Pancreatin filtering equipment
By combining a motor-driven lead screw and slide bar system with brush cleaning, the problem of filter pore blockage caused by impurity accumulation during pancreatic enzyme filtration is solved, achieving highly efficient pancreatic enzyme filtration.
Patent Information
- Application Number
- CN202422612560.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-29
- Publication Date
- 2025-10-28
- Estimated Expiration
- 2034-10-29
AI Technical Summary
In existing technologies, impurities tend to accumulate on the filter screen during the pancreatic enzyme filtration process, causing the filter pores to become clogged and affecting the filtration effect.
A pancreatic enzyme filtration device is used, including components such as a base, filter screen, frame, slide bar, brush, solid block, pressure block, and drive component. The device uses a motor-driven screw and slide bar system to fix and squeeze the syringe and move the filter screen, while the brush cleans impurities to prevent clogging.
This effectively prevents filter pore clogging, improves pancreatic enzyme filtration efficiency, and ensures that pancreatic enzymes are smoothly filtered into centrifuge tubes.
Smart Images

Figure CN223481132U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of pancreatic enzyme processing technology, and in particular to a pancreatic enzyme filtration device. Background Art
[0002] Pancreatic enzymes are digestive aids with strong digestive capabilities. They are a mixture of various enzymes extracted from the pancreas of pigs, sheep, or cattle, mainly containing trypsin, pancreatic amylase, and pancreatic lipase. They are primarily used to treat indigestion, loss of appetite, and digestive disorders caused by liver or pancreatic diseases. However, the filtration process using conventional equipment is time-consuming, labor-intensive, and inconvenient, making it difficult to filter pancreatic enzymes.
[0003] The prior art CN214571896U discloses a tool for assisting in pancreatic enzyme filtration, including a fixing ring, a syringe, a handheld rod, a swing rod, a pressure plate, a filter screen, and a centrifuge tube. The fixing ring positions the syringe and the handheld rod in place. The two hands grasp the handheld rod and the swing rod respectively, and the pressure plate squeezes the syringe. The handheld rod and the swing rod work together to increase the torque and reduce the difficulty of squeezing the syringe. The pancreatic enzyme in the syringe cavity drips onto the top of the filter screen, and then passes through the filter screen into the centrifuge tube, thus facilitating the filtration of pancreatic enzyme.
[0004] In existing pancreatic enzyme filtration methods, impurities in the pancreatic enzyme tend to accumulate on the filter screen during the filtration process, causing blockage of the filter pores and thus affecting the filtration efficiency. Utility Model Content
[0005] The purpose of this invention is to provide a pancreatic enzyme filtration device that solves the problem of existing pancreatic enzyme filtration methods. In the process of filtering pancreatic enzyme, impurities in the pancreatic enzyme tend to accumulate on the filter screen, causing blockage of the filter pores and thus affecting the filtration effect.
[0006] To achieve the above objectives, this utility model provides a pancreatic enzyme filtration device, including a base and a processing assembly. The processing assembly includes a filter screen, a frame, a housing, a slide rod, a spring, a brush, a fixed block, a pressure block, a frame, a driving component, a fixing component, and a squeezing component. The frame is fixedly installed on one side of the base. The squeezing component is disposed on the frame. The pressure block is connected to the squeezing component and slidably connected to the frame. The fixing component is connected to the frame. The fixed block is slidably connected to the frame and connected to the fixing component. The housing is fixedly installed on the side of the frame near the base. The slide rod is fixedly installed on the side of the housing away from the base. The frame is slidably installed on the side of the slide rod away from the housing. One end of the spring is connected to the frame, and the other end of the spring is connected to the housing. The brush is bolted to the housing. The driving component is disposed on the housing. The filter screen is detachably connected to the frame.
[0007] The fixing component includes a fixing screw and a fixing motor. The fixing screw is rotatably connected to the frame and threadedly connected to the fixing block. The fixing motor is fixedly connected to the frame, and the output shaft of the fixing motor is connected to the fixing screw.
[0008] The extrusion component includes an extrusion screw and an extrusion motor. The extrusion screw is rotatably connected to the frame and threadedly connected to the pressure block. The extrusion motor is fixedly connected to the frame, and the output shaft of the extrusion motor is connected to the extrusion screw.
[0009] The driving component includes a driving motor and a driving block. The driving motor is fixedly connected to the housing and is located on the side of the housing away from the base. The driving block is connected to the output shaft of the driving motor and is rotatably connected to the housing.
[0010] The fixing component further includes a mounting screw and a protective washer. The mounting screw is threadedly connected to the fixed block and is located on the side of the fixed block away from the fixing screw. The protective washer is threadedly connected to the mounting screw and is located on the side of the mounting screw closer to the fixed block.
[0011] This utility model discloses a pancreatic enzyme filtration device. Centrifuge tubes are placed in the mounting slot of the base, and a syringe is placed in the mounting hole of the frame. A fixed motor drives a fixed screw to rotate on the frame, and the fixed screw, when rotating, drives a fixed block to move on the frame. The fixed block clamps both sides of the syringe, fixing the syringe to the mounting hole of the frame. A compression motor drives a compression screw to rotate on the frame, and the compression screw, when rotating, drives a pressure block to move up and down on the frame. The pressure block compresses the syringe, causing the pancreatic enzyme inside to drip into the filter screen. A drive motor drives a drive block to rotate on the housing, and the drive block, when rotating, abuts against the housing, thereby driving a frame to move on a slide rod. The frame moves the filter screen. When the drive block separates from the frame, a spring drives the frame to move on the slide rod. Simultaneously, a brush cleans impurities in the filter screen, and the filtered pancreatic enzyme falls into the centrifuge tubes, preventing clogging of the filter screen's pores and thus improving the pancreatic enzyme filtration effect. Attached Figure Description
[0012] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.
[0013] Figure 1 This is a schematic diagram of the overall structure of the pancreatic enzyme filtration device according to the first embodiment of this utility model.
[0014] Figure 2 This is a structural schematic diagram of the box body and slide bar of this utility model.
[0015] Figure 3 This is a structural schematic diagram of the drive motor and drive block of this utility model.
[0016] Figure 4 This is a structural schematic diagram of the mounting screw and protective gasket of this utility model.
[0017] In the diagram: 101-base, 102-filter screen, 103-frame, 104-box, 105-slide rod, 106-spring, 107-brush, 108-fixed block, 109-pressure block, 110-frame, 111-fixing screw, 112-fixing motor, 113-extrusion screw, 114-extrusion motor, 115-drive motor, 116-drive block, 201-mounting screw, 202-shield. DETAILED DESCRIPTION
[0018] The embodiments of the present invention are described in detail below. Examples of the embodiments are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, but should not be construed as limiting the present invention.
[0019] The first embodiment of this application is as follows:
[0020] Please see Figures 1-3 , Figure 1 This is a schematic diagram of the overall structure of the pancreatic enzyme filtration device according to the first embodiment of this utility model. Figure 2 This is a structural schematic diagram of the box body and sliding rod of this utility model. Figure 3 This is a schematic diagram of the drive motor and drive block of this utility model. This utility model provides a pancreatic enzyme filtration device, including a base 101 and a processing component. The processing component includes a filter screen 102, a frame 103, a box 104, a slide rod 105, a spring 106, a brush 107, a fixed block 108, a pressing block 109, a frame 110, a drive component, a fixing component, and a pressing component. The fixing component includes a fixing screw 111 and a fixing motor 112. The pressing component includes a pressing screw 113 and a pressing motor 114. The drive component includes a drive motor 115 and a drive block 116. The aforementioned solution solves the problem in the existing pancreatic enzyme filtration method where impurities in the pancreatic enzyme easily accumulate on the filter screen 102 during the filtration process, causing blockage of the filter holes and affecting the filtration effect. It can be understood that the aforementioned solution can be used in the case of the existing pancreatic enzyme filtration method where impurities in the pancreatic enzyme easily accumulate on the filter screen 102 during the filtration process.
[0021] In this specific embodiment, by placing the centrifuge tube in the mounting slot of the base 101 and then placing the syringe on the mounting hole of the frame 110, the fixing member drives the fixing block 108 to move on the frame 110. The fixing block 108 clamps both sides of the syringe, fixing the syringe on the mounting hole of the frame 110. The squeezing member drives the pressure block 109 to move up and down on the frame 110, and the pressure block 109 squeezes the syringe, causing the trypsin in the syringe to drip into the filter screen 102. The driving member drives the frame 103 to move on the slide rod 105, while the brush 107 cleans the impurities in the filter screen 102. The filtered trypsin falls into the centrifuge tube, avoiding clogging of the filter holes of the filter screen 102, thereby improving the filtration effect of the trypsin.
[0022] The frame 110 is fixedly installed on one side of the base 101. The pressing member is disposed on the frame 110. The pressing block 109 is connected to the pressing member and slidably connected to the frame 110. The fixing member is connected to the frame 110. The fixing block 108 is slidably connected to the frame 110 and connected to the fixing member. The box 104 is fixedly installed on the side of the frame 110 near the base 101. The sliding rod 105 is fixedly installed on the side of the box 104 away from the base 101. The frame 103 is slidably installed on the side of the sliding rod 105 away from the box 104. One end of the spring 106 is connected to the frame 103. The other end of 06 is connected to the housing 104. The brush 107 is bolted to the housing 104. The driving component is mounted on the housing 104. The filter screen 102 is detachably connected to the frame 103. The top of the base 101 is designed with a mounting groove. The horizontal end of the frame 110 is designed with a mounting hole. The upper inner side of the vertical end of the frame 110 is designed with a fixing groove. The upper front end of the frame 110 is designed with a pressing groove. There are multiple fixing blocks 108. The side of each fixing block 108 is designed with a fixing groove. The fixing component drives the left ends of two fixing blocks 108 to move on the fixing groove of the frame 110. The pressing component drives the left end of the pressing block 109 to move on the frame 110. The centrifuge tube moves on the extrusion groove. The top of the box 104 is designed with a cavity, and the bottom of the box 104 is designed with an outlet pipe. The box 104 is located on the lower inner side of the vertical end of the frame 110. The top of the frame 103 is designed with a placement groove, and the left and right sides of the frame 103 are designed with sliding holes. There are multiple sliding rods 105, and the ends of the sliding rods 105 are fixedly connected to the inner side of the box 104 through the sliding holes of the frame 103. There are multiple springs 106, and the springs 106 are sleeved on the sliding rods 105 to support the frame 103. The outer side of the filter screen 102 is detachably connected to the placement groove of the frame 103. By placing the centrifuge tube in the mounting groove of the base 101, and then... The syringe is placed on the mounting hole of the frame 110. The fixing component drives the fixing block 108 to move on the frame 110. The fixing block 108 clamps both sides of the syringe, fixing the syringe on the mounting hole of the frame 110. The squeezing component drives the pressure block 109 to move up and down on the frame 110. The pressure block 109 squeezes the syringe, and the trypsin in the syringe drips into the filter screen 102. The driving component drives the frame 103 to move on the slide rod 105. At the same time, the brush 107 cleans the impurities in the filter screen 102. The filtered trypsin falls into the centrifuge tube, avoiding clogging of the filter holes of the filter screen 102, thereby improving the filtration effect of the trypsin.
[0023] Secondly, the fixing screw 111 is rotatably connected to the frame 110 and threadedly connected to the fixed block 108; the fixing motor 112 is fixedly connected to the frame 110, and the output shaft of the fixing motor 112 is connected to the fixing screw 111. A rotating hole is designed on the upper left side of the frame 110, and an external thread is designed on the outer side of the fixing screw 111, with the external threads at both ends being opposite. A through threaded hole is designed on the left end of the fixed block 108, and the external thread of the fixing screw 111 is connected to the through threaded hole of the fixed block 108. The end of the fixing screw 111 is fixedly connected to the output shaft of the fixing motor 112 through the rotating hole of the frame 110. The fixing motor 112 drives the fixing screw 111 to rotate on the frame 110, and when the fixing screw 111 rotates, it drives the fixed block 108 to move on the frame 110, thereby driving the fixed block 108 to move.
[0024] Then, the extrusion screw 113 is rotatably connected to the frame 110 and threadedly connected to the pressure block 109; the extrusion motor 114 is fixedly connected to the frame 110, and the output shaft of the extrusion motor 114 is connected to the extrusion screw 113. The left end of the pressure block 109 is designed with a through threaded hole, the top end of the frame 110 is designed with a through hole, the outer side of the extrusion screw 113 is designed with an external thread, the external thread of the extrusion screw 113 is connected to the through threaded hole of the pressure block 109, and the top end of the extrusion screw 113 is fixedly connected to the output shaft of the extrusion motor 114 through the through hole of the frame 110. The extrusion motor 114 drives the extrusion screw 113 to rotate on the frame 110. When the extrusion screw 113 rotates, it drives the pressure block 109 to move up and down on the frame 110, thereby driving the pressure block 109 to move.
[0025] Finally, the drive motor 115 is fixedly connected to the housing 104 and located on the side of the housing 104 away from the base 101; the drive block 116 is connected to the output shaft of the drive motor 115 and rotatably connected to the housing 104. The right side of the housing 104 is designed with a rotating groove, and the top right side of the housing 104 is designed with a connecting hole. The output shaft of the drive motor 115 is fixedly connected to the top of the drive block 116 through the connecting hole of the housing 104. The drive motor 115 drives the drive block 116 to rotate on the housing 104. When the drive block 116 rotates, it abuts against the housing 104, thereby driving the frame 103 to move on the slide rod 105, thus driving the frame 103 to move.
[0026] When using the pancreatic enzyme filtration device of this embodiment, a centrifuge tube is placed in the mounting slot of the base 101, and a syringe is placed on the mounting hole of the frame 110. The fixed motor 112 drives the fixed lead screw 111 to rotate on the frame 110. When the fixed lead screw 111 rotates, it drives the fixed block 108 to move on the frame 110. The fixed block 108 clamps both sides of the syringe, fixing the syringe on the mounting hole of the frame 110. The extrusion motor 114 drives the extrusion lead screw 113 to rotate on the frame 110. When the extrusion lead screw 113 rotates, it drives the pressure block 109 to move up and down on the frame 110. The pressure block 109 presses against the syringe. When squeezed, the trypsin in the syringe drips into the filter screen 102. The drive motor 115 drives the drive block 116 to rotate on the housing 104. When rotating, the drive block 116 abuts against the housing 104, thereby driving the frame 103 to move on the slide rod 105. The frame 103 drives the filter screen 102 to move. When the drive block 116 separates from the frame 103, the spring 106 drives the frame 103 to move on the slide rod 105. At the same time, the brush 107 cleans the impurities in the filter screen 102. The filtered trypsin falls into the centrifuge tube, avoiding clogging of the filter holes of the filter screen 102, thereby improving the filtration effect of the trypsin.
[0027] The second embodiment of this application is as follows:
[0028] Please see Figure 4 , Figure 4 This is a schematic diagram of the structure of the mounting screw and the protective pad of this utility model. Based on the first embodiment, the fixing component of this embodiment also includes the mounting screw 201 and the protective pad 202.
[0029] In this specific embodiment, the protective pad 202 is installed on the fixed block 108 by the mounting screw 201. When the fixed block 108 moves, it causes the protective pad 202 to abut against the syringe, avoiding damage to the syringe and thus improving the fixation effect on the syringe.
[0030] The mounting screw 201 is threadedly connected to the fixed block 108 and is located on the side of the fixed block 108 away from the fixing screw 111. The protective pad 202 is threadedly connected to the mounting screw 201 and is located on the side of the mounting screw 201 close to the fixed block 108. The fixed block 108 has a fixing groove with multiple internal threaded holes. The protective pad 202 has multiple mounting holes on its inner side. The mounting screw 201 connects to the internal threaded holes of the fixed block 108 through the mounting holes of the protective pad 202, fixing the protective pad 202 on the fixing groove of the fixed block 108. The protective pad 202 is installed on the fixed block 108 by the mounting screw 201. When the fixed block 108 moves, it causes the protective pad 202 to abut against the syringe, avoiding damage to the syringe and thus improving the fixation effect on the syringe.
[0031] When using a pancreatic enzyme filtration device according to this embodiment, the mounting screw 201 mounts the protective pad 202 onto the fixed block 108. When the fixed block 108 moves, it causes the protective pad 202 to abut against the syringe, avoiding damage to the syringe and thus improving the fixation effect on the syringe.
[0032] The above-disclosed embodiments are merely one or more preferred embodiments of this application and should not be construed as limiting the scope of this application. Those skilled in the art can understand that all or part of the processes for implementing the above embodiments and equivalent changes made in accordance with the claims of this application still fall within the scope of this application.
Claims
1. A pancreatic enzyme filtration device, comprising a base, characterized in that, It also includes processing components; The processing assembly includes a filter screen, a frame, a housing, a slide rod, a spring, a brush, a fixed block, a pressure block, a frame, a drive component, a fixing component, and an extrusion component. The frame is fixedly installed on one side of the base. The extrusion component is disposed on the frame. The pressure block is connected to the extrusion component and slidably connected to the frame. The fixing component is connected to the frame. The fixed block is slidably connected to the frame and connected to the fixing component. The housing is fixedly installed on the side of the frame near the base. The slide rod is fixedly installed on the side of the housing away from the base. The frame is slidably installed on the side of the slide rod away from the housing. One end of the spring is connected to the frame, and the other end of the spring is connected to the housing. The brush is bolted to the housing. The drive component is disposed on the housing. The filter screen is detachably connected to the frame.
2. The pancreatic enzyme filtration device as described in claim 1, characterized in that, The fixing component includes a fixing screw and a fixing motor. The fixing screw is rotatably connected to the frame and threadedly connected to the fixing block. The fixing motor is fixedly connected to the frame, and the output shaft of the fixing motor is connected to the fixing screw.
3. The pancreatic enzyme filtration device as described in claim 1, characterized in that, The extrusion component includes an extrusion screw and an extrusion motor. The extrusion screw is rotatably connected to the frame and threadedly connected to the pressure block. The extrusion motor is fixedly connected to the frame, and the output shaft of the extrusion motor is connected to the extrusion screw.
4. The pancreatic enzyme filtration device as described in claim 1, characterized in that, The driving component includes a drive motor and a drive block. The drive motor is fixedly connected to the housing and located on the side of the housing away from the base. The drive block is connected to the output shaft of the drive motor and is rotatably connected to the housing.
5. The pancreatic enzyme filtration device as described in claim 2, characterized in that, The fixing component further includes a mounting screw and a protective washer. The mounting screw is threadedly connected to the fixed block and is located on the side of the fixed block away from the fixing screw. The protective washer is threadedly connected to the mounting screw and is located on the side of the mounting screw closer to the fixed block.
Citation Information
Patent Citations
Tool for assisting pancreatin filtration
CN214571896U