Medicine production line system
By introducing a structure that connects the diversion hopper to the dual-count granulator in the pharmaceutical production line, the bottleneck problem of material supply caused by the fixed position of the traditional elevator is solved, realizing the shared material supply of the two machines, improving production continuity and capacity, and reducing the complexity and cost of equipment adjustment.
Patent Information
- Application Number
- CN202522233537.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-22
- Publication Date
- 2025-12-12
- Estimated Expiration
- 2035-10-22
AI Technical Summary
When a new tablet counter is added to a traditional pharmaceutical production line, the elevator is in a fixed position and can only supply material to a single tablet counter, making it impossible to share material between two counters. This increases the complexity of equipment adjustments and affects production continuity.
By connecting the main channel of the elevator output end to the diversion hopper, and setting two diversion channels below the main channel to connect to two counting machines respectively, the material is naturally distributed. Combined with the adjustable rope buckle structure and detachable clean cloth bag, the flow distribution is dynamically adjusted. The stainless steel material and detachable connection design ensure the stability and flexibility of the equipment.
Dual-machine shared material supply can be achieved without rearranging the position of the elevator, reducing production line modification time and costs, improving production continuity and overall capacity, enhancing equipment stability and multi-variety production compatibility, and reducing changeover costs and time losses.
Smart Images

Figure CN223658578U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of medicine production, in particular to a medicine production line system. BACKGROUND
[0002] At present, in the field of medicine production, the packaging link of tablet medicines has increasingly high requirements for production efficiency and continuity. In order to meet the demand for capacity expansion, it is often necessary to increase the number of tablet counting machines to improve the overall rate of tablet dispensing, so as to adapt to the development trend of large-scale production.
[0003] In related technologies, the feeding system of a tablet counting machine often adopts a "elevator + single hopper" mode, that is, the tablets are transported to a single hopper by an elevator, and the hopper supplies tablets to a single tablet counting machine. This configuration is common in the production scene of a single tablet counting machine.
[0004] However, when a tablet counting machine is added to the production line to improve capacity, the original elevator can only supply tablets to a single tablet counting machine due to its fixed position, and cannot realize shared feeding of two machines. The position of the elevator needs to be rearranged, which not only increases the complexity of equipment adjustment, but also may affect the continuity of production, becoming a technical bottleneck restricting the efficient operation of two tablet counting machines. CONTENT OF THE INVENTION
[0005] The present application provides a medicine production line system, which can solve the technical problem that when a tablet counting machine is added to the traditional production line to improve capacity, the original elevator can only supply tablets to a single tablet counting machine due to its fixed position, and cannot realize shared feeding of two machines.
[0006] The present application provides a medicine production line system, which can solve the technical problem that when a tablet counting machine is added to the traditional production line to improve capacity, the original elevator can only supply tablets to a single tablet counting machine due to its fixed position, and cannot realize shared feeding of two machines.
[0007] The original production line is connected in parallel with the new production line.
[0008] The first tablet counting machine is arranged on the original production line.
[0009] The second tablet counting machine is arranged on the new production line.
[0010] The first tablet counting machine is arranged on the original production line.
[0011] The output end of the elevator is arranged above the main channel and communicates with the main channel.
[0012] In an embodiment, a clean cloth bag is nested inside the bottom end of the shunt channel, and an adjustable rope buckle structure is arranged at the end of the clean cloth bag away from the shunt channel.
[0013] In an embodiment, the bottom end of the shunt channel extends inward to form a turned-up edge, and the other end of the clean cloth bag is sleeved on the turned-up edge and is bound to the turned-up edge by an elastic band.
[0014] In an embodiment, the medicine production line system further comprises:
[0015] A fixed support is supported at the bottom of the two shunt channels.
[0016] A column is detachably fixedly connected with the fixed support.
[0017] In an embodiment, a slot is arranged at the bottom end of the fixed support, and a plug column that is matched with the slot is fixed at the top end of the column, and the plug column is arranged in the slot.
[0018] In an embodiment, a hinge rod is arranged on the side wall of the fixed support, and a clamping block is arranged at the end of the hinge rod away from the fixed support, and a clamping groove that is matched with the clamping block is arranged on the side wall of the column.
[0019] The hinge rod, the clamping block and the clamping groove form a clamping assembly, and multiple sets of the clamping assembly are arranged.
[0020] In an embodiment, the material of the shunt feeding hopper and the fixed support is stainless steel.
[0021] In an embodiment, the shunt feeding hopper is arranged in a Y shape.
[0022] In an embodiment, the inner diameter of the shunt channel gradually decreases along the direction of the medicine discharging of the shunt channel.
[0023] In an embodiment, the medicine production line system further comprises:
[0024] A bottle unscrambler is arranged upstream of the original production line.
[0025] A cap screwing machine is arranged downstream of the original production line.
[0026] The technical scheme provided by the embodiments of the present application has the following beneficial effects:
[0027] The output end of the elevator is communicated with the main channel of the shunt feeding hopper, and two shunt channels corresponding to the first and second particle counting machines are arranged below the main channel, so that the material is first introduced into the main channel after being output from the elevator, and then is naturally distributed to the two shunt channels by gravity, and finally is synchronously supplied to the first particle counting machine of the original production line and the second particle counting machine of the newly added production line. Through the structure of the single elevator cooperating with the shunt feeding hopper, the limitation that the traditional elevator is fixed in position and can only supply material to a single particle counting machine is broken, and the position of the elevator does not need to be rearranged to realize double-machine shared feeding, avoiding the complexity of equipment adjustment caused by rearranging the position of the elevator, reducing the production line reconstruction time and cost. At the same time, the shunt feeding hopper enables the original production line and the newly added production line to synchronously obtain the material, significantly improving the production continuity and overall capacity. BRIEF DESCRIPTION OF DRAWINGS
[0028] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings needed in the embodiment description will be briefly introduced. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative labor.
[0029] Figure 1 It is a top view structure schematic diagram of the medicine production line system.
[0030] Figure 2 It is a three-dimensional structure schematic diagram of the shunt feeding hopper.
[0031] Figure 3 It is an assembly schematic diagram of the shunt feeding hopper, the fixed support and the column.
[0032] Figure 4 It is a bottom end internal structure schematic diagram of the shunt channel.
[0033] In the figure: 1, original production line; 2, newly added production line; 3, first particle counting machine; 4, second particle counting machine; 5, shunt feeding hopper; 51, main channel; 52, shunt channel; 521, inner flange; 6, elevator; 7, clean cloth bag; 71, adjustable rope buckle structure; 8, fixed support; 81, slot; 82, hinged rod; 9, column; 91, column; 10, bottle unscrambler; 11, cap screwing machine. DETAILED DESCRIPTION
[0034] In order for those skilled in the art to better understand the scheme of the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below in combination with the drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0035] At present, in the field of drug production, the packaging link of tablet drugs requires increasing production efficiency and continuity. In order to meet the demand for capacity expansion, the number of tablet counting machines is often increased to improve the overall rate of tablet dispensing, so as to adapt to the development trend of large-scale production.
[0036] Among them, the feeding system of the tablet counting machine usually adopts the mode of "elevator + single hopper", that is, the tablets are transported to the single hopper by the elevator, and the single hopper supplies the single tablet counting machine. This configuration is common in the production scene of single tablet counting machine.
[0037] However, when a tablet counting machine is added to the production line to improve production capacity, the original elevator can only supply the single tablet counting machine due to its fixed position, and cannot realize shared feeding of double machines. The position of the elevator needs to be rearranged, which not only increases the complexity of equipment adjustment, but also may affect the continuity of production, becoming a technical bottleneck restricting the efficient operation of double tablet counting machines.
[0038] The embodiments of the present application provide a drug production line system, which can solve the technical problem that when a tablet counting machine is added to the traditional production line to improve production capacity, the original elevator can only supply the single tablet counting machine due to its fixed position, and cannot realize shared feeding of double machines.
[0039] As shown in Figure 1 and Figure 2 The embodiments of the present application provide a drug production line system, which comprises: an original production line 1, the original production line 1 is connected in parallel with a new production line 2; a first tablet counting machine 3, the first tablet counting machine 3 is arranged on the original production line 1; a second tablet counting machine 4, the second tablet counting machine 4 is arranged on the new production line 2; a shunt feeding hopper 5, the shunt feeding hopper 5 is arranged above the first tablet counting machine 3 and the second tablet counting machine 4, the shunt feeding hopper 5 comprises a main channel 51 and two shunt channels 52 communicated with the main channel 51, the first shunt channel 52 is communicated with the first tablet counting machine 3, and the second shunt channel 52 is communicated with the second tablet counting machine 4; an elevator 6, an output end of the elevator 6 is arranged above the main channel 51 and communicated with the main channel 51.
[0040] In this embodiment, the pharmaceutical production line system achieves shared material supply from the elevator 6 to the two counting machines (first counting machine 3 and second counting machine 4) through the connection structure between the diversion hopper 5 and the dual counting machines. By connecting the output end of the elevator 6 to the main channel 51 of the diversion hopper 5, and setting two diversion channels 52 below the main channel 51, corresponding to the first counting machine 3 and the second counting machine 4 respectively, the material is output from the elevator 6, first enters the main channel 51, and then is naturally distributed to the two diversion channels 52 by gravity, and finally synchronously supplies the first counting machine 3 of the original production line 1 and the second counting machine 4 of the newly added production line 2. This technical solution, through a single elevator 6 combined with a diversion hopper 5, overcomes the limitations of traditional elevators that are fixed in position and can only supply material to a single counting machine. It achieves shared material supply between two machines without the need to rearrange the elevator 6, avoiding the complexity of equipment adjustments caused by rearranging the elevator 6 and reducing production line modification time and costs. Simultaneously, the diversion hopper 5 allows the original production line 1 and the newly added production line 2 to simultaneously acquire materials, eliminating the switching waiting time in single-machine supply mode, significantly improving production continuity and overall capacity, and effectively solving the material supply bottleneck problem when adding a counting machine to a traditional production line. The new production line 2, by being connected in parallel with the original production line 1 and sharing the same elevator 6, achieves rapid expansion of the production line without increasing investment in elevator equipment, further enhancing the system's capacity improvement capabilities and economic efficiency.
[0041] In one implementation, such as Figure 3 As shown, a clean cloth bag 7 is nested inside the bottom end of the diversion channel 52, and an adjustable rope buckle structure 71 is provided at the end of the clean cloth bag 7 away from the diversion channel 52.
[0042] In this embodiment, by installing a food-grade clean cloth bag 7 inside the diversion channel 52 and configuring an adjustable rope buckle structure 71, the dynamic balance and compatibility improvement of the dual-counting chip feeding system are achieved. By aligning the left and right outlets of the clean cloth bag 7 with the inlets of the first counting machine 3 and the second counting machine 4 respectively, and by setting an adjustable rope buckle structure 71 at the outlet, the operator can adjust the material flow distribution by tightening or loosening the rope buckle to change the outlet cross-sectional area. When uneven feeding between the two tablet counters is detected (e.g., by observing counting deviations or differences in the number of tablets in the bottle), the corresponding adjustable cord buckle structure 71 is manually adjusted. Narrowing the outlet reduces the flow rate, while widening it increases the flow rate, achieving real-time correction of the feeding ratio. This technical solution overcomes the limitations of traditional fixed-flow distribution hoppers. By replacing complex electronic sensor control with manual adjustment of the physical structure, it achieves low-cost, high-reliability dynamic flow balance, avoiding uneven feeding caused by equipment vibration, differences in tablet characteristics, etc., and improving the stability of the dual tablet counters working together. Simultaneously, when switching between different bottle sizes (e.g., changes in tablet filling speed due to diameter differences), the adjustable cord buckle structure 71 can quickly adapt to new feeding requirements without replacing or modifying the overall structure of the feeding hopper. This significantly enhances the production line's compatibility with multi-variety production and reduces changeover costs and time losses.
[0043] In one implementation, such as Figure 4 As shown, the bottom end of the diversion channel 52 extends inward to form an inner flange 521, and the other end of the clean bag 7 is fitted onto the inner flange 521 and bound to the inner flange 521 by an elastic band.
[0044] In this embodiment, the clean bag 7 is detachably fixed by setting an inner flange 521 at the bottom of the diversion channel 52 and cooperating with an elastic band, which solves the contradiction between sealing and ease of maintenance during material conveying. By extending the bottom of the diversion channel 52 inward to form an annular inner flange 521, the outlet end of the clean bag 7 can be fitted onto the outside of the inner flange 521. The elastic contraction force of the food-grade elastic band is used to tightly bind the clean bag 7 to the inner flange 521, forming a physical sealing structure. This design ensures that the material only contacts the inner surface of the clean bag 7 during the falling process, and the connection between the clean bag 7 and the diversion channel 52 is provided with reverse support force through the inner flange 521, preventing the elastic band from loosening due to material impact. When the cleanroom bag 7 needs to be cleaned or replaced, the elastic band can be quickly removed. When reinstalling, the seal can be restored by binding with the elastic band. This overcomes the limitation of traditional fixed channel structures that are difficult to clean thoroughly. By combining the detachable cleanroom bag 7 with the rigid inner flange 521, a balance between sealing reliability and maintenance convenience is achieved. Compared with traditional bolt or snap-fit connections, the changeover cleaning time is significantly shortened. Without affecting production efficiency, the hygiene, safety and maintenance efficiency of the production line are effectively improved.
[0045] In one implementation, such as Figure 3 As shown, the pharmaceutical production line system also includes: a fixed bracket 8, which is supported at the bottom of the two diversion channels 52; and a column 9, which is detachably and fixedly connected to the fixed bracket 8.
[0046] In this embodiment, by setting fixed supports 8 to support the bottom of the two diversion channels 52 and making the column 9 detachably fixedly connected to the fixed supports 8, stable support and flexible adjustment of the diversion feeding hopper 5 are achieved. The fixed supports 8 form rigid support for the bottom of the two diversion channels 52, ensuring that the diversion feeding hopper 5 maintains structural stability under material impact. At the same time, the detachable connection structure between the column 9 and the fixed supports 8 allows for the adjustment of the position of the fixed supports 8 and the diversion feeding hopper 5 or their overall disassembly and assembly by disassembling and separating them. This overcomes the limitations of traditional fixed welding or one-piece molded support structures that are difficult to adjust. The position of the diversion feeding hopper 5 can be adapted without the need for overall modification of the production line foundation, avoiding the problem of unstable material conveying caused by the vibration of the diversion feeding hopper 5, and ensuring the continuity of material supply from the dual-number chipper. In addition, the detachable connection design makes the installation, disassembly and position adjustment of the fixed supports 8 and the column 9 simple, which facilitates the layout adaptation during later maintenance of the production line, equipment upgrades or product changeovers, and effectively improves the structural stability and operational flexibility of the system.
[0047] In one implementation, such as Figure 3 As shown, the bottom of the fixed bracket 8 is provided with a slot 81, and the top of the column 9 is fixed with a plug 91 that is compatible with the slot 81. The plug 91 is set in the slot 81.
[0048] In this embodiment, by opening a slot 81 at the bottom of the fixed bracket 8 and setting a plug 91 that matches the slot 81 at the top of the column 9, the fixed bracket 8 and the column 9 are quickly positioned and detachably connected. By utilizing the geometric matching of the slot 81 and the plug 91, the plug 91 forms a radial constraint after being inserted into the slot 81, ensuring the connection accuracy of the fixed bracket 8 and the column 9. At the same time, the plugging and unplugging of the two achieves detachable fixation, and the initial positioning can be completed without additional connecting parts. This overcomes the limitation of traditional welding or bolt connections, which are difficult to disassemble and assemble quickly. The rigid plug-in structure realizes the convenient assembly and separation of the support components, avoiding the vibration and displacement problem of the diversion hopper 5 caused by loose connection, and ensuring the alignment accuracy of the diversion channel 52 and the chipper inlet. At the same time, the design of the slot 81 and the plug 91 makes the installation and disassembly of the fixed bracket 8 and the column 9 tool-free, which significantly shortens the adjustment time during equipment installation, maintenance or production change. Under the premise of ensuring structural stability, it effectively improves the assembly efficiency and layout flexibility of the production line.
[0049] In one implementation, such as Figure 3As shown, the side wall of the fixed bracket 8 is provided with a hinge rod 82, and the end of the hinge rod 82 away from the fixed bracket 8 is provided with a locking block. The side wall of the column 9 is provided with a locking groove that matches the locking block. The hinge rod 82, the locking block and the locking groove are a set of locking components, and multiple sets of locking components are provided.
[0050] In this embodiment, by setting a hinge rod 82 on the side wall of the fixed bracket 8 and opening a slot on the side wall of the column 9 that matches the end block of the hinge rod 82, multi-directional locking and vibration-resistant fastening of the fixed bracket 8 and the column 9 are achieved. Utilizing the rotatable characteristics of the hinge rod 82, the block can be embedded in the slot on the side wall of the column 9 to form axial constraint. At the same time, through the synergistic effect of multiple sets of locking components in different directions, the vibration and lateral force generated during material conveying are offset, enhancing the stability of the connection structure. This overcomes the limitation of easy loosening of traditional single-point connections. By forming a three-dimensional constraint network through multi-point locking, the unity of detachable connection and high-strength fastening is achieved, avoiding the problem of micro-motion wear between the slot 81 and the insertion post 91 caused by equipment operation vibration, and extending the service life of the support structure. Meanwhile, the rotational design of the hinge rod 82 makes the locking operation simple and quick, and the locking and unlocking of the fixed bracket 8 and the column 9 can be completed without tools. Under the premise of ensuring connection strength, the efficiency of production line maintenance and adjustment is significantly improved.
[0051] In one embodiment, both the diversion hopper 5 and the fixed bracket 8 are made of 304 stainless steel.
[0052] In this embodiment, by using 304 stainless steel for both the diversion hopper 5 and the fixed support 8, a balance between durability and cleanliness of the equipment structure is achieved. The high strength of stainless steel ensures the structural stability of the diversion hopper 5 under material impact and the fixed support 8 under load. Furthermore, the smooth, corrosion-resistant, and easy-to-clean surface of stainless steel prevents material residue and chemical cleaning agents from corroding the equipment. This overcomes the limitations of insufficient strength in traditional non-metallic materials or the susceptibility to corrosion in ordinary metal materials. The physical and chemical properties of stainless steel are adapted to the pharmaceutical production environment, ensuring the long-term structural stability of the diversion hopper 5 and the fixed support 8 and extending the equipment's service life. Simultaneously, the stainless steel material meets the cleanliness requirements of pharmaceutical production, facilitating daily cleaning and maintenance, reducing product quality risks caused by material contamination, and effectively meeting the hygiene standards and operational reliability of the production line while improving equipment durability.
[0053] In one implementation, such as Figure 2 and Figure 3 As shown, the diversion hopper 5 is arranged in a Y-shape.
[0054] In this embodiment, by setting the diversion hopper 5 in a Y-shape, efficient material distribution from a single elevator to two chippers is achieved. The Y-shaped main channel 51 and two diversion channels 52 form a symmetrical branch, allowing the material conveyed by the elevator to the main channel 51 to naturally flow to the two diversion channels 52 under gravity, respectively flowing to the corresponding chippers. This overcomes the limitation of traditional single channels only supplying material to a single chipper. The Y-shaped structural design enables synchronous material distribution, ensuring that both chippers can simultaneously obtain material, avoiding flow deviation or blockage during the distribution process, and improving the uniformity of material distribution. Simultaneously, the Y-shaped structure makes the overall layout of the diversion hopper 5 compact, reducing the space occupied by the equipment. Without adding an additional drive device, efficient collaborative feeding of two chippers is achieved, effectively improving the operational stability and space utilization of the production line.
[0055] In one implementation, such as Figure 2 and Figure 3 As shown, along the direction of drug feeding in the diversion channel 52, the inner diameter of the diversion channel 52 gradually decreases.
[0056] In this embodiment, from a cost perspective, the design does not require additional power drive devices (such as vibrators, conveying pumps, etc.). The smooth feeding of tablets is ensured by utilizing the natural guiding effect formed by the material's own weight and the change in the channel cross-section through the gradual structural change of the diversion channel 52 itself. From a space-occupying perspective, the tapered inner diameter design makes the overall structure of the diversion channel 52 more compact. Especially at the end near the tablet counter's feed inlet, the smaller inner diameter can directly and precisely connect with the feed inlet without the need for additional transition connectors. Compared to the design of a constant-diameter channel that requires a larger space to avoid material blockage, this gradual structure can significantly shorten the overall length of the diversion channel 52, reduce the horizontal and vertical space occupied by the equipment in the production line, leave more room for the layout of other equipment, and improve the overall space utilization of the production line.
[0057] In one implementation, such as Figure 1 As shown, the pharmaceutical production line system also includes: a bottle unscrambler 10, which is located upstream of the original production line 1; and a capping machine 11, which is located downstream of the original production line 1.
[0058] In this embodiment, by setting up a bottle unscrambler 10 upstream and a capping machine 11 downstream of the original production line 1, the entire tablet packaging process is automated. The bottle unscrambler 10 uses its orientation and sorting function to organize disordered bottles into an orderly arrangement with the bottle openings facing upwards, and then transports them to the first and second counting machines 3 and 4, seamlessly connecting the pre-packaging preparation stage with the dispensing system. Simultaneously, the capping machine 11 performs immediate capping after packaging, forming a continuous production line from bottle unscrambling and counting to capping. This overcomes the limitations of traditional segmented production requiring manual transfer or intermediate buffering. Through the coordinated operation of upstream and downstream equipment, integrated control of the pharmaceutical packaging process is achieved, avoiding the risk of contamination and operational errors caused by manual intervention, and improving the cleanliness of pharmaceutical production and product quality stability. Furthermore, the automated operation of the bottle unscrambler 10 and capping machine 11 reduces manpower input and shortens the single-bottle packaging cycle, effectively reducing labor costs and floor space while improving production efficiency.
[0059] In the description of this application, it should be noted that the terms "upper," "lower," etc., indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this application. Unless otherwise expressly specified and limited, the terms "installed," "connected," and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication between two elements. For those skilled in the art, the specific meaning of the above terms in this application can be understood according to the specific circumstances.
[0060] It should be noted that in this application, relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0061] The above description is merely a specific embodiment of this application, enabling those skilled in the art to understand or implement this application. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of this application. Therefore, this application is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features claimed herein.
Claims
1. A pharmaceutical production line system, characterized in that, It includes: The original production line (1) is connected in parallel with the new production line (2); The first counting machine (3) is installed on the original production line (1); The second counting machine (4) is installed in the newly added production line (2); Diverting feed hopper (5), the diverting feed hopper (5) is located above the first counting machine (3) and the second counting machine (4), the diverting feed hopper (5) includes a main channel (51) and two diverting channels (52) connected to the main channel (51), the first diverting channel (52) is connected to the first counting machine (3), and the second diverting channel (52) is connected to the second counting machine (4); The output end of the hoist (6) is located above the main channel (51) and is connected to the main channel (51).
2. The pharmaceutical production line system as described in claim 1, characterized in that, A clean cloth bag (7) is nested inside the bottom end of the diversion channel (52), and an adjustable rope buckle structure (71) is provided at the end of the clean cloth bag (7) away from the diversion channel (52).
3. The pharmaceutical production line system as described in claim 2, characterized in that, The bottom end of the diversion channel (52) extends inward to form an inner flange (521), and the other end of the clean cloth bag (7) is fitted onto the inner flange (521) and bound to the inner flange (521) by an elastic band.
4. The pharmaceutical production line system as described in claim 1, characterized in that, The pharmaceutical production line system also includes: A fixed bracket (8) is provided, which is supported at the bottom of the two diversion channels (52); The column (9) is detachably and fixedly connected to the fixed bracket (8).
5. The pharmaceutical production line system as described in claim 4, characterized in that, The bottom end of the fixed bracket (8) is provided with a slot (81), and the top end of the column (9) is fixed with a plug (91) that is compatible with the slot (81). The plug (91) is located in the slot (81).
6. The pharmaceutical production line system as described in claim 4, characterized in that, The side wall of the fixed bracket (8) is provided with a hinge rod (82), and the end of the hinge rod (82) away from the fixed bracket (8) is provided with a locking block. The side wall of the column (9) is provided with a locking groove that matches the locking block. The hinge rod (82), the locking block and the locking slot are a set of locking components, and multiple sets of locking components are provided.
7. The pharmaceutical production line system as described in claim 4, characterized in that, The diversion hopper (5) and the fixed bracket (8) are both made of stainless steel.
8. The pharmaceutical production line system as described in claim 1, characterized in that, The diversion hopper (5) is arranged in a Y-shape.
9. The pharmaceutical production line system as described in claim 1, characterized in that, Along the direction of drug feeding in the diversion channel (52), the inner diameter of the diversion channel (52) gradually decreases.
10. The pharmaceutical production line system as described in claim 1, characterized in that, The pharmaceutical production line system also includes: Bottle unscrambler (10), which is located upstream of the original production line (1); A capping machine (11) is located downstream of the original production line (1).