Hydraulic adjustable machining device

By adjusting the automated clamping and unlocking functions of the machining device through hydraulic components, the problems of cumbersome clamping position adjustment and insufficient precision in the existing technology when machining cylindrical workpieces are solved, and a highly efficient and stable machining process is achieved.

CN120921187BActive Publication Date: 2026-02-24HENGSHENG FOUNDRY (YUCHENG) CO LTD
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Patent Information

Application Number
CN202511100550.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-08-07
Publication Date
2026-02-24
Estimated Expiration
2045-08-07

AI Technical Summary

Technical Problem

In existing technologies, when machining cylindrical workpieces, the clamping position creates blind spots in surface grinding, requiring manual adjustment and affecting machining accuracy and stability.

Method used

Design an adjustable hydraulic component machining device to achieve automated clamping and unlocking through the cooperation of control components and stabilizing devices, simplifying work steps and ensuring machining accuracy and stability.

Benefits of technology

It simplifies the work process, improves the convenience and stability of processing, and ensures that the workpiece is always clamped and fixed during processing, avoiding the need for manual position adjustment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to hydraulic part processing technical field, specifically to a kind of adjustable processing device of hydraulic part, including processing table and placing table, the placing table is arranged at the center of processing table, the annular track is equipped around the placing table, the annular track is located outside processing table, movable polishing support is equipped on the annular track, polishing machine is equipped on the polishing support, control assembly is equipped at the bottom of placing table, the periphery of control assembly is evenly equipped with a plurality of stabilizing devices and located on processing table, the side end of each stabilizing device is equipped with linkage assembly, the side of linkage assembly is equipped with cooperation assembly and located on polishing support, the stabilizing device includes clamping assembly and link assembly.The present application works through control assembly and stabilizing device, can release the area coverage of the clamping position of workpiece surface according to processing position, while keeping clamping to workpiece after processing, so that convenience and stability are greatly improved.
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Description

Technical Field

[0001] This invention relates to the field of hydraulic component processing technology, specifically to an adjustable hydraulic component processing device. Background Technology

[0002] A hydraulic press generally consists of three parts: the main unit, the power system, and the hydraulic control system. Hydraulic presses can be classified into valve hydraulic presses, liquid hydraulic presses, and engineering hydraulic presses. Hydraulic component clamping devices are an important component of hydraulic presses.

[0003] In existing technologies, during the processing of cylindrical workpieces, the clamping position is usually attached to the workpiece surface. This often results in blind spots on the workpiece surface during processing, requiring operators to adjust the position of the hydraulic components in real time. This process is cumbersome and inconvenient. Furthermore, when switching the position of the hydraulic components during processing, the workpiece often shifts position during the next clamping operation, leading to insufficient processing accuracy and affecting the processing process, resulting in insufficient stability. Therefore, a device is needed that can release the clamping area on the workpiece surface according to the processing position and maintain clamping on the workpiece after processing to avoid inconvenience and instability. Summary of the Invention

[0004] The purpose of this invention is to provide an adjustable hydraulic component processing device to solve the problems mentioned in the background art. To achieve the above objective, this invention provides the following technical solution: An adjustable hydraulic component processing device includes a processing table and a placement table. The placement table is located at the center of the processing table, and a circular track is provided around the placement table. The circular track is located outside the processing table, and a movable grinding bracket is provided on the circular track. A grinding machine is provided on the grinding bracket. A control component is provided at the bottom of the placement table. Several stabilizing devices are evenly distributed around the control component and located on the processing table. Each stabilizing device has a linkage component on its side. A mating component is provided on one side of the linkage component and located on the grinding bracket. The stabilizing device includes a clamping component and a connecting component. The clamping component is located on one side of the control component, and the connecting component is located on the side of the clamping component.

[0005] Preferably, the control component includes a control gear rotatably disposed at the bottom of the processing table. The control gear has several arc-shaped sliding grooves, and a movable rod is slidably disposed in each arc-shaped sliding groove. The top of the movable rod is connected to the bottom of the sliding frame. The sliding frame is slidably disposed in the sliding groove on the processing table. The sliding direction of the sliding frame in the sliding groove is oriented towards the table. The top of the sliding frame is connected to the bottom of the arc-shaped frame and is located above the processing table. A drive gear is meshed on the side end of the control gear. The bottom of the drive gear is rotatably connected to the bottom of the processing table. The center of the bottom of the drive gear is connected to the output end of the drive motor.

[0006] Preferably, it also includes a connecting plate located above the sliding groove. The bottom of both ends of the connecting plate is connected to the top of the processing table via a bracket. A movable seat is slidably provided on the connecting plate. The top of the movable seat is connected to the side end of the arc-shaped clamping member near the placement table. A locking groove is opened at the bottom of the movable seat located below the connecting plate.

[0007] Preferably, the clamping assembly includes deflection frames symmetrically arranged on one side of the connecting plate, a rotating shaft between the two deflection frames, a linkage frame rotatably connected to the rotating shaft, a through opening on the linkage frame, a linkage rod on the side of the through opening away from the connecting plate, both ends of the linkage rod being connected to the inner wall of a contact frame, the side end of the contact frame being connected to the side end of the linkage frame, a curved connecting rod hinged to the linkage rod, the other end of the curved connecting rod being hinged to an auxiliary rod between the two hook rods through the through opening, the two hook rods being horizontally arranged between the two deflection frames, the other ends of the two hook rods being connected to an arc-shaped component through a through groove on the side end of the connecting plate, the top of the arc-shaped component being embedded in a locking groove.

[0008] Preferably, each of the two hook rods has a linkage groove at the end away from the connecting plate. The linkage groove is sleeved on the locking rod and slides with it. The two ends of the locking rod are connected to the inner wall of the adjacent deflection frame. The ends of the two hook rods away from the connecting plate are arranged in an arc shape and are respectively located above a contact frame. Each hook rod has an oblique contact block above it. The bottom of the linkage frame is connected to the top of the curved arm.

[0009] Preferably, the connecting assembly includes a connecting post fixed to the bottom of the curved arm, a connecting sleeve slidably mounted on the connecting post, the top of the connecting sleeve being movably connected to the bottom of the curved arm via a telescopic spring, a connecting hole at the bottom of the connecting sleeve, parallel spring wedge rods symmetrically arranged within the connecting hole, a first conical member slidably mounted within the connecting hole, the first conical member being located above the two spring wedge rods, a connecting rod being located at the center of the bottom of the first conical member, a second conical member slidably mounted on the connecting rod and located outside the connecting hole, the second conical member being mirror-image of the first conical member, the second conical member being slidably engaged with the inner wall of the connecting hole, the bottom of the connecting rod being connected to a fixed rod, a deflection rod being hinged to the bottom of the fixed rod, the other end of the deflection rod being hinged to the side of an adjacent curved frame, and an elastic claw being located on the side of the fixed rod away from the placement table and situated on the processing table.

[0010] Preferably, the linkage component includes a first wedge block fixed to the side end of the curved arm, the side end of the first wedge block is provided with an unlocking wedge block, the bottom of the unlocking wedge block is connected to the side end of the connecting sleeve through an auxiliary frame, and the other side of the bracket is provided with a reset wedge block.

[0011] Preferably, the mating assembly includes an L-shaped frame fixed to the side of the grinding bracket. The L-shaped frame is provided with an abutting wedge block that can engage with the unlocking wedge block. One side of the abutting wedge block is provided with a second wedge block that can engage with the first wedge block. The side end of the second wedge block is provided with a locking wedge block that can engage with the reset wedge block.

[0012] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0013] In this invention, when the device is in use, the control component operates, thereby driving all stabilizing devices to work. This facilitates clamping the workpiece from all sides using the clamping component. Subsequently, by controlling the movement of the grinding bracket, when the grinding machine moves to one side of the adjacent linkage component, the corresponding clamping area of ​​the clamping component is disengaged from the workpiece surface, thus facilitating the grinding machine's processing. After processing is completed, it is reconnected to the control component. This process avoids the need for operators to adjust the position of hydraulic components, simplifies the work steps, and improves convenience. At the same time, it ensures that the workpiece is always clamped and fixed during processing, thereby guaranteeing processing accuracy and improving processing stability.

[0014] In this invention, by using components such as control components and stabilizing devices in combination, the arc-shaped clamping member can fit against the outside of the workpiece. When the hook rod moves horizontally until the oblique contact block abuts against the side end of the through groove, the arc-shaped clamping member provides a further clamping force to the workpiece, thereby facilitating clamping of the workpiece from all sides by the clamping assembly and ensuring stability during clamping.

[0015] In this invention, the use of stabilizing devices and cooperating components avoids the need for operators to adjust the position of hydraulic components, simplifies the work process, and improves convenience. At the same time, it ensures that the workpiece can be clamped and fixed at all times during the processing, thereby ensuring processing accuracy and improving processing stability. It also makes it easier to unlock the clamped workpiece synchronously, improving the convenience of use. Attached Figure Description

[0016] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0017] Figure 2 This is a partial three-dimensional structural diagram of the present invention. Figure 1 ;

[0018] Figure 3 This is a partial three-dimensional structural diagram of the control component in this invention;

[0019] Figure 4 This is a partial three-dimensional structural diagram of the present invention. Figure 2 ;

[0020] Figure 5 This is a partial three-dimensional structural diagram of the control components and stabilization device in this invention. Figure 1 ;

[0021] Figure 6 This is a schematic diagram of the partial explosion three-dimensional structure of the present invention;

[0022] Figure 7 This is a partial three-dimensional structural diagram of the control components and stabilization device in this invention. Figure 2 ;

[0023] Figure 8 This is a partial three-dimensional structural diagram of the present invention. Figure 3 ;

[0024] Figure 9 This is a partial three-dimensional structural diagram of the stabilizing device in this invention;

[0025] Figure 10 This is a partial cross-sectional view of the stabilizing device in this invention;

[0026] Figure 11 This is a partial three-dimensional structural diagram of the components used in this invention.

[0027] In the diagram: 1. Processing table; 2. Placement table; 3. Circular track; 4. Grinding support; 5. Grinding machine; 6. Control components; 61. Control gear; 62. Arc-shaped slide; 63. Moving rod; 64. Sliding frame; 65. Sliding groove; 66. Arc-shaped frame; 67. Drive gear; 68. Drive motor; 69. Connecting plate; 70. Support; 71. Moving seat; 72. Arc-shaped clamping component; 73. Locking slot; 8. Stabilizing device; 81. Clamping component; 811. Deflection frame; 812. Rotating shaft; 813. Linkage frame; 814. Through port; 815. Linkage rod; 816. Contact frame; 817. Curved connecting rod; 818. Hook rod; 819. Auxiliary rod; 820. Through groove; 821. Arc-shaped component; 822. Linkage groove; 823. Locking rod; 824. Angled contact block; 825. Curved arm; 83. Connecting assembly; 831. Connecting post; 832. Connecting sleeve; 833. Telescopic spring; 834. Connecting hole; 835. Spring wedge rod; 836. First conical component; 837. Connecting rod; 838. Second conical component; 839. Fixing rod; 840. Deflection rod; 841. Elastic pawl; 9. Linkage assembly; 91. First wedge block; 92. Unlocking wedge block; 93. Auxiliary frame; 94. Reset wedge block; 10. Mating assembly; 101. L-shaped frame; 102. Contact wedge block; 103. Second wedge block; 104. Locking wedge block. Detailed Implementation

[0028] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0029] Please see Figures 1 to 11 This invention provides a technical solution: an adjustable hydraulic component processing device, including a processing table 1 and a placement table 2. The placement table 2 is located at the center of the processing table 1, and a ring track 3 is provided around the placement table 2. The ring track 3 is located outside the processing table 1, and a movable grinding bracket 4 is provided on the ring track 3. A grinding machine 5 is provided on the grinding bracket 4. A control component 6 is provided at the bottom of the placement table 2. Several stabilizing devices 8 are evenly distributed around the control component 6 and are located on the processing table 1. Each stabilizing device 8 has a linkage component 9 on its side. A mating component 10 is provided on one side of the linkage component 9 and is located on the grinding bracket 4. The stabilizing device 8 includes a clamping component 81 and a connecting component 83. The clamping component 81 is located on one side of the control component 6, and the connecting component 83 is located on the side of the clamping component 81.

[0030] In this embodiment, as Figures 1 to 10 As shown, the control component 6 includes a control gear 61 rotatably disposed at the bottom of the processing table 1. The control gear 61 has several arc-shaped sliding grooves 62. A moving rod 63 is slidably disposed in each arc-shaped sliding groove 62. The top of the moving rod 63 is connected to the bottom of the sliding frame 64. The sliding frame 64 is slidably disposed in a sliding groove 65 on the processing table 1. The sliding direction of the sliding frame 64 in the sliding groove 65 is oriented towards the placement table 2. The top of the sliding frame 64 is connected to the bottom of the arc-shaped frame 66 and is located above the processing table 1. A drive gear 67 is meshed on the side end of the control gear 61. The bottom of the drive gear 67 is rotatably connected to the bottom of the processing table 1. The center of the bottom of the drive gear 67 is connected to the output end of the drive motor 68.

[0031] It also includes a connecting plate 69 located above the sliding groove 65. The bottom of both ends of the connecting plate 69 is connected to the top of the processing table 1 through the bracket 70. A movable seat 71 is slidably provided on the connecting plate 69. The top of the movable seat 71 is connected to the side end of the arc-shaped clamping member 72 on the side of the side of the placement table 2. A locking groove 73 is opened at the bottom of the movable seat 71 located below the connecting plate 69.

[0032] The clamping assembly 81 includes deflection frames 811 symmetrically arranged on one side of the connecting plate 69. A rotating shaft 812 is provided between the two deflection frames 811. A linkage frame 813 is rotatably connected to the rotating shaft 812. A through opening 814 is provided on the linkage frame 813. A linkage rod 815 is provided on the side of the through opening 814 away from the connecting plate 69. The two ends of the linkage rod 815 are respectively connected to the inner wall of an abutment frame 816. The side end of the abutment frame 816 is connected to... The side end of the linkage frame 813 is connected, and a curved connecting rod 817 is hinged on the linkage rod 815. The other end of the curved connecting rod 817 is hinged to the auxiliary rod 819 between the two hook rods 818 through the through hole 814. The two hook rods 818 are horizontally arranged between the two deflection frames 811. The other end of the two hook rods 818 is connected to the arc-shaped part 821 through the through groove 820 on the side end of the connecting plate 69. The top of the arc-shaped part 821 is embedded in the locking groove 73.

[0033] Both hook rods 818 have a linkage groove 822 at the end away from the connecting plate 69. The linkage groove 822 is sleeved on the locking rod 823 and slides with it. The two ends of the locking rod 823 are connected to the inner wall of the adjacent deflection frame 811. The ends of the two hook rods 818 away from the connecting plate 69 are arranged in an arc shape and are respectively located above a contact frame 816. Each hook rod 818 has an inclined contact block 824 above it. The bottom of the linkage frame 813 is connected to the top of the curved arm 825.

[0034] The connecting assembly 83 includes a connecting post 831 fixed to the bottom of the curved arm 825. A connecting sleeve 832 is slidably mounted on the connecting post 831. The top of the connecting sleeve 832 is movably connected to the bottom of the curved arm 825 via a telescopic spring 833. The bottom of the connecting sleeve 832 has a connecting hole 834. Parallel spring wedge rods 835 are symmetrically arranged within the connecting hole 834. A first conical member 836 is slidably mounted within the connecting hole 834. The first conical member 836 is located above the two spring wedge rods 835. A central part is located at the bottom of the first conical member 836. A connecting rod 837 is provided with a second conical member 838 slidably mounted on it and located outside the connecting hole 834. The second conical member 838 is mirror-image of the first conical member 836. The second conical member 838 can slide and engage with the inner wall of the connecting hole 834. The bottom of the connecting rod 837 is connected to a fixed rod 839. A deflecting rod 840 is hinged to the bottom of the fixed rod 839. The other end of the deflecting rod 840 is hinged to the side of the adjacent arc frame 66. An elastic claw 841 is provided on the side of the fixed rod 839 away from the placement table 2 and is located on the processing table 1.

[0035] In this embodiment, as Figures 9 to 11 As shown, the linkage component 9 includes a first wedge block 91 fixed to the side end of the curved arm 825. The side end of the first wedge block 91 is provided with an unlocking wedge block 92. The bottom of the unlocking wedge block 92 is connected to the side end of the connecting sleeve 832 through an auxiliary frame 93. The other side of the bracket 70 is provided with a reset wedge block 94.

[0036] The mating assembly 10 includes an L-shaped frame 101 fixed to the side of the grinding bracket 4. The L-shaped frame 101 is provided with an abutting wedge block 102 that can cooperate with the unlocking wedge block 92. One side of the abutting wedge block 102 is provided with a second wedge block 103 that can cooperate with the first wedge block 91. The side end of the second wedge block 103 is provided with a locking wedge block 104 that can cooperate with the reset wedge block 94.

[0037] The invention provides the following usage method and advantages: An adjustable hydraulic component processing device operates as follows:

[0038] like Figures 1 to 11As shown, the operator controls the drive motor 68 to rotate the drive gear 67, which in turn rotates the control gear 61 meshing with it. Through the cooperation of the arc-shaped slide groove 62 and the moving rod 63, all the sliding frames 64 are moved along the slide groove 65 away from the table 2, which in turn moves all the arc-shaped frames 66. Through the deflection rod 840, all the fixed rods 839 are deflected synchronously. Since the first conical piece 836 is located above the two spring wedge rods 835 at this time, the curved arm 825 and the linkage frame 813 are deflected on the rotating shaft 812. Under the action of the curved connecting rod 817 and the auxiliary rod 819, the hook rod 818 is first driven through the linkage groove 822 along the locking rod 823. The workpiece moves horizontally towards the placement table 2, thereby allowing each movable seat 71 to slide along the top of the connecting plate 69 through the cooperation of the arc-shaped component 821 and the locking groove 73. This allows the arc-shaped clamping component 72 to fit against the outside of the workpiece. When the hook rod 818 moves horizontally until the oblique contact block 824 contacts the side end of the through groove 820, the hook rod 818 deflects downward along the locking rod 823, causing the contact frame 816 to simultaneously contact the end of the hook rod 818. At this time, under the action of the arc-shaped component 821, the arc-shaped clamping component 72 provides further clamping force to the workpiece. At this time, the side end of the fixing rod 839 is locked into the elastic claw 841, which facilitates clamping of the workpiece from all sides through the clamping assembly 81 and ensures stability during clamping.

[0039] After the workpiece is fixed, the movement of the grinding bracket 4 is controlled. Through the interaction of the contact wedge 102 and the adjacent unlocking wedge 92, the connecting sleeve 832 moves along the direction of the connecting post 831, stretching the telescopic spring 833. This causes the two spring wedge rods 835 to move along their inclined plane to below the second conical member 838. After the contact wedge 102 disengages from the unlocking wedge 92, the two spring wedge rods 835 are then moved by the telescopic spring 833. The resetting mechanism causes the second conical member 838 to slide along the connecting rod 837 until it contacts the first conical member 836. The spring wedge rod 835 then passes over the outside of the first conical member 836, causing the connecting hole 834 to disengage from the first conical member 836. Simultaneously, the connecting sleeve 832 resets after losing its supporting force, causing the arc-shaped clamping member 72 to disengage from the workpiece surface, facilitating processing by the grinding machine 5. After processing is complete, the grinding support 4 moves again, causing the second wedge block 103 to engage with the first wedge block 9. 1. The two wedges cooperate to drive the connecting sleeve 832 to deflect back to the first conical part 836. After the second wedge block 103 disengages from the first wedge block 91, the locking wedge block 104 and the reset wedge block 94 cooperate to drive the connecting sleeve 832 to move down. At this time, the downward movement distance is short, so that the two spring wedge rods 835 are re-locked at the bottom of the first conical part 836. Then, the arc-shaped clamping part 72 is driven to re-abut against the side end of the workpiece and reconnect with the fixing rod 839. This allows for the segmented grinding of the outer side of the workpiece. After the grinding machine 5 has finished processing around the workpiece, the workpiece can be unlocked by reversing the operation of the control component 6. In this process, the need for the operator to adjust the position of the hydraulic components is avoided, simplifying the work steps and improving convenience. At the same time, it ensures that the workpiece can be clamped and fixed at all times during the processing, thus ensuring processing accuracy and improving processing stability. It also makes it easier to unlock the clamped workpiece synchronously, improving the convenience of use.

[0040] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely preferred examples and are not intended to limit the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of the present invention is defined by the appended claims and their equivalents.

Claims

1. An adjustable hydraulic component processing device, comprising a processing table (1) and a placement table (2), wherein the placement table (2) is located at the center of the processing table (1), and a ring track (3) is provided around the placement table (2), the ring track (3) is located outside the processing table (1), and a movable grinding bracket (4) is provided on the ring track (3), and a grinding machine (5) is provided on the grinding bracket (4). Its features are: The bottom of the table (2) is provided with a control component (6). Several stabilizing devices (8) are evenly distributed around the control component (6) and located on the processing table (1). Each stabilizing device (8) is provided with a linkage component (9) on its side. A cooperating component (10) is provided on one side of the linkage component (9) and located on the grinding bracket (4). The stabilizing device (8) includes a clamping component (81) and a connecting component (83). The clamping component (81) is located on one side of the control component (6), and the connecting component (83) is located on the side of the clamping component (81). The control component (6) includes a sliding groove (65) disposed on the processing table (1), a connecting plate (69) disposed above the sliding groove (65), and the bottom ends of the connecting plate (69) being connected to the top of the processing table (1) via brackets (70). The clamping component (81) includes deflection frames (811) symmetrically disposed on one side of the connecting plate (69), a rotating shaft (812) being disposed between the two deflection frames (811), a linkage frame (813) being rotatably connected to the rotating shaft (812), and a through opening (814) being provided on the linkage frame (813). A linkage rod (815) is provided on the side of the through opening (814) away from the connecting plate (69). The two ends of the linkage rod (815) are respectively connected to the inner wall of a contact frame (816). The side end of the contact frame (816) is connected to the side end of the linkage frame (813). A curved connecting rod (817) is hinged on the linkage rod (815). The other end of the curved connecting rod (817) is hinged to the auxiliary rod (819) between the two hook rods (818) through the through opening (814). The other ends of the two hook rods (818) are connected to the arc-shaped piece (821). Both hook rods (818) have a linkage groove (822) at the end away from the connecting plate (69). The linkage groove (822) is sleeved on the locking rod (823) and slides with it. The two ends of the locking rod (823) are connected to the inner wall of the adjacent deflection frame (811). The ends of the two hook rods (818) away from the connecting plate (69) are arc-shaped. Each hook rod (818) has an oblique abutment block (824) above it. The bottom of the linkage frame (813) is connected to the top of the curved arm (825).

2. The adjustable hydraulic component processing device according to claim 1, characterized in that: The control component (6) includes a control gear (61) rotatably disposed at the bottom of the processing table (1). The control gear (61) has several arc-shaped grooves (62). A moving rod (63) is slidably disposed in each arc-shaped groove (62). The top of the moving rod (63) is connected to the bottom of the sliding frame (64). The sliding frame (64) is slidably disposed in the sliding groove (65). The top of the sliding frame (64) is connected to the bottom of the arc-shaped frame (66). A drive gear (67) is meshed on the side end of the control gear (61). The bottom center of the drive gear (67) is connected to the output end of the drive motor (68).

3. The adjustable hydraulic component processing device according to claim 1, characterized in that: The connecting plate (69) is slidably provided with a movable seat (71), one side of the top of the movable seat (71) is connected to the side end of the arc-shaped clamp (72), and a locking groove (73) is opened at the bottom of the movable seat (71).

4. The adjustable hydraulic component processing device according to claim 3, characterized in that: The top of the arc-shaped component (821) is embedded in the locking groove (73).

5. The adjustable hydraulic component processing device according to claim 2, characterized in that: The connecting assembly (83) includes a connecting post (831) fixed to the bottom of the curved arm (825). A connecting sleeve (832) is slidably provided on the connecting post (831). The top of the connecting sleeve (832) is movably connected to the bottom of the curved arm (825) through a telescopic spring (833). The bottom of the connecting sleeve (832) is provided with a connecting hole (834). Parallel spring wedge rods (835) are symmetrically arranged in the connecting hole (834). A first conical member (836) is slidably provided in the connecting hole (834). A connecting rod (837) is provided at the bottom center of the shaped part (836). A second conical part (838) is slidably provided on the connecting rod (837) and is located outside the connecting hole (834). The bottom of the connecting rod (837) is connected to the fixed rod (839). A deflection rod (840) is hinged to the bottom of the fixed rod (839). The other end of the deflection rod (840) is hinged to the side of the adjacent arc frame (66). An elastic claw (841) is provided on the side of the fixed rod (839) away from the placement table (2) and is located on the processing table (1).

6. The adjustable hydraulic component processing device according to claim 5, characterized in that: The linkage component (9) includes a first wedge block (91) fixed to the side end of the curved arm (825), and an unlocking wedge block (92) is provided on the side end of the first wedge block (91). The bottom of the unlocking wedge block (92) is connected to the side end of the connecting sleeve (832) through an auxiliary frame (93). A reset wedge block (94) is provided on the other side of the bracket (70).

7. The adjustable hydraulic component processing device according to claim 6, characterized in that: The mating assembly (10) includes an L-shaped frame (101) fixed to the side of the grinding bracket (4). The L-shaped frame (101) is provided with an abutting wedge (102) that can cooperate with the unlocking wedge (92). One side of the abutting wedge (102) is provided with a second wedge (103) that can cooperate with the first wedge (91). The side end of the second wedge (103) is provided with a locking wedge (104) that can cooperate with the reset wedge (94).

Citation Information

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