A new rotary packing bottle

CN224645546UActive Publication Date: 2026-08-18THE REMARKABLE TECH (SHANGHAI) CO LTD
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Patent Information

Application Number
CN202522238858.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-23
Publication Date
2026-08-18
Estimated Expiration
2035-10-23

AI Technical Summary

Technical Problem

[0003]现有旋转包装瓶的密封结构多采用螺纹的简单设计,缺乏针对性的强化密封部件,长期反复旋转开启后,因螺纹配合间隙增大,导致密封性能显著下降,外界空气中的湿气、灰尘易侵入瓶内,造成粉末类内容物受潮结块、变质,液体类容易出现泄漏,尤其对于需长期储存的食品、药品,密封失效直接缩短其保质期,甚至引发安全隐患,为此,我们提供出一种新型旋转包装瓶

Benefits of technology

本实用新型通过弧形密封块和螺纹紧密连接的双重密封设计,有效解决了现有旋转包装瓶密封易失效的问题,一方面,瓶盖内壁的弧形密封块与导流壳底部的导流口精准贴合,形成第一道密封屏障,能紧密阻断外界空气、湿气与灰尘的侵入,另一方面,连接壳通过螺纹槽与瓶体表面的螺纹块实现深度螺纹连接,确保连接壳与瓶体的贴合紧密性,形成第二道密封防线,双重密封结构可长期保持瓶内干燥洁净,避免粉末类内容物受潮结块、液体类内容物泄漏,显著延长食品、药品等内容物的保质期,降低安全隐患,而且开启出料口时,需要转动瓶盖,使得出料口与开口槽相互连通才行,不使用时出料口被内部导流壳的表面进行密封,进一步提高了密封效果。

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Abstract

The utility model discloses a novel rotary packing bottle, including the bottle body, the top of bottle body is provided with the bottle cap, the top of bottle cap inner wall is installed with arc sealing block, the front of bottle cap is provided with the discharge gate. The utility model discloses through arc sealing block and the double sealing design of screw thread close connection, effectively solved the problem of existing rotary packing bottle sealing easy failure, on one hand, the arc sealing block of bottle cap inner wall and the flow guide mouth accurate fit of flow guide shell bottom, form first sealed barrier, can tightly block the invasion of outside air, moisture and dust, on the other hand, the connecting shell realizes the depth screw thread connection through the thread groove and the thread block of bottle body surface, ensure that the close -fitting of connecting shell and bottle body, form second sealed defense line, and the double sealing structure can keep dry and clean in the bottle for a long time, and the discharge gate is sealed by the surface of internal flow guide shell when not using, further improve the sealing effect.
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Description

Technical Field

[0001] This utility model relates to the field of packaging bottle technology, specifically a novel rotary packaging bottle. Background Technology

[0002] Packaging bottles are mainly used in the food industry, such as protein powder, meal replacement powder, and pharmaceuticals, such as granular powders, powders, and cosmetics, to achieve sealed storage and convenient access to powder, granule, or liquid contents.

[0003] Existing rotary packaging bottles mostly use a simple threaded design for sealing, lacking targeted reinforced sealing components. After repeated rotation and opening over a long period, the increased gap in the threaded fit leads to a significant decrease in sealing performance. Moisture and dust from the outside air can easily penetrate into the bottle, causing powdered contents to become damp, clump, and deteriorate, while liquids are prone to leakage. Especially for food and medicines that need to be stored for a long time, sealing failure directly shortens their shelf life and may even cause safety hazards. Therefore, we provide a new type of rotary packaging bottle. Utility Model Content

[0004] The purpose of this invention is to provide a novel rotating packaging bottle to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a novel rotary packaging bottle, comprising a bottle body, a bottle cap disposed on the top of the bottle body, an arc-shaped sealing block installed on the top of the inner wall of the bottle cap, a discharge port opened on the front of the bottle cap, and the bottle body connected to the bottle cap via a flow guiding connection assembly, the flow guiding connection assembly being used to discharge the object from the bottle body through the discharge port.

[0006] Optionally, the flow guiding connection assembly includes a connecting shell, which is disposed on the surface of the bottle and communicates with the bottle. A threaded groove is formed on the inner wall of the connecting shell. A threaded block is installed on the surface of the bottle corresponding to the position of the threaded groove and is threadedly connected to the threaded groove. A flow guiding shell is installed on the top of the connecting shell.

[0007] Optionally, the bottom of the flow guide shell is provided with a flow guide port that communicates with the connecting shell and is used in conjunction with the arc-shaped sealing block, and the side of the flow guide shell is provided with an opening groove that is adapted to the discharge port at the position corresponding to the flow guide port.

[0008] Optionally, the bottle cap is disposed on the surface of the flow guide shell and located at the top of the connecting shell. Three positioning blocks are installed on the surface of the connecting shell, and an annular positioning groove adapted to the positioning blocks is opened on the inner wall of the bottle cap at the position corresponding to the three positioning blocks.

[0009] Optionally, the surface of the flow guide shell has two anti-foolproof grooves, and the inner wall of the bottle cap is equipped with anti-foolproof blocks that are compatible with the anti-foolproof grooves.

[0010] Compared with the prior art, the beneficial effects of this utility model are as follows: This invention effectively solves the problem of easy seal failure in existing rotary packaging bottles through a double-seal design of arc-shaped sealing blocks and tightly connected threads. On the one hand, the arc-shaped sealing block on the inner wall of the bottle cap precisely fits with the flow guide at the bottom of the flow guide shell, forming the first sealing barrier, which can tightly block the intrusion of external air, moisture and dust. On the other hand, the connecting shell achieves a deep threaded connection with the threaded block on the surface of the bottle through the threaded groove, ensuring the tight fit between the connecting shell and the bottle body, forming the second sealing line. The double sealing structure can keep the inside of the bottle dry and clean for a long time, avoiding the clumping of powdered contents due to moisture and the leakage of liquid contents, significantly extending the shelf life of food, medicine and other contents, reducing safety hazards. Moreover, when opening the dispensing port, the bottle cap needs to be rotated so that the dispensing port and the opening groove are connected. When not in use, the dispensing port is sealed by the surface of the internal flow guide shell, further improving the sealing effect. Attached Figure Description

[0011] Figure 1 This is a three-dimensional structural diagram of the present invention; Figure 2 This is a three-dimensional structural diagram of the bottle body and cap of this utility model separated. Figure 3 This is a three-dimensional structural diagram of the bottle body, flow guiding connection component and bottle cap of this utility model. Figure 4 This is a three-dimensional structural diagram of the bottle body, flow guiding connection component and bottle cap of this utility model, taken from a bottom view. Figure 5 This is a three-dimensional structural diagram showing the bottle body, flow guiding connection component, and bottle cap of this utility model, separated from each other. Figure 6 This is a three-dimensional structural schematic diagram of the bottle cap of this utility model from a side view.

[0012] In the diagram: 1. Bottle body; 100. Bottle cap; 101. Arc-shaped sealing block; 102. Discharge port; 2. Flow guide connection assembly; 21. Connecting shell; 22. Threaded groove; 23. Threaded block; 24. Flow guide shell; 25. Flow guide port; 26. Opening groove; 27. Positioning block; 28. Annular positioning groove; 29. ​​Anti-foolproof groove; 210. Anti-foolproof block. Detailed Implementation

[0013] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not 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 effort are within the protection scope of the present utility model.

[0014] Please see Figure 1-6 A novel rotary packaging bottle includes a bottle body 1, which serves as the basic supporting component for directly storing contents such as protein powder, meal replacement powder, granules, and serums. A cap 100 is positioned on top of the bottle body 1, acting as a protective top cover that covers the flow guide shell 24 and isolates it from external contamination. The cap 100 can be rotated to switch states without disassembling it, avoiding contamination caused by frequent opening and closing. An arc-shaped sealing block 101 is installed on the top of the inner wall of the cap 100. The arc-shaped sealing block 101 and the flow guide shell 24... The guide port 25 fits precisely, forming a sealing barrier to prevent external air, moisture, and dust from entering the bottle. The arc-shaped structure perfectly matches the edge of the guide port 25, and it can still maintain its elasticity after repeated rotation and opening and closing, avoiding seal failure due to wear. It is made of food-grade liquid silicone. The front of the bottle cap 100 has a discharge port 102, which is the final channel for the contents to be discharged from the packaging bottle. By aligning or misaligning with the opening groove 26 of the guide shell 24, the discharge or closure of the material can be controlled. The inner wall is smooth and has no dead corners, avoiding powder accumulation and blockage.

[0015] The bottle body 1 is connected to the bottle cap 100 via a flow guiding connection assembly 2. The flow guiding connection assembly 2 is used to discharge the object from the bottle body 1 through the discharge port 102. The flow guiding connection assembly 2 includes a connecting shell 21, which is disposed on the surface of the bottle body 1 and communicates with it. The upper part of the connecting shell 21 is connected to the flow guiding shell 24, and the lower part is connected to the bottle body 1. It serves as the frame carrier of the flow guiding connection assembly 2. A threaded groove 22 is provided on the inner wall of the connecting shell 21. A threaded block 23 is installed on the surface of the bottle body 1 at a position corresponding to the threaded groove 22, which is threadedly connected to the threaded groove 22. The threaded connection between the threaded groove 22 and the threaded block 23 enables the detachable fixing of the connecting shell 21 and the bottle body 1. Tightening clockwise... Disassembly is counterclockwise, making operation simple and convenient for later cleaning or replenishment. A guide shell 24 is installed on the top of the connecting shell 21, forming a content guide channel inside the guide shell 24. This guides the contents of the bottle 1 from the guide port 25 into the opening groove 26, ultimately flowing to the discharge port 102. The bottom of the guide shell 24 has a guide port 25 that communicates with the connecting shell 21 and cooperates with the arc-shaped sealing block 101. The guide port 25 is the inlet for the contents to enter the guide shell 24 from the connecting shell 21, and simultaneously cooperates with the arc-shaped sealing block 101 to achieve a seal. On the side of the guide shell 24, corresponding to the position of the guide port 25, is an opening groove 26 adapted to the discharge port 102. The opening groove 26 is the inner... The contents flow from the guide shell 24 to the transfer channel of the outlet 102. The discharge state is controlled by the alignment or misalignment with the outlet 102. Discharge only occurs when the bottle cap 100 is rotated to align the outlet 102 with the opening groove 26. When misaligned, it is completely sealed to prevent accidental contact and leakage of contents. The bottle cap 100 is set on the surface of the guide shell 24 and located on top of the connecting shell 21. Three positioning blocks 27 are installed on the surface of the connecting shell 21. On the inner wall of the bottle cap 100, corresponding to the positions of the three positioning blocks 27, there are annular positioning grooves 28 that are adapted to the positioning blocks 27. The end of the positioning block 27 near the annular positioning groove 28 passes through the annular positioning groove 28 and rotates with the inner wall of the annular positioning groove 28. The positioning block 27 and the annular positioning groove 28 provide directional guidance for the rotation of the bottle cap 100, preventing it from shifting or jamming during rotation. Two anti-misalignment grooves 29 are provided on the surface of the flow guide shell 24 at positions corresponding to the positioning block 27. An anti-misalignment block 210 that matches the anti-misalignment groove 29 is installed on the inner wall of the bottle cap 100. At this time, the anti-misalignment block 210 is inserted into the other anti-misalignment groove 29, and the discharge port 102 is in a closed state. When the bottle cap 100 is rotated, the anti-misalignment block 210 rotates to the inner wall of the other anti-misalignment groove 29, and the discharge port 102 is in a closed state. The cooperation between the anti-misalignment groove 29 and the anti-misalignment block 210 limits the opening or closing of the bottle cap 100.

[0016] In use, hold the connecting shell 21 and align the threaded groove 22 on its inner wall with the threaded block 23 on the surface of the bottle body 1. Rotate the connecting shell 21 clockwise until it can no longer be rotated. Hold the bottom of the bottle body 1 to keep it fixed. With the other hand, rotate the bottle cap 100 clockwise until you hear a slight click. At this time, the anti-fool block 210 is inserted into another anti-fool groove 29. The discharge port 102 on the front of the bottle cap 100 is completely aligned with the opening groove 26 on the side of the guide shell 24. Tilt the bottle body 1 so that the contents of the bottle flow into the connecting shell 21 along the bottle wall, enter the guide shell 24 through the guide port 25 at the bottom of the guide shell 24, and finally flow out from the discharge port 102 through the opening groove 26.

[0017] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A new type of rotary packaging bottle characterized by: The bottle includes a bottle body (1), a bottle cap (100) is provided on the top of the bottle body (1), an arc-shaped sealing block (101) is installed on the top of the inner wall of the bottle cap (100), and a discharge port (102) is provided on the front of the bottle cap (100). The bottle body (1) is connected to the bottle cap (100) through a flow guiding connection component (2), and the flow guiding connection component (2) is used to discharge the object from the bottle body (1) through the discharge port (102).

2. The novel rotary packing bottle as claimed in claim 1, wherein: The flow guiding connection assembly (2) includes a connecting shell (21), which is disposed on the surface of the bottle body (1) and communicates with the bottle body (1). A threaded groove (22) is provided on the inner wall of the connecting shell (21). A threaded block (23) is installed on the surface of the bottle body (1) at a position corresponding to the threaded groove (22) and is threadedly connected to the threaded groove (22). A flow guiding shell (24) is installed on the top of the connecting shell (21).

3. The novel rotary packing bottle as claimed in claim 2, wherein: The bottom of the flow guide shell (24) is provided with a flow guide port (25) that communicates with the connecting shell (21) and is used in conjunction with the arc-shaped sealing block (101). The side of the flow guide shell (24) and the position corresponding to the flow guide port (25) are provided with an opening groove (26) that is compatible with the discharge port (102).

4. The novel rotary packing bottle as claimed in claim 3, wherein: The bottle cap (100) is disposed on the surface of the flow guide shell (24) and located on the top of the connecting shell (21). Three positioning blocks (27) are installed on the surface of the connecting shell (21). An annular positioning groove (28) adapted to the positioning blocks (27) is provided on the inner wall of the bottle cap (100) at the position corresponding to the three positioning blocks (27).

5. The novel rotary packing bottle as claimed in claim 4, wherein: The surface of the flow guide shell (24) has two anti-foolproof grooves (29), and the inner wall of the bottle cap (100) is equipped with an anti-foolproof block (210) that is compatible with the anti-foolproof grooves (29).