Weighing bottle for automatically detecting weight of medicine bottle

By designing an automatic weighing system for medicine bottles, the problem of low efficiency of traditional weighing methods is solved, rapid and accurate detection of the weight of medicine bottles is achieved, and the quality control of medicine filling is improved.

CN222861124UActive Publication Date: 2025-05-13SHENZHEN HUAYAO NANFANG PHARM CO LTD
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Patent Information

Application Number
CN202421097906.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-05-20
Publication Date
2025-05-13
Estimated Expiration
2034-05-20

AI Technical Summary

Technical Problem

When facing a large number of bottles filled with medicine, it is difficult to achieve continuous and efficient testing, which affects work efficiency and drug quality control.

Method used

Design a weighing bottle for automatic detection of the weight of the bottle, including the bottle, weighing assembly and receiver. The weighing assembly is bonded to the connector of the bottle, which can detect the weight of the bottle in real time and transmit it to the receiver via electrical signals.

Benefits of technology

It realizes rapid and accurate detection of the weight of the medicine bottle, improves weighing efficiency, and ensures the control of the filling quality of the medicine.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a weighing bottle for automatically detecting the weight of a medicine bottle, and the bottle comprises a medicine bottle which comprises a bottle body, a first connecting piece, and a second connecting piece. The weighing assembly is connected with the first connecting piece and the second connecting piece respectively and is attached to the first connecting piece and the second connecting piece, and the weighing assembly is located at the end away from the bottle opening of the medicine bottle; the electronic scale further comprises a receiver, and the receiver is electrically connected with the weighing assembly. Wherein medicine is placed in the bottle body, the weight of the bottle body changes, and the weighing assembly connected with the first connecting piece and the second connecting piece in an attached mode detects the weight of the medicine bottle and transmits the measured weight to the receiver. Through the structure, the medicine bottle weighing efficiency is improved.
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Description

Technical Field

[0001] The present application relates to the field of medicine bottle weighing, and in particular to a weighing bottle for automatically detecting the weight of a medicine bottle. Background Art

[0002] The control of drug filling weight is a key link to ensure product quality, which is directly related to the accuracy and safety of drugs. Therefore, in the drug production process, it is particularly important to weigh the filled medicine bottles to verify whether the product filling meets the standards.

[0003] However, the traditional weighing method is often difficult to achieve continuous and efficient detection when facing a large number of medicine bottles filled with medicines, which not only affects the work efficiency, but also may have an adverse impact on the timely supply and quality control of medicines. Therefore, a weighing bottle for automatically detecting the weight of medicine bottles is needed to improve the efficiency of weighing medicine bottles. Utility Model Content

[0004] In view of this, it is necessary to provide a weighing bottle for automatically detecting the weight of a medicine bottle, which improves the accuracy and efficiency of weighing the medicine bottle, so as to solve the above problems.

[0005] In at least one embodiment of the present application, a weighing bottle for automatically detecting the weight of a medicine bottle includes: a medicine bottle, a weighing assembly and a receiver. The medicine bottle includes a bottle body, a first connector and a second connector. The weighing assembly is connected to the first connector and the second connector, respectively. The weighing assembly fits with the first connector and the second connector. The weighing assembly is located at the end away from the mouth of the medicine bottle. The receiver is electrically connected to the weighing assembly. Wherein, when medicine is placed in the bottle body, the weight of the bottle body changes, and the weighing assembly that is fitted with the first connector and the second connector detects the weight of the medicine bottle and transmits the measured weight to the receiver.

[0006] In at least one embodiment of the present application, the bottle body, the first connecting member and the second connecting member are integrally formed, and the first connecting member and the second connecting member are located outside the bottle body.

[0007] In at least one embodiment of the present application, the first connecting member and the second connecting member are symmetrically arranged along the midpoint of the width of the bottle body.

[0008] In at least one embodiment of the present application, both the first connecting member and the second connecting member include a fitting surface that is fitted and connected to the weighing component.

[0009] In at least one embodiment of the present application, the weighing assembly includes: a first weighing member and a second weighing member. The first weighing member is closely connected to the first connecting member. The first weighing member is located at an end away from the mouth of the medicine bottle. The second weighing member is closely connected to the second connecting member. The second weighing member is located at an end away from the mouth of the medicine bottle.

[0010] In at least one embodiment of the present application, the first weighing member and the second weighing member both include: a transmission member and a weighing sensor. The two transmission members are horizontally connected to the first connecting member and the second connecting member in a one-to-one correspondence. The two weighing sensors are horizontally connected to the sensors in a one-to-one correspondence, one end of the sensor is connected to the fitting surface in a fitting manner, and the other end of the sensor is connected to the weighing sensor in a fitting manner.

[0011] In at least one embodiment of the present application, the weighing assembly further comprises a shell, and the weighing sensor is located inside the shell and close to one end of the transmission member.

[0012] In at least one embodiment of the present application, the bottle body is configured as a transparent structure.

[0013] In at least one embodiment of the present application, the receiver includes a data processing unit, and the data processing unit is electrically connected to the weighing sensor.

[0014] In at least one embodiment of the present application, the receiver includes a display screen, and the display screen is electrically connected to the data processing unit.

[0015] The weighing bottle for automatically detecting the weight of a medicine bottle provided above integrates a weighing component and a receiver. When the amount of medicine in the medicine bottle changes, resulting in a change in the weight of the bottle, the weighing component can immediately capture the change and accurately measure the weight of the medicine bottle, and then transmit the measurement data to the receiver through an electrical signal, thereby improving weighing efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 This is a front view of the weighing bottle for automatically detecting the weight of a medicine bottle as described in the present application;

[0017] Figure 2 for Figure 1 A partial enlarged view of the middle AA;

[0018] Figure 3 This is a schematic diagram of the electrical connection structure in the weighing bottle for automatically detecting the weight of the medicine bottle described in this application.

[0019] Main component symbols

[0020] 100. Weighing bottle for automatically detecting the weight of medicine bottle; 10. Medicine bottle; 11. Bottle body; 12. First connecting piece; 13. Second connecting piece; 20. Weighing assembly; 30. Receiver; 1213. Fitting surface; 21. First weighing piece; 22. Second weighing piece; 211. Transmitting piece; 212. Weighing sensor; 213. Shell; 31. Data processing unit; 32. Display screen. DETAILED DESCRIPTION

[0021] The embodiments of the present application will be described below in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments.

[0022] It should be noted that when a component is considered to be "connected" to another component, it may be directly connected to the other component or there may be a central component at the same time. When a component is considered to be "located on" another component, it may be directly located on the other component or there may be a central component at the same time. The terms "top", "bottom", "upper", "lower", "left", "right", "front", "back", and similar expressions used herein are for illustrative purposes only.

[0023] An embodiment of the present application provides a weighing bottle for automatically detecting the weight of a medicine bottle, comprising: a medicine bottle, a weighing assembly and a receiver. The medicine bottle comprises a bottle body, a first connecting piece and a second connecting piece. The weighing assembly is connected to the first connecting piece and the second connecting piece respectively. The weighing assembly is fitted with the first connecting piece and the second connecting piece. The weighing assembly is located at one end away from the mouth of the medicine bottle. The receiver is electrically connected to the weighing assembly. Wherein, when medicine is placed in the bottle body, the weight of the bottle body changes, and the weighing assembly fitted with the first connecting piece and the second connecting piece detects the weight of the medicine bottle and transmits the measured weight to the receiver.

[0024] The weighing bottle for automatically detecting the weight of a medicine bottle provided above integrates a weighing component and a receiver. When the amount of medicine in the medicine bottle changes, resulting in a change in the weight of the bottle, the weighing component can immediately capture the change and accurately measure the weight of the medicine bottle, and then transmit the measurement data to the receiver through an electrical signal, thereby improving weighing efficiency.

[0025] Some embodiments of the present application are described in detail below in conjunction with the accompanying drawings. In the absence of conflict, the following embodiments and features in the embodiments can be combined with each other.

[0026] See also Figure 1-Figure 3, an embodiment of the present application provides a weighing bottle 100 for automatically detecting the weight of a medicine bottle, comprising: a medicine bottle 10, a weighing assembly 20 and a receiver 30. The medicine bottle 10 comprises a bottle body 11, a first connecting piece 12 and a second connecting piece 13. The weighing assembly 20 is connected to the first connecting piece 12 and the second connecting piece 13 respectively. The weighing assembly 20 is fitted with the first connecting piece 12 and the second connecting piece 13. The weighing assembly 20 is located at an end away from the bottle mouth of the medicine bottle 10. The receiver 30 is electrically connected to the weighing assembly 20. Wherein, when medicine is placed in the bottle body 11, the weight of the bottle body 11 changes, and the weighing assembly 20, which is fitted with the first connecting piece 12 and the second connecting piece 13, detects the weight of the medicine bottle 10 and transmits the measured weight to the receiver 30.

[0027] Specifically, the bottle body 11 and the connector may be made of high-strength medical grade plastic or glass, which not only needs to ensure sufficient mechanical strength, but also needs to ensure that it does not chemically react with the stored medicine. For the connector, additional machining may be required to ensure that its surface is flat to optimize contact with the weighing component 20.

[0028] Furthermore, the symmetrical design of the connector not only helps ensure a balanced weighing, but also helps simplify mold design during manufacturing. Symmetry ensures that placement in any orientation will not affect the consistency of the weight reading.

[0029] Furthermore, the transmission member 211 is responsible for directly transmitting the weight variation of the bottle 11 to the sensor. The design of the transmission member 211 needs to ensure that there is no mechanical looseness or elastic deformation, which may be made of hard metal or rigid synthetic material to maintain the accuracy of its transmission.

[0030] Furthermore, highly sensitive load sensors, such as resistance strain gauges or piezoelectric sensors, are used, which can convert tiny force changes into electrical signals. These sensors must be strictly calibrated during the manufacturing process to ensure accuracy and repeatability in long-term use.

[0031] The data processing unit 31 needs to perform a variety of functions, including signal amplification, digital conversion, weight calculation, and possible error correction. In addition, it can also be set with statistical analysis functions, such as calculating the average drug consumption rate and predicting the drug exhaustion time. The display screen 32 can use liquid crystal or LED technology to provide clear readings and graphical interfaces. The user interface may include touch screen technology to make the operation more intuitive and convenient.

[0032] In summary, before the first use, the user needs to make a series of settings through the receiver 30, including unit selection (such as milligrams, grams), empty bottle weight entry, etc. When the drug is added to or removed from the bottle, the total weight of the bottle body 11 changes instantly, and these changes are directly transmitted to the weighing sensor 212 by the transmission member 211 and instantly converted into electrical signals. The receiver 30 processes these signals in real time and updates the data on the display 32. The weighing bottle can be connected to an external device (such as a computer, a smart phone, or a central monitoring system of a hospital) via built-in Wi-Fi or Bluetooth to achieve real-time synchronization and storage of data.

[0033] In a specific implementation example, the bottle body 11 , the first connecting member 12 , and the second connecting member 13 are integrally formed, and the first connecting member 12 and the second connecting member 13 are located outside the bottle body 11 .

[0034] Specifically, the one-piece design reduces the number of joints between components, which can greatly enhance the strength and durability of the overall structure. Reduced joints also mean a lower risk of leakage, which is especially important for storing liquid drugs.

[0035] Furthermore, one-piece molding reduces the assembly work required in the production process and simplifies the manufacturing process, which can not only reduce production costs but also improve production efficiency and product consistency.

[0036] Furthermore, the connector is arranged outside the bottle body 11, so that the connector can be more easily connected to the weighing assembly 20. This facilitates the installation and maintenance of the weighing assembly 20, and ensures that the weighing assembly 20 can be stably and accurately installed in the predetermined position. The external design of the connector reduces the interference of the internal space, ensures that the weighing sensor 212 directly bears the weight change from the bottle body 11, and improves the accuracy and response speed of weight measurement.

[0037] Furthermore, during the manufacturing process, the bottle body 11 and the connecting member are produced in an integrally formed manner. When the weighing assembly 20 is assembled, the first and second weighing members 22 correspond to and are closely connected with the first and second connecting members 13 respectively.

[0038] In summary, when medicine is added to or taken out of the bottle 11, the weight of the bottle 11 changes. These changes are directly transmitted to the fitted weighing assembly 20 through the connector. The sensor in the weighing assembly 20 detects the weight changes and converts this information into electrical signals and transmits it to the receiver 30. The data processing unit 31 in the receiver 30 analyzes these electrical signals, calculates the accurate weight of the medicine, and displays it to the operator through the display screen 32.

[0039] In a specific implementation example, the first connecting member 12 and the second connecting member 13 are symmetrically arranged along the midpoint of the width of the bottle body 11 .

[0040] Specifically, by arranging the two connecting parts symmetrically at the midpoint of the width of the bottle body 11, it is possible to ensure that the medicine bottle 10 maintains a good balance in any loading state. Such a balance is essential for accurately measuring the weight of the medicine bottle 10, because it helps to reduce any measurement errors that may be caused by the unstable placement or tilt of the medicine bottle 10.

[0041] Furthermore, the symmetrical design simplifies the mold design and manufacturing steps in the manufacturing process, because both parts can be made using the same or mirrored tools and procedures. In addition, the assembly process is more efficient due to the consistency and predictability of the parts.

[0042] Furthermore, from an aesthetic and industrial design perspective, symmetry increases the product's visual appeal. For consumer medical devices, look and feel are also important components of product design, especially in the personal health device market.

[0043] In summary, during the production process, once the bottle 11 is formed, the first and second connectors 13 are symmetrically installed at the midpoint of its width. This ensures the symmetry of the installation of the weighing assembly 20, which is crucial for the accuracy of subsequent weight measurement. When the drug is added to the bottle 11, the weight of the drug is evenly distributed in the bottle 11 and is transferred to the symmetrically placed weighing assembly 20 through the connector.

[0044] In a specific implementation example, both the first connecting member 12 and the second connecting member 13 include a fitting surface 1213 that is fitted and connected to the weighing assembly 20 .

[0045] Specifically, the design of the fitting surface 1213 maximizes the contact area between the weighing assembly 20 and the connector, which helps to evenly transfer the weight of the medicine bottle 10 to the weighing sensor 212. By increasing the contact area, local stress concentration can be reduced and damage to the sensor can be avoided, thereby improving the stability of the system and the accuracy of the measurement.

[0046] Furthermore, when the weight of the drug in the medicine bottle 10 changes, these changes can be transmitted to the weighing sensor 212 more directly and quickly through the contact surface 1213. This rapid responsiveness is necessary for accurately monitoring and managing drug dosage, especially in medical environments where frequent adjustments to drug dosage are required.

[0047] Furthermore, the connector designed with the specific fitting surface 1213 can simplify the installation and positioning process of the weighing assembly 20, ensuring that each assembly and disassembly can maintain a consistent installation quality. This simplified assembly process also makes daily maintenance and possible component replacement more convenient.

[0048] Furthermore, during assembly, the corresponding parts of the weighing assembly 20 will be tightly combined with the contact surfaces 1213 of the first and second connecting members 13. This combination requires precise control to ensure that the contact surfaces are fully matched, ensuring the effectiveness of force transmission and the accuracy of measurement.

[0049] In a specific implementation example, the first weighing member 21 and the second weighing member 22 both include: a transmission member 211 and a weighing sensor 212. The two transmission members 211 are horizontally connected to the first connecting member 12 and the second connecting member 13 in a one-to-one correspondence. The two weighing sensors 212 are horizontally connected to the sensors in a one-to-one correspondence, one end of the sensor is connected to the fitting surface 1213 in a fitting connection, and the other end of the sensor is connected to the weighing sensor 212 in a fitting connection.

[0050] Specifically, by using two weighing members, the weight of the medicine bottle 10 can be more evenly distributed, thereby reducing the error caused by any single point load. This is particularly critical for ensuring accurate measurement of the weight of the medicine in the medicine bottle 10.

[0051] Furthermore, the dual weighing system design helps to balance the center of gravity of the medicine bottle 10, especially when the medicine bottle 10 is large or the drug load is heavy. This balance is very important for maintaining the stability of the system and reducing reading fluctuations.

[0052] Further, placing the weighing element at the end away from the mouth of the medicine bottle 10 can reduce the interference of operation when adding or removing medicine, because these actions are mainly performed near the mouth of the bottle. With this layout, the weighing system can operate in a more stable environment, improving the reliability of the measurement results.

[0053] Furthermore, the snug connection of each weighing member to the corresponding connecting member ensures that the force transmission from the vial 10 to the weighing sensor 212 is direct and unobstructed, which is critical for capturing weight changes quickly and accurately.

[0054] In a specific implementation example, the first weighing member 21 and the second weighing member 22 both include: a transmission member 211 and a weighing sensor 212. The two transmission members 211 are horizontally connected to the first connecting member 12 and the second connecting member 13 in a one-to-one correspondence. The two weighing sensors 212 are horizontally connected to the sensors in a one-to-one correspondence, one end of the sensor is connected to the fitting surface 1213 in a fitting connection, and the other end of the sensor is connected to the weighing sensor 212 in a fitting connection.

[0055] Specifically, the main function of the transmission member 211 is to serve as a force transmission medium to accurately transmit the weight pressure exerted on the medicine bottle 10 through the connecting member to the weighing sensor 212 .

[0056] Furthermore, the horizontal fit connection between the transmission member 211 and the first connecting member 12 and the second connecting member 13 optimizes the force transmission path and ensures that the force transmission from the medicine bottle 10 to the weighing sensor 212 is continuous and lossless. This horizontal connection also helps to maintain the symmetry and balance of the entire system. The weighing sensor 212 is responsible for converting the received force (from the weight change of the medicine bottle 10) into electrical signals, which are then used to calculate and display the real-time weight of the medicine bottle 10.

[0057] Furthermore, the weighing sensor 212 is connected to the transmission member 211 by a fitting connection at one end, ensuring that the force received by the transmission member 211 can be directly and accurately converted into an electrical signal. The other end of the transmission member 211 is tightly combined with the fitting surface 1213 of the connector, and this design ensures that the transmitted force will not be lost or weakened at the interface.

[0058] In summary, when a drug is added to or taken out of the medicine bottle 10, the weight of the medicine bottle 10 changes. This change is transmitted to the transmission member 211 through the connecting member, and the transmission member 211 then transmits this force to the weighing sensor 212. The weighing sensor 212 receives the force from the transmission member 211 and converts it into an electrical signal. These signals are transmitted to the receiver 30 of the system, and the receiver 30 processes these data to calculate the precise weight of the drug. The processed weight data can be directly displayed on the display screen 32 of the receiver 30, or it can be transmitted to other systems for further analysis and recording.

[0059] In a specific implementation example, the weighing assembly 20 further includes a housing 213 . The weighing sensor 212 is located in the housing 213 and close to one end of the transmission member 211 .

[0060] Specifically, the housing 213 provides necessary physical protection for the weighing sensor 212 to prevent the sensor from being affected by environmental factors such as mechanical damage, dust, and liquid splashing during daily use, thereby ensuring the long-term stability and reliability of the sensor.

[0061] Furthermore, the housing 213 can also provide environmental isolation for the sensor, protecting the sensor from environmental changes such as temperature fluctuations and humidity, which is critical to maintaining sensor performance and accuracy.

[0062] Furthermore, by positioning the sensor close to one end of the transmission member 211, the housing 213 helps ensure that the force transmission from the transmission member 211 to the sensor is direct and undispersed. This close-range layout reduces potential loss or deviation of force during transmission and improves the accuracy of measurement.

[0063] Furthermore, the addition of the housing 213 enhances the structural strength of the entire weighing assembly 20, especially at the contact and fixing points with the connectors, helping to maintain the accurate alignment and structural integrity of the entire device.

[0064] During the manufacturing or assembly process, the weighing sensor 212 is installed in the housing 213, close to one end of the transmission member 211. This layout simplifies the assembly process, ensures the correct position and direction of the sensor, and reduces the possibility of installation errors.

[0065] In operation, when the drug is placed in the vial 10, the weight change is directly transmitted to the sensor through the connector and the transmission member 211. Due to the optimized position and protection measures of the sensor, the physical weight change can be quickly and accurately converted into an electrical signal without worrying about environmental factors or physical damage affecting the sensor performance.

[0066] In a specific implementation example, the bottle body 11 is configured as a transparent structure.

[0067] Specifically, the transparent bottle 11 allows the filling condition, color, and sediment of the medicine to be clearly visible. The user can make a preliminary judgment on the quality of the medicine without opening the bottle 11. The user can easily confirm the remaining amount of medicine during use without relying on additional measuring tools.

[0068] The user can intuitively understand the status of the drug through the transparent bottle 11, which improves the convenience and satisfaction of use. The transparent bottle 11 can show the high quality of the drug, thereby attracting more consumers. Since the status of the drug is clearly visible, users are less likely to cause problems due to misunderstanding or misuse.

[0069] The transparent structure bottle 11 itself does not involve any mechanical or electronic actuation process, but it forms a complete detection system together with the weighing assembly 20 and the receiver 30. In this system, the transparent bottle 11 is mainly used to provide visual information, while the weighing assembly 20 and the receiver 30 are responsible for providing accurate weight data.

[0070] Further, further, further, in summary,

[0071] In a specific implementation example, the receiver 30 includes a data processing unit 31 , and the data processing unit 31 is electrically connected to the weighing sensor 212 .

[0072] Specifically, the data processing unit 31 can accurately interpret the electrical signal transmitted from the weighing sensor 212, thereby ensuring the accuracy of the measurement result. The data processing unit 31 converts the original electrical signal into readable measurement data, which is convenient for users to understand and use. The data processing unit 31 can store and analyze a large amount of measurement data, support advanced functions such as data comparison and trend prediction, and provide strong support for drug quality control and production decision-making.

[0073] Furthermore, the data processing unit 31 first receives the electrical signals from the weighing sensor 212. Next, the data processing unit 31 interprets these electrical signals and converts them into specific measurement data. The data processing unit 31 can store, analyze, compare and other operations on these data to generate more valuable information.

[0074] Finally, the data processing unit 31 transmits the processed data to the display screen 32 or other output devices for the user to view and use.

[0075] In a specific implementation example, the receiver 30 includes a display screen 32 , and the display screen 32 is electrically connected to the data processing unit 31 .

[0076] Specifically, the display screen 32 converts complex data into intuitive graphics or numbers, so that the user can quickly understand the current situation.

[0077] Furthermore, the display screen 32 may also support touch operation, and the user can operate the device or select display content by touching the screen, thereby improving the user experience. The display screen 32 can display the data processed by the data processing unit 31 in real time, ensuring that the user can understand the weight change of the medicine bottle 10 in a timely manner.

[0078] Furthermore, the display screen 32 receives processed data from the data processing unit 31. Based on the received data, the display screen 32 displays the data to the user in the form of graphics, numbers or other forms. If the display screen 32 supports touch operation, the user can operate or select display content by touching the screen.

[0079] Thus, the weighing bottle 100 for automatically detecting the weight of a medicine bottle provided above integrates the weighing component 20 and the receiver 30. When the amount of medicine in the medicine bottle 10 changes, resulting in a change in the weight of the bottle body 11, the weighing component 20 can immediately capture the change and accurately measure the weight of the medicine bottle 10, and then transmit the measured data to the receiver 30 through an electrical signal, thereby improving the weighing efficiency.

[0080] The above is only an implementation method of the present application. It should be pointed out that a person skilled in the art can make improvements without departing from the inventive concept of the present application, but these improvements are within the scope of protection of the present application.

Claims

1. A weighing bottle for automatically detecting the weight of a medicine bottle, characterized in that: include: A medicine bottle, comprising a bottle body, a first connecting piece and a second connecting piece; A weighing assembly is connected to the first connecting member and the second connecting member respectively and fits with the first connecting member and the second connecting member, and the weighing assembly is located at an end away from the mouth of the medicine bottle; a receiver, the receiver being electrically connected to the weighing assembly; Wherein, medicine is placed in the bottle body, and the weight of the bottle body changes. The weighing assembly that is closely connected to the first connector and the second connector detects the weight of the medicine bottle and transmits the measured weight to the receiver.

2. A weighing bottle for automatically detecting the weight of a medicine bottle according to claim 1, characterized in that: The bottle body, the first connecting member and the second connecting member are integrally formed, and the first connecting member and the second connecting member are located outside the bottle body.

3. A weighing bottle for automatically detecting the weight of a medicine bottle according to claim 1, characterized in that: The first connecting member and the second connecting member are symmetrically arranged along the midpoint of the width of the bottle body.

4. A weighing bottle for automatically detecting the weight of a medicine bottle according to claim 1, characterized in that: The first connecting member and the second connecting member both include a fitting surface that is fitted and connected to the weighing component.

5. A weighing bottle for automatically detecting the weight of a medicine bottle according to claim 4, characterized in that: The weighing assembly comprises: A first weighing member is closely connected to the first connecting member and is located at an end away from the mouth of the medicine bottle; The second weighing piece is closely connected to the second connecting piece and is located at the end away from the mouth of the medicine bottle.

6. A weighing bottle for automatically detecting the weight of a medicine bottle according to claim 5, characterized in that: The first weighing member and the second weighing member both include: Transmission members, two transmission members corresponding to each other horizontally and closely connected with the first connection member and the second connection member; A weighing sensor, two weighing sensors are horizontally connected to the sensor in a one-to-one correspondence, one end of the sensor is fitted and connected to the fitting surface, and the other end of the sensor is fitted and connected to the weighing sensor.

7. A weighing bottle for automatically detecting the weight of a medicine bottle according to claim 6, characterized in that: The weighing assembly further comprises a shell, and the weighing sensor is located inside the shell and close to one end of the transmission member.

8. A weighing bottle for automatically detecting the weight of a medicine bottle according to claim 1, characterized in that: The bottle body is set as a transparent structure.

9. A weighing bottle for automatically detecting the weight of a medicine bottle according to claim 6, characterized in that: The receiver includes a data processing unit, and the data processing unit is electrically connected to the weighing sensor.

10. A weighing bottle for automatically detecting the weight of a medicine bottle according to claim 9, characterized in that: The receiver includes a display screen, and the display screen is electrically connected to the data processing unit.