The proposed technology generally relates to refiner segments for a refiner of lignocellulosic material. More specifically it relates to refiner segments having a varying cross-sectional depth profile. The proposed technology also relates to refiner discs provided with such refiner segments as well as refiners provided with refiner discs equipped with the proposed refiner segments.
A typical refiner of e.g., lignocellulosic material comprises two relatively rotating discs between which the material is refined or defibrated. The pair of relatively rotating discs may in particular comprise one rotating disc, referred to as a rotor, and a static disc, referred to as a stator. These discs, or at least one of them, are often provided with segments, referred to as refiner segments, in order to obtain a more efficient refining of the material. At least one of the cooperating stator and rotor discs are often equipped with refiner segments provided with bars and dams. The bars are protruding structures arranged on the segment that are mainly utilized to provide an efficient refining of the lignocellulosic material. The purpose of the dams are instead primarily to guide, or lift, the material flow towards the disc gap between two refining discs, e.g., the disc gap between a rotor and a stator or the disc gap that separates the two relatively rotating discs. It is in the disc gap between the discs that the material is refined or defibrated. During normal use of a refiner the refining or defibration action will cause friction which in turn will heat up the processed material. Since lignocellulosic material, e.g., wood pulp, naturally contains water the friction will heat up the water and steam will be created. The created steam may severely affect the material flow. It may interact with material flow and perturb the intended paths for the material flow.
A particular purpose of the proposed technology is to provide mechanisms that at least alleviates some of the problems that are associated with the interaction between the steam and the material flow.
It is a general object to provide refiner segments that enable an improved material flow.
It is a particular object to provide refiner segments that enables a separation of the material flow on the refiner segment and the steam flow on the same.
It is an additional object to provide a refiner disc provided with refining segments that enables an improved material flow and in particular enables a separation of the material flow on the refiner segment and the steam flow on the same.
It is yet another object to provide a refiner that is equipped with at least one refining disc that enables an improved material flow and in particular enables a separation of the material flow on the refiner segment and the steam flow on the same.
According to a first aspect, there is provided a refiner segment adapted to be attached to a refiner disc in a refiner of lignocellulosic material, the refiner segment being provided with a plurality of spaced apart bars extending in a direction from an inner periphery of the refiner segment towards an outer periphery of the refiner segment, where each pair of adjacent bars bounds a corresponding intermediate area on the refiner segment. The refiner segment comprises at least one intermediate area that comprises a channel region and a ridge region. The channel region connecting at a first side to the ridge region 24 and extending deeper into the refiner segment 10 than the ridge region 24 in order to create an intermediate area 22 having a cross-section with a varying depth profile.
According to a second aspect there is provided a refiner disc provided with a refiner segment according to the first aspect
According to a third aspect there is provided a refiner disc according to the second aspect, wherein the refiner disc is a stator disc or a rotor disc.
According to a fourth aspect there is provided a refiner comprising a refiner disc according to the second or third aspect.
Embodiments of the proposed technology yields a better controlled material flow on the refining segments. This will in turn ensure a more even refining action and a better end product.
Other advantages will be appreciated when reading the detailed description.
The embodiments, together with further objects and advantages thereof, may best be understood by making reference to the following description taken together with the accompanying drawings, in which:
Throughout the drawings, the same reference designations are used for similar or corresponding elements.
Generally, all terms used herein are to be interpreted according to their ordinary meaning in the relevant technical field, unless a different meaning is clearly given and/or is implied from the context in which it is used. All references to a/an/the element, apparatus, component, means, etc. are to be interpreted openly as referring to at least one instance of the element, apparatus, component, means, etc., unless explicitly stated otherwise. Any feature of any of the embodiments disclosed herein may be applied to any other embodiment, wherever appropriate. Likewise, any advantage of any of the embodiments may apply to any other embodiments, and vice versa. Other objectives, features and advantages of the enclosed embodiments will be apparent from the following description.
For a better understanding of the proposed technology, it may be useful to begin with a brief overview of the relevant technology and an analysis of the associated technical problem.
To this end reference is made to
During use, lignocellulosic material such as wood chips or prepared wood, e.g., pulp, will be fed by means of a feeding mechanism, not shown, through the feeding channel 14. The material will pass through the hole 32 in the stator 30* and enter an area 19. The area 19 is essentially defined by the open area between the rotor 30 and the stator 30* and this area can be quite small during operation. The lignocellulosic material flowing into the area 19 will be incident on the center plate 17 on the rotor 30. The center plate 17 acts to steer the lignocellulosic material out towards the refiner segments on the rotor and/stator.
In order to provide a more detailed description of a rotor-stator arrangement in which the proposed technology may be used reference is made to
Having described in detail a general refiner that can utilize the proposed technology, we will proceed and describe in detail a particular refiner segment that is relevant for the proposed technology. To this end reference is made to
According to a particular embodiment of the proposed technology there is provided a refiner segment 20 wherein a second side 23a of the channel region 23 connects to a first bar 20k in the pair of adjacent bars 20k; 20k+1 and wherein one side 24a of the ridge region 24 connects to a second bar 20k+1 in the pair of adjacent bars 20k; 20k+1. This particular embodiment where the channel region connects to the first bar 20k ensures a maximal depth difference between adjacent areas on the refining segment. This will in turn increase the possibility that the material flow traverses over the intermediate area 22 without entering the channel region 23.
The channel region 23 may have a number of different shapes that will facilitate the separation of the steam flow and the material flow in the intermediate area. The channel region 23 may for example comprise a channel having a block shaped cross-section, or a channel having an at least partially angled cross-section, or a channel having a more chamfered cross-section. The channel region may also be a channel having a bowl-shaped cross-section.
According to another possible embodiment of the proposed technology there is provided a refiner segment 10, wherein the channel region 23 have a depth that is getting increasingly deeper in a direction from the outer periphery 10b of the refiner segment 10 to the inner periphery 10a of the refiner segment 10. This embodiment ensures that the volume of the channel region 23 is able to transport a larger amount of steam, and enables a laminate material- and steam flow, in the vicinity of the inner periphery 10a of the refiner segment the embodiment also enables a laminate material and steam flow
According to an additional embodiment of the proposed technology that also enables the channel region 23 to transport a larger amount of steam in the vicinity of the inner periphery 10a and further enables a laminate material- and steam flow provides a refiner segment 10 where the channel region 23 have a width W1 that is gradually getting smaller in the direction from the outer periphery 10b of the refiner segment 10 to the inner periphery 10a of the refiner segment 10, and wherein the ridge region 24, e.g., the plateau region 24, have a width W2, that is getting correspondingly larger in the direction from the outer periphery 10b of the refiner segment 10 to the inner periphery 10a of the refiner segment 10. This embodiment is schematically illustrated in
Still another embodiment of the proposed technology provides a refiner segment 10 wherein the ridge region or, in certain embodiments, the plateau region 24 has an height that is getting increasingly larger in a direction extending from the side where the ridge region or plateau region connects to the channel region 23 to the side where the ridge region 24 connects to the second bar 20k+1 in the pair of adjacent bars 20k; 20k+1 in order to create an intermediate area 22 having a depth profile where the depth is gradually getting smaller in the direction extending from the first bar 20k to the second bar 20k+1. This embodiment is schematically illustrated in
According to still another embodiment of the proposed technology provides a refiner segment 10 wherein the relative height difference between the deepest part of the channel region 23 and the ridge region 24 or plateau region 24 is gradually getting larger in a direction extending from the outer periphery 10a toward the inner periphery 10b. This embodiment also ensures an increase in the volume of the channel region 23 whereby the channel region 23 is capable to transport a larger amount of steam in the vicinity of the inner periphery 10a of the refiner segment, and also enables a laminate material- and steam flow.
The embodiments of the proposed technology that enables the channel region 23 to transport a larger amount of steam in the vicinity of the inner periphery 10a of the refiner segment, and also enables a laminate material- and steam flow, may also be provided with a channel region 23 that has a depth that is gradually getting larger in a direction extending from the outer periphery 10a of the refiner segment toward the inner periphery 10b of the refiner segment.
According to a particular embodiment of the proposed technology there is provided a refiner segment 10 that is provided with a number N of spaced apart bars 20i, where N takes value in the interval [4; 7]. This embodiment provides a refiner segment that is sparsely equipped with refining bars, the sparsely equipped refiner segment will ensure that the material to be refined is transported towards the outer edges of the refiner segment comparatively quickly while at the same time providing a robust construction. It is for example possible to provide the bars symmetrically around the refiner segment in order to obtain an even material flow, if for example the refiner segment is shaped as a half-circle spanning between 0° and 180° it will be possible to provide 6 bars on the refiner segment where each bar is offset by 30° from both of its neighbors. In general, if a refiner segment is defined as a circle sector with the angle Ω, it will be possible to obtain a refiner segment with a number N of symmetrically arranged bars that are mutually offset by the angle Ω/N. There should preferably be a smallest angle offset between adjacent bars that lies in the interval 5° to 15°.
Still another embodiment of the proposed technology provides a refiner segment 10 is that is provided with a plurality of spaced apart bars 20i, that extend in a direction from an inner periphery 10a of the refiner segment 10 towards an outer periphery 10b of the refiner segment 10 and which bars further extend around 20-40% of the total radial length of said refiner segment. That is, if the refiner segment has a radial length of R, the spaced apart bars should preferably be arranged to lie in a segment area that extend from the inner periphery 10a of the refiner segment to a length lying in the interval [R/5, 2R/5].
According to a particular version of the above embodiment there is provided a refiner segment 10 wherein the outer regions of the refiner segment, i.e., those regions that are not provided with spaced apart bars 20i, are provided with refining structures adapted for processing wood chips. This embodiment ensures that refining material comprising wood chips is forced towards the outer regions of the refiner segment through the steering action of the spaced apart bars and processed by refining structures provided on the outer regions. The refining structures may be structures that protrude from the working surface of the refiner segment in order to process, e.g, grind or tear the wood chips. The refining structures may for example be regular bars, i.e., where adjacent bars have an intermediate area with a constant depth.
Having described a number of embodiments of the refiner segment according to the proposed technology, in what follows we will describe the workings of such a refiner segment when provided on a refiner disc of a refiner of lignocellulosic material. The refining segment according to the proposed technology may be provided in the shape of a segment to be attached to a refiner disc 30. A refining segment may be provided in the shape of a circle, optionally with a removed central area, or in the shape of a circle sector. A refiner disc 30 may thus be provided with a number of refiner segments whereby it will either be completely covered by refining segments or partially covered. The refining disc 30 may in this particular case be referred to as a segment holder. The refining segment may however also be provided in the form of a complete integrated disc, thus forming part of, or defining, the refining disc in itself. In this case the refining segment and the refining disc 30 form an integrated structure that can be attached to a rotor or a stator. A refining segment may be provided in the shape of a circle, optionally with a removed central area, or in the shape of a circle sector. A refiner disc 30 may thus be provided with a number of refiner segments whereby it will either be completely covered by refining segments 1 or partially covered. Reference is now made to
It is clear from the example above that one aspect of the proposed technology provides a refiner disc 30 provided with a refiner segment according to what has been shown in this disclosure.
It is also clear that an additional aspect of the proposed technology provides a refiner disc 30 provided with a refiner segment according to what has been shown in this disclosure, wherein the refiner disc 30 is a stator disc or a rotor disc.
It is also clear that an additional aspect of the proposed technology provides a refiner 100 comprising a refiner disc as above.
The embodiments described above are merely given as examples, and it should be understood that the proposed technology is not limited thereto. It will be understood by those skilled in the art that various modifications, combinations and changes may be made to the embodiments without departing from the present scope as defined by the appended claims. In particular, different part solutions in the different embodiments can be combined in other configurations, where technically possible.
Number | Date | Country | Kind |
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1850942-2 | Jul 2018 | SE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/SE2019/050508 | 6/3/2019 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2020/022941 | 1/30/2020 | WO | A |
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Number | Date | Country | |
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20210262167 A1 | Aug 2021 | US |