A digital intelligent monitoring device and management system for pharmaceutical enterprises
By designing an automatic cleaning mechanism on the digital intelligent monitoring equipment of pharmaceutical companies, and using the jet nozzle and airbag to generate strong airflow for long-distance cleaning, the low cleaning efficiency and safety risks caused by dust accumulation in the equipment are solved, and an automated, safe and efficient cleaning process is achieved.
Patent Information
- Application Number
- CN202410895060.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-05
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2044-07-05
AI Technical Summary
When the digital intelligent monitoring equipment of pharmaceutical companies is used for a long time, the probe head is prone to accumulate dust, resulting in low cleaning efficiency and dangerous. The existing technology relies on manual cleaning and is not efficient.
An automatic cleaning mechanism is designed, including a main body box, an injection nozzle, an airbag and a small electric push rod. It is activated by remote control of the signal receiving module, and the airflow ejected from the injection nozzle acts on the main body of the monitoring equipment in a strong state, achieving long-distance cleaning.
Without manual cleaning, the automatic cleaning mechanism can effectively maintain the detection clarity of the monitoring equipment main body, improve cleaning efficiency and reduce safety risks.
Smart Images

Figure CN118714425B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of intelligent pharmaceutical monitoring, and specifically to a digital intelligent monitoring device and management system for pharmaceutical enterprises. Background Technique
[0002] Digital intelligent monitoring devices for pharmaceutical enterprises are key tools in the modern pharmaceutical industry. They integrate advanced sensor technologies, big data analysis, and artificial intelligence algorithms, and can perform real-time and precise monitoring of key parameters such as temperature, humidity, pressure, and cleanliness during the pharmaceutical manufacturing process. Such devices not only improve the automation and intelligence levels of the production process but also ensure the stability and traceability of drug quality, providing strong quality assurance for pharmaceutical enterprises. At the same time, digital intelligent monitoring devices can also help enterprises achieve optimal allocation of resources and improvement of energy efficiency, reduce production costs, and enhance market competitiveness.
[0003] When the digital intelligent monitoring device of a pharmaceutical enterprise is used for a long time, dust will accumulate on the detection head. This is mainly because the device is directly exposed to a dusty environment, and factors such as machine operation and static electricity will adsorb dust on the device body. The acquisition components of the device, such as the lens of a camera, are also prone to adsorbing dust in the air due to the action of static electricity. In the prior art, pharmaceutical enterprises will regularly perform dust removal, cleaning, and maintenance on the digital intelligent monitoring device to ensure the normal operation of the device and the image quality.
[0004] However, the premise of this method is that workers need to climb to high places, which is somewhat dangerous. Since the lens of the device is fragile, the cleaning process also needs to be carried out carefully, resulting in low cleaning efficiency and being unfavorable for the monitoring operation. Therefore, we propose a digital intelligent monitoring device and management system for pharmaceutical enterprises. Summary of the Invention
[0005] The purpose of the present invention is to provide a digital intelligent monitoring device and management system for pharmaceutical enterprises to solve the problems raised in the above background technique.
[0006] To achieve the above purpose, the present invention provides the following technical solution: A digital intelligent monitoring device for pharmaceutical enterprises, including a mounting member. One end of the mounting member is provided with a rotation driving member. The rotation driving member includes a circular seat. A monitoring device main body is arranged on the top of the circular seat. An automatic cleaning mechanism is arranged on one side of the monitoring device main body. The automatic cleaning mechanism includes a main body box. The main body box is fixedly connected to the outer wall on one side of the monitoring device main body. A small electric push rod is fixedly connected to the outer wall on one side of the main body box. One end of the output shaft of the small electric push rod is fixedly connected to a connecting block. A spray nozzle is arranged at one end of the main body box. The end of the spray nozzle points to the monitoring device main body.
[0007] Preferably, a trapezoidal groove is formed inside the main body box. A first substrate is fixedly connected between the inner walls on both sides of the trapezoidal groove. One end of the first substrate is fixedly connected with an airbag. A first connecting pipe and a second connecting pipe are arranged between the airbag and the injection nozzle. A rebound mechanism is arranged inside the airbag. The rebound mechanism includes two sleeve assemblies and a straight spring. A second substrate is slidably connected inside the trapezoidal groove. One end of the second substrate is fixedly connected with two connecting rods. Both of the two connecting rods pass through the other end of the main body box and are fixedly connected with the same connecting plate. The connecting plate is fixedly connected with the connecting block.
[0008] Preferably, a protective shell is fixedly communicated with one end of the main body box. The cross-sectional areas of the second substrate and the first substrate are larger than that of the airbag. Both sides of the airbag are serrated. One end of the inner wall of the airbag is fixedly connected with a first cushion plate. A plurality of equidistantly arranged and through rectangular openings are formed on one side of the first cushion plate. The cross-sectional area of the first connecting pipe is larger than that of the second connecting pipe. The injection nozzle includes an air outlet block. The air outlet block is fixedly connected between the protective shell and the main body box. The overall cross-section of the air outlet block is a right trapezoid. A plurality of groups of spaced air outlet openings are formed on the inclined end of the air outlet block. Each group of air outlet openings includes two special openings with unequal cross-sectional areas and spaced positions and in a through state. The cross-sectional area of the special opening on the side close to the first connecting pipe is larger than the cross-sectional area of the special opening on the side far from the first connecting pipe. The interiors of the first connecting pipe and the second connecting pipe are both connected with the air outlet openings and the interior of the airbag. The outer walls of the first connecting pipe and the second connecting pipe both pass through one end of the first substrate.
[0009] Preferably, a second cushion plate is fixedly connected to the other end of the inner wall of the airbag. A small air one-way valve is fixedly connected to one end of the second cushion plate. One end of the small air one-way valve passes through the airbag, the second substrate and the main body box at the same time. A sealing gasket is fixedly connected between the outer wall of the small air one-way valve and the outer wall of the airbag. A circular hole is formed in the middle position on one side of the connecting plate. The cross-sectional area of the circular hole is larger than that of the small air one-way valve.
[0010] Preferably, both of the two straight springs are fixedly connected between the first cushion plate and the second cushion plate. Each of the rectangular openings is formed between the two straight springs. The sleeve assembly includes a large connecting cylinder, a medium connecting cylinder and a small connecting cylinder. One end of the large connecting cylinder is fixedly connected to one end of the first cushion plate. The other end of the large connecting cylinder is slidably connected with the outer wall of the medium connecting cylinder and is in a sleeved relationship. One end of the medium connecting cylinder is slidably connected with the outer wall of the small connecting cylinder and is in a sleeved relationship. One end of the small connecting cylinder is fixedly connected to the second cushion plate.
[0011] Preferably, a base is fixedly connected to the bottom end of the circular seat. A circular column is rotatably connected inside the circular seat. The top end of the circular column passes through the top of the circular seat and is fixedly connected to the main body of the monitoring device. The bottom end of the circular column is fixedly connected to a large gear. The large gear is rotatably connected inside the base. A small gear is meshed with the outer wall of the base. A small motor is fixedly connected to the outer wall of the base. One end of the output shaft of the small motor is fixedly connected to the small gear.
[0012] Preferably, an annular auxiliary groove is formed in the outer wall of the circular seat. One end of the mounting member is fixedly connected to an auxiliary member. One end of the auxiliary member is arc-shaped. The arc end of the auxiliary member is slidably connected to the inner wall of the annular auxiliary groove. A plurality of equally spaced ball bearings are rotatably connected between the upper and lower ends of the auxiliary member and the upper and lower ends of the inner wall of the annular auxiliary groove.
[0013] Preferably, a side plate is fixedly connected to the other side of the main body of the monitoring device. Two mounting blocks are fixedly connected to the bottom end of the main body of the monitoring device. One end of the mounting block is hollow and is snap-connected to an insertion block. The outer surface of the insertion block is rough. The same collection box is fixedly connected to one ends of the two insertion blocks.
[0014] Preferably, a management system for a digital intelligent monitoring device for pharmaceutical enterprises is provided. A sensor module capable of providing real-time and accurate data collection to ensure precise monitoring of key parameters in the pharmaceutical process is provided inside the main body of the monitoring device. A big data analysis module that provides decision-making support for optimizing the production process, preventing equipment failures, and improving resource utilization through pattern recognition and trend prediction, and an artificial intelligence algorithm module that realizes intelligent control and formulates personalized treatment plans through deep learning and intelligent analysis of data.
[0015] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0016] In a digital intelligent monitoring device and management system for pharmaceutical enterprises proposed by the present invention, a signal receiving module is provided on the automatic cleaning mechanism. By turning on the remote control in the ground or the monitoring room, the automatic cleaning mechanism can be driven to start operating. Then, the gas inside the main body box will be ejected through the ejection nozzle. Through the provided ejection nozzle, the airflow acts on the main body of the monitoring device in a more intense state, achieving the purpose of remotely cleaning the main body of the monitoring device without manual cleaning, maintaining the detection clarity of the main body of the monitoring device, and facilitating the monitoring operation. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 is a schematic diagram of the overall structure of the present invention;
[0018] Figure 2 is a schematic cross-sectional structure diagram of the whole of the present invention;
[0019] Figure 3 Schematic enlarged view of the A position of the overall sectional structure of the present invention;
[0020] Figure 4 Schematic enlarged view of the B position of the overall sectional structure of the present invention;
[0021] Figure 5 Schematic diagram of the overall structure of the automatic cleaning mechanism of the present invention;
[0022] Figure 6 Schematic diagram of the overall internal structure of the automatic cleaning mechanism of the present invention;
[0023] Figure 7 Schematic sectional view of the overall structure of the automatic cleaning mechanism of the present invention;
[0024] Figure 8 Schematic enlarged view of the C position of the overall sectional structure of the automatic cleaning mechanism of the present invention.
[0025] In the figure: 1, mounting member; 2, circular seat; 3, base; 4, large gear; 5, small gear; 6, small motor; 7, circular column; 8, main body of monitoring device; 9, auxiliary member; 10, annular auxiliary groove; 11, ball; 12, main body box; 13, protective shell; 14, air outlet block; 15, special opening; 16, small electric push rod; 17, connecting pipe one; 18, substrate one; 19, airbag; 20, backing plate one; 21, rectangular opening; 22, straight spring; 23, sleeve assembly; 24, backing plate two; 25, substrate two; 26, small air check valve; 27, connecting rod; 28, connecting plate; 29, circular hole; 30, side plate; 31, collection box; 32, insertion block; 33, mounting block. Detailed implementation manners
[0026] In order to clearly and completely describe the purpose, technical solution of the present invention, and make the advantages more clear, the following further details the embodiments of the present invention with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are some embodiments of the present invention, rather than all embodiments, and are only used to explain the embodiments of the present invention, not to limit the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art without creative efforts fall within the protection scope of the present invention.
[0027] Embodiment 1
[0028] Please refer to Figure 1 - Figure 8, the present invention provides a technical solution: a digital intelligent monitoring device for pharmaceutical enterprises, including a mounting member 1. One end of the mounting member 1 is provided with a rotary drive member. The rotary drive member includes a circular seat 2. The top of the circular seat 2 is provided with a monitoring device main body 8. One side of the monitoring device main body 8 is provided with an automatic cleaning mechanism. The automatic cleaning mechanism includes a main body box 12. The main body box 12 is fixedly connected to the outer wall on one side of the monitoring device main body 8. One outer wall of the main body box 12 is fixedly connected with a small electric push rod 16. One end of the output shaft of the small electric push rod 16 is fixedly connected with a connecting block. One end of the main body box 12 is provided with a spray nozzle, and the end of the spray nozzle points to the monitoring device main body 8; a signal receiving module is arranged on the automatic cleaning mechanism. When the remote control is turned on on the ground or in the monitoring room, the automatic cleaning mechanism can be driven to start running. Then the gas inside the main body box 12 will be ejected through the spray nozzle. Through the arranged spray nozzle, the air flow acts on the monitoring device main body 8 in a stronger state, achieving the purpose of remotely cleaning the monitoring device main body 8, eliminating the need for manual cleaning, maintaining the detection clarity of the monitoring device main body 8, and facilitating the monitoring operation.
[0029] Embodiment 2
[0030] On the basis of the first embodiment, a trapezoidal groove is formed inside the main body box 12. A first substrate 18 is fixedly connected between the inner walls on both sides of the trapezoidal groove. One end of the first substrate 18 is fixedly connected with an airbag 19. A first connecting pipe 17 and a second connecting pipe are arranged between the airbag 19 and the injection nozzle. A rebound mechanism is arranged inside the airbag 19. The rebound mechanism includes two sleeve assemblies 23 and a straight spring 22. A second substrate 25 is slidably connected inside the trapezoidal groove. One end of the second substrate 25 is fixedly connected with two connecting rods 27. Both of the two connecting rods 27 pass through the other end of the main body box 12 and are fixedly connected with the same connecting plate 28. The connecting plate 28 is fixedly connected with the connecting block. One end of the main body box 12 is fixedly communicated with a protective shell 13. The cross-sectional areas of the second substrate 25 and the first substrate 18 are larger than that of the airbag 19. Both sides of the airbag 19 are serrated. One end of the inner wall of the airbag 19 is fixedly connected with a first cushion plate 20. A plurality of equally spaced and through rectangular openings 21 are formed on one side of the first cushion plate 20. The cross-sectional area of the first connecting pipe 17 is larger than that of the second connecting pipe. The injection nozzle includes an air outlet block 14. The air outlet block 14 is fixedly connected between the protective shell 13 and the main body box 12. The overall cross-section of the air outlet block 14 is a right trapezoid. A plurality of groups of spaced air outlets are formed on the inclined end of the air outlet block 14. Each group of air outlets includes two special openings 15 with unequal cross-sectional areas and spaced positions and in a through state. The cross-sectional area of the special opening 15 on the side close to the first connecting pipe 17 is larger than the cross-sectional area of the special opening 15 on the side far from the first connecting pipe 17. The interiors of the first connecting pipe 17 and the second connecting pipe are both connected to the air outlet and the interior of the airbag 19. The outer walls of the first connecting pipe 17 and the second connecting pipe both pass through one end of the first substrate 18. A side plate 30 is fixedly connected to the other side of the monitoring device main body 8. Two mounting blocks 33 are fixedly connected to the bottom end of the monitoring device main body 8. One end of the mounting block 33 is hollow and is clamped with an insertion block 32. The outer surface of the insertion block 32 is rough. One end of the two insertion blocks 32 is fixedly connected with the same collection box 31.
[0031] By turning on the remote control in the ground or the monitoring room, the remote control will emit an electrical signal to the small electric push rod 16. After the signal receiving module arranged on the small electric push rod 16 receives the signal, it will drive the small electric push rod 16 to start operating. Under the action of the connecting block, the connecting plate 28 will press down two connecting rods 27 at the same time. The two connecting rods 27 conduct force transmission and transmit the thrust to the second substrate 25. Then the second substrate 25 will slide along the inner wall of the trapezoidal groove and squeeze the airbag 19. Since the position of the airbag 19 is restricted by the trapezoidal groove, the overall volume of the airbag 19 becomes smaller, and the gas inside it will flow out along the only channel, that is, each rectangular opening 21. Subsequently, it is directly transmitted through the first connecting pipe 17 and flows into the special opening 15 opened inside the air inlet block 14. Since the cross-sectional area of the special opening 15 close to the first connecting pipe 17 is larger than the cross-sectional area of the special opening 15 far from the first connecting pipe 17, the channel through which the air flow passes decreases, the pressure increases, and the flow rate of the air flow accelerates. Finally, it acts on the monitoring device main body 8 at a high flow rate state to blow the dust attached to the monitoring device main body 8. The side plate 30 will block the blown dust, and finally it will vertically fall into the collection box 31 to complete the collection, reducing the possibility of polluting the environment. Through the arranged insertion block 32 and mounting block 33, the insertion block 32 with a rough outer surface will increase the static friction between the insertion block 32 and the inner wall of the mounting block 33. Then the collection box 31 will be in a relatively stable state when the installation is completed and automatically adapt to the rotation of the monitoring device main body 8. In addition, the detachable collection box 31 is convenient for subsequent treatment of the collected dust.
[0032] Embodiment III
[0033] On the basis of the second embodiment, the other end of the inner wall of the airbag 19 is fixedly connected with a second backing plate 24. One end of the second backing plate 24 is fixedly connected with a small air check valve 26. One end of the small air check valve 26 passes through the airbag 19, the second substrate 25 and the main box 12 at the same time. A sealing gasket is fixedly connected between the outer wall of the small air check valve 26 and the outer wall of the airbag 19. A circular hole 29 is opened in the middle position on one side of the connecting plate 28. The cross-sectional area of the circular hole 29 is larger than that of the small air check valve 26. Both straight springs 22 are fixedly connected between the first backing plate 20 and the second backing plate 24. Each rectangular opening 21 is opened between the two straight springs 22. The sleeve assembly 23 includes a large connecting cylinder, a middle connecting cylinder and a small connecting cylinder. One end of the large connecting cylinder is fixedly connected to one end of the first backing plate 20. The other end of the large connecting cylinder is slidably connected to the outer wall of the middle connecting cylinder and is in a sleeved relationship. One end of the middle connecting cylinder is slidably connected to the outer wall of the small connecting cylinder and is in a sleeved relationship. One end of the small connecting cylinder is fixedly connected to the second backing plate 24. The bottom end of the circular seat 2 is fixedly connected with a base 3. A circular column 7 is rotatably connected inside the circular seat 2. The top end of the circular column 7 passes through the top of the circular seat 2 and is fixedly connected with the monitoring device main body 8. The bottom end of the circular column 7 is fixedly connected with a large gear 4. The large gear 4 is rotatably connected inside the base 3. A small gear 5 is meshed with the outer wall of the base 3. A small motor 6 is fixedly connected to the outer wall of the base 3. One end of the output shaft of the small motor 6 is fixedly connected with the small gear 5. An annular auxiliary groove 10 is opened on the outer wall of the circular seat 2. One end of the mounting member 1 is fixedly connected with an auxiliary member 9. One end of the auxiliary member 9 is arc-shaped. The arc end of the auxiliary member 9 is slidably connected with the inner wall of the annular auxiliary groove 10. A plurality of equally spaced ball bearings 11 are rollingly connected between the upper and lower ends of the auxiliary member 9 and the upper and lower ends of the inner wall of the annular auxiliary groove 10.
[0034] By setting the small air one-way valve 26, the outside air can enter the inner cavity of the airbag 19, and the gas inside the airbag 19 has to flow out from the small air one-way valve 26, so as to ensure the normal use of the automatic cleaning mechanism. The sealing gasket fixedly connected between the outer wall of the small air one-way valve 26 and the outer wall of the airbag 19 enhances the air tightness of the airbag 19 and is conducive to the storage of air. By setting the straight spring 22 and the sleeve assembly 23, when the gas inside the airbag 19 is released, when the small electric push rod 16 receives the electric signal again, one end of its output shaft will extend and finally push the connecting plate 28 back to its original position. In this process, the straight spring 22 gradually stretches from the compressed state and applies a thrust to the pad 24, the small air one-way valve 26 opens, and the outside air enters the inner cavity of the airbag 19 to re-inflate it to the expanded state. The setting of the two sleeve assemblies 23 makes the straight spring The entire stretching or compression direction of the spring 22 is always horizontal to prevent it from being deflected during the change process and affecting the filling of the airbag 19. The opening of the circular hole 29 leaves space for the displacement of the small air one-way valve 26. The auxiliary part 9 is located as a whole inside the annular auxiliary groove 10, so the auxiliary part 9 provides a certain support for the annular auxiliary groove 10, that is, the auxiliary part 9 provides a certain support for the circular seat 2, which improves stability. The outer wall of the auxiliary part 9 establishes a rolling connection relationship with the inner wall of the annular auxiliary groove 10 through the multiple balls 11 set up, reducing the friction between the two, and further improving the smoothness of the rotation of the monitoring device body 8. Through the small motor 6, small gear 5 and large gear 4, because the pitch ratio of the small gear 5 to the large gear 4 is large, when the small motor 6 drives the small gear 5 to rotate a large number of circles, the large gear 4 will rotate a certain angle, which is beneficial to the monitoring of multiple directions by the monitoring device body 8.
[0035] Embodiment 4
[0036] A management system for digital intelligent monitoring equipment for pharmaceutical companies, wherein the monitoring equipment body 8 is internally provided with a sensor module capable of providing real-time and accurate data collection to ensure that key parameters of the pharmaceutical process are accurately monitored, a big data analysis module that provides decision support for optimizing production processes, preventing equipment failures and improving resource utilization through pattern recognition and trend prediction, and an artificial intelligence algorithm module that realizes intelligent control and formulation of personalized treatment plans through deep learning and intelligent analysis of data.
[0037] In actual use, by turning on the remote control in the ground or the monitoring room, the remote control will emit an electrical signal to the small electric push rod 16. After the signal receiving module provided on the small electric push rod 16 receives the signal, it will drive the small electric push rod 16 to start operating. Under the action of the connecting block, the connecting plate 28 will press down two connecting rods 27 at the same time. The two connecting rods 27 transfer force and transmit the thrust to the second substrate 25. Then the second substrate 25 will slide along the inner wall of the trapezoidal groove and squeeze the airbag 19. Since the position of the airbag 19 is restricted by the trapezoidal groove, the overall volume of the airbag 19 becomes smaller, and the gas inside it will flow out along the only channel, that is, each rectangular opening 21. Then, through the transmission of the first connecting pipe 17, it directly flows into the internal special opening 15 opened inside the air inlet block 14. Since the cross-sectional area of the special opening 15 near the first connecting pipe 17 is larger than the cross-sectional area of the special opening 15 far from the first connecting pipe 17, the channel through which the air flow passes decreases, the pressure increases, and the flow rate of the air flow accelerates. Finally, it acts on the monitoring device main body 8 at a high flow rate state to blow the dust attached to the monitoring device main body 8, achieving the purpose of remotely cleaning the monitoring device main body 8, eliminating the need for manual cleaning, maintaining the detection clarity of the monitoring device main body 8, and facilitating the monitoring operation.
[0038] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A digital intelligent monitoring device for a pharmaceutical enterprise, comprising a mounting part (1), characterized in that: A rotary drive member is provided at one end of the mounting member (1), the rotary drive member includes a circular seat (2), a monitoring device body (8) is provided on the top of the circular seat (2), an automatic cleaning mechanism is provided on one side of the monitoring device body (8), the automatic cleaning mechanism includes a main body box (12), the main body box (12) is fixedly connected to an outer wall of one side of the monitoring device body (8), a small electric push rod (16) is fixedly connected to an outer wall of one side of the main body box (12), an output shaft of the small electric push rod (16) is fixedly connected to a connecting block at one end, a spray nozzle is provided at one end of the main body box (12), and the end of the spray nozzle points to the monitoring device body (8); a trapezoidal groove is provided inside the main body box (12), a base plate 1 (18) is fixedly connected between the inner walls on both sides of the trapezoidal groove, an air bag (19) is fixedly connected to one end of the base plate 1 (18), a connecting pipe 1 (17) and a connecting pipe 2 are provided between the air bag (19) and the spray nozzle, the air bag (19) A rebound mechanism is arranged inside, the rebound mechanism comprises two sleeve assemblies (23) and a straight spring (22), a base plate 2 (25) is slidably connected inside the trapezoidal groove, one end of the base plate 2 (25) is fixedly connected to two connecting rods (27), both connecting rods (27) pass through the other end of the main box (12) and are fixedly connected to the same connecting plate (28), the connecting plate (28) is fixedly connected to the connecting block; the other end of the inner wall of the airbag (19) is fixedly connected to a backing plate 2 (24), one end of the second pad (24) is fixedly connected to a small air check valve (26), one end of the small air check valve (26) simultaneously passes through the air bag (19), the second base plate (25) and the main box (12), a sealing gasket is fixedly connected between the outer wall of the small air check valve (26) and the outer wall of the air bag (19), and a circular hole (29) is opened in the middle of one side of the connecting plate (28), and the cross-sectional area of the circular hole (29) is larger than that of the small air check valve (26).
2. The digital intelligent monitoring device for pharmaceutical enterprises according to claim 1 is characterized in that: One end of the main box (12) is fixedly connected to a protective shell (13); the cross-sectional areas of the second substrate (25) and the first substrate (18) are larger than those of the airbag (19); both sides of the airbag (19) are serrated; one end of the inner wall of the airbag (19) is fixedly connected to a backing plate (20); one side of the backing plate (20) is provided with a plurality of rectangular openings (21) arranged equidistantly and in a through-going shape; the cross-sectional area of the connecting pipe (17) is larger than that of the connecting pipe (2); the injection nozzle comprises an air outlet block (14); the air outlet block (14) is fixedly connected between the protective shell (13) and the main box (12); The cross section of the air outlet block (14) as a whole is in the shape of a right-angled trapezoid. The inclined end of the air outlet block (14) is provided with a plurality of groups of spaced air outlets, each group of air outlets comprises two special openings (15) of different cross-sectional areas and spaced apart in a through-going shape. The cross-sectional area of the special opening (15) on the side close to the connecting tube 1 (17) is larger than the cross-sectional area of the special opening (15) on the side away from the connecting tube 1 (17). The interiors of the connecting tube 1 (17) and the connecting tube 2 are both connected to the air outlet and the interior of the airbag (19). The outer walls of the connecting tube 1 (17) and the connecting tube 2 pass through one end of the substrate 1 (18).
3. The digital intelligent monitoring device for pharmaceutical enterprises according to claim 2 is characterized in that: The two straight springs (22) are fixedly connected between the first pad (20) and the second pad (24); each of the rectangular openings (21) is opened between the two straight springs (22); the sleeve assembly (23) comprises a large connecting tube, a middle connecting tube and a small connecting tube; one end of the large connecting tube is fixedly connected to one end of the first pad (20); the other end of the large connecting tube is slidably connected to the outer wall of the middle connecting tube and is in a sleeve relationship; one end of the middle connecting tube is slidably connected to the outer wall of the small connecting tube and is in a sleeve relationship; one end of the small connecting tube is fixedly connected to the second pad (24).
4. The digital intelligent monitoring device for pharmaceutical enterprises according to claim 1 is characterized in that: The bottom end of the circular seat (2) is fixedly connected to a base (3), the inside of the circular seat (2) is rotatably connected to a circular column (7), the top end of the circular column (7) passes through the top of the circular seat (2) and is fixedly connected to a monitoring device body (8), the bottom end of the circular column (7) is fixedly connected to a large gear (4), the large gear (4) is rotatably connected to the inside of the base (3), the outer wall of the base (3) is meshed with a small gear (5), the outer wall of the base (3) is fixedly connected to a small motor (6), and one end of the output shaft of the small motor (6) is fixedly connected to the small gear (5).
5. The digital intelligent monitoring device for pharmaceutical enterprises according to claim 4 is characterized in that: The outer wall of the circular seat (2) is provided with an annular auxiliary groove (10); one end of the mounting member (1) is fixedly connected to an auxiliary member (9); one end of the auxiliary member (9) is in an arc shape; the inner wall of the annular auxiliary groove (10) is slidably connected to the arc end of the auxiliary member (9); and a plurality of equidistantly arranged balls (11) are rollingly connected between the upper and lower ends of the auxiliary member (9) and the upper and lower ends of the inner wall of the annular auxiliary groove (10).
6. The digital intelligent monitoring device for pharmaceutical enterprises according to claim 1 is characterized in that: The other side of the monitoring device body (8) is fixedly connected to a side plate (30), the bottom end of the monitoring device body (8) is fixedly connected to two mounting blocks (33), one end of the mounting block (33) is hollow and is clamped with an insert block (32), the outer surface of the insert block (32) is rough, and one end of the two insert blocks (32) is fixedly connected to the same collection box (31).
7. A management system for digital intelligent monitoring equipment for pharmaceutical enterprises as described in any one of claims 1 to 6, characterized in that: The monitoring device body (8) is internally provided with a sensor module capable of providing real-time and accurate data collection to ensure that key parameters of the pharmaceutical process are accurately monitored; a big data analysis module that provides decision support for optimizing production processes, preventing equipment failures and improving resource utilization through pattern recognition and trend prediction; and an artificial intelligence algorithm module that realizes intelligent control and formulation of personalized treatment plans through deep learning and intelligent analysis of data.
Citation Information
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