Wire rod plant
Through the cooperation of the rotating wire rod container and the reciprocating drive part, the spiral line layered laying of the noodle column is realized, which solves the problems of high labor intensity and easy breakage of the noodle column in traditional noodle processing, and improves production efficiency and noodle quality.
Patent Information
- Application Number
- CN202211577859.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-12-09
- Publication Date
- 2025-10-10
- Estimated Expiration
- 2042-12-09
AI Technical Summary
In the traditional noodle processing process, the labor intensity of coiling noodle rods is high and the production efficiency is low. In addition, the automation level of the coiling equipment is low, and the noodle rods are easy to break.
A rotating wire rod container and a reciprocating drive are used in conjunction with guide parts to achieve layered laying of surface columns along the spiral line. The column support and cover design are used to ensure that the surface columns are evenly stressed and prevent breakage.
The efficiency and quality of the dough column wire rod are improved, the breakage of the dough column during the dough production process is avoided, and the labor intensity and manufacturing cost are reduced.
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Figure CN116098178B_ABST
Abstract
Description
1.1.1 Technical Field
[0002] The present application relates to the technical field of food processing equipment, and in particular to a wire rod equipment. 1.1.2 Background Technology
[0004] The traditional noodle coiling process requires workers to squat for long periods of time, manually winding the rolled noodles into a bowl. This labor-intensive process results in low production efficiency. As market demand for noodles increases, the traditional manual coiling method is unable to meet modern production needs. Relevant technologies offer coiling equipment that can achieve a high level of automation. However, these coiling processes are inefficient, and the noodles are prone to breaking during the noodle-making process. 1.1.3 Summary of the invention
[0006] In view of this, the embodiments of the present application hope to provide a wire rod equipment and a wire rod method that can achieve wire rod production on opposite columns with high efficiency and high quality.
[0007] To achieve the above-mentioned purpose, the first aspect of an embodiment of the present application provides a wire rod device, which includes: a rotatable wire rod container, the wire rod container having a cavity for accommodating face columns; a guide member arranged above the wire rod container, the guide member being used to support and guide the face columns to enter the cavity; and a reciprocating drive member, the reciprocating drive member being used to drive the guide member to move back and forth above the wire rod container, so that when the wire rod container rotates, the face columns are laid in layers along a spiral line in the cavity.
[0008] In some embodiments, the wire rod equipment includes a column, which is arranged at the bottom rotation center of the wire rod container, and the column extends in the wire rod cavity along the rotation center axis of the wire rod container.
[0009] In some embodiments, the column is detachably mounted on the wire rod container.
[0010] In some embodiments, the wire rod container includes a container body and a first cover, the cavity passes through the container body from top to bottom, and the first cover can be removably provided on the container body to close the lower end of the cavity; the wire rod equipment includes a second cover, and the second cover can be removably provided on the container body to close the upper end of the cavity.
[0011] In some embodiments, the reciprocating drive member drives the guide member to reciprocate along the radial direction of the wire rod container.
[0012] In some embodiments, the reciprocating drive member includes a first limit switch and a second limit switch, and the first limit switch and the second limit switch are arranged at both ends of the guide member's moving stroke to limit the guide member's moving stroke; wherein, the first limit switch is above the rotation center of the wire rod container, and the second limit switch can be adjusted to a position close to or away from the first limit switch to match wire rod containers of different diameters.
[0013] In some embodiments, the reciprocating drive member includes a bracket, a screw rod rotatably provided on the bracket, and a screw rod nut passed through the screw rod; the bracket has two side plates distributed on both sides of the screw rod, the guide member is fixed to the screw rod nut, and the opposite sides of the guide member respectively abut against the inner walls of the side plates, thereby guiding the movement of the guide member through the side plates.
[0014] In some embodiments, the wire rod equipment includes a rotating assembly having a rotating turntable, and the wire rod container can be placed on the turntable to rotate with the turntable; in the rotating state, the rotation center axis of the wire rod container coincides with the rotation center axis of the turntable.
[0015] In some embodiments, a limiting groove is provided on the top surface of the rotating table, and the wire rod container can at least partially be inserted into the limiting groove, so that the wire rod container remains relatively fixed to the rotating table in a rotating state.
[0016] The second aspect of an embodiment of the present application provides a coiling method, which is suitable for coiling equipment and is characterized in that the coiling method includes: introducing a surface column into a coiling container through a guide member; controlling the rotation of the coiling container, and controlling the reciprocating drive member to drive the guide member to move back and forth above the coiling container, so as to lay the surface column in layers along the spiral line in the cavity.
[0017] In some embodiments, the wire rod container rotates at a uniform speed, and the guide member moves at a uniform speed, so as to lay the surface columns in layers along the Archimedean spiral in the cavity.
[0018] In some embodiments, the wire rod container includes a container body and a first cover, the cavity passes through the container body from top to bottom, and the first cover can be detachably provided on the container body to close the lower end of the cavity; the wire rod equipment includes a second cover, and the second cover can be detachably provided on the container body to close the upper end of the cavity; after the step of controlling the reciprocating drive member to drive the guide member to move back and forth above the wire rod container to lay the surface columns in layers along the spiral line in the cavity, the wire rod method includes: confirming that the surface columns are laid to a preset height of the cavity, and covering the second cover on the container body to close the upper end of the cavity; turning the wire rod container over so that the second cover is facing downward; and removing the first cover to take out the surface.
[0019] The wire rod device of the embodiment of the present application, the face column is sent to the cavity of the wire rod container through the guide element, the wire rod container rotates, and the reciprocating driving element drives the guide element to reciprocate above the wire rod container, so as to lay the face column in layers along the spiral line in the cavity of the wire rod container. The laying along the spiral line can make the face column not have a large curvature bending, and can make each layer of adjacent face columns closely fit, which is beneficial to keeping the uniformity of the diameter and stress of the face column, and avoids the fracture of the face column due to stress in the subsequent face column taking-out process, thereby affecting use. Moreover, the structure is simple, and the manufacturing cost is low. 1.1.4 BRIEF DESCRIPTION OF DRAWINGS
[0021] Figure 1 It is a structure schematic view of the wire rod device of the embodiment of the present application without the second cover body;
[0022] Figure 2 It is a structure schematic view of the wire rod device of the embodiment of the present application without the second cover body. Figure 1 It is a structure schematic view of the wire rod device of the embodiment of the present application without the second cover body.
[0023] Figure 3 It is a structure schematic view of the wire rod device of the embodiment of the present application without the second cover body. Figure 1 It is a structure schematic view of the wire rod device of the embodiment of the present application without the second cover body.
[0024] Figure 4 It is a structure schematic view of the wire rod device of the embodiment of the present application without the second cover body. Figure 1 It is a structure schematic view of the wire rod device of the embodiment of the present application without the second cover body.
[0025] Figure 5 It is a structure schematic view of the wire rod device of the embodiment of the present application without the second cover body. Figure 1 It is a structure schematic view of the wire rod device of the embodiment of the present application without the second cover body.
[0026] BRIEF DESCRIPTION OF DRAWINGS
[0027] Wire rod container 10; cavity 11; container body 12; edge 121; slot part 122; first cover body 13;
[0028] Stand 20;
[0029] Guide element 30; guide support 31; guide roller 32;
[0030] Reciprocating driving element 40; first limit switch 41; second limit switch 42; support 43; side plate 431; slide rail 4311; lead screw 44; lead screw nut 45; lead screw driving element 46;
[0031] Rotary assembly 50; rotary table 51; limit slot 511; rotary motor 52; reversing speed reducer 53; shaft coupling 54;
[0032] Second cover body 60; limit block 61;
[0033] Base frame 70. 1.1.5 Specific Implementation Methods
[0035] The following embodiments of the present invention are described in further detail with reference to the accompanying drawings and examples. The following examples are used to illustrate the present invention, but are not intended to limit the scope of the present invention.
[0036] In the description of the embodiments of the present application, it should be noted that the terms "center," "upper," "lower," "vertical," "horizontal," "top," "bottom," "inner," "outer," etc., indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings and are intended only to facilitate the description of the embodiments of the present application and to simplify the description. They do not indicate or imply that the devices or elements referred to must have a specific orientation, be constructed and operate in a specific orientation, and therefore should not be construed as limiting the embodiments of the present application. In addition, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0037] In the related art, semi-finished noodles are evenly spread on a plate by hand or by equipment to rest for a period of time, which can facilitate subsequent processing and improve the quality of the finished noodles. However, this method has the problems of complex structure and poor quality of the coils.
[0038] This application embodiment provides a wire rod device, please refer to Figure 1 and Figure 2 The wire rod equipment includes a wire rod container 10, a column 20, a guide member 30, a reciprocating drive member 40, a rotating assembly 50, a second cover 60 and a base frame 70.
[0039] Please refer to Figure 4 The coil container 10 is capable of rotating and has a cavity 11 for accommodating noodle sticks. The noodle sticks are flexible, long, strips of dough made from materials such as flour and water. A guide member 30 is disposed above the coil container 10 and is used to support and guide the noodle sticks into the cavity 11. A reciprocating drive member 40 is used to drive the guide member 30 to reciprocate above the coil container 10, thereby laying the noodle sticks in layers along a spiral line within the cavity 11 as the coil container 10 rotates.
[0040] It is understandable that the shape of the wire rod container 10 is not limited. In some embodiments, the wire rod container 10 is in the shape of a thin-walled cylinder.
[0041] In the above embodiment, the face columns are sent to the cavity 11 of the wire rod container 10 via the guide member 30. The wire rod container 10 rotates, and the reciprocating drive member 40 drives the guide member 30 to move back and forth above the wire rod container 10, laying the face columns in layers along the spiral line in the cavity 11 of the wire rod container 10. Laying along the spiral line can prevent the face columns from bending with large curvatures, and can make each layer of adjacent face columns fit tightly, which is conducive to maintaining the uniformity of the face column diameter and force, and avoids the face columns from being broken due to force during the subsequent process of removing the face columns, thereby affecting their use. Continuous layered laying can make the face columns in the cavity 11 continuous, thereby improving the subsequent efficiency of removing the face columns.
[0042] It can be understood that when the wire rod container 10 is rotating, when the guide member 30 moves above the rotation center of the cavity 11 and above the side wall, the noodles are laid along the spiral line from the inside to the outside until the side wall of the cavity 11; when the guide member 30 moves above the rotation center of the side wall of the cavity 11, the noodles are laid along the spiral line from the outside to the inside until the rotation center of the cavity 11, and the cycle is repeated in sequence to achieve layered laying along the spiral line.
[0043] It can be understood that in each layer of surface columns laid along the spiral line, the spacing between adjacent surface columns can be controlled by adjusting the rotation speed of the wire rod container 10 and the moving speed of the guide member 30, so that there will be no upper and lower overlap between adjacent surface columns, and at the same time, the side walls of adjacent surface columns can be fitted together.
[0044] In some embodiments, the reciprocating drive member 40 drives the guide member 30 to reciprocate along the radial direction of the wire rod container 10. In other words, the reciprocating path of the guide member 30 is in the radial direction of the wire rod container 10.
[0045] In some embodiments, the wire rod container 10 rotates at a constant speed, and the guide member 30 moves at a constant speed, so that the surface columns are laid out in layers along the Archimedean spiral within the cavity 11. It will be understood that the curvature of the surface columns laid out along the Archimedean spiral is always the same, so that the surface columns are subjected to uniform force along the length direction.
[0046] For example, please refer to Figure 1 and Figure 4 The wire rod equipment includes a column 20, which is arranged at the bottom rotation center of the wire rod container 10. The column 20 extends along the rotation center axis direction of the wire rod container 10 in the wire rod cavity 11.
[0047] It is understood that the uprights 20 can constrain the face columns near the uprights 20 during the coiling process, allowing the face columns near the uprights 20 to be shaped under the constraints of the uprights 20, allowing for layer-by-layer coiling. Furthermore, the uprights 20 can support the face columns near the uprights 20, preventing them from being deformed by pressure on their inner sides due to lack of support. This ensures that the face columns will not break during the subsequent noodle production process, which would affect their usability.
[0048] It is understood that during the noodle-making process, since the noodle columns are laid along a spiral line, they may interfere with the pillars 20 located at the bottom rotation center of the wire rod container 10. In some embodiments, the pillars 20 are detachably mounted on the wire rod container 10. That is, the pillars 20 can be removed after the wire rod is finished, eliminating any interference with the noodle-making process.
[0049] It is understandable that there is no limitation on the manner in which the column 20 is detachably mounted on the wire rod container 10. In some embodiments, a slot is formed at the bottom of the wire rod container 10, and the column 20 is inserted into the slot to achieve a detachable connection.
[0050] Exemplarily, the wire rod container 10 includes a container body 12 and a first cover 13 . The cavity 11 passes through the container body 12 from top to bottom. The first cover 13 is detachably disposed on the container body 12 to close the lower end of the cavity 11 .
[0051] The wire rod apparatus includes a second cover 60 , which is detachably disposed on the container body 12 to close the upper end of the cavity 11 .
[0052] It is understandable that during the coiling process, the upper end of the cavity 11 of the coil container 10 is open, and the noodle columns are coiled layer by layer along the spiral line in the cavity 11. After the coiling is completed, the second cover 60 is placed on the container body 12 to close the upper end of the cavity 11. When serving the noodles, the coil container 10 is turned upside down 180° so that the second cover 60 faces downward, and then the first cover 13 is removed for serving the noodles. In this way, when serving the noodles, the noodle columns that enter the cavity 11 first can be served first, and the noodle columns that enter the cavity 11 later can be served later, thereby ensuring that the noodle columns in the coil container 10 have basically the same resting time, and can all maintain a better taste.
[0053] It is understood that the detachable configuration of the first cover 13 and the second cover 60 is not limited. For example, the top and bottom ends of the container body 12 each have radially outwardly extending edges 121, and the edges 121 on opposite sides of each end of the container body 12 are provided with slots 122 that protrude axially from the edges 121. The first cover 13 can be laterally inserted between the slots 122 on opposite sides of the bottom end of the container body 12 to seal the lower end of the cavity 11, and the second cover 60 can be laterally inserted between the slots 122 on opposite sides of the top end of the container body 12 to seal the other end of the cavity 11.
[0054] In some embodiments, the slot portions 122 on opposite sides of each end are arranged in parallel, and card slots are opened on opposite sides of the slot portions 122 on opposite sides of each end. The first cover body 13 and the second cover body 60 are both inserted laterally into the card slots, and the first cover body 13 and the second cover body 60 are pushed so that the first cover body 13 and the second cover body 60 move along the card slots until the cavity 11 is closed.
[0055] In some embodiments, one side edge of the first cover 13 and the second cover 60 has an axially protruding stopper 61, so that the stopper 61 of the first cover 13 or the second cover 60 is inserted into the slot 122 toward one side of the container body 12 until the stopper 61 abuts against the edge 121 of the container body 12, thereby limiting the insertion depth of the first cover 13 or the second cover 60, and preventing the insertion depth from being too large or too small, thereby preventing the cavity 11 from being completely sealed.
[0056] For example, please refer to Figure 3 The reciprocating driving member 40 includes a first limit switch 41 and a second limit switch 42 . The first limit switch 41 and the second limit switch 42 are arranged at both ends of the moving stroke of the guide member 30 to limit the moving stroke of the guide member 30 .
[0057] The first limit switch 41 is located above the rotation center of the wire rod container 10, and the second limit switch 42 can be adjusted to a position close to or away from the first limit switch 41 to match wire rod containers 10 of different diameters. In other words, when a wire rod container 10 with a larger diameter is used, the second limit switch 42 can be adjusted to a position away from the first limit switch 41 to increase the travel of the guide member 30. When a wire rod container 10 with a smaller diameter is used, the second limit switch 42 can be adjusted to a position close to the first limit switch 41 to reduce the travel of the guide member 30.
[0058] In some embodiments, the second limit switch 42 is disposed above the side wall of the wire rod container 10 so that the outermost surface columns arranged along the spiral line can be supported by the side wall of the wire rod container 10 .
[0059] It is understood that the position adjustment method of the second limit switch 42 is not limited. In some embodiments, the reciprocating drive member 40 includes a bracket 43, the bracket 43 having a side plate 431 extending along the movement direction of the guide member 30, and a slide rail 4311 is provided on the side plate 431. The length direction of the slide rail 4311 is the same as the movement direction of the guide member 30. The second limit switch 42 is disposed on the slide rail 4311 and can be adjusted along the length direction of the slide rail 4311.
[0060] Illustratively, the reciprocating drive member 40 includes a bracket 43, a screw 44 rotatably mounted on the bracket 43, and a screw nut 45 threaded through the screw. The bracket 43 has two side plates 431 located on either side of the screw 44. The guide member 30 is fixed to the screw nut 45, with opposite sides of the guide member 30 abutting against the inner walls of the side plates 431, thereby guiding the movement of the guide member 30 through the side plates 431. It will be understood that, constrained by the side plates 431, as the screw 44 rotates, the guide member 30 and the screw nut 45 will move along the side plates 431.
[0061] In some embodiments, the reciprocating drive member 40 includes a screw drive member 46 . The screw drive member 46 is disposed on the bracket 43 . The screw drive member 46 is connected to the screw rod 44 to drive the screw rod 44 to rotate.
[0062] In some embodiments, the guide member 30 includes a guide support 31 and a guide roller 32 rotatably mounted on the guide support 31. Opposite sides of the guide support 31 abut the inner sides of the two side panels. The guide support 31 has a mounting arm extending laterally outward, at least partially positioned outside the bracket 43. The guide roller 32 is mounted on the guide support 31. A guide groove is defined on the outer wall of the guide roller 32, through which the face column is guided before entering the cavity 11.
[0063] For example, please refer to Figure 2 and Figure 5 The wire rod equipment includes a rotating assembly 50 having a rotating turntable 51. The wire rod container 10 can be placed on the turntable 51 to rotate with the turntable 51. When rotating, the center axis of the wire rod container 10 coincides with the center axis of the turntable 51. The turntable 51 supports the wire rod container 10 and drives the wire rod container 10 to rotate, making it easier to transport the wire rod container 10 and replace it with a new one.
[0064] Illustratively, a limiting groove 511 is provided on the top surface of the rotating table 51 , and the wire rod container 10 can at least partially fit into the limiting groove 511 , so that the wire rod container 10 remains relatively fixed to the rotating table 51 in a rotating state.
[0065] It is understandable that the shape of the limiting groove 511 is not limited. In some embodiments, the limiting groove 511 matches the bottom of the wire rod container 10, so that the bottom of the wire rod container 10 can be stuck in the limiting groove 511 and remain relatively fixed.
[0066] Exemplarily, the rotating assembly 50 includes a rotating motor 52 and a reversing reducer 53. The reversing reducer 53 is disposed below the rotating platform 51 to support and connect the rotating platform 51. The rotating motor 52 drives the platform to rotate via the reversing reducer 53. The connection between the reversing reducer 53 and the rotating platform 51 allows the rotating motor 52 to be arranged horizontally, thereby reducing the height of the rotating assembly 50 and facilitating spatial layout.
[0067] The rotating motor 52 is connected to the reversing reducer 53 through a coupling 54. In the working state, the rotating motor 52 rotates, and the power is transmitted to the rotating table 51 through the coupling 54 and the reversing reducer 53, driving the rotating table 51 and the wire rod container 10 to rotate.
[0068] Illustratively, the coiling equipment includes a base frame 70, on which the rotating assembly 50 and the reciprocating drive member 40 are both arranged, thereby ensuring the stability of the overall structure and facilitating the precise and smooth operation of the coiling operation.
[0069] The present application provides a wire rod method, which is applicable to a wire rod equipment. The wire rod method includes:
[0070] S1 introduces the face column into the wire rod container 10 through the guide member 30.
[0071] S2 controls the wire rod container 10 to rotate, controls the reciprocating drive member 40 to drive the guide member 30 to move back and forth above the wire rod container 10, so as to lay the surface columns in layers along the spiral line in the cavity 11.
[0072] In some embodiments, step S2 includes:
[0073] S21 confirms that the guide member 30 is at a preset position, wherein the preset position is the starting point or the end point of the reciprocating movement stroke.
[0074] It can be understood that when the guide member 30 is not in the preset position, the reciprocating drive member 40 is controlled to drive the guide member 30 to reset.
[0075] S22 controls the wire rod container 10 to rotate, and controls the reciprocating driving member 40 to drive the guide member 30 to move toward the first direction until one end of the moving stroke.
[0076] S23 controls the reciprocating driving member 40 to drive the guide member 30 to move in a second direction opposite to the first direction until it reaches the other end of the moving stroke.
[0077] It is understandable that when the guide member 30 moves to one end or the other end of the moving stroke, the first limit switch 41 or the second switch is triggered to achieve reverse movement.
[0078] It is understandable that step S22 and step S23 are repeatedly implemented until the surface columns are laid out in layers along the spiral lines to a preset height of the cavity 11 .
[0079] In some embodiments, the wire rod container 10 rotates at a constant speed, and the guide member 30 moves at a constant speed, so that the surface columns are laid out in layers along the Archimedean spiral within the cavity 11. It will be understood that the curvature of the surface columns laid out along the Archimedean spiral is always the same, so that the surface columns are subjected to uniform force along the length direction.
[0080] Exemplarily, the wire rod container 10 includes a container body 12 and a first cover 13, the cavity 11 passes through the container body 12 from top to bottom, and the first cover 13 can be removably set on the container body 12 to close the lower end of the cavity 11; the wire rod equipment includes a second cover 60, which can be removably set on the container body 12 to close the upper end of the cavity 11.
[0081] After step S2, the wire rod method includes:
[0082] S3 confirms that the surface column is laid to the preset height of the cavity 11 , and then covers the second cover 60 on the container body 12 to close the upper end of the cavity 11 .
[0083] It is understood that confirmation that the surface columns have been laid to a preset height in the cavity 11 can be achieved by measuring the weight of the surface columns. For example, a weighing module can be provided to measure the gravity of the wire rod container 10, and the weight of the surface columns can be determined by sensing changes in gravity until the weight reaches a preset level. Alternatively, confirmation can be achieved by measuring the height at which the surface columns have been laid. For example, a sensing module can be provided to sense a signal when the surface columns within the coil container 10 have been laid to a preset height, thereby confirming the laying height.
[0084] It is understandable that, in step S3, after the second cover 60 is placed on the container body 12 to close the upper end of the cavity 11, a preset time period may be waited for the dough to rest.
[0085] S4: turning over the wire rod container 10 so that the second cover 60 faces downward.
[0086] S5: dismantle the first cover 13 to remove it.
[0087] In the description of this application, the descriptions with reference to the terms "some embodiments", "exemplarily", etc. mean that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the embodiments of the present application. In this application, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner. In addition, those skilled in the art can combine different embodiments or examples described in this application and the features of different embodiments or examples without contradiction.
[0088] The foregoing description is merely a preferred embodiment of the present application and is not intended to limit the present application. Persons skilled in the art will readily appreciate that various modifications and variations are possible. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present application shall be included within the scope of protection of the present application.
Claims
1. A wire rod equipment, characterized in that The wire rod equipment comprises: A rotatable wire rod container having a cavity for accommodating a face column; A guide member provided above the wire rod container, the guide member being used to support and guide the surface column into the cavity; a reciprocating drive member for driving the guide member to reciprocate above the wire rod container so as to lay the face columns in layers along a spiral line in the cavity when the wire rod container rotates; Wherein, the reciprocating driving member drives the guide member to reciprocate along the radial direction of the wire rod container, the wire rod container moves at a uniform speed, and the guide member moves at a uniform speed; The wire rod container comprises a container body and a first cover, the cavity passes through the container body from top to bottom, and the first cover is detachably mounted on the container body to seal the lower end of the cavity; The wire rod equipment includes a second cover body, which is detachably provided on the container body to close the upper end of the cavity.
2. A wire rod equipment according to claim 1, characterized in that, The wire rod equipment includes a column, which is arranged at the bottom rotation center of the wire rod container and extends in the wire rod cavity along the rotation center axis direction of the wire rod container.
3. A wire rod equipment according to claim 2, characterized in that: The column is detachably arranged on the wire rod container.
4. A wire rod equipment according to claim 1, characterized in that: The reciprocating drive member includes a first limit switch and a second limit switch, wherein the first limit switch and the second limit switch are arranged at both ends of the moving stroke of the guide member to limit the moving stroke of the guide member; The first limit switch is located above the rotation center of the wire rod container, and the second limit switch can be adjusted to a position close to or away from the first limit switch to match wire rod containers of different diameters.
5. The wire rod equipment according to claim 1, characterized in that: The reciprocating drive member includes a bracket, a screw rod rotatably arranged on the bracket, and a screw rod nut passing through the screw rod; The bracket has two side plates distributed on both sides of the screw rod, the guide member is fixed to the screw rod nut, and the opposite sides of the guide member respectively abut against the inner walls of the side plates, thereby guiding the movement of the guide member through the side plates.
6. The wire rod equipment according to claim 1, characterized in that: The wire rod equipment includes a rotating assembly having a rotatable rotating table, and the wire rod container can be placed on the rotating table to rotate with the rotating table; in the rotating state, the rotation center axis of the wire rod container coincides with the rotation center axis of the rotating table.
7. A wire rod equipment according to claim 6, characterized in that: A limiting groove is provided on the top surface of the rotating table, and at least a portion of the wire rod container can be inserted into the limiting groove, so that the wire rod container remains relatively fixed to the rotating table in a rotating state.
8. A wire rod method, applicable to the wire rod apparatus according to any one of claims 1 to 7, characterized in that: Introducing the face column into the wire rod container through the guide piece; The wire rod container is controlled to rotate, and the reciprocating driving member is controlled to drive the guide member to move back and forth above the wire rod container, so as to lay the surface columns in layers along the spiral lines in the cavity.
9. The wire rod method according to claim 8, characterized in that The wire rod container rotates at a uniform speed, and the guide member moves at a uniform speed, so as to lay the surface columns in layers along the Archimedean spiral line in the cavity.
10. The wire rod method according to claim 8, characterized in that The wire rod container includes a container body and a first cover, the cavity passes through the container body from top to bottom, and the first cover is detachably mounted on the container body to seal the lower end of the cavity; the wire rod device includes a second cover, which is detachably mounted on the container body to seal the upper end of the cavity; After the step of controlling the reciprocating drive member to drive the guide member to reciprocate above the wire rod container to lay the surface columns in layers along the spiral lines in the cavity, the wire rod method includes: Confirm that the surface column is laid to the preset height of the cavity, and cover the second cover on the container body to close the upper end of the cavity; turning over the wire rod container so that the second cover faces downward; The first cover is disassembled to be exposed.
Citation Information
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