Agricultural product raw material conveying device based on food sauce production
Patent Information
- Application Number
- CN202611178356.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-08-05
- Publication Date
- 2026-09-25
AI Technical Summary
[0003]现有螺旋输送设备在进料量波动较大时,进料斗内易出现物料堆积搭桥的现象,一方面会造成输送载荷骤增,若未能及时切断动力,容易导致驱动电机过载烧毁,而多数带过载保护的输送设备依赖电控传感器与控制系统实现断电保护,不仅整体结构成本较高,在粉尘、潮湿的食品加工环境中电气元件故障率偏高
1.通过物料自重触发液压联动实现动力自动脱扣,进料搭桥过载时可及时断开直流电机与传动组件的动力传递,有效避免电机因载荷过大受损,提升设备运行可靠性与驱动部件使用寿命。
Smart Images

Figure CN122809221A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of agricultural product transportation technology, and in particular to an agricultural product raw material conveying device based on food sauce production. Background Technology
[0002] In the production of food sauces, the conveying of granular agricultural raw materials is an important part of the pre-processing steps. Screw conveyors are widely used due to their advantages of closed conveying and continuous feeding. Their operational stability, feeding smoothness, and material integrity affect production efficiency and the processing quality of finished sauces.
[0003] When the feed rate fluctuates significantly, existing screw conveyor equipment is prone to material accumulation and bridging in the feed hopper. This can cause a sudden increase in the conveying load, and if the power is not cut off in time, it can easily lead to overload and burnout of the drive motor. Most conveyor equipment with overload protection relies on electrical control sensors and control systems to achieve power-off protection, which not only has a high overall structural cost, but also a high failure rate of electrical components in dusty and humid food processing environments.
[0004] On the other hand, if the feeding bridging cannot be cleared in time, it will cause feeding interruption and reduced conveying efficiency. Conventional methods of breaking and clearing the bridging mostly adopt the form of external vibration and rigid mixing. The range of the breaking effect is limited, it is difficult to dynamically change the support shape from the bottom of the material arch, the clearing effect is limited, and it is difficult to continuously ensure the continuous and stable conveying of materials.
[0005] Meanwhile, when rigid arch-breaking structures act on granular agricultural raw materials, they can easily cause the raw material particles to be squeezed, impacted and broken, damaging the integrity of the raw materials, which in turn affects the taste of subsequent sauce processing and the quality of the finished product. Existing equipment is difficult to simultaneously meet the requirements of arch-breaking and unblocking effect and low-damage conveying. Summary of the Invention
[0006] Given the problems of existing technologies, such as feeding bridging easily causing motor overload and burnout, high cost of electronic overload protection, limited effectiveness of conventional rigid arch breaking and clearing, and easy breakage of raw material particles, a new agricultural product raw material conveying device based on food sauce production is proposed.
[0007] Its purpose is to achieve automatic overload tripping through mechanical and hydraulic linkage to protect the drive motor, reduce equipment operating costs and failure risks, and use flexible screen movement combined with inclined plate floating to break up material arches, thereby enhancing the arch breaking and unblocking effect, ensuring continuous conveying, reducing raw material breakage, and improving raw material integrity.
[0008] The technical solution of the present invention is an agricultural product raw material conveying device based on food sauce production, including a conveying pipe, a DC motor fixedly installed on the outer wall of the conveying pipe, a feeding hopper fixedly installed on the outer wall of the conveying pipe, and further including a pressure receiving component slidably installed on the inner wall of the feeding hopper, a separation component slidably installed on the outer wall of the output end of the DC motor, a transmission component rotatably installed on the inner wall of the feeding hopper, and a movable component slidably installed on the inner wall of the transmission component. The pressure-bearing component includes a slide rod slidably disposed on the side wall of the feed hopper, an inclined plate fixedly disposed on the top of the slide rod, a limiting strip fixedly disposed on the top of the inclined plate, a sealing component fixedly disposed on the side wall of the feed hopper, a fixing tube fixedly disposed on the inner wall of the sealing component, a push rod slidably disposed on the inner wall of the sealing component, and a limiting ring fixedly disposed on the outer wall of the push rod. The sealing component includes a fixed ring fixedly disposed on the side wall of the feed hopper, a sliding groove formed on the inner wall of the fixed ring, a communicating groove formed on the inner wall of the fixed ring, a communicating hole formed on the inner wall of the fixed ring, and a connecting pipe fixedly disposed on the inner wall of the fixed ring. The outer wall of the connecting pipe is fixedly connected to the inner wall of the fixed ring through the communicating hole. The outer wall of the push rod is slidably connected to the inner wall of the fixed ring through the sliding groove. The communicating groove is connected to both the sliding groove and the communicating hole.
[0009] Furthermore, the separation assembly includes a connecting ring fixedly disposed on the inner side wall of the limiting ring, a compression spring fixedly disposed on the outer wall of the connecting ring, a rotating tube rotatably disposed on the outer wall of the connecting ring away from the compression spring, and a connecting toothed ring fixedly disposed on the outer wall of the rotating tube.
[0010] Furthermore, the transmission assembly includes a rotating component rotatably disposed on the inner wall of the conveying pipe, a contact component slidably disposed on the outer wall of the rotating component, and an elastic component fixedly disposed on the inner wall of the rotating component.
[0011] Furthermore, the rotating component includes a drive shaft rotatably disposed on the inner wall of the conveying pipe, a movable hole opened on the inner wall of the drive shaft, a fixed shaft fixedly disposed on the outer wall of the drive shaft, a drive ring fixedly disposed on the outer wall of the fixed shaft, and a drive rod fixedly disposed on the outer wall of the drive ring.
[0012] Furthermore, the contact component includes a transmission wheel slidably disposed on the outer wall of the transmission rod, a contact toothed ring fixedly disposed on the outer wall of the transmission wheel, a fixed rod fixedly disposed on the outer wall of the transmission wheel, and a rotating sleeve fixedly disposed on the outer wall of the fixed rod, wherein the inner side wall of the rotating sleeve is slidably connected to the outer wall of the fixed shaft.
[0013] Furthermore, the elastic component includes a limiting ring fixedly disposed on the inner wall of the fixed shaft, a compression spring fixedly disposed on the outer wall of the limiting ring, and a contact ring fixedly disposed on the other end of the compression spring, wherein the outer wall of the contact ring is fixedly connected to the side wall of the transmission wheel.
[0014] Furthermore, the movable component includes a fixing bar slidably disposed on the inner wall of the drive shaft through a movable hole, a paving groove formed on the outer wall of the fixing bar, a pressure groove formed on the inner wall of the fixing bar, and a receiving groove formed on the inner wall of the fixing bar, wherein the outer wall of the fixing bar is fixedly connected to the outer wall of the rotating sleeve.
[0015] Compared with the prior art, the present invention has the following beneficial effects: 1. The hydraulic linkage triggered by the material's own weight enables automatic power release. When the feeding bridging is overloaded, the power transmission between the DC motor and the transmission components can be disconnected in time, effectively preventing the motor from being damaged due to excessive load, and improving the reliability of equipment operation and the service life of drive components.
[0016] 2. By using the axial reciprocating motion of the drive shaft in conjunction with the up-and-down floating of the inclined plate, the support shape at the bottom of the material arch can be dynamically changed, effectively breaking up the material arch formed by the accumulation of feed material, clearing the feed channel, alleviating the blockage problem at the feed end, and ensuring continuous material conveying.
[0017] 3. The flexible screening method is used to break up the material arch. The fixed bar reciprocates and deforms to drive the spiral blade to screen, which replaces the rigid impact arch breaking method. This can reduce the breakage of granular agricultural products caused by external pressure and impact, ensure the integrity of raw materials, and meet the raw material transportation needs of food sauce production. Attached Figure Description
[0018] Figure 1 This is a three-dimensional structural diagram of the entire invention; Figure 2 This is a schematic diagram of the internal structure of the end portion of the present invention; Figure 3 This is a partial structural diagram of the entire invention; Figure 4 This is a cross-sectional view of the pressure-bearing component of the present invention; Figure 5 This is a partial structural schematic diagram of the pressure-bearing component of the present invention; Figure 6 For the present invention Figure 5 Enlarged structural diagram at point A in the middle; Figure 7 This is a partial cross-sectional view of the transmission assembly of the present invention; Figure 8 This is a cross-sectional view of the separation component of the present invention; Figure 9 This is a schematic diagram of the overall structure of the contact component of the present invention; Figure 10 This is a partial structural schematic diagram of the rotating component and the elastic component of the present invention; Figure 11 This is a schematic diagram of the overall structure of the active component of the present invention; Figure 12 For the present invention Figure 11 Enlarged structural diagram at point B.
[0019] In the picture: 1. Conveying pipe; 2. DC motor; 3. Feed hopper; 4. Pressure-bearing component; 41. Inclined plate; 42. Limiting strip; 43. Slide rod; 44. Fixing pipe; 45. Sealing component; 451. Fixing ring; 452. Sliding groove; 453. Connecting groove; 454. Connecting hole; 455. Connecting pipe; 46. Push rod; 47. Limiting ring; 5. Separation component; 51. Connecting ring; 52. Compression spring; 53. Rotating pipe; 54. Connecting toothed ring; 6. Transmission component 61. Contact component; 611. Contact toothed ring; 612. Drive wheel; 613. Fixed rod; 614. Rotating sleeve; 62. Rotating component; 621. Drive rod; 622. Drive ring; 623. Fixed shaft; 624. Drive shaft; 625. Movable hole; 63. Elastic component; 631. Contact ring; 632. Compression spring; 633. Restricting ring; 7. Movable assembly; 71. Fixed bar; 72. Actuating groove; 73. Pressure groove; 74. Receiving groove. Detailed Implementation
[0020] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, the specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings.
[0021] Example 1, referring to Figure 1 - Figure 10 The first embodiment of the present invention provides an agricultural product raw material conveying device for food sauce production, including a conveying pipe 1, a DC motor 2 fixedly connected to the outer wall of the conveying pipe 1, a feeding hopper 3 fixedly connected to the outer wall of the conveying pipe 1, and further including a pressure-receiving component 4 slidably connected to the inner wall of the feeding hopper 3, a separation component 5 slidably connected to the outer wall of the output end of the DC motor 2, a transmission component 6 rotatably connected to the inner wall of the feeding hopper 3, and a movable component 7 slidably connected to the inner wall of the transmission component 6.
[0022] The pressure-bearing component 4 includes a slide rod 43 slidably connected to the side wall of the feed hopper 3, an inclined plate 41 fixedly connected to the top of the slide rod 43, a limiting strip 42 fixedly connected to the top of the inclined plate 41, a sealing component 45 fixedly connected to the side wall of the feed hopper 3, a fixing tube 44 fixedly connected to the inner wall of the sealing component 45, a push rod 46 slidably connected to the inner wall of the sealing component 45, and a limiting ring 47 fixedly connected to the outer wall of the push rod 46; the sealing component 45 includes a fixing ring 451 fixedly connected to the side wall of the feed hopper 3, an opening... A sliding groove 452 is provided on the inner wall of the fixed ring 451, a connecting groove 453 is provided on the inner wall of the fixed ring 451, a connecting hole 454 is provided on the inner wall of the fixed ring 451, and a connecting pipe 455 is fixedly connected to the inner wall of the fixed ring 451. The outer wall of the connecting pipe 455 is fixedly connected to the inner wall of the fixed ring 451 through the connecting hole 454. The outer wall of the push rod 46 is slidably connected to the inner wall of the fixed ring 451 through the sliding groove 452. The connecting groove 453 is connected to the sliding groove 452 and the connecting hole 454 respectively.
[0023] Specifically, when the feed volume in the feed hopper 3 is too large and the material accumulates to form a material arch, the accumulated agricultural products act on the top surface of the inclined plate 41 of the pressure component 4, pressing down the inclined plate 41 by their own weight, driving the slide rod 43 to slide downward along the fixed pipe 44 until the limiting strip 42 abuts against the top of the feed hopper 3 to limit the stroke. During the downward movement of the inclined plate 41, the slide rod 43 extends into the fixed pipe 44, squeezing the hydraulic oil in the sealing component 45. The sealing component 45 uses the fixed ring 451 as the sealing body, and has a sliding groove 452, a connecting groove 453 and a connecting hole 454 inside. The connecting pipe 455 is fixed through the connecting hole 454. According to Pascal's principle, the pressurized oil in the fixed pipe 44 transmits pressure to the sliding groove 452 through the connecting pipe 455, the connecting hole 454 and the connecting groove 453, pushing the push rod 46 in the sliding groove 452 to extend outward. The push rod 46 drives the limiting ring 47 on the outer wall to move synchronously.
[0024] Reference Figure 1 - Figure 8 The separation assembly 5 includes a connecting ring 51 fixedly connected to the inner side wall of the limiting ring 47, a compression spring 52 fixedly connected to the outer wall of the connecting ring 51, a rotating tube 53 rotatably connected to the outer wall of the connecting ring 51 on the side away from the compression spring 52, and a connecting toothed ring 54 fixedly connected to the outer wall of the rotating tube 53. The transmission assembly 6 includes a rotating component 62 rotatably connected to the inner wall of the conveying tube 1, a contact component 61 slidably connected to the outer wall of the rotating component 62, and an elastic component 63 fixedly connected to the inner wall of the rotating component 62.
[0025] Specifically, the limiting ring 47 synchronously displaces, thereby driving the connecting ring 51 of the separation component 5 to compress the compression spring 52, pushing the rotating tube 53 and the connecting toothed ring 54 to move away from the transmission component 6. This causes the connecting toothed ring 54 to disengage from the contact toothed ring 611 of the contact component 61, disconnecting the power transmission between the output end of the DC motor 2 and the transmission component 6. This prevents damage to the motor due to excessive bridging load during feeding and achieves automatic overload tripping protection. After triggering the tripping, the DC motor 2 is controlled to reverse. At the same time, an external cylinder device applies a reverse thrust to the push rod 46, pushing the separation component 5 to reset as a whole. Since the meshing surface of the connecting toothed ring 54 and the contact toothed ring 611 is a sloping structure, the right-angle side of the tooth surface engages to transmit torque during forward rotation, and the sloping side contacts slide against each other during reverse rotation. The external cylinder provides a rigid reset thrust, and the sloping tooth surfaces squeeze against each other, forcing the contact component 61 to move axially and compress the elastic component 63. When the tooth surface passes the sloping section, the two toothed rings re-engage. Since the reverse rotation continues, the previous operation is repeated.
[0026] Reference Figure 1 - Figure 10 The rotating component 62 includes a drive shaft 624 rotatably connected to the inner wall of the conveying pipe 1, a movable hole 625 opened in the inner wall of the drive shaft 624, a fixed shaft 623 fixedly connected to the outer wall of the drive shaft 624, a drive ring 622 fixedly connected to the outer wall of the fixed shaft 623, and a drive rod 621 fixedly connected to the outer wall of the drive ring 622. The contact component 61 includes a drive wheel 612 slidably connected to the outer wall of the drive rod 621, a contact toothed ring 611 fixedly connected to the outer wall of the drive wheel 612, and a fixed... A fixed rod 613 is connected to the outer wall of the transmission wheel 612, and a rotating sleeve 614 is fixedly connected to the outer wall of the fixed rod 613. The inner side wall of the rotating sleeve 614 is slidably connected to the outer wall of the fixed shaft 623. The elastic component 63 includes a limiting ring 633 fixedly connected to the inner wall of the fixed shaft 623, a compression spring 632 fixedly connected to the outer wall of the limiting ring 633, and a contact ring 631 fixedly connected to the other end of the compression spring 632. The outer wall of the contact ring 631 is fixedly connected to the side wall of the transmission wheel 612.
[0027] Specifically, the transmission ring 622 is fixed to the outer wall of the fixed shaft 623, providing mounting support for the transmission rod 621. The toothed inclined surfaces press against each other, forcing the contact component 61 to move axially along the transmission rod 621, compressing the compression spring 632 of the elastic component 63. The transmission wheel 612 of the contact component 61 is always sleeved on the outer wall of the transmission rod 621 to provide guidance. When moving axially, the transmission wheel 612 slides along the transmission rod 621, and at the same time, it drives the rotating sleeve 614 to slide along the outer wall of the fixed shaft 623 through the fixed rod 613. The limiting ring 633 constrains the stroke of the compression spring 632, ensuring that the movement is smooth and without deviation. When the toothed surface rotates past the inclined section and reaches the right-angle meshing surface, the compression spring 632 rebounds and resets, pushing the contact ring 631 and the contact component 61 back to their original positions.
[0028] Example 2, refer to Figure 1 - Figure 12 This is the second embodiment of the present invention. The difference between this embodiment and the first embodiment is that the movable component 7 includes a fixing strip 71 that is slidably connected to the inner wall of the transmission shaft 624 through the movable hole 625, an actuating groove 72 formed on the outer wall of the fixing strip 71, a pressure groove 73 formed on the inner wall of the fixing strip 71, and a receiving groove 74 formed on the inner wall of the fixing strip 71. The outer wall of the fixing strip 71 is fixedly connected to the outer wall of the rotating sleeve 614.
[0029] Specifically, during the circumferential rotation and axial reciprocating movement of the drive shaft 624, the internal moving parts 7 move synchronously, and the fixed bar 71 reciprocates axially along the moving hole 625 of the drive shaft 624. The protrusion of the actuating groove 72 on the outer wall of the fixed bar 71 contacts and squeezes the inner wall of the moving hole 625, causing the protrusion to shift in the opposite direction of movement. After shifting, it squeezes the pressure groove 73, causing the groove to deform towards the receiving groove 74, forming a dynamic deformation with one side protruding and the other side concave. When the axial tension is greater than the static friction, the slotted part of the fixed bar 71 strikes the inner wall of the drive shaft 624 with the reciprocating movement. Combined with the axial reciprocating force, it drives the internal spiral blades to generate axial screening, which can effectively destroy the material bridging structure in the feed hopper 3 and avoid the rigid impact that causes the agricultural product particles to break, reducing the material breakage rate. At the same time, the inclined plate 41 moves up and down with the accumulation and depressurization of the material, which can dynamically change the support shape of the bottom of the material arch, further destroy the stability of the bridging, and help to clear the feed channel. The remaining structure is the same as that in Example 1.
[0030] Based on embodiments 1-2, the working principle of the present invention is as follows: With conveying pipe 1 as the main conveyor, DC motor 2 as the driving power, and feed hopper 3 as the material inlet, the system addresses the problems of easy bridging and motor damage during the conveying of granular agricultural products. Overload release is achieved by hydraulically linking the pressure-bearing component 4 and the sealing component 45 triggered by the material's own weight. Combined with the separation component 5, the inclined reset structure of the transmission component 6, and the screening structure of the moving component 7, the system takes into account motor protection, anti-bridging and anti-blocking, and low-damage conveying.
[0031] During normal conveying, granular agricultural products enter the equipment from the feed hopper 3. The DC motor 2 is driven by the separation component 5 and the transmission component 6, which in turn drives the transmission shaft 624 and the internal spiral blades of the rotating component 62 to rotate, pushing the material to the far end of the conveying pipe 1 for discharge.
[0032] When the feed hopper 3 is overloaded and forms a material arch, the material's own weight presses down on the inclined panel 41 of the pressure component 4, causing the slide rod 43 to move down along the fixed pipe 44 until the limit bar 42 abuts against the top of the feed hopper 3. The slide rod 43 squeezes the hydraulic oil in the sealing component 45. The sealing component 45 is based on the fixed ring 451 and has a sliding groove 452, a connecting groove 453, a connecting hole 454, and a connecting pipe 455. According to Pascal's principle, the oil pressure is transmitted to the sliding groove 452 through the connecting pipe 455, the connecting hole 454, and the connecting groove 453, pushing the push rod 46 to extend outward. This causes the limit ring 47 and the connecting ring 51 of the separation component 5 to compress the compression spring 52, causing the connecting toothed ring 54 on the rotating pipe 53 to disengage from the contact toothed ring 611 of the contact component 61, cutting off the power transmission and preventing the motor from being overloaded and damaged.
[0033] After tripping, the DC motor 2 is reversed. The external cylinder pushes the push rod 46 and the separation component 5 to reset. The meshing surface of the connecting toothed ring 54 and the contact toothed ring 611 is a slope structure. Forward rotation engages to transmit torque, and reverse rotation slides. The rigid thrust of the cylinder squeezes the tooth surface, pushing the contact component 61 to move axially along the transmission rod 621, compressing the compression spring 632 of the elastic component 63. The transmission ring 622 is fixed to the fixed shaft 623, supporting the transmission rod 621. The transmission wheel 612 slides along the transmission rod 621 and is guided by the fixed rod 613 to drive the rotating sleeve 614 to slide along the fixed shaft 623. The limiting ring 633 restricts the spring stroke. After the tooth surface rotates past the slope, the compression spring 632 rebounds and pushes the contact ring 631 to reset. The two toothed rings re-mesh and cycle back and forth with the motor in reverse rotation.
[0034] The drive shaft 624 rotates circumferentially and reciprocates axially, driving the fixed bar 71 of the movable component 7 to reciprocate along the movable hole 625. The protrusion of the actuating groove 72 is squeezed and deflected by the inner wall of the movable hole 625, and the pressure groove 73 is deformed towards the receiving groove 74. During the reciprocating motion, the fixed bar 71 strikes the inner wall of the drive shaft 624, driving the spiral blade to axially screen. This, together with the inclined plate 41, floats up and down to break the material arch and at the same time reduces the rigid impact crushing of the material.
[0035] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the spirit and scope of the technical solutions of the present invention, and all such modifications or substitutions should be covered within the scope of the claims of the present invention.
Claims
1. An agricultural product raw material conveying device for food sauce production, comprising a conveying pipe (1), a DC motor (2) fixedly disposed on the outer wall of the conveying pipe (1), and a feed hopper (3) fixedly disposed on the outer wall of the conveying pipe (1), characterized in that, It also includes a pressure-bearing component (4) that is slidably disposed on the inner wall of the feed hopper (3), a separation component (5) that is slidably disposed on the outer wall of the output end of the DC motor (2), a transmission component (6) that is rotatably disposed on the inner wall of the feed hopper (3), and a movable component (7) that is slidably disposed on the inner wall of the transmission component (6). The pressure-bearing component (4) includes a slide rod (43) slidably disposed on the side wall of the feed hopper (3), an inclined plate (41) fixedly disposed on the top of the slide rod (43), a limiting strip (42) fixedly disposed on the top of the inclined plate (41), a sealing component (45) fixedly disposed on the side wall of the feed hopper (3), a fixing tube (44) fixedly disposed on the inner wall of the sealing component (45), a push rod (46) slidably disposed on the inner wall of the sealing component (45), and a limiting ring (47) fixedly disposed on the outer wall of the push rod (46). The sealing component (45) includes a fixed ring (451) fixedly disposed on the side wall of the feed hopper (3), a sliding groove (452) opened on the inner wall of the fixed ring (451), a connecting groove (453) opened on the inner wall of the fixed ring (451), a connecting hole (454) opened on the inner wall of the fixed ring (451), and a connecting pipe (455) fixedly disposed on the inner wall of the fixed ring (451). The outer wall of the connecting pipe (455) is fixedly connected to the inner wall of the fixed ring (451) through the connecting hole (454), and the outer wall of the push rod (46) is slidably connected to the inner wall of the fixed ring (451) through the sliding groove (452).
2. The agricultural product raw material conveying device based on food sauce production according to claim 1, characterized in that: The connecting groove (453) is connected to the sliding groove (452) and the connecting hole (454) respectively.
3. The agricultural product raw material conveying device based on food sauce production according to claim 1, characterized in that: The separation assembly (5) includes a connecting ring (51) fixedly disposed on the inner side wall of the limiting ring (47), a compression spring (52) fixedly disposed on the outer wall of the connecting ring (51), a rotating tube (53) rotatably disposed on the outer wall of the connecting ring (51) away from the compression spring (52), and a connecting toothed ring (54) fixedly disposed on the outer wall of the rotating tube (53).
4. The agricultural product raw material conveying device based on food sauce production according to claim 1, characterized in that: The transmission assembly (6) includes a rotating component (62) rotatably disposed on the inner wall of the conveying pipe (1), a contact component (61) slidably disposed on the outer wall of the rotating component (62), and an elastic component (63) fixedly disposed on the inner wall of the rotating component (62).
5. The agricultural product raw material conveying device based on food sauce production according to claim 4, characterized in that: The rotating component (62) includes a drive shaft (624) rotatably disposed on the inner wall of the conveying pipe (1), a movable hole (625) opened on the inner wall of the drive shaft (624), a fixed shaft (623) fixedly disposed on the outer wall of the drive shaft (624), a drive ring (622) fixedly disposed on the outer wall of the fixed shaft (623), and a drive rod (621) fixedly disposed on the outer wall of the drive ring (622).
6. The agricultural product raw material conveying device based on food sauce production according to claim 5, characterized in that: The contact component (61) includes a transmission wheel (612) slidably disposed on the outer wall of the transmission rod (621), a contact toothed ring (611) fixedly disposed on the outer wall of the transmission wheel (612), a fixed rod (613) fixedly disposed on the outer wall of the transmission wheel (612), and a rotating sleeve (614) fixedly disposed on the outer wall of the fixed rod (613). The inner side wall of the rotating sleeve (614) is slidably connected to the outer wall of the fixed shaft (623).
7. The agricultural product raw material conveying device based on food sauce production according to claim 5, characterized in that: The elastic component (63) includes a limiting ring (633) fixedly disposed on the inner wall of the fixed shaft (623), a compression spring (632) fixedly disposed on the outer wall of the limiting ring (633), and a contact ring (631) fixedly disposed on the other end of the compression spring (632). The outer wall of the contact ring (631) is fixedly connected to the side wall of the transmission wheel (612).
8. The agricultural product raw material conveying device based on food sauce production according to claim 6, characterized in that: The movable component (7) includes a fixing strip (71) slidably disposed on the inner wall of the transmission shaft (624) through the movable hole (625), a paving groove (72) opened on the outer wall of the fixing strip (71), a pressure groove (73) opened on the inner wall of the fixing strip (71), and a receiving groove (74) opened on the inner wall of the fixing strip (71). The outer wall of the fixing strip (71) is fixedly connected to the outer wall of the rotating sleeve (614).