Discharging device of portable rope processing equipment
By designing the feeding device of the hand rope processing equipment, automatic traction, cutting and quantitative feeding are realized, which solves the problem of low processing efficiency of hand ropes in the prior art, and improves the discharge efficiency and product consistency.
Patent Information
- Application Number
- CN202421726186.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-20
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2034-07-20
AI Technical Summary
The existing hand rope processing technology is inefficient, requires manual operation, and cannot ensure the consistency and efficient discharge of products.
A feeding device for hand rope processing equipment is designed, including a traction mechanism, cutting mechanism and feeding mechanism. Through automated traction, cutting and quantitative discharge, efficient processing and discharge of hand ropes are achieved.
It improves the discharge efficiency of the hand rope, reduces labor costs, and ensures consistent product and efficient production.
Smart Images

Figure CN222960136U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of hand-held rope processing equipment, and particularly relates to a discharging device of hand-held rope processing equipment. Background Art
[0002] A hand-held rope is a rope used for carrying or lifting items, commonly seen on packages such as handbags, gift boxes, and cartons, for facilitating the carrying and handling of items. The materials of hand-held ropes are diverse, including but not limited to paper ropes, nylon ropes, low-elasticity ropes, cotton ropes, etc., and each material has its own characteristics and applicable scenarios. For example, paper ropes are usually used for environmental protection bags and shopping bags because of their environmental protection, wear resistance, strong tensile strength, and no odor; while nylon ropes and low-elasticity ropes are favored because of their delicate appearance and strong durability.
[0003] In the prior art, a handle of a handbag disclosed in the patent of CN2674920Y, wherein the hand-held rope includes a rope body and sleeves arranged at both ends of the rope body. The traditional processing method of this hand-held rope is generally manual processing, or manual processing with the help of some simple molds, jigs, and tools. Thus, the overall processing efficiency is relatively low. For example, when processing, it is necessary to manually cut out the same length of rope, and for another example, when discharging, it is generally necessary to discharge a specified number of hand-held ropes in groups, or even pack a group of hand-held ropes before discharging. Summary of the Utility Model
[0004] The purpose of the utility model is to overcome the deficiencies existing in the prior art and provide a discharging device of hand-held rope processing equipment.
[0005] The technical solution adopted by the utility model is as follows: This application provides a discharging device of hand-held rope processing equipment, including:
[0006] A traction mechanism, which is used to traction the movement of the rope;
[0007] A cutting mechanism, which is used to cut in the middle of each of the three sheets of the hand-held rope in the first stage to form the hand-held rope in the second stage;
[0008] And a discharging mechanism, which is used to output the hand-held ropes in the second stage in groups according to a specified quantity, or to pack and output a specified quantity of hand-held ropes in the second stage in groups.
[0009] In some embodiments, the traction mechanism includes an upper conveyor belt, a lower conveyor belt, and a positioning component. The length of the upper conveyor belt is less than that of the lower conveyor belt. The hand-held rope in the first stage is clamped between the upper conveyor belt and the lower conveyor belt and is stretched and moved. Both the upper conveyor belt and the lower conveyor belt include synchronous wheels and conveyor belts. The positioning component is used to prevent the hand-held rope in the first stage from shifting when being conveyed between the upper conveyor belt and the lower conveyor belt.
[0010] In some embodiments, the traction mechanism includes a pressing assembly, which includes a pressing bracket, a pressing slide rail, a pressing seat, a pressing screw, a pressing spring, a pressing adjustment bolt, and a pressing wheel. The pressing slide rail is arranged along the height direction of the pressing bracket. The pressing seat is slidably arranged on the pressing slide rail. An installation rod is arranged at the upper part of the pressing bracket. The pressing screw is threadedly connected to the installation rod. The pressing adjustment bolt is arranged at one end of the pressing screw passing through the installation rod. The pressing spring abuts between the pressing adjustment bolt and the pressing seat. The pressing wheel is rotatably arranged on the pressing seat and abuts against the upper conveyor belt.
[0011] In some embodiments, the cutting mechanism is arranged downstream of the traction mechanism. The cutting mechanism includes a cutting auxiliary plate and a cutting knife. The cutting auxiliary plate and the cutting knife are respectively arranged on both sides of the upper conveyor belt away from the mold mechanism. Both the cutting auxiliary plate and the cutting knife are provided with cutting edges. When the stage-one handle rope is conveyed between the upper conveyor belt and the lower conveyor belt, one side of it contacts the cutting auxiliary plate.
[0012] In some embodiments, the discharging mechanism includes a pushing component and a quantitative storage component. The pushing component includes a pushing plate and a driving component arranged on one side of the lower conveyor belt. Both the cutting mechanism and the pushing plate are driven by the driving component to act synchronously. The pushing component is used to push the stage-two handle rope cut by the cutting mechanism onto the quantitative storage component.
[0013] In some embodiments, the quantitative storage component includes a storage frame, which has a feed inlet and a discharge outlet. A door component is arranged at the discharge outlet. The door component has an open state and a closed state. During normal processing, the door component is in the closed state. When a certain number of handle ropes are stored in the storage frame, the door component switches from the closed state to the open state.
[0014] In some embodiments, the door component includes two door panels, a driving cylinder, a moving rack, and two gears. The two door panels are rotatably arranged at the discharge outlet. The two gears are rotatably arranged on the storage frame and rotate synchronously with the two door panels respectively. The moving rack is arranged between the two gears and meshes with them. The output shaft of the driving cylinder is connected to the moving rack. The moving rack is slidably arranged on the storage frame along the direction from the feed inlet to the discharge outlet. The driving cylinder drives the moving rack to move, causing the two door panels to rotate to realize the open state and the closed state of the door component.
[0015] In some embodiments, the packing output of the discharging mechanism is to output after winding the packaging film. A first frame and a second frame are arranged below the storage frame. A film winding mechanism is arranged between the first frame and the second frame. The film winding mechanism is used to wind the packaging film around a specified number of stage-two handle ropes.
[0016] In some embodiments, the packing output of the discharging mechanism is output after bundling. The discharging mechanism further includes a conveyor belt assembly and a bundling assembly. The conveyor belt assembly is arranged below the discharging port, and the bundling assembly is arranged at the end of the conveyor belt assembly. The conveyor belt assembly is used to convey a specified number of stage-two drawstrings through the bundling assembly for bundling.
[0017] The beneficial effects of the present utility model are as follows: In the present utility model, the stage-one drawstring is pulled by the traction mechanism to move through the cutting mechanism to achieve automatic cutting, and the discharging mechanism can also achieve automatic quantitative discharging of the drawstring, and even automatic quantitative packing and discharging, greatly improving the discharging efficiency of the drawstring and saving labor costs. Description of the Drawings
[0018] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present utility model. For those of ordinary skill in the art, obtaining other drawings based on these drawings without creative efforts still belongs to the scope of the present utility model.
[0019] Figure 1 It is a schematic diagram of a processing device for a drawstring in Embodiment 1;
[0020] Figure 2 It is a schematic diagram of the traction mechanism in Embodiment 1 Figure 1 ;
[0021] Figure 3 It is a schematic diagram of the traction mechanism in Embodiment 1 Figure 2 ;
[0022] Figure 4 It is a schematic diagram of the traction mechanism and the cutting mechanism in Embodiment 1;
[0023] Figure 5 It is a schematic diagram of the mold mechanism in Embodiment 1;
[0024] Figure 6 It is a schematic diagram of the middle mold base in Embodiment 1;
[0025] Figure 7 It is a schematic diagram of the moving mold assembly in Embodiment 1;
[0026] Figure 8 It is a schematic diagram of the fixed mold assembly in Embodiment 1 Figure 1 ;
[0027] Figure 9 It is a schematic diagram of the fixed mold assembly in Embodiment 1 Figure 2 ;
[0028] Figure 10 Schematic diagram of the discharging mechanism in Embodiment 1 Figure 1 ;
[0029] Figure 11 Schematic diagram of the discharging mechanism in Embodiment 1 Figure 2 ;
[0030] Figure 12 Schematic diagram of the door assembly in Embodiment 1;
[0031] Figure 13 Schematic diagram of the sheet material in Stage 1 of Embodiment 1;
[0032] Figure 14 Schematic diagrams of the sheet material in Stage 2, the sheet material in Stage 3, the punching die head, and the punching die head of the prior art in Embodiment 1;
[0033] Figure 15 Schematic diagram of the carrying rope in Stage 1 of Embodiment 1;
[0034] Figure 16 Schematic diagram of the carrying rope in Stage 2 of Embodiment 1;
[0035] Figure 17 Schematic diagram of the plastic sheet of the prior art in Embodiment 1;
[0036] Figure 18 Schematic diagram of a processing device for a carrying rope in Embodiment 2;
[0037] Figure 19 Schematic diagram of the moving die assembly in Embodiment 2;
[0038] Figure 20 Partial schematic diagram of the die mechanism in Embodiment 2;
[0039] Figure 21 Partial schematic diagram of the discharging mechanism in Embodiment 2. Detailed implementation manners
[0040] The following description provides specific application scenarios and requirements of this specification, aiming to enable those skilled in the art to manufacture and use the content in this specification. For those skilled in the art, various partial modifications to the disclosed embodiments are obvious, and the general principles defined here can be applied to other embodiments and applications without departing from the spirit and scope of this specification. Therefore, this specification is not limited to the shown embodiments, but has the broadest scope consistent with the claims.
[0041] In the description of the present application, it should be noted that unless otherwise clearly specified and defined, the orientation or positional relationships indicated by the terms "longitudinal", "lateral", "radial", "length", "width", "thickness", "upper", "lower", "left", "right", "front", "rear", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. are based on the orientation or positional relationships shown in the drawings. These terms are mainly used to better describe the present application and its embodiments, and are not used to limit that the indicated devices, elements or components must have a specific orientation or be constructed and operated in a specific orientation.
[0042] Secondly, the terms "first", "second" and similar words do not denote any order, quantity or importance, but are only used to distinguish different components, and should not be construed as limiting the embodiments of the present application.
[0043] In addition, the terms "installed", "set", "provided with", "connected", "linked" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral structure; it can be a mechanical connection or an electrical connection; it can be directly connected, or indirectly connected through an intermediate medium, or there is internal communication between two devices, elements or components.
[0044] For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to specific circumstances.
[0045] Regarding the drawings of the present application, it should be clearly understood that the drawings are only for the purpose of illustration and description, and are not intended to limit the scope of this specification. It should also be understood that the drawings are not drawn to scale.
[0046] Embodiment 1:
[0047] As Figures 1 to 17 shown, in this embodiment, a processing device for a hand rope is provided to realize the automatic production of the hand rope. The hand rope can refer to a handbag handle disclosed in the patent with the publication number CN2674920Y. Specifically, the hand rope includes a rope body and sleeves provided at both ends of the rope body. The rope body is generally a wire rope or a nylon rope, and preferably a cored wire rope. The sleeve is usually made of a plastic sheet. The normal unfolded state of the sleeve is as Figure 17 shown, that is, in a T shape or a T-like shape. The end of the vertical part of the T shape is rounded or the two sides are rounded. The traditional processing method is to first cut out the plastic sheet through a die, and then wrap the plastic sheet of this shape around one end of the rope body, that is, bend the horizontal part of the T-shaped plastic sheet around the rope body until the two ends of the horizontal part overlap, and at the same time perform heat sealing to form an annular horizontal part and fix it to the rope body.
[0048] Traditional processing methods are generally manual processing, or manual processing with the aid of some simple molds. In this way, the overall processing efficiency is low, the rejection rate of products is high, and the consistency of products cannot be guaranteed.
[0049] In this embodiment, in order to achieve efficient and continuous production, a processing method for a handle rope is proposed, including the following steps:
[0050] Step a: Feed the raw material wire rope and the raw material sheet, where, as Figure 13 shown, the raw material sheet is called the stage-one sheet, which is generally in a roll;
[0051] Step b: Cut the stage-one sheet into stage-two sheets. As Figure 14 shown, the stage-two sheets are in a continuous cross shape;
[0052] Step c: Cut the stage-two sheets into individual stage-three sheets. As Figure 14 shown, C represents a stage-three sheet, which is equivalent to combining the horizontal parts of the original two plastic sheets. The stage-three sheets are in a cross shape or a quasi-cross shape;
[0053] Step d: Heat-seal and fix a stage-three sheet on the wire rope at regular intervals to form a stage-one handle rope as Figure 15 shown; among them, each time a stage-three sheet is cut off, it is heat-sealed and fixed on the wire rope;
[0054] Step e: Cut in the middle of each stage-three sheet on the stage-one handle rope, that is, cut at D in Figure 15 to form a stage-two handle rope as Figure 16 shown, that is, the finished handle rope;
[0055] Secondly, in order to improve the connection strength between the plastic sheet and the wire rope, generally, before step d, heat-sealing glue, such as polyurethane glue, acrylic glue, etc., needs to be sprayed on the wire rope.
[0056] Based on the above processing method, an automated processing device is proposed. Specifically, the processing device for this handle rope includes a wire rope rack 1, a sheet feeding mechanism, a mold mechanism 2, a gluing mechanism 3, a traction mechanism 4, a cutting mechanism 5, a discharging mechanism 6, a power mechanism, and a control system. It should be understood that in this device, those that need to be driven in each mechanism can be driven by one driving source or multiple driving sources. Only the transmission mechanism between the driving source and each mechanism needs to be adjusted. Those skilled in the art should be able to set it according to requirements. Therefore, in this embodiment, the power mechanism represents the driving source and the corresponding transmission mechanism involved in each mechanism that needs to be driven, and the driving sources required for each mechanism will not be described in detail one by one. Those skilled in the art should know how to set the driving sources required for such mechanisms.
[0057] AsFigure 1 As shown in the figure, the wire rope rack 1 and the traction mechanism 4 are respectively arranged on both sides of the die mechanism 2. The wire rope is pulled out from the wire rope rack 1 by the traction mechanism 4 and passes through the die mechanism 2 along the first direction. The sheet material feeding mechanism is used to convey the stage-one sheet material to the die mechanism 2 along the second direction, and the first direction is perpendicular to the second direction. The die mechanism 2 is used to punch the stage-one sheet material into stage-two sheet materials, cut the stage-two sheet materials into stage-three sheet materials, and thermally seal and fix them on the wire rope at intervals to form stage-one hand ropes, that is, wire ropes thermally sealed with stage-three sheet materials. The gluing mechanism 3 is used to spray hot melt adhesive on the wire rope before thermal sealing. The cutting mechanism 5 is used to cut in the middle of each stage-three sheet material on the stage-one hand rope to form stage-two hand ropes. The discharging mechanism 6 is used to output the stage-two hand ropes in groups according to the specified quantity, or pack and output a group of stage-two hand ropes with the specified quantity.
[0058] Through the above settings, the efficient and continuous automated production of hand ropes is realized, the processing efficiency is improved, the defective rate of products is reduced at the same time, and the consistency of products is ensured.
[0059] A plurality of guide wheels are arranged on the wire rope rack 1. One end of the wire rope stacked in the material frame passes through each guide wheel in turn and then passes through the die mechanism 2, which can straighten the wire rope first and avoid winding when the wire rope is conveyed.
[0060] Further, a conveying seat is arranged between the wire rope rack 1 and the die mechanism 2. An adjustable-diameter conveying channel is arranged on the conveying seat. The wire rope passes through the conveying channel first and then through the die mechanism 2. The diameter of the conveying channel is adapted to the wire diameter of the wire rope, so as to ensure that there is no knot on the wire rope. Among them, the structure for adjusting the diameter of the conveying channel can be that a threading plate is arranged on the conveying seat, the conveying channel is arranged on the threading plate, and the threading plate can be set to be detachable and / or adjustable. One threading plate can be provided with a conveying channel of only one diameter, or multiple diameters of conveying channels.
[0061] As Figures 2 to 4 shown in the figure, the traction mechanism 4 includes an upper conveyor belt 40, a lower conveyor belt 41, a positioning component 42 and a pressing component 43. The length of the upper conveyor belt 40 is less than that of the lower conveyor belt 41. The stage-one hand rope is clamped between the upper conveyor belt 40 and the lower conveyor belt 41 and is stretched and moved. Both the upper conveyor belt 40 and the lower conveyor belt 41 include synchronous wheels and conveyor belts. The synchronous wheels of the upper conveyor belt 40 and the lower conveyor belt 41 are linked by a gear 613 group. This structure of the conveyor belt is a commonly used conveying mechanism in the automation field, and those skilled in the art should understand. Among them, by setting different traction speeds of the traction mechanism 4, the production of hand ropes with different length specifications can be realized.
[0062] The positioning assembly 42 is used to prevent the stage-one handle rope from shifting when being conveyed between the upper conveyor belt 40 and the lower conveyor belt 41. It includes two positioning rods 420 arranged at intervals, and the stage-one handle rope passes through between the two positioning rods 420. The two positioning rods 420 are arranged at one end of the upper conveyor belt 40 close to the die mechanism 2, and the positioning assembly 42 can also be arranged at the other end. Preferably, the distance between the two positioning rods 420 is adjustable. It should be understood that there are various types of positioning assemblies 42. For example, the structure of the positioning assembly 42 can also be a positioning plate replacing the two positioning rods 420, and a positioning groove is arranged on the positioning plate.
[0063] The pressing assembly 43 includes a pressing bracket 430, a pressing slide rail 431, a pressing seat 432, a pressing screw 433, a pressing spring 434, a pressing adjustment bolt 435 and a pressing wheel 436. The pressing slide rail 431 is arranged along the height direction of the pressing bracket 430. The pressing seat 432 is slidably arranged on the pressing slide rail 431. An installation rod is arranged at the upper part of the pressing bracket 430. The pressing screw 433 is threadedly connected to the installation rod. The pressing adjustment bolt 435 is at least one, preferably two, and is arranged at one end of the pressing screw 433 passing through the installation rod. The pressing spring 434 abuts between the pressing adjustment bolt 435 and the pressing seat 432. The pressing wheel 436 is rotatably arranged on the pressing seat 432 and abuts against the upper conveyor belt 40. Specifically, the pressing wheel 436 abuts against the conveyor belt of the upper conveyor belt 40. Under the action of the pressing assembly 43, it is ensured that the upper conveyor belt 40 and the lower conveyor belt 41 form sufficient traction force for the stage-one handle rope during conveying. Among them, the pressing adjustment bolt 435 can adjust the pre-tightening force of the pressing spring 434.
[0064] As Figures 5 to 9 shown, the die mechanism 2 includes:
[0065] A middle die base 20, on which a sheet channel 200 is longitudinally arranged and a punching die opening 201 is transversely arranged; among them, the sheet loading mechanism is used to convey the stage-one sheet to the sheet channel 200 and can adjust the conveying speed of the stage-one sheet. The specific structure of the sheet loading mechanism can refer to the corresponding loading device in the technical field of automation equipment. In this embodiment, the width of the sheet channel 200 is greater than the width of the stage-one sheet.
[0066] The moving die assembly 21 located on one side of the middle die base 20. The moving die assembly 21 includes a first slide rail 210, a punching die 211, a moving forming die 212 and a driver. The first slide rail 210 is arranged along the direction of the punching die opening 201. The punching die 211 is slidably arranged on the first slide rail 210, and a punching die head 213 adapted to the punching die opening 201 is arranged thereon. The driver drives the punching die 211 to move on the first slide rail 210. The moving forming die 212 is arranged above the punching die 211 and moves synchronously therewith. A first forming groove 214 is arranged on the side of the moving forming die 212 facing the middle die base 20. Among them, the punching die head 213 and the punching die 211 are integrally or detachably connected. Preferably, a detachable connection is adopted. Specifically, an installation channel is arranged on the punching die 211, and the punching die head 213 is fixed in the installation channel by bolts. Both ends of the punching die head 213 can be used for punching. Among them, there are two punching die openings 201 and two punching die heads 213. The two punching die openings 201 are located on both sides of the sheet channel 200 and are communicated therewith.
[0067] And the fixed die assembly 22 located on the other side of the middle die base 20. The fixed die assembly 22 includes a fixed forming die 220. A second forming groove 221 adapted to the first forming groove 214 is arranged on the fixed forming die 220. The front end of the fixed forming die 220 is a forming end, and the second forming groove 221 is arranged at the front end of the fixed forming die 220. A heating assembly 222 is arranged on the fixed forming die 220 near the second forming groove 221. Preferably, an installation hole is arranged below the second forming groove 221, and a heating rod is inserted into the installation hole. The heating rod is connected to a heating device.
[0068] Among them, when the moving die assembly 21 and the fixed die assembly 22 are closed, the first forming groove 214 and the second forming groove 221 are aligned to form a forming cavity, and the lower edges of the two are aligned to cut the stage-two sheet, forming a stage-three sheet. Specifically, a butt plane can be arranged on one of the lower edges of the first forming groove 214 and the second forming groove 221, and a cutting edge 2140 can be arranged on the other. Preferably, the cutting edge 2140 is arranged on the lower edge of the first forming groove 214. In this way, when the moving forming die 212 moves and is closed with the fixed forming die 220, the stage-two sheet can be cut into a stage-three sheet.
[0069] In this embodiment, the forming cavity is generally circular, oval or quasi-circular, and is generally adapted to the wire rope.
[0070] Through the above settings, the die mechanism 2 can punch the stage-one sheet into a stage-two sheet, then cut it into a stage-three sheet and thermally seal and fix it on the wire rope, reducing the processing difficulty of the handle rope and greatly improving the processing efficiency of the handle rope.
[0071] It further includes a frame 7, and each mechanism is arranged on the frame 7. A blanking port 70 is arranged on the frame 7 on the side of the middle mold base 20 close to the fixed mold assembly 22. The broken materials punched by the punching die head 213 fall from the blanking port 70, avoiding accumulation in the mold mechanism 2.
[0072] In this embodiment, the cross-section of the punching die orifice 201 and the punching die head 213 is in a T shape, and the connection part of the horizontal part and the vertical part of the T shape has a smooth transition, that is, a fillet is provided. As Figure 14 shown in A, it is the punching die head 213. When using this punching die head 213 to punch a stage one sheet, a stage two sheet can be punched, and at the same time, different specifications of stage two sheets can be punched by changing the conveying speed of the stage one sheet, without replacing the entire mold, reducing the production cost. In particular, in the prior art, the punching die heads used for punching stage one sheets mostly adopt a concave shape structure. Such a punching die head can only punch out stage two sheets of a single specification. As Figure 14 shown in B, it is the punching die head in the prior art.
[0073] The upper edge of the first forming groove 214 extends towards the fixed forming die 220 to form an abutting portion 2141. When the moving forming die 212 moves, the abutting portion 2141 presses the stage two sheet towards the second forming groove 221. The lower edge of the second forming groove 221 extends towards the moving forming die 212 to form a platform portion 2210. When the moving forming die 212 moves, the first forming groove 214 will move along the platform portion 2210 to form a forming cavity with the second forming groove 221. At the same time, the wire rope is placed on the platform portion 2210 and is located in the forming cavity after the mold is closed.
[0074] Furthermore, a movable die forming block 215 is detachably connected to one end of the moving forming die 212 close to the fixed forming die 220, that is, a movable die forming block 215 is detachably connected to the front end of the moving forming die. The first forming groove 214 is arranged on the movable die forming block 215, and the abutting portion 2141 and the cutting edge 2140 are also located on the movable die forming block 215. In this embodiment, a fixing block 216 is further included. The volume of the fixing block 216 is larger than that of the movable die forming block 215. The movable die forming block 215 is fixed on the moving forming die 212 through the fixing block 216. The front end face of the fixing block 216 is connected to the moving forming die 212 by bolts. Since the movable die forming block 215 mainly plays a role in forming and cutting during the processing, the material requirements for the movable die forming block 215 are relatively high. By fixing with the fixing block 216, not only can the integrity of the movable die forming block 215 be ensured without drilling holes in it, thereby increasing its strength, but also the volume of the movable die forming block 215 can be reduced, reducing the cost of the mold.
[0075] Further, the fixed mold assembly 22 further includes a second slide rail 223, a fixed mold slider 224, a fixed mold slide plate 225 and a fixed plate 226. The second slide rail 223 is arranged in the same direction as the first slide rail 210. The fixed mold slider 224 is slidably arranged on the second slide rail 223. The fixed plate 226 is arranged at the rear end of the fixed mold slider 224 at a certain distance. The rear end of the fixed mold slider 224 is the end far from the moving mold assembly 21. The fixed forming mold 220 is connected to the fixed mold slider 224 and they move synchronously. At the same time, they can be integrally or separately connected. The fixed mold slide plate 225 is slidably arranged on the fixed forming mold 220. For example, a fixed mold chute is arranged on the fixed forming mold 220, and the fixed mold slide plate 225 is slidably arranged in the fixed mold chute. A first elastic member 227 is arranged between the rear end of the fixed mold slide plate 225 and the fixed forming mold 220. The first elastic member 227 adopts a compression spring. Specifically, a fixed template 2200 is arranged upward at the rear end of the fixed forming mold 220. Two first bolts 2201 are threadedly connected to the fixed template 2200. The first elastic member 227 is pressed between the end of the first bolt 2201 and the fixed mold slide plate 225. A first limiting rod 2202 is arranged between the two first bolts 2201 on the fixed template 2200. The first limiting rod 2202 passes through the fixed template 2200 and is threadedly connected to the fixed mold slide plate 225. A locking nut 2203 is arranged on the first limiting rod 2202 close to the fixed mold slide plate 225. The movable range of the fixed mold slide plate 225 relative to the fixed template 2200 can be adjusted through the first limiting rod 2202 and the locking nut 2203. The pre-tightening force of the first elastic member 227 can be adjusted through the two first bolts 2201. When the moving mold assembly 21 and the fixed mold assembly 22 are closed, the front end of the moving mold assembly 21 first touches the fixed mold slide plate 225. The fixed mold slide plate 225 moves backward to compress the first elastic member 227. Then the first forming groove 214 and the second forming groove 221 are aligned to form a forming cavity. The impact force during mold closing can be reduced through the first elastic member 227, and the service life of the mold can be prolonged.
[0076] In this embodiment, the part where the front end of the moving mold assembly 21 touches the fixed mold slide plate 225 is the fixed block 216. An installation block 2250 is arranged on the fixed mold slide plate 225. The installation block 2250 is connected to the fixed mold slide plate 225 by bolts. A collision rod 2251 is arranged on the installation block 2250. The collision rod 2251 is threadedly connected to the installation block 2250 and has adjustable collision contact distance. When the moving mold assembly 21 and the fixed mold assembly 22 are closed, the fixed block 216 and the collision rod 2251 come into contact first. In this way, the contact area during collision is reduced, and at the same time, the volume of the collision parts is minimized as much as possible, and the cost of replacement and maintenance is reduced. Among them, the collision rod 2251 is arranged centrally relative to the fixed block 216.
[0077] Secondly, a second elastic member 228 is disposed between the fixed template 2200 and the fixed plate 226. The second elastic member 228 is a compression spring. Specifically, two second bolts 2260 are threadedly connected to the fixed plate 226. The second elastic member 228 is pressed between the end of the second bolt 2260 and the fixed template 2200. A second limiting rod 2261 is threadedly connected to the fixed plate 226. An abutting head is disposed at the end of the second limiting rod 2261, and two nuts are threadedly connected to the first end thereof. The abutting head is located on the moving path of the fixed forming die 220. The movable range of the fixed forming die 220 relative to the fixed plate 226 can be adjusted by the second limiting rod 2261, and the pre-tightening force of the second elastic member 228 can be adjusted by the two second bolts 2260. When the moving die assembly 21 and the fixed die assembly 22 are closed, if there are sundries at the closing position, the fixed forming die 220 will move backward to compress the second elastic member 228, so as to avoid damage caused by forced closing of the mold. It should be understood that by setting the second elastic member 228 with appropriate elasticity, the normal closing force of the mold mechanism 2 will not cause the fixed forming die 220 to move or move within a specified range. When the closing force of the hand-held rope processing mold is greater than the normal value, the fixed forming die 220 is pushed backward by the moving die assembly 21 to compress the second elastic member 228.
[0078] The gluing mechanism 3 includes a glue storage barrel and a nozzle connected to the glue storage barrel. The nozzle is aligned with the cord in the mold mechanism 2, and hot melt adhesive is sprayed on the cord before each mold closing.
[0079] A pressing wheel 229 is disposed on one side of the fixed die assembly 22. In the first stage, the hand-held rope passes under the pressing wheel and reaches the positioning assembly 42.
[0080] As Figure 4 shown, the cutting mechanism 5 is disposed downstream of the traction mechanism 4. The cutting mechanism 5 includes a cutting auxiliary plate 50 and a cutting knife 51. The cutting auxiliary plate 50 and the cutting knife 51 are respectively disposed on both sides of the upper conveyor belt 40 away from the mold mechanism 2. Cutting edges are provided on both the cutting auxiliary plate 50 and the cutting knife 51. When the cutting knife 51 moves toward the cutting auxiliary plate 50 driven by the power mechanism, the hand-held rope in the first stage can be cut between the three sheets in each stage to form the hand-held rope in the second stage. When the hand-held rope in the first stage is conveyed between the upper conveyor belt 40 and the lower conveyor belt 41, one side thereof is in contact with the cutting auxiliary plate 50. Therefore, the cutting auxiliary plate 50 can play a role in assisting cutting and positioning.
[0081] As Figures 10 to 12As shown, in this embodiment, the packing method of the discharging mechanism 6 for packing and output is bundling. The discharging mechanism 6 includes a pushing component 60, a quantitative material storage component 61, a conveyor belt component 62, and a bundling component 63. The pushing component 60 includes a pushing plate 600 arranged on one side of the lower conveyor belt 41 and a driving component. The driving component is part of the power mechanism. The pushing plate 600 and the cutting knife 51 are arranged on the same side. In this embodiment, the cutting knife 51 and the pushing plate 600 move synchronously and are driven by the same driving component to cut out one hand-held rope each time and push it down to the quantitative material storage component 61.
[0082] The quantitative material storage component 61 includes a material storage frame 610. The pushing component 60 is used to push the stage-two hand-held ropes cut by the cutting mechanism 5 into the material storage frame 610. The material storage frame 610 has a feeding port and a discharging port. A door component is arranged at the discharging port. The door component has an open state and a closed state. During normal processing, the door component is in the closed state. When a certain number of hand-held ropes are stored in the material storage frame 610, the door component switches from the closed state to the open state, and the specified number of hand-held ropes will fall onto the conveyor belt component 62. Among them, the control system can count the number of actions of the pushing plate 600 or the number of mold-closing actions of the mold mechanism 2 or the number of actions of the cutting mechanism 5 to achieve quantitative discharging.
[0083] Specifically, there are various structures of the door component. In this embodiment, the door component includes two door panels, a driving cylinder 611, a moving rack 612, and two gears 613. The two door panels are rotatably arranged at the discharging port. The two gears 613 are rotatably arranged on the material storage frame 610 and rotate synchronously with the two door panels respectively. The moving rack 612 is arranged between the two gears 613 and meshes with them. The output shaft of the driving cylinder 611 is connected to the moving rack 612. The moving rack 612 is slidably arranged on the material storage frame 610 along the direction from the feeding port to the discharging port. The driving cylinder 611 drives the moving rack 612 to move, causing the two door panels to rotate to achieve the open state and the closed state of the door component. In addition, the door component can also be a single door panel. One side of the door panel is hinged at the discharging port, and the other side is rotatably connected to the output shaft of the cylinder. In this way, the door panel can also be opened and closed by the cylinder.
[0084] The conveyor belt component 62 is arranged below the discharging port, and the bundling component 63 is arranged at the end of the conveyor belt component 62. During processing, the specified number of hand-held ropes fall on the conveyor belt component 62 and are conveyed by it through the bundling component 63 to achieve automatic bundling. Among them, the conveyor belt component 62 and the bundling component 63 are common mechanisms in the technical field of automation equipment and will not be elaborated here.
[0085] Embodiment Two:
[0086] As Figures 18 to 21As shown, the difference between this embodiment and the first embodiment lies in the following aspects. First: As Figure 19 shown, the moving die forming block 215 is directly connected to the moving forming die 212 by bolts, and the fixing block 216 is not required;
[0087] Second: As Figure 20 shown, at one end of the fixed forming die 220 close to the moving forming die 212, a detachable fixed die forming block 22000 is provided, and the second forming groove 221 is arranged on the fixed die forming block 22000, which is convenient for maintenance and replacement, and reduces the later use cost of the equipment. In this embodiment, the moving forming die 215 touches the fixed die slide plate 225.
[0088] Third: As Figure 21 shown, in this embodiment, the packing method of the packing output by the discharging mechanism 6 is winding film winding packing. The winding film is a common plastic packing film in the packaging technology field. Specifically, a first frame 64 and a second frame 65 are arranged below the storage frame 610, and a film winding mechanism 66 is arranged between the first frame 64 and the second frame 65. The film winding mechanism 66 can refer to the film winding device for packing cables and ropes in the prior art. Further, a pusher assembly is arranged at one end of the first frame 64 away from the second frame 65, and the pusher assembly is used to push the packed hand ropes out of the first frame 64 and the second frame 65 for discharging.
[0089] In summary, after reading this detailed disclosure, those skilled in the art can understand that the foregoing detailed disclosure can be presented only by way of example and may not be restrictive. Although not explicitly stated here, those skilled in the art can understand that the requirements of this application include various reasonable changes, improvements, and modifications to the embodiments. These changes, improvements, and modifications are intended to be proposed by this application and are within the spirit and scope of the exemplary embodiments of this application.
[0090] In addition, it should be understood that in the foregoing description of the embodiments of this application, for the purpose of helping to understand a feature, for the purpose of simplifying this application, this application combines various features in a single embodiment, drawing, or its description. However, this does not mean that the combination of these features is necessary. When reading this application, those skilled in the art may very well mark out some of the devices as separate embodiments for understanding. That is to say, the embodiments in this application can also be understood as the integration of multiple secondary embodiments. And it is also established when the content of each secondary embodiment is less than all the features of a single foregoing disclosed embodiment.
[0091] Finally, it should be understood that the embodiments of the application disclosed herein are illustrative of the principles of the embodiments of the present application. Other modified embodiments are also within the scope of the present application. Therefore, the embodiments disclosed in the present application are merely examples and not limitations. Those skilled in the art can adopt alternative configurations according to the embodiments in the present application to implement the application in the present application. Therefore, the embodiments of the present application are not limited to the embodiments precisely described in the application.
Claims
1. A discharging device for a portable rope processing device, characterized in that: include: A traction mechanism, the traction mechanism is used to pull the rope to move; A cutting mechanism, the cutting mechanism is used to cut in the middle of each stage three sheet on the stage one hand rope to form a stage two hand rope; The discharging mechanism is used to output the second-hand lifting ropes of the stages as a group according to a specified number, or to pack and output the second-hand lifting ropes of the stages in a specified number as a group.
2. The discharging device of the hand rope processing equipment according to claim 1 is characterized in that: The traction mechanism includes an upper conveyor belt, a lower conveyor belt and a positioning assembly. The length of the upper conveyor belt is smaller than that of the lower conveyor belt. In stage one, the hand rope is clamped between the upper conveyor belt and the lower conveyor belt and is stretched and moved. Both the upper conveyor belt and the lower conveyor belt include synchronous wheels and transmission belts. The positioning assembly is used to prevent the hand rope from being offset when being transported between the upper conveyor belt and the lower conveyor belt in stage one.
3. The discharging device of the hand rope processing equipment according to claim 2 is characterized in that: The traction mechanism includes a clamping assembly, which includes a clamping bracket, a clamping slide rail, a clamping seat, a clamping screw, a clamping spring, a clamping adjustment bolt and a clamping wheel. The clamping slide rail is arranged along the height direction of the clamping bracket, the clamping seat is slidably arranged on the clamping slide rail, and a mounting rod is arranged on the upper part of the clamping bracket. The clamping screw is threadedly connected to the mounting rod, and the clamping adjustment bolt is arranged at one end of the clamping screw passing through the mounting rod. The clamping spring abuts between the clamping adjustment bolt and the clamping seat, and the clamping wheel is rotatably arranged on the clamping seat and abuts against the upper conveyor belt.
4. The discharging device of the hand rope processing equipment according to claim 1 is characterized in that: The cutting mechanism is arranged downstream of the traction mechanism, and the cutting mechanism includes a cutting auxiliary plate and a cutting knife. The cutting auxiliary plate and the cutting knife are respectively arranged on both sides of the end of the upper conveyor belt away from the mold mechanism. The cutting auxiliary plate and the cutting knife are both provided with cutting edges. When the hand rope is transported between the upper conveyor belt and the lower conveyor belt, one side of the hand rope contacts the cutting auxiliary plate.
5. The discharging device of the hand rope processing equipment according to claim 2 is characterized in that: The discharging mechanism includes a pushing assembly and a quantitative storage assembly. The pushing assembly includes a pushing plate and a driving assembly arranged on one side of the lower conveyor belt. The cutting mechanism and the pushing plate are both driven by the driving assembly to move synchronously. The pushing assembly is used to push the second-hand lifting rope cut off by the cutting mechanism to the quantitative storage assembly.
6. The discharging device of the hand rope processing equipment according to claim 5 is characterized in that: The quantitative material storage component includes a material storage frame, which has a feed port and a discharge port. A door component is provided at the discharge port, and the door component has an open state and a closed state. During normal processing, the door component is in a closed state. When a certain number of hand ropes are stored in the material storage frame, the door component switches from a closed state to an open state.
7. The discharging device of the hand rope processing equipment according to claim 6 is characterized in that: The door assembly includes two door panels, a driving cylinder, a moving rack and two gears. The two door panels are rotatably arranged at the discharge port, the two gears are rotatably arranged on the storage frame and rotate synchronously with the two door panels respectively, the moving rack is arranged between the two gears and meshes with them, the output shaft of the driving cylinder is connected to the moving rack, the moving rack is slidably arranged on the storage frame from the feed port to the discharge port, and the driving cylinder drives the moving rack to move so that the two door panels rotate to realize the opening and closing states of the door assembly.
8. The discharging device of the hand rope processing equipment according to claim 6 is characterized in that: The packaging output of the discharging mechanism is output after being wrapped with packaging film. A first frame and a second frame are arranged below the material storage frame, and a film wrapping mechanism is arranged between the first frame and the second frame. The film wrapping mechanism is used to wrap the packaging film around the second-hand lifting rope at a specified number of stages.
9. The discharging device of the hand rope processing equipment according to claim 6 is characterized in that: The packaging output of the discharging mechanism is output after bundling. The discharging mechanism also includes a conveyor belt assembly and a bundling assembly. The conveyor belt assembly is arranged below the discharging port, and the bundling assembly is arranged at the end of the conveyor belt assembly. The conveyor belt assembly is used to transport a specified number of stage second-hand lifting ropes through the bundling assembly for bundling.
Citation Information
Patent Citations
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CN2674920Y