The invention relates to a refining assembly, and more particularly, to a refining assembly for refining aqueous suspended fibers.
It has been known for a long time to refine cellulose fibers, in other words virgin pulp and/or recycled fibers in order to obtain the desired characteristics in the thus produced fibrous web, in particular in regard to strength, forming and surface properties.
Due to the relatively rapid wear and tear in the case of the refiners used for this purpose, the refining surfaces are formed by replaceable refining sets that are screwed together with the corresponding supporting surface.
To achieve the desired fiber properties, in particular the degree of refining, the refining sets must be adapted as effectively as possible to the pulp that is to be treated—also in order to prevent excessive wear and tear to the sets.
In order to increase the efficiency of fiber treatment, optimal utilization of the available refining surface is strived for.
What is needed in the art is an improvement in the efficiency of fiber treatment.
According to an embodiment of the invention, a refining assembly for refining aqueous suspended cellulose fibers includes two refining surfaces arranged coaxially to one another and forming a refining gap. The two refining surfaces are configured to rotate relative to one another and are formed by refining bars and grooves extending between them. At least one directional component of the refining bars extends radially relative to an axis of rotation.
According to an embodiment of the invention, the refining bars have annular elevations and depressions that run concentrically to the axis of rotation of the refining surfaces, whereby an annular elevation of one refining surface protrudes into an annular depression of the opposite refining surface.
This forces a shift of part of the cellulose fibers from one refining surface to the opposite refining surface, resulting in a considerable increase in the intensity of the treatment.
In order to maintain the intensity in radial direction, and according to another embodiment of the invention, the distance between the refining bars of the opposite refining surfaces should remain the same in radial direction.
In order to increase efficiency, and accordioning to another embodiment of the invention, additional turbulences and shifts between the refining surfaces can also be achieved in that the grooves have annular elevations and depressions that run concentrically to the axis of rotation of the refining surfaces, whereby an annular elevation of one refining surface protrudes into an annular depression of the opposite refining surface.
To avoid blockages, the distance between the grooves in the opposite refining surfaces should remain the same in radial direction also in this case.
In the interest of an efficient but at the same time gentle fiber treatment it is however advantageous if the radial position of the elevations or respectively depressions in the refining bars corresponds with the radial position of the elevations or respectively the depressions in the grooves of a refining surface.
To minimize wear and tear, the height of the annular elevations or respectively depressions should gradually increase and/or gradually decrease in radial direction.
In an embodiment, the height of the elevations or respectively depressions of the refining bar and the grooves relates to the respective supporting surface for the refining sets that form the refining surface. Depending on the type of refiner, these supporting surfaces for mounting of the refining sets are either flat or conical.
For an intensive turbulence it can however be advantageous if the height of the annular elevation or respectively depression increases in radial direction in one or several increments and or decreases in one or several increments.
Combinations are herein also possible, for example gradually increasing elevations or respectively depressions and incrementally decreasing elevations or respectively depressions, or vice versa.
In one embodiment, and for optimal use of both refining surfaces, elevations and depressions should alternate in both refining surfaces in radial direction.
Depending on the type of fibrous material and the requirements of the treatment thereof it may be sufficient, if elevations and depressions extend only over a partial radial section of the refining surface.
Comprehensive use of the advantages of the invention results however, if the elevations and depressions extend over the entire refining surface.
Moreover, the flow through the refining gap can also be impeded in that at least some grooves are closed off at least partially by barriers. This also intensifies the fiber treatment.
In the final analysis, considerable energy savings can thus be achieved.
The above-mentioned and other features and advantages of this invention, and the manner of attaining them, will become more apparent and the invention will be better understood by reference to the following description of embodiments of the invention taken in conjunction with the accompanying drawings, wherein:
Corresponding reference characters indicate corresponding parts throughout the several views. The exemplifications set out herein illustrate embodiments of the invention and such exemplifications are not to be construed as limiting the scope of the invention in any manner.
According to
The two annular refining surfaces 2, 3 are positioned parallel to one another, wherein the distance between them is generally adjustable.
Rotating refining surface 3 is herein moved in rotational direction by a shaft 16 that is rotatably mounted in the housing. Shaft 16 is driven by a drive that is also located in the housing.
In the herein illustrated example, the fibrous suspension that is to be refined and which contains cellulose fibers 1 runs via an infeed through the center into refining gap 6 between the two refining surfaces 2, 3.
The fibrous suspension passes interacting refining surfaces 2, 3 in radially outward direction and exits the adjacent annulus through an outlet.
Means that are generally known with which power is generated in order to press the two refining surfaces 2, 3 against one another are not illustrated.
Both refining surfaces 2, 3 are respectively formed by several refining disks 14, 15 as illustrated in
Refining disks 14, 15 that are arranged closely adjacent next to one another provide a continuous refining surface 2, 3 in circumferential direction. Refining disks 14, 15 respectively are mounted on a flat supporting surface 17.
As illustrated in
The cross section of refining bars 4 which are also referred to as blades is generally rectangular. However, the scope of the present invention covers other shapes.
Grooves 5 between refining bars 4 also have a rectangular cross section and serve as flow channels for the fibrous suspension. The groove depth is generally between 2 and 20 mm.
So that the groove width does not become too large in radially outward direction at a constant and uniform width of refining bars 4, refining bars 4 can be split or newly added in radial direction 10.
According to an embodiment of the invention, refining bars 4 have annular elevations 8 and depressions 9 that run concentrically to axis of rotation 7 of refining surfaces 2,3, whereby an annular elevation 8 of one refining surface 2, 3 protrudes into an annular depression 9 of opposite refining surface 2,3.
Due to elevations 8 and depressions 9, turbulences are caused in the fibrous suspension that is to be treated. Moreover, when flowing through refining gap 6, the fibrous suspension is forced at least partially to shift between refining surfaces 2, 3.
The result is increased efficiency in refining.
In
In contrast thereto, grooves 5 contribute to the turbulence in the examples illustrated in
To avoid blockages due to constrictions, the radial position of elevations 8 or respectively depressions 9 of refining bars 4 corresponds with the radial position of elevations 11 or respectively depressions 12 of grooves 5 of a refining surface 2, 3.
In
It is for example however also possible that the height of grooves 5 relative to supporting surface 17 in radial direction 10 fluctuates less than the height of refining bars 4 relative to supporting surface 17.
In the interest of a homogeneous treatment during flow, elevations 8, 11 and depressions 9, 12 alternate in all arrangements and on both refining surfaces 2, 3 in radial direction 10.
In one embodiment, refining surfaces 2, 3 are to be designed depending upon cellulose fibers 1 that are to be treated and according to the requirements of such treatment.
In
As shown in
In the case of only one increment between elevation 8, 11 and depression 9, 12 a slanted transition is to be recommended for minimization of wear and tear, according to
In general, elevations 8, 11 and depressions 8, 12 extend over the entire refining surface 2, 3.
In many cases however—as can be seen in
Additionally, barriers 13 can also intensify the fiber treatment, according to
While this invention has been described with respect to at least one embodiment, the present invention can be further modified within the spirit and scope of this disclosure. This application is therefore intended to cover any variations, uses, or adaptations of the invention using its general principles. Further, this application is intended to cover such departures from the present disclosure as come within known or customary practice in the art to which this invention pertains and which fall within the limits of the appended claims.
Number | Date | Country | Kind |
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10 2015 223 027.9 | Nov 2015 | DE | national |
This is a division of U.S. patent application Ser. No. 15/972,615, entitled “REFINING SET”, filed May 7, 2018, which is a continuation of PCT application No. PCT/EP2016/074303, entitled “REFINING SET”, filed Oct. 11, 2016, which are both incorporated herein by reference.
Number | Date | Country | |
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Parent | 15972615 | May 2018 | US |
Child | 16883171 | US |
Number | Date | Country | |
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Parent | PCT/EP2016/074303 | Oct 2016 | US |
Child | 15972615 | US |