Multi-station elevator rope head drilling positioning device

By designing a multi-station elevator rope head drilling positioning device, the loading assembly and discharge cylinders that are slidingly installed by the power component are solved, and efficient production of elevator rope heads and cooling liquid recovery is achieved.

CN223029138UActive Publication Date: 2025-06-27JIXI LIAOYUAN METAL PROD
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Patent Information

Application Number
CN202421294862.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-07
Publication Date
2025-06-27
Estimated Expiration
2034-06-07

AI Technical Summary

Technical Problem

In the prior art, the efficiency of the elevator rope head is low when drilling, which affects the production efficiency.

Method used

A multi-station elevator rope head drilling positioning device is designed, and the first loading assembly and the second loading assembly are slidably installed through the power component to realize the rapid loading and unloading of the elevator rope head, and combined with the coolant filter mesh plate and the unloading cylinder, the drilling processing efficiency is improved.

Benefits of technology

Through the automated loading and unloading process, the drilling efficiency of elevator rope heads is significantly improved, production efficiency is improved, and the initial recovery of coolant and the cleaning of metal debris is achieved.

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Abstract

The utility model relates to a multi-station elevator rope head drilling and positioning device, which relates to the technical field of elevator part production and comprises a drilling platform, and a first feeding assembly and a second feeding assembly are respectively arranged on two sides of the drilling platform in a sliding manner through power assemblies. The first feeding assembly and the second feeding assembly are slidably mounted on the drilling platform through the power assembly, so that after the first feeding assembly drives the elevator rope head to conduct drilling machining, the first feeding assembly is moved out of the drilling platform, and the second feeding assembly is moved to the drilling platform to conduct drilling; and at the moment, the process of discharging and re-feeding is conducted on the first feeding platform, and therefore the problem that the efficiency is low when the elevator rope head is drilled can be effectively solved.
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Description

Technical Field

[0001] The utility model relates to the technical field of elevator component production, in particular to a multi-station drilling and positioning device for elevator rope heads. Background Technique

[0002] The elevator rope head is one end of a section of rope connecting the motor and the guide rail on the elevator, which will directly affect the operation efficiency, stability and safety of the elevator. A cone sleeve is provided at the end of the elevator rope head. Usually, due to the special shape of the cone sleeve, drilling processing needs to be carried out on the cone sleeve.

[0003] For example, in the patent document with the application number 202021625530.2, a drilling and positioning device for an elevator rope head plate is disclosed, and it specifically discloses moving the positioning column according to the specifications of the rope head plate to realize the switching and positioning of various specifications.

[0004] In the above technical solution, it is possible to drill and position rope head plates of various models. When drilling and positioning the rope head plate, it is necessary to first place the raw material of the rope head plate under the drilling machine, and then use the drilling machine to punch the rope head plate. After punching, the punched rope head plate is unloaded, and after unloading, the feeding of the next rope head plate is realized.

[0005] In this process, during the processing of the rope head plate, it takes a long time to load and position the raw material of the rope head plate to fix the rope head plate, which affects the drilling processing efficiency of the rope head plate. During continuous processing, the production efficiency of the rope head plate cannot be effectively improved. Content of the Utility Model

[0006] The technical problem solved by the utility model is to solve the problem of low efficiency in drilling the elevator rope head in the prior art.

[0007] The utility model can be realized by the following technical solutions: A multi-station drilling and positioning device for elevator rope heads, including a drilling platform, and a first feeding component and a second feeding component are slidably arranged on both sides of the drilling platform through power components.

[0008] A further technical improvement of the utility model lies in that: The first feeding component includes a feeding support plate, a feeding chute for placing the elevator rope head is arranged on the feeding support plate, and a clamping mechanism for limiting the elevator rope head is arranged on the feeding chute.

[0009] A further technical improvement of the utility model lies in that: The clamping mechanism includes a clamping block, the clamping block is installed at the output end of the pushing cylinder, and the pushing cylinder is fixedly connected with the feeding support plate.

[0010] A further technical improvement of the present utility model lies in that: a flow-through groove for the outflow of the coolant is provided on the feeding support plate, and a coolant filtering mesh plate is mounted on the flow-through groove.

[0011] A further technical improvement of the present utility model lies in that: the power assembly includes a connecting telescopic rod, the connecting telescopic rod is fixed on the drilling platform, and the output end of the connecting telescopic rod is fixedly connected to the feeding support plate.

[0012] A further technical improvement of the present utility model lies in that: a blanking cylinder is fixed on the feeding support plate, and a blanking push plate for realizing the blanking of the elevator rope head is arranged at the output end of the blanking cylinder.

[0013] Compared with the prior art, the present utility model has the following beneficial effects:

[0014] 1. In this application, the first feeding component and the second feeding component are respectively slidably mounted on the drilling platform through the power assembly. After the first feeding component drives the elevator rope head to perform drilling processing, the first feeding component is removed from the drilling platform, and the second feeding component is moved to the drilling platform for drilling. At this time, the process of blanking and re-feeding the first feeding platform is carried out, so as to effectively improve the problem of low efficiency during the drilling of the elevator rope head.

[0015] 2. In this application, the coolant filtering mesh plate is used to place the elevator rope head, and at the same time, the coolant filtering mesh plate is installed at the position of the flow-through groove, so that the coolant generated during the drilling process can be filtered through the coolant filtering mesh plate to realize the preliminary recovery of the coolant. At this time, the metal chips are retained on the coolant filtering mesh plate, which is convenient for cleaning the metal chips.

[0016] 3. In this application, a blanking cylinder is fixed on the feeding support plate, and a blanking push plate for pushing and blanking the elevator rope head is arranged at the output end of the blanking cylinder. After the drilling processing is completed, the blanking push plate is used to move horizontally under the action of the blanking cylinder, so as to realize the rapid blanking of the elevator rope head and further improve the production efficiency of the elevator rope head. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] For the convenience of those skilled in the art to understand, the following further describes the present utility model with reference to the accompanying drawings.

[0018] Figure 1 It is a schematic diagram of the relative positions of the first feeding component and the second feeding component of the present utility model;

[0019] Figure 2 It is a schematic diagram of the structure of the second feeding component of the present utility model;

[0020] Figure 3 It is a schematic diagram of the position of the bottom sliding strip of the present utility model;

[0021] Figure 4 Front view of the first feeding component and the second feeding component of the present utility model;

[0022] Figure 5 For the present utility model Figure 4 Partial enlarged view at A in;

[0023] Figure 6 Schematic diagram of elevator rope head clamping of the present utility model.

[0024] In the figure: 1, power platform; 2, power component; 21, connecting base; 22, connecting telescopic rod; 3, first feeding component; 31, feeding chute; 32, clamping block; 33, pushing cylinder; 34, side limiting plate; 35, coolant filtering mesh plate; 36, feeding support plate; 37, bottom sliding strip; 38, flow-through groove; 39, receiving limiting column; 310, receiving plate; 311, inclined limiting plate; 312, blanking push plate; 313, blanking cylinder; 4, drilling platform; 5, first chute; 6, second feeding component. Specific embodiments

[0025] To further elaborate on the technical means and effects adopted by the present utility model to achieve the intended utility model purpose, the following, in conjunction with the accompanying drawings and preferred embodiments, details the specific embodiments, structures, features and their effects of the present utility model as follows.

[0026] Please refer to Figures 1-6As shown in the figure, a multi-station drilling positioning device for elevator rope sockets includes a drilling platform 4. A corresponding drilling device is arranged directly above the drilling platform 4. The drilling motor drives the drill to perform drilling operations on the corresponding positions of the elevator rope sockets. A power platform 1 is fixed on the side of the drilling platform 4. A first feeding component 3 and a second feeding component 6 are respectively arranged on the power platform 1 through a power component 2. The first feeding component 3 and the second feeding component 6 are respectively slidably connected to the drilling platform 4. During use, by starting the power component 2, when the first feeding component 3 realizes the feeding of the elevator rope socket, the first feeding component 3 is slid above the drilling platform 4. At this time, the second feeding component 6 is away from the drilling platform 4, and the elevator rope socket fixed on the first feeding component 3 is drilled. When the second feeding component 6 realizes the feeding of the elevator rope socket, then after the drilling of the elevator rope socket on the first feeding component 3 is completed, by starting the power component 2, the first feeding component 3 is moved away from the drilling platform 4, and the second feeding component 6 is moved onto the drilling platform 4 to drill the elevator rope socket on the second feeding component 6, unload the elevator rope socket on the first feeding component 3, and load the first feeding component 3. During this process, through the combined action of the first feeding component 3 and the second feeding component 6, when the drill drills the elevator rope socket, it can automatically unload another processed elevator rope socket and load another feeding component, saving the drilling time of the elevator rope socket and thus ensuring the production efficiency of the elevator rope socket.

[0027] The power component 2 includes a connecting base 21. That is, two groups of connecting telescopic rods 22 are fixed on the power platform 1. The two ends of the connecting telescopic rod 22 are respectively fixedly installed with a connecting base 21. The two groups of connecting bases 21 are respectively connected to the first feeding component 3 and the second feeding component 6. By starting the connecting telescopic rod 22, the movement of the first feeding component 3 and the second feeding component 6 is controlled to realize the alternating movement of the first feeding component 3 and the second feeding component 6 onto the drilling platform 4 to improve the processing efficiency of the elevator rope socket.

[0028] Specifically, the structures of the first feeding component 3 and the second feeding component 6 are the same. Taking the first feeding component 3 as an example, the first feeding component 3 includes a feeding support plate 36. Symmetrically fixed on the feeding support plate 36 are side limiting plates 34 for limiting the direction of the elevator rope socket. A pushing cylinder 33 is fixed between the side limiting plates 34. A clamping block 32 for clamping the elevator rope socket is arranged at the output end of the pushing cylinder 33. During use, first, according to the shape of the elevator rope socket, the elevator rope socket is placed between the side limiting plates 34. Then, by starting the pushing cylinder 33, the clamping blocks 32 move towards each other to clamp the elevator rope socket located between the side limiting plates 34, thereby realizing the limiting effect on the elevator rope socket.

[0029] During this process, the side limiting plate 34 and the feeding support plate 36 form a feeding chute 31. An arc-shaped flow groove 38 is provided at the bottom of the feeding chute 31. The flow groove 38 is used to realize the outflow of the coolant. A coolant filtering mesh plate 35 for placing the elevator rope head is detachably arranged above the flow groove 38. When drilling the elevator rope head, the elevator rope head is placed on the coolant filtering mesh plate 35. When drilling the elevator rope head, a large amount of mixed liquid containing metal chips is generated. The mixed liquid includes coolant and metal chips. The coolant passes through the coolant filtering mesh plate 35 and is filtered into the flow groove 38, and the preliminary recovery of the coolant is realized by using the flow groove 38, while the metal chips are retained above the coolant filtering mesh plate 35.

[0030] In order to realize the removal of the coolant filtering mesh plate 35, a receiving limit post 39 is cooperatively arranged on the coolant filtering mesh plate 35, and a receiving plate 310 is fixed on the side of the flow groove 38. The receiving plate 310 is used to cooperate with the receiving limit post 39.

[0031] In order to realize the relative sliding of the feeding support plate 36 and the drilling platform 4, a first chute 5 is opened on the drilling platform 4, and a bottom sliding strip 37 is fixed at the bottom of the feeding support plate 36. The bottom sliding strip 37 is slidably connected with the first chute 5, so as to realize the relative sliding of the first feeding assembly 3 and the second feeding assembly 6 and the drilling platform 4 respectively.

[0032] As a further embodiment of the present application, in order to realize the discharging function of the elevator rope head, a discharging air cylinder 313 is fixed between adjacent side limiting plates 34. The output end of the discharging air cylinder 313 is provided with a discharging push plate 312 for realizing the discharging of the elevator rope head. An inclined limiting plate 311 for limiting the elevator rope head is fixed at the top of the side limiting plate 34. That is, in use, first place the elevator rope head on the coolant filtering mesh plate 35, and then start the discharging air cylinder 313, so that the discharging push plate 312 pushes the elevator rope head to move horizontally until the end of the elevator rope head reaches the set position. The clamping block 32 moves in opposite directions to realize the clamping function of the elevator rope head and prevent the elevator rope head from moving. Then, after drilling the elevator rope head, continue to start the discharging air cylinder 313, and use the discharging push plate 312 to discharge from between adjacent inclined limiting plates 311. During this process, the shape of the inclined limiting plate 311 is used to judge whether the elevator rope head is placed obliquely. That is, when the width of the elevator rope head is greater than the distance between the inclined limiting plates 311, it is judged that the elevator rope head is placed obliquely and the elevator rope head needs to be re-placed. Therefore, in the present application, when placing the elevator rope head on the coolant filtering mesh plate 35, first use shooting and positioning to judge the position of the elevator rope head and adjust the elevator rope head to avoid deviation in the placement angle of the elevator rope head.

[0033] When the utility model is in use, first place the elevator rope head on the coolant filtering mesh plate 35, and use shooting and positioning to shoot the size of the widest side of the elevator rope head to determine whether there is a problem with the placement angle of the elevator rope head. If there is no problem, start the blanking cylinder 313 to drive the blanking push plate 312 to move, so as to push the elevator rope head to the set position, and use the opposite movement of the clamping blocks 32 to realize the clamping effect on the elevator rope head;

[0034] By starting the connecting telescopic rod 22, when the first feeding component 3 realizes the feeding of the elevator rope head, slide the first feeding component 3 above the drilling platform 4. At this time, the second feeding component 6 is far away from the drilling platform 4, and drill the elevator rope head fixed on the first feeding component 3. When the second feeding component 6 realizes the feeding of the elevator rope head, then after the drilling of the elevator rope head on the first feeding component 3 is completed, start the power component 2 to move the first feeding component 3 in the direction away from the drilling platform 4, move the second feeding component 6 to the drilling platform 4, drill the elevator rope head on the second feeding component 6, discharge the elevator rope head on the first feeding component 3, and feed the first feeding component 3. During this process, through the combined action of the first feeding component 3 and the second feeding component 6, when the drill drills the elevator rope head, it can automatically discharge another processed elevator rope head and feed another feeding component, saving the drilling time of the elevator rope head, thus ensuring the production efficiency of the elevator rope head;

[0035] When discharging the elevator rope head, continue to start the blanking cylinder 313, and use the blanking push plate 312 to discharge from between the adjacent inclined limiting plates 311.

[0036] The above is only a preferred embodiment of the present invention, and does not impose any form of limitation on the present invention. Although the present invention has been disclosed above with a preferred embodiment, it is not intended to limit the present invention. Any person skilled in the art can make some changes or modifications to the above-disclosed technical content to form an equivalent embodiment with equivalent changes, but as long as the technical content of the present invention is not departed from, any brief modifications, equivalent changes and modifications made to the above embodiments based on the technical essence of the present invention still fall within the scope of the technical solution of the present invention.

Claims

1. A multi-station elevator rope end drilling and positioning device, comprising a drilling platform (4), characterized in that: A first loading assembly (3) and a second loading assembly (6) are slidably arranged on both sides of the drilling platform (4) through a power assembly (2); the first loading assembly (3) comprises a loading support plate (36), a loading chute (31) for placing an elevator rope end is arranged on the loading support plate (36), and a clamping mechanism for limiting the elevator rope end is arranged on the loading chute (31); the clamping mechanism comprises a clamping block (32), the clamping block (32) is installed at the output end of the pushing cylinder (33), and the pushing cylinder (33) and the loading support plate (36) are fixedly connected.

2. A multi-station elevator rope end drilling and positioning device according to claim 1, characterized in that: The feeding support plate (36) is provided with a circulation groove (38) for enabling the coolant to flow out, and a coolant filtering mesh plate (35) is mounted on the circulation groove (38).

3. A multi-station elevator rope end drilling and positioning device according to claim 1, characterized in that: The power assembly (2) comprises a connecting telescopic rod (22), the connecting telescopic rod (22) is fixed on the drilling platform (4), and the output end of the connecting telescopic rod (22) is fixedly connected to a loading support plate (36).

4. A multi-station elevator rope end drilling and positioning device according to claim 1, characterized in that: A material unloading cylinder (313) is fixed on the material unloading support plate (36), and a material unloading push plate (312) for unloading the elevator rope end is provided at the output end of the material unloading cylinder (313).

Citation Information

Patent Citations

  • Elevator rope hitch plate drilling positioning device

    CN212917704U