24), un axe mineur parallèle à l'axe (16) de la tige de robinet et un axe majeur
perpendiculaire à l'axe (16) de la tige de robinet, et
un joint d'étanchéité de robinet elliptique (18) ayant un axe majeur et un axe mineur,
l'axe majeur du joint d'étanchéité de robinet elliptique étant aligné et plus grand
que l'axe de disque mineur lorsque le passage est ouvert, et lorsque l'axe majeur
du disque met en prise l'axe mineur du joint d'étanchéité de robinet elliptique pendant
la fermeture du passage, la partie du joint d'étanchéité de robinet elliptique (18)
à proximité de l'axe mineur du joint d'étanchéité de robinet met en prise la surface
scellable de disque (24) à proximité de l'axe majeur du disque, dans lequel le joint
d'étanchéité de robinet (18) se déforme pour correspondre sensiblement au périmètre
(24) du disque et le joint d'étanchéité de robinet elliptique (18) a une usure minimum
pendant le fonctionnement.
2. Robinet (10) selon la revendication 1, dans lequel l'axe mineur du disque a une interférence
minimum avec l'axe majeur du joint d'étanchéité lorsque le passage n'est sensiblement
pas fermé.
3. Robinet (10) selon la revendication 1 ou 2, comprenant en outre un dispositif de retenue
de joint d'étanchéité de robinet (98, 100) pour retenir le joint d'étanchéité de robinet
(18) dans une position elliptique.
4. Robinet (10) selon l'une quelconque des revendications 1 à 3, dans lequel le disque
(14) a une forme elliptique et le joint d'étanchéité de robinet (18) a une forme elliptique
et l'axe mineur du joint d'étanchéité de robinet est plus petit que l'axe mineur du
disque.
5. Robinet (10) selon l'une quelconque des revendications 1 à 4, dans lequel l'axe mineur
du disque a la même dimension que l'axe majeur du joint d'étanchéité de robinet.
6. Robinet (10) selon l'une quelconque des revendications 1 à 5, dans lequel le disque
(14) comprend une surface de siège hémisphérique.
7. Robinet (10) selon la revendication 1, dans lequel le joint d'étanchéité de robinet
(18) ne fournit pas de contact de pression avec le disque (14) jusqu'à ce que le disque
(14) ferme sensiblement le passage.
8. Robinet (10) selon la revendication 1, dans lequel le joint d'étanchéité de robinet
(18) est un matériau ductile.
9. Robinet (10) selon la revendication 1, dans lequel le joint d'étanchéité de robinet
(18) est un matériau métallique déformable.
10. Robinet (10) selon la revendication 1, dans lequel le joint d'étanchéité de robinet
(18) coopère avec un ressort jarretière (112).
11. Robinet (10) selon la revendication 1, dans lequel le joint d'étanchéité de robinet
(18) comprend un ressort solidaire.
12. Robinet (10) selon la revendication 11, dans lequel le ressort solidaire est formé
le long d'une surface externe du joint d'étanchéité de robinet (18).
13. Robinet (10) selon la revendication 11, dans lequel le ressort solidaire est encapsulé
par le joint d'étanchéité de robinet (18).
14. Robinet (10) selon la revendication 1, dans lequel le joint d'étanchéité de robinet
(18) est un ensemble de deux pièces comprenant une surface externe en mise en prise
d'ajustement à la presse avec le corps de robinet (12).
15. Robinet (10) selon la revendication 14, dans lequel le joint d'étanchéité de robinet
(18) comprend en outre une bague de retenue coopérant avec une rainure de retenue
formée dans le corps de robinet (12).
16. Robinet (10) selon la revendication 1, dans lequel le joint d'étanchéité de robinet
(18) est un joint d'étanchéité d'un seul tenant comprenant une surface externe en
mise en prise d'ajustement à la presse avec le corps de robinet (12).
17. Robinet (10) selon la revendication 16, dans lequel le joint d'étanchéité de robinet
(18) comprend en outre une bague de retenue en coopération avec une rainure de retenue
formée dans le corps de robinet (12).
18. Robinet (10) selon la revendication 16, dans lequel le joint d'étanchéité d'un seul
tenant est un métal déformable ayant un bras flexible.
19. Robinet (10) selon la revendication 1, dans lequel le disque (14) a une forme elliptique
et le joint d'étanchéité de robinet (18) a une forme elliptique et le joint d'étanchéité
de robinet (18) est retenu dans une forme plus elliptique que le disque (14).
20. Robinet (10) selon la revendication 1, dans lequel le joint d'étanchéité de robinet
(18) a une circonférence externe qui est sensiblement ronde et une circonférence interne
qui est sensiblement elliptique.
21. Robinet (10) selon la revendication 1, dans lequel la tige de robinet (38) est couplée
à un actionneur (90).
22. Robinet (10) selon la revendication 1, dans lequel le robinet (10) est utilisé pour
étrangler l'écoulement de fluide.
23. Robinet (10) selon la revendication 1, dans lequel le disque (14) est généralement
plan.
24. Robinet (10) selon la revendication 1, dans lequel, pendant la fermeture du passage,
une mise en prise par interférence de la surface scellable de disque (24) avec une
partie du joint d'étanchéité de robinet (18) allonge l'axe mineur du joint d'étanchéité
de robinet, dans lequel l'allongement du joint d'étanchéité de robinet dans un axe
mineur contracte le joint d'étanchéité (18) dans un axe majeur réduisant la dimension
de l'axe majeur du joint d'étanchéité de robinet et force le contact entre le joint
d'étanchéité de robinet (18) à proximité de l'axe majeur du joint d'étanchéité de
robinet et la surface scellable de disque (24) à proximité de l'axe mineur du disque
pour fermer sensiblement hermétiquement le passage.
25. Robinet (10) selon la revendication 1, dans lequel le joint d'étanchéité de robinet
(18) ne s'use pas sur l'axe mineur du disque jusqu'à ce que le disque fournisse une
fermeture sensible.
26. Robinet (10) selon la revendication 1, dans lequel le corps de robinet (12) comprend
en outre :
un siège de robinet elliptique (92) dimensionné pour accepter le joint d'étanchéité
de robinet (18).
27. Robinet (10) selon la revendication 26, dans lequel le siège de robinet elliptique
(92) est formé dans un côté d'écoulement inversé du corps de robinet (12).
28. Robinet (10) selon la revendication 1, dans lequel le joint d'étanchéité de robinet
(18) comprend en outre :
une bague de retenue annulaire (98, 100) ;
une bague d'étanchéité déformable (102) fixée entre la bague de retenue (98, 100)
et le corps de robinet (12).
29. Robinet (10) selon la revendication 28, dans lequel la bague d'étanchéité déformable
(102) est un matériau non métallique.
30. Robinet (10) selon la revendication 29, dans lequel la bague d'étanchéité déformable
(102) coopère avec un ressort jarretière (112).
31. Robinet (10) selon la revendication 29, dans lequel la bague d'étanchéité déformable
(102) comprend un ressort solidaire.
32. Robinet (10) selon la revendication 31, dans lequel le robinet solidaire est formé
le long d'une surface externe de la bague d'étanchéité déformable (102).
33. Robinet (10) selon la revendication 31, dans lequel le ressort solidaire est encapsulé
par la bague d'étanchéité déformable (102).
34. Procédé pour minimiser l'usure du joint d'étanchéité de robinet tout en contrôlant
l'écoulement des fluides, comprenant les étapes consistant à :
placer un disque sensiblement circulaire (14) dans un passage de corps de robinet
(12) sensiblement circulaire pour contrôler l'écoulement de fluide, le disque (14)
ayant un axe de rotation (16), un diamètre de disque perpendiculaire à l'axe de rotation
et une circonférence ;
former un joint d'étanchéité de robinet elliptique (18), ayant un axe majeur supérieur
à un axe mineur, dans le corps de robinet (12) de sorte que le joint d'étanchéité
de robinet (18) ne met pas en prise le disque (14) au niveau de l'axe de rotation
(16) lorsque la voie de passage est ouverte et que le joint d'étanchéité de robinet
elliptique (18) interfère avec le diamètre de disque suite à la fermeture sensible
du passage ; et
déformer le joint d'étanchéité de robinet elliptique (18) pendant la fermeture du
passage, dans lequel le diamètre de disque met en prise l'axe mineur du joint d'étanchéité
de robinet (18), allongeant le joint d'étanchéité de robinet (18) dans la dimension
de l'axe mineur et réduisant le joint d'étanchéité de robinet (18) dans la dimension
de l'axe majeur, de sorte que le joint d'étanchéité de robinet elliptique (18) met
en prise le disque tangentiel à l'arc de rotation (134) lorsque le disque (14) ferme
sensiblement la voie de passage, fournissant ainsi le contrôle de l'écoulement des
fluides avec une usure du joint d'étanchéité de robinet minimum.
35. Procédé selon la revendication 34, comprenant en outre l'étape consistant à étrangler
l'écoulement de fluide avec le disque sensiblement circulaire (14).
36. Procédé selon la revendication 34 ou 35, comprenant en outre l'étape consistant à
retenir le joint d'étanchéité de robinet (18) avec un dispositif de retenue (98, 100)
du joint d'étanchéité de robinet.
37. Procédé selon l'une quelconque des revendications 34 à 36, comprenant en outre l'étape
consistant à former un corps de robinet (12) avec une rainure de joint d'étanchéité
elliptique.
38. Procédé selon l'une quelconque des revendications 34 à 37, comprenant en outre l'étape
consistant à former un corps de robinet (12) avec une rainure de joint d'étanchéité
ronde à l'intérieur de ce dernier.
39. Procédé selon l'une quelconque des revendications 34 à 38, comprenant en outre l'étape
consistant à installer un joint d'étanchéité de robinet (18) dans le corps de robinet
(12).
40. Procédé selon l'une quelconque des revendications 34 à 39, comprenant en outre l'étape
consistant à installer le corps de robinet (12) dans une boucle de régulation de processus.