Automatic drum-shaped wine bottle positioning and spacing control device
By setting brush components and positioning blocks on both sides of the conveyor belt, the problem of uneven spacing of the wine bottles during the conveying process is solved, and the precise positioning and spacing control of the wine bottles is achieved, which improves production efficiency and reduces costs.
Patent Information
- Application Number
- CN202422550931.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-22
- Publication Date
- 2025-08-22
- Estimated Expiration
- 2034-10-22
AI Technical Summary
In the prior art, the distance between the wine bottles during the conveying process is uneven, resulting in inaccurate problems of frost, paint loss and filling, and the existing devices are low in adaptability and high in cost.
An automated drum-shaped wine bottle positioning and spacing control device is adopted. By setting brush components on both sides of the conveyor belt, the brushes come into contact with the wine bottle to adjust the position, and combining the positioning blocks to ensure that the wine bottles remain linearly arranged and spacing consistent during the conveying process.
It realizes precise positioning and spacing control of wine bottles, improves production efficiency, reduces labor costs, has a wide range of application, and is simple in structure and has high reliability.
Smart Images

Figure CN223254151U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of liquor packaging, and more specifically, to an automatic drum-type liquor bottle positioning and spacing control device. Background Art
[0002] Liquor packaging is a crucial step in the production process. During the production process, bottles need to be transported to the filling area via conveyor belts after cleaning. On the one hand, workers cannot ensure a uniform and fixed spacing between bottles when placing them on the conveyor belt. On the other hand, bottles may pass through special areas such as synchronous chain conveyor lane changes and conveyor belt bends during transportation, which will cause the spacing between bottles to change, resulting in friction between bottles, causing problems such as scratches and paint peeling, seriously affecting product quality. In addition, when the bottles reach the filling area, the spacing between adjacent bottles may be inconsistent. The bottles cannot be aligned one by one with the bottle wheel slots of the subsequent filling machine, which in turn causes the filling machine to be unable to accurately clamp, resulting in serious consequences such as liquor leakage during filling and even machine damage, making normal filling impossible.
[0003] The existing technology generally adopts a spiral bottle separator to separate and position the wine bottles or adds a synchronous chain positioning block on the conveyor belt to adjust the position of the wine bottles.
[0004] The spiral bottle separator is a screw structure, usually installed on a conveyor belt and can rotate axially. It is powered by a motor, which transmits the rotational motion to the spiral shaft through transmission devices such as couplings and reducers, thereby driving the spiral bottle separator to work. Its main function is to adjust the spacing between the wine bottles on the conveyor belt waiting to enter the filling machine, so that the wine bottles can be evenly entered into the bottle-moving wheel slots of the filling machine to achieve precise filling. During the bottle separation process, the spiral bottle separator contacts the sharp corners of the wine bottles and exerts a large force, which can easily cause wine bottles made of special materials to be scratched and paint to fall off. At the same time, the spiral bottle separator needs to be configured with different tooling and fixtures according to different bottle types, with low adaptability and high customization costs.
[0005] A conveyor belt with synchronous chain positioning blocks adds several synchronous chain positioning blocks with equal spacing to a general conveyor belt. During installation, it should be ensured that the positioning blocks will not move or loosen during high-speed operation. The principle is to manually place the wine bottles in front of the synchronous chain positioning blocks, and use the positioning blocks to block and arrange them at equal spacing, thereby fixing the spacing between the wine bottles. When placing the wine bottles in the bottle washing area, the staff cannot completely ensure that the wine bottles are in front of the synchronous chain positioning blocks, which reduces production efficiency. At the same time, the wine bottles will deviate when passing through some special areas such as the synchronous chain conveyor change or conveyor belt bends. Manual intervention is still required to adjust the position of the wine bottles, which increases labor costs.
[0006] Reference Figure 1 As shown, Figure 1It is a three-dimensional diagram of the automatic filling equipment of blueberry wine in the prior art. The Chinese patent document (authorization announcement number CN220098519U, authorization announcement date November 28, 2023) discloses an automatic filling equipment of blueberry wine, including a transmission seat 2', a cleaning cover 5', an electric push rod 9' and an inspection cover 11'. Rollers 3' are rotatably installed on both sides of the interior of the transmission seat 2', and a conveyor belt 4' is rotatably installed on the outer wall of the roller 3'. A driving motor 301' is fixedly installed on one side of the back of the transmission seat 2'. A plurality of sets of fixed foot rings 8' are fixedly installed at equal distances on the top of the conveyor belt 4'. A lifting plate 901' is fixedly installed on the output end of the electric push rod 9', and a mounting plate 902' is fixedly installed on the front of the lifting plate 901'. The top of the mounting plate 902' is provided with a Three sets of mounting rings 903' are provided, and a filling head 10' is slidably installed inside the mounting ring 903', a connecting air pipe 6' is fixedly installed on the front and back of the cleaning cover 5', and a plurality of high-pressure nozzles are fixedly installed on the inner side of the connecting air pipe 6', a green light is fixedly installed on the top of the inside of the inspection cover 11', and a plurality of detection cameras are fixedly installed on the rear side of the inner wall of the inspection cover 11', a bottom pad 801' is fixedly installed on the inner side of the fixed foot ring 8', and a protective pad 802' is attached to the inner wall of the fixed foot ring 8', an alarm 12' is fixedly installed on the front of the inspection cover 11', and a warning light 1201' is fixedly installed above the alarm 12', a bracket 1' is fixedly installed on both sides of the bottom of the transmission seat 2', and a plurality of fixing holes 101' are provided on the bottom of the bracket 1'. This solution utilizes fixed foot rings 8' to secure the bottoms of filled bottles as they are placed on the conveyor belt 4', thereby increasing the stability of the filled bottles as they move on the conveyor belt 4'. The fixed foot rings 8' also position the distance between the filled bottles, preventing collisions between the bottles during transport. However, the conveyor belt structure of this solution is equivalent to a conveyor belt with synchronous chain positioning blocks. When workers place bottles, it is not possible to completely ensure that the bottles are placed in front of the synchronous chain positioning blocks. This results in low accuracy in bottle positioning and spacing control, reducing production efficiency. Therefore, this presents a technical problem that urgently needs to be addressed in this field. Utility Model Content
[0007] In view of this, the utility model provides an automated drum-type wine bottle positioning and spacing control device, which can achieve precise positioning and spacing control of wine bottles and improve production efficiency.
[0008] The present application provides an automated drum-type wine bottle positioning and spacing control device, which is installed on a conveying platform. A conveyor belt is provided around the conveying platform. The conveyor belt is used to convey the drum-type wine bottles. Fixed shafts are relatively provided on both sides of the conveyor belt. The fixed shafts are perpendicular to the conveying platform and connected to the conveying platform. The device includes a brush assembly distributed on both sides of the conveyor belt. The brush assembly includes a brush and a brush holder. The brush is located on the side of the brush holder close to the conveyor belt. The brush is connected to the fixed shaft through the brush holder. During the conveying process of the drum-type wine bottle, the brush contacts the drum-type wine bottle. The brush is used to adjust the position of the drum-type wine bottle on the conveyor belt along the width direction of the conveyor belt. The plane where the brush is located has an angle with the plane where the conveying platform is located.
[0009] Optionally, the brush includes bristles and a brush handle connected to the bristles, the bristles are located on a side of the brush handle close to the drum-shaped wine bottle, the bristles are in contact with the drum-shaped wine bottle, and the brush handle is connected to the brush holder.
[0010] Optionally, the fixed shaft includes a first fixed shaft and a second fixed shaft arranged opposite to each other on both sides of the conveyor belt, and the brush assembly includes a first brush assembly and a second brush assembly, the first brush assembly is connected to the first fixed shaft, and the second brush assembly is connected to the second fixed shaft.
[0011] Optionally, the brush holder includes an inner holder and an outer holder connected to the inner holder, and the inner holder is located on a side of the outer holder close to the brush;
[0012] The inner bracket is a flat plate structure, the plane where the inner bracket is located is parallel to the plane where the brush is located, and the brush handle is fixedly connected to the inner bracket;
[0013] The outer bracket is a cylinder, the outer bracket and the fixed shaft are perpendicular to each other, and the outer bracket is connected to the fixed shaft through an adjusting bracket.
[0014] Optionally, the adjustment bracket includes a fixed shaft connection area, an outer bracket connection area and an adjustment area connected in sequence, and the fixed shaft connection area, the outer bracket connection area and the adjustment area are arranged along the transmission direction of the conveyor belt;
[0015] The fixed shaft connection area includes a front connection part and a rear connection part, both of which are C-shaped plates, with the C-shaped opening of the front connection part facing the rear connection part, and the C-shaped opening of the rear connection part facing the front connection part, and the front connection part and the rear connection part are mutually fitted and sleeved on the outer surface of the fixed shaft;
[0016] The outer bracket connection area is a cylinder, and an outer bracket through hole is opened on the outer bracket connection area. The outer bracket through hole passes through the outer bracket connection area in a direction parallel to the outer bracket, and the outer bracket connection area is sleeved on the outer surface of the outer bracket through the outer bracket through the outer bracket through hole;
[0017] The adjustment area is connected to the handle at a side away from the outer bracket connection area.
[0018] Optionally, the angle ranges from 0° to 20°.
[0019] Optionally, along the width direction of the conveyor belt, the distance between the first brush assembly and the second brush assembly ranges from 40 mm to 50 mm.
[0020] Optionally, along the extension direction of the fixed axis, the distance between the brush and the conveyor belt ranges from 40 mm to 130 mm.
[0021] Optionally, the width of the bristles along the width direction of the conveyor belt is not less than 5 mm.
[0022] Optionally, positioning blocks are provided on the conveyor belt, and the positioning blocks are arranged in sequence along the transmission direction of the conveyor belt; along the transmission direction of the conveyor belt, the distances between adjacent positioning blocks are the same.
[0023] Compared with the prior art, the automated drum-type wine bottle positioning and spacing control device provided by the present invention achieves at least the following beneficial effects:
[0024] The automatic drum-type wine bottle positioning and spacing control device provided by the utility model has an additional brush assembly on the fixed axis of the conveying platform compared with the prior art. The brush assembly is distributed on both sides of the conveyor belt. The brush assembly includes brushes. There is a certain inclination between the brushes and the conveying platform. The brushes can adjust the position of the wine bottles on the conveyor belt from the width direction of the conveyor belt. In the process of conveying the wine bottles on the conveyor belt, the brushes on both sides of the wine bottles simultaneously generate interaction force with the wine bottles, so as to separate the wine bottles that may cause friction, and position and guide the wine bottles that are offset after being conveyed by the synchronous chain on the conveyor belt, so as to ensure that the wine bottles remain in a straight line during the conveying process and move backward relative to the conveyor belt, and the bottom of the wine bottle is just stuck in front of the positioning block on the conveyor belt. The end is in close contact with it, realizing accurate positioning and spacing control of the wine bottle, so that it can be aligned with the bottle wheel slot of the subsequent filling machine, realizing accurate clamping and completing the filling. During the operation of the entire device, there will be no production problems such as wine bottle scratches and paint peeling, thus ensuring stable product quality. The automatic drum-type wine bottle positioning and spacing control device is a passive mechanical mechanism with the advantages of simple structure, high reliability, easy installation, low manufacturing process difficulty, low maintenance cost, etc. It can realize automatic work, reduce labor costs and improve production efficiency. At the same time, the device can adjust the installation position of the brush assembly, the material of the brush assembly and other parameters according to the bottle specifications of different production requirements. It has certain ductility, a wide range of applications and high reliability.
[0025] Of course, any product implementing the present utility model does not necessarily need to achieve all of the above-mentioned technical effects at the same time.
[0026] Other features and advantages of the present invention will become apparent from the following detailed description of exemplary embodiments of the present invention with reference to the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
[0028] Figure 1 It is a three-dimensional diagram of an automatic blueberry wine filling device in the prior art;
[0029] Figure 2 This is a structural diagram of an automated drum-type wine bottle positioning and spacing control device provided by the utility model;
[0030] Figure 3 This is an assembly diagram of a portion of the first fixed shaft, the first brush assembly, and the first adjustment bracket provided by the utility model;
[0031] Figure 4 yes Figure 2 Enlarged view of point A in the middle. DETAILED DESCRIPTION
[0032] Various exemplary embodiments of the present invention will now be described in detail with reference to the accompanying drawings. It should be noted that unless otherwise specifically stated, the relative arrangements of components and steps, numerical expressions and numerical values set forth in these embodiments do not limit the scope of the present invention.
[0033] The following description of at least one exemplary embodiment is merely illustrative in nature and is in no way intended to limit the present invention, its application, or uses.
[0034] Technologies, methods, and devices known to those of ordinary skill in the relevant art may not be discussed in detail, but where appropriate, the technologies, methods, and devices should be considered part of the specification.
[0035] In all examples shown and discussed herein, any specific values should be interpreted as merely exemplary and not limiting. Therefore, other examples of the exemplary embodiments may have different values.
[0036] It should be noted that like reference numerals and letters refer to like items in the following figures, and therefore, once an item is defined in one figure, it need not be further discussed in subsequent figures.
[0037] Reference Figure 2-Figure 4 , Figure 2 This is a structural diagram of an automated drum-type wine bottle positioning and spacing control device provided by the utility model; Figure 3This is an assembly diagram of a portion of the first fixed shaft, the first brush assembly, and the first adjustment bracket provided by the utility model; Figure 4 yes Figure 2 Enlarged view of point A in the middle.
[0038] Reference Figure 2 As shown, this embodiment provides an automated drum-type wine bottle positioning and spacing control device, which is installed on a conveying platform 01. A conveyor belt (not shown in the figure) is provided around the conveying platform 01. The conveyor belt is used to convey wine bottles. Optionally, the wine bottles can be drum-type wine bottles. Fixed shafts 3 are relatively arranged on both sides of the conveyor belt. The fixed shafts 3 are perpendicular to the conveying platform 01 and connected to the conveying platform 01. The fixed shafts 3 include a first fixed shaft 31 and a second fixed shaft 32. The first fixed shaft 31 and the second fixed shaft 32 are mirror-symmetrically arranged about a symmetry plane m of the conveyor belt. The weighing surface m is perpendicular to the width direction Z of the conveyor belt. The first fixed axis 31 and the second fixed axis 32 are used to install and fix the brush assembly. The conveying platform 01 can be a flat structure. The plane where the conveyor belt is located can be regarded as the plane where the conveying platform 01 is located. The extension direction Y of the first fixed axis 31 and the second fixed axis 32 is perpendicular to the plane where the conveying platform 01 is located. The conveying platform 01 is used to provide an installation point for an automated drum-type wine bottle positioning and spacing control device. At the same time, a dust cover (not shown in the figure) and other structures can be installed on the conveying platform 01. The dust cover plays a role in isolating dust and preventing dust from falling on the bottles.
[0039] Continue to refer to Figure 2 As shown, the main bodies of the first fixed shaft 31 and the second fixed shaft 32 can both be cylindrical, and a threaded hole (not shown in the figure) can be opened at the bottom of the first fixed shaft 31 near the conveying platform 01, and the first fixed shaft 31 and the conveying platform 01 can be fixedly connected by using external hexagonal bolts, flat washers, spring washers and other structures. At the same time, a threaded hole (not shown in the figure) can be opened at the bottom of the second fixed shaft 32 near the conveying platform 01, and the second fixed shaft 32 and the conveying platform 01 can be fixedly connected by using external hexagonal bolts, flat washers, spring washers and other structures. As long as it is ensured that the first fixed shaft 31 and the second fixed shaft 32 can be fixedly connected to the conveying platform 01, the connection method between the first fixed shaft 31 and the conveying platform 01 and the connection method between the second fixed shaft 32 and the conveying platform 01 can be adaptively adjusted according to actual conditions, and no specific limitation is made here.
[0040] Continue to refer to Figure 2As shown, the automated drum-type wine bottle positioning and spacing control device includes brush assemblies distributed on both sides of the conveyor belt. The brush assemblies on both sides have the same structure. The brush assembly includes a brush and a brush holder. The brush is connected to the fixed shaft through the brush holder. During the conveyance of the wine bottles, the brush contacts the wine bottles. The brush is used to adjust the position of the wine bottles on the conveyor belt along the width direction Z of the conveyor belt. The brush includes bristles and a brush handle connected to the bristles. The bristles are located on the side of the brush handle close to the wine bottle. The bristles contact the wine bottle, and the brush handle is connected to the brush holder.
[0041] The following embodiment is described with two brush assemblies:
[0042] Continue to refer to Figure 2 As shown, the brush assembly includes a first brush assembly 1 and a second brush assembly 2. The first brush assembly 1 and the second brush assembly 2 are arranged on both sides of the conveyor belt relative to each other. The first brush assembly 1 is arranged on the first fixed shaft 31, and the second brush assembly 2 is arranged on the second fixed shaft 32.
[0043] Combine Figure 2 and Figure 3 As shown, the first brush assembly 1 includes a first brush 11 and a first brush holder 12. The first brush 11 is located on the side of the first brush holder 12 close to the conveyor belt. The extension direction of the first brush 11 is the same as the transmission direction X of the conveyor belt. The conveyor belt can drive the wine bottle to move in the direction from a to b. During the movement of the wine bottle, the wine bottle can contact the first brush 11. The first brush 11 includes first bristles 111 and a first brush handle 112 connected to the first bristles 111. The first bristles 111 are located on the first brush handle 112 close to the conveyor belt. On one side of the conveyor belt, when the wine bottle is conveyed on the conveyor belt, the first bristles 111 can contact the wine bottle, and an interaction force is generated between the first bristles 111 and the moving wine bottle. The interaction force includes but is not limited to the resistance of the first bristles 111 to the wine bottle and the friction between the first bristles 111 and the wine bottle. The first bristles 111 can adjust the position of the wine bottle in the width direction Z of the conveyor belt, and the first brush handle 112 has the function of limiting the first bristles 111 and connecting the first bristles 111 to the first brush holder 12.
[0044] Continue to combine Figure 2 and Figure 3 As shown, the first brush 11 is a planar structure as a whole, and there is an angle between the plane where the first brush 11 is located and the plane where the conveying platform 01 is located. It can be understood that the first brush 11 has a certain inclination compared with the conveying platform 01. Since the conveyor belt is arranged on the conveying platform 01, the plane where the conveyor belt is located can also be regarded as the plane where the conveying platform 01 is located. Therefore, it can be said that the first brush 11 has a certain inclination compared with the conveyor belt. Optionally, the angle between the plane where the first brush 11 is located and the plane where the conveying platform 01 is located ranges from 0° to 20°.
[0045] This embodiment explains that there is a certain angle between the plane where the first brush 11 is located and the plane where the conveying platform 01 is located so as to achieve a moderate interaction force between the first bristles 111 and the wine bottle. The angle between the plane where the first brush 11 is located and the plane where the conveying platform 01 is located can be 5°, 8°, 10°, 12°, 14°, 16°, 19° or 20°, etc. Since the automated drum-type wine bottle positioning and spacing control device is applied to the production line before the wine bottles are filled, if the angle between the plane where the first brush 11 is located and the plane where the conveying platform 01 is located is greater than 20°, the number of brush fibers of the first bristles 111 in contact with the wine bottles is small, and the pressure generated is small, resulting in insufficient interaction force between the first bristles 111 and the wine bottles, and the position of the wine bottles cannot be adjusted by relying on the first bristles 111. Therefore, in this embodiment, the angle between the plane where the first brush 11 is located and the plane where the conveying platform 01 is located is set to a range of 0° to 20°, which can increase the number of brush fibers of the first bristles 111 in contact with the wine bottles and strengthen the interaction force between the two.
[0046] It should be noted that:
[0047] (1) The angle between the plane where the first brush 11 is located and the plane where the conveying platform 01 is located depends on parameters such as the specifications of the wine bottles and production requirements. It can be adaptively adjusted according to actual conditions and is not specifically limited here.
[0048] (2) The angle between the plane where the first brush 11 is located and the plane where the conveying platform 01 is located is adjusted according to the curvature of the bottle body. The larger the curvature of the bottle body, the larger the angle between the plane where the first brush 11 is located and the plane where the conveying platform 01 is located. This can ensure that there is a sufficiently large amount of contact between the first brush 11 and the bottle, so that sufficient interaction force is generated between the first brush 11 and the bottle, which is convenient for adjusting the position of the bottle on the conveyor belt. When the curvature of the bottle body is 0°, the angle between the plane where the first brush 11 is located and the plane where the conveying platform 01 is located can be 0°, that is, the plane where the first brush 11 is located and the plane where the conveying platform 01 are located are parallel to each other; by adjusting the angle between the plane where the first brush 11 is located and the plane where the conveying platform 01 is located according to the curvature of the bottle body, it can ensure that the same automated drum-type bottle positioning and spacing control device can match different production lines, thereby improving the applicability and scope of use of the automated drum-type bottle positioning and spacing control device.
[0049] Optionally, continue combining Figure 2 and Figure 3 As shown, along the extension direction Y of the fixed shaft 3, the distance between the first brush 11 and the conveyor belt ranges from 40 mm to 130 mm.
[0050] This embodiment explains that along the extension direction Y of the fixed axis 3, there is a certain distance between the first brush 11 and the conveyor belt to achieve the friction effect of the first brush 11 on the wine bottle. The distance between the first brush 11 and the conveyor belt can be 40mm to 130mm, such as the distance between the first brush 11 and the conveyor belt is 40mm, 65mm, 90mm, 115mm, 120mm or 130mm, so as to avoid the first brush 11 being blocked by the fixing frame 03 and unable to be installed normally when the distance between the first brush 11 and the conveyor belt is too close, and also avoid the first brush 111 and the wine bottle being blocked when the distance between the first brush 11 and the conveyor belt is too far. Contact at the bottleneck causes the wine bottle to tilt, resulting in problems such as production line jamming, blockage and reduced production efficiency. Therefore, in this embodiment, the distance range between the first brush 11 and the conveyor belt along the extension direction Y of the fixed axis 3 is set to 40mm to 130mm, which can avoid the problem of the first brush 11 not being able to be installed normally while avoiding problems such as production line jamming, blockage and reduced production efficiency. It should be noted that the distance between the first brush 11 and the conveyor belt along the extension direction Y of the fixed axis 3 depends on parameters such as the specifications of the wine bottle and the installation position of the fixed frame 03 on the conveying platform 01. It can be adaptively adjusted according to actual conditions and is not specifically limited here.
[0051] Optionally, continue combining Figure 2 and Figure 3 As shown, the material of the first bristles 111 can be artificial fibers, and the diameter of the artificial fibers can range from 0.24 mm to 0.26 mm. The larger the diameter of the artificial fibers, the greater the hardness of the first bristles 111. The hardness of the first bristles 111 ranges from N-4 to N-6.
[0052] This embodiment explains that the first bristles 111 have a certain hardness to achieve an interaction force between the first brush 11 and the wine bottle. The hardness range of the first bristles 111 can be N-4 to N-6, such as the hardness of the first bristles 111 is N-4, N-4.5, N-5, N-5.5 or N-6, etc., so as to avoid the first bristles 111 being too small and the force when the first brush 11 contacts the wine bottle being too small, resulting in the inability to rely on the first brush 11 to adjust the position of the wine bottle. It can also avoid the first bristles 111 being too large and scratching the wine bottle. Therefore, this embodiment sets the hardness range of the first bristles 111 to N-4 to N-6, which can avoid the inability to rely on the first brush 11 to adjust the position of the wine bottle while preventing the wine bottle from being scratched.
[0053] Optionally, continue combining Figure 2 and Figure 3As shown, the width of the first bristles 111 along the width direction Z of the conveyor belt is not less than 5 mm. If the width of the first bristles 111 along the width direction Z of the conveyor belt is less than 5 mm, the width of the first bristles 111 is too short, and the wine bottle is likely to come into direct contact with the first brush handle 112, and the first brush handle 112 will scratch the wine bottle. In other embodiments, the lower limit of the width of the first bristles 111 along the width direction Z of the conveyor belt can be adaptively adjusted according to parameters such as the material of the wine bottle and production requirements, and is not specifically limited here.
[0054] Optionally, continue combining Figure 2 and Figure 3 As shown, along the transmission direction X of the conveyor belt, the length of the first bristles 111 ranges from 80 mm to 100 mm.
[0055] This embodiment explains that the first bristles 111 have a certain length along the transmission direction X of the conveyor belt to achieve an interaction force between the first brush 11 and the wine bottle. The length of the first bristles 111 along the transmission direction X of the conveyor belt can be 80mm to 100mm, such as the length of the first bristles 111 along the transmission direction X of the conveyor belt is 80mm, 85mm, 90mm, 95mm or 100mm, etc., so as to avoid the situation when the length of the first bristles 111 is too short and the first brush 11 is in insufficient contact time with the wine bottle, resulting in the wine bottle position not being adjusted into place, and to avoid the waste of materials and costs when the length of the first bristles 111 is too long. Therefore, this embodiment sets the length range of the first brush 111 along the transmission direction X of the conveyor belt to 80mm to 100mm, which can avoid the problem of waste of materials and costs while avoiding the situation when the wine bottle position is not adjusted into place.
[0056] Optionally, refer to Figure 3 As shown, the material of the first brush handle 112 is plastic, and the plastic materials that can be selected include but are not limited to oil nylon. Oil nylon is a new type of engineering plastic modified by adding special oil agent to ordinary nylon. In addition to the advantages of ordinary cast nylon such as light weight, easy cutting, high strength, good toughness, low cost, and long service life, it also has excellent wear resistance and self-lubrication, high impact resistance, high pressure resistance and good temperature stability. In other embodiments, the material of the first brush handle 112 can be adaptively adjusted according to actual conditions, and no specific limitation is made here.
[0057] Continue to combine Figure 2 and Figure 3As shown, the second brush assembly 2 and the first brush assembly 1 are arranged in a mirror-symmetrical manner about the symmetry plane m of the conveyor belt. The second brush assembly 2 includes a second brush 21 and a second brush holder 22. The second brush 21 is located on the side of the second brush holder 22 close to the conveyor belt. During the movement of the wine bottle, the wine bottle can contact the second brush 21, and at the same time, the wine bottle contacts the first brush 11. The first brush 11 and the second brush 21 are relatively arranged on both sides of the wine bottle. The first brush 11 and the second brush 21 both generate interaction forces with the wine bottle. The first brush 11 and the second brush 21 cooperate with each other to enable the wine bottle to maintain balance during the transmission process while adjusting its position. The position of the wine bottle on the conveyor belt and the spacing between adjacent wine bottles in the transmission direction X of the conveyor belt can be automatically controlled without manual work. The structure of the second brush assembly 2, the installation position of the second brush assembly 2, etc. can all refer to the first brush assembly 1 and will not be repeated here.
[0058] Reference Figure 2 As shown, along the width direction Z of the conveyor belt, there is a certain distance between the first brush 11 and the second brush 21. The distance is usually smaller than the width of the conveyor belt and can be adaptively adjusted according to parameters such as the thickness of the wine bottle. The distance setting requirements between the first brush 11 and the second brush 21 meet the conditions that the first brush 11 and the second brush 21 are in contact with the wine bottle at the same time, the first brush 11 and the second brush 21 cooperate with the wine bottle to adjust the position and spacing of the wine bottle at the same time, and the wine bottle can pass smoothly between the first brush 11 and the second brush 21.
[0059] Continue to refer to Figure 2 As shown, along the width direction Z of the conveyor belt, the distance between the first brush 11 and the second brush 21 ranges from 40 mm to 50 mm.
[0060] This embodiment explains that along the width direction Z of the conveyor belt, there is a certain distance between the first brush 11 and the second brush 21 to achieve the purpose of positioning and controlling the spacing of the wine bottles. The distance between the first brush 11 and the second brush 21 along the width direction Z of the conveyor belt ranges from 40mm to 50mm. For example, the distance between the first brush 11 and the second brush 21 along the width direction Z of the conveyor belt is 40mm, 42mm, 44mm, 46mm, 48mm or 50mm, etc., so as to avoid the first brush 11 and the second brush 21 from having too much obstruction on the wine bottles when the distance between the first brush 11 and the second brush 21 is too close, resulting in the wine bottles being unable to pass smoothly and subsequent wine bottles being piled up and colliding. It can also avoid the first brush 11 and the second brush 21 from being unable to contact the wine bottles when the distance between the first brush 11 and the second brush 21 is too far, and the adjustment cannot be achieved. For the purpose of positioning the wine bottles, the present embodiment sets the distance range between the first brush 11 and the second brush 21 along the width direction Z of the conveyor belt to 40mm to 50mm, which can avoid the problem that the wine bottles cannot be smoothly conveyed and the wine bottles pile up and collide with each other while avoiding the problem that the position of the wine bottles cannot be adjusted; it should be noted that, along the width direction Z of the conveyor belt, the first brush 11 is the structure that the first brush assembly 1 is closest to the second brush assembly 2, and the second brush 21 is the structure that the second brush assembly 2 is closest to the first brush assembly 1. Therefore, the distance between the first brush 11 and the second brush 21 is also the distance between the first brush assembly 1 and the second brush assembly 2; in other embodiments, along the width direction Z of the conveyor belt, the distance between the first brush 11 and the second brush 21 can be adaptively adjusted according to actual conditions, and is not specifically limited here.
[0061] Reference Figure 2 As shown, the overall structure of the brush bracket and the adjustment bracket is as follows: the brush bracket includes an inner bracket and an outer bracket connected to the inner bracket, the inner bracket is located on the side of the outer bracket close to the brush; the inner bracket is a flat structure, the plane where the inner bracket is located is parallel to the plane where the brush is located, and the brush handle is fixedly connected to the inner bracket; the outer bracket is a cylinder, the outer bracket and the fixed axis are perpendicular to each other, and the outer bracket is connected to the fixed axis through the adjustment bracket; the adjustment bracket includes a fixed axis connection area, an outer bracket connection area and an adjustment area connected in sequence, and the fixed axis connection area, the outer bracket connection area and the adjustment area are transmitted along the conveyor belt. The fixed axis connection area includes a front connection part and a rear connection part, both of which are C-shaped plates, the C-shaped opening of the front connection part faces the rear connection part, and the C-shaped opening of the rear connection part faces the front connection part, and the front connection part and the rear connection part cooperate with each other and are sleeved on the outer surface of the fixed axis; the outer bracket connection area is a cylinder, and an outer bracket through hole is opened on the outer bracket connection area, and the outer bracket through hole passes through the outer bracket connection area in a direction parallel to the outer bracket, and the outer bracket connection area is sleeved on the outer surface of the outer bracket through the outer bracket through the outer bracket through hole; the adjustment area is connected to the handle on the side away from the outer bracket connection area.
[0062] The following embodiment is still described with two brush assemblies:
[0063] Combine Figure 2 and Figure 3 As shown, the first brush 11 is connected to the first fixed shaft 31 through the first brush bracket 12, and the first brush bracket 12 includes a first inner bracket 121 and a first outer bracket 122 connected to the first inner bracket 121. The first inner bracket 121 is located on the side of the first outer bracket 122 close to the first brush 11; the first inner bracket 121 can be a flat structure, and the plane where the first inner bracket 121 is located is parallel to the plane where the first brush 11 is located. When the first brush 11 is installed on the first brush bracket 12, the first brush handle 112 and the first inner bracket 121 are fitted together, and the first brush handle 112 and the first inner bracket 121 are fixedly connected by structures such as bolts, flat washers, spring washers and nuts. The first brush handle 112 and the first inner bracket 121 can also be fixedly connected by bonding, welding, etc., which is not specifically limited here.
[0064] Combine Figure 2-Figure 4 As shown, the first inner bracket 121 and the first outer bracket 122 can both be made of metal. The metal materials that can be selected include but are not limited to stainless steel. Stainless steel has the advantages of corrosion resistance, high temperature resistance, light weight, long service life, fire resistance and heat resistance, and easy cleaning. The first inner bracket 121 and the first outer bracket 122 can be fixedly connected by welding or the like. The first outer bracket 122 can be a cylinder. The overall shape of the first inner bracket 121 and the first outer bracket 122 is similar to a flag with a flagpole, and the first outer bracket 122 is perpendicular to the first fixed axis 31.
[0065] Continue to combine Figure 2-Figure 4As shown, the first outer bracket 122 is connected to the first fixed shaft 31 through the first adjustment bracket 41, and the relative position between the first brush bracket 12 and the first fixed shaft 31 can be adjusted through the first adjustment bracket 41, so that the relative position between the first brush 11 and the conveyor belt and the wine bottle can be adjusted. The first adjustment bracket 41 includes a fixed shaft connection area 411, an outer bracket connection area 412 and an adjustment area 413 connected in sequence. The fixed shaft connection area 411, the outer bracket connection area 412 and the adjustment area 413 are arranged along the transmission direction X of the conveyor belt. The fixed shaft connection area 411 includes a first front connection part 411a and a first rear connection part 411b. The main body of the first front connection part 411a and the main body of the first rear connection part 411b can both be C-shaped plates. The first front connection part 41 1a's C-shaped opening faces the first rear connecting part 411b, and the C-shaped opening of the first rear connecting part 411b faces the first front connecting part 411a. The first front connecting part 411a and the first rear connecting part 411b cooperate with each other so that the fixed shaft connecting area 411 is sleeved on the outer surface of the first fixed shaft 31. The side of the first front connecting part 411a away from the outer bracket connecting area 412 and the side of the first rear connecting part 411b away from the outer bracket connecting area 412 can be fixedly connected by bolts. When the fixed shaft connecting area 411 moves up and down along the extension direction Y of the first fixed shaft 31, the installation position of the first adjustment bracket 41 relative to the first fixed shaft 31 can be adjusted, thereby adjusting the distance between the first brush 11 and the conveyor belt along the extension direction Y of the first fixed shaft 31.
[0066] Continue to combine Figure 2-Figure 4 As shown, the overall structure of the outer bracket connection area 412 is a cylinder, and an outer bracket through hole 4120 is opened on the outer bracket connection area 412. The outer bracket through hole 4120 passes through the outer bracket connection area 412 in a direction parallel to the outer bracket. The outer bracket connection area 412 is sleeved on the outer surface of the first outer bracket 122 through the outer bracket through hole 4120. The adjustment area 413 is connected to the handle 5 on the side away from the outer bracket connection area 412. The adjustment area 413 and the handle 5 cooperate with each other. By adjusting the handle 5, the distance between the first outer bracket 122 and the outer bracket connection area 412 can be adjusted. Whether to install and the tightness of the installation, by setting the handle 5, the difficulty of installation between the first outer bracket 122 and the outer bracket connection area 412 can be reduced, and by adjusting the installation position of the first outer bracket 122 compared to the first fixed axis 31, and the angle between the plane where the first inner bracket 121 is located and the first fixed axis 31, the distance between the first brush 11 and the conveyor belt along the width direction Z of the conveyor belt, the angle between the plane where the first brush 11 is located and the plane where the conveying platform 01 is located, and other parameters can be finally adjusted to achieve precise control of the installation position of the first brush 11.
[0067] Since the second brush assembly 2 and the first brush assembly 1 are arranged in mirror symmetry with respect to the symmetry plane m of the conveyor belt, the structure of the second brush assembly 2 is exactly the same as that of the first brush assembly 1, and the second brush assembly 2 will not be described here.
[0068] Reference Figure 2 As shown, the conveyor belt is provided with positioning blocks 02, and the number of positioning blocks 02 is multiple. The conveyor belt provided in this embodiment is arranged between the bottle washing area and the filling area. During the production process, the wine bottles enter the conveyor belt from the bottle washing area, and the conveyor belt conveys the wine bottles to the filling area. The entire conveyor belt is provided with multiple positioning blocks 02. In the process of conveying the wine bottles, the conveyor belt with positioning blocks 02 is circulated. The number of positioning blocks 02 is set to multiple and distributed throughout the conveyor belt to ensure that the conveyor belt is always effective and the position of the wine bottles can be adjusted at any time. The positioning blocks 02 are arranged in sequence along the transmission direction X of the conveyor belt. Along the transmission direction X of the conveyor belt, the distance between adjacent positioning blocks 02 is the same. The positioning blocks 02 and the conveyor belt can be fixedly connected by bonding or other means. The conveyor belt with positioning blocks 02 can be called a conveyor belt with synchronous chain positioning blocks, which is a prior art in the field. The conveyor belt with synchronous chain positioning blocks is used to prevent the wine bottles from continuing to move backward under the action of external factors, thereby achieving the purpose of fixing the position of the wine bottles, and enabling the wine bottles to align with the bottle wheel slot of the subsequent filling machine to achieve precise filling.
[0069] Continue to refer to Figure 2 As shown, the material of the positioning block 02 can be plastic, and the plastic material that can be selected includes but is not limited to oil nylon. Oil nylon has the advantages of light weight, easy cutting, high strength, good toughness, low cost, long service life, high wear resistance and self-lubrication, high impact resistance, high pressure resistance and high temperature stability; in other embodiments, the material of the positioning block 02 can be adaptively adjusted according to actual conditions, and no specific limitation is made here.
[0070] Optionally, continue with reference to Figure 2 As shown, the distance between adjacent positioning blocks 02 along the transmission direction X of the conveyor belt is 150 mm. If the distance between adjacent positioning blocks 02 along the transmission direction X of the conveyor belt is less than 150 mm, the spacing between adjacent wine bottles on the conveyor belt will become narrower, and they will easily collide with each other and cause problems such as wear and paint peeling. In addition, the distance between adjacent positioning blocks 02 along the transmission direction X of the conveyor belt is required to be consistent with the spacing of the bottle-moving wheel slots in the subsequent alcohol filling area. If the two are not consistent, the wine bottles will not be able to fit into the bottle-moving wheel slots in the subsequent filling area, precise clamping cannot be achieved, and normal filling cannot be achieved. At the same time, if you want to make the positioning blocks 02 match bottles of different specifications, you can change the distance between adjacent positioning blocks 02 along the transmission direction X of the conveyor belt, and at the same time, you also need to change the specifications of the bottle-moving wheel in the alcohol filling area.
[0071] Continue to refer to Figure 2 As shown, when the conveyor belt drives the wine bottles to move in the direction from a to b, under the action of the first brush assembly 1 and the second brush assembly 2, the first brush assembly 1 and the second brush assembly 2 simultaneously generate interaction forces with the wine bottles, and each wine bottle moves backward relative to the conveyor belt, and the bottle body of the wine bottle moves between adjacent positioning blocks 02, thereby positioning and guiding the wine bottles that have shifted after being conveyed by the synchronous chain on the conveyor belt, ensuring that the wine bottles remain in a straight line during the conveying process until the bottom of the wine bottle is just stuck in the front end of the positioning block 02 and is in close contact with it. It can be understood that when the conveyor belt drives the wine bottles to move in the direction from a to b, under the action of the first brush assembly 1 and the second brush assembly 2, the wine bottles The movement of the bottle along the direction from a to b is restricted, and the bottle will be stuck at the front end of the positioning block 02 (the front end can be understood as the side of the positioning block 02 that conveys the bottle along the transmission direction X of the conveyor belt, close to the filling area), so that the positioning block 02 can limit the position of the bottle along the transmission direction X of the conveyor belt. At the same time, since the first brush assembly 1 and the second brush assembly 2 also limit the position of the bottle along the width direction Z of the conveyor belt, the first brush assembly 1, the second brush assembly 2, the conveyor belt, the positioning block 02 and other structures cooperate with each other, the position of the bottle is limited along the transmission direction X of the conveyor belt and along the width direction Z of the conveyor belt, thereby realizing automatic positioning and spacing control of the wine bottle.
[0072] Combine Figure 2-Figure 4 As shown, a fixing frame 03 is also provided on the first fixed shaft 31, and the fixing frame 03 includes a first upper fixing frame 031 and a first lower fixing frame 032. The first upper fixing frame 031 and the first lower fixing frame 032 extend along the transmission direction X of the conveyor belt and are arranged along the extension direction Y of the fixed shaft 3. The first upper fixing frame 031 is located on the side of the first brush assembly 1 away from the conveyor belt, and the first lower fixing frame 032 is located on the side of the first brush assembly 1 close to the conveyor belt. The first upper fixing frame 031 and the first lower fixing frame 032 can be fixedly connected to the first fixed shaft 31 respectively through the first adjustment bracket 41 and the handle 5. A first guardrail (not shown in the figure) is installed between the first upper fixing frame 031 and the first lower fixing frame 032. The first guardrail is used to protect and block the wine bottles on the conveyor belt to avoid production problems such as wine bottles falling.
[0073] Likewise, continue combining Figure 2-Figure 4As shown, a fixing frame 03 is also provided on the second fixed shaft 32, and the fixing frame 03 includes a second upper fixing frame 033 and a second lower fixing frame 034. The second upper fixing frame 033 and the second lower fixing frame 034 extend along the transmission direction X of the conveyor belt and are arranged along the extension direction Y of the first fixed shaft 31. The second upper fixing frame 033 and the first upper fixing frame 031 are mirror-symmetrically arranged with respect to the symmetry plane m of the conveyor belt, and the second lower fixing frame 034 and the first lower fixing frame 032 are mirror-symmetrically arranged with respect to the symmetry plane m of the conveyor belt. The second upper fixing frame 033 is located on the side of the second brush assembly 2 away from the conveyor belt, and the second The lower fixed frame 034 is located on the side of the second brush assembly 2 close to the conveyor belt. The second upper fixed frame 033 and the second lower fixed frame 034 can be fixedly connected to the second fixed shaft 33 through the second adjustment bracket 42 and the handle 5 respectively. The second adjustment bracket 42 and the first adjustment bracket 41 are mirror-symmetrically arranged with respect to the symmetry plane m of the conveyor belt. The structure of the second adjustment bracket 42 is not repeated here. A second guardrail (not shown in the figure) is installed between the second upper fixed frame 033 and the second lower fixed frame 034. The second guardrail is used to protect and block the wine bottles on the conveyor belt to avoid production problems such as wine bottles falling.
[0074] Reference Figure 2 As shown, the conveying platform 01, the conveyor belt, the positioning block 02, the first fixed shaft 31, the second fixed shaft 32, the first adjustment bracket 41, the second adjustment bracket 42, the handle 5, the fixed bracket 03 and the guardrail and other structures can all be existing technologies in the field. Compared with the existing technology, the automatic drum-type wine bottle positioning and spacing control device provided in this embodiment adds a brush assembly, and the brush assembly includes a first brush assembly 1 and a second brush assembly 2. The first brush assembly 1 and the second brush assembly 2 can be configured on the existing structure. The first brush assembly 1 and the second brush assembly 2 can be called a passive mechanical mechanism. The passive mechanical mechanism is a mechanical device that does not rely on an external power source, but mainly relies on the mechanical principles, structural design and material properties inside the mechanism to realize its specific function. It has the advantages of simple structure, high reliability, easy installation, low manufacturing process difficulty, and low maintenance cost.
[0075] Combine Figure 2-Figure 4As shown, the automated drum-type wine bottle positioning and spacing control device provided in this embodiment can be installed between the wine bottle washing production line (also known as the bottle washing area) and the wine bottle filling production line (also known as the filling area) when it is used. It is installed at both ends of the conveyor belt between the synchronous chain conveyor change and the bottle inlet end of the filling machine. The wine bottles enter the automated drum-type wine bottle positioning and spacing control device after passing through the synchronous chain conveyor change area from the bottle washing area. The installation position of the first brush 11 can be adjusted according to production requirements and bottle specifications and other parameters through the cooperation between the first adjustment bracket 41 and the first brush bracket 12. The installation position of the second brush 21 can be adjusted according to production requirements and bottle specifications and other parameters through the cooperation between the second adjustment bracket 42 and the second brush bracket 22. The above-mentioned installation position includes but is not limited to the position between the plane where the first brush 11 is located and the plane where the conveying platform 01 is located. The degree of the angle, the degree of the angle between the plane where the second brush 21 is located and the plane where the conveying platform 01 is located, the distance between the first brush 11 and the second brush 21 and the conveyor belt along the extension direction Y of the first fixed axis 31, the distance between the first brush 11 and the second brush 21 along the width direction Z of the conveyor belt, etc., ensure that the interaction force generated between the first brush 11 and the second brush 21 and the wine bottles is within an appropriate range, so that the wine bottles that may cause friction can be separated, and the wine bottles that are offset after the synchronous chain conveyor changes lanes on the conveyor belt are positioned and guided, ensuring that the wine bottles remain arranged in a straight line during the conveyance process and move backward relative to the conveyor belt. The bottom of the wine bottle is just stuck in the front end of the positioning block 02 and in close contact with it, realizing the positioning and spacing control of the wine bottle, so that it can be aligned with the bottle wheel slot of the subsequent filling machine, and the filling is completed after precise clamping.
[0076] It can be seen from the above embodiments that the automatic drum-type wine bottle positioning and spacing control device provided by the present invention achieves at least the following beneficial effects:
[0077] The automatic drum-type wine bottle positioning and spacing control device provided by the utility model has an additional brush assembly on the fixed axis of the conveying platform compared with the prior art. The brush assembly is distributed on both sides of the conveyor belt. The brush assembly includes brushes. There is a certain inclination between the brushes and the conveying platform. The brushes can adjust the position of the wine bottles on the conveyor belt from the width direction of the conveyor belt. In the process of conveying the wine bottles on the conveyor belt, the brushes on both sides of the wine bottles simultaneously generate interaction force with the wine bottles, so as to separate the wine bottles that may cause friction, and position and guide the wine bottles that are offset after being conveyed by the synchronous chain on the conveyor belt, so as to ensure that the wine bottles remain in a straight line during the conveying process and move backward relative to the conveyor belt, and the bottom of the wine bottle is just stuck in front of the positioning block on the conveyor belt. The end is in close contact with it, realizing accurate positioning and spacing control of the wine bottle, so that it can be aligned with the bottle wheel slot of the subsequent filling machine, realizing accurate clamping and completing the filling. During the operation of the entire device, there will be no production problems such as wine bottle scratches and paint peeling, thus ensuring stable product quality. The automatic drum-type wine bottle positioning and spacing control device is a passive mechanical mechanism with the advantages of simple structure, high reliability, easy installation, low manufacturing process difficulty, low maintenance cost, etc. It can realize automatic work, reduce labor costs and improve production efficiency. At the same time, the device can adjust the installation position of the brush assembly, the material of the brush assembly and other parameters according to the bottle specifications of different production requirements. It has certain ductility, a wide range of applications and high reliability.
[0078] There is a relationship of mutual coordination and functional support between the various technical features of the utility model, that is, the technical solution is not a "simple superposition" of technical features between multiple comparative documents, so the utility model does not fall under the "simple superposition" of Chapter 4, Part 2 of the "Patent Examination Guidelines".
[0079] Although some specific embodiments of the present invention have been described in detail through examples, those skilled in the art will appreciate that the above examples are for illustration only and are not intended to limit the scope of the present invention. Those skilled in the art will appreciate that modifications may be made to the above embodiments without departing from the scope and spirit of the present invention. The scope of the present invention is defined by the appended claims.
Claims
1. An automated drum-shaped wine bottle positioning and spacing control device, mounted on a conveying platform, wherein a conveyor belt is disposed around the conveying platform for conveying drum-shaped wine bottles, and fixed shafts are disposed oppositely on both sides of the conveyor belt, wherein the fixed shafts are perpendicular to and connected to the conveying platform, characterized in that: It includes a brush assembly distributed on both sides of the conveyor belt, the brush assembly includes a brush and a brush holder, the brush is located on the side of the brush holder close to the conveyor belt, the brush is connected to the fixed shaft through the brush holder, during the conveying process of the drum-type wine bottle, the brush contacts the drum-type wine bottle, the brush is used to adjust the position of the drum-type wine bottle on the conveyor belt along the width direction of the conveyor belt, and the plane where the brush is located has an angle with the plane where the conveying platform is located.
2. The automatic drum-type wine bottle positioning and spacing control device according to claim 1 is characterized in that: The brush includes bristles and a brush handle connected to the bristles. The bristles are located on a side of the brush handle close to the drum-shaped wine bottle. The bristles are in contact with the drum-shaped wine bottle. The brush handle is connected to the brush holder.
3. The automatic drum-type wine bottle positioning and spacing control device according to claim 2 is characterized in that: The fixed shaft includes a first fixed shaft and a second fixed shaft which are relatively arranged on both sides of the conveyor belt. The brush assembly includes a first brush assembly and a second brush assembly. The first brush assembly is connected to the first fixed shaft, and the second brush assembly is connected to the second fixed shaft.
4. The automatic drum-type wine bottle positioning and spacing control device according to claim 3 is characterized in that: The brush bracket includes an inner bracket and an outer bracket connected to the inner bracket, wherein the inner bracket is located on a side of the outer bracket close to the brush; The inner bracket is a flat plate structure, the plane where the inner bracket is located is parallel to the plane where the brush is located, and the brush handle is fixedly connected to the inner bracket; The outer bracket is a cylinder, the outer bracket and the fixed shaft are perpendicular to each other, and the outer bracket is connected to the fixed shaft through an adjusting bracket.
5. The automatic drum-type wine bottle positioning and spacing control device according to claim 4 is characterized in that: The adjustment bracket includes a fixed shaft connection area, an outer bracket connection area and an adjustment area connected in sequence, and the fixed shaft connection area, the outer bracket connection area and the adjustment area are arranged along the transmission direction of the conveyor belt; The fixed shaft connection area includes a front connection part and a rear connection part, and the front connection part and the rear connection part are both C-shaped plates. The C-shaped opening of the front connection part faces the rear connection part, and the C-shaped opening of the rear connection part faces the front connection part. The front connection part and the rear connection part cooperate with each other to be sleeved on the outer surface of the fixed shaft; The outer bracket connection area is a cylinder, and an outer bracket through hole is opened on the outer bracket connection area. The outer bracket through hole passes through the outer bracket connection area in a direction parallel to the outer bracket, and the outer bracket connection area is sleeved on the outer surface of the outer bracket through the outer bracket through the outer bracket through hole; The adjustment area is connected to the handle at a side away from the outer bracket connection area.
6. The automated drum-type wine bottle positioning and spacing control device according to claim 1, characterized in that: The angle ranges from 0° to 20°.
7. The automatic drum-type wine bottle positioning and spacing control device according to claim 3 is characterized in that: Along the width direction of the conveyor belt, the distance between the first brush assembly and the second brush assembly ranges from 40 mm to 50 mm.
8. The automated drum-type wine bottle positioning and spacing control device according to claim 1, characterized in that: Along the extension direction of the fixed axis, the distance between the brush and the conveyor belt ranges from 40 mm to 130 mm.
9. The automatic drum-type wine bottle positioning and spacing control device according to claim 2, characterized in that: Along the width direction of the conveyor belt, the width of the bristles is not less than 5 mm.
10. The automatic drum-type wine bottle positioning and spacing control device according to claim 1, characterized in that: Positioning blocks are provided on the conveyor belt, and the positioning blocks are arranged in sequence along the transmission direction of the conveyor belt; along the transmission direction of the conveyor belt, the distances between adjacent positioning blocks are the same.