Inverted bottle removing assembly
By designing arc-shaped guide channels and the inverted bottle removal assembly for the throttle wheel, the problem of inverted bottle jam is solved, ensuring the stable operation of the conveying line, with high reliability and easy maintenance.
Patent Information
- Application Number
- CN202521206951.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Priority Date
- 2024-11-18
- Filing Date
- 2025-06-13
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2035-06-13
AI Technical Summary
The existing bottle removal components can easily cause the bottle to get stuck during use, affecting the continuous work of the conveying line.
A bottle removal assembly including a first guide plate and a second guide plate with horizontal spacing distribution is designed. The guide channel has an arc structure, equipped with a throttle wheel and a throttle port. The arc groove and guide surface design of the throttle wheel are designed to ensure that the inverted bottle can enter the throttle port stably.
The stable removal of inverted bottles is achieved, the phenomenon of bottle jams is avoided, the continuous working stability of the conveying line is ensured, and the structure is simple and reliable, and it is easy to produce and maintain.
Smart Images

Figure CN223162644U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of conveying, in particular to an inverted bottle removing assembly. Background Art
[0002] When bottles stand on a conveyor belt for conveying on a conveyor line, the phenomenon of inverted bottles will occur. It is necessary to remove the inverted bottles from the conveyor line to ensure the normal progress of subsequent processes. The operation of removing inverted bottles is completed by a removing assembly arranged on the conveyor line. In the existing inverted bottle removing assembly, when removing an inverted bottle, there is sometimes a situation where the inverted bottle gets stuck on the conveyor line, which has a certain impact on the continuous operation of the conveyor line.
[0003] In view of the above problems, the utility model is improved. Summary of the Utility Model
[0004] The utility model provides an inverted bottle removing assembly, which solves the above problems existing in the prior art during use.
[0005] The technical solution of the utility model is realized as follows:
[0006] An inverted bottle removing assembly includes a first guide plate and a second guide plate that are horizontally and spaced apart. First guide surfaces and second guide surfaces are respectively formed on the opposite side ends of the first guide plate and the second guide plate. A guide channel is formed between the first guide surface and the second guide inclined surface. The guide channel has a first inclined section, a straight section, and a second inclined section that are connected end to end along the conveying direction, so that the guide channel is in an arc shape that bends towards the second guide plate. A removing wheel disc is rotatably arranged on the first guide plate. A plurality of arc grooves are formed on the circumferential side surface of the removing wheel disc and are annularly arrayed along the center of the removing wheel disc, and a part of the removing wheel disc protrudes from the first guide surface and extends into the straight section. A removing opening that is opposite to the removing wheel disc and penetrates the second guide plate is formed on the part of the second guide surface corresponding to the straight section.
[0007] Preferably, the inclination angle of the second inclined section relative to the straight section is greater than the inclination angle of the first inclined section relative to the straight section.
[0008] Preferably, the removing wheel disc is arranged at the connection of the first inclined section and the straight section.
[0009] Preferably, the side wall of the removing opening is inclined towards the conveying direction relative to the straight section.
[0010] Preferably, an arc-shaped transition groove is formed at the end of the part of the first guide surface corresponding to the first inclined section that is far from the removing wheel disc.
[0011] Preferably, the extension line of the part of the first guide surface corresponding to the first inclined section is tangent to the removing wheel disc.
[0012] Preferably, two adjusting and mounting grooves perpendicular to the straight section are formed in the first guide plate.
[0013] In summary, the beneficial effects of the present utility model are as follows: The inverted bottle moves along with the conveyor belt into the guide channel and contacts the circumferential side surface of the rejection wheel disc after passing through the first inclined section. Under the action of the rejection wheel disc, it moves into the rejection port while maintaining an inclination to the straight section, realizing the rejection of the inverted bottle. Thus, the inverted bottles on the conveyor line can be rejected very stably, and the phenomenon of bottle jamming is not likely to occur, ensuring the stability of the continuous operation of the conveyor line. Moreover, this inverted bottle rejection assembly has a simple and reliable structure, is easy to produce and maintain, and has better reliability. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present utility model. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0015] Figure 1 is a schematic structural view of the present utility model;
[0016] Figure 2 is a schematic structural view of another perspective of the present utility model;
[0017] Figure 3 is a schematic structural view of the present utility model when rejecting inverted bottles.
[0018] In the figure: 1. First guide plate; 11. First guide surface; 12. Transition groove; 13. Adjusting and mounting groove; 2. Second guide plate; 21. Second guide surface; 22. Rejection port; 3. Guide channel; 31. First inclined section; 32. Straight section; 33. Second inclined section; 4. Rejection wheel disc; 41. Arc groove. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0019] The following will combine the attached drawings in the embodiments of the present utility model Figures 1-3 , and clearly and completely describe the technical solutions in the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, rather than all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present utility model.
[0020] As shown in the figure, an inverted bottle rejection component includes a first guide plate 1 and a second guide plate 2 that are horizontally and spaced apart. First guide surfaces 11 and second guide surfaces 21 are respectively formed on the opposite side ends of the first guide plate 1 and the second guide plate 2. A guide channel 3 with a width matching the outer diameter of the bottle is formed between the first guide surface 11 and the second guide inclined surface. The guide channel 3 has a first inclined section 31, a straight section 32, and a second inclined section 33 that are connected end to end along the conveying direction, making the guide channel 3 in an arc shape that bends towards the second guide plate 2. A rejection wheel disc 4 is rotatably arranged on the first guide plate 1. A plurality of arc grooves 41 matching the outer diameter of the bottle and arranged in a circular array around the center of the rejection wheel disc 4 are formed on the circumferential side surface of the rejection wheel disc 4, and a part of the rejection wheel disc 4 protrudes from the first guide surface 11 and extends into the straight section 32. A rejection opening 22 opposite to the rejection wheel disc 4 and penetrating the second guide plate 2 is formed on the part of the second guide surface 21 corresponding to the straight section 32.
[0021] In the above structure, the first guide plate 1 and the second guide plate 2 are installed above the conveyor belt of the conveyor line. The above-mentioned conveying direction is the conveying direction of the conveyor belt. The bottles standing on the conveyor belt (hereinafter referred to as standing bottles) are conveyed into the guide channel 3 along with the conveyor belt. The standing bottles entering the guide channel 3 are caught in the arc grooves 41 after passing through the first inclined section 31 and entering the horizontal section, and drive the rejection wheel disc 4 to rotate and enter the second inclined section 33 through the straight section 32. After passing through the second inclined section 33, they leave the guide channel 3, realizing the normal conveying of the standing bottles on the conveyor line. The bottles lying on the conveyor belt (hereinafter referred to as inverted bottles) are conveyed into the guide channel 3 along with the conveyor belt. The inverted bottles entering the guide channel 3 contact the circumferential side surface of the rejection wheel disc 4 after passing through the first inclined section 31 and entering the horizontal section, causing the rejection wheel disc 4 to apply a force towards the rejection opening 22 to the inverted bottle. Under the action of the force, the inverted bottle continues to move along a direction inclined to the straight section 32 after leaving the first inclined section 31 and enters the rejection opening 22, realizing the rejection of the inverted bottles from the conveyor line. It can be seen that the above structure can very stably reject the inverted bottles on the conveyor line and is not prone to bottle jamming, thus ensuring the stability of the conveyor line during continuous operation. And this inverted bottle rejection component has a simple and reliable structure, is easy to produce and maintain, and has better reliability.
[0022] In addition, the inclination angle of the second inclined section 33 relative to the straight section 32 is greater than the inclination angle of the first inclined section 31 relative to the straight section 32, so that the moving speed of the standing bottle in the second inclined section 33 along the conveying direction is less than the moving speed of the standing bottle in the first inclined section 31 along the conveying direction. After the inverted bottles distributed between the standing bottles are rejected, the standing bottles in the first inclined section 31 behind can converge with the standing bottles in the first inclined section 31 in front and be conveyed in a row.
[0023] In addition, the rejection turntable 4 is arranged at the connection of the first inclined section 31 and the straight section 32, so that the inverted bottle contacts the circumferential side surface of the rejection turntable 4 at the first moment when passing through the first inclined section 31, and better maintains the movement in the direction inclined to the straight section 32 and enters the rejection port 22, ensuring the stability during the rejection of the inverted bottle.
[0024] In addition, the side wall of the rejection port 22 is inclined relative to the straight section 32 in the conveying direction, that is, the side wall of the rejection port 22 follows the moving direction of the inverted bottle in the first inclined section 31, so that the inverted bottle is more likely to move into the rejection port 22, ensuring the stability during the rejection of the inverted bottle.
[0025] In addition, an arc-shaped transition groove 12 is formed at the end of the part of the first guiding surface 11 corresponding to the first inclined section 31 away from the rejection turntable 4. The height of the transition groove 12 matches the outer diameter of the bottle. Since the inverted bottle has a certain length in the conveying direction, when the inverted bottle moves into the first inclined section 31 along the conveying direction, its end abuts against the bottom of the transition groove 12 to adjust the moving direction, enabling the inverted bottle to more smoothly enter the first inclined section 31 to realize subsequent rejection of the inverted bottle, preventing the phenomenon of bottle jamming of the inverted bottle in the guiding channel 3. And the top wall of the transition groove 12 plays a longitudinal limiting role on the inverted bottle when the inverted bottle moves into the first inclined section 31, ensuring the stable movement of the inverted bottle into the first inclined section 31.
[0026] In addition, the extension line of the part of the first guiding surface 11 corresponding to the first inclined section 31 is tangent to the rejection turntable 4, so that the inverted bottle more accurately contacts the circumferential side surface of the rejection turntable 4 after leaving the first inclined section 31, and moves into the rejection port 22 under the action of the rejection turntable 4, ensuring the stability during the rejection of the inverted bottle.
[0027] In addition, two adjustment installation grooves 13 perpendicular to the straight section 32 are formed on the first guiding plate 1. When the first guiding plate 1 and the second guiding plate 2 are installed above the conveyor belt, the distance between the first guiding plate 1 and the second guiding plate 2 can be easily adjusted through the adjustment installation grooves 13, and the width of the guiding channel 3 formed between the first guiding surface 11 and the second guiding surface 21 can be adjusted to more accurately match the outer diameter of the bottle, ensuring the smoothness during conveying.
[0028] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.
Claims
1. An inverted bottle rejection component, characterized in that: It includes a first guide plate (1) and a second guide plate (2) which are horizontally spaced apart. First guide surfaces (11) and second guide surfaces (21) are respectively formed on the opposite side ends of the first guide plate (1) and the second guide plate (2). A guide channel (3) is formed between the first guide surface (11) and the second guide inclined surface. The guide channel (3) has a first inclined section (31), a straight section (32), and a second inclined section (33) that are connected end to end along the conveying direction, making the guide channel (3) in an arc shape that bends towards the second guide plate (2). A rejection wheel disc (4) is rotatably arranged on the first guide plate (1). A plurality of arc-shaped grooves (41) are formed on the circumferential side surface of the rejection wheel disc (4) and are annularly arrayed around the center of the rejection wheel disc (4), and a part of the rejection wheel disc (4) protrudes from the first guide surface (11) and extends into the straight section (32). A rejection opening (22) that is opposite to the rejection wheel disc (4) and penetrates the second guide plate (2) is formed on the part of the second guide surface (21) corresponding to the straight section (32).
2. The inverted bottle rejection assembly according to claim 1, wherein: The angle of inclination of the second inclined section (33) relative to the straight section (32) is greater than the angle of inclination of the first inclined section (31) relative to the straight section (32).
3. The inverted bottle rejection component according to claim 2, characterized in that: The rejection wheel disc (4) is arranged at the connection of the first inclined section (31) and the straight section (32).
4. The inverted bottle rejection component according to claim 3, characterized in that: The side wall of the rejection opening (22) is inclined towards the conveying direction relative to the straight section (32).
5. The inverted bottle rejection assembly according to claim 4, wherein: An arc-shaped transition groove (12) is formed at the end of the part of the first guide surface (11) corresponding to the first inclined section (31) that is far from the rejection wheel disc (4).
6. The inverted bottle rejection assembly according to claim 5, wherein: The extension line of the part of the first guide surface (11) corresponding to the first inclined section (31) is tangent to the rejection wheel disc (4).
7. The inverted bottle rejection assembly according to claim 6, wherein: Two adjustment installation grooves (13) perpendicular to the straight section (32) are formed on the first guide plate (1).