Breaker liner attachment structure for vertical shredder
10384210 ยท 2019-08-20
Assignee
Inventors
Cpc classification
B02C2013/2808
PERFORMING OPERATIONS; TRANSPORTING
B02C2013/2825
PERFORMING OPERATIONS; TRANSPORTING
B02C2210/02
PERFORMING OPERATIONS; TRANSPORTING
B02C13/2804
PERFORMING OPERATIONS; TRANSPORTING
International classification
B02C13/18
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A breaker liner attachment structure for a vertical shredder including a rotor, a cylindrical shell, and a breaker, includes: a void that has an opening on an upper side and formed in an area between breaker liners in the breaker; and bolt insertion holes formed to extend from inner walls of the void to side surfaces of the breaker. Bolts are inserted into the bolt insertion holes via attachment holes formed in the breaker liners. The bolts are fastened with nuts from a side of the inner walls of the void.
Claims
1. A breaker liner attachment and breaker structure for a vertical shredder having: (i) a rotor that is supported on a rotation shaft rotating about a vertical axis and includes a shredding mechanism, (ii) and a tubular shell that is disposed on an outer side of the rotor in a radial direction in such a manner as to be concentric with the vertical axis, the breaker liner attachment and breaker structure comprising: a breaker that is supported by the rotation shaft above the rotor, at least a pair of breaker liners disposed opposite to each other on both sides of the breaker, a void or a through-hole having an opening provided on an upper side of the breaker between the pair of breaker liners, bolt insertion holes provided in the breaker and being communicable with inner walls of the void or the through-hole to side surfaces of the breaker, and bolts that are inserted into the bolt insertion holes via attachment holes formed in the pair of breaker liners, the bolts being fastened with nuts from a side of the inner walls of the void or the through-hole so that the nuts are inside the void or the through-hole, and a lid configured to cover the void or the through-hole.
2. The breaker liner attachment and breaker structure according to claim 1, wherein the void or the through-hole is formed in a center portion of the breaker in a width direction.
3. The breaker liner attachment and breaker structure according to claim 2, wherein the lid is configured to operate as a balance weight for adjusting a rotation balance of the breaker.
4. The breaker liner attachment and breaker structure according to claim 1, wherein a counter bore portion is provided on each of the attachment holes formed in the breaker liners, the counter bore portion being configured to accommodate a head portion of a corresponding one of the bolts, and facing surfaces of the counter bore portion and the head portion of the bolt are provided with surface finishing that is smooth.
5. The breaker liner attachment and breaker structure according to claim 4, wherein the lid is configured to operate as a balance weight for adjusting a rotation balance of the breaker.
6. The breaker liner attachment and breaker structure according to claim 1, wherein the lid is configured to operate as a balance weight for adjusting a rotation balance of the breaker.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Some embodiments of the present disclosure are shown by way of example, and not limitation, in the accompanying figures.
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DETAILED DESCRIPTION OF THE EMBODIMENTS
(21) A breaker liner attachment structure and a discharge portion liner attachment structure for a vertical shredder are described with reference to the drawings.
(22) As illustrated in
(23) In the device frame 6, a pulley 3 attached to an output shaft 4A of the motor 4, is coupled to a pulley provided to a rotation shaft 2 of the shredding process unit 10 via a V belt 5 in a driving force transmittable manner. Thus, a rotor 40 is rotated relative to the cylindrical shell 20 by driving force from the motor 4. The rotation shaft can rotate in normal and reverse directions, through rotation of the motor 4 in the normal and reverse directions.
(24) As illustrated in
(25) The shredding target object put in from the upper side is smashed and shredded by the breaker 30, and is then conveyed downward while being shredded between the shell liners 21 and 22 and the shredding grinders 41 into small pieces to fall into the discharge ring 60 disposed on a lower side of the cylindrical shell 20.
(26) The shredded material fell into discharge ring 60 is swept out through an opening 50A formed on a circumference wall of the discharge ring, by a sweeping operation performed by the sweeper 50 by rotating about the rotation shaft 2, to be discharged to the outside through the discharge portion 70.
(27) As illustrated in
(28) The shredding target object thrown in the cylindrical shell 20 is smashed and shredded by the first arm member 36 and the second arm member 37 that rotate together with the base 33 about the rotation shaft 2. The shredding target object is conveyed on the base 33 to be guided between the shell liners 21 and 22 and the shredding grinder 41. The base 33 is prevented from wearing in this process with raised portions 34 in a radial form provided on its upper surface. Hatched portions in
(29) Breaker liners 31 are attached to tips of the first arm member 36 and the second arm member 37 of the breaker 30 to prevent wearing as a result of smashing the shredding target object.
(30) The attachment structure for the breaker liner 31 is described below.
(31) As illustrated in
(32) The through holes 36h and 37h each serve as a void formed to have an opening on the upper side. This configuration where the void is the through hole should not be construed in a limiting sense, and a configuration where the void is a recessed portion having an opening on the upper side and a bottom portion may be employed.
(33) Bolts 31f are inserted into the bolt insertion holes 36j and 37j through attachment holes 31b formed on the breaker liners 31. The bolts 31f are fastened by using nuts 31g from the inner wall side of the through holes 36h and 37h.
(34) Thus, no long bolt needs to be used and the elongation of the bolt due to the impact and the like as a result of smashing the shredding target object can be prevented, whereby loosening of the nut can be prevented. The shredding target object never comes into contact with the nuts 31g, regardless of whether the breaker is rotating in the normal or reverse direction. Thus, the wearing of the nuts 31g, rendering them difficult to remove, is prevented.
(35) The through holes 36h and 37h are preferably formed in a center portion of the breaker 30 in a width direction extending left and right. With this configuration, the both left and right side surfaces of the breakers 30 (36, 37) can be at an equal distance from the center portion where the through holes 36h and 37h are provided. The bolts 31f of equal lengths can be used for attaching the left and right breaker liners 31. The weight balance of the breaker liners 31 is symmetrical on left and right sides, whereby a stable operation can be achieved with rotation in both the normal and the reverse directions.
(36) A counter bore portion 31a is formed around each attachment hole 31b formed in the breaker liner 31. The counter bore portion 31 a accommodates a head portion of the bolt 31f in a rotation prevented state. Facing surfaces 31e of the counter bore portion 31a and the head portion of the bolt 31f are provided with surface finishing to be smooth surfaces.
(37) As described above, the facing surfaces 31 e of both the counter bore portion 31a and the head portion of the bolt 31f are provided with the surface finishing to be smooth surfaces. As a result, the facing surfaces are not largely deformed by the smashing of the shredding target object after the initial fastening fixing. Thus, the fastened state can be prevented from being loosened, whereby no additional fastening work is required.
(38) If the facing surface 31e of any one of the counter bore portion 31a and the head portion of the bolt 31f is formed as a rough surface, recesses and protrusion on the rough surface plastically deform to be flat as a result of smashing the shredding target object after the initial fastening fixing. As a result, a gap is formed between the facing surfaces 31e, and thus the additional fastening work is required.
(39) Counter bore portions (for example, counter bore portions 31c on a side of the attachment holes 31b are illustrated) are formed in areas facing the attachment holes 31b, formed in the breaker liner 31, and the bolt insertion holes 36j, 37j, formed in the breaker 30 (36, 37). Spaces formed by the counter bore portions each accommodate a collar member 31h having a cylindrical shape. The collar member 31h receives a shearing load acting on the bolt 31f due to the impact received as a result of smashing the shredding target object. Thus, displacement between the breaker liner 31 and the breaker 30 (36, 37) is prevented. A pair of upper and lower lids 35A and 35B and a pair of upper and lower lids 35C and 35D are further provided to close the through holes 36h and 37h. The rotation balance of the breakers 30 (36, 37) can be adjusted with the weight of the lids 35A, 35B, 35C, and 35D.
(40) After the breaker liners 31 are attached, the through holes 36h and 37h are closed with the lids 35A, 35B, 35C, and 35D. Thus, the shredded material after the shredding process is prevented from entering and clogging the through holes 36h and 37h. The stable rotation can be achieved with the lids 35A, 35B, 35C, and 35D serving as the balance weights for adjusting the balance of the breakers 30 (36, 37) in rotation.
(41) As illustrated in
(42) As illustrated in
(43) The edge portions 63 of the discharge ring liners 62a positioned on the side of the opening 50A are covered with the discharge portion liners 62b. Thus, when the is shredded material swept out through the opening 50A, the discharge portion liners 62b wear instead of the edge portions 63 of the discharge ring liners 62a. As a result, the discharge ring liners 62a requiring a cumbersome work to be replaced are prevented from wearing. The discharge portion liners 62b are disposed outside the discharge ring 60 and on a side of the discharge portion 70, and thus can be easily replaced.
(44) Each of the discharge portion liners 62b includes: a facing edge portion 64 facing the edge portion 63 of the discharge ring liner 62a on the side of the opening 50A; and a thick portion 66 disposed adjacent to the facing edge portion 64 and having a surface 65 that continues from a surface of the discharge ring liner 62a with the same curvature.
(45) With this configuration, the shredded material guided to the opening 50A along the surface of the discharge ring liner 62a by the sweeping operation of the sweeper 50 is finally swept out in the radial direction of the discharge ring 60 while being in contact with the surface 65 of the thick portion 66 of the discharge portion liner 62b. This means that the portion to be most heavily worn is thick, and thus the maintenance does not need to be frequently performed.
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(47) As illustrated in
(48) When the angle between the left and right edges of the opening 50A about the rotation shaft 2 is less than 180 as in the embodiment described above, no support mechanism needs to be additionally provided for supporting the cylindrical shell 20 disposed above the discharge ring 60. Thus, the vertical shredder 1 can have a simple structure with a compact discharge portion.
(49) The embodiment described above is merely an example of the present invention. It is a matter of course that the specific structure, shape, size and the like of each of the components may be designed to be different as long as the advantageous effects of the present invention can be achieved.
DESCRIPTION OF SYMBOLS
(50) 1: vertical shredder 20: tubular shell 21, 22: shell liner 30: breaker 31: breaker liner 40: rotor 50: sweeper 50A: opening 60: discharge ring 62a: discharge ring liner 62b: discharge portion liner 70: discharge portion