Quantitative medicine outlet bottle

By designing the linkage between the dispensing and discharging components and the precise fit of the bottle cap, the quantitative dispensing bottle achieves accurate dosage and flexible adjustment, solving the problems of inaccurate dosage and complex operation in existing technologies. It is suitable for patients with chronic diseases and the elderly, providing a safe and convenient quantitative medication solution.

CN224184957UActive Publication Date: 2026-05-01THE REMARKABLE TECH (SHANGHAI) CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
THE REMARKABLE TECH (SHANGHAI) CO LTD
Filing Date
2025-05-08
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

Existing quantitative dosing bottles have limitations such as single dosage adjustment and inability to flexibly adapt to different medication needs. During storage and drop, pills are prone to inaccurate dosage or getting stuck due to friction or size deviation, increasing the risk of accidental ingestion.

Method used

A quantitative dispensing bottle was designed, comprising a bottle body, a bottle cap, a dispensing component, and a dispensing component. Through the linkage between the dispensing and dispensing components, precise quantitative dispensing and flexible adjustment of pills are achieved. The precise coordination between the positioning protrusions on the bottle cap and the locking protrusions on the dispensing component ensures accurate positioning of dosage control and intuitive operation feedback.

Benefits of technology

It achieves precise dosage, flexible adjustment, and convenient dispensing of pills, solving the problems of inaccurate dosage, complicated operation, and easy jamming. It is especially suitable for patients with chronic diseases and the elderly, providing a safe, convenient, and reliable quantitative medication dispensing solution.

✦ Generated by Eureka AI based on patent content.

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Abstract

The quantitative medicine outlet bottle comprises a bottle body, a bottle cap, a medicine dividing piece and a medicine outlet piece, a bottle opening is formed in one end of the bottle body, the bottle cap is correspondingly connected with the bottle opening in a threaded mode, an isolation piece is arranged in the bottle cap, a plurality of medicine outlet holes are formed in the isolation piece, the medicine outlet holes are matched with pills, and a rotating groove is formed in the side, correspondingly away from the bottle body, in the bottle cap. The medicine distributing part is rotationally arranged in the rotating groove and tightly attached to the medicine outlet holes, so that the number of the medicine outlet holes can be controlled by rotating the medicine distributing part, the medicine outlet part is rotationally arranged in the rotating groove and corresponds to the side, away from the medicine outlet holes, of the medicine distributing part, and a medicine containing groove is formed in the side, corresponding to the partition part, of the medicine outlet part; by means of the linkage design of the medicine distributing piece and the medicine discharging piece, accurate quantification, flexible adjustment and convenient taking of the pills are achieved, the problems that in the prior art, dosage is not accurate, operation is complex, and the pills are prone to being blocked are solved, and the medicine dispensing device has remarkable practical value and market prospects.
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Description

A quantitative dispensing bottle Technical Field

[0001] This utility model relates to the field of pharmaceutical packaging technology, and more specifically to a quantitative dispensing bottle. Background Technology

[0002] Medicine bottles are commonly used containers for holding medicines in daily life, ranging from large reminder bottles for the elderly to small, cute cartoon-themed bottles for children. To facilitate the elderly in taking pills in the correct dosage, there are now metered-dose dispensing bottles on the market. Most existing metered-dose dispensing bottles use mechanical dials or fixed channels to dispense medication in a single go. However, they generally suffer from limited dosage adjustment and cannot flexibly adapt to different medication needs. Furthermore, the simple internal structure of traditional medicine bottles makes it easy for pills to pile up side-by-side or get stuck at the outlet due to friction or size discrepancies during storage and descent. For example, when the diameter of the pills is close to the width of the bottle outlet, multiple pills may fall simultaneously or get stuck, leading to inaccurate dosage or requiring manual intervention, increasing the risk of accidental ingestion.

[0003] Therefore, there is an urgent need to develop a quantitative dispensing bottle to solve the technical problems in the existing technology. Summary of the Invention

[0004] In view of the above-mentioned technical problems, the purpose of this utility model is to provide a quantitative medicine dispensing bottle, which can solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution:

[0006] A quantitative dispensing bottle includes: a bottle body, wherein one end of the bottle body has a bottle opening;

[0007] A bottle cap is threadedly connected to the bottle opening. An isolation element is provided inside the bottle cap, and multiple medicine dispensing holes are provided on the isolation element. The medicine dispensing holes are adapted to the pills. A rotating groove is provided inside the bottle cap on the side away from the bottle body.

[0008] The dispensing component is rotatably disposed within the rotating groove and closely attached to the dispensing hole, so that the number of dispensing holes that can be traversed can be controlled by rotating the dispensing component.

[0009] The dispensing component is rotatably disposed in the rotating groove and corresponds to the side of the dispensing component away from the dispensing hole. A medicine placement groove is provided on the side of the dispensing component facing the isolating component so that the pill can fall into the medicine placement groove.

[0010] By linking the dispensing and discharging components, the system achieves precise dosage, flexible adjustment, and convenient dispensing of pills, solving problems such as inaccurate dosage, complex operation, and easy jamming in existing technologies. It is especially suitable for patients with chronic diseases, the elderly, and scenarios that require strict control of medication dosage. Its structural design takes into account functionality, reliability, and ease of operation, and has significant practical value and market prospects.

[0011] In some embodiments, a rotating hole is provided on the side of the bottle cap away from the bottle opening, and a pivot protrusion is provided at the center position;

[0012] The dispensing component has a snap-fit ​​protrusion on the side away from the dispensing hole. A rotating component is snapped onto the snap-fit ​​protrusion through the rotating hole. The rotating component has a rotating groove, which snaps onto the rotating protrusion.

[0013] By incorporating a rotating component, users can synchronously drive the dispensing unit to rotate simply by rotating the top component, thereby achieving dosage adjustment. The operation is intuitive and requires no complex tools, effectively improving the convenience and reliability of the overall device.

[0014] In some embodiments, a dispensing plate is provided on the side of the dispensing component that corresponds to the dispensing hole. The dispensing plate is adapted to the isolation component, and the dispensing plate has a plurality of dispensing holes, which correspond to the dispensing holes.

[0015] By setting the dispensing plate to be close to the side of the separator away from the dispensing hole, it is ensured that the pill can only fall through the overlapping area of ​​the dispensing hole and the dispensing hole, avoiding the pill getting stuck between the separator and the dispensing plate. The number and distribution of the dispensing holes correspond to the number and distribution of the dispensing holes, so that in a specific state, the dispensing holes can be fully aligned with the dispensing holes, thereby further ensuring the dispensing function and the selectable pill dosage function, and significantly improving the reliability of the quantitative dosing bottle.

[0016] In some embodiments, the isolator is provided with a plurality of positioning protrusions on the side corresponding to the side near the dispensing component, the plurality of positioning protrusions being distributed on the rotation path of the dispensing component, and the side of the dispensing component near the positioning protrusions being provided with a locking protrusion corresponding to the positioning protrusion.

[0017] By precisely matching the positioning protrusions on the bottle cap with the locking protrusions on the dispensing component, accurate positioning of dosage control, intuitive operation feedback, and long-term structural reliability are achieved. This effectively solves the dosage error problem caused by inaccurate positioning and ambiguous operation in existing quantitative dispensing bottles, providing users with a safe, convenient, and reliable quantitative medication solution.

[0018] In some embodiments, the side wall of the bottle cap is provided with a dispensing notch adapted to the dispensing component, and the side wall of the isolator is provided with a rotating side and a locking side on both sides corresponding to the dispensing notch. The rotating side is connected to the dispensing component through a rotating structure, and the locking side is provided with a locking device. The end of the dispensing component away from the rotating structure is provided with a locking protrusion adapted to the locking device.

[0019] By providing a locking protrusion on the dispensing part, the dispensing part can be stably fixed at the dispensing notch, thus achieving the effect of sealing the notch.

[0020] In some embodiments, the dispensing component is provided with a baffle, which is disposed adjacent to the medicine storage groove and blocks the medicine dispensing hole when the medicine storage groove is misaligned with the medicine dispensing hole.

[0021] By setting up a blocking component, the pills can be stably blocked when the dispensing component leaves the rotating groove, preventing subsequent pills from falling further or becoming blocked. This further ensures that the dosage of the dispensing pills can be accurately controlled, and also improves the operational reliability of the quantitative dispensing bottle, which has significant practical value.

[0022] In some embodiments, the medicine storage tank is provided with multiple independent medicine storage tanks, which are opened through the medicine dispensing member so that the pill can be poured out from the end of the medicine storage tank away from the medicine dispensing hole when the medicine dispensing member is completely separated from the medicine dispensing tank.

[0023] By setting up independent and continuous pill storage slots, the step of emptying pills is eliminated, further improving the convenience of pill retrieval. At the same time, by setting up the function of storing individual pills independently, the problem of inaccurate pill dosage is avoided, resulting in better user-friendliness.

[0024] In some embodiments, the quantitative dispensing bottle provided in this application further includes multiple guide members, each of which is disposed on the bottle cap near the isolator and extends toward the body of the bottle. Multiple pill channels are provided between two adjacent guide members, the width of which is adapted to the pill, and the pill channels are correspondingly connected to the dispensing hole.

[0025] By setting guide components to form multiple pill channels, the mechanism of single-row pill passage is further ensured, and the leakage or jamming of pills due to lateral displacement is effectively avoided, thus effectively improving the operational reliability of this utility model.

[0026] Compared with the prior art, the quantitative dispensing bottle provided by this utility model has the following beneficial effects:

[0027] 1. This utility model achieves precise dosage, flexible adjustment and convenient use of pills through the linkage design of the dispensing and discharging parts. It solves the problems of inaccurate dosage, complicated operation and easy jamming in the prior art. It is especially suitable for patients with chronic diseases, the elderly and scenarios that require strict control of medication dosage. Its structural design takes into account functionality, reliability and ease of operation, and has significant practical value and market prospects.

[0028] 2. This utility model achieves precise positioning of dosage control, intuitive operation feedback, and long-term structural reliability by setting a precise fit between the positioning protrusion of the bottle cap and the locking protrusion of the dispensing component. It effectively solves the dosage error problem caused by inaccurate positioning and ambiguous operation in existing quantitative dispensing bottles, and provides users with a safe, convenient and reliable quantitative dispensing solution. Attached Figure Description

[0029] Figure 1 is a three-dimensional schematic diagram of a quantitative medicine dispensing bottle;

[0030] Figure 2 is a schematic diagram of the exploded structure of the parts of the dispensing vial;

[0031] Figure 3 is a schematic diagram of the separator of the dispensing vial;

[0032] Figure 4 is a schematic diagram of the dispensing component of the quantitative medicine bottle;

[0033] Figure 5 is a schematic diagram of the cap of the quantitative medicine dispensing bottle;

[0034] Figure 6 is a schematic diagram of the dispensing component of the quantitative dispensing bottle.

[0035] In the diagram: 10. Bottle body; 20. Bottle cap; 21. Dispensing notch; 22. Rotating protrusion; 23. Rotating hole; 24. Locking device; 30. Dispensing component; 31. Dispensing trough; 32. Storage trough; 33. Barrier component; 40. Dispensing component; 41. Rotating component; 42. Dispensing plate; 43. Snap-fit ​​protrusion; 44. Dispensing hole; 45. Positioning protrusion; 50. Isolating component; 51. Guide component; 52. Dispensing hole; 53. Locking side; 54. Rotating side; 55. Positioning protrusion. Detailed Implementation

[0036] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the specific implementation methods of this utility model will be described below with reference to the accompanying drawings. Obviously, the drawings described below are merely some embodiments of this utility model. For those skilled in the art, other drawings and other implementation methods can be obtained based on these drawings without any creative effort.

[0037] To keep the drawings concise, each figure only schematically shows the parts relevant to the utility model, and these do not represent the actual structure of the product. Furthermore, for ease of understanding, in some figures, only one of the components with the same structure or function is schematically depicted, or only one is labeled. In this document, "one" not only means "only one," but can also mean "more than one."

[0038] It should also be further understood that the term “and / or” as used in this application specification and the appended claims means any combination of one or more of the associated listed items and all possible combinations, and includes such combinations.

[0039] In this document, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to fixed connections, detachable connections, or integral connections; they can refer to mechanical connections or electrical connections; they can refer to direct connections or indirect connections through an intermediate medium; and they can refer to the internal connection between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0040] In one embodiment, referring to Figures 1-5 of the specification, the present invention provides a quantitative dispensing bottle, including a bottle body 10, a bottle cap 20, a dispensing component 40, and a dispensing component 30. One end of the bottle body 10 has a bottle opening, and the bottle cap 20 is threadedly connected to the bottle opening. An isolation component 50 is provided inside the bottle cap 20, and multiple dispensing holes 52 are provided on the isolation component 50. The dispensing holes 52 are adapted to the pills. A rotating groove is provided inside the bottle cap 20 on the side away from the bottle body 10. The dispensing component 40 is rotatably disposed in the rotating groove and is set close to the dispensing holes 52, so that the number of dispensing holes 52 can be controlled by rotating the dispensing component 40. The dispensing component 30 is rotatably disposed in the rotating groove and is located on the side of the dispensing component 40 away from the dispensing holes 52. A medicine placement groove 31 is provided on the side of the dispensing component 30 facing the isolation component 50, so that the pills can fall into the medicine placement groove 31.

[0041] Specifically, the bottle body 10 has external threads on its outer wall corresponding to the bottle opening, and the bottle cap 20 has internal threads on its bottom. The separator 50 includes a disc structure, which is fixed to the center of the inner wall of the bottle cap 20. The diameter of the disc structure matches the inner diameter of the bottle cap 20, so that the disc structure can effectively block the communication between the upper part of the bottle cap 20 and the bottle body 10. The separator 50 divides the internal space of the bottle cap 20 into two parts: the part closer to the bottle body 10 is the dispensing area, and the part farther from the bottle body 10 is the dispensing area, to ensure that the pills can enter the dispensing area after proper dispensing. The disc structure has three dispensing holes 52, the diameter of which is adapted to the pills to effectively prevent the pills from directly accumulating in the dispensing channel, while ensuring that the pills can pass through individually. The dispensing component 40, which passes through the dispensing hole 52, can also be a disc-shaped structure. The diameter of the disc-shaped structure matches the inner diameter of the separator 50. The surface of the dispensing component 40 is provided with three fan-shaped blocking areas corresponding to the dispensing hole 52, so as to completely cover the dispensing hole 52 on the separator 50. The dispensing component 30 is set in the dispensing area. The dispensing component 30 can be a fan-shaped structure. The dispensing component 30 can rotate independently to exit the rotating groove, so as to carry out a preset number of pills, thereby achieving the effect of quantitative dispensing. In addition, by setting the dispensing component 40, the amount of medicine dispensed at one time can be flexibly set to meet different medication needs. In addition, the dispensing hole 52 is set to match the pills to ensure that the pills pass through one by one in sequence, thereby avoiding the situation of pills side by side or stuck in the column, which has good practicality.

[0042] It should be noted that the dispensing component 40 can also be a fan-shaped structure, the area of ​​which can simultaneously cover all the dispensing holes 52. By rotating the dispensing component 40, the number of dispensing holes 52 that are blocked can be indicated, so as to realize the dispensing function.

[0043] In one embodiment, referring to Figures 1, 3, 4 and 5 of the specification, based on the above embodiment, a rotating hole 23 is provided on the side of the bottle cap 20 away from the bottle opening, and a rotating protrusion 22 is provided at the center position; a snap-fit ​​protrusion 43 is provided on the side of the dispensing component 40 away from the dispensing hole 52, and a rotating component 41 is provided correspondingly through the rotating hole 23 to snap-fit ​​the rotating component 43. A rotating groove is provided on the rotating component 41, and the rotating groove is snap-fitted with the rotating protrusion 22.

[0044] Specifically, the rotating hole 23 is located at the top of the bottle cap 20 and corresponds to the edge area. The rotating hole 23 has an arc-shaped profile, and the length of the arc matches the distance between the two furthest dispensing holes 52. The rotating component 41 has a mating groove. The length of the snap-fit ​​protrusion 43 on the dispensing component 40 is less than the length of the rotating hole 23. The snap-fit ​​protrusion 43 passes through the rotating hole 23 and snaps into the mating groove, thereby forming a rotatable linkage structure between the rotating component 41 and the dispensing component 40. The rotating center protrusion 22 is located at the center of the top of the bottle cap 20 and is a cylindrical boss structure. The rotating center protrusion 22 can be completely snapped into the corresponding rotating center groove. The rotating component 41 can rotate on the bottle cap 20 with the center of the bottle cap 20 as the center. When the user manually rotates the rotating component 41, it drives the dispensing component 40 to rotate synchronously, thereby changing the number of open dispensing holes 52. When the locking protrusion 43 rotates from one end of the arc to the other end, the dispensing component 40 can just change from a state of completely blocking the dispensing hole 52 to a state of completely disengaging from the dispensing hole 52. The user only needs to rotate the rotating component 41 at the top to drive the dispensing component 40 to rotate synchronously, thereby achieving dosage adjustment. The operation is intuitive and does not require complicated tools, thus effectively improving the convenience and reliability of the overall device.

[0045] In one embodiment, referring to Figures 1 and 4 of the specification, based on the above embodiment, a dispensing plate 42 is provided on the side of the dispensing component 40 corresponding to the side near the dispensing hole 52. The dispensing plate 42 is adapted to the isolation component 50, and a plurality of dispensing holes 44 are provided on the dispensing plate 42, which correspond to the dispensing holes 52.

[0046] Specifically, the dispensing plate 42 has a disc-shaped structure, and its diameter matches the outer diameter of the separator 50 so that the dispensing plate 42 completely covers the separator 50. The dispensing plate 42 is close to the side of the separator 50 away from the dispensing hole 52 to ensure that the pill can only fall through the overlapping area of ​​the dispensing hole 44 and the dispensing hole 52, avoiding the pill from getting stuck between the separator 50 and the dispensing plate 42. The number and distribution of the dispensing holes 44 correspond to the number and distribution of the dispensing holes 52 so that in a specific state, the dispensing holes 44 can be fully aligned with the dispensing holes 52, thereby further ensuring the dispensing function and the selectable pill dosage function, and significantly improving the reliability of the quantitative dosing bottle.

[0047] In one embodiment, referring to Figures 1 and 3 of the specification, the isolator 50 is provided with a plurality of positioning protrusions 55 on the side corresponding to the side near the dispensing component 40, the plurality of positioning protrusions 55 are distributed on the rotation path of the dispensing component 40, and the dispensing component 40 is provided with a locking protrusion 45 corresponding to the positioning protrusion 55 on the side near the positioning protrusion 55.

[0048] Specifically, the number of positioning protrusions 55 corresponds to the number of dispensing holes 52, and the distribution of the positioning protrusions 55 corresponds to the position of the dispensing holes 52. When the dispensing component 40 rotates, the locking protrusions 45 slide along the inner wall of the bottle cap 20. When rotated to the position of the positioning protrusion 55, the locking protrusions 45 press against the positioning protrusions 55, generating a "click" positioning feedback. At the same time, the dispensing holes 52 are realigned with the dispensing holes 44. Each positioning protrusion 55 corresponds to a dosage level to achieve positioning. For example, when there are three dispensing holes 52, there are four positioning protrusions 55, which correspond to positioning point 1, positioning point 2, and positioning point 3, respectively. The rotating component 41 is marked with corresponding numbers to indicate the number of pills. When the locking protrusion 45 collides with the first positioning point, the dispensing component 40 blocks two dispensing holes 52, leaving only one dispensing hole 52 open. When the locking protrusion 45 collides with the second positioning point, the dispensing component 40 blocks one dispensing hole 52, leaving two dispensing holes 52 open. When the locking protrusion 45 collides with the third positioning point, the dispensing component 40 opens all three dispensing holes 52. By setting the locking protrusion 45 and the positioning protrusion 55, accurate gear switching can be achieved. At the same time, the clicking sound and tactile feedback of the collision between the locking protrusion 45 and the positioning protrusion 55 can significantly improve the user's confidence in operation, thereby improving the convenience of operation.

[0049] In one embodiment, referring to Figures 1, 5, and 6 of the specification, based on the above embodiment, a dispensing notch 21 adapted to the dispensing component 30 is provided on the side wall of the bottle cap 20. A rotating side 54 and a locking side 53 are respectively provided on the side wall of the isolator 50 corresponding to the two sides of the dispensing notch 21. The rotating side 54 is connected to the dispensing component 30 through a rotating structure. The locking side 53 is provided with a locking device 24. A locking protrusion adapted to the locking device 24 is provided on the end of the dispensing component 30 away from the rotating structure.

[0050] Specifically, the dispensing notch 21 is an arc-shaped notch, located on the side wall of the bottle cap 20. The isolating member 50 has a side wall that matches the inner wall of the bottle cap 20. The rotating side 54 is located on the left side of the dispensing notch 21 and has a hinged rotating structure. The hinged rotating structure is connected to the rotating shaft of the dispensing member 30, so that the dispensing member 30 can rotate around the rotating structure as the rotating shaft, thereby opening and closing the dispensing notch 21. The locking side 53 is located on the right side of the dispensing notch 21 and has a spring-type locking device 24. The dispensing member 30 has a corresponding locking protrusion so that the dispensing member 30 can be stably fixed in the dispensing notch 21, achieving the effect of sealing the notch.

[0051] In one embodiment, referring to Figures 3 and 6 of the specification, based on the above embodiment, the dispensing component 30 is provided with a baffle 33, which is disposed adjacent to the medicine storage tank 31 and blocks the medicine dispensing hole 52 when the medicine storage tank 31 is misaligned with the medicine dispensing hole 52.

[0052] Specifically, the baffle 33 is a plate-shaped structure and is located on the edge of the dispensing part 30 near the dispensing hole 52 to ensure the sealing and compactness between the structures. This allows the dispensing part 30 to stably block the pills when it leaves the rotating groove, preventing subsequent pills from falling further or becoming blocked. This further ensures that the dosage of the dispensing pills can be precisely controlled, and also improves the operational reliability of the quantitative dispensing bottle, which has significant practical value.

[0053] In one embodiment, referring to Figures 2 and 6 of the specification, the medicine storage tank 31 is provided with a plurality of independent medicine storage tanks 32, which are opened through the medicine dispensing member 30 so that the pill can be poured out from the end of the medicine storage tank 32 away from the medicine dispensing hole 52 when the medicine dispensing member 30 is completely separated from the medicine dispensing tank.

[0054] Specifically, the number and position of the pill storage slots 32 correspond to the pill dispensing holes 52 to ensure that the pills can fall accurately into the pill storage slots 32 through the dispensing component 40. When the user rotates the dispensing component 30 to the release angle, the pill storage slots 32 are fully exposed, and the pills fall freely from below the pill storage slots 32, avoiding the step of the user needing to pour out the pills, further improving the convenience of pill removal. At the same time, by setting the function of independent storage of individual pills, the situation of inaccurate pill dosage is avoided, which has better user-friendly performance.

[0055] In one embodiment, referring to Figures 2 and 3 of the specification, based on the above embodiment, the quantitative dispensing bottle provided by this utility model further includes multiple guide members 51. The multiple guide members 51 are all disposed on the side of the bottle cap 20 near the isolator 50 and extend toward the inside of the bottle body 10. Multiple pill channels are provided between two adjacent guide members 51. The width of the pill channels is adapted to the pills, and the pill channels are correspondingly connected to the dispensing hole 52.

[0056] Specifically, the guide members 51 are distributed parallel to the edge of the isolator 50 on the inner wall of the bottle cap 20, and their number is the same as that of the dispensing hole 52. Each guide member 51 extends into the bottle body 10 to form a pill channel that guides the pills to fall in a single row. The projection of the pill channel and the dispensing hole 52 are completely superimposed, thereby ensuring that the pills can reach the dispensing hole 52 along the channel. A buffer slope can be provided at the end of the guide member 51 near the dispensing hole 52 to avoid the pills being damaged by the sharp edges and to ensure the smoothness of the sliding. By setting the pill channel, the mechanism of single-row passage of the pills is further ensured, and the leakage or jamming of the pills due to lateral deviation is also effectively avoided, which effectively improves the operational reliability of this utility model.

[0057] The method of using this utility model is as follows: When the user takes the medicine, he / she first manually rotates the rotating part 41 according to the actual needs to control the corresponding amount of medicine dispensed. Then, he / she inverts the medicine bottle so that the pills pass through the pill channel, the medicine dispensing hole 52, and the medicine dispensing hole 44 in sequence to reach the medicine storage tank 32. Then, he / she opens the locking device 24 and rotates the medicine dispensing part 30 so that the predetermined dose of pills falls into the user's hand.

[0058] The above are merely preferred embodiments of this utility model, but the scope of protection of this utility model is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in this utility model, based on the technical solution and inventive concept of this utility model, should be included within the scope of protection of this utility model.

Claims

1. A quantitative dispensing vial, characterized in that, include: The bottle body has an opening at one end; a cap is threadedly connected to the opening and has an inner partition with multiple dispensing holes adapted to the pills; a rotating groove is located on the side of the cap opposite to the bottle body; a dispensing component is rotatably disposed within the rotating groove and closely fitted to the dispensing holes, allowing the number of dispensing holes to be controlled by rotating the dispensing component; and a dispensing device is rotatably disposed within the rotating groove and on the side of the dispensing component opposite to the dispensing holes, with a placement groove on the side of the dispensing device facing the partition, allowing the pills to fall into the placement groove.

2. The dispensing vial according to claim 1, characterized in that, The bottle cap has a rotating hole on the side away from the bottle opening, and a rotating protrusion is provided at the center position; the dispensing component has a snap-fit ​​protrusion on the side away from the dispensing hole, and a rotating component is snapped onto the rotating hole through the snap-fit ​​protrusion. The rotating component has a rotating groove, and the rotating groove is snapped onto the rotating protrusion.

3. The quantitative dispensing vial according to claim 2, characterized in that, A dispensing plate is provided on the side of the dispensing component that is close to the dispensing hole. The dispensing plate is adapted to the isolation component and has multiple dispensing holes, which correspond to the dispensing holes.

4. The dispensing vial according to claim 3, characterized in that, The isolator has multiple positioning protrusions on the side corresponding to the dispensing component, and the multiple positioning protrusions are distributed on the rotation path of the dispensing component. The dispensing component has a locking protrusion corresponding to the positioning protrusion on the side near the positioning protrusion.

5. The dispensing vial according to any one of claims 1-4, characterized in that, The side wall of the bottle cap is provided with a dispensing notch adapted to the dispensing component. The side wall of the isolator is provided with a rotating side and a locking side on both sides corresponding to the dispensing notch. The rotating side is connected to the dispensing component through a rotating structure. The locking side is provided with a locking device. The end of the dispensing component away from the rotating structure is provided with a locking protrusion adapted to the locking device.

6. The dispensing vial according to claim 5, characterized in that, The dispensing device is provided with a baffle, which is located adjacent to the medicine storage groove and blocks the medicine dispensing hole when the medicine storage groove is misaligned with the medicine dispensing hole.

7. The dispensing vial according to claim 6, characterized in that, Also includes: The medicine storage tank is provided with multiple independent medicine storage tanks, which are opened through the medicine dispensing component so that the pill can be poured out from the end of the medicine storage tank away from the medicine dispensing hole when the medicine dispensing component is completely separated from the medicine dispensing tank.

8. The dispensing vial according to claim 6 or 7, characterized in that, Also includes: Multiple guide members are provided on the bottle cap near the isolator and extend toward the inside of the bottle. Multiple pill channels are provided between two adjacent guide members. The width of the pill channels is adapted to the pills. The pill channels are connected to the dispensing hole.