Multi-chamber mixing device for beverage processing
By designing an adjustable multi-chamber structure, the problem of inefficient mixing efficiency of existing beverage mixing devices is solved, and efficient and uniform mixing of various ingredients is achieved and flexible raw material ratios are achieved to ensure stable beverage quality.
Patent Information
- Application Number
- CN202510208783.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-25
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2045-02-25
AI Technical Summary
It is difficult for existing beverage mixing devices to achieve efficient and uniform mixing, and the traditional single-cavity structure cannot mix multiple components at the same time, resulting in low mixing efficiency and long processing cycles.
A multi-cavity mixing device is designed, by providing an adjustable isolation plate and a rotating isolation cylinder, the number and volume of chambers can be quickly adjusted, so as to achieve simultaneous mixing of multiple components.
It improves mixing efficiency, flexibility and applicability, ensures stable beverage quality, meets diversified production needs, and achieves a more uniform mixing effect through liquid circulation and stirring.
Smart Images

Figure CN119680441B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of beverage mixing, and in particular discloses a multi-cavity mixing device for beverage processing. Background Art
[0002] Existing beverage mixing devices are mainly divided into two types: stirring mixing and pneumatic mixing. The stirring mixing efficiency is affected by factors such as the speed and structure of the stirring paddle, and it is difficult to ensure efficient and uniform mixing of different ingredients; pneumatic mixing mixes the ingredients through high-speed airflow, but it is easy to produce foam, affecting the taste and stability of the beverage.
[0003] In addition, most traditional beverage mixing devices adopt a single-chamber structure, which cannot mix multiple ingredients at the same time, resulting in low mixing efficiency and long processing cycle. In addition, the internal chamber structure of traditional mixing devices is mostly fixed, and the number and volume of chambers cannot be adjusted quickly and conveniently, and their applicability is low. Summary of the invention
[0004] In view of the above deficiencies in the prior art, the present invention provides a multi-chamber mixing device for beverage processing, which can achieve the purpose of quickly and conveniently adjusting the number of internal chambers and the chamber volume, and can mix multiple ingredients at the same time, thereby improving the mixing efficiency.
[0005] The technical solution adopted by the present invention to solve its technical problem is:
[0006] The multi-chamber mixing device for beverage processing comprises a mixing shell, a cover body is fixedly arranged on the top of the mixing shell, an isolation cylinder is rotatably arranged in the middle of the inner cavity of the mixing shell, a first isolation plate, a second isolation plate and a plurality of third isolation plates are fixedly arranged on the outer surface of the isolation cylinder along the radial direction, the plurality of third isolation plates are all located between the first isolation plate and the second isolation plate, the first isolation plate and the second isolation plate divide the inner cavity of the mixing shell into a second chamber and a third chamber, and the third chamber is divided into a plurality of first chambers by the plurality of third isolation plates;
[0007] The isolation cylinder includes a first rotating cylinder rotatably arranged at the top end of the inner cavity of the mixing shell and a second rotating cylinder fixedly arranged at the bottom end of the inner cavity of the mixing shell, and a plurality of third rotating cylinders are rotatably arranged between the first rotating cylinder and the second rotating cylinder in cooperation with a plurality of third isolation plates, the first isolation plate is fixedly connected to the outer surface of the second rotating cylinder, the second isolation plate is fixedly connected to the outer surface of the first rotating cylinder, and a plurality of the third isolation plates are respectively fixedly connected to the outer surfaces of a plurality of third rotating cylinders.
[0008] Furthermore, a center matching cylinder for changing the rotation angle of the second isolation plate and the third isolation plate is provided inside the isolation cylinder, a center rod is provided through the middle of the center matching cylinder, the center matching cylinder includes a first inner cylinder rotatably arranged at the top and a second inner cylinder fixedly arranged at the bottom, a number of third inner cylinders are rotatably arranged between the first inner cylinder and the second inner cylinder, a number of third inner cylinders are rotatably arranged, and baffle rods are fixedly provided on the inner walls of the first rotating cylinder, the second rotating cylinder and the number of third rotating cylinders, the first rotating cylinder is fixedly connected to the first inner cylinder via the baffle rod, the second rotating cylinder is fixedly connected to the second inner cylinder via the baffle rod, and a number of the third rotating cylinders are fixedly connected to a number of third inner cylinders via the baffle rod.
[0009] Furthermore, spacing grooves are provided between the first inner cylinder and the top third inner cylinder, between adjacent third inner cylinders, and between the bottom third inner cylinder and the second inner cylinder, the baffle rod on the inner wall of the first rotating cylinder is fixedly connected to the outer surface of the first inner cylinder, the baffle rods on the inner walls of the second rotating cylinder and several third rotating cylinders are respectively extended into several spacing grooves in cooperation, a central rotating cylinder is rotatably arranged inside the first inner cylinder, the second inner cylinder and several third inner cylinders, baffle plates are fixedly arranged on the outer walls of several central rotating cylinders in cooperation with several spacing grooves, several of the baffle plates are respectively extended into several spacing grooves, and the upper end surfaces of the second inner cylinder and several third inner cylinders are integrally formed with blocking steps.
[0010] Furthermore, a first groove body is provided in the middle of the first inner cylinder, the second inner cylinder and the plurality of third inner cylinders, and a connecting disk is slidably sleeved on the outside of the plurality of central rotating cylinders, and the plurality of connecting disks are respectively located in the plurality of first groove bodies, and the lower end surfaces of the connecting disks are evenly and spaced apart with a plurality of grooves, and the lower end surfaces of the first groove bodies are fixedly provided with a plurality of bosses, and the plurality of bosses are respectively located in the plurality of grooves, and the connecting disk passes through the central rotating cylinder and is rotatably connected to the outer surface of the central rod.
[0011] Furthermore, an annular groove is provided in the middle of the upper end surface of the central rotating cylinder, and a plurality of slots are evenly and spaced apart on the lower end surface of the central rotating cylinder. A plurality of slides are fixedly provided on the outer surface of the central rod in cooperation with the plurality of annular grooves, and the slides can be snapped into the annular grooves, and the slides are annular as a whole.
[0012] Furthermore, the top and bottom of the second isolation plate and the plurality of third isolation plates are provided with through grooves, in which elastic sheets are fixedly arranged, and blocks for blocking the deformation direction of the elastic sheets so that the liquid can only pass through the through groove in one direction are fixedly arranged on the side walls of the upper through groove away from the isolation cylinder and on the side walls of the lower through groove close to the isolation cylinder.
[0013] Furthermore, a rotating shell is movably provided in the middle of the upper end surface of the cover body, the upper end surface of the center rod passes through the cover body and is fixedly connected to the lower end surface of the rotating shell, the upper end surface of the cover body is fixedly provided with a scale plate, and a pointer is fixedly provided on the side wall of the rotating shell to cooperate with the scale plate.
[0014] Furthermore, a plurality of feed doors are evenly and detachably arranged at intervals on the upper end surface of the cover body, and a drain pipe for draining liquid is fixedly arranged on the lower end surface of the mixing shell.
[0015] Furthermore, a gear is rotatably arranged in the middle of the upper end surface of the cover body, the gear is fixedly connected to the first inner cylinder, a spindle motor is fixedly arranged on the top of the cover body, and the driving end of the spindle motor is connected with a chain and a gear.
[0016] Furthermore, the bottom end of the central rod is slidably connected to the bottom end of the inner cavity of the mixing shell, and a return spring is fixedly connected between the central rod and the bottom end of the inner cavity of the mixing shell.
[0017] The beneficial effects of the present invention are:
[0018] 1. The present invention provides a first isolation plate, a second isolation plate and a plurality of third isolation plates, so that the device can freely change the number of first chambers, provides a more diverse selection of mixing schemes, improves the flexibility and applicability of the device, ensures the stability of beverage quality, and meets diversified production needs. When the third isolation plates are restored to their original state, the solid shell remaining in the first chamber can be squeezed and crushed, so that it can be better mixed and the uneven mixing caused by the presence of solid particles can be avoided.
[0019] 2. The present invention sets a central rod, and by pulling and rotating the central rod, the expansion angle of each third isolation plate can be changed, thereby changing the volume of the first chamber, further optimizing the raw material ratio scheme of the device, and further improving the flexibility and applicability of the device.
[0020] 3. The present invention can understand the volume status of the first chamber in real time by setting a scale plate and a pointer, and can perform precise adjustments even during work.
[0021] 4. The present invention provides an elastic sheet so that the spindle motor can simultaneously realize the circulation and transportation of liquid between the first chamber and the second chamber when rotating forward and reverse, thereby generating a mixing and stirring effect and improving the mixing efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 It is a structural schematic diagram of the present invention;
[0023] Figure 2 It is a partial structural schematic diagram of a plurality of third isolation plates in the present invention when they are combined;
[0024] Figure 3 It is a partial structural schematic diagram of a plurality of third isolation plates in the present invention when they are unfolded;
[0025] Figure 4 It is a structural schematic diagram of the isolation cylinder, the central matching cylinder, the first isolation plate, the second isolation plate, the third isolation plate and the central rod in the present invention;
[0026] Figure 5 It is a schematic diagram of the structure of the baffle rod, the center matching cylinder, the baffle plate, the center rod and the return spring of the present invention;
[0027] Figure 6 It is a schematic structural diagram of the first rotating drum, the second isolation plate, the elastic sheet and the stopper of the present invention;
[0028] Figure 7 It is a partial structural cross-sectional diagram of the baffle rod, the third inner cylinder, the central rotating cylinder, the spacing groove, the blocking step, the first trough body, the boss, the baffle plate, the connecting plate, the groove and the central rod of the present invention;
[0029] Figure 8 It is a schematic diagram of the structure of the cover body, the feed door, the rotating housing, the pointer, the scale plate and the gear of the present invention;
[0030] Fig. 9 It is a partial structural cross-sectional schematic diagram of the central rotating cylinder, connecting disk, groove, annular groove, clamping groove, central rod and slide plate of the present invention.
[0031] In the figure: 1, mixing shell; 2, isolating cylinder; 3, center matching cylinder; 4, first isolating plate; 5, center rod; 11, cover; 12, spindle motor; 13, drain pipe; 21, first rotating cylinder; 22, second rotating cylinder; 23, third rotating cylinder; 24, stop rod; 31, first inner cylinder; 32, second inner cylinder; 33, third inner cylinder; 34, center rotating cylinder; 41, second isolating plate; 42, third isolating plate; 51, slide plate; 5 2. return spring; 100. first chamber; 200. second chamber; 111. feed door; 112. rotating shell; 113. pointer; 114. scale plate; 115. gear; 301. spacing groove; 311. blocking step; 312. first trough body; 313. boss; 341. baffle; 342. connecting plate; 343. groove; 344. annular groove; 345. slot; 401. elastic sheet; 402. stopper. DETAILED DESCRIPTION
[0032] The present invention will be described and illustrated in detail below in conjunction with the accompanying drawings.
[0033] Example 1
[0034] like Figure 1-9As shown, the multi-cavity mixing device for beverage processing includes a mixing shell 1, a cover body 11 is fixedly provided on the top end of the mixing shell 1, an isolation cylinder 2 is rotatably provided in the middle of the inner cavity of the mixing shell 1, and a first isolation plate 4, a second isolation plate 41 and a plurality of third isolation plates 42 are fixedly provided on the outer surface of the isolation cylinder 2 along the radial direction, and the plurality of third isolation plates 42 are all located between the first isolation plate 4 and the second isolation plate 41, and the first isolation plate 4 and the second isolation plate 41 divide the inner cavity of the mixing shell 1 into a second chamber 200 and a third chamber, and the third chamber is divided into a plurality of first chambers 100 by a plurality of third isolation plates 42.
[0035] The upper end surface of the cover body 11 is evenly and detachably provided with a plurality of feed doors 111 , and the lower end surface of the mixing shell 1 is fixedly provided with a drain pipe 13 for draining liquid.
[0036] During actual operation, the second isolation plate 41 and several third isolation plates 42 can be driven to rotate by rotating the isolation cylinder 2, and the first isolation plate 4 will not be driven to rotate. When the isolation cylinder 2 rotates, the first isolation plate 4 and several third isolation plates 42 will be driven to be evenly distributed and spread out. At this time, the second isolation plate 41 and several third isolation plates 42 will divide the inner cavity of the mixing shell 1 into a second chamber 200 and several evenly distributed first chambers 100, so that the raw materials are fully mixed in each chamber. By controlling the rotation angle of the isolation cylinder 2, the number of the third isolation plates 42 that are spread out can be controlled, and then the number of the first chambers 100 can be controlled, thereby realizing accurate mixing of different raw materials and achieving an ideal mixing effect; by opening the feed door 111 to the first chamber Raw materials are added into the first chamber 100 and the second chamber 200, and the mixed beverage is discharged through the discharge pipe 13 after mixing. At the same time, by adjusting the rotation angle of the isolation cylinder 2, not only the quantity of the first chamber 100 can be controlled, but also the volume of the second chamber 200 will change adaptively with the change of the rotation angle of the second isolation plate 41. Since the position change of the second isolation plate 41 can drive the third isolation plate 42 to rotate, the volume of the second chamber 200 can be adjusted synchronously when the volume of the first chamber 100 is adjusted, so that the raw materials can reach the best mixing ratio in the second chamber 200, providing more diverse mixing scheme options, improving the flexibility and applicability of the device, ensuring the stability of beverage quality, and meeting diversified production needs.
[0037] The insulating cylinder 2 includes a first rotating cylinder 21 rotatably arranged at the top end of the inner cavity of the mixing shell 1 and a second rotating cylinder 22 fixedly arranged at the bottom end of the inner cavity of the mixing shell 1, and a plurality of third rotating cylinders 23 are rotatably arranged between the first rotating cylinder 21 and the second rotating cylinder 22 in cooperation with a plurality of third isolation plates 42, the first isolation plate 4 is fixedly connected to the outer surface of the second rotating cylinder 22, the second isolation plate 41 is fixedly connected to the outer surface of the first rotating cylinder 21, and a plurality of the third isolation plates 42 are respectively fixedly connected to the outer surfaces of a plurality of third rotating cylinders 23.
[0038] When in use, the first drum 21 is driven to rotate, thereby driving the third drum 23 and the second isolation plate 41 to rotate synchronously. At this time, the third drum 23 is driven by the first drum 21 to rotate in sequence, so that a number of third isolation plates 42 are unfolded in sequence to form a number of independent mixing chambers, thereby ensuring that the raw materials are evenly distributed in each chamber. By precisely controlling the rotation speed and angle of the first drum 21, it is possible to achieve refined management of the mixing process, further improving the mixing uniformity and taste of the beverage; at the same time, the rotation of the first drum 21 can also adjust the relative position between the first isolation plate 4 and the second isolation plate 41, optimize the volume of the second chamber 200, adapt to the mixing characteristics of different raw materials, and ensure that each mixing can achieve the best effect, thereby meeting the production requirements of high-quality beverages.
[0039] The interior of the isolation cylinder 2 is provided with a center matching cylinder 3 for changing the rotation angle of the second isolation plate 41 and the third isolation plate 42, and a center rod 5 is penetrated in the middle of the center matching cylinder 3, and the center matching cylinder 3 includes a first inner cylinder 31 rotatably arranged at the top and a second inner cylinder 32 fixedly arranged at the bottom, and a plurality of third inner cylinders 23 are rotatably arranged between the first inner cylinder 31 and the second inner cylinder 32, and a plurality of third rotating cylinders 23 are rotatably arranged therebetween, and a baffle rod 24 is fixedly arranged on the inner walls of the first rotating cylinder 21, the second rotating cylinder 22 and the plurality of third rotating cylinders 23, and the first rotating cylinder 21 is fixedly connected to the first inner cylinder 31 by the baffle rod 24, and the second rotating cylinder 22 is fixedly connected to the second inner cylinder 32 by the baffle rod 24, and a plurality of the third rotating cylinders 23 are fixedly connected to a plurality of third inner cylinders 33 by the baffle rod 24.
[0040] Spacing grooves 301 are provided between the first inner cylinder 31 and the top third inner cylinder 33, between adjacent third inner cylinders 33, and between the bottom third inner cylinder 33 and the second inner cylinder 32. The blocking rod 24 on the inner wall of the first rotating cylinder 21 is fixedly connected to the outer surface of the first inner cylinder 31. The blocking rods 24 on the inner walls of the second rotating cylinder 22 and several third rotating cylinders 23 respectively extend into several spacing grooves 301. A central rotating cylinder 34 is rotatably provided inside the first inner cylinder 31, the second inner cylinder 32 and several third inner cylinders 33. Baffles 341 are fixedly provided on the outer walls of several central rotating cylinders 34 to cooperate with several spacing grooves 301. Several baffles 341 extend into several spacing grooves 301 respectively. The upper end surfaces of the second inner cylinder 32 and several third inner cylinders 33 are integrally formed with blocking steps 311.
[0041] A rotating shell 112 is movably provided in the middle of the upper end surface of the cover body 11, the upper end surface of the center rod 5 passes through the cover body 11 and is fixedly connected to the lower end surface of the rotating shell 112, a scale plate 114 is fixedly provided on the upper end surface of the cover body 11, and a pointer 113 is fixedly provided on the side wall of the rotating shell 112 to cooperate with the scale plate 114.
[0042] A gear 115 is rotatably provided in the middle of the upper end surface of the cover body 11 , and the gear 115 is fixedly connected to the first inner cylinder 31 . A spindle motor 12 is fixedly provided on the top of the cover body 11 , and the driving end of the spindle motor 12 is connected to the gear 115 through a chain.
[0043] The bottom end of the center rod 5 is slidably connected to the bottom end of the inner cavity of the mixing shell 1 , and a return spring 52 is fixedly connected between the center rod 5 and the bottom end of the inner cavity of the mixing shell 1 .
[0044] During actual use, the spindle motor 12 is controlled to drive the gear 115 to rotate, thereby driving the first inner cylinder 31 to rotate. When the first inner cylinder 31 rotates, it will drive the center cylinder 34 to rotate. At this time, the center cylinder 34 will drive the baffle 341 to rotate. The baffle 341 will conflict with the baffle rod 24 below during continuous rotation, thereby pushing the baffle rod 24 and the connected third inner cylinder 33 to rotate synchronously, and the baffle rod 24 will drive the corresponding third rotating cylinder 23 to rotate synchronously. As the first inner cylinder 31 continues to rotate, the rotational kinetic energy will be transmitted from the top baffle rod 24 to each third inner cylinder 33 in turn, so that all third isolation plates 42 are unfolded in turn.
[0045] When the volume of the first chamber 100 needs to be changed, it is only necessary to control the spindle motor 12 to reverse and adjust the second isolation plate 41 and the plurality of third isolation plates 42 to the initial state, and then pull the rotating shell 112 upward to drive the center rod 5 to move upward, so that the center rotating cylinder 34 loses connection with the corresponding third inner cylinder 33. At this time, rotating the rotating shell 112 can adjust the positions of the plurality of baffles 341, thereby changing the shear angle between the baffle 341 and the corresponding baffle rod 24, so that the baffle 341 moves to a greater distance from the baffle rod 24, thereby increasing the rotation angle each time, and at the same time, the shear angle can be accurately controlled by the reading of the pointer 113 on the scale plate 114, so as to achieve a fine adjustment of the volume of the first chamber 100, so that the adjustment of the volume of the first chamber 100 More accurate and efficient, ensuring the operational stability and reliability of the entire system; after the adjustment is completed, only the rotating shell 112 needs to be loosened, and the center rod 5 can be reset under the rebound action of the reset spring 52. At this time, the center rotating cylinder 34 re-establishes the connection with the corresponding first inner cylinder 31, the second inner cylinder 32 and the plurality of third inner cylinders 33, and then the spindle motor 12 is started again, which can re-drive the first inner cylinder 31 and the plurality of third inner cylinders 33 to work again, and evenly unfold the third isolation plate 42, thereby ensuring the precise control of the volume of the first chamber 100; through the above design, the operational convenience of the system is improved. In actual applications, the mechanism demonstrates excellent performance and high adaptability, providing reliable guarantee for volume regulation under various complex working conditions.
[0046] A first groove body 312 is provided in the middle of the first inner cylinder 31, the second inner cylinder 32 and the plurality of third inner cylinders 33. A connecting disk 342 is slidably sleeved on the outside of the plurality of center rotating cylinders 34. The plurality of connecting disks 342 are respectively located in the plurality of first groove bodies 312. The lower end surface of the connecting disk 342 is evenly and spaced apart with a plurality of grooves 343. The lower end surface of the first groove body 312 is fixedly provided with a plurality of bosses 313. The plurality of bosses 313 are respectively located in the plurality of grooves 343. The connecting disk 342 penetrates the center rotating cylinder 34 and is rotatably connected to the outer surface of the center rod 5.
[0047] An annular groove 344 is provided in the middle of the upper end surface of the central rotating cylinder 34, and a plurality of slots 345 are evenly and spaced apart on the lower end surface of the central rotating cylinder 34. A plurality of slide plates 51 are fixedly provided on the outer surface of the central rod 5 in cooperation with the plurality of annular grooves 344, and the slide plates 51 can be snapped into the annular grooves 344, and the slide plates 51 are annular as a whole.
[0048] When the rotating shell 112 is pulled upward to drive the center rod 5 to move upward, the upper half of the slide plate 51 slides from the annular groove 344 to the clamping groove 345, so that the center rotating cylinder 34 is fixedly connected to the center rod 5. Rotating the center rod 5 can drive the baffle 341 to rotate and adjust the angle. When the center rod 5 rises, the connecting plate 342 will slide and rise along the inner wall of the first groove body 312. At this time, the groove 343 and the boss 313 lose contact, that is, the center rotating cylinder 34 loses connection with the third inner cylinder 33, which can change the relative angle between the baffle 341 and the blocking step 311, thereby achieving more precise angle adjustment; when the center rod 5 is reset, the connecting plate 342 descends, the groove 343 is re-engaged with the boss 313, and the slide plate 51 will also slide into the clamping groove 345. At this time, the center rotating cylinder 34 and the corresponding third inner cylinder 33 are re-established with a stable connection to ensure that all components work together.
[0049] The second isolation plate 41 and the third isolation plates 42 are provided with through grooves on the top and bottom, and elastic sheets 401 are fixedly installed in the through grooves. Blocks 402 for blocking the deformation direction of the elastic sheet 401 so that the liquid can only pass through the through groove in one direction are fixedly installed on the side walls of the upper through groove away from the isolation cylinder 2 and the side walls of the lower through groove close to the isolation cylinder 2.
[0050] In the initial state, the volume of the first chamber 100 is zero, and the volume of the second chamber 200 reaches the maximum. When the first rotating drum 21 drives the second isolation plate 41 and the third isolation plate 42 to move relative to each other, the volume of the second chamber 200 gradually decreases, and the volume of the first chamber 100 increases accordingly. At this time, the liquid in the second chamber 200 will push the elastic sheet 401 below to undergo elastic deformation, and the liquid in the second chamber 200 will pass through the through groove below into the first chamber 100. Then, as the third isolation plate 42 and the second isolation plate 41 gradually unfold, the liquid will flow between the first chambers 100, and finally the liquid in the first chambers 100 will be evenly distributed to ensure the pressure stability of the system. As the second isolation plate 41 and the third isolation plate 42 are further expanded, the liquid in the first chamber 100 will flow between the first chambers 100, and the pressure in the first chamber 100 will be evenly distributed to ensure the pressure stability of the system. The volume of the second chamber 200 continues to decrease until it reaches a preset minimum value, at which point the volume of several first chambers 100 reaches a maximum, and then the spindle motor 12 is controlled to reverse to drive the second isolation plate 41 and the third isolation plate 42 to gradually reset, so that the liquid in the first chamber 100 is compressed to generate a positive pressure, thereby pushing the elastic sheet 401 above to undergo elastic deformation. At this time, the volume of the second chamber 200 gradually increases, and the volume of the first chamber 100 decreases accordingly, and the liquid enters the second chamber 200 from the first chamber 100. Then, by controlling the rotation speed and direction of the spindle motor 12, the liquid flow between the second chamber 200 and the first chamber 100 can be accurately adjusted to achieve regulation of the number of first chambers 100, and cyclic stirring and mixing of the liquid can also be achieved.
[0051] Working principle and process:
[0052] During actual operation, the second isolation plate 41 and several third isolation plates 42 can be driven to rotate by rotating the isolation cylinder 2, and the first isolation plate 4 will not be driven to rotate. The rotation of the isolation cylinder 2 can drive the first isolation plate 4 and several third isolation plates 42 to be evenly distributed and spread out. At this time, the second isolation plate 41 and several third isolation plates 42 divide the inner cavity of the mixing shell 1 into a second chamber 200 and several evenly distributed first chambers 100, so that the raw materials are fully mixed in each chamber. By controlling the rotation angle of the isolation cylinder 2, the number of the third isolation plates 42 to be spread out can be controlled, and then the number of the first chambers 100 can be controlled, thereby realizing the precise mixing of different raw materials and achieving an ideal mixing result. The mixing effect is achieved by opening the feed door 111 to add raw materials into the first chamber 100 and the second chamber 200. After mixing, the mixed drink is discharged through the discharge pipe 13. At the same time, by adjusting the rotation angle of the isolation cylinder 2, not only the number of the first chambers 100 can be controlled, but also the volume of the second chamber 200 can be adjusted. When the spindle motor 12 rotates forward, the liquid in the second chamber 200 can flow into a number of first chambers 100, and the liquid flows into the first chamber 100 from the through groove below. When the spindle motor 12 rotates reversely, the liquid in the first chamber 100 will return to the second chamber 200 from the through groove above, thereby realizing the circulating stirring and mixing of the liquid.
Claims
1. A multi-chamber mixing device for beverage processing, comprising a mixing housing (1), characterized in that: A cover body (11) is fixedly arranged at the top end of the mixing shell (1); an isolating cylinder (2) is rotatably arranged in the middle of the inner cavity of the mixing shell (1); a first isolating plate (4), a second isolating plate (41) and a plurality of third isolating plates (42) are fixedly arranged on the outer surface of the isolating cylinder (2) in a radial direction; the plurality of third isolating plates (42) are all located between the first isolating plate (4) and the second isolating plate (41); the first isolating plate (4) and the second isolating plate (41) separate the inner cavity of the mixing shell (1) into a second chamber (200) and a third chamber; the third chamber is separated into a plurality of first chambers (100) by the plurality of third isolating plates (42); The isolation cylinder (2) comprises a first rotating cylinder (21) rotatably arranged at the top end of the inner cavity of the mixing shell (1) and a second rotating cylinder (22) fixedly arranged at the bottom end of the inner cavity of the mixing shell (1); a plurality of third rotating cylinders (23) are rotatably arranged between the first rotating cylinder (21) and the second rotating cylinder (22) in cooperation with a plurality of third isolation plates (42); the first isolation plate (4) is fixedly connected to the outer surface of the second rotating cylinder (22); the second isolation plate (41) is fixedly connected to the outer surface of the first rotating cylinder (21); and a plurality of the third isolation plates (42) are respectively fixedly connected to the outer surfaces of a plurality of the third rotating cylinders (23); A center matching cylinder (3) for changing the rotation angle of the second isolation plate (41) and the third isolation plate (42) is arranged inside the isolation cylinder (2); a center rod (5) is arranged through the middle of the center matching cylinder (3); the center matching cylinder (3) comprises a first inner cylinder (31) rotatably arranged at the top and a second inner cylinder (32) fixedly arranged at the bottom; a plurality of third rotating cylinders (23) are rotatably arranged between the first inner cylinder (31) and the second inner cylinder (32); a blocking rod (24) is fixedly arranged on the inner walls of the first rotating cylinder (21), the second rotating cylinder (22) and the plurality of third rotating cylinders (23); the first rotating cylinder (21) is fixedly connected to the first inner cylinder (31) via the blocking rod (24); the second rotating cylinder (22) is fixedly connected to the second inner cylinder (32) via the blocking rod (24); and a plurality of the third rotating cylinders (23) are fixedly connected to the plurality of third inner cylinders (33) via the blocking rod (24).
2. The multi-chamber mixing device for beverage processing according to claim 1, characterized in that: A spacing groove (301) is provided between the first inner cylinder (31) and the third inner cylinder (33) at the top, between adjacent third inner cylinders (33), and between the third inner cylinder (33) at the bottom and the second inner cylinder (32); a blocking rod (24) on the inner wall of the first rotating cylinder (21) is fixedly connected to the outer surface of the first inner cylinder (31); and the blocking rods (24) on the inner walls of the second rotating cylinder (22) and a plurality of third rotating cylinders (23) respectively cooperate to extend to a plurality of spacing grooves (301). A central rotating cylinder (34) is rotatably arranged inside the first inner cylinder (31), the second inner cylinder (32) and the plurality of third inner cylinders (33); baffles (341) are fixedly arranged on the outer walls of the plurality of central rotating cylinders (34) in cooperation with the plurality of spacing grooves (301); the plurality of baffles (341) extend into the plurality of spacing grooves (301) respectively; and a blocking step (311) is integrally formed on the upper end surfaces of the second inner cylinder (32) and the plurality of third inner cylinders (33).
3. The multi-chamber mixing device for beverage processing according to claim 2, characterized in that: A first groove body (312) is provided in the middle of the first inner cylinder (31), the second inner cylinder (32) and the plurality of third inner cylinders (33); a connecting disk (342) is slidably sleeved on the outside of the plurality of central rotating cylinders (34); the plurality of connecting disks (342) are respectively located in the plurality of first groove bodies (312); a plurality of grooves (343) are evenly and spaced apart on the lower end surface of the connecting disk (342); a plurality of bosses (313) are fixedly provided on the lower end surface of the first groove body (312); the plurality of bosses (313) are respectively located in the plurality of grooves (343); the connecting disk (342) penetrates the central rotating cylinder (34) and is rotatably connected to the outer surface of the central rod (5).
4. The multi-chamber mixing device for beverage processing according to claim 2, characterized in that: An annular groove (344) is provided in the middle of the upper end surface of the central rotating cylinder (34), a plurality of slotting grooves (345) are evenly and spaced apart on the lower end surface of the central rotating cylinder (34), a plurality of slide plates (51) are fixedly provided on the outer surface of the central rod (5) in cooperation with the plurality of annular grooves (344), and the slide plates (51) can be snap-fitted into the annular grooves (344), and the slide plates (51) are annular in shape as a whole.
5. The multi-chamber mixing device for beverage processing according to claim 1, characterized in that: The second isolation plate (41) and the plurality of third isolation plates (42) are provided with through grooves at the top and bottom, and elastic sheets (401) are fixedly arranged in the through grooves. Blocks (402) for blocking the deformation direction of the elastic sheet (401) so that liquid can only pass through the through groove in one direction are fixedly arranged on the side walls of the upper through groove away from the isolation cylinder (2) and the side walls of the lower through groove close to the isolation cylinder (2).
6. The multi-chamber mixing device for beverage processing according to claim 1, characterized in that: A rotating shell (112) is movably provided in the middle of the upper end surface of the cover body (11); the upper end surface of the center rod (5) passes through the cover body (11) and is fixedly connected to the lower end surface of the rotating shell (112); a scale plate (114) is fixedly provided on the upper end surface of the cover body (11); and a pointer (113) is fixedly provided on the side wall of the rotating shell (112) in coordination with the scale plate (114).
7. The multi-chamber mixing device for beverage processing according to claim 1, characterized in that: The upper end surface of the cover body (11) is evenly and detachably provided with a plurality of feed doors (111), and the lower end surface of the mixing shell (1) is fixedly provided with a liquid discharge pipe (13) for liquid discharge.
8. The multi-chamber mixing device for beverage processing according to claim 1, characterized in that: A gear (115) is rotatably arranged in the middle of the upper end surface of the cover body (11), the gear (115) is fixedly connected to the first inner cylinder (31), and a spindle motor (12) is fixedly arranged on the top of the cover body (11), the driving end of the spindle motor (12) is connected to the gear (115) via a chain.
9. The multi-chamber mixing device for beverage processing according to claim 1, characterized in that: The bottom end of the central rod (5) is slidably connected to the bottom end of the inner cavity of the mixing shell (1), and a return spring (52) is fixedly connected between the central rod (5) and the bottom end of the inner cavity of the mixing shell (1).
Citation Information
Patent Citations
Multi-cavity mixing device for beverage processing
CN119034590A
Concrete stirring equipment with good stirring effect
CN215903752U