Large double-pinion gear ring storage device

CN224797517UActive Publication Date: 2026-09-25CHANGZHOU WUJIN JINCHENG GEAR
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Patent Information

Application Number
CN202522301167.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2026-08-17
Publication Date
2026-09-25
Estimated Expiration
2036-08-17

AI Technical Summary

Technical Problem

传统存储方式多采用直接堆叠或简易架体搁置:前者易因齿圈间相互挤压导致齿部变形、表面涂层磨损,直接影响产品精度与后续使用性能;后者难以实现有序分层存储,仓储空间利用率低,且无法对齿圈进行精准定位,后续取放不便

Benefits of technology

[0011]本实用新型的有益效果是:本设计通过导柱与支撑锁止组件的配合,实现双联齿圈的悬挂式存储,替代传统堆叠方式,彻底避免了齿圈间因相互挤压导致的齿部变形问题;同时,悬挂结构使齿圈表面无直接接触摩擦,可有效保护齿圈表面涂层,防止磨损,确保齿圈出厂精度与后续使用性能不受存储环节影响;多组匹配槽可适配多个支撑锁止组件,进而实现多件双联齿圈在导柱上的分层悬挂存储。

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Abstract

The utility model relates to double gear ring technical field, especially a kind of storage equipment of large double gear ring, including frame, its inside is provided with the lifting mechanism of driving lifting plate to move up and down in frame, rotating mechanism is arranged on lifting plate, guide pillar is vertically arranged below rotating mechanism, export hole is opened on the bottom surface in frame;Conveying mechanism is horizontally arranged on the bottom surface in frame;Support locking assembly is placed on the bottom surface in frame;When guide pillar passes through double gear ring and moves down to preset position, support locking assembly is locked with guide pillar, then guide pillar rises, double gear ring is lifted by support locking assembly;When guide pillar moves down and support locking assembly falls on the bottom surface in frame, guide pillar is displaced by a distance again, guide pillar rotates preset angle by rotating mechanism, so that support locking assembly is separated from guide pillar.The utility model is stored by the cooperation of guide pillar and support locking assembly, and the suspension of double gear ring is realized.
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Description

Technical Field

[0001] This utility model relates to the field of double gear ring technology, and in particular to a storage device for a large double gear ring. Background Technology

[0002] Large double-gear rings have long faced numerous challenges in storage due to their large size and weight. Traditional storage methods often involve direct stacking or simple shelving: the former is prone to tooth deformation and surface coating wear caused by mutual compression between the gear rings, directly affecting product accuracy and subsequent performance; the latter makes it difficult to achieve orderly layered storage, resulting in low storage space utilization and inability to accurately position the gear rings, making subsequent retrieval inconvenient.

[0003] Meanwhile, existing storage equipment lacks a dedicated conveying and positioning structure. The gear rings to be stored must be manually transported to the storage location, which is not only inefficient but also poses a safety risk due to the weight of the gear rings. When the stored gear rings are taken out, it is also difficult to quickly and accurately transfer them to the output end, resulting in poor production process integration. Utility Model Content

[0004] The present invention aims to solve the above-mentioned defects and provide a storage device with a large double toothed ring.

[0005] In order to overcome the defects in the background technology, the technical solution adopted by this utility model to solve its technical problem is: a large double-gear storage device, including a frame, which is provided with a lifting mechanism that drives the lifting plate to move up and down in the frame. The lifting plate is provided with a rotating mechanism, and a guide post is vertically provided below the rotating mechanism. An outlet hole for matching and docking with the guide post is opened on the bottom surface of the frame. The conveying mechanism is horizontally set on the bottom surface of the frame and is used to accurately convey the double gear rings to be stored to the bottom of the guide post and to output the stored double gear rings. A support and locking assembly is placed on the bottom surface of the frame so that the guide post passes through the support and locking assembly when it moves down. Suspension storage action: When the guide post moves down through the double toothed ring to the preset position, the support locking component locks with the guide post, and then the guide post rises, supporting the double toothed ring through the support locking component; Gear ring output action: When the guide post moves down until the support locking assembly falls on the bottom surface of the frame, the guide post moves down a certain distance, and the guide post rotates at a preset angle through the rotating mechanism to disengage the support locking assembly from the guide post.

[0006] Further improvements include the conveying mechanism comprising a rectangular frame, within which multiple idlers are symmetrically arranged along the axial direction, a conveyor belt is wound around the idlers, and a transmission motor is mounted on the rectangular frame, with the output end of the transmission motor coaxially connected to the idlers.

[0007] Further improvements include the rotating mechanism comprising a rotating motor and a rotating support, with the rotating motor mounted above the lifting plate and the rotating support mounted below it, a mounting plate provided below the rotating support, and a guide column vertically connected below the mounting plate, the output shaft of the rotating motor passing through the lifting plate and connected to the mounting plate.

[0008] Further improvements include a locking support mechanism on the side wall of the frame for supporting the lifting plate.

[0009] Further improvements include the locking support mechanism comprising a locking cylinder and a support block mounted on the side wall of the frame, wherein the output end of the locking cylinder is connected to the support block, and a hidden groove for accommodating the support block is provided at a corresponding position on the inner wall of the frame.

[0010] Further improvements include the support locking assembly comprising an annular plate, wherein locking grooves are symmetrically formed on the inner wall of the annular plate, the bottom surface of the locking groove is connected to one end of a thrust spring, the other end of the thrust spring is connected to a thrust block, the end face of the thrust block facing the guide post is constructed into an arc-shaped surface, and the end of the thrust block with the arc-shaped surface is adapted to be embedded in a matching groove correspondingly formed on the guide post, and the guide post is provided with multiple sets of matching grooves equidistantly along the axial direction.

[0011] The beneficial effects of this utility model are as follows: This design achieves suspended storage of double gear rings through the cooperation of guide posts and support locking components, replacing the traditional stacking method and completely avoiding the problem of tooth deformation caused by mutual compression between gear rings; at the same time, the suspension structure prevents direct contact friction on the surface of the gear rings, which can effectively protect the surface coating of the gear rings, prevent wear, and ensure that the factory precision and subsequent performance of the gear rings are not affected by the storage process; multiple sets of matching slots can be adapted to multiple support locking components, thereby realizing the layered suspended storage of multiple double gear rings on the guide posts. Attached Figure Description

[0012] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0013] Figure 1 This is the front view of this utility model; Figure 2 This is a cross-sectional view of the assembly between the guide post and the support locking assembly in this utility model; Figure 3 This is a top view of the conveying mechanism in this utility model; Figure 4 yes Figure 1 Enlarged view of A in the middle; In the figure, 1-outlet hole, 2-frame, 3-lifting plate, 4-lifting mechanism, 5-rotating mechanism, 6-locking support mechanism, 7-double gear ring, 8-guide post, 9-conveying mechanism, 10-support locking assembly; 501 - Rotary motor, 502 - Rotary support, 503 - Mounting plate; 601-Locking cylinder, 602-Hidden groove, 603-Support block; 901-Transmission motor, 902-Rectangular frame, 903-Idler roller, 904-Transmission belt; 1001-Annular plate, 1002-Thrust block, 1003-Thrust spring, 1004-Locking groove, 1005-Matching groove. Detailed Implementation

[0014] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. All other embodiments obtained by those skilled in the art without creative effort in accordance with the embodiments of the basic utility model are within the scope of protection of this utility model.

[0015] refer to Figure 1 A large double-gear storage device includes a frame 2, which is provided with a lifting mechanism 4 that drives a lifting plate 3 to move up and down within the frame 2. A rotating mechanism 5 is provided on the lifting plate 3. A guide post 8 is vertically provided below the rotating mechanism 5 for driving the guide post 8 to rotate. An outlet hole 1 is provided on the bottom surface of the inner side of the frame 2 for matching and docking with the guide post 8, so as to be used for outlet when the guide post 8 moves up and down. The conveying mechanism 9 is horizontally set on the bottom surface of the frame 2, and is used to accurately convey the double gear ring 7 to be stored to the guide post 8 and to output the stored double gear ring 7. A support and locking assembly 10 is placed on the bottom surface of the inner side of the frame 2 so that the guide post 8 passes through the support and locking assembly 10 when it moves down. Suspension storage action: When the guide post 8 passes through the double toothed ring 7 and moves down to the preset position, the support locking component 10 locks with the guide post 8. Then the guide post 8 rises and the double toothed ring 7 is lifted by the support locking component 10 to realize the suspension storage of the double toothed ring 7 on the guide post 8. Gear ring output action: When the guide post 8 moves down to the support locking assembly 10 and falls on the inner bottom surface of the frame 2, the guide post 8 moves down a certain distance. The guide post 8 rotates at a preset angle through the rotating mechanism 5 so that the support locking assembly 10 is disengaged from the guide post 8. Then the guide post 8 can be pulled out from the support locking assembly 10. At this time, the double gear ring 7 is placed on the conveying mechanism 9 for output.

[0016] In a specific embodiment, refer to Figure 3The conveying mechanism 9 includes a rectangular frame 902, within which multiple idlers 903 are symmetrically arranged along the axial direction. A conveyor belt 904 is wound around the idlers 903. When the idlers 903 rotate, they drive the conveyor belt 904 to move synchronously, thereby driving the double toothed ring 7 placed on the conveyor belt 904 to move precisely below the guide post 8. A transmission motor 901 is provided on the rectangular frame 902 to provide power. The output end of the transmission motor 901 is coaxially connected to the idlers 903, and by driving the idlers 903 to rotate, it drives the entire conveyor belt 904 to move.

[0017] In a specific embodiment, refer to Figure 1 The rotating mechanism 5 includes a rotating motor 501 and a rotating support 502. The rotating motor 501 is installed above the lifting plate 3 and the rotating support 502 is installed below it. A mounting plate 503 is provided below the rotating support 502, and a guide column 8 is vertically connected below the mounting plate 503. The output shaft of the rotating motor 501 passes through the lifting plate 3 and is connected to the mounting plate 503. By driving the mounting plate 503 to rotate, the guide column 8 is driven to rotate synchronously, ensuring the stability of the rotation process of the guide column 8.

[0018] In a specific embodiment, to achieve continuous suspension support for the double gear ring 7, refer to Figure 4 The frame 2 has a locking support mechanism 6 on its side wall for supporting the lifting plate 3. The locking support mechanism 6 includes a locking cylinder 601 and a support block 603 installed on the side wall of the frame 2. The output end of the locking cylinder 601 is connected to the support block 603 and can drive the support block 603 to extend to support the lifting plate 3. A hidden groove 602 is provided at a corresponding position on the inner wall of the frame 2 to accommodate the support block 603 when it is retracted, so as to avoid interfering with the movement of the lifting plate 3.

[0019] In a specific embodiment, refer to Figure 2 The support and locking assembly 10 includes an annular plate 1001 as the support body. The inner wall of the annular plate 1001 is symmetrically provided with locking grooves 1004. The inner bottom surface of the locking groove 1004 is connected to one end of the thrust spring 1003. The other end of the thrust spring 1003 is connected to the thrust block 1002. The end face of the thrust block 1002 facing the guide post 8 is constructed into an arc-shaped surface. The end of the thrust block 1002 with the arc-shaped surface is adapted and embedded in the matching groove 1005 correspondingly opened on the guide post 8. The guide post 8 is provided with multiple sets of matching grooves 1005 at equal intervals along the axial direction to adapt to multiple support and locking assemblies 10 to achieve multi-layer lifting.

[0020] When the guide post 8 is inserted into the center hole of the annular plate 1001, the guide post 8 pushes the thrust block 1002 into the locking groove 1004 and compresses the thrust spring 1003 with the help of the guiding effect of the arc surface. When the guide post 8 moves down to the preset position, the thrust spring 1003 resets and pushes the thrust block 1002 so that one end with the arc surface is embedded in the corresponding matching groove 1005. At this time, the guide post 8 is locked with the support locking assembly 10. When the guide post 8 moves up, it can drive the annular plate 1001 to move synchronously, and then the annular plate 1001 supports the double toothed ring 7.

[0021] When the double gear ring 7 needs to be output, during the downward movement of the guide post 8, the double gear ring 7 will first be placed on the conveying mechanism 9. After the support locking component 10 is placed on the inner bottom surface of the frame 2, the guide post 8 will continue to move downward a certain distance. At this time, the guide post 8 will drive the thrust block 1002 to retract into the locking groove 1004 and thus disengage from the matching groove 1005. After that, the guide post 8 will rotate at a preset angle and move upward. At this time, the thrust block 1002 cannot be embedded because there is no matching groove 1005 on the outer circumference of the guide post 8, and the support locking component 10 will disengage from the guide post 8.

[0022] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A storage device with a large double-gear ring, characterized in that, The frame (2) includes a lifting mechanism (4) inside which a lifting plate (3) is installed to move up and down within the frame (2). A rotating mechanism (5) is installed on the lifting plate (3). A guide post (8) is vertically installed below the rotating mechanism (5). An outlet hole (1) for matching and docking with the guide post (8) is opened on the bottom surface of the frame (2). The conveying mechanism (9) is horizontally set on the inner bottom surface of the frame (2) and is used to accurately convey the double gear ring (7) to be stored to the guide post (8) and to output the stored double gear ring (7); A support locking assembly (10) is placed on the inner bottom surface of the frame (2) so that the guide post (8) passes through the support locking assembly (10) when it moves down. Suspension storage action: When the guide post (8) passes through the double toothed ring (7) and moves down to the preset position, the support locking component (10) locks with the guide post (8), and then the guide post (8) rises and supports the double toothed ring (7) through the support locking component (10). Gear output action: When the guide post (8) moves down to the support locking assembly (10) and falls on the inner bottom surface of the frame (2), the guide post (8) moves down a certain distance, and the guide post (8) rotates at a preset angle through the rotating mechanism (5) so that the support locking assembly (10) and the guide post (8) are disengaged.

2. The storage device with a large double-gear ring as described in claim 1, characterized in that: The conveying mechanism (9) includes a rectangular frame (902), in which multiple idlers (903) are symmetrically arranged along the axial direction. A conveyor belt (904) is wound around the idlers (903). A transmission motor (901) is provided on the rectangular frame (902), and the output end of the transmission motor (901) is coaxially connected to the idlers (903).

3. The storage device with a large double-gear ring as described in claim 1, characterized in that: The rotating mechanism (5) includes a rotating motor (501) and a rotating support (502). The rotating motor (501) is installed above the lifting plate (3) and the rotating support (502) is installed below it. A mounting plate (503) is provided below the rotating support (502), and a guide column (8) is vertically connected below the mounting plate (503). The output shaft of the rotating motor (501) passes through the lifting plate (3) and is connected to the mounting plate (503).

4. The storage device with a large double-gear ring as described in claim 1, characterized in that: The frame (2) has a locking support mechanism (6) on its side wall for supporting the lifting plate (3).

5. The storage device for a large double-gear ring as described in claim 4, characterized in that: The locking support mechanism (6) includes a locking cylinder (601) and a support block (603) installed on the side wall of the frame (2). The output end of the locking cylinder (601) is connected to the support block (603). A hidden groove (602) for accommodating the support block (603) is provided at a corresponding position on the inner wall of the frame (2).

6. The storage device with a large double-gear ring as described in claim 1, characterized in that: The support locking assembly (10) includes an annular plate (1001). The inner wall of the annular plate (1001) is symmetrically provided with locking grooves (1004). The bottom surface of the locking groove (1004) is connected to one end of the thrust spring (1003). The other end of the thrust spring (1003) is connected to the thrust block (1002). The end face of the thrust block (1002) facing the guide post (8) is constructed into an arc-shaped surface. The end of the thrust block (1002) with the arc-shaped surface is adapted to be embedded in the matching groove (1005) correspondingly opened on the guide post (8). The guide post (8) is provided with multiple sets of matching grooves (1005) at equal intervals along the axial direction.