The present disclosure relates to refiners for wood pulp or the like, and more particularly to improvements in refiners wherein stationary refining plates flank rotary refining plates in the chamber of a housing whose inlet admits stock for treatment by comminuting projections (e.g., ribs) on the neighboring surfaces of stationary refining plates and rotary refining plates.
It is already known to utilize in a disc or rotor refiner two coaxial or eccentric plates or discs each of which is driven by a discrete prime mover and which have neighboring surfaces provided with ribs or otherwise configured projections which comminute the material to be treated while the material advances from the inlet toward the outlet of the stock chamber. It is further known to use a pair of discs one of which is stationary and the other of which rotates relative to the stationary disc.
It is also known to dispose two rotary discs between two stationary discs so that each rotary disc cooperates with a different stationary disc. The rotary discs are mounted at the opposite sides of a disc-shaped carrier which is driven by a shaft. The stock is fed through one of the stationary discs to enter the space between the one stationary disc and the respective rotary disc, and some of the stock is allowed to pass through relatively small openings in the rotary discs to enter the space between the other rotary disc and the other stationary disc.
The openings though the rotary disc are usually sized for high stock flow. In some instances, however, lower stock flow is required. In this instance, too much stock can flow through the rotary disc and thus cause unequal flow on both sides of the disc. In conventional applications, an annular ring has been added to the inlet side of the rotary disc to reduce the size of the openings. This annular disc adds to the weight of the rotary disc and further reduces the flow area through the inlet stock passageway. The annular disc also covers portions of the rotary refining member other than the ports, thus adding further unnecessary metal and weight to the refining member. It has also been known to weld plates over a portion of the ports in order to reduce the port sizes.
A better approach to allow for adjustment of the stock flow openings is needed.
Disclosed is an assembly comprising an annular hub with a hub inner surface and a hub outer surface and a rotary third refining member having a central opening defined by a refining member inner surface. The refining member has at least two equally spaced apart member portions extending radially inwardly from the member inner surface, and the assembly includes a key for connecting the member portions to the hub. The assembly also include an annular cover plate with at least two radially extending spaced apart flanges, each flange overlying a member portion, and at least two spaced apart port plates, each port plate overlying a member portion side opposite the annular cover plate, the spaces between the at least two port plates defining ports from a first stock flow path to a second stock flow path.
Before one embodiment of the disclosure is explained in detail, it is to be understood that the disclosure is not limited in its application to the details of the construction and the arrangements of components set forth in the following description or illustrated in the drawings. The disclosure is capable of other embodiments and of being practiced or being carried out in various ways. Also, it is to be understood that the phraseology and terminology used herein is for the purpose of description and should not be regarded as limiting. Use of “including” and “comprising” and variations thereof as used herein is meant to encompass the items listed thereafter and equivalents thereof as well as additional items. Use of “consisting of” and variations thereof as used herein is meant to encompass only the items listed thereafter and equivalents thereof. Further, it is to be understood that such terms as “forward”, “rearward”, “left”, “right”, “upward” and “downward”, etc., are words of convenience and are not to be construed as limiting terms.
Elements in Common with the Prior Art
Referring first to
The chamber 16 accommodates a first refining member 26, a second refining member 30, and a third refining member 28, here shown as coaxial discs having identical outer diameters. In other embodiments (not shown), two back-to-back discs can be used instead of the single disc 28. In still other embodiments (not shown), additional disc sets can be used. In still other embodiments (not shown), the refining members may constitute cones or other types of refining members.
The disc 26 is stationary and is fixedly secured to the housing section 12 by screws 32 or analogous fasteners. The disc 30 does not rotate. This disc is spaced apart from the disc 26 and is secured to an axially movable support 34 by means of screws 36 or the like. The support 34 is mounted in the housing section 14 and is movable axially of the discs 26, 28 by a reversible electric motor 38 which can drive a worm 40. The latter meshes with a worm wheel 42 having internal threads in mesh with external threads at the right-hand end of a spindle 44 which is rigid with the support 34. The support 34 has one or more radial projections or followers 46 slidable in elongated grooves 48 of the housing section 14. The grooves 48 are parallel to the common axis of the discs 26, 28 and 30. In other embodiments, other mechanisms for supporting the disc 30 can be used.
The disc 28 is rotatable relative to and is movable axially between the discs 26 and 30. The means for rotating the disc 28 comprises a drive shaft 50 which rotates in a sleeve 52 in the housing section 12. The sleeve 52 is surrounded by a stuffing box 54 which prevents the escape of pulp from the chamber 16 into the left-hand portion of the housing section 12. That end portion of the shaft 50 which extends from the housing section 12 preferably carries a pulley or sprocket wheel driven by an electric motor or another suitable prime mover through the medium of an endless belt or chain. Other types of transmissions between the prime mover and the shaft 50 can be used with equal advantage.
The disc 26 has a relatively large central opening 56 which communicates with the inlet 18 and surrounds the shaft 50 with a substantial amount of clearance. That end portion of the shaft 50 which extends beyond the opening 56 and into the central part of the chamber 16 carries a hub 58 which is secured thereto by a key 60, a cap 62 and a screw 64 so that the hub 58 shares all angular movements of the shaft 50. The hub 58 transmits torque to the centrally located disc 28 by way of several screws 66 but the disc 28 has limited freedom of axial movement relative to the hubs 58 and screws 66. The hub is provided with an eccentric blind bore 68 for a torque transmitting guide pin 70, a portion of which extends into an aligned blind bore 72 of the disc 28. It can be said that the disc 28 “floats” between the discs 26, 30 and automatically finds a central position between the stationary discs 26, 30, not only in response to wear on the surfaces of comminuting projections on the discs but also upon axial adjustment of the disc 30.
The discs 26, 28 and 28, 30 respectively define first and second paths P1 and P2 along which the pulp can advance from the inlet 18 toward the first outlet 20 (the second outlet 22 is assumed to be sealed when the refiner is in use). The path P1 is flanked by rib-shaped comminuting projections 74, 76 of the discs 26, 28, and the path P2 is flanked by rib-shaped comminuting projections 78, 80 of the discs 28, 30. The opening 56 of the disc 26 admits pulp from the inlet 18 into the central portion of the first path P1, and such pulp flows radially outwardly between the projections 74, 76 toward the outlet 20. The central portion of the disc 28, as shown in
The Improved Assembly
As illustrated in
In one embodiment, the improved assembly 100 further includes attaching means adapted to attach the hub to the drive shaft including a collar 110.
The hub 158 is adapted to be rigidly connected to the drive shaft 50 and received in a third refining member central opening 130 so that the third refining member 126 is movable axially along the shaft 50, and the rotary third refining member 126 has a central opening 130 within a refining member inner surface 136 (see
The improved assembly 100 further including connecting means for connecting the member portions 140, 144 and 148 to the hub 158, the connecting means comprising the annular cover plate 102 with at least two radially extending spaced apart flanges 152 and 156 (see
In one embodiment, the connecting means comprises each member portion having a portion key notch 160 (see
Each port plate is secured in place relative to its respective member portion, and the spaces between the at least two port plates define spaced apart ports 170, 172 and 174 (see
In one embodiment, the attaching means comprises a spline on the hub inner surface 185, and the annular collar 110 having an outer surface 188 with a spline to engage the spline on the hub inner surface 185. The annular collar 110 also has an inner surface 186 with a collar keyway 189 for attachment to a key (not shown) engaging the drive shaft 50. In other less preferred embodiments, a spline or a keyway and key can be used in the alternative, and the collar and hub can be made as one piece.
Also disclosed is a method for using the improved assembly 100, the method comprising the steps of defining a first size of the ports 170, 172 and 174 through the assembly 100 by providing a first port plate 104 (see
This method provides substantial less additional metal than in the prior art without adding a further obstruction to the stock flow path between the third refining member and the other refining members.
The port plates also affect the direction of the flow path through the refining member. Different port plate shapes (not shown) can also be used to provide different flow path directions through the refining member.
Various other features and advantages of the invention will be apparent from the following claims.
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Number | Date | Country | |
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20220161267 A1 | May 2022 | US |