Automatic probiotic filling device
By setting up a flowmeter and control parts in the automatic probiotic filling device, dual flow monitoring and control of probiotic powder is achieved, and the problem of insufficient or excessive filling in the prior art is solved, and the accuracy of filling is improved.
Patent Information
- Application Number
- CN202422170678.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-05
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-09-05
AI Technical Summary
The existing automatic filling and output device for processing probiotic powder cannot automatically detect the amount of discharge and automatically close the outlet, resulting in insufficient or excessive filling.
An automatic filling device for probiotics is designed, including a filling mechanism and a feeding mechanism. By providing a first solid flowmeter, a second solid flowmeter, a first control part and a second control part, the flow of probiotic powder is monitored and controlled to realize quantitative filling.
By monitoring the flow of the flow of the probiotic powder twice, the accuracy of filling can be improved and the situation of insufficient or excessive filling can be avoided.
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Figure CN223031335U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of filling devices, in particular to an automatic probiotic filling device. Background Technique
[0002] Probiotic powder is a kind of microorganism that can maintain the intestinal health balance and promote the healthy development of the human body. Its types are mainly divided into bifidobacteria and lactobacilli, which can enhance the human immune system and regulate the human intestine and other functions. Among them, the automatic filling and output device is an essential device used in the processing and production of probiotic powder. The automatic filling and output device can automatically fill the powder and improve the working efficiency of powder filling.
[0003] For example, an automatic filling and output device for processing probiotic powder with the Chinese publication number CN216916344U includes a feeding pipe, a support frame, a discharging pipe and a powder cleaning structure. A support frame is arranged at the top of the feeding pipe. A transition pipe is installed at the bottom of the feeding pipe. The bottom of the transition pipe is detachably connected to the discharging pipe. A motor is arranged inside the support frame. One end of the motor is connected to a rotating shaft. The other end of the rotating shaft penetrates the bottom of the support frame and is connected to a turntable. A powder cleaning structure is arranged at the edge of the bottom of the turntable, and the powder cleaning structures are evenly distributed at the bottom of the turntable. The rotating shaft, the turntable and the powder cleaning structure are all located in the inner cavity of the feeding pipe, and the powder cleaning structure is attached to the inner wall of the feeding pipe;
[0004] This technical solution sets a powder cleaning structure driven by a motor inside the feeding pipe, and uses the powder cleaning structure to process the powder accumulated on the inner wall of the feeding pipe, avoiding the shutdown of the device for manual cleaning work and improving the working efficiency of probiotic powder processing; however, this device does not have the ability to automatically detect the amount of material discharged and automatically close the outlet. Therefore, during actual filling, the situation of insufficient filling or overfilling may occur. Content of the Utility Model
[0005] The purpose of the utility model is to provide an automatic probiotic filling device to solve the problems put forward in the above background technique.
[0006] In view of the above problems, the technical solution proposed by the utility model is:
[0007] A probiotic automatic filling device comprises a filling mechanism and a feeding mechanism, wherein the filling mechanism comprises a first connecting tube, a second connecting tube, a third connecting tube, and a fourth connecting tube, wherein the second connecting tube is connected to the third connecting tube, and the feeding mechanism comprises a first solid flow meter, a second solid flow meter, a first control component, and a second control component, wherein both ends of the first solid flow meter are respectively connected to the free ends of the first connecting tube and the second connecting tube, and both ends of the second solid flow meter are respectively connected to the free end of the third connecting tube and the fourth connecting tube, the first control component is installed in the first connecting tube and controls the circulation of the first connecting tube, and the second control component is installed in the interior of the third connecting tube and controls the circulation of the third connecting tube.
[0008] The beneficial effect of adopting the above further scheme is that, by using the first solid flowmeter, the second solid flowmeter, the first control member and the second control member, the total flow rate of the probiotic powder passing through the first solid flowmeter can be monitored. After the requirement is met, the first solid flowmeter can control the first control member to be closed, so that the probiotic powder no longer flows into the second connecting pipe. At the same time, the total flow rate of the probiotic powder passing through the second solid flowmeter can be monitored. After the requirement is met, the second solid flowmeter can control the second control member to be closed, so that the probiotic powder no longer flows out through the fourth connecting pipe, thereby achieving the purpose of quantitative filling; by monitoring the flow rate of the probiotic powder flowing through twice, the filling accuracy can be improved.
[0009] Furthermore, the first control component includes a first base installed on the outside of the first connecting tube, a first motor is installed on the side of the first base, a first baffle is provided inside the first connecting tube, and the first baffle is transmission-connected to the output end of the first motor.
[0010] Furthermore, the second control component includes a second base installed on the outside of the third connecting tube, a second motor is installed on the side of the second base, a second baffle is provided inside the third connecting tube, and the second motor drives the second baffle to rotate.
[0011] The beneficial effect of adopting the above further scheme is that the first solid flow meter controls the first motor and the second solid flow meter controls the second motor. After the total flow monitored by the first solid flow meter reaches the standard, the first motor will be started so that the first baffle closes the first connecting pipe. After the total flow monitored by the second solid flow meter reaches the standard, the second motor will be started so that the second baffle closes the third connecting pipe.
[0012] Further, the output end of the second motor is drivingly connected to a first rotating shaft. A second rotating shaft connected to the second baffle is rotatably connected to the side surface of the second machine base. A driving gear is installed on the outer side of the first rotating shaft, and a driven gear is installed on the outer side of the second rotating shaft. The driving gear and the driven gear are meshed, and the radius of the driving gear is greater than the radius of the driven gear.
[0013] The beneficial effect of adopting the above further solution is that since the radius of the driving gear is greater than the radius of the driven gear, the second baffle can be rotated rapidly to quickly close the third connecting pipe, so as to reduce the amount of probiotics flowing out and improve the filling accuracy.
[0014] Further, both the first baffle and the second baffle are cylindrical, and the diameters of the first baffle and the second baffle are the same as the inner diameters of the first connecting pipe and the third connecting pipe.
[0015] The beneficial effect of adopting the above further solution is that by restricting the sizes and shapes of the first baffle and the second baffle, the first connecting pipe and the third connecting pipe can be completely closed to prevent the probiotic powder from flowing out through the gaps between the first baffle and the first connecting pipe and between the second baffle and the third connecting pipe.
[0016] Further, a flange is installed at the top of the first connecting pipe, and the free end of the fourth connecting pipe is conical.
[0017] The beneficial effect of adopting the above further solution is that the flange is used to connect the device to an external pipeline, and the fourth connecting pipe with a conical free end is used to insert the fourth connecting pipe into an instrument or package to be filled.
[0018] Further, through holes are provided on the side surface of the second connecting pipe, and an air pipe is connected to the side surface of the through holes. A filter screen is installed inside the air pipe.
[0019] The beneficial effect of adopting the above further solution is that when the device is blocked by probiotic powder, the output end of an air injection device can be connected to the air pipe, so as to dredge the device by using air pressure.
[0020] Compared with the prior art, the beneficial effects of the present utility model are as follows: For this automatic probiotic filling device, through the use of the first solid flowmeter, the second solid flowmeter, the first control member, and the second control member, it can monitor the total flow of probiotic powder passing through the first solid flowmeter. After it reaches the requirement, the first solid flowmeter can control the first control member to close, so that the probiotic powder no longer flows into the second connecting pipe. At the same time, it can monitor the total flow of probiotic powder passing through the second solid flowmeter. After it reaches the requirement, the second solid flowmeter can control the second control member to close, so that the probiotic powder no longer flows out through the fourth connecting pipe, thereby achieving the purpose of quantitative filling; by monitoring the flow rate of the passing probiotic powder twice, the filling accuracy can be improved. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 FIG. is a three-dimensional structural schematic diagram of the automatic probiotic filling device disclosed in the embodiment of the present utility model;
[0022] Figure 2 is Figure 1 a structural enlarged schematic diagram of structure A in
[0023] Figure 3 FIG. is a side structural schematic diagram of the automatic probiotic filling device disclosed in the embodiment of the present utility model;
[0024] Figure 4 FIG. is a sectional structural schematic diagram of the automatic probiotic filling device disclosed in the embodiment of the present utility model.
[0025] In the figure: 100, filling mechanism; 1001, second connecting pipe; 1002, third connecting pipe; 1003, first connecting pipe; 1004, fourth connecting pipe; 1005, flange; 1006, air pipe; 1007, filter screen; 200, feeding mechanism; 2001, first solid flowmeter; 2002, second solid flowmeter; 2003, first machine base; 2004, first motor; 2005, second machine base; 2006, second motor; 2007, first rotating shaft; 2008, second rotating shaft; 2009, driving gear; 2010, driven gear; 2011, first baffle; 2012, second baffle. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0026] The following will clearly and completely describe the technical solutions in the embodiments of the present utility model with reference to the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0027] Please refer toFigure 1 - Figure 4 , the present utility model provides a technical solution: a probiotic automatic filling device, including a filling mechanism 100 and a feeding mechanism 200. The filling mechanism 100 includes a first connecting pipe 1003, a second connecting pipe 1001, a third connecting pipe 1002, and a fourth connecting pipe 1004. The second connecting pipe 1001 and the third connecting pipe 1002 are connected. The feeding mechanism 200 includes a first solid flowmeter 2001, a second solid flowmeter 2002, a first control member, and a second control member. The two ends of the first solid flowmeter 2001 are respectively connected to the free ends of the first connecting pipe 1003 and the second connecting pipe 1001. The two ends of the second solid flowmeter 2002 are respectively connected to the free end of the third connecting pipe 1002 and the fourth connecting pipe 1004. The first control member is installed in the first connecting pipe 1003 and controls the flow of the first connecting pipe 1003. The second control member is installed inside the third connecting pipe 1002 and controls the flow of the third connecting pipe 1002. By using the first solid flowmeter 2001, the second solid flowmeter 2002, the first control member, and the second control member, the total flow of the probiotic powder passing through the first solid flowmeter 2001 can be monitored. After it meets the requirements, the first solid flowmeter 2001 can control the first control member to close, so that the probiotic powder no longer flows into the second connecting pipe 1001. At the same time, the total flow of the probiotic powder passing through the second solid flowmeter 2002 can be monitored. After it meets the requirements, the second solid flowmeter 2002 can control the second control member to close, so that the probiotic powder no longer flows out through the fourth connecting pipe 1004, thereby achieving the purpose of quantitative filling.
[0028] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0029] Please refer to Figure 1 - Figure 4, the present utility model provides a technical solution: a probiotic automatic filling device, which includes a filling mechanism 100 and a feeding mechanism 200. The filling mechanism 100 includes a first connecting pipe 1003, a second connecting pipe 1001, a third connecting pipe 1002, and a fourth connecting pipe 1004. The second connecting pipe 1001 and the third connecting pipe 1002 are connected. The feeding mechanism 200 includes a first solid flowmeter 2001, a second solid flowmeter 2002, a first control member, and a second control member. The two ends of the first solid flowmeter 2001 are respectively connected to the free ends of the first connecting pipe 1003 and the second connecting pipe 1001. The two ends of the second solid flowmeter 2002 are respectively connected to the free end of the third connecting pipe 1002 and the fourth connecting pipe 1004. The first control member is installed in the first connecting pipe 1003 and controls the flow of the first connecting pipe 1003. The second control member includes a second machine base 2005 installed outside the third connecting pipe 1002. A second motor 2006 is installed on the side of the second machine base 2005. A second baffle 2012 is provided inside the third connecting pipe 1002, and the second motor 2006 drives the second baffle 2012 to rotate. The output end of the second motor 2006 is drivingly connected to a first rotating shaft 2007. The side of the second machine base 2005 is rotatably connected to a second rotating shaft 2008 connected to the second baffle 2012. A driving gear 2009 is installed on the outside of the first rotating shaft 2007. A driven gear 2010 is installed on the outside of the second rotating shaft 2008, and the driving gear 2009 and the driven gear 2010 are meshed. The radius of the driving gear 2009 is greater than the radius of the driven gear 2010. The second control member is installed inside the third connecting pipe 1002 and controls the flow of the third connecting pipe 1002. During the process of the first solid flowmeter 2001 controlling the closing of the first control member, some probiotic powder will still flow out. Therefore, the second solid flowmeter 2002 can perform secondary monitoring on the probiotic powder. After it meets the requirements, the second motor 2006 is controlled to start. Because the radius of the driving gear 2009 is greater than the radius of the driven gear 2010, the second baffle 2012 can be rotated quickly to achieve the purpose of quickly closing the third connecting pipe 1002, so as to reduce the amount of probiotic flowing out and improve the filling accuracy.
[0030] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0031] Please refer to Figure 1 - Figure 4The utility model provides a technical solution: a probiotic automatic filling device, a through hole is provided on the side of the second connecting tube 1001, and an air pipe 1006 is connected to the side of the through hole, and a filter screen 1007 is installed inside the air pipe 1006. When the device is blocked by probiotic powder, the output end of the air injection device can be connected to the air pipe 1006, so that the device can be unblocked by air pressure.
[0032] Specifically, the working principle of the probiotic automatic filling device is as follows: when in use, the flange 1005 is used to connect the device to an external pipe, the other end of the external pipe is connected to a barrel containing probiotic powder, and the fourth connecting pipe 1004 with a tapered free end is used to extend the fourth connecting pipe 1004 into an instrument or package to be filled, and ensure that the above-mentioned device is connected in a vertical state. Under the action of gravity or an external delivery pump, the probiotic powder will pass through the first connecting pipe 1003, the first control component, the first solid flow meter 2001, the second connecting pipe 1004, and the second connecting pipe 1005 in sequence. The pipe 1001, the second control component, the second solid flow meter 2002, and the fourth connecting pipe 1004 are connected to the instrument or package that needs to be filled. During this process, the first solid flow meter 2001 first monitors the total flow of the probiotic powder. After it meets the standard, the first control component is controlled to close the first connecting pipe 1003, and the second solid flow meter 2002 will monitor the total flow of the probiotic powder for the second time. After it meets the standard, the second control component is controlled to close the third connecting pipe 1002. At this time, the filling of the instrument or package that needs to be filled is completed.
Claims
1. A probiotics automatic filling device, characterized in that: The invention comprises a filling mechanism (100) and a feeding mechanism (200), wherein the filling mechanism (100) comprises a first connecting pipe (1003), a second connecting pipe (1001), a third connecting pipe (1002), and a fourth connecting pipe (1004), wherein the second connecting pipe (1001) and the third connecting pipe (1002) are connected, and the feeding mechanism (200) comprises a first solid flow meter (2001), a second solid flow meter (2002), a first control element, and a second control element, wherein the first solid flow meter (2001) The two ends of the second solid flow meter (2002) are respectively connected to the free end of the third connecting tube (1002) and the fourth connecting tube (1004), the first control component is installed in the first connecting tube (1003) and controls the flow of the first connecting tube (1003), and the second control component is installed in the third connecting tube (1002) and controls the flow of the third connecting tube (1002).
2. The automatic probiotic filling device according to claim 1, characterized in that: The first control component comprises a first machine base (2003) installed on the outside of the first connecting tube (1003), a first motor (2004) is installed on the side of the first machine base (2003), a first baffle (2011) is provided inside the first connecting tube (1003), and the first baffle (2011) is transmission-connected to the output end of the first motor (2004).
3. The automatic probiotic filling device according to claim 2, characterized in that: The second control component comprises a second machine base (2005) installed on the outside of the third connecting tube (1002), a second motor (2006) is installed on the side of the second machine base (2005), a second baffle (2012) is provided inside the third connecting tube (1002), and the second motor (2006) drives the second baffle (2012) to rotate.
4. The automatic probiotic filling device according to claim 3, characterized in that: The output end of the second motor (2006) is drivingly connected to the first rotating shaft (2007); the side of the second machine base (2005) is rotatably connected to the second rotating shaft (2008) connected to the second baffle (212); a driving gear (2009) is installed on the outer side of the first rotating shaft (2007); a driven gear (2010) is installed on the outer side of the second rotating shaft (2008); the driving gear (2009) and the driven gear (2010) are meshed; and the radius of the driving gear (2009) is greater than the radius of the driven gear (2010).
5. The automatic probiotic filling device according to claim 3, characterized in that: The first baffle (2011) and the second baffle (2012) are both cylindrical, and the diameters of the first baffle (2011) and the second baffle (2012) are consistent with the inner diameters of the first connecting tube (1003) and the third connecting tube (1002).
6. The automatic probiotic filling device according to claim 1, characterized in that: A flange (1005) is installed on the top of the first connecting pipe (1003), and the free end of the fourth connecting pipe (1004) is conical.
7. The automatic probiotic filling device according to claim 2, characterized in that: A through hole is provided on the side of the second connecting pipe (1001), and an air pipe (1006) is connected to the side of the through hole. A filter screen (1007) is installed inside the air pipe (1006).
Citation Information
Patent Citations
Automatic filling and outputting device for probiotic powder processing
CN216916344U