Two-dimensional motion mixer
By introducing clamping, fixing, and venting components into the mixer, the problem of dust diffusion during the discharge process is solved, achieving stable material feeding and health protection.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- JIANGXI UNIVERSE PHARMA
- Filing Date
- 2023-11-27
- Publication Date
- 2026-05-05
AI Technical Summary
During the discharge process, material particles collide with each other and form dust when they fall from the discharge port into the material collection bag, which causes the dust to spread, affecting the health of operators and causing material waste.
A two-dimensional motion mixer was designed, comprising a clamping assembly, a fixing assembly, and an exhaust assembly. The clamping assembly is used to fix the material holding bag, the fixing assembly ensures that the discharge pipe rotates synchronously with the discharge port, and the exhaust assembly is used to filter dust and prevent dust from spreading.
It effectively prevents dust diffusion, reduces material waste, protects the health of operators, and improves the stability and discharge efficiency of the material holding bag.
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Figure CN117380082B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of mixing technology, specifically a two-dimensional motion mixing machine. Background Technology
[0002] The two-dimensional motion mixer mainly consists of three parts: a rotating drum, a swing frame, and a machine frame. The rotating drum is mounted on the swing frame, supported by four rollers and axially positioned by two guide rollers. Of the four supporting rollers, two drive rollers are driven by a rotational power system to rotate the drum. The swing frame is driven by a crank-rocker mechanism mounted on the machine frame, which is supported by bearing assemblies.
[0003] Currently, after the powder and granules are processed by the mixer, during the discharge process, the mixing tank of the mixer is tilted and rotated, and the operator holds a material collection bag at the discharge port to receive the mixed material.
[0004] However, during the discharge process, as the material falls from the discharge port into the material holding bag, the material particles fall to the bottom of the material holding bag and collide with each other. Under the action of airflow, the resulting material dust spreads towards the opening of the material holding bag. On the one hand, this causes material waste, and on the other hand, the spread material dust can also affect the respiratory health of the operators.
[0005] Therefore, the present invention provides a two-dimensional motion mixer. Summary of the Invention
[0006] In order to overcome the shortcomings of the prior art, at least one technical problem raised in the background art is solved.
[0007] The technical solution adopted by the present invention to solve its technical problem is as follows: The present invention provides a two-dimensional motion mixer, including a base, a rotating seat rotatably connected to the top of the base, a mixing tank rotatably connected to the top of the rotating seat, a feeding port provided at one end of the mixing tank, a discharge port provided at the other end of the mixing tank, and a discharge pipe rotatably connected to the discharge port.
[0008] The top of the discharge pipe is provided with a clamping assembly, which is used to clamp and fix the material holding bag.
[0009] A fixing component is provided at the bottom of the discharge pipe, which is used to fix the discharge pipe.
[0010] An exhaust assembly is provided at the end of the discharge pipe away from the discharge port. The exhaust assembly is used to filter material dust and maintain the air pressure inside the material holding bag.
[0011] Preferably, the clamping assembly includes a support plate, which is fixedly connected to the top side wall of the discharge pipe. A fastening bolt is threaded onto the support plate, and a clamping plate is rotatably connected to the bottom of the fastening bolt.
[0012] Preferably, the fixing assembly includes two rotating rods, which are rotatably connected to the bottom of the discharge pipe. Each end of the two rotating rods is provided with a positioning element for fixing the rotating rods. The ends of the two rotating rods away from the discharge pipe are rotatably connected to an arc-shaped plate, and multiple rubber strips are fixedly connected to the inner arc surface of the arc-shaped plate.
[0013] Preferably, the positioning component includes a pin bracket and two positioning holes. The two positioning holes are symmetrically opened on the bottom side wall of the discharge pipe. The pin bracket is fixedly connected to the side wall of the rotating rod. A positioning pin is slidably inserted into the pin bracket. One end of the positioning pin near the discharge pipe passes through the side wall of the rotating rod and is inserted into the positioning hole. A limit ring is fixedly connected to the positioning pin. A spring is provided on one side of the positioning pin, and the spring is sleeved on the positioning pin.
[0014] Preferably, the exhaust assembly includes a filter cover and a plurality of exhaust pipes. The filter cover is snapped onto the port of the discharge pipe, and the plurality of exhaust pipes are evenly laid on the discharge pipe. The end of the exhaust pipe away from the discharge port is connected to the filter cover, and the end of the exhaust pipe near the discharge port penetrates the side wall of the discharge pipe.
[0015] Preferably, the discharge pipe is further provided with multiple sets of vibration components, each set of vibration components including a mounting groove, a strip plate slidably connected in the mounting groove, a striking element being provided at the end of the strip plate away from the discharge port, and a pushing element being provided at the end of the strip plate close to the discharge port.
[0016] Preferably, the striking element includes a rack and a support shaft. The rack is fixedly connected to the end face of the strip plate, and the support shaft is rotatably connected to the inner wall of the mounting groove. A gear is fixedly connected to the support shaft, and the gear meshes with the rack. A leaf plate is fixedly connected to the support shaft, and a striking ball is connected to the end of the leaf plate away from the support shaft via a rubber rod.
[0017] Preferably, the pushing member includes a protrusion, a second spring, and a top block. The protrusion is fixedly connected to the end of the discharge port, the second spring is fixedly connected to the end of the strip plate near the discharge port, and the top block is sleeved on the end of the strip plate near the discharge port.
[0018] Preferably, two handles are symmetrically fixedly connected to the side wall of the discharge pipe near the discharge port.
[0019] The beneficial effects of this invention are as follows:
[0020] The two-dimensional motion mixer described in this invention, through the setting of the exhaust component, allows material particles to fall to the bottom of the material holding bag and collide with each other during the feeding process. Under the action of airflow, the resulting material dust diffuses towards the opening of the material holding bag. When the material dust diffuses to the discharge pipe, it comes into contact with the filter cover, and the material dust particles are blocked by the filter cover. Air enters the exhaust pipe through the filter cover and is discharged. On the one hand, this helps to prevent dust diffusion, and on the other hand, it helps to prevent the material holding bag from expanding due to the inability of air to escape. This, in turn, helps to prevent the expansion from causing gaps in the fit between the material holding bag and the discharge pipe, resulting in the diffusion and overflow of material dust.
[0021] The two-dimensional motion mixer of this invention, through the setting of the fixed components, allows the discharge pipe and discharge port to rotate together during the mixing process of the mixing tank. During the feeding process, the rotating rod is rotated 180 degrees counterclockwise, and the position of the arc plate is adjusted so that the arc plate is placed on the bottom surface of the discharge pipe and presses the bottom of the material holding bag sleeved on the discharge pipe. During the feeding process, the material slides into the material holding bag. The material holding bag is pressed by the arc plate, which helps to prevent the material holding bag at the bottom surface of the discharge pipe from separating from the bottom surface of the discharge pipe under gravity, creating gaps and causing diffused material dust to overflow from the gaps. Attached Figure Description
[0022] The invention will now be further described with reference to the accompanying drawings.
[0023] Figure 1 This is a perspective view of the present invention;
[0024] Figure 2 This is a schematic diagram of the discharge pipe of the present invention. Figure 1 ;
[0025] Figure 3 This is a schematic diagram of the discharge pipe in this invention. Figure 2 ;
[0026] Figure 4 This is a schematic diagram of the discharge pipe in this invention. Figure 3 ;
[0027] Figure 5 This is a schematic diagram of the arc-shaped plate and rotating rod of the present invention;
[0028] Figure 6 This is a schematic diagram of the discharging pipe of the present invention.
[0029] Figure 7 This is a partial cross-sectional schematic diagram of the discharge pipe of the present invention;
[0030] Figure 8 This is a schematic diagram of the striking element of the present invention.
[0031] In the diagram: 1. Base; 2. Rotating seat; 3. Mixing tank; 4. Feeding port; 5. Discharge port; 6. Discharge pipe; 7. Rotating rod; 8. Arc plate; 9. Rubber strip; 10. Pin bracket; 11. Positioning pin; 12. Spring 1; 13. Limiting ring; 14. Support plate; 15. Fastening bolt; 16. Clamping plate; 17. Mounting groove; 18. Strip plate; 19. Protrusion; 20. Spring 2; 21. Top block; 22. Rack; 23. Support shaft; 24. Gear; 25. Leaf plate; 26. Striking ball; 27. Filter cover; 28. Exhaust pipe; 29. Handle lever. Implementation
[0032] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.
[0033] Combination Figure 1 and Figure 2 As shown, a two-dimensional motion mixer according to an embodiment of the present invention includes a base 1, a rotating seat 2 rotatably connected to the top of the base 1, a mixing tank 3 rotatably connected to the top of the rotating seat 2, a feeding port 4 provided at one end of the mixing tank 3, a discharge port 5 provided at the other end of the mixing tank 3, and a discharge pipe 6 rotatably connected to the discharge port 5.
[0034] A clamping assembly is provided at the top of the discharge pipe 6. The clamping assembly is used to clamp and fix the material holding bag.
[0035] A fixing component is provided at the bottom of the discharge pipe 6, which is used to fix the discharge pipe 6.
[0036] An exhaust assembly is installed at the end of the discharge pipe 6 furthest from the discharge port 5. The exhaust assembly is used to filter material dust and maintain the air pressure inside the material holding bag. During operation, in the discharge process, the fixing assembly first releases the fixing of the discharge pipe 6, allowing the discharge pipe 6 to rotate and connect with the discharge port 5. Then, the material holding bag is placed on the discharge pipe 6, making it fit tightly against the discharge pipe 6. The clamping assembly then fixes the material holding bag in place. At the same time, the fixing assembly provides auxiliary fixation for the material holding bag, which helps to improve the stability of the material holding bag during the discharge process. During the tilting and rotating discharge process of the mixing tank 3, the material slides into the material holding bag. Because the material holding bag is tightly fitted with the discharge pipe 6, the material particles fall to the bottom of the material holding bag and collide with each other. Under the action of airflow, the material dust formed spreads towards the opening of the material holding bag. When the material dust spreads to the discharge pipe 6, it is filtered by the exhaust component and the air pressure inside the material holding bag is maintained. This helps to prevent the material from spreading to the outside of the material holding bag, which helps to reduce material loss and the impact on the respiratory health of operators.
[0037] Combination Figure 2 and Figure 3 As shown, the clamping assembly includes a support plate 14, which is fixedly connected to the top side wall of the discharge pipe 6. A fastening bolt 15 is threaded onto the support plate 14, and a clamping plate 16 is rotatably connected to the bottom of the fastening bolt 15. During operation, after the material holding bag is placed on the discharge pipe 6 and tightly adheres to the surface of the discharge pipe 6, the fastening bolt 15 can be rotated to make the fastening bolt 15 downward, thereby driving the clamping plate 16 to tighten and fix the material holding bag.
[0038] Combination Figure 4 and Figure 5 As shown, the fixing assembly includes two rotating rods 7, which are rotatably connected to the bottom of the discharge pipe 6. Each end of the two rotating rods 7 is equipped with a positioning element for fixing the rotating rods 7. The ends of the two rotating rods 7 furthest from the discharge pipe 6 are rotatably connected to an arc-shaped plate 8. Multiple rubber strips 9 are fixedly connected to the inner arc surface of the arc-shaped plate 8. During operation, the rotation of the rotating rods 7 causes the arc-shaped plate 8 to adhere to the bottom surface of the discharge port 5, compressing the rubber strips 9 and causing them to abut against the bottom surface of the discharge port 5. The positioning elements then fix the rotating rods 7. Under the action of the rubber strips 9, the discharge pipe 6 and the discharge port 5 are... When the mixing tank 3 is stationary, the discharge pipe 6 and the discharge port 5 rotate together during the mixing process. During the feeding process, the rotating rod 7 is rotated 180 degrees counterclockwise, and the position of the arc plate 8 is adjusted so that the arc plate 8 is placed on the bottom surface of the discharge pipe 6 and presses the bottom of the material holding bag fitted on the discharge pipe 6. During the feeding process, the material slides into the material holding bag. The material holding bag is pressed by the arc plate 8, which helps to prevent the material holding bag at the bottom surface of the end of the discharge pipe 6 from separating from the bottom surface of the discharge pipe 6 under the action of gravity, creating gaps and causing the diffused material dust to overflow from the gaps.
[0039] Combination Figure 4 and Figure 5 As shown, the positioning component includes a pin bracket 10 and two positioning holes. The two positioning holes are symmetrically opened on the bottom side wall of the discharge pipe 6. The pin bracket 10 is fixedly connected to the side wall of the rotating rod 7. A positioning pin 11 is slidably inserted into the pin bracket 10. The end of the positioning pin 11 near the discharge pipe 6 passes through the side wall of the rotating rod 7 and is inserted into the positioning hole. A limit ring 13 is fixedly connected to the positioning pin 11. A spring 12 is provided on one side of the positioning pin 11 and is sleeved on the positioning pin 11. During operation, the spring 12 ensures that the positioning pin 11 is inserted into the positioning hole and remains stable. If it is necessary to release the rotating rod 7 by using the positioning pin 11, simply pull the positioning pin 11 to compress the limit ring 13 and the spring 12, causing the positioning pin 11 to disengage from the positioning hole.
[0040] Combination Figure 2 and Figure 7 As shown, the exhaust assembly includes a filter cover 27 and multiple exhaust pipes 28. The filter cover 27 is snapped onto the port of the discharge pipe 6. The multiple exhaust pipes 28 are evenly laid on the discharge pipe 6. The end of the exhaust pipe 28 away from the discharge port 5 is connected to the filter cover 27, and the end of the exhaust pipe 28 near the discharge port 5 penetrates the side wall of the discharge pipe 6. During operation, during the feeding process, material particles fall to the bottom of the material holding bag and collide with each other. Under the action of airflow, the material dust diffuses towards the opening of the material holding bag. When the material dust diffuses to the discharge pipe 6, the material dust comes into contact with the filter cover 27. The material dust particles are blocked by the filter cover 27, and the air enters the exhaust pipe 28 through the filter cover 27 and is discharged. On the one hand, this helps to avoid dust diffusion, and on the other hand, it helps to prevent the air from not being able to escape, which would cause the material holding bag to expand. This helps to prevent the expansion from causing gaps in the fit between the material holding bag and the discharge pipe 6, and the material dust from spreading and overflowing.
[0041] Combination Figure 6 and Figure 8 As shown, the discharge pipe 6 is also equipped with multiple sets of vibration components. Each set of vibration components includes a mounting groove 17. A strip plate 18 is slidably connected in the mounting groove 17. A striking element is provided at the end of the strip plate 18 away from the discharge port 5, and a pushing element is provided at the end of the strip plate 18 near the discharge port 5. During operation, the discharge pipe 6 is stationary during the feeding process. As the mixing tank 3 rotates, the mixing tank 3 drives the discharge port 5 to rotate, causing the pushing element to reciprocate and move the strip plate 18. The reciprocating movement of the strip plate 18 will push the striking element to strike the discharge pipe 6, causing the discharge pipe 6 to vibrate. This helps to shake off the material particles adsorbed on the inner wall of the discharge pipe 6, which helps to reduce the amount of material residue on the inner wall of the discharge pipe 6 after feeding.
[0042] Combination Figure 7 and Figure 8 As shown, the striking component includes a rack 22 and a support shaft 23. The rack 22 is fixedly connected to the end face of the strip plate 18, and the support shaft 23 is rotatably connected to the inner wall of the mounting groove 17. A gear 24 is fixedly connected to the support shaft 23, and the gear 24 meshes with the rack 22. A leaf plate 25 is fixedly connected to the support shaft 23, and the end of the leaf plate 25 away from the support shaft 23 is connected to a striking ball 26 via a rubber rod. During operation, as the strip plate 18 moves back and forth, the rack 22 will reciprocate to drive the gear 24 to rotate, which in turn causes the support shaft 23 to drive the leaf plate 25 and the striking ball 26 to rotate back and forth, causing the striking ball 26 to reciprocate to strike the inner wall of the mounting groove 17, thereby causing the discharge pipe 6 to vibrate.
[0043] Combination Figure 4 and Figure 8As shown, the pushing component includes a protrusion 19, a second spring 20, and a top block 21. The protrusion 19 is fixedly connected to the end of the discharge port 5, the second spring 20 is fixedly connected to the end of the strip plate 18 near the discharge port 5, and the top block 21 is sleeved on the end of the strip plate 18 near the discharge port 5. During operation, the protrusion 19 abuts against the end of the discharge port 5 due to the setting of the second spring 20. During the rotation of the discharge port 5, the top block 21 reciprocates to press the protrusion 19, and under the action of the second spring 20, the strip plate 18 reciprocates. At the same time, during the feeding process, the air discharged through the exhaust pipe 28 blows onto the protrusion 19, which helps to cool the protrusion 19 and reduces the reciprocating contact loss between the protrusion 19 and the top block 21.
[0044] Combination Figure 2 and Figure 3 As shown, two handles 29 are symmetrically fixed to the side wall of the discharge pipe 6 near the discharge port 5. During operation, the handles 29 are designed to allow the material holding bag to be placed and fixed on the discharge pipe 6. By holding the handles 29, the handles 29 can be rotated relative to the discharge port 5, which helps to prevent the discharge pipe 6 from rotating with the discharge port 5 during the discharge process.
[0045] Working principle: During the discharge process, after the material holding bag is placed on the discharge pipe 6 and is in close contact with the surface of the discharge pipe 6, the fastening bolt 15 can be rotated so that the fastening bolt 15 is downward and drives the clamping plate 16 to tighten and fix the material holding bag.
[0046] Next, by rotating the rotating rod 7, the arc plate 8 is made to fit against the bottom surface of the discharge port 5. The rubber strip 9 is compressed and comes into contact with the bottom surface of the discharge port 5. Then, the rotating rod 7 is fixed by the positioning component. Under the action of the rubber strip 9, the discharge pipe 6 and the discharge port 5 are relatively stationary. In this way, during the mixing process of the mixing tank 3, the discharge pipe 6 and the discharge port 5 rotate together, which helps to avoid the vibration component from working and helps to reduce the increased wear caused by the vibration component working for a long time.
[0047] During the feeding process, the rotating rod 7 is rotated 180 degrees counterclockwise, and the position of the arc plate 8 is adjusted so that the arc plate 8 is placed on the bottom surface of the discharge pipe 6 and the bottom of the material holding bag sleeved on the discharge pipe 6 is pressed tightly. During the feeding process, the material slides into the material holding bag. The material holding bag is pressed tightly by the arc plate 8, which helps to prevent the material holding bag at the bottom surface of the end of the discharge pipe 6 from separating from the bottom surface of the discharge pipe 6 under the influence of gravity, creating gaps and causing the diffused material dust to overflow from the gaps.
[0048] During the feeding process, material particles fall to the bottom of the material holding bag and collide with each other. Under the action of airflow, the resulting material dust diffuses towards the opening of the material holding bag. When the material dust diffuses to the discharge pipe 6, it comes into contact with the filter cover 27. The material dust particles are blocked by the filter cover 27, and the air enters the exhaust pipe 28 through the filter cover 27 and is discharged. This helps to prevent dust diffusion and also helps to prevent the material holding bag from expanding due to air not being able to escape. This, in turn, helps to prevent the material holding bag from expanding and creating gaps in the fit between the material holding bag and the discharge pipe 6, thus preventing the material dust from spreading and overflowing.
[0049] During the feeding process, the handle 29 is held and the discharge pipe 6 is stationary. As the mixing tank 3 rotates, the mixing tank 3 drives the discharge port 5 to rotate, causing the pusher to reciprocate and move the strip plate 18. The reciprocating movement of the strip plate 18 will push the striking part to strike the discharge pipe 6, causing the discharge pipe 6 to vibrate. This helps to shake off the material particles adsorbed on the inner wall of the discharge pipe 6, which helps to reduce the amount of material residue on the inner wall of the discharge pipe 6 after feeding. At the same time, during the feeding process, the air discharged through the exhaust pipe 28 blows onto the protrusion 19, which helps to cool the protrusion 19 and reduce the reciprocating contact loss between the protrusion 19 and the top block 21.
[0050] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of the present invention is defined by the appended claims and their equivalents.
Claims
1. A two-dimensional motion mixer, characterized in that: Includes a base (1), a rotating seat (2) is rotatably connected to the top of the base (1), a mixing tank (3) is rotatably connected to the top of the rotating seat (2), a feeding port (4) is provided at one end of the mixing tank (3), a discharge port (5) is provided at the other end of the mixing tank (3), and a discharge pipe (6) is rotatably connected to the discharge port (5). The top of the discharge pipe (6) is provided with a clamping assembly, which is used to clamp and fix the material holding bag. A fixing component is provided at the bottom of the discharge pipe (6), and the fixing component is used to fix the discharge pipe (6); The discharge pipe (6) is provided with an exhaust component at one end away from the discharge port (5). The exhaust component is used to filter material dust and maintain the air pressure inside the material holding bag. The fixing assembly includes two rotating rods (7), which are rotatably connected to the bottom of the discharge pipe (6). Each end of the two rotating rods (7) is provided with a positioning element, which is used to fix the rotating rods (7). The ends of the two rotating rods (7) away from the discharge pipe (6) are rotatably connected to an arc plate (8). Multiple rubber strips (9) are fixedly connected to the inner arc surface of the arc plate (8). By setting the fixed components, the discharge pipe (6) and the discharge port (5) rotate together during the mixing process of the mixing tank (3). During the feeding process, the rotating rod (7) is rotated counterclockwise by 180 degrees, and the position of the arc plate (8) is adjusted so that the arc plate (8) is placed on the bottom surface of the discharge pipe (6) and the bottom of the material holding bag sleeved on the discharge pipe (6) is pressed. The discharge pipe (6) is also provided with multiple sets of vibration components. Each set of vibration components includes a mounting groove (17). A strip plate (18) is slidably connected in the mounting groove (17). A striking element is provided at the end of the strip plate (18) away from the discharge port (5), and a pushing element is provided at the end of the strip plate (18) close to the discharge port (5). The striking component includes a rack (22) and a support shaft (23). The rack (22) is fixedly connected to the end face of the strip plate (18). The support shaft (23) is rotatably connected to the inner wall of the mounting groove (17). A gear (24) is fixedly connected to the support shaft (23). The gear (24) meshes with the rack (22). A leaf plate (25) is fixedly connected to the support shaft (23). A striking ball (26) is connected to one end of the leaf plate (25) away from the support shaft (23) via a rubber rod. The pusher includes a protrusion (19), a second spring (20), and a top block (21). The protrusion (19) is fixedly connected to the end of the discharge port (5). The second spring (20) is fixedly connected to one end of the strip plate (18) near the discharge port (5). The top block (21) is sleeved on one end of the strip plate (18) near the discharge port (5). Two handles (29) are symmetrically fixed to one end of the discharge pipe (6) near the discharge port (5).
2. The two-dimensional motion mixer according to claim 1, characterized in that: The clamping assembly includes a support plate (14), which is fixedly connected to the top side wall of the discharge pipe (6). A fastening bolt (15) is threaded onto the support plate (14), and a clamping plate (16) is rotatably connected to the bottom of the fastening bolt (15).
3. A two-dimensional motion mixer according to claim 2, characterized in that: The positioning component includes a pin bracket (10) and two positioning holes. The two positioning holes are symmetrically opened on the bottom side wall of the discharge pipe (6). The pin bracket (10) is fixedly connected to the side wall of the rotating rod (7). A positioning pin (11) is slidably inserted into the pin bracket (10). The end of the positioning pin (11) near the discharge pipe (6) passes through the side wall of the rotating rod (7) and is inserted into the positioning hole. A limit ring (13) is fixedly connected to the positioning pin (11). A spring (12) is provided on one side of the positioning pin (11). The spring (12) is sleeved on the positioning pin (11).
4. A two-dimensional motion mixer according to claim 3, characterized in that: The exhaust assembly includes a filter cover (27) and a plurality of exhaust pipes (28). The filter cover (27) is snapped into the port of the discharge pipe (6). The plurality of exhaust pipes (28) are evenly laid on the discharge pipe (6). The end of the exhaust pipe (28) away from the discharge port (5) is connected to the filter cover (27). The end of the exhaust pipe (28) near the discharge port (5) penetrates the side wall of the discharge pipe (6).
Citation Information
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