Raw material cleaning and impurity removing equipment for jet type beverage processing
By using a device that adaptively adjusts the intensity and angle of the water spray, the problem of traditional cleaning devices being unable to dynamically adjust is solved, enabling efficient and thorough cleaning of oat raw materials and ensuring beverage quality and safety.
Patent Information
- Application Number
- CN202511630874.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-10
- Publication Date
- 2025-12-12
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Traditional cleaning devices cannot dynamically adjust the water spray intensity according to the batch size of raw materials, resulting in damage to raw materials or incomplete cleaning when cleaning small quantities of raw materials, affecting the quality and efficiency of beverages.
The device employs an adaptive spray intensity adjustment mechanism. By adjusting the piston rod and hydraulic system based on the weight of the oats, combined with a motor-driven reciprocating screw and eccentric wheel mechanism, the device enables the spray head to swing and vibrate. In conjunction with a negative pressure mechanism, it dynamically adjusts the water flow intensity and angle to improve the cleaning effect.
It enables automatic adjustment of water spray intensity and angle based on the amount of raw materials, reducing damage to raw materials, improving cleaning efficiency and thoroughness, enhancing the removal of impurities, and ensuring the hygiene and quality of beverages.
Smart Images

Figure CN121103756A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of food cleaning equipment, and particularly relates to a raw material cleaning and impurity removing device for jet beverage processing. BACKGROUND
[0002] In the field of food processing, especially in the production process of jet beverage, the cleaning and impurity removing of raw materials is one of the key links to ensure the hygiene and quality of the final product. During the harvesting, transportation and storage of oat and other cereal raw materials, dust, sand, debris and other impurities often adhere to the surface. If not thoroughly cleaned, it will not only affect the taste and appearance of the beverage, but also may introduce microbial contamination, posing a potential risk to consumer health.
[0003] However, the water jet intensity of the spray head of the traditional cleaning device is usually fixed and cannot be dynamically adjusted according to the batch quantity of the raw materials to be cleaned. When cleaning a small amount of raw materials, the water flow intensity is too large, which can easily cause damage to the surface of the raw materials or even break them, affecting the integrity of the raw materials and subsequent processing performance. When processing a large amount of raw materials, if the water flow intensity is insufficient, it is difficult to effectively penetrate the raw material layer, resulting in incomplete cleaning, low efficiency, and some impurities remaining on the surface of the raw materials.
[0004] Therefore, the present application provides a raw material cleaning and impurity removing device for jet beverage processing to solve the above problems and improve the practical value. SUMMARY
[0005] The present application aims to solve the problems in the prior art and provides a raw material cleaning and impurity removing device for jet beverage processing.
[0006] To achieve the above-mentioned purpose, the present application adopts the following technical scheme: a raw material cleaning and impurity removing device for jet beverage processing, comprising a cleaning tank, a filter plate is slidably arranged inside the cleaning tank, a reciprocating screw rod driven by a motor is installed at the top end of the cleaning tank, a sliding block is connected to the surface of the reciprocating screw rod through a ball nut pair, a shunt pipe is rotatably arranged on the side wall of the sliding block, and a plurality of spray heads are communicated at the bottom end of the shunt pipe. A swing mechanism is arranged above the shunt pipe, the swing mechanism comprises a swing plate arranged below the spray head, and a driving assembly is arranged above the shunt pipe to drive the swing plate to swing; An adjusting mechanism is arranged on the side wall of the spray head, the adjusting mechanism comprises a valve core rotatably arranged on the inner wall of the spray head, and a transmission assembly is arranged on the side wall of the spray head to drive the valve core to rotate; The lower side of the filter plate is provided with a vibration mechanism, the vibration mechanism comprises a vertical pipe fixed on one side of the inner wall of the cleaning box, a spring rod is slidably arranged in the vertical pipe, a rotating shaft B is rotatably arranged in the cleaning box, and a cam is arranged on the outer wall of the rotating shaft B and located below the spring rod; The lower side of the vibration mechanism is provided with a negative pressure mechanism, the negative pressure mechanism comprises an inclined plate slidably arranged in the cleaning box, a U-shaped pipe is welded to the bottom end of the cleaning box, a rubber rod is slidably arranged in the U-shaped pipe, one end of the rubber rod is fixedly connected with the bottom end of the inclined plate, and the other end of the rubber rod is in sliding connection with the cam.
[0007] Preferably, the driving assembly comprises a rack A mounted on the upper inner wall of the cleaning box, the top end of the sliding block is fixedly provided with a sliding rail, the surface of the sliding rail is slidably provided with a T-shaped plate, the top end of the T-shaped plate is slidably provided with an eccentric wheel in meshing connection with the rack A, the surface of the shunt pipe is fixedly provided with a rotating rod, and the T-shaped plate and the rotating rod are hingedly connected through a pin shaft.
[0008] Preferably, the transmission assembly comprises a rotating shaft A fixedly arranged on the side wall of the valve core, the bottom end of the cleaning box is provided with a liquid storage cavity, a piston rod is slidably arranged in the liquid storage cavity, the top end of the piston rod is fixedly connected with the bottom end of the filter plate, the side wall of the nozzle is fixedly provided with a shell, the inside of the shell is fixedly provided with a sleeve, the inside of the sleeve is slidably provided with a sliding rod, the top end of the sliding rod is fixedly provided with a rack B, one end of the rotating shaft A is fixedly provided with a gear in meshing connection with the rack B, and the liquid storage cavity and the sleeve are connected in communication through an oil conveying pipe.
[0009] Preferably, the inside of the sleeve is provided with a first spring, the bottom end of the first spring is fixedly connected with the bottom end of the sliding rod, and the top end of the first spring is fixedly connected with the top end of the sleeve.
[0010] Preferably, the inside of the cleaning box is provided with a plurality of groups of second springs, the top ends of the plurality of groups of second springs are fixedly connected with the bottom end of the filter plate, and the other ends of the plurality of groups of second springs are fixedly connected with the inner wall of the cleaning box.
[0011] Preferably, the transmission wheel is arranged on the reciprocating wire rod and the rotating shaft B, and two groups of transmission wheels are drivingly connected with a pull belt.
[0012] Preferably, one end of the shunt pipe is connected with a water inlet pipe, the end of the water inlet pipe is connected with a high-pressure water pump, and the side wall of the cleaning box is connected with a drain pipe.
[0013] Preferably, the surface of the eccentric wheel is provided with teeth, the inner wall of the sliding rail is provided with a limiting groove matched with the T-shaped plate, and the inside of the limiting groove is coated with lubricating grease.
[0014] Compared with the prior art, the present application has the following advantages: 1. The oat raw material self-weight will press the filter plate and compress the second spring, the filter plate drives the piston rod to slide downward in the cleaning box, the piston at one end of the piston rod extrudes the hydraulic oil in the liquid storage cavity, the hydraulic oil enters the sleeve through the oil pipe, and then pushes the slide rod to move upward along the sleeve, the slide rod drives the rack B to move upward synchronously, the rack B drives the gear to rotate through meshing, and the gear drives a plurality of valve cores to rotate in the nozzle, so that the opening and closing size of the valve core through hole is changed, so that the purpose of self-adapting adjustment of the nozzle water spray intensity according to the oat batch can be achieved, so that when the oat quantity is small, the water spray intensity will be reduced accordingly, so as to reduce the impact of water flow on oats and reduce oat damage, and when the oat quantity is large, the water spray intensity will be enhanced, the water flow speed is increased and stronger impact force is generated, so that the cleaning efficiency is improved, and automatic adjustment according to the raw material quantity can be realized without manual intervention, balancing the protection of raw materials and cleaning effect.
[0015] 2. The motor drives the reciprocating screw rod to rotate, so that the sliding block moves in the horizontal direction, and the sliding block drives the eccentric wheel to move synchronously in the moving process. The eccentric wheel rotates along the surface of the rack A, and the eccentric wheel drives the T-shaped plate to reciprocate along the surface of the slide rail through the deviation structure at the bottom of the eccentric wheel, and then the T-shaped plate drives the flow divider to rotate through the rotating rod, so that the flow divider drives the nozzle to swing slightly, and the impact angle of the water flow is changed constantly, so that the impact angle of the water flow is changed through the reciprocating swing of the nozzle, and the oats can be acted on more comprehensively, and the dispersion effect on the oat particles is further improved, so that the oats are more evenly contacted with the water flow in the cleaning process, thereby improving the thoroughness of cleaning, avoiding the situation that part of the oats is not cleaned due to fixed water flow angle, and enhancing the overall cleaning effect.
[0016] 3. When the reciprocating screw rod rotates, the reciprocating screw rod drives the rotating shaft B to rotate synchronously, and the rotating shaft B drives the cam sleeved on the outer wall thereof to rotate together. With the rotation of the cam, the protruding part of the cam will periodically lift the spring rod located above, so that the spring rod slides upward in the vertical pipe. When the protruding part of the cam rotates away, the spring rod will reset and slide downward under the action of its own elasticity. The spring rod will continuously generate upward impact force on the filter plate, so that high-frequency impact force can be generated through the continuous vibration of the filter plate, effectively breaking the adhesion between impurities and oats, and combining the dispersion effect of the swing plate, so that small-volume impurities are more easily screened out through the filter holes of the filter plate, thereby improving the purity of oat cleaning.
[0017] 4、The present application periodically pushes the rubber rod along the inside of the U-shaped tube through the sliding fit of the cam and the rubber rod, and the rubber rod in turn drives the inclined plate to slide synchronously inside the cleaning box. With the reciprocating movement of the inclined plate and the rubber rod, the internal space of the cleaning box changes periodically, thereby generating intermittent micro-negative pressure below the filter plate. Under the action of negative pressure, a short-term air flow and water flow adsorption force is formed at the filter hole on the surface of the filter plate, which can adsorb and strip the fine dust, broken ends and other light impurities attached to the surface of the oat, accelerate the passage of the oat through the filter hole, and at the same time, the negative pressure can assist the water flow to suck out the small particle impurities from the filter hole, avoiding the blockage of the filter hole by impurities, and further improving the impurity screening efficiency. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 is a schematic diagram of the overall structure of the present application; Figure 2 is a schematic diagram of part of the structure of the present application; Figure 3 is a schematic diagram of part of the structure of the present application; Figure 4 is a schematic diagram of part of the structure of the present application; Figure 3 is an enlarged structural schematic diagram of part A of the present application; Figure 5 is a schematic diagram of the cross-sectional structure of the present application; Figure 6 is a schematic diagram of part of the structure of the present application; Figure 5 is an enlarged structural schematic diagram of part B of the present application; Figure 7 is a schematic diagram of part of the structure of the present application; Figure 8 is a schematic diagram of part of the structure of the present application; Figure 7 is an enlarged structural schematic diagram of part C of the present application.
[0019] LEGEND: 1, cleaning box; 2, filter plate; 3, reciprocating screw rod; 4, sliding block; 5, shunt pipe; 6, spray head; 7, swing mechanism; 71, swing plate; 72, rack A; 73, sliding rail; 74, T-shaped plate; 75, eccentric wheel; 76, rotating rod; 8, adjusting mechanism; 81, valve core; 82, rotating shaft A; 83, liquid storage cavity; 84, piston rod; 85, shell; 86, sleeve; 87, sliding rod; 88, rack B; 89, gear; 9, vibration mechanism; 91, vertical pipe; 92, spring rod; 93, rotating shaft B; 94, cam; 95, transmission wheel; 96, pull belt; 10, negative pressure mechanism; 101, inclined plate; 102, U-shaped tube; 103, rubber rod. DETAILED DESCRIPTION
[0020] In order to make the purposes, technical solutions and advantages of the embodiments of the present application clearer, the technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application. Therefore, the following detailed description of the embodiments of the present application provided in the drawings is not intended to limit the scope of the claimed present application, but only represents selected embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present application.
[0021] Referring to Figures 1 to 8 As shown in the drawings, the present application provides a raw material cleaning and impurity removing device for jet beverage processing, which comprises a cleaning tank 1, a filter plate 2 is slidably arranged inside the cleaning tank 1, a reciprocating screw rod 3 driven by a motor is installed at the top end of the cleaning tank 1, a sliding block 4 is connected to the surface of the reciprocating screw rod 3 through a ball nut pair, a shunt pipe 5 is rotatably arranged on the side wall of the sliding block 4, and a plurality of nozzles 6 are communicated to the bottom end of the shunt pipe 5; A swing mechanism 7 is arranged above the shunt pipe 5, and the swing mechanism 7 comprises a swing plate 71 installed below the nozzle 6, and a driving assembly for driving the swing plate 71 to swing is arranged above the shunt pipe 5; It should be noted that after starting the high-pressure water pump, water flows into the shunt pipe 5 through the water inlet pipe and is sprayed out of the nozzle 6 to form a water column, which washes the oats and disperses the particles by water impact, and at the same time, the motor is started to drive the reciprocating screw rod 3 to rotate, so that the sliding block 4 moves in the horizontal direction. The eccentric wheel 75 moves synchronously during the movement of the sliding block 4. Since the eccentric wheel 75 is meshed with the rack A72, the eccentric wheel 75 will rotate along the surface of the rack A72, and the eccentric wheel 75 will drive the T-shaped plate 74 to reciprocate along the surface of the slide rail 73 by means of the deflection structure at the bottom of the eccentric wheel 75. In turn, the T-shaped plate 74 drives the shunt pipe 5 to rotate through the rotating rod 76, so that the shunt pipe 5 drives the nozzle 6 to swing slightly and reciprocally, which constantly changes the impact angle of the water flow, so that the reciprocating swing of the nozzle 6 changes the impact angle of the water flow, which can more comprehensively act on the oats, further improve the dispersion effect of the oat particles, and make the oats more evenly contact with the water flow during the cleaning process, thereby improving the thoroughness of cleaning, avoiding the situation that some oats are not cleaned due to fixed water flow angle, and enhancing the overall cleaning effect.
[0022] An adjusting mechanism 8 is arranged on the side wall of the nozzle 6, and the adjusting mechanism 8 comprises a valve core 81 rotatably arranged on the inner wall of the nozzle 6, and a transmission assembly for driving the valve core 81 to rotate is arranged on the side wall of the nozzle 6; It should be noted that when the oat raw material is placed on the surface of the filter plate 2 inside the washing tank 1, the weight of the raw material will press down on the filter plate 2 and compress the second spring, causing the filter plate 2 to drive the piston rod 84 to slide downward inside the washing tank 1. The piston at one end of the piston rod 84 will then squeeze the hydraulic oil in the liquid storage chamber 83. The hydraulic oil enters the sleeve 86 through the oil supply pipe, which in turn pushes the slide rod 87 to move upward along the sleeve 86. The slide rod 87 drives the rack B88 to move upward synchronously. The rack B88 drives the gear 89 to rotate through meshing. The gear 89 then drives multiple sets of valve cores 81 to rotate inside the nozzle 6. The rotation of valve core 81 causes its through hole to overlap with the inner wall of nozzle 6, thereby changing the opening and closing size of the through hole of valve core 81. This allows for adaptive adjustment of the water spray intensity of nozzle 6 according to the batch size of oats. When the amount of oats is small, the water spray intensity will be reduced accordingly to reduce the impact of water flow on oats and reduce oat damage. When the amount of oats is large, the water spray intensity will be increased, accelerating the water flow speed and generating a stronger impact force, thereby improving cleaning efficiency. Automatic adjustment based on the amount of raw materials can be achieved without manual intervention, balancing raw material protection and cleaning effect.
[0023] A vibration mechanism 9 is provided below the filter plate 2. The vibration mechanism 9 includes a vertical tube 91 fixed to one side of the inner wall of the cleaning tank 1. A spring rod 92 slides inside the vertical tube 91. A rotating shaft B93 is rotatably provided inside the cleaning tank 1. A cam 94 located below the spring rod 92 is sleeved on the outer wall of the rotating shaft B93. It should be noted that when the reciprocating screw 3 rotates, through the transmission action of the transmission wheel 95 and the belt 96, the reciprocating screw 3 will drive the rotating shaft B93 to rotate synchronously. The rotating shaft B93 will then drive the cam 94 sleeved on its outer wall to rotate together. As the cam 94 rotates, its protruding part will periodically push up the spring rod 92 located above, causing the spring rod 92 to slide upward along the inside of the vertical tube 91. When the protruding part of the cam 94 rotates away, the spring rod 92 will reset under its own elastic action and slide downward. This reciprocating motion will continuously generate an upward impact force on the filter plate 2. Combined with the elastic extension and contraction of the second spring below the filter plate 2, it will jointly drive the filter plate 2 to generate continuous vibration. Thus, the continuous vibration of the filter plate 2 can generate a high-frequency impact force, which can effectively break the adhesion between impurities and oats. At the same time, combined with the dispersing effect of the swing plate 71, it makes it easier for small-volume impurities to be screened out through the filter holes of the filter plate 2, thereby improving the purity of oat washing.
[0024] Below the vibration mechanism 9 is a negative pressure mechanism 10. The negative pressure mechanism 10 includes an inclined plate 101 that slides inside the cleaning tank 1. A U-shaped tube 102 is welded to the bottom of the inside of the cleaning tank 1. A rubber rod 103 slides inside the U-shaped tube 102. One end of the rubber rod 103 is fixedly connected to the bottom of the inclined plate 101, and the other end of the rubber rod 103 is slidably engaged with the cam 94.
[0025] It should be noted that when the rotating shaft B93 drives the cam 94 to rotate, the cam 94 slides in conjunction with the rubber rod 103, periodically pushing the rubber rod 103 to slide along the inside of the U-shaped tube 102. The rubber rod 103 then drives the inclined plate 101 to slide synchronously inside the washing tank 1. With the reciprocating motion of the inclined plate 101 and the rubber rod 103, the internal space of the washing tank 1 changes periodically, thereby generating intermittent micro-negative pressure below the filter plate 2. Under the action of negative pressure, a brief airflow and water flow adsorption force will be formed at the filter holes on the surface of the filter plate 2, which can adsorb and peel off the fine dust, fragments and other light impurities attached to the surface of the oats from the surface of the oats, accelerating their passage through the filter holes. At the same time, for small particulate impurities stuck in the filter holes, the negative pressure can assist the water flow to suck them out of the filter holes, avoiding impurities clogging the filter holes and further improving the impurity screening efficiency.
[0026] See Figures 1 to 8 As shown, the drive assembly includes a rack A72 mounted on the inner wall above the cleaning tank 1, a slide rail 73 fixed to the top of the slider 4, a T-shaped plate 74 sliding on the surface of the slide rail 73, an eccentric wheel 75 that meshes with the rack A72 sliding on the top of the T-shaped plate 74, and a rotating rod 76 fixedly sleeved on the surface of the diversion pipe 5. The T-shaped plate 74 and the rotating rod 76 are hinged by a pin.
[0027] See Figures 1 to 8 As shown, the transmission assembly includes a rotating shaft A82 fixed to the side wall of the valve core 81, a liquid storage chamber 83 opened at the bottom of the cleaning tank 1, a piston rod 84 sliding inside the liquid storage chamber 83, the top end of the piston rod 84 being fixedly connected to the bottom end of the filter plate 2, a housing 85 fixed to the side wall of the nozzle 6, a sleeve 86 fixed inside the housing 85, a sliding rod 87 sliding inside the sleeve 86, a rack B88 fixed to the top end of the sliding rod 87, a gear 89 meshing with the rack B88 fixed to one end of the rotating shaft A82, and an oil supply pipe connecting the liquid storage chamber 83 and the sleeve 86.
[0028] See Figures 1 to 8 As shown, a first spring is provided inside the sleeve 86. The bottom end of the first spring is fixedly connected to the bottom end of the slide rod 87, and the top end of the first spring is fixedly connected to the top end of the sleeve 86.
[0029] See Figures 1 to 8 As shown, the cleaning tank 1 is equipped with multiple sets of second springs. The top ends of the multiple sets of second springs are fixedly connected to the bottom end of the filter plate 2, and the other ends of the multiple sets of second springs are fixedly connected to the inner wall of the cleaning tank 1.
[0030] See Figures 1 to 8 As shown, a transmission wheel 95 is sleeved between the reciprocating lead screw 3 and the rotating shaft B93, and a belt 96 is connected between the two sets of transmission wheels 95.
[0031] See Figures 1 to 8As shown, one end of the diversion pipe 5 is connected to a water inlet pipe, and the end of the water inlet pipe is connected to a high-pressure water pump. The side wall of the cleaning tank 1 is connected to a drain pipe.
[0032] See Figures 1 to 8 As shown, the surface of the eccentric wheel 75 is provided with teeth, and the inner wall of the slide rail 73 is provided with a limiting groove that matches the T-shaped plate 74. The inside of the limiting groove is coated with grease.
[0033] Working Principle: When the oat raw materials need to be cleaned, when the oat raw materials are placed on the surface of the filter plate 2 in the cleaning tank 1, the weight of the raw materials will press down on the filter plate 2 and compress the second spring, causing the filter plate 2 to drive the piston rod 84 to slide downward inside the cleaning tank 1. The piston at one end of the piston rod 84 will then squeeze the hydraulic oil in the liquid storage chamber 83. The hydraulic oil enters the sleeve 86 through the oil supply pipe, which in turn pushes the slide rod 87 to move upward along the sleeve 86. The slide rod 87 drives the rack B88 to move upward synchronously. The rack B88 drives the gear 89 to rotate through meshing. The gear 89 then drives multiple sets of valve cores 81 to rotate inside the nozzle 6. The rotation of the valve core 81 causes its through hole to overlap with the inner wall of the nozzle 6, thereby changing the opening and closing size of the through hole of the valve core 81. This achieves the purpose of adaptively adjusting the water spray intensity of the nozzle 6 according to the batch of oats. Then, after the high-pressure water pump is started, the water flows through the inlet pipe into the diversion pipe 5 and is sprayed out through the nozzle 6 to form a water column, which washes the oats and uses the water flow to impact and disperse the particles. At the same time, the motor is started to drive the reciprocating screw 3 to rotate, so that the slider 4 moves in the horizontal direction. During the movement of the slider 4, the eccentric wheel 75 moves synchronously. Since the eccentric wheel 75 meshes with the rack A72, the eccentric wheel 75 will rotate along the surface of the rack A72. The eccentric wheel 75 drives the T-shaped plate 74 to move back and forth along the surface of the slide rail 73 by means of the bias structure at its bottom. Then, the T-shaped plate 74 drives the diversion pipe 5 to rotate through the rotating rod 76, so that the diversion pipe 5 drives the nozzle 6 to swing back and forth in a small amplitude, constantly changing the impact angle of the water flow. When the reciprocating screw 3 rotates, through the transmission action of the transmission wheel 95 and the pull belt 96, the reciprocating screw 3 will drive the rotating shaft B93 to rotate synchronously. The rotating shaft B93 will then drive the cam 94 sleeved on its outer wall to rotate together. As the cam 94 rotates, its protruding part will periodically push up the spring rod 92 located above, causing the spring rod 92 to slide upward along the inside of the vertical tube 91. When the protruding part of the cam 94 rotates away, the spring rod 92 will reset under its own elastic action and slide downward. In this reciprocating motion, the spring rod 92 will continuously generate an upward impact force on the filter plate 2. Combined with the elastic extension and contraction of the second spring below the filter plate 2, it will jointly drive the filter plate 2 to generate continuous vibration. When the rotating shaft B93 drives the cam 94 to rotate, the cam 94 slides in conjunction with the rubber rod 103, periodically pushing the rubber rod 103 to slide along the inside of the U-shaped tube 102. The rubber rod 103 then drives the inclined plate 101 to slide synchronously inside the washing tank 1. With the reciprocating motion of the inclined plate 101 and the rubber rod 103, the internal space of the washing tank 1 changes periodically, thereby generating intermittent micro-negative pressure below the filter plate 2. Under the action of negative pressure, a brief airflow and water flow adsorption force will be formed at the filter holes on the surface of the filter plate 2, which can adsorb and peel off the fine dust, fragments and other light impurities attached to the surface of the oats from the surface of the oats, accelerating their passage through the filter holes. At the same time, for small particulate impurities stuck in the filter holes, the negative pressure can assist the water flow to suck them out of the filter holes, avoiding impurities clogging the filter holes and further improving the impurity screening efficiency.
[0034] Finally, it should be noted that the above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A raw material cleaning and impurity removal device for jet-type beverage processing, comprising a cleaning tank (1), characterized in that: The cleaning tank (1) is equipped with a filter plate (2) that slides inside. The top of the cleaning tank (1) is equipped with a reciprocating screw (3) driven by a motor. The surface of the reciprocating screw (3) is connected to a slider (4) through a ball nut pair. The side wall of the slider (4) is provided with a diverter pipe (5). The bottom end of the diverter pipe (5) is connected to multiple sets of nozzles (6). A swing mechanism (7) is provided above the diversion pipe (5). The swing mechanism (7) includes a swing plate (71) installed below the nozzle (6). A drive assembly for driving the swing plate (71) to swing is provided above the diversion pipe (5). The nozzle (6) has an adjustment mechanism (8) on its side wall. The adjustment mechanism (8) includes a valve core (81) that is rotatably disposed on the inner wall of the nozzle (6). The nozzle (6) has a transmission assembly that drives the valve core (81) to rotate on its side wall. The filter plate (2) is provided with a vibration mechanism (9) below it. The vibration mechanism (9) includes a vertical tube (91) fixed to one side of the inner wall of the cleaning tank (1). A spring rod (92) slides inside the vertical tube (91). A rotating shaft B (93) is rotatably provided inside the cleaning tank (1). A cam (94) located below the spring rod (92) is sleeved on the outer wall of the rotating shaft B (93). Below the vibration mechanism (9) is a negative pressure mechanism (10). The negative pressure mechanism (10) includes an inclined plate (101) that slides inside the cleaning tank (1). A U-shaped tube (102) is welded to the bottom of the cleaning tank (1). A rubber rod (103) slides inside the U-shaped tube (102). One end of the rubber rod (103) is fixedly connected to the bottom of the inclined plate (101), and the other end of the rubber rod (103) slides in cooperation with the cam (94).
2. The raw material cleaning and impurity removal equipment for jet-type beverage processing according to claim 1, characterized in that: The drive assembly includes a rack A (72) mounted on the inner wall above the cleaning tank (1), a slide rail (73) fixed at the top of the slider (4), a T-shaped plate (74) sliding on the surface of the slide rail (73), an eccentric wheel (75) that meshes with the rack A (72) sliding at the top of the T-shaped plate (74), a rotating rod (76) fixedly sleeved on the surface of the diversion pipe (5), and the T-shaped plate (74) and the rotating rod (76) are hinged by a pin.
3. The raw material cleaning and impurity removal equipment for jet-type beverage processing according to claim 1, characterized in that: The transmission assembly includes a rotating shaft A (82) fixed to the side wall of the valve core (81), a liquid storage chamber (83) is provided at the bottom of the cleaning tank (1), a piston rod (84) slides inside the liquid storage chamber (83), the top end of the piston rod (84) is fixedly connected to the bottom end of the filter plate (2), a housing (85) is fixed to the side wall of the nozzle (6), a sleeve (86) is fixed inside the housing (85), a slide rod (87) slides inside the sleeve (86), a rack B (88) is fixed to the top end of the slide rod (87), a gear (89) meshing with the rack B (88) is fixed to one end of the rotating shaft A (82), and the liquid storage chamber (83) and the sleeve (86) are connected by an oil supply pipe.
4. The raw material cleaning and impurity removal equipment for jet-type beverage processing according to claim 3, characterized in that: The sleeve (86) is provided with a first spring inside. The bottom end of the first spring is fixedly connected to the bottom end of the slide rod (87), and the top end of the first spring is fixedly connected to the top end of the sleeve (86).
5. The raw material cleaning and impurity removal equipment for jet-type beverage processing according to claim 1, characterized in that: The cleaning tank (1) is equipped with multiple sets of second springs. The top ends of the multiple sets of second springs are fixedly connected to the bottom end of the filter plate (2), and the other ends of the multiple sets of second springs are fixedly connected to the inner wall of the cleaning tank (1).
6. The raw material cleaning and impurity removal equipment for jet-type beverage processing according to claim 1, characterized in that: A transmission wheel (95) is fitted between the reciprocating screw (3) and the rotating shaft B (93), and a belt (96) is connected between the two sets of transmission wheels (95).
7. The raw material cleaning and impurity removal equipment for jet-type beverage processing according to claim 1, characterized in that: One end of the diversion pipe (5) is connected to a water inlet pipe, and the end of the water inlet pipe is connected to a high-pressure water pump. The side wall of the cleaning tank (1) is connected to a drain pipe.
8. The raw material cleaning and impurity removal equipment for jet-type beverage processing according to claim 2, characterized in that: The surface of the eccentric wheel (75) is provided with teeth, and the inner wall of the slide rail (73) is provided with a limiting groove that is compatible with the T-shaped plate (74). The inside of the limiting groove is coated with grease.