Conveying equipment for euglena solid beverage production

By placing the feeding mechanism and a powder conveying pump at the feed port of the screw conveying mechanism of the conveying equipment for the production of nude algae solid beverages, combined with the air guide assembly and the side seal assembly, the rapid mixing of raw materials and auxiliary materials and the self-cleaning of the screw conveying device are achieved, which solves the problems of mixing unevenness and pollution in the prior art, and improves production efficiency and product qualification rate.

CN120097045AInactive Publication Date: 2025-06-06SHENZHEN ENYI SYNTHETIC BIOTECHNOLOGY CO LTD

Patent Information

Application Number
CN202510479990.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-17
Publication Date
2025-06-06
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing conveying devices are difficult to achieve rapid mixing during the production process of nude algae solid beverages, and the spiral conveying devices are prone to residual contamination, which affects the production efficiency and pass rate of the product.

Method used

A conveying equipment for the production of nude algae solid beverages is designed. By placing a feeding mechanism and a powder conveying pump at the feed port of the screw conveying mechanism, the air delivery of raw materials and the intermittent delivery of auxiliary materials are realized, and combined with the air guide assembly and the side seal assembly, the premixing of raw materials and auxiliary materials and the self-cleaning of the screw conveying mechanism are realized.

Benefits of technology

It realizes rapid mixing of raw materials and auxiliary materials, improves production efficiency, avoids residual contamination of the spiral conveyor device, and ensures the product pass rate.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The invention discloses conveying equipment for euglena solid beverage production, and belongs to the technical field of material conveying. In order to solve the problems that an existing product is single in function during material conveying, and a conveying structure is troublesome to clean, the following technical scheme is provided that the material conveying device comprises a pretreatment component used for raw material pretreatment and a mixing component used for material mixing treatment, and the pretreatment component and the mixing component are connected through a conveying component. The feeding mechanism is arranged at the feeding port of the spiral conveying mechanism, the powder conveying pump is combined to achieve air conveying of pretreated raw materials, the feeding mechanism and the airflow mechanism are matched to achieve intermittent feeding of various auxiliary materials, and premixing of the auxiliary materials and the raw materials is achieved; and the spiral conveying mechanism is further provided with the air guide assembly and the side sealing assembly, when the feeding mechanism moves in the reverse direction, air of the air flow mechanism is used for purging the interior of the spiral conveying mechanism, the side sealing assembly is opened, and automatic discharging of residues in the spiral conveying mechanism is facilitated.
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Description

Technical Field

[0001] The invention relates to the technical field of material conveying, in particular to conveying equipment for producing euglena solid beverage. Background Art

[0002] Euglena solid beverage is a beverage composed of ingredients such as euglena, psyllium husk and oligofructose. Its production process usually includes the following main steps: raw material preparation and pretreatment, blending and mixing, granulation, drying, cooling and screening, packaging and quality inspection. Each production step is processed by the corresponding production equipment, and corresponding conveying devices need to be configured between each equipment to realize the transportation of materials. For example: A Chinese patent with an authorization announcement number of CN214933334U discloses a lifting device for solid fruit and vegetable solid beverage processing equipment, including a bottom plate, a feeding barrel, a support block, a motor, a driving wheel, a driven wheel, a chain and a feeding rod. A circular hole is opened at one end of the feeding barrel, and one end of the feeding rod passes through the circular hole and is rotatably connected to the inner wall of the feeding barrel. A vertical plate is arranged at the top of the bottom plate, and a horizontal plate is arranged at the top of the vertical plate.

[0003] At present, the existing conveying devices can only realize the transportation of materials, and in the production process, the materials, especially the pre-treated raw materials, need to add various auxiliary materials and water resources to mix after entering the preparation and mixing process. The placement of various auxiliary materials in the preparation and mixing process is difficult to ensure the rapid mixing of materials, which is easy to affect the production efficiency of the product. In addition, after the spiral conveying device completes the transportation of materials, residues will inevitably appear on its inner cavity and spiral blades, which is easy to contaminate subsequent materials when conveying subsequent materials, affecting the qualified rate of the product. Summary of the invention

[0004] In order to overcome the above-mentioned defects of the prior art, the present invention provides a conveying equipment for the production of naked algae solid beverages. By configuring a feeding mechanism at the feed inlet of the spiral conveying mechanism, combined with a powder conveying pump, the pre-treated raw materials can be air-conveyed. The feeding mechanism and the airflow mechanism can be used to intermittently add various auxiliary materials, which are transported with the raw materials in the spiral conveying mechanism, thereby realizing pre-mixing of the auxiliary materials and the raw materials. The spiral conveying mechanism is also configured with an air guide component and a side sealing component. When the feeding mechanism moves in the reverse direction, the gas of the airflow mechanism is used to purge the interior of the spiral conveying mechanism, and the side sealing component is opened to facilitate the automatic discharge of residues in the spiral conveying mechanism and avoid mixing with subsequent materials, so as to solve the problems raised in the above-mentioned background technology.

[0005] To achieve the above object, the present invention provides the following technical solutions:

[0006] A conveying device for producing a euglena solid beverage, comprising a pretreatment component for pretreatment of raw materials and a mixing component for mixing materials, the pretreatment component and the mixing component are connected by a conveying component, the conveying component is used for transporting materials, the conveying component comprises a screw conveying mechanism, a driving mechanism, a feeding mechanism, a powder conveying pump, a feeding mechanism and an airflow mechanism, wherein the driving mechanism is arranged on the left side of the screw conveying mechanism, and is used to drive the operation of the screw conveying mechanism, the feeding mechanism is arranged at the feeding port of the screw conveying mechanism, the powder conveying pump is located above the feeding mechanism, and the powder conveying pump is used to connect the pretreatment component and the feeding mechanism, the discharge port of the screw conveying mechanism is connected to the mixing component, the feeding mechanism is arranged behind the screw conveying mechanism, and is connected to the feeding mechanism, and is used for supplying auxiliary materials, and the airflow mechanism is located on the feeding mechanism, and is used to provide airflow to the feeding mechanism and the screw conveying mechanism;

[0007] The screw conveying mechanism includes a screw conveying component, an air guide component, a material disturbance component, a side sealing component and a shielding component, wherein the air guide component is located at the front side of the screw conveying component, the material disturbance component is located at the discharge port of the screw conveying component, the side sealing component is arranged at the left end of the screw conveying component, and the shielding component is located inside the screw conveying component and is used for sealing and adjusting the ventilation hole of the air guide component.

[0008] As a further solution of the present invention, the screw conveying assembly includes a shell, a screw conveying shaft for conveying materials is provided inside the shell, two ends of the screw conveying shaft respectively penetrate the corresponding two sides of the shell, and a cover plate is installed on the top of the shell by screws, a notch for serving as a feed inlet is provided on the left side of the top of the cover plate, and a discharge hopper for serving as a discharge outlet is provided on the right side of the bottom of the shell, and the bottom of the discharge outlet extends into the mixing component;

[0009] The air guide assembly includes a main pipe located at the front side of the shell, and a plurality of branch pipes are arranged linearly on the rear side shell wall of the main pipe, and the rear ends of the branch pipes extend into the interior of the shell and serve as vents;

[0010] The material disturbance component includes a convex plate arranged on the right end of the spiral conveying shaft, a rocker arm is provided on the right side of the convex plate, a vertical groove is opened on the rocker arm, a convex rod is slidably connected in the vertical groove, the left end of the convex rod is fixedly connected to the convex plate, a material disturbance plate is movably connected to the inside of the discharge hopper through a pin shaft, and the pin shaft and the bottom end of the rocker arm are fixedly connected by bolts.

[0011] As a further solution of the present invention, the side sealing assembly includes an arc-shaped groove formed on the left side wall of the shell body, a discharge port for discharging residues is formed on the inner wall of the arc-shaped groove, an arc-shaped sealing plate for sealing the discharge port is slidably connected in the arc-shaped groove, a connecting arm is installed on the outer wall of the arc-shaped sealing plate by bolts, a fixing ring is fixedly connected to the connecting arm, a friction wheel is provided inside the fixing ring, the friction wheel is fixedly connected to the screw conveying shaft, and the friction wheel and the fixing ring are in friction contact;

[0012] The shielding assembly includes a blocking strip for blocking the vent, and lifting rods are symmetrically arranged on the top of the blocking strip, the tops of the two lifting rods both penetrate the cover plate, and an integration plate is installed together, a driven wedge is arranged at the bottom center of the integration plate, and an active wedge located on the cover plate is arranged below the driven wedge, and a connecting rod is fixedly connected to the left side of the active wedge, wherein the active wedge is slidably connected to the cover plate, and the active wedge is in active contact with the driven wedge, and each of the lifting rods is sleeved with an extrusion spring.

[0013] As a further solution of the present invention, the driving mechanism includes a bracket fixedly connected to the left outer wall of the shell by bolts, a motor is installed on the left inner wall of the bracket, a driving gear is installed at the output end of the motor, a driven gear meshing with the driving gear is provided below the driving gear, and the driven gear is fixedly connected to the left end of the screw conveyor shaft. The driving mechanism is used to drive the movement of the screw conveyor shaft.

[0014] As a further solution of the present invention, the feeding mechanism includes a bottom channel fixedly connected to the top shell wall of the cover plate by bolts, the top of the bottom channel is fixedly connected to the top channel by bolts, and the powder delivery pump is arranged at the top of the top channel, wherein the feeding end of the powder delivery pump is connected to the discharging end of the pretreatment component, and the discharging end of the powder delivery pump is provided with a conduit, and the bottom end of the conduit extends into the interior of the top channel;

[0015] A through slot is provided on the rear shell wall of the bottom channel, a feed hopper is integrally provided in the through slot, an inclined plate located on the rear inner wall of the bottom channel is integrally provided above the feed hopper, a rectangular slot is provided on the left shell wall of the bottom channel below the feed hopper, a shield plate for shielding and blocking is movably connected in the rectangular slot, a convex block is provided on the left side of the top of the shield plate, a multi-section electric push rod is provided between the convex block and the bottom channel, and one end of the connecting rod away from the active wedge block is fixedly connected to the convex block;

[0016] The rear side of the feed hopper is connected with a feed channel by bolts, and a guide plate for guiding materials is installed on the top inner wall of the feed channel by screws, and a notch is opened on the top shell wall of the feed channel above the guide plate.

[0017] As a further solution of the present invention, the feeding mechanism includes a side frame, a material storage assembly, a reciprocating screw, an impeller, an auxiliary plate and a vibration assembly, wherein the side frame is fixedly connected to the rear outer wall of the shell body by bolts, a loading port is provided on the top shell wall of the side frame, and the material storage assembly includes a material box arranged in the loading port, a discharge channel is integrally provided at the bottom end of the material box, the bottom end of the discharge channel is located on the notch, and is connected to the top shell wall of the feed channel by screws;

[0018] The interior of the material box is integrally provided with a partition for dividing a plurality of auxiliary material spaces. The bottoms of the plurality of auxiliary material spaces are interconnected to facilitate the flow of the auxiliary material into the discharge channel. A top cover for sealing is installed on the top of the material box by screws. A special-shaped column is installed inside the discharge channel by a connecting shaft, and both ends of the connecting shaft respectively penetrate the corresponding side walls of the discharge channel.

[0019] As a further solution of the present invention, the rear end of the reciprocating screw is rotatably connected to the corresponding inner wall of the side frame through a bearing, and the front end of the reciprocating screw is installed on the connecting shaft through a coupling, the impeller is arranged on the reciprocating screw, the front side of the impeller is threadedly connected to an inner groove ring located on the reciprocating screw, and the bottom of the outer ring of the inner groove ring is fixedly connected to a contact rod;

[0020] The auxiliary plate is located below the reciprocating screw rod, and the auxiliary plate is fixedly connected to the discharge channel by bolts. A transverse groove is provided on the auxiliary plate, and the bottom end of the contact rod passes through the transverse groove and is rollingly connected with a ball bearing;

[0021] The vibration assembly includes a moving frame located below the auxiliary plate, guide rods are movably connected to the left and right outer walls of the moving frame, the top of the guide rods is fixedly connected to the top shell wall of the side frame by bolts, and knocking rods for knocking the material box are installed at both ends of the top of the moving frame;

[0022] A double-sided wedge is integrally provided on the inner wall of the bottom of the moving frame, and the ball on the bottom end of the contact rod is in rolling contact with the double-sided wedge;

[0023] Each of the knocking rods is sleeved with a positioning plate and a reset spring, wherein the positioning plate is fixedly connected to the outer shell wall of the knocking rod, the top end of the reset spring is arranged on the positioning plate, and the bottom end of the reset spring is fixedly connected to the moving frame.

[0024] As a further solution of the present invention, the airflow mechanism includes an air pump body, a rectifying assembly, a gas delivery pipeline 1, a gas delivery pipeline 2 and a blocking member, wherein the air pump body is arranged on the top outer wall of the side frame, the rectifying assembly includes a box body fixedly connected to the rear outer wall of the side frame by bolts, a horizontal plate is arranged inside the box body, a filter plate for filtering gas is installed on the horizontal plate, and the air pump body and the box body are connected by an air guide pipe;

[0025] The gas delivery pipeline 1 includes a curved pipe arranged on the right side wall of the box body, the front end of the curved pipe is connected to the feed channel, a branch pipe is arranged on the side wall of the curved pipe, and an air nozzle is installed at the top of the branch pipe, and the air nozzle is used to blow the impeller to move;

[0026] The second gas delivery pipeline is arranged on the left shell wall of the box body, and the other end of the second gas delivery pipeline is installed on the gas guide component.

[0027] As a further solution of the present invention, the blocking member includes a switching plate arranged inside the box body, and a linkage rod is installed on the side wall of the switching plate. The other end of the linkage rod passes through the corresponding side wall of the box body and is fixedly connected to the shield plate, wherein the switching plate is located below the horizontal plate and is used to adjust the blocking switching of gas pipeline one and gas pipeline two.

[0028] Compared with the prior art, the present invention has the following beneficial effects:

[0029] 1. By configuring a feeding mechanism at the feeding port of the screw conveying mechanism and combining it with a powder conveying pump, the pre-treated raw materials can be conveyed by air, ensuring the stable delivery of materials to the screw conveying mechanism. The intermittent delivery of various auxiliary materials can be achieved by coordinating the feeding mechanism and the airflow mechanism, and the auxiliary materials can be transported with the raw materials in the screw conveying mechanism, thereby achieving pre-mixing of the auxiliary materials and the raw materials, reducing the time for mixing materials in the preparation and mixing process, and further improving the production efficiency of the product.

[0030] 2. A material disturbing component is also provided at the discharge port of the screw conveying mechanism, which utilizes the power generated by the movement of the screw conveying shaft in the screw conveying mechanism to drive the material disturbing plate in the discharge port to swing back and forth, thereby breaking up the material discharged by the screw conveying mechanism and further improving the mixing effect of the material before it enters the mixing component.

[0031] 3. The spiral conveying mechanism is equipped with an air guide component and a side sealing component. When the multi-section electric push rod in the feeding mechanism drives the shutter to close, the shielding component in the spiral conveying mechanism opens, and the gas of the airflow mechanism is used to purge the inside of the spiral conveying mechanism. The driving mechanism drives the spiral conveying shaft to run clockwise, and the side sealing component is opened to facilitate the automatic discharge of residues in the spiral conveying mechanism to avoid mixing with subsequent materials.

[0032] 4. The multi-section electric push rod in the feeding mechanism drives the shutter to open and close, and simultaneously realizes the forward and backward movement of the blocking member in the airflow mechanism and the adjustment of the shielding component in the spiral conveying mechanism. Among them, the blocking member can change the flow direction of the airflow when the shutter is opened and closed, thereby realizing the delivery of auxiliary materials or ventilation of the air guide component in the spiral conveying mechanism, and the adjustment of the shielding component can open and close the vent of the air guide component, so as to adaptively realize the internal cleaning of the spiral conveying component in the spiral conveying mechanism.

[0033] 5. When the friction wheel in the side sealing assembly moves clockwise with the screw conveying shaft, its contact with the inner ring of the fixed ring drives the arc-shaped sealing plate to move, so that it opens the seal on the discharge port. Then, when the screw conveying shaft rotates clockwise, on the one hand, the air guide assembly discharges gas into the interior of the screw conveying assembly to purge the inner cavity of the shell and the spiral blades. On the other hand, the activity of the spiral conveying will cause the purged residue to be discharged from the discharge port automatically, reducing the burden of manual cleaning, improving work efficiency, avoiding contact between the residue and subsequent materials, and ensuring the qualified rate of subsequent product production.

[0034] 6. The feeding mechanism utilizes the gas in the airflow mechanism to drive the reciprocating screw and rotate the unloading wheel to achieve intermittent delivery of auxiliary materials. The reciprocating screw realizes the reciprocating movement of the inner ring through the cooperation of the auxiliary plate during movement, thereby pushing the vibration component. Under the action of the reset spring, the vibration component knocks and vibrates the material storage component of the feeding mechanism to ensure the smoothness of the auxiliary material discharge and avoid blockage that affects the delivery amount of the auxiliary material. BRIEF DESCRIPTION OF THE DRAWINGS

[0035] Figure 1 It is a front view structural schematic diagram of a conveying device for producing euglena solid beverage;

[0036] Figure 2 for Figure 1 Schematic diagram of the conveying component structure Figure 1 ;

[0037] Figure 3 for Figure 1 Schematic diagram of the conveying component structure Figure 2 ;

[0038] Figure 4 for Figure 1 Schematic diagram of the conveying component structure Figure 3 ;

[0039] Figure 5 for Figure 2 Schematic diagram of the screw conveyor structure Figure 1 ;

[0040] Figure 6 for Figure 2 Schematic diagram of the screw conveyor structure Figure 2 ;

[0041] Figure 7 for Figure 4 Schematic diagram of the screw conveying mechanism structure;

[0042] Figure 8 for Figure 7 A schematic diagram of the enlarged local structure at A;

[0043] Fig. 9 for Figure 7 A schematic diagram of the structure of the side seal assembly in an open state;

[0044] Fig.10 for Fig. 9 A schematic diagram of the enlarged local structure at B;

[0045] Fig.11 for Figure 2 Schematic diagram of the feeding mechanism structure;

[0046] Fig.12 for Figure 3 Structural diagram of feeding mechanism and airflow mechanism;

[0047] Fig.13 for Fig.12 A schematic diagram of the enlarged local structure at C;

[0048] Fig.14 for Fig.12 Schematic diagram of the feeding mechanism structure;

[0049] Fig.15 for Fig.14 A schematic diagram of the enlarged local structure at D;

[0050] Fig.16 for Fig.14 Schematic diagram of the vibration component structure;

[0051] Fig.17 for Figure 2 Schematic diagram of the airflow mechanism structure Figure 1 ;

[0052] Fig.18 for Figure 2 Schematic diagram of the airflow mechanism structure Figure 2 .

[0053] In the figure: 1. pretreatment component; 2. mixing component; 3. screw conveying mechanism; 31. screw conveying assembly; 311. shell; 312. screw conveying shaft; 313. cover plate; 32. air guide assembly; 33. material disturbance assembly; 331. convex plate; 332. swing rod; 333. material disturbance plate; 34. side sealing assembly; 341. arc-shaped blocking plate; 342. fixing ring; 343. friction wheel; 35. shielding assembly; 351. blocking strip; 352. lifting rod; 353. integration plate; 354. driven wedge; 355. active wedge; 356. connecting rod; 4. driving mechanism; 41. motor; 42. driving gear; 43. driven gear; 5. feeding mechanism; 51. bottom channel; 52. top Channel; 53, baffle; 54, multi-section electric push rod; 55, inclined plate; 56, feeding channel; 57, guide plate; 6, powder conveying pump; 7, feeding mechanism; 71, side frame; 72, storage assembly; 721, material box; 722, unloading channel; 723, partition; 724, top cover; 725, special-shaped column; 73, reciprocating screw; 74, impeller; 75, auxiliary plate; 76, vibration assembly; 761, moving frame; 762, guide rod; 763, knocking rod; 8, airflow mechanism; 81, air pump body; 82, rectifier assembly; 821, box; 822, cross plate; 83, gas pipeline one; 84, gas pipeline two; 85, blocking piece; 851, switching plate; 852, linkage rod. DETAILED DESCRIPTION

[0054] See also Figure 1-Figure 4 In an embodiment of the present invention, a conveying device for producing a euglena solid beverage includes a pretreatment component 1 for pretreatment of raw materials and a mixing component 2 for material mixing. The pretreatment component 1 and the mixing component 2 are connected by a conveying component, and the conveying component is used for transporting materials. The raw materials processed in the pretreatment component 1 are transported to the mixing component 2 for secondary processing by the conveying component.

[0055] The conveying components include a screw conveying mechanism 3, a driving mechanism 4, a feeding mechanism 5, a powder conveying pump 6, a feeding mechanism 7 and an airflow mechanism 8. The driving mechanism 4 is arranged on the left side of the screw conveying mechanism 3 to drive the operation of the screw conveying mechanism 3. The configuration of the driving mechanism 4 can realize the adjustment of the forward and reverse movement of the screw conveying mechanism 3.

[0056] The feeding mechanism 5 is arranged at the feeding port of the screw conveying mechanism 3, and the powder conveying pump 6 is located above the feeding mechanism 5, and the powder conveying pump 6 is used to connect the pretreatment component 1 with the feeding mechanism 5. Through the setting of the powder conveying pump 6, the raw materials processed in the pretreatment component 1 can be sent to the feeding mechanism 5, thereby ensuring the thorough discharge of the raw materials in the pretreatment component 1 and avoiding raw material residue.

[0057] The discharge port of the spiral conveying mechanism 3 is connected to the mixing component 2, thereby ensuring the sealing of the material conveying and preventing the material from contacting with other substances during the conveying process. The feeding mechanism 7 is arranged behind the spiral conveying mechanism 3 and connected to the feeding mechanism 5 for supplying auxiliary materials. The airflow mechanism 8 is located on the feeding mechanism 7 and is used to provide airflow to the feeding mechanism 7 and the spiral conveying mechanism 3. The airflow of the airflow mechanism 8 can not only drive the feeding mechanism 7 to move and realize the intermittent feeding of auxiliary materials, but also can blow air inside the spiral conveying mechanism 3 to improve the self-cleaning effect of the spiral conveying mechanism 3.

[0058] See also Figure 5 In the embodiment of the present invention, the screw conveying mechanism 3 includes a screw conveying component 31, an air guide component 32, a material disturbing component 33, a side sealing component 34 and a shielding component 35. Among them, the air guide component 32 is located at the front side of the screw conveying component 31, and the material disturbing component 33 is located at the discharge port of the screw conveying component 31. The arrangement of the material disturbing component 33 at the discharge port can break up the material discharged after conveying, which not only improves its mixing effect but also further facilitates the mixing processing of the material by the mixing component 2.

[0059] The side sealing assembly 34 is arranged at the left end of the spiral conveying assembly 31, and the shielding assembly 35 is located inside the spiral conveying assembly 31, and is used to block the vent of the air guide assembly 32. The reverse arrangement of the side sealing assembly 34 and the discharge port can realize the separate discharge of the residues in the later cleaning.

[0060] See also Figure 1 and Figure 5 In the embodiment of the present invention, the screw conveying assembly 31 includes a housing 311, and a screw conveying shaft 312 for conveying materials is disposed inside the housing 311. The spiral blades on the screw conveying shaft 312 are arranged clockwise, and the materials will move to the right when the screw conveying shaft 312 rotates counterclockwise, and the materials will move to the left when the screw conveying shaft 312 rotates clockwise.

[0061] The two ends of the screw conveying shaft 312 respectively penetrate the corresponding two sides of the housing 311, and the top of the housing 311 is installed with a cover plate 313 by screws. The bolt assembly of the cover plate 313 can realize the convenient disassembly and assembly operation thereof, and is convenient for the maintenance and processing of the screw conveying assembly 31.

[0062] A notch serving as a material feed port is provided on the left top of the cover plate 313 , and a discharge hopper serving as a material discharge port is provided on the right bottom of the shell 311 , the bottom of the discharge port extends into the mixing component 2 .

[0063] See also Figure 5-Figure 6In the embodiment of the present invention, the air guide assembly 32 includes a main pipe located at the front side of the housing 311, and a plurality of branch pipes are arranged linearly on the rear side of the housing wall of the main pipe, and the rear ends of the branch pipes extend into the interior of the housing 311 and serve as vents. The air guide assembly 32 can guide airflow into the spiral conveying assembly 31 to purge its internal structure, thereby improving its self-cleaning effect.

[0064] The material disturbing assembly 33 includes a convex plate 331 disposed on the right end of the screw conveying shaft 312. A swing rod 332 is disposed on the right side of the convex plate 331. The swing rod 332 is provided with a vertical groove, and a convex rod is slidably connected in the vertical groove. The left end of the convex rod is fixedly connected to the convex plate 331. When the convex plate 331 rotates with the screw conveying shaft 312, it drives the convex rod to move in the vertical groove of the swing rod 332.

[0065] The inside of the discharge hopper is movably connected with a material disturbing plate 333 through a pin shaft, and the pin shaft is fixedly connected to the bottom end of the swing rod 332 through a bolt. The pin shaft is fixedly connected to the swing rod 332, and the pin shaft serves as the rotation center of the material disturbing plate 333 and the swing rod 332. When the convex plate 331 rotates, the convex rod on it drives the swing rod 332 to swing back and forth, thereby realizing the swing of the material disturbing plate 333.

[0066] See also Figure 5-Figure 10 In the embodiment of the present invention, the side sealing assembly 34 includes an arc-shaped groove formed on the left side wall of the housing 311, and a discharge port for discharge of residues is formed on the inner wall of the arc-shaped groove. An arc-shaped blocking plate 341 for blocking the discharge port is slidably connected in the arc-shaped groove. The sliding design of the arc-shaped blocking plate 341 in the arc-shaped groove can realize the opening and closing of the discharge port according to the use requirements.

[0067] A connecting arm is installed on the outer wall of the arc-shaped blocking plate 341 by bolts, and a fixing ring 342 is fixedly connected to the connecting arm. A friction wheel 343 is arranged inside the fixing ring 342, and the friction wheel 343 is fixedly connected to the screw conveying shaft 312, and there is friction contact between the friction wheel 343 and the fixing ring 342. A friction strip is wound on the outer ring shell wall of the friction wheel 343, and a friction strip is also wound on the inner ring of the fixing ring 342. The friction strip is arranged to improve the friction effect between the two, and the friction strip can be disassembled and replaced, so as to facilitate its maintenance.

[0068] The shielding assembly 35 includes a sealing strip 351 for sealing the vent, and a rubber sheet is provided on the inner wall of the sealing strip 351 to improve the fit between the sealing strip 351 and the inner wall of the shell 311 and ensure its sealing performance.

[0069] Lifting rods 352 are symmetrically arranged on the top of the blocking strip 351. The tops of the two lifting rods 352 penetrate the cover plate 313 and are installed with an integration plate 353. A driven wedge 354 is arranged at the bottom center of the integration plate 353, and an active wedge 355 located on the cover plate 313 is arranged below the driven wedge 354. A connecting rod 356 is fixedly connected to the left side of the active wedge 355. The active wedge 355 is slidably connected to the cover plate 313, thereby ensuring the stability of the displacement adjustment of the active wedge 355. The active wedge 355 and the driven wedge 354 are in active contact, which facilitates the active wedge 355 to apply a pushing force to the driven wedge 354. Each lifting rod 352 is sleeved with an extrusion spring. The setting of the extrusion spring can realize the reset processing of the integration plate 353 and the blocking strip 351, and ensure that the blocking strip 351 blocks each vent. The vent blocking opening can prevent the material conveyed by the screw conveying assembly 31 from entering the vent and causing the vent to be blocked.

[0070] See also Figure 5 In the embodiment of the present invention, the driving mechanism 4 includes a bracket fixedly connected to the left outer wall of the housing 311 by bolts, and a motor 41 is installed on the left inner wall of the bracket. A driving gear 42 is installed at the output end of the motor 41, and a driven gear 43 meshing with the driving gear 42 is provided below the driving gear 42. The driven gear 43 is fixedly connected to the left end of the screw conveying shaft 312, and the driving mechanism 4 is used to drive the movement of the screw conveying shaft 312. The operation of the motor 41 in the driving mechanism 4 drives the driving gear 42 to move, and then the rotation of the screw conveying shaft 312 is realized under the meshing condition between the driving gear 42 and the driven gear 43.

[0071] See also Figure 4 , Figure 5 , Figure 8 and Fig.11 In the embodiment of the present invention, the feeding mechanism 5 includes a bottom channel 51 fixedly connected to the top shell wall of the cover plate 313 by bolts, and the bottom channel 51 is located above the notch serving as the feeding port to ensure that the material enters the spiral conveying mechanism 3. The top of the bottom channel 51 is fixedly connected with a top channel 52 by bolts, and the powder conveying pump 6 is arranged on the top of the top channel 52. Among them, the feeding end of the powder conveying pump 6 is connected to the discharging end of the pretreatment component 1, and the discharging end of the powder conveying pump 6 is provided with a conduit, and the bottom end of the conduit extends into the interior of the top channel 52. Through the air conveying effect of the powder conveying pump 6, the raw materials processed in the pretreatment component 1 are uniformly and stably input into the bottom channel 51, and then enter the spiral conveying mechanism 3.

[0072] A through slot is provided on the rear shell wall of the bottom channel 51, and a feed hopper is integrally provided in the through slot. An inclined plate 55 is integrally provided above the feed hopper and is located on the inner wall of the rear side of the bottom channel 51. The inclined plate 55 is provided to shield the through slot to prevent the raw materials from flowing into the feed hopper after entering the feeding mechanism 5.

[0073] A rectangular groove is provided below the feed hopper on the left side of the shell wall of the bottom channel 51, and a shield plate 53 for shielding and blocking is movably connected in the rectangular groove. A convex block is provided on the left side of the top of the shield plate 53, and a multi-section electric push rod 54 is provided between the convex block and the bottom channel 51. The movement of the shield plate 53 is driven by the operation of the multi-section electric push rod 54, thereby completing the opening and closing operation of the bottom channel 51. One end of the connecting rod 356 away from the active wedge block 355 is fixedly connected to the convex block, and the shield plate 53 synchronously drives the connecting rod 356 in the shielding assembly 35 to move during the movement, thereby realizing the adjustment of the shielding assembly 35.

[0074] The rear side of the feed hopper is connected with a feed channel 56 by bolts, and a guide plate 57 for guiding materials is installed on the top inner wall of the feed channel 56 by screws. A notch is provided above the guide plate 57 on the top shell wall of the feed channel 56. The arrangement of the guide plate 57 below the notch can ensure the stability of the auxiliary material input.

[0075] See also Figure 2-Figure 4 and Figure 11-Figure 16 In the embodiment of the present invention, the feeding mechanism 7 includes a side frame 71, a material storage assembly 72, a reciprocating screw 73, an impeller 74, an auxiliary plate 75 and a vibration assembly 76. The side frame 71 is fixedly connected to the rear outer wall of the housing 311 by bolts, and a loading port is opened on the top shell wall of the side frame 71.

[0076] The material storage assembly 72 includes a material box 721 disposed in the loading port, and a discharge channel 722 is integrally disposed at the bottom end of the material box 721. The bottom end of the discharge channel 722 is located on the notch and is connected to the top shell wall of the feeding channel 56 by screws. The material box 721 is provided for loading auxiliary materials.

[0077] The material box 721 is provided with a partition 723 integrally inside to divide a plurality of auxiliary material spaces. The bottoms of the plurality of auxiliary material spaces are interconnected to facilitate the flow of auxiliary materials into the discharge channel 722. The partition 723 is composed of a rectangular column and a blade, wherein the blade includes four blades, which are respectively arranged at the four corners of the rectangular column and connected to the four vertical side seams inside the material box 721, so that four auxiliary material spaces for auxiliary material storage are formed inside the material box 721 for placing different auxiliary materials.

[0078] A top cover 724 for sealing is installed on the top of the material box 721 by screws, and a plurality of feeding pipes are arranged on the top of the top cover 724, and the plurality of feeding pipes correspond to the corresponding auxiliary material spaces. A special-shaped column 725 is installed inside the discharge channel 722 through a connecting shaft, and the two ends of the connecting shaft respectively penetrate the corresponding side walls of the discharge channel 722. The special-shaped column 725 is set as a cylinder, and a groove is opened on it for accommodating auxiliary materials, and then when the special-shaped column 725 rotates, the position of the groove changes, thereby realizing intermittent feeding of auxiliary materials.

[0079] The rear end of the reciprocating screw 73 is rotatably connected to the corresponding inner wall of the side frame 71 through a bearing, and the front end of the reciprocating screw 73 is installed on the connecting shaft through a coupling. The impeller 74 is arranged on the reciprocating screw 73, and the front side of the impeller 74 is threadedly connected to the inner ring located on the reciprocating screw 73, and the bottom of the outer ring of the inner ring is fixedly connected to a contact rod. When the impeller 74 drives the reciprocating screw 73 to rotate, it synchronously drives the special-shaped column 725 to rotate and makes the inner ring move.

[0080] The auxiliary plate 75 is located below the reciprocating screw 73, and the auxiliary plate 75 is fixedly connected to the discharge channel 722 by bolts. A transverse groove is provided on the auxiliary plate 75, and the bottom end of the contact rod passes through the transverse groove and is rollingly connected with a ball. When the reciprocating screw 73 rotates, the inner ring threadedly connected thereto moves linearly under the cooperation between the contact rod and the auxiliary plate 75.

[0081] The vibration assembly 76 includes a moving frame 761 located below the auxiliary plate 75, and ear seats are fixedly connected to the left and right outer walls of the moving frame 761, and a guide rod 762 is movably connected in the ear seat. The top of the guide rod 762 is fixedly connected to the top shell wall of the side frame 71 by bolts, and knocking rods 763 for knocking the material box 721 are installed at both ends of the top of the moving frame 761.

[0082] A double-sided wedge is integrally provided on the inner wall of the bottom of the moving frame 761, and the ball on the bottom end of the contact rod is in rolling contact with the double-sided wedge.

[0083] Each knocking rod 763 is sleeved with a positioning plate and a reset spring. The positioning plate is fixedly connected to the outer shell wall of the knocking rod 763, the top of the reset spring is arranged on the positioning plate, and the bottom of the reset spring is fixedly connected to the ear seat. When the ball on the bottom end of the contact rod contacts the double-sided wedge block, the moving frame 761 drives the knocking rod 763 to move downward, stretching the reset spring. When the ball on the bottom end of the contact rod leaves the double-sided wedge block, the moving frame 761 drives the knocking rod 763 to move upward quickly under the reset action of the reset spring, thereby enabling the knocking rod 763 to achieve knocking vibration on the material box 721.

[0084] See also Figure 2-Figure 4 and Figure 17-Figure 18In the embodiment of the present invention, the airflow mechanism 8 includes an air pump body 81, a rectifying assembly 82, an air delivery pipeline 1 83, an air delivery pipeline 2 84 and a blocking member 85. The air pump body 81 is arranged on the top outer wall of the side frame 71, and the rectifying assembly 82 includes a box body 821 fixedly connected to the rear outer wall of the side frame 71 by bolts. A transverse plate 822 is arranged inside the box body 821, and a filter plate for filtering gas is installed on the transverse plate 822. The air pump body 81 and the box body 821 are connected by an air guide pipe. An inspection port is provided on the rear outer wall of the box body 821, and an inspection plate is installed in the inspection port by screws. The arrangement of the inspection port and the inspection plate facilitates the maintenance of the filter plate on the transverse plate 822. The gas blown into the box body 821 by the air pump body 81 will be discharged only after being filtered by the filter plate.

[0085] The gas delivery pipeline 83 includes a curved pipe arranged on the right side wall of the box body 821, and the front end of the curved pipe is connected to the feed channel 56. A branch pipe is arranged on the side wall of the curved pipe, and an air nozzle is installed at the top of the branch pipe, which is used to blow the impeller 74 to move. The treated gas enters the feed channel 56 from the curved pipe of the gas delivery pipeline 83, so as to deliver the auxiliary material to the feed mechanism 5. The branch pipe on the curved pipe divides the airflow, thereby agitating the impeller 74 to move.

[0086] The second gas delivery pipeline 84 is disposed on the left shell wall of the box body 821 , and the other end of the second gas delivery pipeline 84 is installed on the gas guide component 32 .

[0087] The blocking member 85 includes a switching plate 851 disposed inside the box body 821, and a linkage rod 852 is installed on the side wall of the switching plate 851. The other end of the linkage rod 852 penetrates the corresponding side wall of the box body 821 and is fixedly connected to the shielding plate 53. When the shielding plate 53 moves, the switching plate 851 is driven by the linkage rod 852 to adjust its position.

[0088] The switch plate 851 is located below the horizontal plate 822 and is used to adjust the blocking switch between the gas pipeline 1 83 and the gas pipeline 2 84 .

[0089] The working principle of the present invention is: before the equipment is operated, various powdered auxiliary materials to be added are quantitatively put into the material box 721 for temporary storage through various feeding pipes arranged on the top cover 724 of the storage component 72 in the feeding mechanism 7 according to the formula requirements. When it is necessary to transport the processed raw materials in the pretreatment component 1 to the mixing component 2, the multi-section electric push rod 54 in the feeding mechanism 5 is first started through the external controller body. The multi-section electric push rod 54 drives the shield 53 to move outward to open the bottom channel 51. Then the feeding mechanism 5 and the inner cavity of the spiral conveying component 31 in the spiral conveying mechanism 3 are connected to each other. When the shield 53 moves outward, the active wedge 355 is driven to move leftward through the connecting rod 356 in the shielding component 35. At this time, as the active wedge 355 moves leftward, the driven wedge 354 lacks extrusion force, and then the extrusion spring arranged on the lifting rod 352 is reset and moved downward, so that the blocking strip 351 moves downward. When the shield plate 53 moves outward to the maximum distance, the active wedge block 355 is disengaged from the driven wedge block 354 , and the extrusion spring drives the blocking strip plate 351 to return to the maximum distance, thereby blocking each vent of the air guide assembly 32 .

[0090] When the shield plate 53 moves outward, the switching plate 851 is also driven to move leftward through the linkage rod 852 of the blocking member 85 in the airflow mechanism 8. When the shield plate 53 moves outward to the maximum mileage, the switching plate 851 blocks the port of the gas transmission pipeline 2 84.

[0091] After the shutter 53 is adjusted outward, the external controller body turns off the operation of the multi-section electric push rod 54. Then the motor 41 in the driving mechanism 4 is started to run clockwise, and the clockwise operation of the motor 41 drives the driving gear 42 to move clockwise, and the driving gear 42 and the driven gear 43 are meshed and driven, so that the screw conveying shaft 312 of the screw conveying assembly 31 in the screw conveying mechanism 3 moves counterclockwise. Since the spiral blades on the screw conveying shaft 312 are arranged clockwise, the material can be moved from left to right when it runs counterclockwise.

[0092] When the screw conveying shaft 312 rotates counterclockwise, the friction wheel 343 in the side sealing assembly 34 moves accordingly. When the friction wheel 343 moves counterclockwise, it makes friction contact with the inner ring of the fixed ring 342, and then drives the arc-shaped blocking plate 341 to move counterclockwise through the fixed ring 342. When the arc-shaped blocking plate 341 moves counterclockwise in the arc groove to the maximum mileage, the arc-shaped blocking plate 341 blocks the discharge port. The continuous movement of the screw conveying shaft 312 will cause the friction wheel 343 to drive the fixed ring 342 to achieve dynamic blocking of the discharge port by the arc-shaped blocking plate 341.

[0093] After the motor 41 runs for a period of time, the external controller body starts the powder conveying pump 6 and the air pump body 81 in the air flow mechanism 8. The powder conveying pump 6 sends the processed raw materials in the pre-treatment component 1 to the feeding mechanism 5, and finally falls into the interior of the screw conveying assembly 31. The materials falling into the screw conveying assembly 31 continuously move toward the discharge port when the screw conveying shaft 312 runs.

[0094] After the air pump body 81 is running, it blows air into the rectifying assembly 82. When the airflow enters the rectifying assembly 82, it is first filtered by the filter plate on the horizontal plate 822, and then discharged from the box 821. At this time, the blocking member 85 blocks the gas pipeline 2 84, and then the gas entering the box 821 is discharged from the gas pipeline 1 83.

[0095] Part of the airflow discharged from the air delivery pipeline 83 enters the feed channel 56 in the feed mechanism 5 through the bend pipe, and part of it is discharged from the branch pipe, and then blows the impeller 74 under the action of the air nozzle. The impeller 74 is forced to move, driving the reciprocating screw 73 to rotate, and the reciprocating screw 73 not only drives the special-shaped column 725 in the storage component 72 to rotate when rotating, but also realizes the intermittent delivery of the auxiliary materials in the material box 721 into the discharge channel 722. The auxiliary materials entering the discharge channel 722 fall into the feed channel 56. After the auxiliary materials enter the feed channel 56, they enter the bottom channel 51 under the action of the airflow to contact and mix with the raw materials being dropped, and then enter the spiral conveying component 31 with the airflow, and are spirally conveyed toward the discharge port under the movement of the spiral conveying shaft 312. The auxiliary materials and the raw materials are mixed with each other during the spiral conveying process, so as to realize the pre-mixing of the two.

[0096] During the rotation of the reciprocating screw 73, the inner ring connected to the screw thread is driven to move, and the inner ring is made to move linearly with the cooperation of the auxiliary plate 75. During the reciprocating movement of the inner ring, the contact rod provided on the inner ring is intermittently in contact with the double-sided wedge block on the moving frame 761 of the vibration assembly 76.

[0097] When the contact rod contacts the double-sided wedge, the moving frame 761 drives the knocking rod 763 to move downward, stretching the return spring. When the contact rod leaves the double-sided wedge, the moving frame 761 quickly drives the knocking rod 763 to move upward under the action of the return spring, so that the knocking rod 763 contacts the material box 721 in the material storage component 72, achieving knocking vibration thereon, and ensuring that the auxiliary materials stored therein can be discharged smoothly.

[0098] The spiral conveying shaft 312 also drives the convex plate 331 in the material disturbing assembly 33 to rotate during the rotational movement. The convex plate 331 drives the convex rod to move in the vertical groove of the swing rod 332 during the movement. Since the swing rod 332 is connected to the pin shaft of the material disturbing plate 333, and the swing rod 332 takes the pin shaft as the pin shaft center, when the convex plate 331 rotates, the convex rod drives the swing rod 332 to swing back and forth, thereby realizing the swing of the material disturbing plate 333.

[0099] When the material is transported to the discharge port by the screw conveying shaft 312 , the material needs to be dispersed by the disrupting plate 333 during the process of falling from the screw conveying component 31 into the mixing component 2 , so as to further improve the effect of pre-mixing the material.

[0100] After the material is delivered, the external controller body first turns off the powder delivery pump 6, the air pump body 81 in the airflow mechanism 8, and the motor 41 in the drive mechanism 4. Then the multi-section electric push rod 54 in the feeding mechanism 5 is turned on for reset adjustment. When the multi-section electric push rod 54 is reset, it drives the shutter 53 to retract and move, thereby blocking the bottom channel 51. When the shutter 53 retracts and moves, the active wedge block 355 is driven to reset through the connecting rod 356 in the shielding component 35. When the active wedge block 355 is reset, it contacts the driven wedge block 354, squeezes it, lifts the integration plate 353, and drives the blocking strip 351 to move up through the two lifting rods 352, stretching the extrusion spring. After the blocking strip 351 moves up, it cancels the blockage of each vent in the air guide component 32.

[0101] When the shield plate 53 retracts, the switching plate 851 is also driven to move backward through the linkage rod 852 of the blocking member 85 in the airflow mechanism 8, thereby blocking the gas transmission pipeline 1 83.

[0102] After the multi-section electric push rod 54 is reset, it is closed by the external controller body, and the motor 41 in the driving mechanism 4 and the air pump body 81 in the air flow mechanism 8 are turned on. At this time, the motor 41 runs counterclockwise, and through the meshing between the driving gear 42 and the driven gear 43, the screw conveying shaft 312 in the screw conveying assembly 31 is driven to run clockwise. The clockwise movement of the screw conveying shaft 312 can convey the material in the housing 311 from right to left.

[0103] When the screw conveying shaft 312 rotates clockwise, it also drives the friction wheel 343 in the side sealing assembly 34 to move synchronously. When the friction wheel 343 rotates clockwise, it drives the fixing ring 342 to move clockwise, and simultaneously moves the arc-shaped blocking plate 341. When the arc-shaped blocking plate 341 moves to the maximum mileage, the cooperation between the friction wheel 343 and the fixing ring 342 makes the arc-shaped blocking plate 341 in a dynamic balance state after the discharge port is opened.

[0104] The air pump body 81 blows air into the air flow mechanism 8, and the air flow is discharged from the air delivery pipe 2 84 into the air guide assembly 32 after being processed. The air flow entering the air guide assembly 32 is discharged from each ventilation port into the interior of the screw conveying assembly 31, so as to achieve the purge of the inner cavity of the shell 311 and the screw conveying shaft 312. Then, when the screw conveying shaft 312 rotates clockwise, the purged residue moves from right to left and is then discharged from the unloading port. Due to the blocking effect of the shield 53, the residue will not enter the feeding mechanism 5 when the screw conveying assembly 31 is self-cleaned.

[0105] After completing the self-cleaning of the spiral conveying assembly 31, the external controller body again realizes the closing adjustment of each driving structure in the equipment, and turns on the motor 41 in the driving mechanism 4 clockwise, and closes it after the side sealing assembly 34 completes the sealing of the discharge port.

[0106] The above are only preferred specific implementation modes of the present invention, but the protection scope of the present invention is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes according to the technical solutions and inventive concepts of the present invention within the technical scope disclosed by the present invention, which should be covered by the protection scope of the present invention.

Claims

1. A conveying device for producing a euglena solid beverage, comprising a pretreatment component (1) for pretreatment of raw materials and a mixing component (2) for mixing materials, wherein the pretreatment component (1) and the mixing component (2) are connected by a conveying component, and the conveying component is used for transporting materials, and is characterized in that: The conveying component comprises a screw conveying mechanism (3), a driving mechanism (4), a feeding mechanism (5), a powder conveying pump (6), a feeding mechanism (7) and an airflow mechanism (8), wherein the driving mechanism (4) is arranged on the left side of the screw conveying mechanism (3) and is used to drive the operation of the screw conveying mechanism (3); the feeding mechanism (5) is arranged at the feeding port of the screw conveying mechanism (3); the powder conveying pump (6) is located above the feeding mechanism (5); the powder conveying pump (6) is used to connect the pretreatment component (1) with the feeding mechanism (5); the discharge port of the screw conveying mechanism (3) is connected to the mixing component (2); the feeding mechanism (7) is arranged at the rear of the screw conveying mechanism (3) and is connected to the feeding mechanism (5) and is used to supply auxiliary materials; the airflow mechanism (8) is located on the feeding mechanism (7) and is used to provide airflow to the feeding mechanism (7) and the screw conveying mechanism (3); The screw conveying mechanism (3) comprises a screw conveying component (31), an air guide component (32), a material disturbing component (33), a side sealing component (34) and a shielding component (35), wherein the air guide component (32) is located at the front side of the screw conveying component (31), the material disturbing component (33) is located at the material outlet of the screw conveying component (31), the side sealing component (34) is arranged at the left end of the screw conveying component (31), and the shielding component (35) is located inside the screw conveying component (31) and is used for blocking and adjusting the ventilation opening of the air guide component (32).

2. The conveying equipment for producing euglena solid beverage according to claim 1, characterized in that: The screw conveying assembly (31) comprises a shell (311), wherein a screw conveying shaft (312) for conveying materials is arranged inside the shell (311), and the two ends of the screw conveying shaft (312) respectively penetrate the corresponding two sides of the shell (311), and a cover plate (313) is installed on the top of the shell (311) by screws, and a notch for serving as a material inlet is provided on the left side of the top of the cover plate (313), and a discharge hopper for serving as a material discharge port is arranged on the right side of the bottom of the shell (311), and the bottom of the discharge port extends into the mixing component (2); The air guide assembly (32) comprises a main pipe located at the front side of the shell (311), a plurality of branch pipes are arranged linearly on the rear side shell wall of the main pipe, and the rear ends of the branch pipes extend into the interior of the shell (311) and serve as ventilation openings; The material disturbing assembly (33) comprises a convex plate (331) arranged on the right end of the spiral conveying shaft (312), a swing rod (332) is arranged on the right side of the convex plate (331), a vertical groove is opened on the swing rod (332), a convex rod is slidably connected in the vertical groove, and the left end of the convex rod is fixedly connected to the convex plate (331), and a material disturbing plate (333) is movably connected to the inside of the discharge hopper via a pin shaft, and the pin shaft and the bottom end of the swing rod (332) are fixedly connected via bolts.

3. The conveying equipment for producing euglena solid beverage according to claim 2, characterized in that: The side sealing assembly (34) comprises an arc-shaped groove formed on the left side wall of the shell (311), a discharge port for discharging residues is formed on the inner wall of the arc-shaped groove, an arc-shaped sealing plate (341) for sealing the discharge port is slidably connected in the arc-shaped groove, a connecting arm is installed on the outer wall of the arc-shaped sealing plate (341) by bolts, a fixing ring (342) is fixedly connected to the connecting arm, a friction wheel (343) is provided inside the fixing ring (342), the friction wheel (343) is fixedly connected to the screw conveying shaft (312), and the friction wheel (343) and the fixing ring (342) are in friction contact with each other; The shielding assembly (35) comprises a blocking strip (351) for blocking the vent, and lifting rods (352) are symmetrically arranged on the top of the blocking strip (351), and the top ends of the two lifting rods (352) both penetrate the cover plate (313) and are jointly installed with an integration plate (353), and a driven wedge block (354) is arranged at the bottom center of the integration plate (353), and an active wedge block (355) located on the cover plate (313) is arranged below the driven wedge block (354), and a connecting rod (356) is fixedly connected to the left side of the active wedge block (355), wherein the active wedge block (355) is slidably connected to the cover plate (313), and the active wedge block (355) and the driven wedge block (354) are in active contact, and each of the lifting rods (352) is sleeved with a compression spring.

4. The conveying equipment for producing a euglena solid beverage according to claim 2, characterized in that: The driving mechanism (4) comprises a bracket fixedly connected to the left outer wall of the housing (311) by bolts, a motor (41) is installed on the left inner wall of the bracket, a driving gear (42) is installed at the output end of the motor (41), a driven gear (43) meshing with the driving gear (42) is provided below the driving gear (42), and the driven gear (43) is fixedly connected to the left end of the screw conveying shaft (312), and the driving mechanism (4) is used to drive the movement of the screw conveying shaft (312).

5. The conveying equipment for producing euglena solid beverage according to claim 3, characterized in that: The feeding mechanism (5) comprises a bottom channel (51) fixedly connected to the top shell wall of the cover plate (313) by bolts, the top of the bottom channel (51) is fixedly connected to the top channel (52) by bolts, and the powder delivery pump (6) is arranged at the top of the top channel (52), wherein the feeding end of the powder delivery pump (6) is connected to the discharging end of the pretreatment component (1), and the discharging end of the powder delivery pump (6) is provided with a conduit, and the bottom end of the conduit extends into the interior of the top channel (52); A through groove is provided on the rear shell wall of the bottom channel (51), a feed hopper is integrally arranged in the through groove, an inclined plate (55) is integrally arranged above the feed hopper and is located on the rear inner wall of the bottom channel (51), a rectangular groove is provided below the feed hopper and is located on the left shell wall of the bottom channel (51), a shielding plate (53) for shielding and blocking is movably connected in the rectangular groove, a convex block is provided on the left side of the top of the shielding plate (53), a multi-section electric push rod (54) is provided between the convex block and the bottom channel (51), and one end of the connecting rod (356) away from the active wedge block (355) is fixedly connected to the convex block; The rear side of the feed hopper is connected with a feed channel (56) by means of bolts, a guide plate (57) for guiding materials is installed on the top inner wall of the feed channel (56) by means of screws, and a notch is provided above the guide plate (57) on the top shell wall of the feed channel (56).

6. The conveying equipment for producing euglena solid beverage according to claim 5, characterized in that: The feeding mechanism (7) comprises a side frame (71), a material storage assembly (72), a reciprocating screw (73), an impeller (74), an auxiliary plate (75) and a vibration assembly (76), wherein the side frame (71) is fixedly connected to the rear outer wall of the shell (311) by bolts, a loading port is provided on the top shell wall of the side frame (71), the material storage assembly (72) comprises a material box (721) arranged in the loading port, a discharge channel (722) is integrally provided at the bottom end of the material box (721), the bottom end of the discharge channel (722) is located on the notch, and is connected to the top shell wall of the feed channel (56) by screws; The material box (721) is integrally provided with a partition (723) inside for dividing a plurality of auxiliary material spaces. The bottoms of the plurality of auxiliary material spaces are interconnected to facilitate the auxiliary material to flow into the discharge channel (722). A top cover (724) for sealing is installed on the top of the material box (721) by means of screws. A special-shaped column (725) is installed inside the discharge channel (722) by means of a connecting shaft. Both ends of the connecting shaft respectively penetrate the corresponding side walls of the discharge channel (722).

7. The conveying equipment for producing euglena solid beverage according to claim 6, characterized in that: The rear end of the reciprocating screw rod (73) is rotatably connected to the corresponding inner wall of the side frame (71) through a bearing, and the front end of the reciprocating screw rod (73) is installed on the connecting shaft through a coupling. The impeller (74) is arranged on the reciprocating screw rod (73), and the front side of the impeller (74) is threadedly connected to an inner groove ring located on the reciprocating screw rod (73), and the outer ring bottom of the inner groove ring is fixedly connected to a contact rod; The auxiliary plate (75) is located below the reciprocating screw rod (73), and the auxiliary plate (75) is fixedly connected to the discharge channel (722) by bolts. A transverse groove is provided on the auxiliary plate (75), and the bottom end of the contact rod passes through the transverse groove and is rollingly connected with a ball bearing. The vibration assembly (76) comprises a movable frame (761) located below the auxiliary plate (75), guide rods (762) are movably connected to the left and right outer walls of the movable frame (761), the top of the guide rod (762) is fixedly connected to the top shell wall of the side frame (71) by bolts, and knocking rods (763) for knocking the material box (721) are installed at both ends of the top of the movable frame (761); A double-sided wedge is integrally provided on the inner wall of the bottom of the movable frame (761), and a ball on the bottom end of the contact rod is in rolling contact with the double-sided wedge; Each of the knocking rods (763) is sleeved with a positioning plate and a return spring, wherein the positioning plate is fixedly connected to the outer shell wall of the knocking rod (763), the top end of the return spring is arranged on the positioning plate, and the bottom end of the return spring is fixedly connected to the moving frame (761).

8. The conveying equipment for producing euglena solid beverage according to claim 1, characterized in that: The airflow mechanism (8) comprises an air pump body (81), a rectifying assembly (82), an air delivery pipeline 1 (83), an air delivery pipeline 2 (84) and a blocking member (85), wherein the air pump body (81) is arranged on the top outer wall of the side frame (71), the rectifying assembly (82) comprises a box body (821) fixedly connected to the rear outer wall of the side frame (71) by bolts, a transverse plate (822) is arranged inside the box body (821), a filter plate for filtering gas is installed on the transverse plate (822), and the air pump body (81) and the box body (821) are connected by an air guide pipe; The gas delivery pipeline 1 (83) comprises a curved pipe arranged on the right side wall of the box body (821), the front end of the curved pipe is connected to the feed channel (56), a branch pipe is arranged on the side wall of the curved pipe, and an air nozzle is installed at the top end of the branch pipe, and the air nozzle is used to blow the impeller (74) to move; The second gas delivery pipeline (84) is arranged on the left shell wall of the box body (821), and the other end of the second gas delivery pipeline (84) is installed on the gas guide component (32).

9. The conveying equipment for producing euglena solid beverage according to claim 8, characterized in that: The blocking member (85) comprises a switching plate (851) arranged inside the box body (821), a linkage rod (852) being installed on the side wall of the switching plate (851), the other end of the linkage rod (852) passing through the corresponding side wall of the box body (821) and being fixedly connected to the shielding plate (53), wherein the switching plate (851) is located below the horizontal plate (822) and is used to adjust the blocking switching between the gas transmission pipeline 1 (83) and the gas transmission pipeline 2 (84).

Citation Information

Patent Citations

  • Lifting device for solid fruit and vegetable solid beverage processing equipment

    CN214933334U

Cited By

  • Powdery food conveying device

    CN120440533A