A feeding device with adjustable height for pudding processing
By designing a loading equipment for pudding processing with adjustable height, combined with screening, feeding assistance, lateral conveying, crushing and height conveying mechanisms, the problem of insufficient mixing caused by pudding powder agglomeration in the prior art is solved, and efficient screening and transportation are achieved.
Patent Information
- Application Number
- CN202510068389.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-16
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2045-01-16
AI Technical Summary
The existing pudding powder conveying device cannot effectively screen the agglomerated pudding powder, resulting in insufficient mixing during the stirring process.
A height-adjustable feeding equipment for pudding processing is designed, including a screening mechanism, a feed auxiliary mechanism, a transverse conveying mechanism, a crushing mechanism and a height conveying mechanism. The screening mechanism drives the belt and shaft to rotate by driving the motor, and combines the inclined design of the vibrating telescopic rod and the screening box to achieve rapid screening of agglomerated pudding powder.
Effectively screen out pudding powder that does not agglomerate, improves the mixing sufficientness during the stirring process, avoids clogging problems caused by agglomeration, and improves the conveying efficiency of the equipment.
Smart Images

Figure CN119568661B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of pudding processing feeding equipment, in particular to a pudding processing feeding equipment with adjustable height. Background Art
[0002] With the improvement of living standards, people's demand for food is no longer just about quantity, but the requirements for food nutrition and safety are getting higher and higher. Pudding is a gel-like semi-solid dairy product with a delicate and smooth taste. The main ingredients of pudding include pudding powder, sucrose, starch, and food additives. During processing, various raw materials need to be transported to the stirring device for mixing.
[0003] Pudding processing requires the use of a conveying device to convey the pudding powder. Most of the pudding powder raw material conveying devices in the existing technology only have the function of conveying. Since pudding powder is easy to clump when it gets wet, it will lead to insufficient mixing during the stirring process. Therefore, it is extremely important to be able to screen out the agglomerated pudding powder during the conveying process. Summary of the invention
[0004] The object of the present invention is to provide a pudding processing feeding device with adjustable height to solve the problems raised in the above background technology.
[0005] To solve the above technical problems, the present invention is achieved through the following technical solutions:
[0006] The present invention is a pudding processing feeding device with adjustable height, comprising an equipment box, a plurality of supporting bases are fixedly connected to the bottom of the equipment box, a feeding cylinder is fixedly connected to the side wall of the equipment box, an end of the feeding cylinder away from the equipment box is fixedly connected to a discharge port, a feeding telescopic hose is fixedly connected to the bottom of the discharge port, an electric telescopic rod is fixedly connected to the top of the feeding cylinder, an end of the electric telescopic rod away from the feeding cylinder is fixedly connected to the bottom of the feeding telescopic hose, a feeding port is opened on the top of the equipment box, a feeding plate is arranged on the top of the equipment box, and further comprises:
[0007] The screening mechanism includes a driving motor fixedly connected to one side of the equipment box, an output end of the driving motor is fixedly connected to an output shaft, an end of the output shaft close to the driving motor is connected to a belt 1, an internal rotation of the equipment box is connected to a shaft 1, and the belt 1 is connected to the shaft 1;
[0008] Among them, a reciprocating threaded groove is opened on the side wall of the end of the rotating shaft away from the belt, a moving block is rotatably connected to the reciprocating threaded groove, a vibrating telescopic rod is fixedly connected to the top of the moving block, a screening box is fixedly connected to the end of the vibrating telescopic rod away from the moving block, a baffle is fixedly connected to the top of the screening box, and a feeding port is opened on the top of the screening box.
[0009] Furthermore, a screening auxiliary mechanism is provided at the bottom of the screening box. The screening auxiliary mechanism includes a plurality of sliding rods fixedly connected to the bottom of the screening box. A plurality of limiting rods are fixedly connected inside the equipment box body. Sliding grooves are formed on the limiting rods, and the sliding rods slide in the sliding grooves on the limiting rods. A limiting ring is slidably connected to the sliding rods. A compression spring is sleeved on the sliding rods. An extrusion rod is fixedly connected to the top of the first baffle, and a plurality of special-shaped extrusion plates are fixedly connected to the bottom of the feeding plate.
[0010] Furthermore, a feeding auxiliary mechanism is provided on the side wall of the equipment box body. The feeding auxiliary mechanism includes a plurality of sliding grooves fixedly connected to the inner wall of the equipment box body. The feeding plate slides inside the sliding grooves. A plurality of pressure springs are arranged inside the sliding grooves, and the equipment box body.
[0011] Furthermore, a horizontal conveying mechanism is provided inside the equipment box body. The horizontal conveying mechanism includes a second belt rotatably connected to one end of the output rotating shaft close to the driving motor. A second rotating shaft is rotatably connected inside the equipment box body. One end of the second belt away from the output rotating shaft is drivingly connected to the second rotating shaft. One end of the second rotating shaft away from the second belt is rotatably connected to a first conveyor belt. A plurality of auxiliary rotating shafts are drivingly connected to the first conveyor belt.
[0012] Furthermore, the horizontal conveying mechanism further includes a first gear fixedly connected to one end of the output rotating shaft close to the driving motor. A rotating shaft is rotatably connected to the side wall of the equipment box body. A second gear is fixedly connected to one end of the rotating shaft close to the first gear. The second gear meshes with the first gear.
[0013] Furthermore, the horizontal conveying mechanism further includes a second conveyor belt drivingly connected to the rotating shaft. An arc-shaped plate is fixedly connected to the inner wall of the equipment box body. Both sides of the arc-shaped plate are respectively in contact with the first conveyor belt and the second conveyor belt. A horizontal spiral conveying blade is fixedly connected to the outer wall of one end of the output rotating shaft away from the driving motor.
[0014] Furthermore, a crushing mechanism is provided on the first rotating shaft. The crushing mechanism includes a crushing conveyor belt rotatably connected to one end of the first rotating shaft away from the reciprocating thread groove. A plurality of crushing rotating shafts are rotatably connected to the inner wall of the equipment box body. The crushing rotating shafts are rotatably connected to the crushing conveyor belt. The crushing conveyor belt is in contact with the second conveyor belt and the crushing conveyor belt is in contact with the first conveyor belt.
[0015] Furthermore, a height conveying mechanism is provided at the bottom of the equipment box body. The height conveying mechanism includes a third belt drivingly connected to one end of the output rotating shaft close to the driving motor. A third rotating shaft is rotatably connected to the bottom of the equipment box body. One end of the third belt away from the output rotating shaft is drivingly connected to the third rotating shaft. A first bevel gear is fixedly connected to one end of the third rotating shaft away from the third belt. A fourth rotating shaft is rotatably connected inside the feeding cylinder. A second bevel gear is fixedly connected to the bottom of the fourth rotating shaft. A vertical spiral conveying blade is fixedly connected to the outer wall of the fourth rotating shaft.
[0016] The present invention has the following beneficial effects:
[0017] (1) In the present invention, when using the feeding device for pudding processing, first pour the pudding powder onto the feeding plate inside the device box. The pudding powder raw material enters the screening mechanism through the feeding port. The pudding powder enters the inside of the screening box through the feeding port at the top of the screening box. At this time, start the driving motor. The output end of the driving motor rotates to drive the output rotating shaft to rotate. The rotation of the output rotating shaft drives the rotation of the first rotating shaft at one end of the belt. The rotation of the first rotating shaft drives the rotation of the reciprocating thread groove. The rotation of the reciprocating thread groove drives the horizontal movement of the vibrating telescopic rod on the moving block. The movement of the vibrating telescopic rod drives the movement of the first baffle on the screening box. At this time, the pudding powder raw material falling inside the screening box passes through the screening holes at the bottom of the screening box. The bottom of the screening box is inclined. Such a setting is conducive to the agglomerated pudding powder raw material sliding down along the bottom of the screening box. Such a setting is conducive to quickly screening out the non-agglomerated pudding powder raw material. By setting the screening auxiliary mechanism, when the first rotating shaft rotates to drive the rotation of the reciprocating thread groove, the rotation of the reciprocating thread groove drives the horizontal movement of the vibrating telescopic rod on the moving block. The movement of the vibrating telescopic rod drives the movement of the first baffle on the screening box. The first baffle drives the movement of the extrusion rod at the top. The movement of the extrusion rod generates extrusion with the special-shaped extrusion plate to drive the screening box to extrude several sliding rods at the bottom to move downward along the sliding grooves on the limiting rods. At this time, the extrusion spring contracts. Such a setting is conducive to the screening box generating vibration during the reciprocating movement, facilitating the quick screening of the pudding powder inside the screening box and improving the screening efficiency of the screening mechanism.
[0018] (2) In the present invention, by setting the feeding auxiliary mechanism, when the extrusion rod moves and generates extrusion with the special-shaped extrusion plate, the special-shaped extrusion plate will drive the feeding plate at the top of the special-shaped extrusion plate to extrude several compression springs along the sliding groove when being extruded. The sliding groove will generate vibration when being extruded. Such a setting is conducive to combing the pudding powder raw material on the feeding plate to enter the inside of the screening box through the feeding port, avoiding the blockage of the pudding powder raw material at the feeding port. By setting the second baffle, when the feeding port at the top of the screening box corresponds to the feeding port, the pudding powder raw material on the feeding plate can enter the inside of the screening box. When the first baffle on the screening box corresponds to the feeding port, the pudding powder raw material on the feeding plate cannot enter the inside of the screening box. By controlling the intermittent entry of the pudding powder into the inside of the screening box, it is conducive to controlling the amount of the pudding powder raw material inside the screening box, avoiding the phenomenon that too much pudding powder raw material enters and causes untimely screening of the screening box and blockage of the screening holes.
[0019] (3) In this invention, by setting up a horizontal conveying mechanism, when the output rotating shaft rotates, it drives the rotating shaft two at one end of the second belt to rotate. The rotation of the rotating shaft two drives the first conveyor belt to rotate. The rotation of the first conveyor belt quickly conveys the pudding powder raw material falling on the first conveyor belt into the inside of the arc-shaped plate. Similarly, the rotation of the first gear drives the rotating shaft at one end of the second gear to rotate. The rotation of the rotating shaft drives the second conveyor belt to rotate. The rotation of the second conveyor belt quickly conveys the pudding powder raw material falling on the second conveyor belt into the inside of the arc-shaped plate. The rotation of the output rotating shaft drives the horizontal spiral conveying blade to rotate and convey the pudding powder raw material into the inside of the feeding cylinder. Such a setting is conducive to accelerating the conveying speed of the pudding powder raw material and improving the conveying efficiency of the device.
[0020] (4) In this invention, by setting up a crushing mechanism, the rotation of the first rotating shaft drives the crushing conveyor belt to rotate. At this time, the caked pudding powder raw material slipping down from the bottom of the screening box falls on the crushing conveyor belt. The caked pudding powder raw material falls between the first conveyor belt and the crushing conveyor belt and between the second conveyor belt and the crushing conveyor belt respectively. Through the rotational rolling between the first conveyor belt and the crushing conveyor belt, the caked pudding powder is crushed. Such a setting is conducive to breaking the caked pudding powder raw material and improving the quality of the pudding processed products.
[0021] Of course, when implementing any product of this invention, it is not necessarily required to achieve all the above-mentioned advantages simultaneously. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] In order to more clearly illustrate the technical solutions of the embodiments of this invention, the following will briefly introduce the drawings required for describing the embodiments. Obviously, the drawings in the following description are only some embodiments of this invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0023] Figure 1 It is a schematic diagram of the overall structure of this invention;
[0024] Figure 2 It is a schematic diagram of the structure of the screening mechanism of this invention;
[0025] Figure 3 For this invention Figure 2 An enlarged view of A in;
[0026] Figure 4 It is a schematic diagram of the structure of the screening auxiliary mechanism of this invention;
[0027] Figure 5 It is a schematic diagram of the structure of the horizontal conveying mechanism of this invention;
[0028] Figure 6 It is a schematic diagram of the structure of the feeding auxiliary mechanism of this invention;
[0029] Figure 7 For this inventionFigure 6 Enlarged view of B;
[0030] Figure 8 Schematic diagram of the horizontal spiral conveying blade structure of the present invention;
[0031] Figure 9 Schematic diagram of the height conveying mechanism of the present invention.
[0032] In the accompanying drawings, the list of components represented by each reference numeral is as follows:
[0033] In the figure: 1, equipment box body; 11, support base; 12, material conveying cylinder; 13, discharge port; 14, material conveying telescopic hose; 15, electric telescopic rod; 16, feed port; 17, feeding plate; 2, screening mechanism; 201, drive motor; 202, output rotating shaft; 203, belt one; 204, rotating shaft one; 205, reciprocating thread groove; 206, moving block; 207, vibration telescopic rod; 208, screening box; 209, baffle one; 210, feeding port; 3, screening auxiliary mechanism; 301, sliding rod; 302, limiting rod; 303, limiting ring; 304, extrusion spring; 305, extrusion rod; 306, special-shaped extrusion plate; 4, feeding auxiliary mechanism; 401, sliding groove; 402, pressure spring; 403, baffle two; 5, horizontal conveying mechanism; 501, belt two; 502, rotating shaft two; 503, conveyor belt one; 504, auxiliary rotating shaft; 505, gear one; 506, gear two; 507, rotating shaft; 508, conveyor belt two; 509, arc plate; 510, horizontal spiral conveying blade; 6, crushing mechanism; 601, crushing conveyor belt; 602, crushing rotating shaft; 7, height conveying mechanism; 701, belt three; 702, rotating shaft three; 703, bevel gear one; 704, bevel gear two; 705, rotating shaft four; 706, vertical spiral conveying blade. Specific embodiments
[0034] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0035] Example 1, please refer to Figure 1 - Figure 7As shown in the figure, the present invention is a feeding device for pudding processing with adjustable height, including a device box body 1. A plurality of support bases 11 are fixedly connected to the bottom of the device box body 1. A feeding cylinder 12 is fixedly connected to the side wall of the device box body 1. One end of the feeding cylinder 12 away from the device box body 1 is fixedly connected with a discharge port 13. A feeding telescopic hose 14 is fixedly connected to the bottom of the discharge port 13. An electric telescopic rod 15 is fixedly connected to the top of the feeding cylinder 12. One end of the electric telescopic rod 15 away from the feeding cylinder 12 is fixedly connected to the bottom of the feeding telescopic hose 14. A feeding port 16 is opened on the top of the device box body 1. A feeding plate 17 is arranged on the top of the device box body 1. It further includes:
[0036] A screening mechanism 2. The screening mechanism 2 includes a driving motor 201 fixedly connected to one side of the device box body 1. The output end of the driving motor 201 is fixedly connected with an output rotating shaft 202. One end of the output rotating shaft 202 close to the driving motor 201 is connected with a first belt 203 in a transmission manner. A first rotating shaft 204 is rotatably connected to the inside of the device box body 1. The first belt 203 is connected with the first rotating shaft 204 in a transmission manner;
[0037] Among them, a reciprocating thread groove 205 is opened on the side wall of one end of the first rotating shaft 204 away from the first belt 203. A moving block 206 is rotatably connected to the reciprocating thread groove 205. A vibrating telescopic rod 207 is fixedly connected to the top of the moving block 206. One end of the vibrating telescopic rod 207 away from the moving block 206 is fixedly connected with a screening box 208. A first baffle 209 is fixedly connected to the top of the screening box 208. A feeding port 210 is opened on the top of the screening box 208. The function of this component is that when using this feeding device for pudding processing, first pour the pudding powder onto the feeding plate 17 inside the device box body 1. The pudding powder raw material enters the screening mechanism 2 through the feeding port 16. The pudding powder enters the inside of the screening box 208 through the feeding port 210 on the top of the screening box 208. At this time, start the driving motor 201. The output end of the driving motor 201 rotates to drive the output rotating shaft 202 to rotate. The output rotating shaft 202 rotates to drive the first rotating shaft 204 at one end of the first belt 203 to rotate. The first rotating shaft 204 rotates to drive the reciprocating thread groove 205 to rotate. The reciprocating thread groove 205 rotates to drive the vibrating telescopic rod 207 on the moving block 206 to move horizontally. The vibrating telescopic rod 207 moves to drive the first baffle 209 on the screening box 208 to move. At this time, the pudding powder raw material falling into the inside of the screening box 208 passes through the screening holes at the bottom of the screening box 208. The bottom of the screening box 208 is inclined. Such a setting is beneficial for the caked pudding powder raw material to slide down along the bottom of the screening box 208. Such a setting is beneficial for quickly screening out the non-caked pudding powder raw material. By adjusting the electric telescopic rod 15, the electric telescopic rod 15 drives the feeding telescopic hose 14 to adjust the height.
[0038] A screening auxiliary mechanism 3 is provided at the bottom of the screening box 208. The screening auxiliary mechanism 3 includes a plurality of sliding rods 301 fixedly connected to the bottom of the screening box 208. A plurality of limiting rods 302 are fixedly connected inside the equipment box body 1. Sliding grooves are formed on the limiting rods 302, and the sliding rods 301 slide in the sliding grooves on the limiting rods 302. A limiting ring 303 is slidably connected to the sliding rods 301. A compression spring 304 is sleeved on the sliding rods 301. The top of the first baffle 209 is fixedly connected with a pressing rod 305. The bottom of the feeding plate 17 is fixedly connected with a plurality of special-shaped pressing plates 306. The function of this component is to set the screening auxiliary mechanism 3. When the first rotating shaft 204 rotates to drive the reciprocating thread groove 205 to rotate, the reciprocating thread groove 205 rotates to drive the vibration telescopic rod 207 on the moving block 206 to move horizontally. The movement of the vibration telescopic rod 207 drives the first baffle 209 on the screening box 208 to move. The first baffle 209 drives the pressing rod 305 on the top to move. The movement of the pressing rod 305 generates extrusion with the special-shaped pressing plate 306 to drive the screening box 208 to press a plurality of sliding rods 301 at the bottom to move downward along the sliding grooves on the limiting rods 302. At this time, the compression spring 304 contracts. Such a setting is beneficial to the screening box 208 generating vibration during the reciprocating movement, facilitating the rapid screening of the pudding powder inside the screening box 208 and improving the screening efficiency of the screening mechanism 2.
[0039] A feeding auxiliary mechanism 4 is provided on the side wall of the equipment box body 1. The feeding auxiliary mechanism 4 includes a plurality of sliding grooves 401 fixedly connected to the inner wall of the equipment box body 1. The feeding plate 17 slides inside the sliding grooves 401. A plurality of pressure springs 402 are arranged inside the sliding grooves 401, and the equipment box body 1. The function of this component is to set the feeding auxiliary mechanism 4. When the pressing rod 305 moves and generates extrusion with the special-shaped pressing plate 306, the special-shaped pressing plate 306 will drive the feeding plate 17 at the top of the special-shaped pressing plate 306 to press a plurality of pressure springs 402 along the sliding grooves 401 when being extruded. The sliding grooves 401 will generate vibration when being extruded. Such a setting is beneficial to the pudding powder raw material on the feeding plate 17 being sorted out and entering the screening box 208 through the feeding port 16, avoiding the blockage of the pudding powder raw material at the feeding port 16. By setting the second baffle 403, when the feeding port 210 at the top of the screening box 208 corresponds to the feeding port 16, the pudding powder raw material on the feeding plate 17 can enter the screening box 208. When the first baffle 209 on the screening box 208 corresponds to the feeding port 16, the pudding powder raw material on the feeding plate 17 cannot enter the screening box 208. By controlling the intermittent entry of the pudding powder into the screening box 208, it is beneficial to control the amount of the pudding powder raw material inside the screening box 208 and avoid the phenomenon that too much pudding powder raw material enters, resulting in untimely screening of the screening box 208 and blockage of the screening holes.
[0040] Embodiment 2, the difference feature from Embodiment 1 is that; as Figure 1 - Figure 9As shown in the figure, a transverse conveying mechanism 5 is arranged inside the equipment box body 1. The transverse conveying mechanism 5 includes a second belt 501 rotatably connected to one end of the output rotating shaft 202 close to the driving motor 201. A second rotating shaft 502 is rotatably connected inside the equipment box body 1. One end of the second belt 501 away from the output rotating shaft 202 is in transmission connection with the second rotating shaft 502. One end of the second rotating shaft 502 away from the second belt 501 is rotatably connected to a first conveyor belt 503, and a plurality of auxiliary rotating shafts 504 are in transmission connection on the first conveyor belt 503.
[0041] The transverse conveying mechanism 5 also includes a gear 505 fixedly connected to one end of the output shaft 202 close to the driving motor 201, and the side wall of the equipment box 1 is rotatably connected to a rotating shaft 507, and one end of the rotating shaft 507 close to the gear 1 505 is fixedly connected to a gear 2 506, and the gear 2 506 is meshed with the gear 1 505. The transverse conveying mechanism 5 also includes a conveyor belt 2 508 which is transmission-connected to the rotating shaft 507. An arc plate 509 is fixedly connected to the inner wall of the equipment box 1. Both sides of the arc plate 509 are in contact with the conveyor belt 1 503 and the conveyor belt 2 508 respectively. A horizontal spiral conveying blade 510 is fixedly connected to the outer wall of the end of the output shaft 202 away from the driving motor 201. The function of this component is to drive the shaft 2 502 at one end of the belt 2 501 to rotate by setting the transverse conveying mechanism 5. The rotation of the shaft 2 502 drives the conveyor belt 1 503 to rotate. The conveyor belt 1 503 rotates to quickly transport the pudding powder raw materials falling on the conveyor belt 1 503 to the inside of the arc plate 509. Similarly, the rotation of gear 1 505 drives the rotating shaft 507 at one end of gear 2 506 to rotate, and the rotation of the rotating shaft 507 drives the conveyor belt 2 508 to rotate. The conveyor belt 2 508 rotates to quickly convey the pudding powder raw materials falling on the conveyor belt 2 508 to the inside of the arc plate 509, and the rotation of the output shaft 202 drives the horizontal spiral conveying blade 510 to rotate to convey the pudding powder raw materials to the inside of the feeding barrel 12. This arrangement is conducive to speeding up the speed of conveying the pudding powder raw materials and improving the conveying efficiency of the device. The rotating shaft 204 is provided with a crushing mechanism 6, which includes a crushing conveyor belt 601 rotatably connected to the end of the rotating shaft 204 away from the reciprocating thread groove 205. The inner wall of the equipment box 1 is rotatably connected with a plurality of crushing rotating shafts 602, and the crushing rotating shafts 602 are rotatably connected with the crushing conveyor belt 601. The crushing conveyor belt 601 is in contact with the conveyor belt 2 508, and the crushing conveyor belt 601 is in contact with the conveyor belt 1 503. The function of this component is to set the crushing mechanism 6, the rotating shaft 204 rotates, and the crushing conveyor belt 601 is in contact with the conveyor belt 2 508. The crushing conveyor belt 601 is driven to rotate. At this time, the agglomerated pudding powder raw materials sliding down from the bottom of the screening box 208 fall on the crushing conveyor belt 601. The agglomerated pudding powder raw materials fall between the conveyor belt 1 503 and the crushing conveyor belt 601 and between the conveyor belt 2 508 and the crushing conveyor belt 601 respectively. The agglomerated pudding powder is crushed by rotating and crushing between the conveyor belt 1 503 and the crushing conveyor belt 601. This arrangement is conducive to crushing the agglomerated pudding powder raw materials and improving the quality of pudding processed products.A height conveying mechanism 7 is provided at the bottom of the equipment box body 1. The height conveying mechanism 7 includes a third belt 701 drivingly connected to one end of the output rotating shaft 202 close to the driving motor 201. A third rotating shaft 702 is rotatably connected to the bottom of the equipment box body 1. One end of the third belt 701 away from the output rotating shaft 202 is drivingly connected to the third rotating shaft 702. A first bevel gear 703 is fixedly connected to one end of the third rotating shaft 702 away from the third belt 701. A fourth rotating shaft 705 is rotatably connected to the inside of the feeding cylinder 12. A second bevel gear 704 is fixedly connected to the bottom of the fourth rotating shaft 705. A vertical spiral conveying blade 706 is fixedly connected to the outer wall of the fourth rotating shaft 705. The function of this component is to drive the first bevel gear 703 at one end of the third rotating shaft 702 to rotate by the rotation of the output rotating shaft 202 through the setting of the height conveying mechanism 7. The rotation of the first bevel gear 703 drives the fourth rotating shaft 705 at one end of the second bevel gear 704 to rotate. The rotation of the fourth rotating shaft 705 drives the vertical spiral conveying blade 706 to rotate. The rotation of the vertical spiral conveying blade 706 drives the pudding powder inside the feeding cylinder 12 to be conveyed upward.
[0042] A specific application of this embodiment is:
[0043] When using the feeding equipment for pudding processing, first pour the pudding powder onto the feeding plate 17 inside the equipment box body 1. The pudding powder raw material enters the screening mechanism 2 through the feeding port 16. The pudding powder enters the inside of the screening box 208 through the feeding port 210 at the top of the screening box 208. At this time, start the driving motor 201. The output end of the driving motor 201 rotates to drive the output rotating shaft 202 to rotate. The rotation of the output rotating shaft 202 drives the rotating shaft 204 at one end of the first belt 203 to rotate. The rotation of the rotating shaft 204 drives the reciprocating thread groove 205 to rotate. The rotation of the reciprocating thread groove 205 drives the vibrating telescopic rod 207 on the moving block 206 to move horizontally. The movement of the vibrating telescopic rod 207 drives the first baffle 209 on the screening box 208 to move. At this time, the pudding powder raw material falling inside the screening box 208 passes through the screening holes at the bottom of the screening box 208. The bottom of the screening box 208 is inclined. This setting is beneficial for the caked pudding powder raw material to slide down along the bottom of the screening box 208. This setting is beneficial for quickly screening out the non-caked pudding powder raw material; by setting the screening auxiliary mechanism 3, when the rotating shaft 204 rotates to drive the reciprocating thread groove 205 to rotate, the rotation of the reciprocating thread groove 205 drives the vibrating telescopic rod 207 on the moving block 206 to move horizontally. The movement of the vibrating telescopic rod 207 drives the first baffle 209 on the screening box 208 to move. The first baffle 209 drives the extrusion rod 305 at the top to move. The movement of the extrusion rod 305 generates extrusion with the special-shaped extrusion plate 306 to drive the screening box 208 to squeeze several sliding rods 301 at the bottom to move downward along the chute on the limiting rod 302. At this time, the compression spring 304 contracts. This setting is beneficial for the screening box 208 to generate vibration during the reciprocating movement, facilitating the quick screening of the pudding powder inside the screening box 208 and improving the screening efficiency of the screening mechanism 2; by setting the feeding auxiliary mechanism 4, when the extrusion rod 305 moves and generates extrusion with the special-shaped extrusion plate 306, the special-shaped extrusion plate 306 will drive the feeding plate 17 at the top of the special-shaped extrusion plate 306 to squeeze several compression springs 402 along the sliding groove 401 when being squeezed. The sliding groove 401 will generate vibration when being squeezed. This setting is beneficial for the pudding powder raw material on the feeding plate 17 to be combed and enter the inside of the screening box 208 through the feeding port 16, avoiding the blockage of the pudding powder raw material at the feeding port 16. By setting the second baffle 403, when the feeding port 210 at the top of the screening box 208 corresponds to the feeding port 16, the pudding powder raw material on the feeding plate 17 can enter the inside of the screening box 208. When the first baffle 209 on the screening box 208 corresponds to the feeding port 16, the pudding powder raw material on the feeding plate 17 cannot enter the inside of the screening box 208. By controlling the intermittent entry of the pudding powder into the inside of the screening box 208, it is beneficial to control the amount of the pudding powder raw material inside the screening box 208, avoiding the phenomenon that too much pudding powder raw material enters and causes the screening box 208 to fail to screen in time and block the screening holes;
[0044] By setting the horizontal conveying mechanism 5, the rotation of the output rotating shaft 202 drives the rotation of the rotating shaft 502 at one end of the second belt 501. The rotation of the rotating shaft 502 drives the rotation of the first conveyor belt 503. The rotation of the first conveyor belt 503 quickly conveys the pudding powder raw material falling on the first conveyor belt 503 into the inside of the arc plate 509. Similarly, the rotation of the first gear 505 drives the rotation of the rotating shaft 507 at one end of the second gear 506. The rotation of the rotating shaft 507 drives the rotation of the second conveyor belt 508. The rotation of the second conveyor belt 508 quickly conveys the pudding powder raw material falling on the second conveyor belt 508 into the inside of the arc plate 509. The rotation of the output rotating shaft 202 drives the rotation of the horizontal spiral conveying blade 510 to convey the pudding powder raw material into the feeding cylinder 12. Such a setting is beneficial to accelerating the conveying speed of the pudding powder raw material and improving the conveying efficiency of the device. By setting the crushing mechanism 6, the rotation of the first rotating shaft 204 drives the rotation of the crushing conveyor belt 601. At this time, the agglomerated pudding powder raw material slipping from the bottom of the screening box 208 falls on the crushing conveyor belt 601. The agglomerated pudding powder raw material falls between the first conveyor belt 503 and the crushing conveyor belt 601 and between the second conveyor belt 508 and the crushing conveyor belt 601. Through the rotational rolling between the first conveyor belt 503 and the crushing conveyor belt 601, the agglomerated pudding powder is crushed. Such a setting is beneficial to crushing the agglomerated pudding powder raw material and improving the quality of the pudding processed product. By setting the height conveying mechanism 7, the rotation of the output rotating shaft 202 drives the rotation of the first bevel gear 703 at one end of the third rotating shaft 702. The rotation of the first bevel gear 703 drives the rotation of the rotating shaft 705 at one end of the second bevel gear 704. The rotation of the rotating shaft 705 drives the rotation of the vertical spiral conveying blade 706. The rotation of the vertical spiral conveying blade 706 drives the pudding powder inside the feeding cylinder 12 to be conveyed upward.
[0045] The preferred embodiments of the present invention disclosed above are only used to help explain the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to the specific embodiments described. Obviously, many modifications and changes can be made according to the content of this specification. These embodiments are selected and specifically described in this specification to better explain the principle and practical application of the present invention, so that those skilled in the relevant technical field can well understand and utilize the present invention. The present invention is only limited by the claims and their full scope and equivalents.
Claims
1. A pudding processing feeding device with adjustable height, comprising an equipment box (1), the bottom of the equipment box (1) is fixedly connected to a plurality of supporting bases (11), the side wall of the equipment box (1) is fixedly connected to a feeding cylinder (12), one end of the feeding cylinder (12) away from the equipment box (1) is fixedly connected to a discharge port (13), the bottom of the discharge port (13) is fixedly connected to a feeding telescopic hose (14), the top of the feeding cylinder (12) is fixedly connected to an electric telescopic rod (15), one end of the electric telescopic rod (15) away from the feeding cylinder (12) is fixedly connected to the bottom of the feeding telescopic hose (14), a feeding port (16) is opened at the top of the equipment box (1), and a feeding plate (17) is arranged at the top of the equipment box (1), characterized in that: Also includes: A screening mechanism (2), the screening mechanism (2) comprising a driving motor (201) fixedly connected to one side of a device housing (1), the output end of the driving motor (201) being fixedly connected to an output rotating shaft (202), the output rotating shaft (202) being drivingly connected to a belt 1 (203) at one end close to the driving motor (201), the interior of the device housing (1) being rotatably connected to a rotating shaft 1 (204), the belt 1 (203) being drivingly connected to the rotating shaft 1 (204); A reciprocating thread groove (205) is provided on the side wall of the rotating shaft 1 (204) at one end away from the belt 1 (203); a moving block (206) is rotatably connected to the reciprocating thread groove (205); a vibrating telescopic rod (207) is fixedly connected to the top of the moving block (206); an end of the vibrating telescopic rod (207) away from the moving block (206) is fixedly connected to a screening box (208); a baffle 1 (209) is fixedly connected to the top of the screening box (208); and a material inlet (210) is provided on the top of the screening box (208); A screening auxiliary mechanism (3) is provided at the bottom of the screening box (208), and the screening auxiliary mechanism (3) comprises a plurality of sliding rods (301) fixedly connected to the bottom of the screening box (208); a plurality of limiting rods (302) are fixedly connected to the inside of the equipment box (1); a sliding groove is provided on the limiting rod (302); the sliding rod (301) slides in the sliding groove on the limiting rod (302); a limiting ring (303) is slidably connected to the sliding rod (301); an extrusion spring (304) is sleeved on the sliding rod (301); an extrusion rod (305) is fixedly connected to the top of the baffle plate 1 (209); and a plurality of special-shaped extrusion plates (306) are fixedly connected to the bottom of the feed plate (17).
2. The height-adjustable pudding processing feeding equipment according to claim 1, characterized in that: The side wall of the equipment box (1) is provided with a feeding auxiliary mechanism (4), the feeding auxiliary mechanism (4) comprises a plurality of sliding grooves (401) fixedly connected to the inner wall of the equipment box (1), the feeding plate (17) slides inside the sliding grooves (401), and a plurality of pressure springs (402) are provided inside the sliding grooves (401), the equipment box (1).
3. The height-adjustable pudding processing feeding equipment according to claim 2, characterized in that: A transverse conveying mechanism (5) is arranged inside the equipment housing (1), and the transverse conveying mechanism (5) comprises a belt 2 (501) rotatably connected to an end of the output shaft (202) close to the drive motor (201); the interior of the equipment housing (1) is rotatably connected to the shaft 2 (502); an end of the belt 2 (501) away from the output shaft (202) is transmission-connected to the shaft 2 (502); an end of the shaft 2 (502) away from the belt 2 (501) is rotatably connected to a conveyor belt 1 (503); and a plurality of auxiliary shafts (504) are transmission-connected to the conveyor belt 1 (503).
4. The height-adjustable pudding processing feeding equipment according to claim 3, characterized in that: The transverse conveying mechanism (5) further comprises a gear 1 (505) fixedly connected to an end of the output shaft (202) close to the driving motor (201); a rotating shaft (507) is rotatably connected to the side wall of the equipment housing (1); a gear 2 (506) is fixedly connected to an end of the rotating shaft (507) close to the gear 1 (505); and the gear 2 (506) is meshed with the gear 1 (505).
5. The height-adjustable pudding processing feeding equipment according to claim 4, characterized in that: The transverse conveying mechanism (5) further comprises a conveyor belt 2 (508) which is transmission-connected to the rotating shaft (507); an arc-shaped plate (509) is fixedly connected to the inner wall of the equipment housing (1); two sides of the arc-shaped plate (509) are respectively in contact with the conveyor belt 1 (503) and the conveyor belt 2 (508); and a horizontal spiral conveying blade (510) is fixedly connected to the outer wall of one end of the output rotating shaft (202) away from the driving motor (201).
6. The height-adjustable pudding processing feeding equipment according to claim 5, characterized in that: The rotating shaft (204) is provided with a crushing mechanism (6), the crushing mechanism (6) comprising a crushing conveyor belt (601) rotatably connected to the end of the rotating shaft (204) away from the reciprocating thread groove (205), the inner wall of the equipment housing (1) is rotatably connected to a plurality of crushing rotating shafts (602), the crushing rotating shafts (602) are rotatably connected to the crushing conveyor belt (601), the crushing conveyor belt (601) is in contact with the conveyor belt (508), and the crushing conveyor belt (601) is in contact with the conveyor belt (503).
7. The height-adjustable pudding processing feeding equipment according to claim 6, characterized in that: A height conveying mechanism (7) is provided at the bottom of the equipment housing (1), and the height conveying mechanism (7) includes a belt three (701) which is transmission-connected to one end of the output shaft (202) close to the drive motor (201); the bottom of the equipment housing (1) is rotationally connected to the shaft three (702); the end of the belt three (701) away from the output shaft (202) is transmission-connected to the shaft three (702); the end of the shaft three (702) away from the belt three (701) is fixedly connected to a bevel gear one (703); the interior of the feed barrel (12) is rotationally connected to the shaft four (705); the bottom of the shaft four (705) is fixedly connected to a bevel gear two (704); and the outer wall of the shaft four (705) is fixedly connected to a vertical spiral conveying blade (706).
Citation Information
Patent Citations
Spiral discharging mechanism for traditional Chinese medicine decoction pieces
CN213356285U
Feeding mechanism of dewatering vibrating screen
CN215438800U