Hinge beam structure of diamond hydraulic machine
By introducing a stabilizing plate and stabilizing cylinder into the hinge beam structure of the diamond hydraulic press, the inconvenience of having to simultaneously move the pull rods on both sides when removing the working cylinder is solved, achieving a quick disassembly and stabilization effect by a single person.
Patent Information
- Application Number
- CN202422886193.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-26
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2034-11-26
AI Technical Summary
In existing diamond hydraulic presses, when the working cylinder is removed from the fixed mechanism after use, the pull rods on both sides need to be moved simultaneously. The pull rods on both sides work together, which is inconvenient for one person to operate.
A hinge beam structure for a diamond hydraulic press was designed, including a fixing component, a shock-absorbing component, a hydraulic component, a stabilizing component, and a connecting component. The hydraulic component is limited by adjusting the angle of the stabilizing plate and using a stabilizing cylinder. Disassembly is simple and quick; the stabilizing cylinder can be slid out and removed.
This technology enables a single person to easily remove the working cylinder, solving the problem of inconvenience caused by having to simultaneously move both levers in existing technologies, thus improving operational efficiency and stability.
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Figure CN223530376U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of diamond hydraulic press equipment manufacturing technology, and in particular to a hinge beam structure for a diamond hydraulic press. Background Technology
[0002] The working cylinder is an important supporting and load-bearing component in a six-sided hydraulic press, while the hinge beam is an important load-bearing component. The guide surfaces of the existing working cylinder and hinge beam are too smooth, which can cause the working cylinder to detach from the hinge beam due to vibrations generated during operation, thereby reducing the stability of the working cylinder on the hinge beam.
[0003] In the prior art, patent (CN216440574U) proposes a hinge beam structure for a diamond hydraulic press, including a hydraulic mechanism and a fixing mechanism. The fixing mechanism includes two fixing components and a shock-absorbing component. The hydraulic mechanism includes a hinge beam, four connecting lugs, and a working cylinder. The working cylinder has two fixing slots and a positioning slot. The fixing components include a fixing shell, a fixing block, a spring, and a pull rod. The fixing shell is fixedly connected to the hinge beam, the fixing block is slidably connected to the fixing shell, and the pull rod is fixedly connected to the fixing block. When the hydraulic cylinder contacts the fixing block, since one side of the fixing block that penetrates into the hinge beam is an inclined surface and the spring is in a compressed state, when the fixing block encounters the fixing slot, the fixing block springs into the fixing slot to fix the hydraulic rod. Pulling the pull rod pulls the fixing block out of the fixing slot, and then the working cylinder is removed. This solves the problem of insufficient stability of the existing working cylinder on the hinge beam.
[0004] However, in the aforementioned prior art, when the working cylinder is removed from the fixing mechanism after use, the pull rods on both sides need to be moved simultaneously. The pull rods on both sides need to work together to remove the working cylinder, which is inconvenient for one person to operate. Utility Model Content
[0005] The purpose of this utility model is to provide a hinge beam structure for a diamond hydraulic press, which solves the problem in the prior art that when the working cylinder is removed from the fixing mechanism after use, both sides of the pull rods need to be moved simultaneously, and the pull rods on both sides need to work together to remove the working cylinder, which is inconvenient for one person to operate.
[0006] To achieve the above objectives, this utility model provides a hinge beam structure for a diamond hydraulic press, including a fixing component, a shock-absorbing component, a hydraulic component, a stabilizing component, and a connecting component. The connecting component is fixedly connected to the hydraulic component and located above it. The hydraulic component is slidably connected to the shock-absorbing component and located above it. The shock-absorbing component is fixedly connected to the fixing component and located at the inner bottom of the fixing component. The stabilizing component includes multiple side plates, multiple rotating shafts, multiple stabilizing plates, and a stabilizing cylinder. The stabilizing cylinder is slidably connected to the connecting component and located on the periphery of the connecting component. Each stabilizing plate is rotatably connected to a corresponding rotating shaft and located at the upper end of the corresponding rotating shaft. Each rotating shaft is rotatably connected to a corresponding side plate and located on the inner side of the corresponding side plate. Each side plate is fixedly connected to the fixing component and located on the periphery of the fixing component.
[0007] The fixing component includes a hinge beam and multiple connecting lugs. Each connecting lug is fixedly connected to the hinge beam and located on the periphery of the hinge beam. The hinge beam is fixedly connected to the shock-absorbing component and located on the periphery of the shock-absorbing component.
[0008] The damping assembly includes a damping plate, a positioning post, and multiple damping cylinders. Each damping cylinder is fixedly connected to the damping plate and located below the damping plate. The positioning post is fixedly connected to the damping plate and located above the damping plate. The damping plate is slidably connected to the hinge beam and located inside the hinge beam.
[0009] The hydraulic assembly includes a working cylinder and a top column. The top column is fixedly connected to the working cylinder and located above the working cylinder. The working cylinder is slidably connected to the hinge beam and located inside the hinge beam.
[0010] The connecting assembly includes a top plate and a connecting rod. The top plate is fixedly connected to the connecting rod and is located at the upper end of the connecting rod. The lower end of the connecting rod is fixedly connected to the top column and is located at the upper end of the top column.
[0011] This utility model discloses a hinge beam structure for a diamond hydraulic press. The multiple stabilizing plates are designed such that by adjusting the deflection angle of only two of them, the remaining two stabilizing plates can be moved via the stabilizing cylinder to limit the hydraulic component. Furthermore, disassembly is achieved simply by sliding out the stabilizing cylinder. This design is simple and quick to operate, solving the problem that removing the working cylinder from the fixing mechanism after use requires simultaneously moving both pull rods, which is inconvenient for one person. Attached Figure Description
[0012] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.
[0013] Figure 1 This is a schematic diagram of the overall structure of the hinge beam structure of a diamond hydraulic press according to this utility model.
[0014] Figure 2 This is a front view of the hinge beam structure of a diamond hydraulic press according to this utility model.
[0015] Figure 3 This is a top view of the hinge beam structure of a diamond hydraulic press according to this utility model.
[0016] Figure 4 This is the utility model Figure 3 A sectional view along line AA.
[0017] Figure 5 This is the utility model Figure 4 Enlarged view of the local structure at point B.
[0018] 101-Fixed component, 102-Shock-absorbing component, 103-Hydraulic component, 104-Stabilizing component, 105-Connecting component, 106-Side plate, 107-Rotating shaft, 108-Stabilizing plate, 109-Stabilizing cylinder, 110-Hinge beam, 111-Connecting lug, 112-Shock-absorbing plate, 113-Positioning column, 114-Shock-absorbing cylinder, 115-Working cylinder, 116-Top column, 117-Top plate, 118-Connecting rod. Detailed Implementation
[0019] The embodiments of the present invention are described in detail below. Examples of the embodiments are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, but should not be construed as limiting the present invention.
[0020] Please see Figures 1-5 ,in Figure 1 This is a schematic diagram of the overall structure of the hinge beam structure of a diamond hydraulic press according to this utility model. Figure 2 This is a front view of the hinge beam structure of a diamond hydraulic press according to this utility model. Figure 3 This is a top view of the hinge beam structure of a diamond hydraulic press according to this utility model. Figure 4 This is the utility model Figure 3 AA-line sectional view, Figure 5 This is the utility model Figure 4 Enlarged view of the local structure at point B.
[0021] This utility model provides a hinge beam 110 structure for a diamond hydraulic press, including a fixing component 101, a shock-absorbing component 102, a hydraulic component 103, a stabilizing component 104, and a connecting component 105. The stabilizing component 104 includes multiple side plates 106, multiple rotating shafts 107, multiple stabilizing plates 108, and stabilizing cylinders 109. The fixing component 101 includes a hinge beam 110 and multiple connecting lugs 111. The shock-absorbing component 102 includes a shock-absorbing plate 112, a positioning column 113, and multiple shock-absorbing cylinders 114. The hydraulic component 103 includes a working cylinder 115 and a top column 116. The connecting component 105 includes a top plate 117 and a connecting rod 118.
[0022] In this specific embodiment, the connecting assembly 105 is fixedly connected to the hydraulic assembly 103, the hydraulic assembly 103 is slidably connected to the shock-absorbing assembly 102, the shock-absorbing assembly 102 is fixedly connected to the fixing assembly 101, the stabilizing cylinder 109 is slidably connected to the connecting assembly 105, each stabilizing plate 108 is rotatably connected to the corresponding rotating shaft 107, each rotating shaft 107 is rotatably connected to the corresponding side plate 106, each side plate 106 is fixedly connected to the fixing assembly 101, each connecting lug 111 is fixedly connected to the hinge beam 110, the hinge beam 110 is fixedly connected to the shock-absorbing assembly 102, each shock-absorbing cylinder 114 is fixedly connected to the shock-absorbing plate 112, the positioning post 113 is fixedly connected to the shock-absorbing plate 112, and the shock-absorbing plate 112... The top column 116 is slidably connected to the hinge beam 110, and the working cylinder 115 is fixedly connected to the working cylinder 115. The top plate 117 is fixedly connected to the connecting rod 118, and the lower end of the connecting rod 118 is fixedly connected to the top column 116. With the multiple stabilizing plates 108 already in place, only two of the deflection angles need to be adjusted. The remaining two stabilizing plates can then be moved by the stabilizing cylinder 109 to limit the hydraulic component 103. Furthermore, the disassembly process only requires sliding out the stabilizing cylinder 109 to restrict the hydraulic component 103. This design is simple and quick to operate, solving the problem that when the working cylinder 115 is removed from the fixing mechanism after use, it requires simultaneously moving both pull rods, which is inconvenient for one person to operate.
[0023] The connecting assembly 105 is located above the hydraulic assembly 103, which is located above the shock-absorbing assembly 102. The shock-absorbing assembly 102 is located at the inner bottom of the fixing assembly 101. The stabilizing cylinder 109 is located around the connecting assembly 105. Each stabilizing plate 108 is located at the upper end of its corresponding rotating shaft 107. Each rotating shaft 107 is located inside its corresponding side plate 106. Each side plate 106 is located around the fixing assembly 101. A torsion spring is provided at the connection between each stabilizing plate 108 and the rotating shaft 107. When no external force is applied, the torsion spring will... The stabilizing plate 108 is adjusted to be vertical. Therefore, during use, the posture of the stabilizing plate 108 must first be adjusted to keep it horizontal and in contact with the outside of the working cylinder 115. Then, the stabilizing cylinder 109 is placed on top of each stabilizing plate 108. The upper end of the stabilizing cylinder 109 fits perfectly with the top plate 117. So, after the stabilizing cylinder 109 is placed, even if there is a corresponding torsion spring counterforce, the stabilizing plate 108 will not detach the stabilizing cylinder 109 from the top of the working cylinder 115. After use, the operator slides out the stabilizing cylinder 109, and each stabilizing plate 108 is reset.
[0024] Secondly, each connecting lug 111 is located on the periphery of the hinge beam 110, which is located on the periphery of the shock-absorbing assembly 102. Each shock-absorbing cylinder 114 is located below the shock-absorbing plate 112, and the positioning post 113 is located above the shock-absorbing plate 112. The shock-absorbing plate 112 is located inside the hinge beam 110. Each connecting lug 111 has a ring inside, which can support external fixing equipment to pass through and fix it, keeping the hinge beam 110 stable during use and preventing shaking. Each shock-absorbing cylinder 114 is equipped with a corresponding shock-absorbing spring, which can counteract the vibration generated by the working cylinder 115 during operation and better protect the working cylinder 115.
[0025] Meanwhile, the top column 116 is located above the working cylinder 115, the working cylinder 115 is located inside the hinge beam 110, the top plate 117 is located at the upper end of the connecting rod 118, and the lower end of the connecting rod 118 is located at the upper end of the top column 116. When using the equipment, the operator first aligns the lower end of the working cylinder 115 with the positioning column 113, places the working cylinder 115 inside the hinge beam 110, then adjusts the flipping position of each stabilizing plate 108, and places the stabilizing cylinder 109 above each stabilizing plate 108. After closing, each stabilizing plate 108 cannot continue to rotate due to the restriction of the stabilizing cylinder 109, thereby restricting the movement of the working cylinder 115. Then, an external motor is connected through the through hole on the top plate 117, and the hinge beam 110 is stabilized through multiple connecting ears 111, allowing the working cylinder 115 to be used normally.
[0026] In this embodiment, a torsion spring is provided at the connection between each of the stabilizing plates 108 and the rotating shaft 107. Without external force, the torsion spring adjusts the stabilizing plate 108 to a vertical position. Therefore, during use, the position of the stabilizing plate 108 must first be adjusted to ensure it is horizontal and in contact with the outer side of the working cylinder 115. Then, the stabilizing cylinder 109 is placed over each stabilizing plate 108. The upper end of the stabilizing cylinder 109 fits snugly against the top plate 117. Therefore, after placing the stabilizing cylinder 109, even if the stabilizing plate 108 experiences a counterforce from the corresponding torsion spring, it will not dislodge the stabilizing cylinder 109 from above the working cylinder 115. After use, the operator slides out the stabilizing cylinder 109, and each stabilizing plate 108 returns to its original position. A ring is provided on the inner side of each connecting lug 111, allowing external fixing equipment to pass through for fixation. To maintain the stability of the hinge beam 110 during use and prevent swaying, each shock-absorbing cylinder 114 is equipped with a corresponding shock-absorbing spring, which can counteract the vibration generated by the working cylinder 115 during operation and better protect the working cylinder 115. When using the equipment, the operator first aligns the lower end of the working cylinder 115 with the positioning post 113, places the working cylinder 115 inside the hinge beam 110, then adjusts the flip position of each stabilizing plate 108, and places the stabilizing cylinder 109 on top of each stabilizing plate 108. After closing, each stabilizing plate 108 cannot continue to rotate due to the restriction of the stabilizing cylinder 109, thereby restricting the movement of the working cylinder 115. Then, an external motor is connected through the through hole on the top plate 117, and the hinge beam 110 is secured by multiple connecting ears 111, allowing the working cylinder 115 to be used normally.
[0027] The above-disclosed embodiments are merely one or more preferred embodiments of this application and should not be construed as limiting the scope of this application. Those skilled in the art can understand that all or part of the processes for implementing the above embodiments and equivalent changes made in accordance with the claims of this application still fall within the scope of this application.
Claims
1. A hinge beam structure for a diamond hydraulic press, comprising a fixing component, a shock-absorbing component, a hydraulic component, and a connecting component, wherein the connecting component is fixedly connected to the hydraulic component and located above the hydraulic component, the hydraulic component is slidably connected to the shock-absorbing component and located above the shock-absorbing component, and the shock-absorbing component is fixedly connected to the fixing component and located at the inner bottom of the fixing component, characterized in that, It also includes a stabilizing component, which includes multiple side plates, multiple rotating shafts, multiple stabilizing plates, and a stabilizing cylinder. The stabilizing cylinder is slidably connected to the connecting component and is located on the periphery of the connecting component. Each stabilizing plate is rotatably connected to a corresponding rotating shaft and is located at the upper end of the corresponding rotating shaft. Each rotating shaft is rotatably connected to a corresponding side plate and is located on the inner side of the corresponding side plate. Each side plate is fixedly connected to the fixing component and is located on the periphery of the fixing component.
2. The hinge beam structure of the diamond hydraulic press as described in claim 1, characterized in that, The fixing component includes a hinge beam and a plurality of connecting lugs, each of the connecting lugs being fixedly connected to the hinge beam and located on the periphery of the hinge beam. The hinge beam is fixedly connected to the damping component and located on the periphery of the damping component.
3. The hinge beam structure of the diamond hydraulic press as described in claim 2, characterized in that, The damping assembly includes a damping plate, a positioning post, and multiple damping cylinders. Each damping cylinder is fixedly connected to the damping plate and located below the damping plate. The positioning post is fixedly connected to the damping plate and located above the damping plate. The damping plate is slidably connected to the hinge beam and located inside the hinge beam.
4. The hinge beam structure of the diamond hydraulic press as described in claim 3, characterized in that, The hydraulic assembly includes a working cylinder and a top column. The top column is fixedly connected to the working cylinder and located above the working cylinder. The working cylinder is slidably connected to the hinge beam and located inside the hinge beam.
5. The hinge beam structure of the diamond hydraulic press as described in claim 4, characterized in that, The connecting assembly includes a top plate and a connecting rod. The top plate is fixedly connected to the connecting rod and is located at the upper end of the connecting rod. The lower end of the connecting rod is fixedly connected to the top column and is located at the upper end of the top column.
Citation Information
Patent Citations
Hinge beam structure of diamond hydraulic machine
CN216440574U