The present invention relates to brush seals, which may be in strip form for linear sealing applications, or in annular form for circular and non circular sealing applications.
Brush seals are used in many industries and commonly take the form of a pair of clamping plates between which is clamped a bristle pack. The clamping plates may be of different heights, providing different levels of support to the bristles depending on the direction of application of force. A section through a conventional annular brush seal 2 is illustrated in
It will be appreciated that the sectional view of
During manufacture of a seal, the component parts of the seal are assembled and a clamping load is applied to the clamping plates 4, 6 while the weld operation takes place. The bristle pack 8 may contain a great number of individual bristles, and the packing arrangement of the bristles may vary across the clamped region of the bristle pack. Such variations in packing arrangement can impact upon the clamping load experienced across the bristle pack 8. The result is a bristle loading pattern that varies in an uncontrolled manner across the clamping region, with regions of maximum clamping load, where the bristles of the bristle pack are strongly constrained and unable to move, and regions of lesser loading, where some movement of the bristles is possible. These regions of greater and lesser clamping load cannot be accurately identified, meaning the precise location at which bristles are rigidly fixed, and hence the effective bristle length, is unknown. Even very small variations in clamping load applied to the plates, or in plate separation, during the weld operation can impact upon the effective length of the bristle pack. These variations also affect the weld depth around the circumferential or outer weld.
The uncontrolled nature of the variation in clamping means that the effective bristle length and the weld depth are not constant around any one seal or between seals, resulting in considerable variation in bristle pack behaviour. Such in-part and part-to-part variation in bristle pack behaviour can result in seal components being badly matched to the mechanical environment in which they are employed, and hence to substantial variation in component life.
Issues of bristle packing and clamping load variation are particularly acute in annular brush seals. Owing to the radially extending nature of the bristle pack, the same number of bristles must be packed into a cylindrical packing area that reduces with reducing radius. The packing density of bristles increases towards the radially inner edge of the clamping region, owing to the reduction in circumference with decreasing radius. Consequently, the clamping force experienced by the bristle back increases with decreasing radius. The deeper the clamping plates in the radial direction, the greater the variation in packing density, and hence in clamping load over the plates.
The present invention seeks to address some or all of the above mentioned disadvantages.
According to the present invention, there is provided an annular brush seal comprising first and second annular clamp plates, each clamp plate comprising an opposed annular clamping surface, and a pack of radially extending bristles clamped between the clamping surfaces of the clamp plates, wherein the clamping surface of at least one of the clamp plates is profiled, such that a separation between the clamping surfaces increases with decreasing radius.
The clamping surface may be profiled such that separation between the clamping surfaces is inversely proportional to radius. In this manner, it may be ensured that the cylindrical packing area available to the bristles remains substantially constant with changing radial location.
Both clamping surfaces may be profiled, the two profiles cooperating to provide the desired relationship between separation and radial location.
The profiled clamping surface may further comprise an annular surface feature causing a step change in the profile of the surface. A step change in the surface profile causes a corresponding step change in the load experienced by the bristle pack, thus providing a defined radial location of maximum loading.
The annular surface feature may comprise an annular shoulder. The annular shoulder may be arranged such that the step change in surface profile causes a step increase in clamping surface separation with a reduction in radius.
The annular surface feature may comprise an annular protrusion, such as an annular rib formed on the clamping surface.
The annular surface feature may comprise an annular recess. The annular recess may extend past a radially inner edge of a clamped region of the bristle pack.
The annular surface feature may comprise a cooperating protrusion and recess. The recess may be located on a radially inner side of the protrusion.
According to another aspect of the present invention, there is provided a brush seal comprising first and second clamp plates, each clamp plate comprising an opposed clamping surface, and a bristle pack clamped between the clamping surfaces of the clamp plates, wherein the clamping surface of at least one of the clamp plates comprises a linear surface feature extending across the clamping surface and causing a step change in the profile of the clamping surface.
A step change in the clamping surface causes a corresponding step change in the load experienced by the bristle pack, thus providing a defined radial location of maximum loading.
The linear surface feature may extend across the clamping surface substantially to the full extent of the bristle pack clamped between the clamping surfaces.
The surface feature may comprise an integral feature of the clamp plate. Alternatively, the surface feature may comprise a separate component cooperating with the clamp plate.
The surface feature may comprise a shoulder. The shoulder may be arranged such that the step change in surface profile causes a step increase in clamping surface separation in a direction towards the free ends of the bristles.
The surface feature may comprise a protrusion, such as a rib formed on the clamping surface.
The surface feature may comprise a recess. The recess may extend past an inner edge of a clamped region of the bristle pack.
The surface feature may comprise a cooperating protrusion and recess. The recess may be located on an inner side of the protrusion.
The brush seal may comprise an annular seal. The clamp plates may comprise annular clamping surfaces and the surface feature may comprise an annular surface feature.
For a better understanding of the present invention, and to show how it may be carried into effect, reference will now be made, by way of example, to the following drawings, in which:—
The present invention addresses the disadvantages of the prior art in two ways. The increased packing density experienced at radially inner locations of annular seals is addressed by profiling the clamping surface or surfaces, such that separation of the clamping surfaces varies inversely with radius, providing a substantially constant cylindrical packing area. This profiling may be combined with, or as an alternative to, a step change in the clamping surface, caused for example by a shoulder, recess or protrusion. Such a step change in clamping surface causes a corresponding step change in clamping force experienced by the bristle pack, hence defining a precise radial location for maximum axial loading. This location is then the location at which the bristles become fixed, and defines the effective length of the bristles. In this manner, variation in bristle free lengths is minimised and a more repeatable bristle clamping position is established. Aspects of the present invention thus allow for consistent and repeatable bristle pack behaviour around a single seal and between different seals.
With reference to
Another embodiment of the present invention is illustrated in
With reference to
As discussed above, the present invention also provides for the establishment of a uniform clamping load in an annular brush seal by profiling one or both of the clamping surfaces. A seal embodying this concept is illustrated in
The cylindrical packing area available to the bristle pack at a radius r is calculated by the formula:
Packing area=2πrs
where s is the separation distance between the clamping surfaces at the radius r.
Thus, with the parallel clamping surfaces of the prior art, a bristle pack must be forced into a cylindrical packing area that decreases towards the radially inner edge of the seal. In contrast, according to the present invention, the cylindrical packing area may remain constant with changing radius, owing to the clamping plate profiling that results in a relationship between separation s and radius r of:
It will be appreciated that this relationship represents an idealised form of the invention, and that the profile of the clamping surface 512 need not exactly match the ideal in order to deliver the advantages of the invention. The substantially constant packing area available to the bristle pack ensures that clamping force remains largely constant with changing radius, allowing greater control of bristle packing and more even distribution of packing load.
Features of the various embodiments of the invention described above may be combined in an advantageous manner, as illustrated for example in
The present invention thus addresses the key areas of bristle free length variability and weld process control, allowing for the formation of repeatable bristle packs, with little variation around a single part and also from part-to-part.
It will be appreciated that the invention may be applied to circular or non circular seals. The invention may also be applied to brush seal strips for linear sealing problems where a defined bristle or fibre length is necessary to reduce or remove variability in seal performance. The invention may be employed in any application where free fibre or bristle length is important, and particularly in applications where the bristle pack has a radially extending element; the reduction in cylindrical clamping area with radius causing ambiguity in the exact location of bristle or fibre clamping. The invention may be applied to metallic or non metallic seals used in gas or steam turbines, pumps or compressors.
Number | Date | Country | Kind |
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1115773.2 | Sep 2011 | GB | national |
This is a Divisional application of application Ser. No. 13/591,947 filed Aug. 22, 2012. The disclosure of the prior application is hereby incorporated by reference herein in its entirety.
Number | Date | Country | |
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Parent | 13591947 | Aug 2012 | US |
Child | 14816557 | US |