WO1999036177A1 - Improvements in or relating to comminution devices - Google Patents
Improvements in or relating to comminution devices Download PDFInfo
- Publication number
- WO1999036177A1 WO1999036177A1 PCT/AU1999/000024 AU9900024W WO9936177A1 WO 1999036177 A1 WO1999036177 A1 WO 1999036177A1 AU 9900024 W AU9900024 W AU 9900024W WO 9936177 A1 WO9936177 A1 WO 9936177A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- cutting
- movable
- tension
- cutting device
- framework
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
Links
Classifications
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B02—CRUSHING, PULVERISING, OR DISINTEGRATING; PREPARATORY TREATMENT OF GRAIN FOR MILLING
- B02C—CRUSHING, PULVERISING, OR DISINTEGRATING IN GENERAL; MILLING GRAIN
- B02C18/00—Disintegrating by knives or other cutting or tearing members which chop material into fragments
- B02C18/06—Disintegrating by knives or other cutting or tearing members which chop material into fragments with rotating knives
- B02C18/14—Disintegrating by knives or other cutting or tearing members which chop material into fragments with rotating knives within horizontal containers
- B02C18/142—Disintegrating by knives or other cutting or tearing members which chop material into fragments with rotating knives within horizontal containers with two or more inter-engaging rotatable cutter assemblies
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B02—CRUSHING, PULVERISING, OR DISINTEGRATING; PREPARATORY TREATMENT OF GRAIN FOR MILLING
- B02C—CRUSHING, PULVERISING, OR DISINTEGRATING IN GENERAL; MILLING GRAIN
- B02C18/00—Disintegrating by knives or other cutting or tearing members which chop material into fragments
- B02C18/06—Disintegrating by knives or other cutting or tearing members which chop material into fragments with rotating knives
- B02C18/16—Details
- B02C18/18—Knives; Mountings thereof
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B02—CRUSHING, PULVERISING, OR DISINTEGRATING; PREPARATORY TREATMENT OF GRAIN FOR MILLING
- B02C—CRUSHING, PULVERISING, OR DISINTEGRATING IN GENERAL; MILLING GRAIN
- B02C2201/00—Codes relating to disintegrating devices adapted for specific materials
- B02C2201/04—Codes relating to disintegrating devices adapted for specific materials for used tyres
Definitions
- the present invention relates generally to methods and apparatus for comminuting materials, particular scrap or waste materials. More particularly, the present invention relates to apparatus, appliances, assemblies or installations having a cutting assembly and to methods of using such equipment in which the cutting assembly reduces the size of the material admitted to the equipment, such as for example by shredding. Even more particularly, the present invention relates to apparatus and methods of using the apparatus in which the cutting assembly comprises two counter-rotating, inter eshing cutting arrays having a plurality of individual cutters in which the tension applied to the cutting arrays is adjustable to take into account wearing of the cutters, particularly by moving an assembly containing the tensioning means with respect to the cutting assembly.
- the present invention relates to apparatus having a fixed framework on which is provided the cutting assembly and a movable framework on which is provided the tensioning assembly arranged in such a manner that movement of the movable framework allows adjustment of the tension applied to the cutting assembly by the tensioning assembly.
- the apparatus of the present invention may be used to comminute a wide variety of different materials into pieces of different sizes and shapes, the present invention finds particular application in reducing used tyres to small sized chunks.
- the present invention will be described with particular reference to an installation for reducing the size of tyres or other waste or recyclable materials, it is to be noted that the scope of the present invention is not restricted to the described arrangement, but rather it is more extensive to include other forms of the equipment, other uses and other methods .
- waste material can be recycled or used in other operations.
- discarded tyres can be burnt as fuel or otherwise treated to recover constituent chemicals.
- tyres are chopped into pieces and burnt as fuel.
- the operation of chopping the tyres into pieces is not entirely successful as the wire resists being broken and causes the individual pieces to be interconnected together.
- the individual pieces are not entirely separated from each other. This can cause problems in downstream processing, such as, for example, as contamination in furnaces burning the tyre pieces as fuel, which can block the furnace or contaminate products being formed.
- a cutting device comprising a fixed framework upon which is mounted a cutting assembly comprising a plurality of cutters and a framework movable with respect to the fixed framework, said movable framework being provided with a tensioning arrangement for maintaining the cutters under tension, wherein the movable framework is movable so as to be selectively positioned with respect to the fixed framework to adjust the tension applied to the cutters, such as for example to take into account wear of the cutters in use .
- a shredder comprising a fixed support for supporting two counter-rotating cutting arrays in which each array comprises a plurality of cutters, a movable support upon which a tensioning device is mounted, and an adjustment means interconnecting the fixed support and the movable support, said movable support being movable with respect to the fixed support in response to operation of the adjustment means to adopt a selected position so that tension applied to individual cutters of both arrays is maintained by the tension device at a preselected level, such as for example to take into account wear of the cutters in use.
- the cutters are circular, elliptical, eccentric or other suitable or desirable shape.
- there are two cutting arrays each array comprising a plurality of individual cutters. More typically, the cutters of one array are located intermediate cutters of the other array to form an intermeshing arrangement. Typically, the intermeshing arrangement extends along the length of the cutting arrays.
- the movable support or framework of the present invention includes two plates arranged substantially at right angles to each other. More typically, the vertical plate contains the adjustment means, whereas the horizontal plate contains the or part of the tensioning means. Even more typically, the tensioning means comprises two portions, each portion fixed to respective horizontal plates in which one plate is movable and the other is fixed. One part of the tensioning means applies tension to one array and the other part of the tensioning means applies tension to the other array.
- the two parts of the tensioning means are interconnected by a drive shaft, preferably a telescopic drive shaft, so that movement of the shaft simultaneously controls the amount of tension applied by both parts of the tensioning means.
- the two parts of the tensioning means interconnected by the telescopic shaft are driven by a single motor means, such as for example a hydraulic motor. Even more typically, the same tension is applied to both cutting arrays by two tensioning devices operated by the same hydraulic motor.
- the adjustment means mounted on the vertical plate comprises screw jacks.
- the screw jacks are provided with sprockets. More typically, an endless chain collectively engages all sprockets of the screw jacks to simultaneously adjust the position of the movable support or frame with respect to the fixed support or frame. Even more typically, the screw jacks interconnected the fixed framework and the movable framework so that operation of the screw jacks effects movement of the movable framework with respect to the fixed framework, thereby altering the tension applied by the tensioning means .
- each cutting array is supported by one or more bearings. More typically, each cutting array is supported at a location intermediate its ends by the bearing arrangement. Even more typically, each cutting array is supported by the bearing arrangement about the mid-point of each respective array. Even more typically, the bearing arrangement is a slideable bearing arrangement.
- the slideable bearing arrangement comprises an eccentric shaft .
- the eccentric shaft oscillates in use to remain clear of the cutting arrays in use.
- the cutting arrays are provided with individual cutters in which selected ones of the individual cutters contact part of the eccentric shaft to maintain the shaft free of the rotating cutters in use.
- the tensioning device is a coiled torsion spring. More typically, there are two coil torsion springs, one spring for applying tension to one of the arrays, the other spring for applying tension to the other array.
- the cutters are provided with surface irregularities. More typically, the surface irregularities include cleats. Even more typically, one form of the cleat is a plurality of raised blocks located at regularly spaced apart locations around the circumference of the cutter. Even more typically, the cleats are provided with transverse grooves and with circumferentially extending grooves. Even more typically, grooves are provided in the spaces between adjacent cleats. Even more typically, the grooves are axially extending grooves.
- the movable assembly is movable over a linear distance of up to one metre, typically up to 750 millimetres, and more typically up to 600 millimetres. More typically, the direction of movement is axial with respect to the longitudinal direction of the cutting arrays .
- each cutting array is provided with a drive shaft journalled in a bearing at each end.
- the bearing is a multiple bearing comprising at least two bearings arranged in opposed face to face relationship with respect to each other, with one bearing being located within the other, thereby allowing movement of the shaft deviating from alignment along the central axis.
- Figure 1 is a partial vertical cross-sectional side view of one form of the apparatus of the present invention showing the general relationship of many of the components;
- Figure 2 is a horizontal cross-section taken along the line 2-2 of Figure 1 showing the two cutting assemblies in side by side relationship;
- Figure 3 is a vertical cross-section taken along the line 3-3 of Figure 1 showing details of the sliding bearing arrangement
- Figure 4 is a vertical cross-section taken along the line 4-4 of Figure 1 showing details of the slideable tensioning assembly
- Figure 5 is a vertical cross-sectional view taken along the line 5-5 of Figure 4 showing side on details of the tensioning assembly;
- Figure 6 is a vertical cross-sectional view taken along the line 6-6 of Figure 4 showing further details of the tensioning assembly
- Figure 7 is a vertical cross-sectional view of the apparatus of the present invention in a position compensating for wear to individual cutters of the cutting sub-assembly;
- Figure 8 is a cross-sectional view of two adjacent cutters of the same cutting assembly when the cutters are relatively new;
- Figure 9 is a similar view to that of Figure 8 showing the cutters in a worn condition
- Figure 10 is a perspective view of one form of the cutter
- Figure 11 is a partial transverse cross-sectional view of the form of the cutter of Figure 10;
- Figure 12 is an axial view of the cutter of
- Figure 13 is a partial cross-sectional view of one form of the main bearing supporting the drive shaft of the cutting array.
- a shredder made in accordance with the present invention for shredding material, such as waste or recyclable material, particularly used car, truck and motorcycle tyres, into relatively small sized pieces from which the constituent chemicals can be recovered or which can be used as a convenient fuel.
- material such as waste or recyclable material, particularly used car, truck and motorcycle tyres
- the shredder is made up of a number of different assemblies, some of which are fixed and some of which are movable with respect to the fixed assemblies in order to adjust operating parameters of the shredder, such as for example the tensioning devices applying tension to the shredder to compensate for wear to the cutters or similar over time or as a result of use.
- the assemblies can be broadly sub-divided into a fixed main framework comprising a rotating cutting assembly provided with anti-wrap members and a movable framework comprising a tensioning assembly for maintaining the cutting assembly under constant tension irrespective of the amount of wear to the cutting assembly.
- Shredder 2 comprises a main framework which is fixed and forms the main structure and support for the shredder.
- the fixed framework comprises four lengthwise extending rails 4, two of the rails being top rails and two of the rails being lower rails, two girders 5 located underneath the lower rails, and two end plates 6, 8 transversely connected to the ends of the rails and girders to form a substantially rectilinear, fixed and rigid framework.
- Other structural members may be optionally provided.
- Doors, coverplates, shrouds and the like are connected to the framework at various locations to fill in the area between the rails 4, girders 5 and end plates 6, 8 for reasons of safety of operation of the shredder and to protect the working parts of the shredder.
- the doors etc which provide easy access internally into the apparatus are not shown in the drawings for clarity of illustration of the components of the shredder.
- a fixed, generally U- shaped inlet chute 10 having an open end facing inboardly is located on top of one end of the top rails 4 to allow waste material to be admitted to the shredder 2 for processing.
- the fixed inlet chute 10 comprises upper tapered side sections 14 and lower vertical side sections 16.
- a generally U-shaped movable portion 12 having one open side forms the other end of the inlet chute 10 by closing the open end of fixed portion 10 since the opening of chute 12 oppositely faces the opening of inlet chute 10.
- Portion 12 is telescopically received in fixed portion 10 to complete the chute and allow movement of chute 12 with respect to chute 10.
- movable portion 12 moves telescopically within inlet chute 10 when the position of the tensioning assembly is adjusted.
- Movable portion 12 is provided with tapered upper sides corresponding to the tapered upper sides of fixed portion 10 and nested therewithin and with lower vertical sides corresponding to the lower vertical sides of the fixed potion and nested therewithin.
- Movable portion 12 axially moves with respect to the fixed portion 10 so that the tapered and lower sides move respectively with respect to the corresponding tapered and lower sides, as will be described in more detail later so that no matter what position the tensioning assembly adopts with respect to the main frame, a complete inlet chute is always defined.
- the opening of the chute receives material for shredding, such as for example whole tyres or the like, whilst the tapered side sections 14 direct the material towards the cutting assembly 20 for more efficient shredding.
- Material admitted to the inlet chute 10 falls onto a cutting assembly 20 comprising two counter-rotating cutting arrays 22, 24 arranged in parallel relationship to each other, whereupon it is shredded into smaller sized pieces which fall through the open base portion of the shredder into a receiving hopper or similar arrangement such as a conveyor, for removing the shredded material to a remote location.
- a cutting assembly 20 comprising two counter-rotating cutting arrays 22, 24 arranged in parallel relationship to each other, whereupon it is shredded into smaller sized pieces which fall through the open base portion of the shredder into a receiving hopper or similar arrangement such as a conveyor, for removing the shredded material to a remote location.
- the cutting sub-assembly 20 of shredder 2 can be driven by a number of different alternative motors, such as for example by electric motor, hydraulic motor, or internal combustion or diesel motor.
- a typical motor employed in powering shredder 2 is a diesel engine coupled to a hydraulic motor.
- Hydraulic motor 30 is coupled to a transmission 32 at one end of shredder 2.
- Gearbox 32 is arranged to provide spaced apart and intermeshed output drives 34 which rotate simultaneously in opposite directions in use.
- each output drive 34 is coupled to a suitable coupling in the form of a multiple main bearing or similar 40, which will be described in more detail later.
- Each multiple main bearing 40 is connected to a generally square section main shaft 42 having rounded corners 44 between the flat sections, which shafts are the main drive shafts for the shredder.
- One cutting array is associated with one of the shafts while the other cutting array is associated with the other shaft.
- a plurality of identical cutters 46 are arranged on each main shaft 42 in abutting relationship to form each array.
- both shafts and cutters form arrays which are substantially mirror images of each other about the plane through the portions of the cutters of one shaft which operatively mesh with cutters on the other shaft, apart from the positioning of the thrust bearing (to be described in more detail later) , only one cutter array will be described in detail.
- each cutter 46 is provided with two cutting edges 48 located on either side of the circumferential portion of the cutter.
- the cutting surfaces 48 extend circumferentially around a central hub portion 50.
- the outer circumferential edge of the cutter located intermediate the cutting edges 48 is provided with a plurality of cleats 52 in the form of raised blocks having transversely extending grooves 54 as well as being provided with a series of transverse grooves in the spaces between adjacent blocks.
- the planes containing each of the cutting surfaces 48 are angularly inclined to the central axis of the hub 50 of the cutter.
- each cutter 46 comprises a number of flat sections (flats) 56 which are complementary in shape to the flat sections of the main shaft 42 so that when the cutter is located on the main shaft it is driven by rotation of the main shaft since the flat sections of the main shaft are in contact with corresponding flats 56 of the hub of the cutter.
- Each cutter 46 is oriented on its main shaft 42 so that cleats 52 of one cutter are positioned intermediate the cleats of two adjacent cutters when the cutters are in intermeshing relationship, so that when the cutters counter-rotate the cleats intermesh in turn to assist in grabbing and holding material introduced into the shredder as it is shredded, to aid the efficiency of the shredder.
- the cutters are located on the main shaft so that adjacent cutting surfaces 48 of adjacent cutters 46 on the two side by side parallel shafts contact each other to perform the shredding. As the cutters rotate, the cutting surfaces of the adjacent cutters remain in contact with each other over the length of the arc corresponding to the cutters being in intermeshing relationship. It is to be noted that in this orientation when the cutters are relatively new, the hub portions of adjacent cutters do not abut against each other, but rather there is a gap between the hubs of adjacent cutters as shown in Figure 8. The cutters are maintained in this spaced apart spatial arrangement by tension applied to the cutters from a tensioning assembly including the thrust bearing which will be described in more detail later so that the cutting surfaces are in abutting relationship.
- the cutting surfaces 48 are ground away by their continual contact with adjacent cutting surfaces, since not only are the cutting surfaces in contact to shred material therebetween, but also to effect self-sharpening of the surfaces which facilitates efficient operation of the shredder.
- the hubs 50 of adjacent cutters on the same shaft move closer together until they contact each other or nearly so, as shown in Figure 9, which signals the cutters being at the end of their useful working lives.
- the tension applied thereto becomes less and needs to be periodically readjusted.
- bearing 40 comprises inner bearing 180 which interconnects main shaft 42 and allows rotation thereof with respect to housing 182 by suitable means, such as rollers 184 or similar.
- Outer bearing 186 is located externally of inner bearing 180 and comprises rollers 188, 190 arranged in angularly inclined relationship to allow inner bearing 180 to flex off axis with respect to outer bearing 186.
- this arrangement of a bearing within a bearing allows the main shaft 42 to flex under heavy loads during operation so the amount and direction of movement away from the at rest position afforded by this arrangement means that the shredder does not stall or suffer damage should an unusual operating condition be encountered, such as a foreign object becoming lodged between the two cutting arrays and/or the two parallel shafts 42.
- a loose fitting collar 60 having tapered end portions for fitting over the hub portions 50 of the cutters 46.
- One end of a diverting chain 62 is connected to a suitable fastening point provided on collar 60 and the other end of the diverting chain 62 is connected to a suitable fastening point on a further collar 64 which is received on a stationary rod 66 extending lengthwise along the shredder between girders 5.
- the further collar 64 is free to slide axially up and down on the fixed rod 66 as the cutter rotates to anchor one end of the diverting chain 62 whilst being clear of the rotating cutters.
- the diverting chain 62 forms an anti-wrap member to divert material being shredded by the shredder from continually wrapping around the cutter and main shaft.
- the diverting chain directs any material with a tendency to wrap around the main shaft 42 and cutters 46 towards the open bottom of shredder 2 for removal from the shredder.
- a slideable bearing arrangement 70 for providing support to the main shafts 42 and preventing the shafts from being forced away from each other during operation of the device, particularly when material which is difficult to cut or foreign material is lodged between the shafts in use.
- the slideable bearing 70 will now be described in more detail. It is to be noted that whilst there is a slideable bearing supporting each main shaft 42, the slideable bearings are mirror images of each other so that only one bearing will be described. Similarly, the upper and lower parts of each bearing are the same except for their direction of orientation and the direction in which the bearing force is applied so that only the upper part of one of the slideable bearings will be described in full.
- the slideable bearing arrangement 70 comprises an upper rail 72 upon which an upper jaw member 74 is interlockingly received and a lower rail 76 upon which a lower jaw member 78 is interlockingly received.
- the upper and lower jaw members 74, 78 are free to slide axially along the respective upper and lower rails 72, 76 in the lengthwise extending direction of the shredder.
- the upper and lower jaw members 74, 78 are each connected to a vertical support plate 80 which is provided with a generally triangular-shaped upper support bracket 82 and a generally triangular-shaped lower support bracket 84.
- the upper triangular support bracket 82 is provided with a bearing housing and bearing 85 in which one end of an eccentric crank 86 is journalled.
- Eccentric crank 86 comprises two opposed shanks extending outwardly from the central body portion along two axes which are off-set to each other.
- the other end of eccentric crank 86 is journalled in a further bearing and housing 88 which is connected to one of the flat surfaces 92 of a bearing block 90.
- the bearing block 90 houses a bearing internally therein within which the main shaft 42 is journalled for rotation, thus providing support for the main shaft as it rotates.
- a similar support arrangement is provided underneath the level of the main shaft 42 by extending from the other flat surface 94 of bearing block 90 through a further eccentric shaft 86 via two sets of bearings and housing to lower triangular bracket 84.
- the sliding bearing arrangement supporting the other main drive shaft is similar. The two shafts 42 are thus held securely in place by the two slideable bearings.
- the eccentric cranks 86 oscillate in unison with rotation of the cutter by the hub portion 50 of the cutter 46 contiguous with the eccentric shaft contacting one side of the shank of the eccentric crank closer to main shaft 42 to cause it to move away as the cutting edge 48 comes close to it and then to move back in the other direction as the cutter continues to rotate by the adjacent cutter 46 contacting the other side of the shank, so that the eccentric shaft first moves in one direction and then in the other direction to keep out of the way of the rotating cutter at all times as the cutter rotates. Movement of the eccentric crank 86 is facilitated by oscillation of vertical plate 80 and jaw members 74, 78 along upper and lower rails 72, 76.
- the slideable bearings oscillate backwards and forwards in the axial direction as the main shafts rotate whilst maintaining support for the main shafts to prevent them from separating from each other and lowering the efficiency of the shredder.
- the tensioning assembly 100 is located on the upper surfaces of the two spaced apart longitudinally extending top side rails 4 of the framework.
- the assembly is axially movable in the longitudinal direction of the shredder to compensate for wear in the cutting surfaces 48 of the cutters 46 forming part of the cutting assembly 20.
- the tensioning assembly is mounted on its own support and its position with respect to the main frame is adjustable by the use of adjustment means.
- the tensioning assembly 100 comprises two substantially perpendicularly arranged plates connected to each other to form the base of the movable framework of the tension assembly.
- the horizontal plate 101 rests on top of the top rails 4 in grooves (not shown) provided to allow the plate 101 to slide longitudinally whilst being supported.
- the vertical plate 103 depends downwardly from the horizontal plate 101 and contains the adjusting mechanism used to move the movable framework with respect to the fixed framework.
- Movable inlet chute 12 is fixedly attached to the top of the horizontal plate 101 and accordingly moves with respect to fixed inlet chute 10 when plate 101 moves.
- Each screw jack 102 is located at spaced apart locations towards the four corners of end plate 6 to interconnect the movable framework to the fixed framework.
- Each screw jack 102 comprises an outer covering providing protection for an externally threaded internal shaft 104 which threadingly engages with a captive nut 106 or similar fixedly connected to vertical plate 103 so that rotation of the threaded shaft 104 causes the nut 106 to travel lengthwise along the threaded shaft 104 in order to adjust the position of the assembly with respect to the main frame.
- the outboard ends of each screw jack 106 extending outwardly from plate 6 are provided with a sprocket wheel 110 or similar collectively about which is received an endless chain 112.
- the endless chain 112 co-operatively engages each of the four sprockets 110 associated with each of the screw jacks 102, a tension or idler sprocket 114, and a drive sprocket 116 connected to adjustment hydraulic motor 118. Operation of the hydraulic motor 118 causes the drive sprocket 116 to rotate, which in turn causes the chain 112 to move, which in turn drives the sprockets 110 connected to the screw jacks 102 for moving the threaded shaft 104 with respect to the captive nuts 106, which in turn moves plate 101 to adjust the position of the assembly 100 with respect to the main frame of the shredder.
- tension control hydraulic motor 120 which is fixedly mounted on the top of plate 101, is connected to a gearbox 122 having two output shafts extending outwardly in opposite lengthwise extending directions therefrom.
- a bevel gear 124 is connected to one of the output shafts whereas the other output shaft is connected to a telescopic drive shaft 160.
- the one output shaft from the bevel gear 124 is connected to rotatable axle 126 to which is fixedly connected a retaining collar 128 which rotates in unison with axle 126.
- Collar 128 is provided with a slot or similar for captively retaining one end of a coil torsion spring 130 which is coiled about axle 126.
- An axle 142 extends between arms 140 more inboardly of pin 138. Axle 142 is received in pivot 144 thus allowing axle 142 to pivot therein which causes corresponding pivoting movement of arms 140.
- Yokes 146 are arranged as extensions of arms 140 in parallel spaced apart relationship to define a space in which pivotable thrust bearing 150 is pivotally retained. Shaft 42 is received through thrust bearing 150. Thrust bearing 150 bears against hub 50 of the endmost cutter 46 located on shaft 42 so as to maintain all of the cutters on the one shaft under the same tension. Thus, operation of hydraulic motor 120 causes the correct tension to be applied to this cutting array through thrust bearing 150.
- telescopic drive shaft 160 which extends between gearbox 122 located on plate 101 as described above and to the part of the tensioning means located at the other end of shredder 2 for applying tension to the other main drive shaft 42 by rotation of telescopic shaft 160, it can be seen that the other end of shaft 160 is connected to a gearbox 162 and bevel gear 164 similar to bevel gear 124 located at the other end of shredder 2.
- the remaining components of this part of the tensioning means are the same as that described previously except that it imparts tension to the cutters on the other drive shaft 42 forming the other cutting array.
- this second part of the tensioning assembly remains fixed with respect to the main framework upon which it is mounted, hence the reason for telescopic shaft 160 to accommodate movement of plate 101 with respect to this second part of the tensioning device.
- the telescopic drive shaft 160 interconnecting both parts of the tensioning means to simultaneously apply the same tension to both arrays of cutters by the two separate torsion springs using only a single motor, it is possible to apply the same tension between all of the cutting surfaces of all of the cutters irrespective of which drive shaft they are located on and driven by.
- shredder 2 of the present invention In operation of shredder 2 of the present invention, when cutters 46 are new or nearly so, they are arranged on their respective shafts 42 in a manner as shown in Figure 8 since the adjacent cutting surfaces 48 of adjacent cutters 46 on adjacent shafts 42 are in contact with each other so that the hubs of adjacent cutters on the same shaft 42 are relatively widely spaced apart from each other.
- hydraulic motor 120 is operated to rotate collar 128 on shaft 126 thereby causing torsion spring 130 to twist since both ends of spring 130 are held captive by respective collars.
- tension is applied to collar 132 since it is prevented from movement by the yoke arrangement received in the bore extension of this collar.
- tension is applied to thrust bearing 150 which in turn maintains all the cutters on this shaft under the same tension.
- telescopic shaft 160 is caused to rotate by hydraulic motor 120 to cause tension to be applied to all of the cutters on the other driving shaft.
- both torsion springs are controlled from the same hydraulic motor 120, the same tension is applied to both shafts 42 simultaneously.
- all of the cutters, irrespective of which shaft they are driven by, are under the same tension.
- the diesel engine is started to cause hydraulic motor 30 to operate to drive both driving shafts 42 and all of the cutters 46.
- Gearbox 32 is so arranged that the two shafts
- Waste material is introduced to shredder 2 through inlet chute 10 and directed onto the two counter-rotating cutting arrays whereupon the material is reduced to relatively small sized pieces.
- Cleats 52 provided around the circumferential edge of the cutters help to draw the waste material into the cutters and maintain it there during the actual shredding operation.
- the four eccentric cranks 86 are caused to oscillate so as to be clear of the rotating cutters in their immediate vicinity yet still provide support, facilitated by the four slideable bearings which also oscillate in accordance with oscillation of the eccentric cranks 86.
- the movement of the sub-assembly brings thrust bearings 150 into closer contact with the respective endmost cutters on each respective shaft and also assist in tensioning the cutters.
- hydraulic motor 120 is again operated to further twist spring 130 to increase the tension on the thrust bearing 150 to correctly re-tension all of the cutters on both shafts 42, whereupon the shredder is operated again to comminute the waste material .
- the readjustment process is repeated and so on, until there is no further adjustment possible, such as when the hubs of adjacent cutters on the one shaft are abutting against one another or almost so, as shown in Figure 9. At this stage, the cutters can be replaced.
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Abstract
Description
Claims
Priority Applications (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| AU20409/99A AU749811B2 (en) | 1998-01-16 | 1999-01-15 | Improvements in or relating to comminution devices |
| US09/600,448 US6454196B1 (en) | 1998-01-16 | 1999-01-15 | Comminution devices |
| EP99900832A EP1054736A4 (en) | 1998-01-16 | 1999-01-15 | Improvements in or relating to comminution devices |
| JP2000539935A JP2002509024A (en) | 1998-01-16 | 1999-01-15 | Improvements in or related to cutting equipment |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| AUPP1355 | 1998-01-16 | ||
| AUPP1355A AUPP135598A0 (en) | 1998-01-16 | 1998-01-16 | Improvements in or relating to comminution devices |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO1999036177A1 true WO1999036177A1 (en) | 1999-07-22 |
Family
ID=3805636
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/AU1999/000024 Ceased WO1999036177A1 (en) | 1998-01-16 | 1999-01-15 | Improvements in or relating to comminution devices |
Country Status (5)
| Country | Link |
|---|---|
| US (1) | US6454196B1 (en) |
| EP (1) | EP1054736A4 (en) |
| JP (1) | JP2002509024A (en) |
| AU (1) | AUPP135598A0 (en) |
| WO (1) | WO1999036177A1 (en) |
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| CN119456138A (en) * | 2025-01-15 | 2025-02-18 | 浙江环益资源利用股份有限公司 | Metal waste slag crushing and processing device |
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| US6981667B2 (en) * | 2003-10-10 | 2006-01-03 | Michilin Prosperity Co., Ltd. | Elliptical acetabuliform blade for shredder |
| JP2007044581A (en) * | 2005-08-08 | 2007-02-22 | Mitsui Miike Mach Co Ltd | Twin screw crusher |
| JP2007069188A (en) * | 2005-09-09 | 2007-03-22 | Mitsui Miike Mach Co Ltd | Twin screw crusher |
| USD545890S1 (en) * | 2006-05-17 | 2007-07-03 | Aron Abramson | Shredder basket |
| USD547366S1 (en) * | 2006-06-15 | 2007-07-24 | Staples The Office Superstore, Llc | Shredder device |
| USD546872S1 (en) * | 2006-08-09 | 2007-07-17 | Staples The Office Superstore, Llc | Shredder device |
| US20080093488A1 (en) * | 2006-10-19 | 2008-04-24 | Staples The Office Superstore, Llc | Shredder |
| USD556250S1 (en) | 2006-10-30 | 2007-11-27 | Staples The Office Superstore, Llc | Shredder |
| WO2008094596A2 (en) | 2007-01-30 | 2008-08-07 | Staples The Office Superstore, Llc | A shredder |
| USD587297S1 (en) | 2007-08-31 | 2009-02-24 | Staples The Office Superstore, Llc | Shredder |
| USD586846S1 (en) | 2007-08-31 | 2009-02-17 | Staples The Office Superstore, Llc | Shredder |
| USD611088S1 (en) | 2008-02-20 | 2010-03-02 | Staples The Office Superstore, Llc | Shredder |
| CN110665621B (en) * | 2019-10-11 | 2021-01-15 | 重庆化工职业学院 | Grinder is smashed to medicinal material |
| CN112427104B (en) * | 2020-10-31 | 2022-04-29 | 吕桂芹 | Western medicine drug crushing and sorting machine |
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| CN113680501B (en) * | 2021-08-23 | 2022-11-22 | 安徽宇润道路保洁服务有限公司 | Self-suction type road garbage crusher |
| CN117433831B (en) * | 2023-12-20 | 2024-03-15 | 南京建凯建设项目管理有限公司 | Sampling and cutting device for building engineering detection |
| CN117772358B (en) * | 2023-12-20 | 2024-05-28 | 浙江永记金属材料科技有限公司 | Aluminum ingot production process |
Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO1979001002A1 (en) * | 1978-04-28 | 1979-11-29 | E Eriksson | Pulp refining apparatus with adjustable treating gap |
| US4330092A (en) * | 1979-12-07 | 1982-05-18 | The Perkin-Elmer Corporation | In-line shredder apparatus |
| US5236139A (en) * | 1992-08-10 | 1993-08-17 | Ameri-Shred Industrial Corp. | Wear adjustable shredder |
| GB2300131A (en) * | 1995-04-28 | 1996-10-30 | Extec Screens & Crushers Ltd | Roller shredder |
Family Cites Families (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE8532599U1 (en) * | 1985-11-18 | 1986-02-20 | Bohmter Maschinenfabrik Gmbh & Co Kg, 4508 Bohmte | Shredding device |
| DE8813569U1 (en) * | 1988-10-28 | 1989-01-12 | Wilhelm Dahle Büro-Technik GmbH & Co KG, 8630 Coburg | Scraperless cutting unit for a document shredder |
-
1998
- 1998-01-16 AU AUPP1355A patent/AUPP135598A0/en not_active Abandoned
-
1999
- 1999-01-15 WO PCT/AU1999/000024 patent/WO1999036177A1/en not_active Ceased
- 1999-01-15 EP EP99900832A patent/EP1054736A4/en not_active Withdrawn
- 1999-01-15 US US09/600,448 patent/US6454196B1/en not_active Expired - Fee Related
- 1999-01-15 JP JP2000539935A patent/JP2002509024A/en active Pending
Patent Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO1979001002A1 (en) * | 1978-04-28 | 1979-11-29 | E Eriksson | Pulp refining apparatus with adjustable treating gap |
| US4330092A (en) * | 1979-12-07 | 1982-05-18 | The Perkin-Elmer Corporation | In-line shredder apparatus |
| US5236139A (en) * | 1992-08-10 | 1993-08-17 | Ameri-Shred Industrial Corp. | Wear adjustable shredder |
| GB2300131A (en) * | 1995-04-28 | 1996-10-30 | Extec Screens & Crushers Ltd | Roller shredder |
Non-Patent Citations (1)
| Title |
|---|
| See also references of EP1054736A4 * |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN119456138A (en) * | 2025-01-15 | 2025-02-18 | 浙江环益资源利用股份有限公司 | Metal waste slag crushing and processing device |
Also Published As
| Publication number | Publication date |
|---|---|
| EP1054736A1 (en) | 2000-11-29 |
| EP1054736A4 (en) | 2002-01-02 |
| US6454196B1 (en) | 2002-09-24 |
| JP2002509024A (en) | 2002-03-26 |
| AUPP135598A0 (en) | 1998-02-05 |
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