Precise rib pressing equipment for worm shaft

By using the movable arms and pressing parts in the worm shaft pressing equipment to accurately move to the pressing point, and secondary fixation is achieved through the rubber layer and return spring, the problem of difficulty in adjusting the clamping position is solved, and the processing accuracy and stability are improved.

CN120055099AActive Publication Date: 2025-05-30NINGBO NEWSTAR PRECISION MACHINERY
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Patent Information

Application Number
CN202510527099.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-25
Publication Date
2025-05-30
Estimated Expiration
2045-04-25

AI Technical Summary

Technical Problem

In the prior art, during the worm shaft pressing process, the clamping position of the clamping cylinder is difficult to adjust, resulting in a long distance between the clamping part and the pressing point, which affects the processing accuracy.

Method used

The movable arm drives the pressing member to move accurately to the position close to the worm shaft pressing point, shortening the distance between the secondary clamping point and the pressing point, and achieving a stable secondary fixation through the rubber layer and the return spring.

Benefits of technology

It effectively prevents the displacement or deformation of the worm shaft during the compression process, and improves the processing accuracy and stability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The precise worm shaft ribbing equipment comprises a ribbing die and a clamping air cylinder capable of fixing the two ends of a worm shaft, a pressure maintaining mechanism used for conducting secondary fixing on the worm shaft is arranged on the clamping air cylinder in a matched mode, and the clamping air cylinder is provided with a plurality of clamping arms; the pressure maintaining mechanism comprises abutting assemblies which are arranged on the clamping arms and can exert pressure on the portions, close to the rib pressing points, of the worm shafts, and when the worm shafts are limited in the abutting assemblies, the worm shafts are further fixed. The movable arm drives the abutting piece to accurately move to the position close to a rib pressing point of the worm shaft, the distance between a secondary clamping point and the rib pressing point is shortened, the abutting piece is driven to enable a rubber layer on the abutting piece to abut against the surface of the worm shaft, pressure is gradually applied, stable secondary fixing is completed, and displacement or deformation of the worm shaft in the rib pressing process is effectively prevented.
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Description

Technical Field

[0001] The present invention relates to the technical field of worm shaft processing equipment, and more particularly to a precise rib pressing equipment for worm shafts. Background Art

[0002] During the manufacturing process of worm shafts, the rib pressing process is an important link to improve their strength, wear resistance and transmission efficiency. During the rib pressing process, the worm shaft may be displaced due to large acting forces. Traditional positioning methods usually rely on manual adjustment or simple mechanical limits, making it difficult to ensure the precise position of the worm shaft during the rib pressing process, and easily resulting in poor consistency in rib pressing depth and shape.

[0003] In the prior art, for example, an automatic rib pressing tooling for shafts disclosed in a Chinese invention patent application (publication number CN105598293A) has a structure including: a processing platform; a lower die base provided on the processing platform with a first installation groove on its upper surface; an upper die base capable of moving up and down above the lower die base, and a spring is provided between the upper die base and the lower die base to keep the upper die base always in an upward movement trend. A second installation groove is formed on the lower surface of the upper die base; a lower rib pressing die is provided in the first installation groove and has a first rib pressing groove; an upper rib pressing die is provided in the second installation groove and has a second rib pressing groove, and the second rib pressing groove corresponds to the first rib pressing groove up and down; a driving mechanism is provided above the upper die base and can drive the upper die base to move downward; an installation plate is also included, provided on the front side of the lower die base and having a first through hole for the shaft to be processed to pass through, and the first through hole corresponds to the first rib pressing groove; a clamp passes through the first through hole and is rotatably provided on the installation plate, and the clamp has a clamping hole penetrating from front to back; a gear is provided on the clamp and located on the front side of the installation plate, and a second through hole for the clamp to pass through is formed in the middle of the gear; an installation seat is provided on the processing platform and located on the front side of the installation plate, with a chute arranged perpendicular to the axial direction of the second through hole; a rack is provided in the chute and meshes with the gear; a first cylinder, the power output end of the cylinder is connected to the rack and can drive the rack to move back and forth in the chute; and a clamping cylinder is provided on the rear side of the installation plate and can clamp or release the shaft to be processed in the clamp.

[0004] In the above prior art, the shaft to be machined is clamped by a clamping cylinder. However, during the rib pressing process, the shaft to be machined will be subjected to a large force, and the clamping cylinder only provides a static clamping function without considering the stability under dynamic conditions. If the clamping part of the clamping cylinder is far from the rib pressing point (i.e., the clamped part of the worm shaft is far from the area to be pressure processed), the workpiece may bend or vibrate due to the force, affecting the machining accuracy. Therefore, there is a need for a rib pressing device that can adjust the clamping position of the clamping cylinder to make the clamping position as close as possible to the rib pressing point, so as to shorten the distance between the clamping part and the rib pressing point, thereby reducing the bending or vibration of the workpiece caused by the force. Summary of the Invention

[0005] Aiming at the problems existing in the prior art, a precise rib pressing device for a worm shaft is provided. In the present invention, the movable arm drives the pressing member to accurately move to a position close to the rib pressing point of the worm shaft, shortening the distance between the secondary clamping point and the rib pressing point, driving the pressing member to make the rubber layer on it press against the surface of the worm shaft and gradually apply pressure, completing a stable secondary fixation, and effectively preventing the displacement or deformation of the worm shaft during the rib pressing process.

[0006] To solve the problems of the prior art, the present invention provides a precise rib pressing device for a worm shaft for machining the worm shaft, including a rib pressing die and a clamping cylinder capable of fixing both ends of the worm shaft. A pressure maintaining mechanism for secondary fixation of the worm shaft is cooperatively provided on the clamping cylinder. The clamping cylinder has a plurality of clamping arms. The pressure maintaining mechanism includes a pressing component provided on each clamping arm capable of pressing on the part of the worm shaft close to the rib pressing point. When the worm shaft is restricted by all the pressing components, the worm shaft is in a state of being further fixed. Each clamping cylinder can move in a direction close to or away from the rib pressing die according to the length of the worm shaft.

[0007] Preferably, the pressing component includes a movable arm provided on the clamping arm and a pressing member provided on it. The movable arm can move on the clamping arm in the direction of the rib pressing die to drive the pressing member close to the rib pressing point of the worm shaft, and the pressing member can rotate on the movable arm along its moving direction to press on the worm shaft.

[0008] Preferably, the pressing member is specifically a plate structure rotatably connected to the end of the movable arm close to the rib pressing die. The end of the pressing member extending inward has a rubber layer, and the end of the pressing member extending outward has a return spring connected to the movable arm. When the rubber layer deforms due to pressing on the worm shaft, the return spring is in a compressed state.

[0009] Preferably, the pressing component further includes a pressing driver for driving the pressing member to rotate. When the pressing member is close to the rib pressing point of the worm shaft, the pressing driver is in a starting state.

[0010] Preferably, the pressing driver has a trigger part arranged near the rib pressing point of the worm shaft, which can cooperate with the pressing part to make it rotate. When the pressing part contacts the trigger part and continues to move, the pressing part is in an inward rotation state under the block of the trigger part, so that the worm shaft is clamped between all the rubber layers.

[0011] Preferably, the pressing driver has a pulling rope connected to the pressing part, which can apply a pulling force to make it rotate. When the pressing part moves to near the rib pressing point of the worm shaft, the pressing part is in an inward rotation state under the pulling force of the pulling rope, so that the worm shaft is clamped between all the rubber layers.

[0012] Preferably, a tension spring is connected between each movable arm and the corresponding clamping arm, and a linear driver for driving all the movable arms to move synchronously is arranged on each clamping cylinder. When all the pressing parts move synchronously to near the rib pressing point of the worm shaft, each pressing part is in a pressing state, and at the same time the tension spring is in a stretched state.

[0013] Preferably, the linear driver has a push plate, and each movable arm is provided with a pressed part that cooperates with the push plate to be pushed. The push plate is provided with a guide groove for each clamping arm to move in the clamping direction.

[0014] Preferably, a flexible layer capable of adapting to the surface of the worm shaft is provided on the surface of each clamping arm that can contact the worm shaft.

[0015] Preferably, a limiting part capable of abutting against the end of the worm shaft is arranged on each clamping cylinder. When the worm shaft is positioned between the two limiting parts, the worm shaft is in a laterally limited state to prevent the worm shaft from slipping between the clamping arms.

[0016] The beneficial effects of this application compared with the prior art are as follows: 1. The present invention preliminarily fixes the two ends of the worm shaft through multiple clamping arms and adjusts the position according to the actual length of the worm shaft to ensure that the part to be rib pressed is accurately located in the rib pressing die.

[0017] Subsequently, the movable arms on each clamping arm drive the pressing part to accurately move to a position near the rib pressing point, shortening the distance between the secondary clamping point and the rib pressing point. As the pressing part rotates, the rubber layer contacts the surface of the worm shaft and applies a uniform pressure. The rubber layer gradually deforms, applying a greater pressure to the worm shaft, realizing the secondary fixation of the worm shaft, and ensuring that it will not undergo any displacement or deformation during the entire rib pressing process.

[0018] 2. The present invention realizes the synchronous displacement of all the pressing parts by the cooperation of the push plate and the pressed part to push all the movable arms, ensuring that each pressing part can accurately reach a position near the rib pressing point of the worm shaft.

[0019] As the pressing member approaches the bead pressing point, the pressing driver starts in cooperation with the pressing member accordingly, causing the rubber layer on the pressing member to closely adhere to the worm shaft and apply uniform pressure, ensuring multi-point collaborative fixation and preventing any displacement or deformation.

[0020] 3. Through the flexible layer on the clamping arm and the limiting portion on the clamping cylinder, the present invention realizes the precise fixation and surface protection of the worm shaft, enabling the portion of the worm shaft to be bead pressed to be located in the bead pressing die.

[0021] When the clamping arm contacts the worm shaft, the flexible layer distributes the pressure evenly, avoiding damage caused by excessive local stress, ensuring uniform distribution of the clamping force, improving stability and reducing the risk of deformation. This enables the worm shaft to be stable between the two limiting portions to prevent the worm shaft from slipping between the clamping arms. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 is a three-dimensional structural schematic diagram of a precise bead pressing device for a worm shaft according to the present invention.

[0023] Figure 2 is a state schematic diagram of bead pressing and forming by the bead pressing die of a precise bead pressing device for a worm shaft according to the present invention.

[0024] Figure 3 is a partial three-dimensional structural sectional view of a precise bead pressing device for a worm shaft according to the present invention.

[0025] Figure 4 is a three-dimensional structural schematic diagram of the clamping cylinder and the pressure maintaining mechanism of a precise bead pressing device for a worm shaft according to the present invention.

[0026] Figure 5 is a partial three-dimensional structural sectional view of the clamping cylinder and the pressure maintaining mechanism of a precise bead pressing device for a worm shaft according to the present invention.

[0027] Figure 6 is a three-dimensional state schematic diagram of Embodiment 1 of the pressing driver of a precise bead pressing device for a worm shaft according to the present invention.

[0028] Figure 7 is a planar state schematic diagram of Embodiment 1 of the pressing driver of a precise bead pressing device for a worm shaft according to the present invention.

[0029] Figure 8 is a three-dimensional state schematic diagram of Embodiment 2 of the pressing driver of a precise bead pressing device for a worm shaft according to the present invention.

[0030] Figure 9 is a planar state schematic diagram of Embodiment 2 of the pressing driver of a precise bead pressing device for a worm shaft according to the present invention.

[0031] Figure 10 is a three-dimensional structural schematic diagram of the worm shaft according to the present invention.

[0032] The reference numerals in the figure are: 1, rib pressing die; 11, upper die; 12, lower die; 2, worm shaft; 21, rib; 3, clamping cylinder; 31, clamping arm; 311, slide rail; 312, flexible layer; 32, push plate; 33, limiting part; 4, pressure maintaining mechanism; 41, pressing component; 411, movable arm; 4111, tension spring; 4112, pressure receiving part; 412, pressing piece; 4121, rubber layer; 4122, reset spring; 42, pressing driver; 421, triggering part; 422, pull rope. Detailed implementation mode

[0033] To further understand the features, technical means, specific purposes and functions achieved by the present invention, the present invention will be described in further detail below in conjunction with the drawings and specific implementation modes.

[0034] See Figures 1 - 5 and Figure 10 As shown, a precise rib pressing device for a worm shaft is used to process the worm shaft 2, including a rib pressing die 1 and a clamping cylinder 3 capable of fixing both ends of the worm shaft 2. A pressure maintaining mechanism 4 for secondary fixing of the worm shaft 2 is arranged in cooperation with the clamping cylinder 3. The clamping cylinder 3 has a plurality of clamping arms 31. The pressure maintaining mechanism 4 includes a pressing component 41 arranged on each clamping arm 31 and capable of pressing the part of the worm shaft 2 close to the rib pressing point. When the worm shaft 2 is restricted by all the pressing components 41, the worm shaft 2 is in a state of being further fixed. Each clamping cylinder 3 can move in a direction close to or away from the rib pressing die 1 according to the length of the worm shaft 2.

[0035] The rib pressing die 1 is composed of an upper die 11 and a lower die 12. When the upper die 11 and the lower die 12 are in a combined state, a cavity for forming ribs on the worm shaft 2 is formed between the upper die 11 and the lower die 12.

[0036] When the worm shaft 2 is fixed by two clamping cylinders 3 and is secondarily fixed by the pressure maintaining mechanism 4, the upper die 11 and the lower die 12 are gradually combined, so that the rib pressing treatment of the rib 21 is carried out on the worm shaft 2 in a fixed state.

[0037] When the worm shaft 2 is processed by the precise rib pressing device, the two ends of the worm shaft 2 are first fixed by the clamping cylinder 3. Each clamping cylinder 3 is equipped with a plurality of clamping arms 31, and the clamping cylinder 3 can adjust its position according to the actual length of the worm shaft 2 to ensure that the part of the worm shaft 2 to be rib pressed can be accurately positioned in the rib pressing die 1.

[0038] After the worm shaft 2 is fixed by two clamping cylinders 3, the pressing components 41 on each clamping arm 31 all move to the position of the worm shaft 2 near the bead pressing point. All the pressing components 41 simultaneously apply an additional pressure to the part of the worm shaft 2 near the bead pressing point, thereby achieving secondary fixation and ensuring that the worm shaft 2 will not undergo any displacement or deformation during the bead pressing process.

[0039] Subsequently, after the worm shaft 2 is firmly fixed, the upper die 11 and the lower die 12 begin to gradually merge. Through the merging of the upper die 11 and the lower die 12, a die cavity for forming the bead on the worm shaft 2 is formed. As the upper die 11 and the lower die 12 get closer and closer, the worm shaft 2 is compressed, and part of the material flows into the pre-designed die cavity shape under the action of external force, forming the required rib 21 structure.

[0040] See Figures 3 - 9 As shown, the pressing component 41 includes a movable arm 411 arranged on the clamping arm 31 and a pressing member 412 arranged thereon. The movable arm 411 can move on the clamping arm 31 in the direction of the bead pressing die 1 to drive the pressing member 412 close to the bead pressing point of the worm shaft 2, and the pressing member 412 can rotate on the movable arm 411 along its moving direction to press the worm shaft 2.

[0041] A slide rail 311 for the sliding connection of the movable arm 411 is arranged on the clamping arm 31.

[0042] When starting the secondary fixation of the worm shaft 2, first, the clamping cylinders 3 initially fix both ends of the worm shaft 2 through its multiple clamping arms 31. Subsequently, the movable arms 411 arranged on each clamping arm 31 precisely adjust their positions according to the bead pressing position of the worm shaft 2 to adapt to worm shafts 2 of different lengths.

[0043] As the movable arm 411 moves, the pressing member 412 thereon also gradually approaches the bead pressing point of the worm shaft 2. Since the pressing member 412 can rotate on the movable arm 411 along its moving direction, it can apply a uniform pressure to the worm shaft 2. Since the pressing member 412 can be precisely positioned near the bead pressing point and provide stable support and uniform pressure, it effectively prevents the worm shaft 2 from bending or vibrating during the bead pressing process due to long-distance clamping.

[0044] See Figures 3 - 9 As shown, the pressing member 412 is specifically a plate body structure rotatably connected to one end of the movable arm 411 near the bead pressing die 1. The end of the pressing member 412 extending inwards has a rubber layer 4121, and the end of the pressing member 412 extending outwards has a return spring 4122 connected to the movable arm 411. When the rubber layer 4121 deforms due to pressing the worm shaft 2, the return spring 4122 is in a compressed state.

[0045] When the pressing member 412 contacts the worm shaft 2, the rubber layer 4121 at the inwardly extending end thereof contacts the surface of the worm shaft 2 and begins to apply pressure. Since the rubber layer 4121 has a certain elasticity, it can adapt to the surface profile of the worm shaft 2, ensuring a more uniform pressure distribution and reducing the risk of damage to the worm shaft 2 caused by local overloading. As the pressing member 412 continues to rotate inwardly, the rubber layer 4121 gradually deforms, applying a greater pressure to the worm shaft 2.

[0046] During this process, the return spring 4122 is compressed. By clamping the worm shaft 2 with multiple pressing members 412, secondary fixation of the worm shaft 2 is achieved, ensuring that the worm shaft 2 does not undergo any displacement or deformation during the entire rib pressing process.

[0047] In addition, the return spring 4122 allows the pressing member 412 to quickly return to its initial state after the pressure is released, preparing for the next operation.

[0048] See Figure 3 As shown, the pressing assembly 41 further includes a pressing driver 42 for driving the pressing member 412 to rotate. When the pressing member 412 approaches the rib pressing point of the worm shaft 2, the pressing driver 42 is in the starting state.

[0049] When the pressing member 412 approaches the rib pressing point of the worm shaft 2, the pressing driver 42 starts and drives the pressing member 412 to rotate precisely to ensure the best contact and pressure distribution.

[0050] Specifically, before the pressing member 412 presses on the worm shaft 2, first, the movable arm 411 smoothly advances along the slide rail 311 on the clamping arm 31 towards the rib pressing point until the pressing member 412 moves to a position close to the rib pressing point of the worm shaft 2. At this time, the pressing driver 42 starts to work, enabling the pressing member 412 to automatically adjust the angle according to the specific profile of the worm shaft 2.

[0051] With the start of the pressing driver 42, the pressing member 412 makes fine adjustments and rotates around its rotational connection point with the movable arm 411, enabling the rubber layer 4121 to better conform to the shape changes of the surface of the worm shaft 2. This not only ensures a uniform pressure distribution but also avoids the risk of workpiece damage caused by local overloading. During the rotation process, the rubber layer 4121 gradually deforms, applying a gradually increasing pressure to the worm shaft 2.

[0052] With the synchronous operation of multiple pressing assemblies 41, the worm shaft 2 is comprehensively and stably fixed during the entire rib pressing process, preventing any possible displacement or deformation and maintaining the best processing state.

[0053] See Figures 3 - 7As shown, the pressing driver 42 has a trigger portion 421 disposed near the bead pressing point of the worm shaft 2 and capable of cooperating with the pressing member 412 to rotate it. When the pressing member 412 contacts the trigger portion 421 and continues to move, the pressing member 412 is in an inward rotation state under the blocking of the trigger portion 421, so that the worm shaft 2 is clamped between all the rubber layers 4121.

[0054] When the pressing member 412 approaches the bead pressing point of the worm shaft 2, as the pressing member 412 continues to move and contacts the trigger portion 421, the trigger portion 421 exerts a blocking force on the pressing member 412. Since the pressing member 412 is rotatably connected to the movable arm 411, the formed blocking force causes the pressing member 412 to be forced to rotate around its rotation connection point with the movable arm 411.

[0055] As the pressing member 412 continues to travel, the pressing member 412 thus continues to rotate. The rotation action causes the rubber layer 4121 of the pressing member 412 to press against the surface of the worm shaft 2 and gradually deform, thereby exerting a gradually increasing pressure on the worm shaft 2. So that the worm shaft 2 is stabilized between all the rubber layers 4121.

[0056] See Figures 3 - 5 、 Figure 8 and Figure 9 As shown, the pressing driver 42 has a pull rope 422 connected to the pressing member 412 and capable of applying a pulling force to rotate it. When the pressing member 412 moves to a position close to the bead pressing point of the worm shaft 2, the pressing member 412 is in an inward rotation state under the pulling force of the pull rope 422, so that the worm shaft 2 is clamped between all the rubber layers 4121.

[0057] When the movable arm 411 advances smoothly along the slide rail 311 on the clamping arm 31 until the pressing member 412 approaches the bead pressing point position of the worm shaft 2, the pull rope 422 connected to the pressing member 412 is activated and starts to apply a pulling force. The specific structure for driving the pull rope 422 is not shown in the figure.

[0058] Since the pressing member 412 is rotatably connected to the movable arm 411, the pulling force of the pull rope 422 causes the pressing member 412 to actively rotate around its rotation connection point with the movable arm 411. As the pressing member 412 continues to rotate under the continuous pulling force of the pull rope 422, the rubber layer 4121 gradually approaches and finally contacts the surface of the worm shaft 2. The rubber layer 4121 has a certain elasticity and can adapt to the specific contour of the worm shaft 2 and gradually deform during the contact process.

[0059] As the pressing member 412 continues to rotate, the pressure exerted on the worm shaft 2 gradually increases, and the deformation degree of the rubber layer 4121 also gradually increases. So that the worm shaft 2 is stabilized between all the rubber layers 4121.

[0060] SeeFigure 3 , Figure 4 and Figures 6 - 9 As shown in Figure 3 , Figure 4 and Figures 6 - 9 , a tension spring 4111 is connected between each active arm 411 and the corresponding clamping arm 31. A linear actuator for driving all the active arms 411 to move synchronously is provided on each clamping cylinder 3. When all the pressing members 412 move synchronously to approach the bead-forming point of the worm shaft 2, each pressing member 412 is in a pressing state, and at the same time the tension spring 4111 is in a stretched state.

[0061] When the linear actuator is started and drives all the active arms 411 to synchronously advance towards the bead-forming point of the worm shaft 2, the active arms 411 move smoothly along the slide rail 311 on the clamping arm 31. Since a tension spring 4111 is connected between each active arm 411 and the corresponding clamping arm 31, the tension spring 4111 is gradually stretched during the movement of the active arm 411, providing conditions for the reset of the active arm 411.

[0062] As the active arms 411 continue to advance, the pressing members 412 gradually approach the bead-forming point of the worm shaft 2 and finally contact the surface of the worm shaft 2 through the pressing actuator 42, so that the rubber layer 4121 applies pressure to the worm shaft 2.

[0063] As all the pressing members 412 move synchronously and contact the worm shaft 2, each pressing member 412 makes the rubber layer 4121 closely fit the surface of the worm shaft 2 and applies uniform pressure to the worm shaft 2. Through the multi-point cooperation method, the worm shaft 2 is comprehensively and stably fixed during the entire bead-forming process, effectively preventing any possible displacement or deformation and maintaining the best processing state.

[0064] When the bead-forming process is completed, the linear actuator stops working, the reset spring 4122 relieves the pressure on the pressing member 412, quickly returns the pressing member 412 to the initial position, and the tension spring 4111 also returns to the original state, so that the pressing member 412 is reset and ready for the next operation. It is beneficial to adjust the position of the pressing shaft according to the length of the worm shaft 2 to ensure that the position of the worm shaft 2 close to the bead-forming point can be accurately fixed.

[0065] See Figure 5 , Figure 6 and Figure 8 As shown in Figure 5 , Figure 6 and Figure 8 , the linear actuator has a push plate 32. A pressed part 4112 for being pushed in cooperation with the push plate 32 is provided on each active arm 411. A guide groove for each clamping arm 31 to move in the clamping direction is formed on the push plate 32.

[0066] When the linear actuator starts to work, its push plate 32 advances forward. The push plate 32 contacts all the pressed parts 4112. As the push plate 32 advances, each active arm 411 moves smoothly along the slide rail 311 on the clamping arm 31 towards the bead-forming point of the worm shaft 2.

[0067] Since each active arm 411 is in close fit with the push plate 32 through its pressed part 4112, all the pressing members 412 can move synchronously and apply pressure evenly. The worm shaft 2 is comprehensively and stably fixed during the entire rib pressing process through the multi-point cooperation method.

[0068] When the clamping arm 31 on the clamping cylinder 3 adjusts the clamping position, the clamping arm 31 moves along the direction of the guide groove on the push plate 32, which neither hinders the movement of the push plate 32 nor the effective movement of the clamping arm 31.

[0069] See Figure 4 As shown, a flexible layer 312 that can adapt to the surface of the worm shaft 2 is provided on each surface of the clamping arm 31 that can contact the worm shaft 2.

[0070] When the clamping arm 31 gradually approaches and finally contacts the worm shaft 2, the flexible layer 312 on the clamping arm 31 first contacts the surface of the worm shaft 2. Due to the existence of the flexible layer 312, the clamping arm 31 can evenly distribute the pressure during the contact process, avoiding the risk of damage to the worm shaft 2 caused by local overstress.

[0071] As the clamping arm 31 continues to apply the clamping force, the flexible layer 312 further adheres to the surface of the worm shaft 2, filling any minor unevenness, ensuring that the clamping force is evenly distributed over the entire contact surface of the worm shaft 2. The uniform pressure distribution not only improves the clamping stability but also reduces the possibility of deformation or damage to the worm shaft 2 caused by uneven clamping force.

[0072] In addition, the flexible layer 312 also provides an additional buffering effect, preventing the impact that may be caused by hard contact and protecting the surface quality of the worm shaft 2.

[0073] See Figure 3 、 Figure 4 and Figures 6 - 9 As shown, a limit part 33 that can abut against the end of the worm shaft 2 is provided on each clamping cylinder 3. When the worm shaft 2 is positioned between the two limit parts 33, the worm shaft 2 is in a laterally limited state to prevent the worm shaft 2 from slipping between the clamping arms 31.

[0074] When the clamping cylinder 3 starts to work and gradually approaches the worm shaft 2, the limit parts 33 provided on each clamping cylinder 3 first contact the two ends of the worm shaft 2. As the position of the clamping cylinder 3 is adjusted, the worm shaft 2 is firmly fixed between the two limit parts 33. This effectively prevents any slipping of the worm shaft 2 between the clamping arms 31 and ensures the accuracy and reliability of the subsequent rib pressing process.

[0075] In the present invention, both ends of the worm shaft 2 are initially fixed by multiple clamping arms 31, and the position is adjusted according to the length of the worm shaft 2 to ensure that the part to be ribbed is accurately positioned in the ribbing die 1. Subsequently, the movable arm 411 on each clamping arm 31 drives the pressing member 412 to accurately move to a position close to the ribbing point, shortening the distance between the secondary clamping point and the ribbing point. The pressing member 412 is activated to contact the surface of the worm shaft 2 through the rubber layer 4121 and apply a uniform pressure.

[0076] As the pressing member 412 rotates, the rubber layer 4121 presses against the surface of the worm shaft 2 and gradually deforms, enhancing the pressure on the worm shaft 2 and achieving a stable secondary fixation. It effectively prevents the displacement or deformation of the worm shaft 2 during the ribbing process, significantly improving the processing accuracy and stability.

[0077] The above embodiments only represent one or several implementation manners of the present invention. The description is relatively specific and detailed, but it should not be construed as a limitation on the protection scope of the present invention. It should be noted that for those of ordinary skill in the art, without departing from the concept of the present invention, several deformations and improvements can still be made, and these all belong to the protection scope of the present invention. Therefore, the protection scope of the present invention should be subject to the appended claims.

Claims

1. A worm shaft precision rib pressing device, used for processing the worm shaft, comprising a rib pressing die and a clamping cylinder capable of fixing both ends of the worm shaft; It is characterized in that The clamping cylinder is provided with a pressure-maintaining mechanism for secondary fixing of the worm shaft. The clamping cylinder has a plurality of clamping arms. The pressure-maintaining mechanism includes a pressing component provided on each clamping arm and capable of applying pressure to a portion of the worm shaft close to the rib pressing point. When the worm shaft is restrained by all the pressing components, the worm shaft is in a further fixed state. Each of the clamping cylinders can move toward or away from the beading die according to the length of the worm shaft; The pressing assembly includes a movable arm arranged on the clamping arm and a pressing piece arranged thereon, wherein the movable arm can move on the clamping arm toward the embossing mold to drive the pressing piece to approach the embossing point of the worm shaft, and the pressing piece can rotate on the movable arm along its moving direction to apply pressure to the worm shaft.

2. The worm shaft precision crimping equipment according to claim 1, characterized in that: The pressure piece is specifically a plate structure rotatably connected to one end of the movable arm near the rib embossing mold. The end of the pressure piece extending inward has a rubber layer, and the end of the pressure piece extending outward has a return spring connected to the movable arm. When the rubber layer applies pressure to the worm shaft and deforms, the return spring is in a compressed state.

3. The worm shaft precision rib pressing device according to claim 2, characterized in that: The pressing assembly also includes a pressing driver for driving the pressing member to rotate. When the pressing member is close to the rib pressing point of the worm shaft, the pressing driver is in a starting state.

4. The worm shaft precision rib pressing device according to claim 3, characterized in that: The pressing drive has a triggering portion arranged near the worm shaft pressure point and capable of cooperating with the pressing piece to rotate it. When the pressing piece contacts the triggering portion and continues to move, the pressing piece is in an inwardly rotating state under the obstruction of the triggering portion, so that the worm shaft is clamped between all rubber layers.

5. The worm shaft precision rib pressing device according to claim 3, characterized in that: The pressing drive has a pull rope connected to the pressing piece and capable of applying tension to rotate it. When the pressing piece moves to a rib point close to the worm shaft, the pressing piece rotates inward under the tension of the pull rope, so that the worm shaft is clamped between all rubber layers.

6. The worm shaft precision crimping equipment according to claim 1, characterized in that: A tension spring is connected between each movable arm and the corresponding clamping arm, and each clamping cylinder is provided with a linear drive for driving all movable arms to move synchronously. When all the pressure members move synchronously to the rib pressing point close to the worm shaft, each pressure member is in a pressure state, and the tension spring is in a tension state.

7. The worm shaft precision rib pressing device according to claim 6, characterized in that: The linear drive has a push plate, and each movable arm is provided with a pressure receiving portion that cooperates with the push plate to be pushed. The push plate is provided with a guide groove for each clamping arm to move in the clamping direction.

8. The worm shaft precision crimping device according to claim 1, characterized in that: The surface of each clamping arm capable of contacting the worm shaft is provided with a flexible layer capable of adapting to the surface of the worm shaft.

9. The worm shaft precision crimping device according to claim 1, characterized in that: Each clamping cylinder is provided with a limiting portion capable of abutting against the end of the worm shaft. When the worm shaft is positioned between the two limiting portions, the worm shaft is in a laterally limited state to prevent the worm shaft from slipping between the clamping arms.

Citation Information

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