This application claims priority on Finnish App. No. 20125520, filed May 15, 2012, the disclosure of which is incorporated by reference herein.
Not applicable.
The invention relates to refiners for refining a fibrous material, such as wood or the like, comprising a stator and a rotor having a conical portion. More particularly, the invention relates to a blade element for a conical portion of a stator of a refiner, which blade element comprises a feed end, a discharge end, and a refining surface which comprises a feed zone at the feed end of the blade element.
Refiners are used for processing a fibrous material, such as wood or the like, to produce different fibre pulps. A typical refiner comprises oppositely situated stator and rotor, the stator being fixed and the rotor being arranged to rotate about a shaft such that the rotor rotates or turns relative to the stator. The stator and the rotor comprise refining surfaces typically consisting of blade bars and blade grooves therebetween. The material to be refined is fed into a blade gap provided between the stator and the rotor, whereby the refining surfaces of the stator and the rotor refine the material when the rotor rotates relative to the stator.
There are basically two different kinds of refiners comprising a conical portion. A first kind of refiner comprising a conical portion is provided with both a flat portion and a conical portion, whereby the material is first refined in the flat portion of the refiner and thereafter in the conical portion of the refiner. This kind of refiner comprising both the flat portion and the conical portion is typically used for refining a material having a high consistency. A second kind of refiner comprising a conical portion only comprises a conical portion. This kind of refiner only comprising the conical portion is typically used for refining a material having a low consistency. In the conical portion of the refiner, an end of the conical portion having a smaller diameter provides the feed end of the conical portion, where the material to be refined is fed into the blade gap of the conical portion, and an end of the conical portion having a larger diameter provides a discharge end of the conical portion, where the material already refined is discharged out of the blade gap of the conical portion.
In the refiners having the conical portion, the feed of the material to the blade gap in the conical portion is a limiting factor when considering the production capacity of the refiner. This is the case in both refiner types mentioned above. In the refiners comprising both a flat portion and a conical portion, a transition from the flat portion to the conical portion causes a large open volume where a flow of the material to be refined may stop. In the refiners only comprising the conical portion, the material to be refined is fed into the conical blade gap from a large open volume, whereby no specific pressure is provided to promote the flow of the material into the blade gap. At the same time there typically also occurs a change in the direction of the flow of the material when the material is fed from the large open volume into the blade gap, the change in the direction also hindering the flow of the material to the blade gap of the conical portion.
In order to improve the feed of the material into the conical portion of the refiner, some modifications in the structure of the refining surfaces of the conical stator and the conical rotor have been introduced. When considering the refining surface of the conical rotor, these modifications include increasing the height of the blade bars in the feed zone of the refining surface of the conical rotor. When considering the refining surface of the conical stator, these modifications include providing the feed zone of the refining surface of the stator with shoulder-like guide elements intended for guiding the flow of the material forward from the feed zone. In the refiners only comprising the conical portion, these shoulder-like guide elements typically have the form of a bar while in the refiners comprising both a flat portion and a conical portion these shoulder-like guide elements typically have the form of a triangle. EP publication 0 958 057 B1 also discloses a solution for a refiner comprising both a flat portion and a conical portion. This solution comprises a kind of wings at the feed zone of the refining surface of the conical rotor for throwing the material to be refined toward the refining surface of the conical stator, the feed zone of the refining surface of the conical stator comprising shoulder-like guide elements having the form of triangle to guide the flow of the material forward into the conical blade gap between the stator and the rotor.
An object of the present invention is to provide a new type of blade element for a conical portion of a stator in refiners comprising a conical portion.
The blade element according to the invention is characterized in that the feed zone of the blade element comprises at least one guide groove extending from the feed end of the blade element toward the discharge end of the blade element for guiding a flow of material to be refined from the feed end toward the discharge end, and that the depth of the guide groove is arranged to change in a direction transverse in relation to the extending direction of the guide groove.
A blade element for a conical portion of a stator of a refiner comprises a feed end, a discharge end and a refining surface which comprises a feed zone at the feed end of the blade element. The feed zone of the blade element comprises at least one guide groove extending from the feed end of the blade element toward the discharge end of the blade element for guiding a flow of material to be refined from the feed end toward the discharge end. Further, the depth of the guide groove is arranged to change in a direction transverse in relation to the extending direction of the guide groove.
When the guide elements for the flow of the material to be refined in the feed zone of the conical portion of the stator is implemented as grooves, the thickness of the blade element for the conical portion of the stator at the area of the feed zone may be minimized. This further means that the height of the blade bar in the conical portion of the rotor can be increased at the area of the feed zone of the conical portion of the stator, whereby the feed of the material to be refined into the conical portion of the refiner may be intensified. The guide grooves are also less susceptible to wear and breakage than the previously known shoulder-like guide elements, whereby the guiding effect provided by the guide grooves remain high longer than the guiding effect provided by the shoulder-like guide elements.
In the following, the invention will be described in greater detail by means of preferred embodiments with reference to the accompanying drawings.
For the sake of clarity, some embodiments of the invention are simplified in the figures. Like reference numerals identify like elements.
The flat portions of the stator 2 and the rotor 7 provide the flat portion 8 of the refiner. The conical portions of the stator 2 and the rotor 7, in turn, provide the conical portion 9 of the refiner 1. The flat portions of the stator and the rotor are arranged substantially perpendicularly to the shaft 12, and the conical portions of the stator and the rotor are arranged at a predetermined angle to the flat portions. The rotor 7 is arranged at a distance from the stator 2 in such a way that a blade gap 13 is left between the refining surfaces 10 and 11 of the rotor 7 and the refining surfaces 5, and 6 of the stator 2. The size of the blade gap 13 may typically be adjusted separately on the flat portion and on the conical portion of the refiner 1.
The fibrous material to be refined is fed by means of a feed screw 14, for example, through the center of the flat portion 3 of the stator 2 to a portion of the blade gap 13 between the flat portion 3 of the stator 2 and the flat portion 8 of the rotor 7, as shown schematically by arrow F. The refining of the material thus starts at the flat portion of the refiner 1. During the refining, the material to be refined proceeds from the blade gap portion on the flat portion of the refiner to the blade gap portion on the conical portion of the refiner 1. The refined material is discharged away from the blade gap 13 at the distal end of the conical portion of the refiner 1, as shown schematically by arrow D.
The conical portion 4 of the stator 2 and the conical portion 9 of the rotor 7 have a first end 15 of a smaller diameter D1 and a second end 16 of a larger diameter D2. The first ends 15 of the conical portions of the stator and the rotor thus provide the first end of the conical portion of the refiner, and the second ends 16 of the conical portion of the stator and the rotor provide the second end of the conical portion of the refiner. The diameters D1 and D2 have been schematically drawn in
The fibrous material to be refined is fed through an open volume 17 in the middle of the stator refining surface 6 to the blade gap 13 at the feed end 15 of the conical portion of the refiner. The refined material exits from the blade gap 13 at the discharge end 16 of the conical portion of the refiner to a refiner chamber 18 and further out of the chamber 18 through an outlet channel 19.
The refiner 1 shown in
The refining surfaces of the stator and the rotor may be provided by one or more blade elements attached to the frame 2′ of the stator 2 or to the frame 7′ of the rotor 7. A single blade element may provide the whole refining surface of the flat portion or the conical portion of the stator or the rotor. A single blade element may also provide only a part of the whole refining surface of the flat portion or the conical portion of the stator or the rotor, whereby the whole refining surface of the flat portion or the conical portion of the stator or the rotor is provided by attaching a number of blade elements next to each other. A blade element which provides only a part of a whole refining surface may also be called a blade segment. An example of this kind of blade element is shown schematically in
The blade element 20 has a feed end 24 and a discharge end 25, the discharge end 25 being an end opposite to the feed end 24, or in other words, the discharge end 25 faces away from the feed end 24. The blade element 20 further comprises a first side edge 37 and a second side edge 38 extending from the feed end 24 to the discharge end 25. The refining surface 21 of the blade element 20 comprises a feed zone 26 arranged at the feed end 24 of the blade element 20 and a first refining zone 27 arranged next to the feed zone 26 toward the direction of the feed end 25. The refining surface 21 of the blade element 20 further comprises a second refining zone 28 next to the first refining zone 27 toward the direction of the discharge end 25. The feed zone 26 is used for providing the feed of the material to be refined toward the first refining zone 27 and the second refining zone 28. The first refining zone 27, where the blade bars 22 are located at a substantially long distance from each other in the circumferential direction of the conical portion of the stator, may be intended for coarse refining, and the second refining zone 28, where the blade bars 22 are located closer to each other in the circumferential direction of the conical portion of the stator, may be intended for fine refining. The number of refining zones may vary according to the intended application of the refiner.
The blade element 20 according to
The blade element 20 of
The feed zone 26 of the blade element 20 comprises guide grooves 29 for guiding the flow of the material to be refined and entering the feed zone 26 forward toward the refining zones 27 and 28. The guide groove 26 is arranged to extend, i.e. to travel or run or proceed, from the direction of the feed end 24 toward the discharge end 25. In the embodiment of
The blade element 20 of
The guide groove 29 has a bottom surface 30. The distance of the bottom surface 30 of the guide grooves 29 from a top surface 31 of the blade element 20 at the feed zone 26, i.e. the depth of the guide groove 29, is arranged to change in the transverse direction of the guide groove 29. In the embodiment of
The depth of the guide groove may vary for example between 1-12 mm in such a way that the depth of the guide groove at one groove edge is different than at the other groove edge. The width of the guide groove may for example be 10-150 mm, preferably 15-60 mm and more preferably 20-40 mm.
In
During operation of the refiner 1, the rotor 7 rotates about the stator 2. Referring also to
When the elements for guiding the flow of the material to be refined at the feed zone 26 of the conical portion 4 of the stator 2 are implemented as grooves, as disclosed above, the thickness of the blade element 20 for the conical portion 4 of the stator 2 at the area of the feed zone may be minimized. This means that the height of the blade bar 36 in the conical portion 9 of the rotor 7 can be further increased at the area of the feed zone 26 of the conical portion 4 of the stator 2. This has the effect that the blade bars 36 in the conical portion 9 of the rotor 7 throw more efficiently the material to be refined toward the feed zone 26 of the conical portion 4 of the stator 2. In such a case, the conical portion 9 of the rotor 7 may efficiently supply the material to be refined to the conical portion of the refiner, and the feed zone 26 in the conical portion 4 of the stator 2 guides the flow of the material forward in the conical portion of the refiner.
The guide groove 29 may run or extend from the direction of the feed end 24 of the blade element 20 toward the discharge end 25 of the blade element 20 having either a straight form or a curved form. If the guide groove 29 runs from the direction of the feed end 24 toward the discharge end 25 as having a straight form, the guide groove 29 may extend parallel to the direction of the radius of the refining surface 21 of the blade element 20 or as inclined in relation to the direction of the radius of the refining surface 21 of the blade element 20. The radius of the refining surface of a conical portion of a refiner, and thus the radius of the refining surface 21 of the blade element 20 is defined as a projection of the shaft 12 of the refiner 1 to the respective refining surface at the conical portion of the refiner. The direction of the radius of the refining surface 21 of the blade element 20 is schematically denoted by arrow S in
As the inclination angle of the guide groove relative to the radius S of the refining surface may vary, the transverse direction of the guide groove may be exactly parallel with the circumferential direction of the blade element 20 or the conical portion of the stator or the transverse direction of the guide groove may somewhat differ from the circumferential direction of the blade element 20.
The embodiment of the blade element 20 in
In
In the embodiments of the blade element 20 above the feed zone 26 of the blade element 20 only comprises guide grooves 29, i.e. in the embodiments of the blade element 20 above the feed zone 26 of the blade element 20 does not comprise any blade bars.
The blade bar 39 comprises a first side surface 39′ and a second side surface 39″, a top surface 39′″ of the blade bar 39 remaining between the first 39′ and second 39″ side surfaces of the blade bar 39. The first side surface 39′ of the blade bar 39 is implemented as a substantially vertical surface whereas the second side surface 39″ of the blade bar 39 is implemented as a bevel or a slope, which is arranged to descend toward the first side surface 39′ of the adjacent blade bar 39 such that the height of the blade bar 39 is arranged to decrease in the area of the second side surface 39″ of the blade bar 39 toward the first side surface 39′ of the neighbouring blade bar 39.
The sloping second side surface 39″ of the blade bar 39 provides a free space or volume between the top surfaces 39′″ of two adjacent blade bars 39, whereby this free space or volume provides a guide groove 29, which extends from the direction of the feed end 24 of the blade element 20 toward the discharge end 25 of the blade element 20 for guiding a flow of material to be refined from the feed end 24 toward the discharge end 25. The second side surface 39″ of the blade bar 39 provides the bottom surface 30 of the guide groove 29. The depth of the guide groove 29 thus formed is arranged to change in the direction transverse in relation to the extending direction of the guide groove 29. The embodiment of the blade element 20 according to
In the embodiment of
It will be apparent to a person skilled in the art that as 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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20125520 | May 2012 | FI | national |
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Number | Date | Country |
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Entry |
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Search Report, National Board of Patents and Registration of Finland, for FI20125520, dated Nov. 16, 2012. |
Number | Date | Country | |
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20130306768 A1 | Nov 2013 | US |