A storage rack
Patent Information
- Application Number
- CN202521598955.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-29
- Publication Date
- 2026-08-28
- Estimated Expiration
- 2035-07-29
AI Technical Summary
[0003]现有导线开线机台工作时,开线机器拉动导线会产生惯性拉力,缠绕有导线的料筒受惯性力拉拽影响,导线料筒在少料及空轴时容易被拉力拽偏,导致导线料筒的存放位置偏移,影响导线料筒为开线机台的稳定供料
[0012]The beneficial effects of this application are as follows: A drive component is installed inside the frame. When the wire tube is placed on the storage unit within the storage space, the control component can control the drive component to drive the pressing component to press and fix the wire tube onto the storage unit. This prevents the wire tube from being pulled or pulled off-center by the wire cutting machine when it is low on material or empty, thus preventing the wire tube from shifting its storage position and ensuring a stable supply of material to the wire cutting machine. When the wire tube needs to be removed, the control component can control the drive component to drive the pressing component to loosen the wire tube on the storage unit, facilitating its removal from the frame. No manual tightening or loosening of the wire tube is required, saving production time.
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Figure CN224688991U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of wire processing technology, specifically to a material storage rack. Background Technology
[0002] A wire stripping machine is an industrial device used to automate the processing of wires (such as electric wires or cables). Its main functions include stripping the outer sheath, cutting the wire, and auxiliary processing to expose the metal core for subsequent connection or crimping.
[0003] When the existing wire cutting machine is working, the machine pulls the wire and generates inertial tension. The wire-wound cylinder is affected by the inertial force. When the wire cylinder is low on material or empty, it is easily pulled off course by the tension, causing the storage position of the wire cylinder to shift and affecting the stable supply of the wire cylinder to the wire cutting machine. Utility Model Content
[0004] This application provides a material storage rack that, when feeding materials to a wire cutting machine, prevents the wire tube from being pulled or pulled off course by the machine when it is low on material or empty, thus preventing the wire tube from shifting its storage position and ensuring a stable supply of materials to the machine. When the wire tube needs to be removed, the control component can control the drive component to loosen the pressure component on the storage component, making it easy to remove the wire tube from the rack without manual tightening and loosening operations, saving production time.
[0005] This application provides a storage rack for holding wire tubes, comprising:
[0006] The frame provides storage space;
[0007] A storage component is disposed within the storage space, the storage component is connected to the frame, and the storage component is used to hold the wire tube;
[0008] A drive component is disposed adjacent to the storage component and connected to the frame;
[0009] A pressing component is connected to the output end of the driving component;
[0010] A control component, which is electrically connected to the drive component;
[0011] The driving component is configured to receive control signals from the control component and drive the pressing member to press or release the wire cylinder.
[0012] The beneficial effects of this application are as follows: A drive component is installed inside the frame. When the wire tube is placed on the storage unit within the storage space, the control component can control the drive component to drive the pressing component to press and fix the wire tube onto the storage unit. This prevents the wire tube from being pulled or pulled off-center by the wire cutting machine when it is low on material or empty, thus preventing the wire tube from shifting its storage position and ensuring a stable supply of material to the wire cutting machine. When the wire tube needs to be removed, the control component can control the drive component to drive the pressing component to loosen the wire tube on the storage unit, facilitating its removal from the frame. No manual tightening or loosening of the wire tube is required, saving production time. Attached Figure Description
[0013] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0014] Figure 1 This is a schematic diagram of the structure of an embodiment of the material storage rack of this application;
[0015] Figure 2 yes Figure 1 Schematic diagram of the structure at point A in the diagram;
[0016] Figure 3 yes Figure 1 The diagram shows the structure of the storage rack after the wire tube has been removed.
[0017] Figure 4 yes Figure 3 A top view of the storage rack shown.
[0018] Figure 5 yes Figure 4 A cross-sectional three-dimensional structural diagram along the CC direction;
[0019] Figure 6 yes Figure 2 Schematic diagram of the structure at point B in the diagram;
[0020] Figure 7 yes Figure 4 The structural diagram at point D in the diagram.
[0021] Explanation of reference numerals in the attached figures:
[0022] 10. Wire rod cylinder; 11. End plate; 20. Frame; 21. Vertical beam; 22. Horizontal beam; 23. Connecting beam; 30. Storage component; 31. Protrusion; 32. Support component; 40. Drive component; 50. Pressing component; 51. Swinging part; 52. Fixing part; 53. Pressing part; 60. Control box; 61. First button; 62. Second button; 71. First detection element; 711. First detection area; 72. Second detection element; 721. Second detection area; 80. Inner frame; 81. Isolation part; 82. Ring plate; 90. Storage space. Detailed Implementation
[0023] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application. In addition, it should be understood that the specific embodiments described herein are only for illustration and explanation of this application and are not intended to limit this application. In this application, unless otherwise stated, directional terms such as "up," "down," "left," and "right" generally refer to up, down, left, and right in the actual use or working state of the device, specifically the drawing directions in the accompanying drawings.
[0024] In this application, unless otherwise expressly specified and limited, the terms "connected," "linked," "stacked," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two elements or the interaction between two elements. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.
[0025] Reference Figure 1 and Figure 2 This application provides a storage rack for placing wire tubes 10, including a frame 20, a storage component 30, a driving component 40, a pressing component 50, and a control component.
[0026] Specifically, the frame 20 has a storage space 90. The storage space 90 is located inside the frame 20, and the wire tube 10 is placed in the storage space 90 of the frame 20. The frame 20 can be a wire edge rack, which can be set near the wire cutting machine to supply material to the wire cutting machine on the wire cutting machine.
[0027] Storage component 30 is disposed within storage space 90 and connected to frame 20. Storage component 30 is used to place wire tube 10. Storage component 30 can be a strip-shaped plate structure. Wire tube 10 can be placed in storage space 90 through storage component 30. Each storage component 30 is configured to bear a weight of at least 100 kg.
[0028] The drive component 40 is arranged adjacent to the storage component 30 and connected to the frame 20. The drive component 40 can be a rotary cylinder. By being arranged adjacent to the storage component 30, the drive component 40 facilitates the fixing of the wire cylinder 10 on the storage component 30. The drive element is used to provide a downward pressing force to press down the wire cylinder 10, preventing accidents such as the wire cylinder 10 being pulled away by the wire-opening machine at the end of the wire drawing process.
[0029] The pressing member 50 is connected to the output end of the driving member 40, so that the pressing member 50 can move under the action of the driving member 40, thus realizing the transmission connection between the two.
[0030] The control unit is electrically connected to the drive unit 40. The control unit can send control signals to the drive unit 40 by manual operation, or by detecting that the wire cylinder 10 is located in the storage unit 30 or that an external device extends under the wire cylinder 10.
[0031] The drive component 40 is configured to receive control signals from the control component and drive the pressing component 50 to press or release the wire tube 10. When the wire tube 10 is needed, it can be moved manually or by a wire handling device to the storage rack in the wire cutting area and then moved onto the rack 20. After the wire tube 10 is placed on the storage component 30 in the storage space 90 of the rack 20, the control component can control the drive component 40 to drive the pressing component 50 to press and fix the wire tube 10 onto the storage component 30. When the consumables on the wire tube 10 are used up or need to be returned, the control component can control the drive component 40 to drive the pressing component 50 to release the wire tube 10. Subsequently, the wire tube 10 can be removed from the rack 20 manually or by a wire handling device.
[0032] By means of the above method, a drive component 40 is set inside the frame 20. When the wire tube 10 is placed on the storage component 30 in the storage space 90, the control component can control the drive component 40 to drive the pressing component 50 to press and fix the wire tube 10 on the storage component 30. This prevents the wire tube 10 from being pulled or pulled off course by the wire opening machine when it is low on material or empty, thus preventing the wire tube 10 from shifting its storage position and ensuring that the wire tube 10 can stably supply material to the wire opening machine. When it is necessary to remove the wire tube 10, the control component can control the drive component 40 to drive the pressing component 50 to loosen the wire tube 10 on the storage component 30, making it easy to unload the wire tube 10 from the frame 20 without the need for manual tightening and loosening operations, thus saving production time.
[0033] In one embodiment of this application, please... Figure 2 Further reference Figure 6 The storage unit 30 is provided with multiple protrusions 31, and the wire cylinder 10 is located between the multiple protrusions 31. Specifically, the protrusions 31 are raised relatively higher than the surface of the storage unit 30. When the storage rack needs to load materials, the wire cylinder 10 to be loaded is placed on the storage unit 30 located between the multiple protrusions 31, so that the protrusions 31 can limit the wire cylinder 10. At the same time, it can cooperate with the drive component 40 and the pressing component 50 to press down and tighten the wire cylinder 10, thereby enhancing the stability of the wire cylinder 10 on the storage unit 30. When the storage rack supplies materials to the wire opening machine, it can further prevent the wire cylinder 10 from being pulled and deviated by the opening machine, prevent the position of the wire cylinder 10 from shifting, and enable the wire cylinder 10 to provide stable material supply to the opening machine.
[0034] In one embodiment of this application, the storage space 90 has a plurality of storage components 30 and a plurality of driving components 40, and each wire cylinder 10 has at least two storage components 30 and two driving components 40 at its bottom. Figure 1 and Figure 2 Further reference Figures 3 to 5The storage space 90 can have multiple storage components 30, with one wire tube 10 placed on each pair of storage components 30. Preferably, the two storage components 30 are symmetrically arranged at the bottom of the wire tube 10, providing more stable support. A driving component 40 is placed near each storage component 30, ensuring that each wire tube 10 is pressed and fixed onto the storage component 30 by the cooperation of the driving component 40 and the pressing component 50, thus making the fixation of the wire tube 10 on the storage component 30 more stable. Furthermore, the driving components 40 can also preferably be symmetrically arranged on both sides of the wire tube 10. The driving components 40 need to maintain a distance of at least three millimeters from the lower edge of the wire tube 10 to prevent the driving components 40 from scratching the wire when the wire tube 10 is feeding the wire opening machine. Furthermore, a single drive element can apply a certain downward thrust to one side of the wire cylinder 10, such as a downward thrust in the range of 101N to 120N. The two drive elements together can apply a downward thrust of 202N to 240N to the wire cylinder 10. Thus, by using the drive elements, when the wire-cutting machine pulls the wire on the wire cylinder 10, the pulling force of the wire-cutting machine will prevent the wire cylinder 10 from being pulled away by the pulling force of the wire-cutting machine, while at the same time preventing the downward thrust of the drive elements from being too large and damaging the wire cylinder 10.
[0035] Of course, in other practical applications, more storage components 30 can be provided at the bottom of each wire cylinder 10, thereby providing more stable support for the wire cylinder 10. In addition, each wire cylinder 10 can still be pressed and fixed by two driving components 40. In this case, the two driving components 40 are preferably located near the two storage components 30 on the outer side of the wire cylinder 10, so that the pressing component 50 can press and fix the wire cylinder 10 on the outer side, ensuring the stability of the wire cylinder 10 on the storage component 30.
[0036] In one embodiment of this application, please refer to Figure 1 , Figure 3 and Figure 5 The frame 20 has multiple storage spaces 90, which are arranged vertically along the frame 20. These multiple storage spaces 90 increase the three-dimensional storage space of the frame 20, avoiding the single-layer storage and use of wire cylinders 10 in existing storage racks. This provides ample material storage for the wire opening machine, achieving three-dimensional storage along the production line, improving workshop space utilization, ensuring efficient replacement or remodeling of wire cylinders 10, and providing conditions for continuous material supply to subsequent wire opening machines.
[0037] In one embodiment of this application, please continue to refer to Figure 1 , Figure 3 and Figure 5The frame 20 has a front and a back. The frame 20 includes vertical beams 21, horizontal beams 22, and connecting beams 23. The two ends of the horizontal beams 22 are connected to the vertical beams 21, and the two ends of the connecting beams 23 are connected to the horizontal beams 22. The frame 20 is divided into multiple storage spaces 90 by the horizontal beams 22. Specifically, the frame 20 can be rectangular or approximately rectangular in shape. The vertical beams 21 are respectively located at the four edges of the rectangular frame 20. The horizontal beams 22 are located between the vertical beams 21 on both the front and back sides, and their two ends are fixedly connected to the vertical beams 21. The connecting beams 23 are located between the vertical beams 21 on both the front and back sides, and their two ends are fixedly connected to the front vertical beams 21 and the back vertical beams 21, respectively. Thus, the frame 20 can be constructed by the vertical beams 21, horizontal beams 22, and connecting beams 23. Moreover, the frame 20 can be divided into multiple storage spaces 90 arranged vertically by the horizontal beams 22 to meet the three-dimensional storage needs of the wire cylinder 10.
[0038] In one embodiment of this application, reference is made to Figure 1 and Figure 4 The control components include a control box 60, which is electrically connected to the drive component 40. The control box 60 can be fixedly connected to the frame 20.
[0039] The control box 60 integrates a first button 61 and a second button 62. The first button 61 controls the drive component 40 to drive the pressing member 50 to press the wire cylinder 10, and the second button 62 controls the drive component 40 to drive the pressing member 50 to release the wire cylinder 10. Specifically, the first button 61 can be a trigger button to control the output end of the drive component 40 to drive the pressing member 50 to descend, and the second button 62 can be a trigger button to control the output end of the drive component 40 to drive the pressing member 50 to rise. When the storage rack is loading materials, after the wire cylinder 10 is transported to the storage member 30 in the storage space 90 by the cylinder handling equipment, pressing the first button 61 causes the drive component 40 to work and drive the pressing member 50 to press down the wire cylinder 10, thereby locking the wire cylinder 10 onto the storage member 30. This eliminates the need for manual fixing of the wire cylinder 10, preventing the wire cylinder 10 from being tilted or shifted due to the pulling of the wire opening machine, thus preventing the wire cylinder 10 from falling and improving the feeding stability of the wire cylinder 10.
[0040] In one embodiment of this application, please continue to refer to Figure 1 and Figure 4Multiple control boxes 60 are provided, each mounted on a crossbeam 22 on the front of the frame 20. Each control box 60 controls the operation of a drive component 40 corresponding to the bottom of a wire tube 10. Specifically, multiple control boxes 60 are respectively mounted on the crossbeam 22 of the frame 20 on the front of the corresponding wire tube 10, that is, one control box 60 is provided on the crossbeam 22 corresponding to the front of each wire tube 10, making it easy for manual operation to distinguish the pressing or releasing action of the corresponding wire tube 10 inside the frame 20. After the wire tube 10 is loaded onto the storage unit 30 of the frame 20, press the first button 61 of the control box 60 corresponding to the area of the front crossbeam 22 of the wire tube 10 to activate the corresponding drive component 40 and the pressing component 50, pressing and fixing the wire tube 10 onto the storage unit 30. When the wire tube 10 is unloaded and replaced, press the second button 62 of the control box 60 corresponding to the area of the front crossbeam 22 of the wire tube 10 to activate the corresponding drive component 40 and the pressing component 50, stop pressing and fixing the wire tube 10, and release the wire tube 10 from the storage unit 30. The wire tube 10 can then be removed from the storage unit 30 by the tube handling equipment, realizing the automated unloading of the wire tube 10.
[0041] Therefore, by integrating the first button 61 and the second button 62 into the control box 60, when the material cylinder 10 is stored on the storage rack by the material cylinder handling equipment, pressing the first button 61 can automatically lock the material cylinder 10 on the storage rack. When the material cylinder 10 needs to be replaced, pressing the second button 62 can stop locking the material cylinder 10, and the material cylinder 10 can be removed and replaced by the material cylinder handling equipment, which facilitates the automated replacement of the material cylinder 10 without the need for manual handling and replacement.
[0042] In one embodiment of this application, please... Figure 3 and Figure 5 Further reference Figure 6 and Figure 7The control component includes a first detection element 71 and a second detection element 72. The first detection element 71 is configured to detect when the wire cylinder 10 is located on the storage member 30, and control the drive component 40 to drive the pressing member 50 to press the wire cylinder 10. The second detection element 72 is configured to detect when the handling equipment is handling the wire cylinder 10, and control the drive component 40 to drive the pressing member 50 to press the wire cylinder 10. Specifically, the first detection element 71 and the second detection element 72 can be sensors. The control component may also include a controller electrically connected to the first detection element 71 and the second detection element 72. The controller is electrically connected to the drive component 40, and the first detection element 71 and the second detection element 72 can control the working state of the drive component 40 through the controller. The first detection element 71 may have a first detection area 711. When the wire tube 10 is placed on the storage unit 30, the wire tube 10 falls into the first detection area 711. The first detection element 71 can detect the wire tube 10 in the first detection area 711, thereby automatically controlling the drive component 40 to drive the pressing component 50 to press and fix the wire tube 10. The second detection element 72 may have a second detection area 721. When the carrying end of the tube handling device for carrying goods extends into the storage space 90 below the wire tube 10, the carrying end of the tube handling device falls into the second detection area 721. The second detection unit can detect the tube handling device in the second detection area 721, thereby automatically controlling the drive component 40 to drive the pressing component 50 to release the wire tube 10, so that the tube handling device can automatically remove the wire tube 10 from the storage unit 30.
[0043] In practical applications, the first detection unit can be connected to the storage unit 30, and the second detection unit can be connected to the crossbeam 22 on the front of the frame 20. The storage rack can be used in scenarios where the front of the frame 20 is typically where workers are located, and the back of the frame 20 is typically the working area for the material handling equipment. The carrying end of the material handling equipment can transport the wire cylinder 10 to the back of the frame 20. After the material handling equipment moves the wire cylinder 10 onto the storage unit 30 in the storage space 90, the carrying end of the material handling equipment is removed from the storage space 90. The first detection element 71 can detect the wire cylinder 10 located within the first detection area, thereby controlling the drive component 40 to drive the pressing component 50 to press and fix the wire cylinder 10 onto the storage unit 30. When the wire cylinder 10 needs to be replaced, the carrying end of the material handling equipment can extend into the storage area below the wire cylinder 10 to be replaced. Within space 90, the second detection element 72 can detect the wire cylinder 10 located within the second detection area, thereby controlling the drive component 40 to move the pressing component 50 to release the wire cylinder 10 on the storage component 30. The carrying end of the cylinder handling device can lift the wire cylinder 10 from the storage component 30 and remove the wire cylinder 10 from the storage space 90, automatically completing the unloading of the wire cylinder 10. Subsequently, the carrying end of the wire handling device can place the wire cylinder 10 to be used back onto the storage component 30 in the corresponding empty storage space 90, repeating the pressing and fixing of the wire cylinder 10. The cylinder handling device can be an AGV (Automated Guided Vehicle) intelligent handling robot.
[0044] It should be noted that the second detection unit can be configured to control the drive component 40 to lift the pressing member 50 and release the wire cylinder 10 on the storage member 30 when an object is detected in the second detection area 721 for more than two consecutive seconds. This is to prevent the pressing member 50 from obstructing the bearing end of the wire cylinder handling equipment from removing the wire cylinder 10 from the storage member 30 in the storage space 90 when the wire cylinder handling equipment removes the wire cylinder 10. This also prevents damage to the drive component 40 and the pressing member 50 during the removal of the wire cylinder 10.
[0045] In other embodiments, the storage rack may also include a control box 60 with a first button 61 and a second button 62, and a first detection element 71 and a second detection element 72. The first detection element 71 and the second detection element 72 are both electrically connected to the control box 60. In this case, the first button 61 and the second button 62 can be used to control the drive component 40 to push the pressing member 50 down or up, and the first detection element 71 and the second detection element 72 can be used to control the drive component 40 to push the pressing member 50 down or up. Since the second detection unit is used to detect the bearing end of the material cylinder conveying equipment, when the second detection element 72 detects the bearing end of the material cylinder conveying equipment for more than two consecutive seconds, it will control the drive component 40 to forcibly rise through the control box 60. At this time, regardless of whether the second button 62 used to control the drive component 40 to rise is pressed manually, and the priority of the second detection element 72 controlling the drive component 40 to rise through the control box 60 is greater than the priority of the first button 61 controlling the drive component 40 to press down through the control box 60, it can prevent the first button 61 from being accidentally touched during the unloading process of the storage rack, which would cause the drive component to drive the pressing part 50 to press down and press the wire cylinder 10, thus hindering the unloading process of the wire cylinder 10. The first detection element 71 is used to detect whether there is a wire cylinder 10 on the storage unit 30 in the storage space 90. It can work with the second detection element 72 to realize the automatic or manual raising or lowering of the drive component 40. When the second detection element 72 does not detect the bearing end of the wire handling equipment, and the first detection element 71 detects that there is a wire cylinder 10 on the storage unit 30, the first detection element 71 will control the drive component 40 to press down and tighten the wire cylinder 10. This prevents the situation where the first button 62 is used to raise the drive component 40 to release the wire cylinder 10 and then the first button 61 is forgotten. Moreover, the priority of the first detection element 71 controlling the drive component 40 to perform the pressing action through the control box 60 is greater than the priority of the second button 62 controlling the drive component 40 to perform the lifting action through the control box 60. This can prevent the second button 62 from being accidentally touched during the use of the storage rack, which would cause the drive component to drive the pressing part 50 to rise and lift the wire cylinder 10, thus preventing the wire cylinder 10 from being not tightened and fixed, and affecting the stability of the wire cylinder 10 in supplying materials to the wire opening machine. This ensures the storage safety of the upper wire cylinder 10 on the storage rack, and also provides conditions for subsequent linkage with automated storage and handling devices such as AGV equipment, enabling automated feeding and unloading of the wire opening machine.
[0046] In one embodiment of this application, please refer to Figure 5 and Figure 7The storage rack also includes a support member 32, which is connected to the frame 20 and / or the storage unit 30. A drive component 40 is mounted on the support member 32. Specifically, the support member 32 has a plate-like structure and can be connected to the storage unit 30. The support member 32 can be connected to the storage unit 30 by methods including but not limited to welding and bolting. The drive component 40 is installed inside the frame 20 via the support member 32, thus fully utilizing the storage space 90 inside the frame 20 and improving the space utilization rate of the storage rack. Furthermore, in some embodiments, when the drive component 40 is mounted on the support member 32,
[0047] In one embodiment of this application, please refer to Figure 2 and Figure 7 The pressing member 50 includes a swinging part 51, a fixed part 52, and a pressing part 53. The swinging part 51 is connected to the output end of the driving member 40, and the pressing part 53 is connected to the swinging part 51 through the fixed part 52. The pressing part 53 can abut against the wire cylinder 10. Specifically, when the driving member 40 is selected as a rotary cylinder, one end of the swinging part 51 is connected to the output end of the rotary cylinder, and the other end of the swinging part 51 is connected to the fixed part 52. The output end of the rotary cylinder has a certain angle deflection between the rising and lowering states, so that when the swinging part 51 drives the pressing part 53 to press down and tighten the wire cylinder 10, the pressing part 53 can be located above the wire cylinder 10. When the swinging part 51 drives the pressing part 53 to rise and release the wire cylinder 10, the pressing part 53 can be offset from the wire cylinder 10, so as to avoid affecting the process of the material cylinder handling equipment lifting the wire cylinder 10 from the storage member 30 and unloading it from the storage space 90.
[0048] It should be noted that the fixing member can pass through the swing part 51. The fixing member can be a bolt assembly, so that the pressing part 53 can be fixed on the swing part 51. At the same time, the pressing part 53 can be a disc structure, and the diameter of the disc is larger than the size of the corresponding end of the swing part 51, so as to prevent the wire from getting stuck in the gap between the end of the swing part 51 and the disc during the wire pulling process of the wire opening machine.
[0049] In one embodiment of this application, please refer to Figure 1 and Figure 2 The wire feed cylinder 10 has an end plate 11, which is located on the storage member 30 between the protrusions 31. The end plate 11 is preferably circular. When the bottom of the wire feed cylinder 10 has two storage members 30, each storage member 30 is provided with two protrusions 31. The protrusions 31 on the two storage members 30 cooperate with each other to limit the end plate 11 on the storage member 30. With the cooperation of the drive member 40 and the pressing member 50, the stability of the wire feed cylinder 10 on the storage member 30 can be further improved, and the stability of the wire feed cylinder 10 in feeding the wire opening machine can be further improved.
[0050] For further details, please refer to... Figure 2 , Figure 6 and Figure 7 The protrusion 31 is conical. When the protrusion 31 is set to be conical, the space enclosed by the tops of the protrusions 31 of all the storage parts 30 at the bottom of the wire tube 10 can be larger than the space enclosed by the bottoms of the protrusions 31. This reduces the difficulty of loading the storage rack when the tube is being transported by the tube transport equipment, and makes it easier to place the wire tube 10 on the storage parts 30 between the protrusions 31.
[0051] In one embodiment of this application, please refer to Figure 1 as well as Figures 3 to 5 The storage rack also includes an inner frame 80, with one inner frame 80 provided in each storage space 90. The inner frame 80 has an isolation section 81 for separating adjacent wire cylinders 10. Specifically, each storage space 90 of the frame 20 has an inner frame 80, and each inner frame 80 includes multiple isolation sections 81. The isolation sections 81 can be plate-shaped, which can separate the storage items 30 in the storage space 90. Each group of storage items 30 can accommodate one wire cylinder 10, making the placement of the wire cylinders 10 inside the storage space 90 more orderly and preventing the wire cylinders 10 from being misplaced during the material feeding process of the storage rack. In addition, the inner frame 80 can also be provided with a ring plate 82 located above the wire cylinders 10. When the storage rack supplies material to the wire cutting machine, a ring of brushes can be installed on the ring plate 82 to prevent the wire inner frame 80 and the frame 20 from scratching each other, improving the safety of the material feeding process of the storage rack.
[0052] The storage rack provided in this application has been described in detail above. Specific examples have been used to illustrate the principles and implementation methods of this application. The description of the above embodiments is only for the purpose of helping to understand the method and core ideas of this application. At the same time, for those skilled in the art, there will be changes in the specific implementation methods and application scope based on the ideas of this application. Therefore, the content of this specification should not be construed as a limitation of this application.
Claims
1. A storage rack for holding wire tubes (10), characterized in that, include: The frame (20) has storage space (90); Storage component (30) is disposed in the storage space (90), the storage component (30) is connected to the frame (20), and the storage component (30) is used to place the wire tube (10); A drive unit (40) is disposed adjacent to the storage unit (30) and connected to the frame (20); The pressing member (50) is connected to the output end of the driving component (40); A control unit, which is electrically connected to the drive unit (40); The driving component (40) is configured to receive the control signal from the control component and drive the pressing component (50) to press or release the wire cylinder (10).
2. The storage rack according to claim 1, characterized in that, The storage component (30) is provided with a plurality of protrusions (31), and the wire tube (10) is located between the plurality of protrusions (31).
3. The storage rack according to claim 1, characterized in that, The storage space (90) has multiple storage components (30) and multiple driving components (40), and each wire cylinder (10) has at least two storage components (30) and two driving components (40) at its bottom.
4. The storage rack according to claim 1, characterized in that, The frame (20) has multiple storage spaces (90), which are arranged along the vertical direction of the frame (20).
5. The storage rack according to claim 4, characterized in that, The frame (20) has a front and a back. The frame (20) includes a vertical beam (21), a horizontal beam (22) and a connecting beam (23). The two ends of the horizontal beam (22) are connected to the vertical beam (21) respectively. The two ends of the connecting beam (23) are connected to the horizontal beam (22) respectively. The frame (20) is divided into multiple storage spaces (90) by the horizontal beam (22).
6. The storage rack according to claim 5, characterized in that, The control component includes a control box (60), which is electrically connected to the drive component (40); The control box (60) integrates a first button (61) and a second button (62). The first button (61) is used to control the drive component (40) to drive the pressing member (50) to press the wire tube (10). The second button (62) is used to control the drive component (40) to drive the pressing member (50) to release the wire tube (10).
7. The storage rack according to claim 6, characterized in that, Multiple control boxes (60) are provided, and each control box (60) is located on the crossbeam (22) on the front of the frame (20). Each control box (60) is used to control the operation of the drive component (40) corresponding to the bottom of the wire cylinder (10).
8. The storage rack according to claim 5, characterized in that, The control component includes a first detection element (71) and a second detection element (72). The first detection element (71) is configured to control the drive component (40) to drive the pressing member (50) to press the wire cylinder (10) when the wire cylinder (10) is located on the storage member (30). The second detection element (72) is configured to control the drive component (40) to drive the pressing member (50) to press the wire cylinder (10) when the handling device handles the wire cylinder (10).
9. The storage rack according to claim 1, characterized in that, The storage rack also includes a support member (32), which is connected to the frame (20) and / or the storage member (30), and the drive component (40) is disposed on the support member (32).
10. The storage rack according to claim 1, characterized in that, The pressing member (50) includes a swinging part (51), a fixing part (52) and a pressing part (53). The swinging part (51) is connected to the output end of the driving component (40). The pressing part (53) is connected to the swinging part (51) through the fixing part (52). The pressing part (53) can abut against the wire cylinder (10).
11. The storage rack according to claim 2, characterized in that, The wire cylinder (10) has an end plate (11) located on the storage member (30) between the protrusions (31); and / or, The protrusion (31) is conical.
12. The storage rack according to claim 1, characterized in that, The storage rack also includes an inner frame (80), and each layer of the storage space (90) is provided with an inner frame (80), the inner frame (80) having an isolation part (81) for separating adjacent wire cylinders (10).