A non-fried instant noodle extrusion device

Through the design of the drum group and the bearing plate structure, combined with the drive mechanism and the plywood mechanism, the problem of gravity bending during the extrusion process is solved, and the uniform conveying and cutting of the dough cake is achieved, and the production quality of non-fried instant noodles is improved.

CN116649384BActive Publication Date: 2025-07-22JIN MAILANG MIANPIN CO LTD
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Patent Information

Application Number
CN202310776483.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-06-28
Publication Date
2025-07-22
Estimated Expiration
2043-06-28

AI Technical Summary

Technical Problem

In the production process of non-fried instant noodles, the dough cake is prone to bend or curl due to gravity after extrusion, resulting in uneven output, affecting the consistency of the thickness and width of the noodles.

Method used

Multiple sets of roller sets and bearing plate structures are adopted, and the roller set is driven to rotate through the drive mechanism, combining the trigger and clamp mechanism to ensure that the dough cake remains centered and closely adheres to the bearing plate during the extrusion process, avoiding curling, and synchronous extrusion and cutting are achieved through servo motor and gear transmission.

Benefits of technology

It effectively avoids cracking or curling caused by improper spacing during the extrusion process, ensures that the dough is evenly transported and cut, and improves the consistency of the thickness and width of the noodles.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a non-fried instant noodle extrusion device, comprising a shell, characterized in that the inner cavity of the shell is provided with multiple groups of roller groups for extruding noodle cakes, a bearing plate for receiving noodle cakes is provided between two adjacent roller groups, the bearing plate is rotatably connected to the inner cavity side wall of the shell, a driving mechanism for driving the roller group to rotate is provided on one side of the outer wall of the shell, a triggering member is provided at the middle of the upper end of the bearing plate, a follower is provided at the lower end of the bearing plate, a symmetrical clamping plate is slidably connected to the upper end of the bearing plate, and the clamping plate is connected to the triggering member through a rope. The present invention extrude and convey the noodle cakes by providing a driving mechanism and a roller group, thereby gradually squeezing a thicker noodle cake into a thinner state, and the noodle cake will not be broken due to too small a roller spacing; and the bearing plate that remains horizontal when unloaded can prevent the noodle cake from curling due to too large a spacing when it is just output from the roller group.
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Description

Technical Field

[0001] The present invention relates to the field of pasta processing, and specifically to a non-fried instant noodle extrusion device. Background Art

[0002] In the production and processing of non-fried instant noodles, the dough kneaded by a machine usually needs to be extruded multiple times to extend the dough to a thickness and width suitable for cutting into noodles, and then the extruded dough is cut into noodles and enters the next process.

[0003] For example, Chinese Patent Publication No. CN114424778A discloses a continuous noodle press, including a frame, on which a controller, an output conveyor belt, two input conveyor belts and a roller mechanism are arranged. The roller mechanism includes a transfer disk and transfer rollers. A plurality of extension rollers are rotatably connected to the transfer disk. A sensor mounting bracket is arranged on the side of the receiving plate, and an upper photoelectric sensor and a lower photoelectric sensor are arranged on the sensor mounting bracket. The invention has the following advantages and effects: a transfer margin is left for the dough sheet arranged between the output conveyor belt and the roller mechanism, and the dough sheet arranged between the output conveyor belt and the roller mechanism is kept loose through the control method of the continuous noodle press, so as to ensure the pressing quality of the dough sheet while realizing continuous pressing of the dough sheet; by arranging a storage tank on the material spreading roller and realizing synchronous material spreading and pressing and feeding through the belt drive between the material spreading rotating shaft and the driving rotating shaft, the uniformity of material spreading distribution is improved.

[0004] In this solution, after the dough is extruded by the roller mechanism, it directly falls onto the receiving plate. Although there are several feeding rotating shafts arranged on the receiving plate, when the dough just moves out of the roller mechanism, it will first move approximately horizontally and then bend due to its own gravity, which may cause the dough to curl and shift on the receiving plate, resulting in inconsistent thickness and width of the output dough. Summary of the Invention

[0005] The purpose of the present invention is to provide a non-fried instant noodle extrusion device to solve the problems raised in the above background art.

[0006] To achieve the above purpose, the present invention provides the following technical solutions:

[0007] The invention relates to a non-fried instant noodle extruder, comprising a shell, wherein the inner cavity of the shell is provided with a plurality of roller groups for extruding noodle cakes, a carrying plate for receiving the noodle cakes is arranged between two adjacent roller groups, the carrying plate is rotatably connected to the side wall of the inner cavity of the shell, and a driving mechanism for driving the roller group to rotate is arranged on one side of the outer wall of the shell. A trigger member is arranged at the middle part of the upper end of the carrying plate, a follower member is arranged at the lower end of the carrying plate, a symmetrical clamping plate is slidably connected to the upper end of the carrying plate, and the clamping plate is transmission-connected to the trigger member through a rope. When the output end of the trigger member contacts the noodle cake and is pressed down, the end of the trigger member drives the follower to release the limit on the carrying plate and also drives the clamping plate to continuously approach the noodle cake, so that the carrying plate rotates to connect and cooperate with the two adjacent roller groups while making the position of the noodle cake centered relative to the carrying plate without deviation.

[0008] As a further solution of the present invention: the trigger member includes a contact plate, a groove for cooperating with the contact plate is opened in the middle of the upper end of the carrier plate, both sides of the contact plate are rotatably connected to the side walls of the groove, a connecting rod is rotatably connected to the middle of the lower end of the contact plate, and the end of the connecting rod away from the contact plate is rotatably matched with a follower, and the lower end of the contact plate is elastically connected to the bottom of the inner cavity of the groove through a symmetrical first spring.

[0009] As a further solution of the present invention: the follower includes a push rod, which is slidably connected to a protrusion at the lower end of the supporting plate, and is rotatably connected to an end of a connecting rod away from the contact plate, and the end of the push rod away from the connecting rod is fixedly connected to a symmetrical horizontal rod, and the end of the horizontal rod away from the push rod is slidably connected to a connecting block, and the middle part of a side of the connecting block away from the horizontal rod is rotatably connected to a driven rod, the driven rod is slidably connected to a side wall of the inner cavity of the shell, and the end of the driven rod away from the connecting block is slidably matched with a mounting block.

[0010] As a further solution of the present invention: the mounting block is fixedly connected to the side wall of the inner cavity of the shell, a key is rotatably connected to the inner cavity of the mounting block, a concave plate is fixedly connected to the upper part of the side of the mounting block close to the driven rod, the side of the key close to the concave plate and the upper part of the inner cavity of the concave plate are elastically connected by a third spring, a rotating rod is arranged above the key, the two ends of the rotating rod are respectively fixedly connected to the side wall of the shell and the side wall of the bearing plate, and a ratchet is rotatably connected to the middle part of the outer wall of the rotating rod.

[0011] As a further solution of the present invention: a rope is fixedly connected to the middle part of one side of the splint close to the shell, the end of the rope away from the splint is fixedly connected to the top of the first connecting rod, and a limiting piece for limiting the position of the splint is symmetrically arranged on one side of the splint close to the contact plate.

[0012] As a further solution of the present invention: The limiting member includes symmetric outer shells. A T-shaped block is fixedly connected to the lower end of the outer shell. A baffle is rotatably connected to the upper part of the inner cavity of the outer shell. The baffle is elastically connected to the side wall of the inner cavity of the outer shell through a fourth spring. A second connecting rod is rotatably connected to the middle of the side of the baffle close to the outer shell. The end of the second connecting rod away from the baffle is rotatably connected to a driven block. The driven block penetrates through the T-shaped block and is slidably connected thereto. A caliper is fixedly connected to the lower end of the driven block. The tip of this caliper faces vertically downward. A rack is fixedly connected to the lower part of the side of the other driven block away from the baffle. A second gear is arranged in the upper part of the inner cavity of the T-shaped block. The second gear is rotatably connected to the T-shaped block through a rotating column. The other caliper is arranged at the bottom of the inner cavity of the T-shaped block. The tip of the caliper faces vertically upward. A rack is fixedly connected to the upper part of the end of the caliper close to the second gear. The two racks are centrosymmetric about the second gear and the three are meshed in sequence.

[0013] As a further solution of the present invention: A groove for the T-shaped block to slide is opened at the upper end of the bearing plate. The plane where the top end of the T-shaped block is located coincides with the upper end surface of the bearing plate. The symmetric T-shaped blocks are elastically connected through symmetric fifth springs. The caliper is arranged in the inner cavity of the T-shaped block and is slidably connected thereto. Multiple balance rods are arranged in the inner cavity of the T-shaped block. The balance rods are slidably connected to the caliper. The height of the interval between the tips of the two calipers is greater than the height of a single caliper.

[0014] As a further solution of the present invention: A receiving plate for receiving the rotated bearing plate is arranged between two adjacent roller groups. The receiving plate is located below the roller group relatively far from the feeding plate. The receiving plate is composed of a first inclined plate and a second inclined plate. The one close to the roller is the first inclined plate, that is, the upper end surface of the second inclined plate is elastically connected to the lower end of the bearing plate through symmetric second springs.

[0015] As a further solution of the present invention: Each roller group is composed of two rollers. The two ends of the roller are rotatably connected to the side wall of the inner cavity of the shell through rotating columns. A rotating column is fixedly connected to the middle of the side of the roller close to the driving mechanism. The rotating column passes through the shell and is rotatably connected to the shell. A feeding plate is fixedly connected to the upper part of one side of the inner cavity of the shell. A discharging plate is fixedly connected to the lower part of the side of the shell away from the feeding port. A cutter for cutting the noodle cake into strips is arranged above the middle of the discharging plate. The two ends of the cutter are rotatably connected to the inner cavity of the shell through rotating columns. The cutter rotates synchronously with the adjacent roller group.

[0016] As a further solution of the present invention: the driving mechanism includes a servo motor, the lower end of the servo motor is fixedly connected to a mounting table, the output end of the servo motor is fixedly connected to a rotating column of a roller circle located above in the roller group, the outer wall of the rotating column is fixedly connected to a first gear, the first gear is located between the roller and the servo motor, and is meshed with the first gears connected to two rollers in the same roller group, the transmission is transmitted between two adjacent roller groups through a transmission belt, the transmission belt is sleeved on the outer wall of the roller, the roller is fixedly connected to the first gear located above in the same roller group, the roller group adjacent to the cutter is also driven by a servo motor and two meshed first gears, the end of the cutter close to the servo motor is fixedly connected to the first gear through the shell, and the three first gears are arranged in an L shape and meshed with each other.

[0017] Compared with the prior art, the present invention has the following beneficial effects:

[0018] The driving mechanism and the roller group are provided to extrude and convey the dough cakes, and the spacing between the rollers is gradually reduced, so that the thick dough cakes are gradually squeezed into thinner ones, and the dough cakes will not break due to the small spacing between the rollers; and the horizontal supporting plate maintained when unloaded can prevent the dough cakes from curling due to the large spacing when they are just output from the roller group, and the supporting plate will gradually rotate as the dough cakes continue to move on the supporting plate, so that the dough cakes always enter the next roller group in a state of being close to the supporting plate; and in combination with the clamping plate and the limiting mechanism, the thick dough cakes can be effectively pushed to the center of the supporting plate, which not only reduces the position requirements when the dough cakes are fed into the device, but also avoids uneven discharge of the dough cakes. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 It is a schematic diagram of the overall structure of the present invention.

[0020] Figure 2 It is a schematic structural diagram of the side surface of the present invention.

[0021] Figure 3 It is a structural schematic diagram of the overall cross section in the present invention.

[0022] Figure 4 It is a structural schematic diagram of the load-bearing plate in the present invention.

[0023] Figure 5 It is a schematic diagram of the structure of the trigger member in the present invention.

[0024] Figure 6 It is a schematic diagram of the structure of the follower in the present invention.

[0025] Figure 7 It is a structural schematic diagram of the installation block in the present invention.

[0026] Figure 8 It is a schematic diagram of the structure of the splint in the present invention.

[0027] Figure 9 It is a schematic diagram of the structure of the limiting member in the present invention.

[0028] Figure 10 It is a schematic diagram of the cross-sectional structure of one side of the limiting member in the present invention.

[0029] Figure 11 Another side cross-sectional structural diagram of the position limiting member in the present invention

[0030] In the figure: 1. shell; 2. driving mechanism; 21. first gear; 22. servo motor; 23. transmission belt; 3. roller group; 4. feed plate; 5. discharge plate; 6. cutter; 7. bearing plate; 8. trigger member; 81 contact plate; 82. first connecting rod; 9. follower; 91. push rod; 92. horizontal rod; 93. connecting block; 94. follower rod; 95. mounting block; 96. ratchet; 97. key; 10. splint; 11. rope; 12. limit member; 121. shell; 122. baffle; 123. T-block; 124. caliper; 125. second connecting rod; 126. follower block; 127. second gear; 128. rack; 13. receiving plate. DETAILED DESCRIPTION

[0031] See also Figures 1-3 In an embodiment of the present invention, a non-fried instant noodle extrusion device comprises a shell 1, wherein the inner cavity of the shell 1 is provided with a plurality of roller groups 3 for extruding noodle cakes, a carrying plate 7 for receiving noodle cakes is provided between two adjacent roller groups 3, the carrying plate 7 is rotatably connected to the inner cavity side wall of the shell 1, and a driving mechanism 2 for driving the roller group 3 to rotate so as to extrude and convey the noodle cakes is provided on one side of the outer wall of the shell 1, a trigger member 8 is provided at the middle part of the upper end of the carrying plate 7, a follower member 9 is provided at the lower end of the carrying plate 7, and a symmetrical clamping plate 10 is slidably connected to the upper end of the carrying plate 7, and the clamping plate 10 is transmission-connected to the trigger member 8 through a rope 11. When the output end of the trigger member 8 contacts the noodle cake and is pressed down, the end of the trigger member 8 drives the follower member 9 to release the limit of the carrying plate 7 while also driving the clamping plate 10 to continuously approach the noodle cake, so that the carrying plate 7 rotates to connect and cooperate with the two adjacent roller groups 3 while making the position of the noodle cake centered relative to the carrying plate 7 without deviation.

[0032] Each roller group 3 consists of two rollers. Both ends of the rollers are rotatably connected to the side wall of the inner cavity of the housing 1 through rotating columns. A rotating column is fixedly connected to the middle of one side of each roller close to the driving mechanism 2. The rotating column passes through the housing 1 and is rotatably connected to the housing 1. A feeding plate 4 is fixedly connected to the upper part of one side of the inner cavity of the housing 1. A discharging plate 5 is fixedly connected to the lower part of the side of the inner cavity of the housing 1 away from the feeding port. Above the middle of the discharging plate 5, there is a cutter 6 for cutting the noodle cake into strips. Both ends of the cutter 6 are rotatably connected to the inner cavity of the housing 1 through rotating columns. The cutter 6 rotates synchronously with the adjacent roller group 3. The distance between the roller groups 3 closer to the cutter 6 is smaller.

[0033] The driving mechanism 2 includes a servo motor 22. The lower end of the servo motor 22 is fixedly connected with a mounting table. The output end of the servo motor 22 is fixedly connected with the rotating column of the roller circle of the upper roller group 3. First gears 21 are fixedly connected to the outer walls of the rotating columns. The first gears 21 are located between the rollers and the servo motor 22 and are meshed with the two rollers in the same roller group 3. The adjacent two roller groups 3 are driven by a transmission belt 23. The transmission belt 23 is sleeved on the outer wall of the roller. The roller is fixedly connected with the first gear 21 of the upper roller group 3 in the same roller group 3. That is, when the servo motor 22 drives the roller connected to its output end in the roller group 3 to rotate, and drives the other roller of the roller group 3 to rotate through the meshed first gears 21, so as to realize the synchronous rotation of the two rollers, so as to ensure the uniform and synchronous extrusion and conveying of the noodle cake. The roller group 3 adjacent to the cutter 6 is also driven by the servo motor 22 and two meshed first gears 21. One end of the cutter 6 close to the servo motor 22 passes through the housing 1 and is fixedly connected with a first gear 21. The three first gears 21 are arranged in an L shape and are meshed with each other. That is, by driving the three meshed first gears 21 to rotate by the servo motor 22, the synchronous rotation of the two rollers and the cutter 6 is achieved, so as to achieve the effect of cutting the extruded noodle cake into strips at a uniform speed.

[0034] Please refer to Figures 4-5 , the triggering part 8 includes a contact plate 81. A groove for cooperating with the contact plate 81 is opened in the middle of the upper end of the bearing plate 7. The two sides of the contact plate 81 are rotatably connected to the side walls of the groove. That is, the contact plate 81 and the bearing plate 7 are rotatably connected. A connecting rod is rotatably connected to the middle of the lower end of the contact plate 81. The end of the connecting rod away from the contact plate 81 is rotatably fitted with a driven part 9. The lower end of the contact plate 81 is elastically connected to the bottom of the inner cavity of the groove through symmetric first springs. When the contact plate 81 contacts the noodle cake, as the noodle cake is continuously conveyed, the gravity exerted by the noodle cake on the contact plate 81 also continuously increases, and finally the contact plate 81 is completely pressed into the groove. In this process, the connecting rod will push the driven part 9 to move horizontally in the direction opposite to the advancing direction of the noodle cake.

[0035] A receiving plate 13 for receiving the rotated bearing plate 7 is arranged between two adjacent roller groups 3. The receiving plate 13 is located at the lower part of the roller group 3 relatively far from the feeding plate 4. The receiving plate 13 is composed of a first inclined plate and a second inclined plate. The one close to the roller is the first inclined plate, that is, the upper end surface of the second inclined plate is elastically connected to the lower end of the bearing plate 7 through symmetric second springs. The second springs can provide a thrust for the bearing plate 7 when it is unloaded, so that the bearing plate 7 maintains a horizontal state.

[0036] Please refer to Figures 6-7, the follower 9 includes a push rod 91. The push rod 91 is slidably connected to the protrusion at the lower end of the bearing plate 7. The push rod 91 is rotatably connected to one end of the connecting rod away from the contact plate 81. Symmetrical horizontal rods 92 are fixedly connected to the end of the push rod 91 away from the connecting rod. A connecting block 93 is slidably connected to the end of the horizontal rod 92 away from the push rod 91. A follower rod 94 is rotatably connected to the middle of one side of the connecting block 93 away from the horizontal rod 92. The follower rod 94 is slidably connected to the inner cavity side wall of the housing 1. An installation block 95 is slidably fitted to the end of the follower rod 94 away from the connecting block 93. When the contact plate 81 rotates for material collection into the inner cavity of the groove, the connecting rod receives a downward force, thereby pushing the push rod 91 to move. The push rod 91 pushes the follower rod 94 into the inner cavity of the installation block 95 through the horizontal rod 92 and the connecting block 93. A key 97 is rotatably connected to the inner cavity of the installation block 95. A concave plate is fixedly connected to the upper part of one side of the installation block 95 close to the follower rod 94. One side of the key 97 close to the concave plate and the upper part of the inner cavity of the concave plate are elastically connected by a third spring. A rotating rod is arranged above the key 97. The two ends of the rotating rod are respectively fixedly connected to the side wall of the housing 1 and the side wall of the bearing plate 7. A ratchet 96 is rotatably connected to the middle of the outer wall of the rotating rod. That is, when the pancake enters the bearing plate 7 but has not yet contacted the contact plate 81, at this time the key 97 restricts the rotation of the ratchet 96 to keep the bearing plate 7 in a horizontal state. When the contact plate 81 is pressed into the groove, the follower rod 94 is pushed into the inner cavity of the installation block 95 and pushes the end of the key 97, causing the key 97 to rotate clockwise and separate from the ratchet 96, thereby releasing the limit on the ratchet 96. At this time, under the action of the gravity of the pancake, the bearing plate 7 can rotate clockwise downward and finally fit with the second inclined plate, so as to transport the pancake to the next roller group 3 for further extrusion. In this process, due to the continuous thrust provided by the second spring to the bearing plate 7, during the clockwise downward rotation of the bearing plate 7, the lower end surface of the pancake always fits with the upper end surface of the bearing plate 7. Compared with directly setting an inclined plate between the two roller groups 3, when the pancake is just squeezed by the first roller group 3 when it enters the device, at this time the width of the pancake is relatively narrow and has a certain hardness. If an inclined plate is set in between, the pancake just separated from the roller group 3 will move approximately horizontally, and as the length of the pancake continuously pushed out by the roller group 3 increases, the end away from the roller group 3 will gradually bend, and then it will contact the inclined plate. At this time, the front section of the pancake is very likely not to be parallel to the inclined surface of the inclined plate, resulting in the pancake curling and piling up on the inclined plate, thus causing the thickness of the pancake to become thicker, which is not conducive to subsequent extrusion and discharging.

[0037] Please refer to Figures 8-11, a rope 11 is fixedly connected to the middle of the side of the splint 10 close to the housing 1. One end of the rope 11 away from the splint 10 is fixedly connected to the top of the first connecting rod 82. When the contact plate 81 remains in an inclined state, the rope 11 is in a taut state to pull the splint 10. Limiting members 12 for limiting the position of the splint 10 are symmetrically arranged on the side of the splint 10 close to the contact plate 81. The limiting member 12 includes symmetric outer shells 121. A T-shaped block 123 is fixedly connected to the lower end of the outer shell 121. A groove for the T-shaped block 123 to slide is opened at the upper end of the bearing plate 7. The plane where the top end of the T-shaped block 123 is located coincides with the upper end surface of the bearing plate 7. A baffle 122 is rotatably connected to the upper part of the inner cavity of the outer shell 121. The baffle 122 is elastically connected to the side wall of the inner cavity of the outer shell 121 through a fourth spring. A second connecting rod 125 is rotatably connected to the middle of the side of the baffle 122 close to the outer shell 121. One end of the second connecting rod 125 away from the baffle 122 is rotatably connected to a driven block 126. The driven block 126 penetrates through the T-shaped block 123 and is slidably connected thereto. That is, when the baffle 122 is squeezed and rotates towards the inner cavity of the housing 1, the fourth spring is compressed. The baffle 122 pushes the driven block 126 downward through the connecting rod. A caliper 124 is fixedly connected to the lower end of one of the driven blocks 126. The caliper 124 is arranged in the inner cavity of the T-shaped block 123 and is slidably connected thereto. A plurality of balance rods are arranged in the inner cavity of the T-shaped block 123. The balance rods are slidably connected to the caliper 124 and are used to keep the caliper 124 from shaking when the caliper 124 moves up and down. The tip of this caliper 124 is vertically downward. A rack 128 is fixedly connected to the lower part of the side of the other driven block 126 away from the baffle 122. A second gear 127 is arranged at the upper part of the inner cavity of the T-shaped block 123. The second gear 127 is rotatably connected to the T-shaped block 123 through a rotating column. The downward-moving driven block 126 drives the second gear 127 to rotate through the rack 128 meshing with the second gear 127. The caliper 124 is arranged at the bottom of the inner cavity of the T-shaped block 123. The tip of the caliper 124 faces vertically upward. And the height of the interval between the tips of the two calipers 124 is greater than the height of a single caliper 124. A rack 128 is fixedly connected to the upper part of the end of the caliper 124 close to the second gear 127. The two racks 128 are centrosymmetric about the second gear 127 and the three are meshed in sequence. That is, when the second gear 127 rotates, it will drive the caliper 124 to move vertically upward. The symmetric T-shaped blocks 123 are elastically connected through symmetric fifth springs. That is, when the contact plate 81 is pressed by the noodle cake into the groove, the rope 11 loses the pulling force on the splint 10. Under the action of the fifth spring, the symmetric T-shaped blocks 123 move closer to each other, that is, the two splints 10 continuously move closer to the center position of the bearing plate 7, so as to push the noodle cake to the center position of the bearing plate 7. During the process of pushing the noodle cake, it is possible that one side of the splint 10 is in contact with the noodle cake while the other side of the splint 10 has not yet contacted the noodle cake. If the splint 10 is automatically limited and fixed when it is in contact with the noodle cake, it cannot be guaranteed that the noodle cake is pushed to the center position of the bearing plate 7. Therefore, in the present invention,When one side of the splint 10 is in close contact with the noodle cake, the baffle 122 is squeezed into the housing 121, thereby pushing the driven block 126 downward through the connecting rod, driving the caliper 124 to move upward or downward. Since only one caliper 124 moves, the tips of the two calipers 124 will approach but not contact each other, that is, the splint 10 will not be limited and fixed, but will continue to move under the tension of the fifth spring until both splints 10 are in contact with the noodle cake. When the two calipers 124 are engaged and fixed with each other, the splint 10 is at the center position of the carrier plate 7 and no longer moves, thus ensuring that the noodle cake is at the center position of the carrier plate 7. And a baffle 122 is symmetrically arranged on one side of the splint 10, which can ensure that the calipers 124 will separate from each other only when the noodle cake completely leaves the carrier plate 7, that is, the splint 10 will return to the edge of the carrier plate 7. When the noodle cake leaves the contact plate 81, the contact plate 81 will not be pushed up by the first spring because it is not under pressure. That is, when the noodle cake has not completely left the carrier plate 7, the contact plate 81 will not drive the rope 11 to pull the splint 10, resulting in premature resetting and loss of the limiting effect on the position of the noodle cake, and the position of the noodle cake cannot be ensured.

Claims

1. A non-fried instant noodle extrusion device, comprising a housing, characterized in that, The inner cavity of the shell is provided with multiple groups of roller groups for squeezing noodles, and a carrying plate for receiving the noodles is arranged between two adjacent roller groups, the carrying plate is rotatably connected to the side wall of the inner cavity of the shell, and one side of the outer wall of the shell is provided with a driving mechanism for driving the roller group to rotate, a trigger member is arranged at the middle part of the upper end of the carrying plate, and a follower is arranged at the lower end of the carrying plate, and a symmetrical clamping plate is slidably connected to the upper end of the carrying plate, and the clamping plate is transmission-connected to the trigger member through a rope. When the output end of the trigger member contacts the noodles and is pressed down, the end of the trigger member drives the follower to release the limit on the carrying plate and also drives the clamping plate to continuously approach the noodles, so that the carrying plate rotates to connect and cooperate with the two adjacent roller groups while keeping the position of the noodles centered relative to the carrying plate without deviation; A rope is fixedly connected to the middle of one side of the clamping plate close to the shell, one end of the rope away from the clamping plate is fixedly connected to the top of the first connecting rod, and a limiting member for limiting the position of the clamping plate is symmetrically arranged on one side of the clamping plate close to the contact plate; The limit member includes a symmetrical shell, the lower end of the shell is fixedly connected to a T-block, the upper part of the inner cavity of the shell is rotatably connected to a baffle, the baffle and the side wall of the inner cavity of the shell are elastically connected by a fourth spring, the middle part of the baffle close to the shell is rotatably connected to a second connecting rod, the end of the second connecting rod away from the baffle is rotatably connected to a driven block, the driven block passes through the T-block and is slidably connected therewith, the lower end of the driven block is fixedly connected to a caliper, the tip of the caliper faces vertically downward, and the lower part of the side of the driven block on the other side away from the baffle is fixedly connected to a rack, a second gear is provided on the upper part of the inner cavity of the T-block, the second gear is rotatably connected to the T-block through a rotating column, the other caliper is provided at the bottom of the inner cavity of the T-block, the tip of the caliper faces vertically upward, and the upper part of one end of the caliper close to the second gear is fixedly connected to a rack, the two racks are centrally symmetrical about the second gear and the three are meshed in sequence.

2. The non-fried instant noodle extrusion device according to claim 1, wherein, The trigger member includes a contact plate, a groove for cooperating with the contact plate is opened in the middle of the upper end of the carrier plate, both sides of the contact plate are rotatably connected to the side walls of the groove, a connecting rod is rotatably connected to the middle of the lower end of the contact plate, and the end of the connecting rod away from the contact plate is rotatably matched with a follower, and the lower end of the contact plate is elastically connected to the bottom of the inner cavity of the groove through a symmetrical first spring.

3. The non-fried instant noodle extrusion device according to claim 2, wherein, The follower includes a push rod, which is slidably connected to a protrusion at the lower end of the bearing plate, and is rotatably connected to an end of a connecting rod away from the contact plate. An end of the push rod away from the connecting rod is fixedly connected to a symmetrical horizontal rod, and an end of the horizontal rod away from the push rod is slidably connected to a connecting block. The middle part of a side of the connecting block away from the horizontal rod is rotatably connected to a driven rod, the driven rod is slidably connected to a side wall of an inner cavity of a shell, and an end of the driven rod away from the connecting block is slidably matched with a mounting block.

4. The non-fried instant noodle extrusion device according to claim 3, wherein The mounting block is fixedly connected to the side wall of the inner cavity of the housing. A clamping key is rotatably connected to the inner cavity of the mounting block. An upper portion of the side of the mounting block close to the driven rod is fixedly connected to a concave plate. One side of the clamping key close to the concave plate and the upper portion of the inner cavity of the concave plate are elastically connected by a third spring. A rotating rod is arranged above the clamping key. Two ends of the rotating rod are respectively fixedly connected to the side wall of the housing and the side wall of the bearing plate. A ratchet wheel is rotatably connected to the middle of the outer wall of the rotating rod.

5. A non-fried instant noodle extrusion device according to claim 1, characterized in that, A groove for the T-shaped block to slide is formed in the upper end of the bearing plate. The plane where the top end of the T-shaped block is located coincides with the upper end surface of the bearing plate. Symmetric T-shaped blocks are elastically connected by symmetric fifth springs. A caliper is arranged in the inner cavity of the T-shaped block and is slidably connected thereto. Multiple balance rods are arranged in the inner cavity of the T-shaped block. The balance rods are slidably connected to the caliper. The height of the interval between the tips of the two calipers is greater than the height of a single caliper.

6. The non-fried instant noodle extrusion device according to claim 1, characterized in that, A receiving plate for receiving the rotated bearing plate is arranged between two adjacent roller groups. The receiving plate is located below the roller group relatively far from the feeding plate. The receiving plate is composed of a first inclined plate and a second inclined plate. The one close to the roller is the first inclined plate. That is, the upper end surface of the second inclined plate and the lower end of the bearing plate are elastically connected by symmetric second springs.

7. The non-fried instant noodle extrusion device according to claim 1, wherein Each roller group is composed of two rollers. Two ends of the roller are rotatably connected to the side wall of the inner cavity of the housing through rotating columns. A middle portion of one side of the roller close to the driving mechanism is fixedly connected to a rotating column. The rotating column passes through the housing and is rotatably connected to the housing. A feeding plate is fixedly connected to an upper portion of one side of the inner cavity of the housing. A discharging plate is fixedly connected to a lower portion of the side of the inner cavity of the housing far from the feeding port. A cutter for cutting the noodle cake into strips is arranged above the middle of the discharging plate. Two ends of the cutter are rotatably connected to the inner cavity of the housing through rotating columns. The cutter rotates synchronously with the adjacent roller group. The interval between the roller groups closer to the cutter is smaller.

8. A non-fried instant noodle extrusion device according to claim 7, characterized in that, The driving mechanism includes a servo motor. The lower end of the servo motor is fixedly connected to a mounting table. The output end of the servo motor is fixedly connected to the rotating column of the roller at the upper part in the roller group. First gears are fixedly connected to the outer walls of the rotating columns. The first gears are located between the roller and the servo motor and are connected to the two rollers in the same roller group. The first gears meshing with each other. The adjacent two roller groups are driven by a transmission belt. The transmission belt is sleeved on the outer wall of the roller. The roller is fixedly connected to the first gear at the upper part in the same roller group. The roller group adjacent to the cutter is also driven by a servo motor and two meshing first gears. One end of the cutter close to the servo motor passes through the housing and is fixedly connected to a first gear. The three first gears are arranged in an L shape and mesh with each other.

Citation Information

Patent Citations

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