Crusher Bucket
The crusher bucket addresses frame deformation and load resistance issues through a reinforced frame and adjustable jaw spacing, ensuring structural integrity and efficient material processing.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-09-29
- Publication Date
- 2026-04-09
AI Technical Summary
Existing crusher buckets face issues with frame deformation due to material resistance loads and the weight of the bucket, necessitating reinforcement to prevent deterioration and optimize internal space for delicate components like the motor and hydraulic circuitry.
A crusher bucket design featuring a reinforced frame with movable and fixed jaws, a housing for the motor, and reinforcing plates to absorb and distribute crushing loads, along with adjustable jaw spacing for optimal material processing.
Enhances the bucket's structural integrity and efficiency by withstanding crushing loads, protecting internal components, and optimizing material flow, while maintaining the integrity of the frame and reducing wear.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to an improved crusher bucket, and more particularly to a crusher bucket according to the preamble of the main claim set forth in the appended claims for crushing inert materials and for treating waste and demolition materials, which are generally also referred to below as gravel.
Background Art
[0002] In the technical field of the present invention, buckets are known that include an outer frame configured to collect gravel and have a crushing element operated by a hydraulic motor attached inside for the collected material.
[0003] Note that in this specification, the term "bucket" generally refers to a member provided at the free end of the arm of a work machine and intended to engage therewith.
[0004] An example of a prior art crusher bucket is described in European Patent No. 1532321 in the same applicant's name.
[0005] In this example, the crushing element provided in the bucket includes a pair of jaws facing each other. One of the jaws is movable relative to the other jaw to compress and crush the material present between the jaws. In particular, the movable jaw performs a rotational / translational movement with respect to the fixed jaw. This results from providing an eccentric connection at the front part of the movable jaw and a strut-type connection at the rear part of the movable jaw on the opposite side.
[0006] The crusher bucket described in the above-mentioned document undoubtedly shows a substantial improvement compared to the conventionally known buckets. However, many drawbacks that limit its performance level have also been encountered, particularly drawbacks related to the ability to withstand the loads caused by the resistance of the material to be crushed.
[0007] In fact, during rubble crushing operations, frame deformation progresses, particularly in areas that encounter loads generated by strut-type connections.
[0008] These loads are amplified by the load borne by the weight of the bucket itself when the upper wall of the frame engages with the free end of the working machine's arm.
[0009] Therefore, the frame needs to be reinforced to prevent deterioration over time.
[0010] Furthermore, this problem conflicts with the need to streamline the internal space of the frame to accommodate and protect the numerous delicate components of the bucket, particularly the motor and its hydraulic operating circuitry.
[0011] Another example of a crusher bucket is described in Chinese utility model application No. 212882594. [Overview of the project] [Problems that the invention aims to solve]
[0012] The problem that the present invention aims to solve is to provide a crusher bucket that is structurally and functionally configured to overcome at least partially one or more of the aforementioned drawbacks with reference to the cited prior art. [Means for solving the problem]
[0013] This problem is solved by a crusher bucket having a frame with defined material inlet, material outlet, and material flow direction from material inlet to material outlet, and the above objective is achieved by the present invention.
[0014] Furthermore, a crushing element is provided which includes movable jaws that are received within the frame and fixed jaws.
[0015] Preferably, the bucket comprises a motor capable of operating a crushing element, and more preferably, a housing in which the motor is at least partially housed in a protected state.
[0016] The housing may be laterally defined by the side walls of the frame on opposite sides, and further divided by the bottom wall of the housing facing the movable jaws, and the top wall of the housing on the opposite side of the bottom wall.
[0017] Preferably, the lower and upper walls of the housing extend between the side walls of the frame, particularly from one side wall to the other.
[0018] Preferably, the housing defines a region facing the outlet and a region located opposite the outlet with respect to the material flow direction.
[0019] Preferably, the bucket further comprises a plurality of first reinforcing plates positioned inside the housing in a region located opposite the outlet.
[0020] Advantageously, the first reinforcing plate is connected to the lower and upper walls of the housing. This secures the lower wall to the upper wall.
[0021] Thus, the first reinforcing plate contributes to the absorption and distribution of the load caused by the resistance of the material being crushed, from one wall to the other.
[0022] Furthermore, when the upper part of the frame is positioned at the free end of the working machine's arm, the first reinforcing plate contributes to withstanding the weight of the bucket.
[0023] Generally, in order to give greater rigidity to the housing and frame, the first reinforcing plates are preferably parallel to each other and / or perpendicular to the lower and upper walls. [Brief explanation of the drawing]
[0024] The features and advantages of the present invention will become more apparent from the following detailed description of the preferred embodiments, which are illustrated by way of example and not limitation, with reference to the accompanying drawings. [Figure 1] Front perspective view of a crusher bucket according to the present invention. [Figure 2] Rear perspective view of the bucket shown in FIG. 1. [Figure 3] Cross-sectional view of the bucket shown in FIG. 1, showing an attachment for engaging the bucket to the free end of the arm of a work machine that is not shown in FIGS. 1 and 2. [Figure 4] Enlarged view of the details shown in FIG. 3. [Figure 5] Perspective view of the details shown in FIG. 4, with some components omitted for the purpose of explaining components that are not normally visible. [Figure 6] Perspective view of the details shown in FIG. 4, with some components omitted for the purpose of explaining components that are not normally visible. [Figure 7] Perspective view of the details shown in FIG. 4, with some components omitted for the purpose of explaining components that are not normally visible. [Figure 8] Side view of the details of the bucket shown in FIG. 1. [Figure 9] Perspective view of the cross-section of the bucket shown in FIG. 1, with some components omitted for the purpose of explaining components that are not normally visible. [Figure 10] Perspective view of the cross-section of the bucket shown in FIG. 1, with some components omitted for the purpose of explaining components that are not normally visible. [Figure 11] View of the details shown in FIG. 4, with some components arranged in different operating configurations. [Figure 12] Front perspective view of the details shown in FIG. 11. [Figure 13] Rear perspective view of the details shown in FIG. 11. [Figure 14] Perspective view of the jaw of the bucket shown in FIG. 3. [Figure 15]Figure 14 is a partial cross-sectional perspective view of the jaw. [Modes for carrying out the invention]
[0025] First, referring to Figures 1 and 2, the crusher bucket according to the present invention is shown as a whole by reference numeral 1.
[0026] Preferably, the bucket 1 comprises an external frame 2 including two side walls 3 that are opposite to each other.
[0027] Furthermore, preferably, an upper wall 4 and a lower wall 5 are provided for the frame. The upper wall 4 and the lower wall 5 are on opposite sides of each other and extend between the side walls 3, particularly from one side wall to the other.
[0028] Note that upper and lower placements are defined in relation to the position of the buckets during the steps of collecting materials from the ground.
[0029] Referring to the example shown in Figure 3, an attachment 6 is provided on the upper wall 4 of the frame for engaging a bucket with the free end of the arm of a working machine (not shown).
[0030] Within frame 2, an inlet 7 is defined for introducing rubble or other materials to be crushed, typically stone, and an outlet 8 on the opposite side for discharging the processed material after the crushing operation.
[0031] The material flow direction F is defined from the inlet 7 to the outlet 8.
[0032] Preferably, the side walls 3, top wall 4, and / or bottom wall 5 of the frame extend substantially along the flow direction F.
[0033] Furthermore, the frame 2 may include a rear wall 9 adjacent to the exit 8 that connects the side walls 3 to each other.
[0034] Preferably, the side walls 3, top wall 4, bottom wall 5, and / or rear wall 9 of the frame form the outer wall of the frame.
[0035] Inside frame 2, a crushing element for rubble is installed. The crushing element comprises a movable jaw 10 and a fixed jaw 11 on the opposite side, which is fixedly joined to the frame.
[0036] The movable jaw 10 may be positioned adjacent to the upper wall 4 of the frame. The fixed jaw 11 may be positioned adjacent to the lower wall 5 of the frame.
[0037] Preferably, a crushing region 12 is defined inside the bucket, more specifically between the jaws 10 and 11, separated laterally by the side wall 3 of the frame.
[0038] According to a preferred embodiment, grooved plates 13 and 14 are fixed to the jaws 10 and 11, respectively, to facilitate the crushing motion.
[0039] In jaws 10 and 11, front portions 10a, 11a and rear portions 10b, 11b are defined on opposite sides, respectively. The front portions 10a, 11a of the jaws are located at the entrance 7, and the rear portions 10b, 11b are located at the exit 8. The distance between the front portions 10a, 11a of the jaws defines the maximum size of the rubble that can be fed into the bucket and is typically greater than the distance D between the rear portions 10b, 11b, which correlates with the desired maximum size of the rubble at the exit 8. Advantageously, the distance D between the rear portions 10b, 11b may be adjustable, as described later.
[0040] Furthermore, the bucket 1 includes a moving device 15 that acts on the movable jaws 10 so that the movable jaws 10 move away from or toward the fixed jaws 11 along a suitable trajectory. This allows the material present between the jaws to be crushed.
[0041] More specifically, the moving device 15 can provide the movable jaw 10 with a motion that combines rotational and translational motion relative to the fixed jaw 11. The first component of this motion is in the direction away from and toward the fixed jaw 11, and the second component is in a direction substantially parallel to the material flow direction F.
[0042] This particular movement can be achieved by a moving device 15 which includes an eccentric connecting portion 16 in the front portion 10a of the movable jaw and a strut-type second connecting portion 17 in the rear portion 10b of the movable jaw, as will be described later.
[0043] Furthermore, the moving device 15 may include a motor 18 housed inside the frame 2. In one embodiment, the motor 18 controls the rotation of the shaft 19, possibly by a transmission (not shown).
[0044] Preferably, the shaft 19 is eccentric. In one embodiment, the shaft 19 comprises a central portion 20 and two end portions (not shown) eccentric to the central portion. Preferably, the end portions are supported on the side wall 3 of the frame. Preferably, the movable jaw 10 is supported by the central portion 20. One or more bearings (not shown) may be applied to the central portion 20. A metal tube 21 may be fixed to the outer surface of the bearing, which is securely connected to the front portion 10a of the movable jaw.
[0045] The system described above includes an eccentric connection 16 between the movable jaw 10 and the shaft 19. Naturally, other structures that are functionally similar, produce similar motion, or have similar effects may be provided.
[0046] Referring to the example shown in Figure 4, the second connection portion 17 of the movable jaw is equipped with a strut 22.
[0047] In one embodiment, the strut 22 extends longitudinally between a first end 23 and a second end 24 that are opposite to each other. These are preferably received by a first seat 25 defined within the frame and a second seat 26 defined within a movable jaw.
[0048] More preferably, the strut 22 engages with both the first seat 25 and the second seat 26 at two opposite ends 23, 24. This allows the strut to swing, albeit within a limited range, relative to the frame and the movable jaws. Thus, in a preferred embodiment, the strut 22 is interposed and held between the first seat 25 and the second seat 26.
[0049] Preferably, the first seat 25 and the second seat 26 are positioned adjacent to the material exit 8. In particular, the second seat 26 is defined on the rear portion 10b of the movable jaw.
[0050] Furthermore, in some embodiments, the second connection portion 17 of the movable jaw comprises a rod 27. Its first end 28 is connected to the frame, and its opposite second end 29 is connected to the movable jaw. This allows the strut 22 to be held between the first seat 25 and the second seat 26 during the movement of the movable jaw.
[0051] For this purpose, an elastic means may be provided between the movable jaw 10 and the frame 2 that can bias the movable jaw against the strut 22. In this embodiment, the elastic means preferably comprises a spring 30 configured to act in conjunction with compression.
[0052] The first end 28 of the rod may be connected to the frame 2 by a spring 30. Its first end 31 is connected to the first end 28 of the rod, and the second end 32 on the opposite side is connected to a cross member 33 which is fixedly joined to the frame.
[0053] Preferably, the rod 27 and strut 22 are substantially parallel to each other so that the load is applied uniformly to the spring 30.
[0054] In one embodiment, the ends 23 and 24 of the strut, which are received by the first seat 25 and the second seat 26 respectively, are rounded to facilitate oscillation around their respective contact lines. More specifically, the ends 23 and 24 of the strut have substantially square profiles with rounded edges, and the first seat 25 and the second seat 26 preferably have square profiles that are larger in dimension than the dimensions of the ends of the strut. This ensures that the play present between the connecting elements is sufficient to allow the required oscillation. As a result, there is no friction between the contact surfaces, and rather there is a rolling action of the ends of the strut on the base of each seat, thus avoiding the need for lubrication of this connection.
[0055] Naturally, the ends 23 and 24 of the struts can also have a hemispherical shape.
[0056] Referring to the embodiment shown in Figure 5, each of the two seat portions 25 and 26 of the strut is in the form of a groove having, for example, a U-shaped or square cross section, which is laterally defined by a pair of sealing flanks 25', 25'' and 26', 26'' on opposite sides of each other, and on the base, it is defined by the respective cross members 35 and 36.
[0057] In particular, the first seat portion 25 has a first containment flank 25' on the side facing the exit 8 and a second containment flank 25'' on the opposite side of the exit.
[0058] Preferably, the second seat portion 26 has a first containment flank 26' on the side facing the exit 8 and a second containment flank 26'' on the opposite side of the exit.
[0059] In other words, with reference to the first seat 25 and the second seat 26, the first containment flanks 25', 26' are positioned downstream of the respective second containment flanks 25'', 26'' with respect to the material flow direction F.
[0060] Therefore, the containment flanks 25', 25'', 26', 26'' are advantageously configured to contain the movement of the respective ends 23, 24 of the strut toward the entrance 7 or exit 8 during the movement of the movable jaw.
[0061] In a preferred embodiment, the base cross members 35, 36 of the seating portions of the containment flanks 25', 25'', 26', 26'' and / or struts extend between the side walls 3 of the frame and are positioned in a plane substantially perpendicular to the side walls 3.
[0062] In some embodiments, the containment flanks 26', 26'' of the second seat 26, together with their respective cross members 36, form a structurally monolithic single piece. Preferably, the containment flanks 26', 26'', together with the cross members 36, form a structure having a substantially C-shaped cross section. The seat 26 is defined between the C-shaped arms. In this way, the second seat 26 can withstand the load transmitted by the struts 22 during crushing operations.
[0063] In some embodiments, the bucket 1 includes a stopper 34 that can hold the second end 24 of the strut inside the second seat 26 while the movable jaws are moving.
[0064] Preferably, the stop device 34 is detachably fixed to or can be detachably fixed to the first containment flank 26' of the second seat.
[0065] In this way, by removing the stop device 34, the strut 22 can be inserted / removed via the outlet 8 during bucket assembly or maintenance.
[0066] More preferably, the stop device 34 is configured to extend the first containment flank 26' of the second seat away from the base of the second seat 26. This prevents the strut 22 from accidentally separating from the second seat while the movable jaw is moving.
[0067] Preferably, the stopping device 34 does not protrude inward from the second seat portion 26 so as not to obstruct the swinging of the strut 22.
[0068] In one embodiment, the stopping device 34 includes, for example, a narrow plate (batten) 37 having a rectangular cross-section. The narrow plate 37 has dimensions such that it can withstand the force transmitted through the strut.
[0069] The narrow plate 37 can extend between the longitudinal members 38 on opposite sides of the movable jaw and can be fixed to the first containment flank 26' of the second seat by bolt connections, preferably.
[0070] In some embodiments, another narrow plate 39, formed from a wear-resistant material, more particularly from high-strength steel, is interposed between the second end 24 of the strut and the base of the second seat 26 to protect the base of the second seat.
[0071] In a preferred embodiment, the distance D between the rear portions 10b and 11b of the jaws can be adjusted by interposing one or more spacers 40 between the strut 22 and the frame 2, and more specifically between the first end 23 of the strut and the first seat portion 25, thereby changing the final size of the processed material.
[0072] It should be noted that in this specification, the term "spacer" refers to a shim configured to maintain an appropriate distance between the first end 23 of the strut and the base of the first seat 25. The spacer 40 is preferably made of a metallic material, more particularly steel, and has dimensions that can withstand the forces transmitted through the strut 22. In one embodiment, the spacer 40 is preferably in the form of a narrow plate with a rectangular cross-section.
[0073] Therefore, the spacers 40 and struts 40 constitute an adjustment device 41 for the range of the portion of the exit 8. By increasing or decreasing the number of spacers 40 positioned between the struts 22 and the frame 2, the distance D between the jaws, particularly at the exit 8, can be changed. In any case, it is also obvious that instead of increasing the number of spacers 40, spacers of different dimensions can be used.
[0074] Referring to the embodiment shown in Figure 8, a first opening 42 for inserting / removing the spacer 40 into / from the first seat portion is defined on the side wall 3 of the frame, preferably in the first seat portion 25.
[0075] When one or more spacers 40 are stationary, i.e., not being used in the first seat 25, they can be stored in the frame.
[0076] For this purpose, the frame 2 includes a third seat 43 configured to receive the spacer 40 in a stationary state. Preferably, the third seat 43 is adjacent to the first seat 25 and / or the rear portion 10b of the movable jaw.
[0077] In one embodiment, the stationary spacer 40 is removably inserted into the third seat portion 43 through a second opening 44 formed in the side wall 3 of the frame, or can be removably inserted into it.
[0078] In this way, the third seat 43 allows a stock of spacers 40 to be stored directly in the bucket, making them always available and easily accessible.
[0079] For convenience, the first opening 42 and the second opening 44 are preferably formed in the same side wall 3. More specifically, the first opening 42 and the second opening 44 are located in the same plane and adjacent to each other. This allows the worker to easily transfer the spacer 40 between the first opening and the second opening without moving around the bucket.
[0080] In some embodiments, a removable cover 45 is provided, configured to close the first opening 42 and the second opening 44. This prevents dust from entering and unintentional discharge of spacers.
[0081] The cover 45 can be removably secured to the side wall 3 of the frame, for example, by bolt connections.
[0082] Furthermore, the cover 45 may be configured to close both the first opening 42 and the second opening 44 simultaneously. This is not only for convenience; it is also for safety, as it eliminates the risk of one of the two openings accidentally remaining open and the spacer being unintentionally ejected.
[0083] Referring to the embodiments shown in Figures 5 and 6, the third seat 43 for receiving the spacer 40 is protected by the rear wall 9 of the frame in addition to the cover 45.
[0084] Preferably, the rear wall 9 extends from the bottom cross member 35 of the first seat toward the exit 8 and forms the outer wall of the frame 2. Multiple reinforcing plates 46 can be fixed to the rear wall 9, which contribute to strengthening the rigidity of the frame 2 to withstand the loads imposed by the material during the crushing operation.
[0085] Preferably, each of the reinforcing plates 46 is connected to the rear wall 9 and to the first containment flank 25' of the first seat of the strut. This secures the rear wall 9 to the first containment flank 25'.
[0086] More preferably, the reinforcing plates 46 are substantially parallel to each other and / or to the side walls 3 of the frame and substantially perpendicular to the rear wall 9 of the frame and / or the first containment flank 25' of the first seat.
[0087] Each reinforcing plate 46 may have a third opening 47 that generally defines a third seat 43 for receiving a spacer. For this purpose, preferably the third openings 47 are aligned with respect to each other. More preferably, the third openings 47 are aligned with respect to a second opening 44. This facilitates the insertion / removal of spacers into and out of the third seat 43 through the second opening.
[0088] Naturally, the first opening 42, the second opening 44, and / or the third opening 47 are preferably through openings. Furthermore, they are preferably substantially rectangular in shape to facilitate the insertion of the stacked pack of spacers 40.
[0089] Referring to the embodiment shown in Figure 4, the third opening 47 has a width W and a height H in particular.
[0090] Preferably, the width W of the third opening is greater than the width of the spacer 40. This ensures that the lateral play with respect to the spacer is sufficient for the spacer to slide within the third seat 43.
[0091] More preferably, each of the third openings 47 extends longitudinally over a height H between the upper end 47' of the third opening and the lower end 47'' opposite to it.
[0092] The spacers 40 can be stacked between the upper end 47' and the lower end 47''.
[0093] In one embodiment, the upper end 47' is directed toward the rear wall 9 of the frame, and the lower end 47'' is directed toward the opposite side, more specifically toward the movable jaw 10.
[0094] Referring to the embodiment shown in Figure 6, the bucket 1 includes a block device 48 that can hold the spacer 40 in contact with one of the two ends 47', 47'' of the third opening (in this embodiment, the upper end 47').
[0095] Preferably, the block device 48 includes a movable support 49 capable of supporting the spacer 40, and a biasing member 50 capable of biasing the movable support 49 toward one of the two ends 47', 47'' of the third opening.
[0096] In this embodiment, the biasing member 50 is configured to bias the movable support 49 toward the upper end 47' of the third opening. Therefore, preferably, the spacer 40 is inserted between the movable support 49 and the upper end 47'.
[0097] By acting on the biasing member 50, the position of the movable support 49 can be adjusted over the height H of the third opening 47. This allows the movable support 49 to be moved toward or away from the upper end 47' of the third opening, depending on the total height of the pack of spacers 40 inserted between the movable support 49 and the upper end 47'.
[0098] Therefore, the biasing member 50 may preferably be adjustable and comprise one or more (e.g., four) threaded connecting elements 51 extending between a support 49 that is movable over the height H of the third opening 47 and the rear wall 9 of the frame.
[0099] A through hole 83 may be provided in the rear wall 9 for the insertion of the threaded connecting element 51.
[0100] Referring to the embodiment shown in Figure 6, the threaded connecting element 51 is movably inserted into the through hole 83 and engages with each threaded hole 84 formed in the movable support 49 with a screwing action.
[0101] Therefore, the position of the movable support 49 between the ends 47', 47'' of the third opening can be adjusted by screwing in / out the threaded connecting element 51.
[0102] It should be noted that in the embodiments described above, the threaded connecting element 51 preferably functions as a rod between the movable support 49 and the rear wall 9.
[0103] Furthermore, naturally, the threaded connecting element 51 can act with compression to bias the movable support 49 and / or spacer 40 in the opposite direction to the rear wall 9, i.e., toward the lower end 47'' of the third opening. In this case, it is preferable that the spacer is inserted between the movable support 49 and the lower end 47''.
[0104] In any case, it should be noted that the threaded connecting element 51 also contributes to strengthening the rigidity of the frame 2 when in use. Referring to the embodiment shown in Figure 7, the bucket 1 comprises a profile member 52, more specifically a profile member 52 having an L-shaped cross section, where a first side 53 and a second side 54 are identified.
[0105] Preferably, the first side portion 53 and the second side portion 54 are substantially perpendicular to each other. More generally, it should be noted that there is an angle of 80° to 100° between the first side portion 53 and the second side portion 54.
[0106] In one embodiment, each of the two sides 53, 54 of the profile member is substantially flat.
[0107] The profile member 52 can be removably inserted into the first seat portion 25 through the first opening 42.
[0108] The first side portion 53 is interposed, or can preferably be interposed, between the bottom cross member 35 of the first seat and the first end portion 23 of the strut.
[0109] In some cases, one or more spacers 40 are removably inserted between the bottom cross member 35 of the first seat and the first side portion 53 of the profile member, or can be removably inserted.
[0110] Therefore, in a very preferred embodiment, the first side portion 53 is interposed or may be interposed between one or more spacers 40 inserted into the first seat portion 25 and the first end portion 23 of the strut.
[0111] More preferably, the profile member 52 is oriented or configured to be oriented such that the second side portion 54 is directed toward the first containment flank 25' of the first seat portion and extends toward the movable jaw 10.
[0112] This is advantageous as the second side portion 54 is configured to hold the first end portion 23 of the strut laterally during the movement of the movable jaw.
[0113] Naturally, if there is no spacer 40 inserted into the first seat portion 25, the first side portion 53 of the profile member can be interposed between the base of the first seat portion 25 and the first end portion 23 of the strut.
[0114] In some modified examples, the first side portion 53 and the second side portion 54 of the profile member are substantially identical.
[0115] Therefore, the profile member 52 is completely reversible. This prevents incorrect positioning and allows the profile member 52 to be reversed if localized wear occurs on one of the two sides.
[0116] In this regard, it should be noted that the profile member 52 is preferably formed from a wear-resistant material, more specifically from high-strength steel.
[0117] The second side portion 54 of the profile member 52 is preferably interposed, or may be interposed, between the first containment flank 25' of the first seat and the first end portion 23 of the strut. Therefore, advantageously, the first containment flank 25' of the first seat is configured to at least partially abut against the second side portion 54 of the profile member.
[0118] Referring to the embodiments shown in Figures 11 to 13, the second side portion 54 of the profile member is configured to protrude from the first containment flank 25' of the first seat towards the movable jaw 10. This allows the first end portion 23 of the strut to be held in place during movement of the movable jaw, depending on the number of spacers 40 inserted between the bottom cross member 35 of the first seat and the first side portion 53 of the profile member.
[0119] More specifically, if there are no spacers 40, or if there are few spacers interposed between the bottom cross member 35 of the first seat and the first side portion 53 of the profile member, the second side portion 54 is completely housed inside the first seat 25. By increasing the number of spacers 40 interposed between the bottom cross member 35 of the first seat and the first side portion 53 of the profile member, the profile member 52 gradually moves away from the bottom cross member of the first seat until the second side portion 54 begins to protrude from the first containment flank 25' of the first seat toward the movable jaw.
[0120] Thus, the profile member 52 prevents the first end 23 of the strut from separating from the first seat 25 when a number of spacers are inserted into the first seat, that is, when the movable jaws are adjusted to perform fine material crushing.
[0121] To assemble bucket 1, the strut 22 must be passed through the material outlet 8 and inserted into the first seat 25.
[0122] To this end, referring to the example shown in Figure 7, the first containment flank 25' of the first seat has a recess 55 on the side facing the movable jaw 10 that allows for the insertion of the strut 22 between the first seat containment flank 25' and 25''.
[0123] Furthermore, the recess 55 allows the strut 22 to swing more widely toward the exit 8 during the movement of the movable jaw.
[0124] Referring to the embodiments shown in Figures 12 and 13, the second side portion 54 of the profile member is configured to protrude from the recess 55 toward the movable jaw, depending on the number of spacers 40 inserted between the bottom cross member 35 of the first seat and the first side portion 53 of the profile member.
[0125] Preferably, the recess 55 is tapered away from the movable jaw 10. This holds at least the longitudinal end of the profile member 52 when the second side portion 54 protrudes from the recess.
[0126] More precisely, in order to enable the holding action, the profile member 52 and the recess 55 preferably extend longitudinally between the side walls 3 of the frame over a first length L1 and a second length L2, respectively, where the first length L1 exceeds the second length L2.
[0127] More preferably, the first end 23 of the strut extends longitudinally between the side walls 3 of the frame over a third length L3 that is shorter than the first length L1 of the profile member.
[0128] As described above, referring to the embodiment shown in Figure 3, the bucket 1 includes a motor 18 capable of operating the crushing element. Preferably a hydraulic motor, the motor 18 is at least partially housed within a protective casing 56.
[0129] Furthermore, in one embodiment, the casing 56 at least partially accommodates a hydraulic circuit (not shown) for operating the motor 18.
[0130] The casing 56 is at least partially enclosed within the frame 2. In a preferred embodiment, the casing 56 is laterally defined by the side walls 3 of the frame and more preferably further demarcated by a lower wall 58 of the casing facing the movable jaws 10 and an upper wall 59 of the casing opposite the lower wall 58.
[0131] Preferably, the lower wall 58 and upper wall 59 of the casing extend between the side walls 3 of the frame, particularly from one side wall 3 to the other.
[0132] The upper wall 59 of the casing can be connected to the upper wall 4 of the frame, preferably in a removable manner, for example, by bolt connections.
[0133] Therefore, the upper wall 59 of the casing contributes to supporting the weight of the bucket when the upper wall 4 of the frame engages with the free end of the arm of the work machine.
[0134] Preferably, in order to reinforce the upper wall 59 of the casing in the connection area with the upper wall 4 of the frame, the upper wall 59 of the casing is provided with reinforcing cross members 60 that extend between the side walls 3 of the frame.
[0135] The casing 56 defines a region R1 toward the outlet 8 and a region R2 located opposite the outlet 8 with respect to the material flow direction F.
[0136] Preferably, the bucket 1 includes a plurality of first reinforcing plates 61 located inside the casing 56 in a region R2 located opposite to the outlet 8.
[0137] Advantageously, the first reinforcing plate 61 is connected to the lower wall 58 and upper wall 59 of the casing. This fixes the lower wall 58 of the casing to the upper wall 59 of the casing.
[0138] In this way, the first reinforcing plate 61 contributes to the absorption and distribution of the load caused by the resistance of the material being crushed, from one wall to the other.
[0139] Furthermore, when the upper wall 4 of the frame engages with the free end of the arm of the work machine, the first reinforcing plate 61 contributes to withstanding the weight of the bucket.
[0140] For this purpose, preferably, the first reinforcing plate 61 is connected to the upper wall 59 of the casing at a position corresponding to the location of the existing attachment 6.
[0141] For example, the bucket may be provided with two attachments 6 arranged symmetrically with respect to the central plane of the bucket, and two first reinforcing plates 61 placed on each attachment.
[0142] Referring to the embodiment shown in Figure 10, the first reinforcing plates 61 are parallel to each other and / or parallel to the side walls 3 of the frame and / or perpendicular to the lower walls 58 and upper walls 59 of the casing.
[0143] Preferably, in order to provide greater rigidity to the upper wall 59 of the casing, the first reinforcing plate 61 is connected to a reinforcing cross member 60. This fixes the reinforcing cross member 60 to the lower wall 58 of the casing.
[0144] In some embodiments, the frame 2 includes a plurality of second reinforcing plates 62 positioned outward relative to the casing 56 in a region R1 directed toward the exit 8, as shown in the embodiment of Figure 9, for example.
[0145] Advantageously, the second reinforcing plate 62 is connected to the lower wall 58 of the casing and the second containment flank 25'' of the first seat. This secures the lower wall 58 of the casing to the second containment flank 25'' of the first seat.
[0146] Preferably, the second containment flank 25'' of the first seat is fixed to the bottom cross member 35 of the first seat.
[0147] Preferably, in order to give greater rigidity to the casing 56 and frame 2, the second reinforcing plates 62 are parallel to each other and perpendicular to the lower wall 58 of the casing and / or the second containment flank 25'' of the first seat.
[0148] In a preferred embodiment, two first reinforcing plates 61 are provided, and more preferably, four second reinforcing plates 62 are provided. Naturally, different numbers of first reinforcing plates 61 and / or second reinforcing plates 62 can also be provided.
[0149] Preferably, the first reinforcing plate 61 and / or the second reinforcing plate 62 are arranged symmetrically with respect to the center plane of the bucket. More preferably, the first reinforcing plate 61 and the second reinforcing plate 62 are arranged in a staggered manner relative to each other.
[0150] In some embodiments, the multiple second reinforcing plates 62 comprise two external plates 63 (in this embodiment substantially triangular in shape) and two internal plates 64 interposed between the external plates 63. Preferably, the first reinforcing plate 61 is positioned in the respective planes between the external plates 63 and the internal plates 64.
[0151] Referring to the embodiment shown in Figure 11, the internal plate 64 on the opposite side of the movable jaw 10 is fixed to a cross member 33 to which the second end 32 of the spring is connected. Preferably, this cross member 33 extends from one side of the external plate 63 to the other to give greater overall rigidity.
[0152] Preferably, the inner plate 64 has a thickness greater than the thickness of the outer plate 63 in order to withstand the load transmitted by the spring 30.
[0153] Referring to the embodiment shown in Figure 3, the bucket comprises a first plate 65 and a second plate 66 that extend longitudinally between the side walls 3 of the frame.
[0154] The first plate 65 is preferably positioned upstream of the jaw 10, which is movable in the material flow direction F, and preferably forms the outer wall of the frame 2. Furthermore, in one embodiment, the first plate 65 defines a portion of the edge of the inlet 7.
[0155] Preferably, the second plate 66 extends from the first plate 65 toward the movable jaws 10. This allows the material to be directed from the inlet 7 toward the crushing region 12, which contributes to optimizing the crushing of the material.
[0156] The first plate 65 and the second plate 66 prevent the material to be crushed from unintentionally getting between the movable jaw 10 and the upper wall 4 of the frame.
[0157] Furthermore, preferably, the bucket 1 comprises a plurality (e.g., four) of third plates 67 connected to the first plate 65 and the second plate 66. This fixes the first plate 65 to the second plate 66.
[0158] It should be noted that the third plate 67 contributes to the absorption and distribution of the load caused by the impact of the material between the first plate and the second plate.
[0159] Furthermore, when the upper wall 4 of the frame engages with the free end of the arm of the work machine, the third plate 67 contributes to withstanding the weight of the bucket.
[0160] Preferably, the third plate 67 is positioned downstream of the first plate 65 with respect to the flow direction F.
[0161] Preferably, in order to give greater rigidity to the first plate 65 and the second plate 66, the third plate 67 is perpendicular to the first plate and / or the second plate and parallel to each other.
[0162] Upper edge 68 and lower edge 69 are defined on the upper wall 4 and lower wall 5 of the frame, respectively, on the side facing the entrance 7.
[0163] Preferably, the first plate 65 extends from the upper edge 68 toward the lower edge 69.
[0164] More preferably, the third plate 67 extends from the first plate 65 and the second plate 66 toward the upper wall 4 of the frame.
[0165] In some embodiments, the front edge 70, which is tapered away from the movable jaw 10, is located on each of the third plate 67 on the side facing the first plate 65 and the second plate 66. The first plate 65 and the second plate 66 can be fixed to the front edge 70 of the third plate.
[0166] Referring to the embodiments shown in Figures 9 and 10, an upper cross member 71 is provided along the upper edge 68 between the side walls 3 of the frame, particularly extending from one side wall 3 to the other. Advantageously, the upper wall 4 of the frame is securely connected to the upper cross member 71, preferably in a removable manner, for example, by bolt connections.
[0167] It should be noted that the upper cross member 71, in some cases together with the reinforcing cross member 60, contributes to withstanding the weight of the bucket when the upper wall 4 of the frame engages with the free end of the arm of the work machine.
[0168] Preferably, the first plate 65 is securely connected to the upper cross member 71, for example by welding, on the side facing the upper edge 68.
[0169] In some embodiments, the first plate 65 is placed on the upper cross member 71 so as to enclose it inside the frame 2.
[0170] Preferably, each of the third plates 67 extends from the upper cross member 71 to the first plate 65 and the second plate 66. This secures the upper cross member to the first and second plates.
[0171] In some embodiments, a lower cross member 72 is provided that extends between the side walls 3 of the frame (particularly from one side wall 3 to the other) and is preferably securely connected to a second plate 66.
[0172] In a preferred embodiment, the lower cross member 72 has a cross section that extends longitudinally from the second plate 66 toward the upper wall 4 of the frame, particularly perpendicular to the second plate 66. In this way, the lower cross member 72 provides greater rigidity to the second plate.
[0173] Advantageously, each of the third plates 67 extends from the upper cross member 71 to the lower cross member 72. This fixes the upper cross member to the lower cross member. In this way, the upper cross member 71 and the lower cross member 72 are fixedly joined to each other during the response to the load.
[0174] In either case, preferably, at least at the center plane of the bucket, the upper cross member 71 has a larger cross section (e.g., area and / or thickness) than the cross section of the lower cross member 72. This allows the upper wall 4 of the frame to withstand the weight of the bucket when it engages with the free end of the arm of the work machine.
[0175] In some embodiments, the first plate 65 extends longitudinally from one side wall 3 to the other. Also in some embodiments, the second plate 66 extends longitudinally from one side wall 3 to the other. However, preferably, the second plate 66 is connected to the side wall 3 by connecting plates 79.
[0176] More specifically, preferably, the second plate 66 has two opposite longitudinal ends 82 facing each other toward the opposite side wall 3 of the frame, and the two connecting plates 79 extend from the opposite longitudinal ends 82 of the second plate toward the side wall 3 of the frame, respectively. This fixes the opposite longitudinal ends 82 to the side wall 3. Even more preferably, the connecting plates 79 have position planes that are dispersed away from the first plate 65 and the second plate 66. In fact, this shape contributes to increasing the rigidity of the frame 2 to withstand loads caused by impacts and fractures of hard materials.
[0177] Furthermore, the connecting plate 79 contributes to optimizing the flow of material from the inlet 7 towards the crushing area 12. This prevents residues, such as asphalt material, from remaining at the intersection between the second plate 66 and the side wall 3. For this purpose, preferably, the connecting plate 79 extends longitudinally from the inlet 7 toward the movable jaws 10 along the material flow direction F.
[0178] Referring to the embodiment shown in Figure 9, an angle A in the range of 20° to 120° is formed between the position planes of the connecting plate 79. More specifically, angle A is in the range of 40° to 100°, preferably 50° to 90°. In this way, the position of the connecting plate 79 is such that when the upper wall 4 of the frame engages with the free end of the arm of the work machine, the connecting plate 79 also contributes to supporting the weight of the bucket.
[0179] Furthermore, in this embodiment, in order to ensure greater rigidity, the connecting plates 79 are fixed to the opposite longitudinal ends of the lower cross members 72, respectively.
[0180] Referring to the embodiments shown in Figures 14 and 15, in some embodiments, the movable jaw 10 comprises a framework 73. The framework 73 includes a pair of longitudinal members 38 extending in the material flow direction F, preferably arranged symmetrically with respect to the central plane of the bucket 1.
[0181] Furthermore, the movable jaw framework 73 may include a plurality of cross members 75 that are parallel to each other and extend from one longitudinal member 38 to another longitudinal member 38, respectively.
[0182] Preferably, the multiple cross members 75 of the movable jaws include a first cross member 76 and a second cross member 77 positioned downstream of the first cross member with respect to the material flow direction F.
[0183] More preferably, the second cross member 77 has a larger cross section (e.g., area and / or thickness t2) than the cross section of the first cross member 76. In a preferred embodiment, the cross section of the second cross member 77 has a thickness t2 that is at least twice the thickness t1 of the cross section of the first cross member 76.
[0184] It should be noted that in this specification, the term “cross section” preferably means, for example, a rectangular cross section in the case of the first cross member 76 and / or the second cross member 77. Preferably, the thicknesses t1 and t2 of each cross section are measured in the flow direction F and / or the longitudinal elongation of the movable jaw 10 from the inlet 7 to the outlet 8.
[0185] It should be noted that this structure increases the rigidity in the flow direction F of the movable jaw framework 73, and increases the resistance of the movable jaw in both the crushing region 12 interposed between the jaws and the second connection portion 17 including the rear portion 10b of the movable jaw.
[0186] As described above, the movable jaw 10 may include a metal tube 21 that receives the central portion 20 of the shaft.
[0187] In a preferred embodiment, the metal pipe 21 is fixed to the longitudinal member 38 and positioned upstream of the first cross member 76 with respect to the flow direction F.
[0188] Furthermore, the movable jaw 10 may include a first reinforcing plate 78 connected to the metal pipe 21 and the first cross member 76. This secures the metal pipe to the first cross member. In one embodiment, the first reinforcing plate 78 extends within the central plane of the bucket 1.
[0189] In some embodiments, the multiple cross members 75 of the movable jaws include a third cross member 36 positioned downstream of the second cross member 77 with respect to the flow direction F.
[0190] Preferably, the third cross member 36 has a larger cross section (e.g., area and / or thickness t3) than the cross section of the second cross member 77. In a preferred embodiment, the cross section of the third cross member 36 has a thickness t3 that is at least twice the thickness t2 of the cross section of the second cross member 77. It should be noted that, preferably, the thicknesses t2 and t3 of the respective cross sections are measured in the flow direction F and / or the longitudinal extension of the movable jaw 10 from the inlet 7 to the outlet 8.
[0191] In some embodiments, to ensure that the second seat portion 26 is oriented toward the first seat portion 25, the third cross member 36, and more specifically, the respective containment flanks 26', 26'', are positioned in a plane inclined with respect to the position plane of the first cross member 76 and / or the second cross member 77. As shown in the embodiment of Figure 7, in this case, the thickness t3 can generally be measured laterally with respect to the position plane of the third cross member 36 and / or the respective containment flanks 26', 26''.
[0192] In this way, the first cross member 76, the second cross member 77, and the third cross member 36 provide the movable jaw 10 with a stiffness that gradually increases in the flow direction F, particularly toward the rear portion 10b where the movable jaw receives more load transmitted by the strut 22.
[0193] More precisely, to counteract the load transmitted by the strut, the second seat portion 26 of the strut is preferably formed on a third cross member 36. Thus, in a preferred embodiment, the third cross member 36 comprises containment flanks 26', 26'' of the second seat portion and, advantageously, has dimensions that can withstand the forces transmitted through the strut. Further advantageously, the containment flanks 26', 26'' are formed from a single piece such that the third cross member 36 is structurally monolithic.
[0194] In some embodiments, the movable jaw 10 includes a pair of second reinforcing plates 80 extending along the flow direction F from the second cross member 77 to the second containment flank 26'' of the second seat. This secures the second cross member to the second containment flank of the second seat.
[0195] The second reinforcing plate 80 is preferably interposed between the longitudinal members 38, and more preferably arranged symmetrically with respect to the central plane of the bucket 1.
[0196] The second reinforcing plate 80 contributes to the absorption and distribution of the load and resistance of the material being crushed, which is brought about by the strut 22, from the second cross member to the third cross member, or vice versa.
[0197] Furthermore, in one embodiment, the second reinforcing plate 80 connects the movable jaw 10 to the rod 27. In fact, the second end 29 of the rod can be interposed between the second reinforcing plates 80 and connected to it by a hinge connection. Preferably, holes are made in the second reinforcing plate 80 to enable this hinge connection.
[0198] As described above, the movable jaw 10 may be equipped with a grooved plate 13 that facilitates crushing operations.
[0199] The grooved plate 13 can be removably secured to the framework 73 of the movable jaw by a locking narrow plate 81. The locking narrow plate 81 can be bolted to the framework 73 downstream of the multiple cross members 75 of the movable jaw with respect to the flow direction F. This increases the rigidity of the movable jaw at the outlet 8.
[0200] In one embodiment, the grooved plate 13 has a plurality of reinforcing ribs 74 directed toward the framework 73 of a movable jaw. The ribs 74 may extend parallel and / or transverse to the material flow direction F.
[0201] Thus, the present invention achieves the above-mentioned objectives and further offers more advantages over the prior art described above, including the ability to adjust the dimensions of the crushed rubble and a significant increase in the production capacity of the bucket.
[0202] Furthermore, as a result of its structural features, the bucket is particularly resistant to the loads imposed by the material during crushing operations.
[0203] Another significant advantage is that, because the frame and crushing elements according to the present invention have greater rigidity, the power consumed by the bucket according to the present invention is less than that consumed by conventional buckets. This leads to shorter processing times and reduced noise emissions.
Claims
1. Crusher bucket (1), A frame (2) having defined material inlet (7), material outlet (8), and material flow direction (F) from the material inlet (7) to the material outlet (8), A crushing element (10, 11) including a movable jaw (10) and a fixed jaw (11) that are received within the frame (2), A motor (18) capable of operating the crushing elements (10, 11), The housing (56) in which the motor (18) is at least partially received, Equipped with, The housing (56) is laterally defined by side walls (3) opposite each other of the frame, and is further divided by a lower wall (58) facing the movable jaws (10), and an upper wall (59) opposite the lower wall (58), the lower wall (58) and the upper wall (59) extending between the side walls (3), and the housing (56) defines a region (R1) directed toward the material outlet (8) and a region (R2) located opposite the material outlet (8) with respect to the flow direction (F), A crusher bucket (1) further comprises a plurality of first reinforcing plates (61) located inside the housing (56) in the region (R2) located opposite to the material outlet (8), wherein the first reinforcing plates (61) are connected to the lower wall (58) and the upper wall (59), thereby fixing the lower wall (58) to the upper wall (59), and the first reinforcing plates (61) are parallel to each other and perpendicular to the lower wall (58) and the upper wall (59).
2. The crusher bucket (1) according to claim 1, wherein exactly two first reinforcing plates (61) are provided and / or are arranged symmetrically with respect to the central plane of the bucket (1).
3. The material outlet (8) region includes a strut (22) capable of maintaining a distance (D) between the jaws (10, 11), the first end (23) and second end (24) of the strut being opposite each other, the first end (23) and the second end (24) being received in a first seat (25) defined on the frame (2) and a second seat (26) defined on the movable jaw (10), the first seat (25) being laterally positioned by a containment flank (25'') facing the lower wall (58) The crusher bucket (1) according to claim 1 or 2, wherein the bucket (1) comprises a plurality of second reinforcing plates (62) positioned outward relative to the housing (56) in the region (R1) directed toward the material outlet (8), the second reinforcing plates (62) being connected to the lower wall (58) of the housing and the containment flank (25'') of the first seat, thereby fixing the lower wall (58) to the containment flank (25'').
4. The crusher bucket (1) according to claim 3, comprising a cross member (35) extending from one side wall (3) to the other, wherein the cross member (35) defines the base of the first seat (25), and the containment flank (25'') of the first seat is fixed to the cross member (35).
5. The crusher bucket (1) according to claim 3, wherein the second reinforcing plates (62) are parallel to each other and perpendicular to the lower wall (58) of the housing and the containment flank (25'') of the first seat.
6. The crusher bucket (1) according to claim 3, wherein at least four of the second reinforcing plates (62) are provided and / or are arranged symmetrically with respect to the central plane of the bucket (1).
7. The crusher bucket (1) according to claim 3, wherein the first reinforcing plate (61) and the second reinforcing plate (62) are arranged in a staggered manner relative to each other.
8. The crusher bucket (1) according to claim 7, wherein the plurality of second reinforcing plates (62) each comprises two external plates (63) and two internal plates (64) interposed between the external plates (63), and the first reinforcing plate (61) is positioned in the respective planes between the external plates (63) and the internal plates (64).
9. The crusher bucket (1) according to claim 8, wherein the internal plate (64) has a thickness greater than the thickness of the external plate (63) and / or the thickness of the first reinforcing plate (61).
10. The strut (22) is provided with a tie rod (27), the first end (28) of the tie rod being connected to the frame (2), and the second end (29) of the tie rod, opposite the first end (28), being connected to the movable jaw (10), thereby holding the strut (22) between the first seat (25) and the second seat (26) during the movement of the movable jaw (10), and the first end (28) of the tie rod is connected to the frame by a spring (30) The crusher bucket (1) according to claim 8, wherein the first end (31) of the spring is connected to the first end (28) of the tie rod, and the second end (32) of the spring, opposite to the first end (28), is connected to a cross member (33) fixedly joined to the frame (2), the cross member (33) extends between the outer plates (63) and is fixed to the inner plate (64) on the side facing the movable jaw (10).
Citation Information
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