Not applicable.
The invention relates to refiners for refining fibrous material and especially to a blade segment for a refiner for refining fibrous material.
Refiners used for refining fibrous material, such as refiners used for manufacturing mechanical pulp or in any low consistency refining, comprise typically two refining elements opposite to each other and turning relative to each other, i.e., one or both of them is/are rotating. The refining elements comprise refining surfaces provided with blade bars and blade grooves therebetween, the blade bars being intended to defiber and refine the material to be refined and the blade grooves being intended to convey the material to be refined forward along the refining surfaces. The refining surface of the refining element is typically formed of several blade segments fastened to a body of the respective refining element, each blade segment comprising a respective refining surface formed by blade bars and blade grooves therebetween. The complete refining surface of the refining element is thus formed of the refining surfaces of several blade segments fastened next to each other in the refining element. EP-publication 3401439 B1 discloses a blade segment applicable to be used in refiners for refining fibrous material.
An object of the present invention is to provide a novel blade segment for a refiner for refining fibrous material, as well as a novel refiner for refining fibrous material.
The invention is based on the idea of configuring at least one side edge of the blade segment to provide such a shape that deviates from a direction of a longitudinal axis of the blade segment.
When the shape of at least one side edge of the blade segment is arranged to have a shape that deviates from the direction of the longitudinal axis of the blade segment, and when the configuration of the opposite side edge is selected in cooperation with the configuration of the first mentioned side edge, it provides longitudinal slit-like openings providing flow paths between the neighboring blade segments for supplying the fibrous material to be refined into the refining chamber between the stator and the rotor and for discharging the fibrous material already refined out of the refining chamber. This slit-like opening has therefore a center line the direction of which deviates from the direction of the longitudinal axis of the blade segment at least at most part of the extension of the opening. This has the effect that an angle of incidence between the openings in the rotor and in the stator changes in the axial direction of the refiner, causing a point of incidence between the openings in the rotor and in the stator to move from the axial direction of the refiner. This, in turn, has the effect that possible flow variations appearing in an operation of a refiner of prior art may be diminished.
For the sake of clarity, the figures show some embodiments of the invention in a simplified manner. Like reference numerals identify like elements in the figures.
The refiner 1 of
The refiner 1 further comprises a rotatable refining element 6, i.e., a rotor 6, of the refiner 1. The rotor 6 comprises a hub 7. The rotor 6 further comprises two or more rotor blade segments 8 supported to the hub 7, each rotor blade segment 8 comprising blade bars and blade grooves therebetween. The blade bars and the blade grooves in each rotor blade segment 8 form a refining surface 9 of the respective blade segment 8, the refining surface 9 of each rotor blade segment 8 thereby providing a part of a refining surface of the rotor 6. A complete refining surface of the rotor 6 is formed of the refilling surfaces 9 of a necessary number of the blade segments 8 fastened next to each other in the rotor 6 so that the complete refining surface 9 extending over the whole circumference of the rotor 6 is provided. For the sake of clarity, both the refining surface of each single rotor blade segment 8 as well as the complete refining surface of the rotor 6 are herein denoted with the same reference sign 9.
The hub 7 of the rotor 6 is connected to a driving motor 10 by a shaft 11 so that the rotor 6 can be rotated relative to the stator 3 in a direction of arrow RD, for instance, the arrow RD thus indicating an intended rotation direction RD of the rotor 6.
The refiner 1 may also comprise a loading device which, for the sake of clarity, is not shown in
The fibrous material to be refined is fed into the refiner 1 via a feed channel 13 in a manner shown by arrow F. In one embodiment most of the fibrous material fed into the refiner 1 passes, in a manner schematically shown by arrows P, through openings 14, i.e., flow paths, in the refining surface 9 of the rotor 6 into the refining chamber 12, wherein the fibrous material is to be refined. Furthermore, most of the already refined fibrous material is, in turn, discharged through openings 15, i.e., flow paths, in the refining surface 9 of the stator 3 into an intermediate space 16 between the frame 2 of the refiner 1 and the stator 3, wherefrom the refined material is removed via a discharge channel 17 from the refiner 1, as schematically shown by arrow D.
Since the space between the rotor 6 and the frame 2 of the refiner 1 of
In the embodiment of
It is emphasized that in addition to the conical refiner disclosed above the blade segment of the solution described herein may be applied in other kinds of conical refiners too. In addition to the conical refiners the blade segment of the solution described herein is applicable also in cylindrical refiners and disc refiners as well as in refiners comprising both a conical portion and a disc portion.
Similarly, in the circumferential direction of the rotor 6 there are a number of adjacent inner blade segments 8a on the side of the inner end 18 of the rotor 6 and a respective number of adjacent outer blade segments 8b on the side of the outer end 19 of the rotor 6, which inner 8a and outer 8b blade segments together provide a blade segment 8. Each inner blade segment 8a is interconnected with the respective outer blade segment 8b at the corresponding circumferential position of the rotor 6, providing a blade segment 8 that provides a substantially continuous refilling surface 9 between the inner end 18 and the outer end 19 of the rotor 6 at the respective inner 8a and outer 8b stator blade segments of this blade segment 8. Side edges of the rotor blade segments 8a, 8b are implemented such that slit-like openings 14 making flow paths are provided between the interconnected rotor blade segments 8 in the circumferential direction of the rotor 6.
When the rotor blade segments 8a, 8b are fastened to the hub 7 of the rotor 6, there will thus be longitudinal slit-like openings 14 between the neighboring rotor blade segments 8 in the circumferential direction of the rotor 6, through which openings 14 the fiber material to be refined is supplied into the refining chamber 12 between the rotor 6 and the stator 3. Similarly, there will be longitudinal slit-like openings 15 between the neighboring stator blade segments 4 in the circumferential direction of the stator 3, through which openings 15 the fiber material already refined in the refining chamber 12 is discharged out of the refilling chamber 12. The configuration of this kind of refiner is called a side feed configuration or a side feed refiner.
In the following the blade segment structure according to the solution disclosed herein is considered in more detail in view of
The blade segment 4, 4a, 4b, 8, 8a, 8b comprises an inner end edge 20 or a first end edge 20 to be directed towards the inner end 18 of the refining element 3, 6 having the smaller diameter. The blade segment further comprises an outer end edge 21 or a second end edge 21 to be directed towards the outer end 19 of the refining element 3, 6 having the larger diameter. In blade segments for the conical and cylindrical refiners the inner end edge of the blade segment provides an axially inner end of the blade segment and the outer end edge of the blade segment provides an axially outer end of the blade segment, the direction from the axially inner end towards the axially outer end thus providing the longitudinal axis of the blade segment. The outer end edge 21 is thus substantially opposite to the inner end edge 20 in the direction of the longitudinal axis of the blade segment. In
It is to be noted that in the blade segment intended for a conical refiner, a line denoting the longitudinal axis LA of the blade segment actually runs along the conical surface of the blade segment and therefore runs at an angle relative to the shaft 11 of the conical refiner 1 but may be projected at the shaft 11 so as to run parallel to the shaft 11 of the refiner 1. In a blade segment intended for a cylindrical refiner, in turn, a line denoting the longitudinal axis LA of the blade segment running along the cylindrical surface of the blade segment runs substantially parallel to the shaft of the refiner. Furthermore, in a blade segment intended for a disc refiner, in turn, a line denoting the longitudinal axis LA of the blade segment runs along a substantially planar surface of the blade segment in a radial direction of the blade segment, i.e., in disc-like blade segments the longitudinal axis of the blade segment unites with the radial direction of the blade segment.
The blade segment further comprises a first side edge 22 or a leading side edge 22 extending from the inner end edge 20 of the blade segment up to the outer end edge 21 of the blade segment and providing the side edge of the blade segment which first meets the edge of a counter blade segment during operation of the refiner. So, in the rotor 6 it provides the side edge of the blade segment to be directed towards the intended rotation direction RD of the rotor 6 and in the stator 3 it provides the side edge of the blade segment to be directed to the opposite direction relative to the intended rotation direction RD of the rotor 6.
The blade segment further comprises a second side edge 23 or a trailing side edge 23 substantially opposite to the first side edge 22 in a direction substantially perpendicular to the longitudinal axis LA of the blade segment and extending from the inner end edge 20 of the blade segment up to the outer end edge 21 of the blade segment and providing the side edge of the blade segment which last meets the edge of a counter blade segment during operation of the refiner. So, in the rotor 6 it provides the side edge of the blade segment to be directed to the opposite direction relative to the intended rotation direction RD of the rotor 6 and in the stator 3 it provides the side edge to be directed towards the intended rotation direction RD of the rotor 6. The inner 20 and the outer 21 end edges together with the first 22 and second 23 side edges define a periphery of the blade segment 8.
The blade segment comprises a body 24 having a front surface 25 to be directed towards the refining chamber 12 of the refiner 1. The front surface 25 of the blade segment body 24 is provided with blade bars 26 and blade grooves 27 which together provide the refining surface 5, 9 of the blade segment. The blade bars 26 are intended to defiber and refine the material to be refined and the blade grooves 27 are intended to convey the material to be refined forward along the refining surface 5, 9. Fastening holes 28 are intended to receive fastening means, like bolts, for fastening the blade segment to the supporting structures of the stator and the hub of the rotor directly or via fastening elements, like rings, 29, 30 or the like.
At the innermost and outermost end edges of the segment there is an extension or shoulder 50, 51, 52, 53 at least on one side edge 22, 23 of the segment. The extension or shoulder is intended to come into contact with a neighboring blade segment when assembled to provide a part of a refining surface of a refining element of a refiner.
In
Referring to
The first long edge portion 31 is followed by a first bend 32a, which is turned away from the direction of the first long edge portion 31, i.e., to an opposite direction with respect to the direction of the longitudinal axis LA than the first long edge portion 31, that is away from the center part or the center line of the blade segment.
The first bend 32a is followed by a substantially straight or slightly curved short edge portion 32b. The direction of the short edge portion 32b is arranged to deviate from the direction of the longitudinal axis LA to a different direction than the first long edge portion 31, i.e., to an opposite direction with respect to the direction of the longitudinal axis LA than the first long edge portion 31, that is away from the center part or the center line of the blade segment.
The short edge portion 32b is followed by a second bend 32c which is turned away from the direction of the first short edge portion 32b, i.e., to an opposite direction with respect to the direction of the longitudinal axis LA than the short edge portion 32b, that is towards the center part or the center line of the blade segment. The second bend 32b is thus turned towards an opposite direction relative to the longitudinal axis LA than the first bend 32a.
The first bend 32a, the short edge portion 32b and the second bend 32c provide an elbow 32 in the first side edge 22 of the blade segment. In other words, the elbow 32 in the first side edge 22 of the blade segment consists of the first bend 32a, a short edge portion 32b following the first bend 32a and a second bend 32c following the short edge portion 32b.
The second bend 32c or the elbow 32 is, in turn, followed by a substantially straight second long edge portion 33 the direction of which is arranged to deviate from the direction of the longitudinal axis LA of the blade segment to the same direction as the first long edge portion 31, i.e., towards the center part or the center line of the blade segment. In other words, the second bend 32c and, thus, the elbow 32 is followed by a substantially straight second long edge portion 33 the direction of which is arranged to deviate from the direction of the longitudinal axis LA of the blade segment to the same direction as the first tong edge portion 31. The second long edge portion 33 is thus arranged to deviate with respect to the direction of the longitudinal axis LA to the same direction as the first long edge portion 31.
Furthermore, the second side edge 23 of the blade segments 4, 4a, 4b, 8, 8a, 8b comprises, in a direction from the inner end edge 20 towards the outer end edge 21, at least a substantially straight first long edge portion 41. The direction of the first long edge portion 41 is arranged to deviate from the direction of the longitudinal axis LA of the blade segment, i.e., with respect to the direction of the longitudinal axis LA of the blade segment, such that the first long edge portion 41 is directed away from the center part or the center line of the blade segment.
The first long edge portion 41 is followed by a first bend 42a, which is turned away from the direction of the first long edge portion 41, i.e., to an opposite direction with respect to the direction of the longitudinal axis LA than the first long edge portion 41, that is towards the center part or the center line of the blade segment.
The first bend 42a is followed by a substantially straight or slightly curved short edge portion 42b. The direction of the short edge portion 42b is arranged to deviate from the direction of the longitudinal axis LA to a different direction than the first long edge portion 41, i.e., to an opposite direction with respect to the direction of the longitudinal axis LA than the first long edge portion 41, that is towards the center line of the blade segment.
The short edge portion 42b is followed by a second bend 42c which is turned away from the direction of the first short edge portion 42b, i.e., to an opposite direction with respect to the direction of the longitudinal axis LA than the short edge portion 42b, that is away from the center line of the blade segment. The second bend 42c is thus turned towards an opposite direction relative to the longitudinal axis LA than the first bend 42a.
The first bend 42a, the short edge portion 42b and the second bend 42c provide an elbow 42 in the second side edge 23 of the blade segment. In other words, the elbow 42 in the second side edge 23 of the blade segment consists of the first bend 42a, a short edge portion 42b following the first bend 42a and a second bend 42c following the short edge portion 42b.
The second bend 42c or the elbow 42 is, in turn, followed by a substantially straight second long edge portion 43 the direction of which is arranged to deviate from the direction of the longitudinal axis LA of the blade segment to the same direction as the first long edge portion 41, i.e., away from the center part or the center line of the blade segment. In other words, the second bend 42c and, thus, the elbow 42 is followed by a substantially straight second long edge portion 43 the direction of which is arranged to deviate from the direction of the longitudinal axis LA of the blade segment to the same direction as the first long edge portion 41. The second long edge portion 43 is thus arranged to deviate with respect to the direction of the longitudinal axis LA to the same direction as the first long edge portion 41.
When further considering the blade segment 4, 8 of
The third bend 34a is followed by a second substantially straight or slightly curved short edge portion 34b. The direction of the second short edge portion 34b is arranged to deviate from the direction of the longitudinal axis LA to a different direction than the second long edge portion 33, i.e., to an opposite direction with respect to the direction of the longitudinal axis LA than the second long edge portion, that is away from the center part or the center line of the blade segment.
The second short edge portion 34b is followed by a fourth bend 34c which is turned away from the direction of the second short edge portion 34b, i.e., to an opposite direction with respect to the direction of the longitudinal axis LA than the second short edge portion 34b, that is towards the center part or the center line of the blade segment. The fourth bend 34c is thus turned towards an opposite direction relative to the longitudinal axis LA than the third bend 34a.
The third bend 34a, the second short edge portion 34b and the fourth bend 34c provide a second elbow 34 in the first side edge 22 of the blade segment. In other words, the second elbow 34 in the first side edge 22 of the blade segment consists of the third bend 34a, a second short edge portion 34b following the third bend 34a and a fourth bend 34c following the short edge portion 34b.
The fourth bend 34c or the second elbow 34 is, in turn, followed by a substantially straight third long edge portion 35 the direction of which is arranged to deviate from the direction of the longitudinal axis LA of the blade segment to the same direction as the first 31 and the second 33 long edge portions, i.e., towards the center part or the center line of the blade segment. In other words, the fourth bend 34c and, thus the second elbow 34 is followed by a substantially straight third long edge portion 35 the direction of which is arranged to deviate from the direction of the longitudinal axis LA of the blade segment to the same direction as the first 31 and the second 33 long edge portions. The third long edge portion 35 is thus arranged to deviate with respect to the direction of the longitudinal axis LA to the same direction as the first 31 and the second 33 long edge portions.
The ratio of a length of the short edge portion 32b, 34b to a length of the long edge portion 31, 33, 35 is about 1:2-1:20.
Similarly, the second side edge 23 of the blade segment 4, 8 of
The third bend 44a is followed by a second substantially straight or slightly curved short edge portion 44b. The direction of the second short edge portion 44b is arranged to deviate from the direction of the longitudinal axis LA to a different direction than the second long edge portion 43, i.e., to an opposite direction with respect to the direction of the longitudinal axis LA than the second long edge portion, that is towards the center part or the center line of the blade segment.
The second short edge portion 44b is followed by a fourth bend 44c which is turned away from the direction of the second short edge portion 44b, i.e., to an opposite direction with respect to the direction of the longitudinal axis LA than the second short edge portion 44b, that is away from the center part or the center line of the blade segment. The fourth bend 44c is thus turned towards an opposite direction relative to the longitudinal axis LA than the third bend 44a.
The third bend 44a, the second short edge portion 44b and the fourth bend 44c provide a second elbow 44 in the second side edge 23 of the blade segment. In other words, the second elbow 44 in the second side edge 23 of the blade segment consists of the third bend 44a, the second short edge portion 44b following the third bend 44a and the fourth bend 44c following the second short edge portion 44b.
The fourth bend 44c or the second elbow 44 is, in turn, followed by a substantially straight third long edge portion 45 the direction of which is arranged to deviate from the direction of the longitudinal axis LA of the blade segment to the same direction as the first 41 and the second 43 long edge portions, i.e., away from the center part or the center line of the blade segment. In other words, the fourth bend 44c and, thus, the second elbow 44 is followed by a substantially straight third long edge portion 45 the direction of which is arranged to deviate from the direction of the longitudinal axis LA of the blade segment to the same direction as the first 41 and the second 43 long edge portions. The third long edge portion 45 is thus arranged to deviate with respect to the direction of the longitudinal axis LA to the same direction as the first 41 and the second 43 long edge portions.
The ratio of a length of the short edge portion 42b, 44b to a length of the long edge portion 41, 43, 45 is about 1:2-1:20.
In the embodiments of the blade segments of
In the embodiments of the blade segments of
Generally, according to the disclosed solution, at least one side edge 22, 23 of the blade segment 4, 4a, 4b, 8, 8a, 8b comprises at least two edge portions 31, 33, 35, 41, 43, 45 the directions of which are arranged to deviate from the direction of the longitudinal axis LA of the blade segment 4, 4a, 4b, 8, 8a, 8b, and the at least two edge portions are connected by an elbow 32, 34, 42, 44 between each two edge portions 31, 33, 35, 41, 43, 45.
According to a further embodiment, the directions of the edge portions 31, 33, 35, 41, 43, 45 at the specific side edge 22, 23 are arranged to deviate to the same direction from the direction of the longitudinal axis LA and the elbow 32, 34, 42, 44 is turned away from the edge portions 31, 33, 35, 41, 43, 45 such that it deviates with respect to the direction of the longitudinal axis LA of the blade segment to the different direction than the edge portions 31, 33, 35, 41, 43, 45.
According to an embodiment of the blade segment, as schematically shown on the side of the first side edge 22 of the blade segment 4, 8 in
According to an embodiment of the blade segment, as schematically shown on the side of the second side edge 23 of the blade segment 4, 8 in
The disclosed configuration of the side edge of the blade segment provides a shape of gentle zigzag that deviates from the direction of the longitudinal axis of the blade segment. When the configuration of the opposite side edge is selected in co-operation with the configuration of the first mentioned side edge, it provides longitudinal slit-like openings, i.e., flow paths, between the neighboring blade segments for supplying the fibrous material to be refined into the refining chamber between the stator and the rotor and for discharging the fibrous material already refined out of the refining chamber. This slit-like opening, having a stairs-like or step-shaped opening configuration, has therefore a center line the direction of which deviates from the direction of the axis of the blade segment at least at most part of the extension of the opening. This has the effect that an angle of incidence between the openings in the rotor and in the stator changes in the axial direction of the refiner, or the longitudinal axis and the edge axis of the blade segments, causing a point of incidence between the openings in the rotor and in the stator to move from the axial direction of the refiner or the longitudinal axis of the blade segments. This, in turn, has the effect that possible flow pulse variations and thus vibrations appearing during the operation of a refiner may be diminished.
According to an embodiment the slit-like opening has a width between 10 mm and 25 mm.
According to an embodiment, the edge portions at the same side edge 22, 23 of the blade segment and arranged to deviate to the same direction from the direction of the longitudinal axis LA of the blade segment are substantially parallel. The effect of this is that an opening of substantially constant width is easy to implement between neighboring blade segments.
According to an embodiment, each side edge of the blade segment comprises at least one elbow. The effect of this is that both side edges of the blade segment have a kind of shape of gentle zigzag, preventing thereby a significant portion of the side edge from following the longitudinal axis of the blade segment and thereby preventing a formation of opening portions possibly causing a tendency of vibration of the refiner during the operation thereof.
According to an embodiment, the elbows at the opposite side edges lie on the same normal level with respect to the longitudinal axis LA of the blade segment, the normal of the longitudinal axis LA of the blade segment being schematically shown in
According to an embodiment, a number of elbows at each side edge 22, 23 is from one to ten, preferably from two to six, or from two to seven, or from two to eight. When the number of elbows at the side edge is reasonable, the deviation of the direction of extension of the opening from the longitudinal axis of the blade segment may be ensured. Too dense zigzag shape of the side edge of the blade segment may result in a perpetual back-and-forth type flow path for the pulp which eventually does not differ so much from the vibrationally possibly undesired design.
According to an embodiment, an angle of the deviation of the elbow from the longitudinal axis LA of the blade segment is about 10-90 degrees, preferably from 10 to 60 degrees, and more preferably from 10 to 50 degrees.
According to an embodiment, a direction of an extension of the elbow is substantially parallel to a direction of an extension of a blade bar. In other words, the elbow is arranged to form an angle which is substantially parallel to the blade bar angle applied in the blade segment.
According to an embodiment, configurations of the side edges 22, 23 are arranged to deviate from a mirror image with respect to a longitudinal axis of the blade segment, or in other words, the side edges of the blade segment are not mirror images of each other with respect to the longitudinal axis LA of the blade segment.
It will be obvious to a person skilled in the art that, as the technology advances, the inventive concept can be implemented in various ways. The invention and its embodiments are not limited to the examples described above but may vary within the scope of the claims.
Number | Date | Country | Kind |
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20178487 | Jun 2020 | EP | regional |
This application is a US national phase application based on PCT/EP2021/064841 filed on Jun. 2, 2021, and claims priority on EP20178487, filed on Jun. 5, 2020, the disclosures of which are incorporated by reference herein.
Filing Document | Filing Date | Country | Kind |
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PCT/EP2021/064841 | 6/2/2021 | WO |