Automatic noodle weighing equipment

By setting up a first weighing component and a second weighing component in the automated noodle weighing equipment, and utilizing the linkage switching of the telescopic rod, the problem of having to stop the machine to remove the noodles after weighing is solved, realizing fully automated continuous weighing and unloading of noodles, and improving production efficiency.

CN223966139UActive Publication Date: 2026-03-03LAN LAN JINXING LAURI NOODLES CO LTD
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Patent Information

Application Number
CN202520785547.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-24
Publication Date
2026-03-03
Estimated Expiration
2035-04-24

AI Technical Summary

Technical Problem

Existing automated noodle weighing equipment requires intermittent shutdowns to remove noodles after each weighing, making continuous automated weighing impossible. This results in low weighing efficiency and impacts production output.

Method used

An automated noodle weighing device was designed, comprising a base, a noodle processing component, a weighing mechanism, and a drive component. By setting up a first weighing component and a second weighing component, and utilizing the linkage switching of the telescopic rod, the continuous and uninterrupted weighing and unloading of noodles can be achieved in conjunction with the noodle processing component.

Benefits of technology

It has achieved fully automated continuous weighing and unloading of noodles, significantly improving the efficiency of automated noodle production.

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Abstract

The utility model relates to automatic noodle weighing equipment which comprises a machine base, a noodle processing assembly, a weighing mechanism and a driving assembly. A noodle processing assembly is installed on the machine base, and the noodle processing assembly cuts off noodles after the noodles reach the preset weight of the weighing mechanism; the driving assembly is installed on the machine base and used for driving the weighing mechanism to alternately and continuously weigh. The weighing mechanism is arranged on the machine base and connected with the driving assembly. In the process of using the automatic weighing equipment, under the action of the driving assembly, the shape of the weighing mechanism is converted, and full-automatic weighing and noodle unloading operation of noodles are completed, so that continuous automatic weighing of the noodles is achieved, and the production efficiency is improved.
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Description

Technical Field

[0001] This utility model belongs to the field of metrology and weighing technology, and specifically relates to an automated noodle weighing device. Background Technology

[0002] As a common staple food product in daily life, the production process of noodles can be summarized as follows: wheat flour is mixed with water to form dough, which is then shaped into strips through processes such as rolling, stretching, and cutting. The dough is then dehydrated and shaped by natural sun drying or mechanical drying. After drying, the noodles are measured and packaged, and finally, after passing quality inspection, they enter the warehousing system or are distributed to sales terminals.

[0003] Chinese invention patent CN211442949U discloses a fully automatic weighing device for finished noodles, which includes a rectangular plate horizontally installed at the front and rear of the frame; a cylindrical support roller horizontally installed on the left side of the center above the two plates; a cylindrical feeding roller servo motor horizontally installed on the right side of the center above the two plates; a ring conveyor belt installed between the support roller and the roller servo motor; a rectangular baffle plate installed at a 35-45° angle to the left on the upper right top of the two plates; a cylindrical sorting roller servo motor horizontally installed on the plate below the baffle; and a rectangular electronic scale installed on the upper right side of the frame. When the finished noodles are fed into the sorting roller servo motor, the sorting roller servo motor slowly rotates to push the finished noodles into the weighing pan of the electronic scale. After the electronic scale weighs the finished noodles, they are poured into the packaging conveyor belt.

[0004] While the problem of manual sorting and automatic weighing of noodles has been solved, during the automatic weighing process, after one automatic weighing of noodles is completed, the machine needs to be stopped intermittently to remove the noodles from the weighing equipment. This prevents continuous automatic weighing of noodles, resulting in low weighing efficiency and affecting production output.

[0005] Therefore, it is necessary to provide an automated noodle weighing device to solve the problems mentioned in the background art. Utility Model Content

[0006] To achieve the above objectives, this utility model provides the following technical solution: an automated noodle weighing device, comprising: a base, a noodle processing component, a weighing mechanism, and a drive component;

[0007] The noodle processing component is mounted on the base, and the noodle processing component cuts the noodles after the noodles reach the preset weight of the weighing mechanism; the drive component is mounted on the base and is used to drive the weighing mechanism to weigh alternately and continuously.

[0008] The weighing mechanism is mounted on the base and connected to the drive assembly; wherein, the weighing mechanism includes two mounting brackets, which are symmetrically fixedly mounted on the base, and a first weighing component and a second weighing component are mounted on the mounting brackets; the first weighing component is connected to the drive assembly;

[0009] The second weighing component is connected to the first weighing component by a linkage telescopic rod, which is rotatably mounted on the mounting bracket.

[0010] As a further improvement of this utility model, the first weighing component includes two linear guide rails, which are symmetrically mounted on the machine base. A first slider and a second slider are slidably arranged on the linear guide rails.

[0011] A connecting seat is fixedly mounted on the first slider. A holding panel is rotatably mounted on the connecting seat. One end of an electric telescopic rod is rotatably mounted on the holding panel. The other end of the electric telescopic rod is rotatably mounted on the second slider.

[0012] As a further improvement of this utility model, the second weighing component includes two linear guide rails, which are fixedly mounted on the mounting bracket, and a third slider and a fourth slider are slidably mounted on the linear guide rails.

[0013] A connecting seat two is fixedly installed on the third slider. A holding panel two is rotatably installed via the connecting seat two. One end of an electric telescopic rod two is rotatably installed on the holding panel two. The other end of the electric telescopic rod two is rotatably installed on the fourth slider.

[0014] As a further improvement of this utility model, pressure sensors are provided on the first slider, the second slider, the third slider, and the fourth slider.

[0015] As a further improvement of this utility model, the linkage telescopic rod is rotatably mounted on the mounting bracket, with one end rotatably mounted on the third slider and the other end rotatably mounted on the first slider.

[0016] As a further improvement of this utility model, the mounting bracket includes a fixing rod, which is fixedly mounted on the base, and an L-shaped frame is fixedly mounted on the other end. The L-shaped frame is provided with a clearance groove, which is used to avoid the linkage telescopic rod.

[0017] A support rod is fixedly mounted on the fixed rod, and a rotating rod is fixedly mounted on it. The linkage telescopic rod is rotatably mounted on the rotating rod.

[0018] As a further improvement of this utility model, the drive assembly includes a lead screw, which is rotatably mounted on the machine base via a bearing seat. A connecting seat is provided at one end of the lead screw threaded connection, and a limit groove is formed at the other end of the connecting seat.

[0019] A boss is engaged within the limiting groove, and the boss is fixedly mounted on the first serving panel.

[0020] As a further improvement of this utility model, the lead screw is driven by a motor, and the motor is installed inside the machine base.

[0021] As a further improvement of this utility model, the noodle processing component includes:

[0022] The noodle inlet is fixedly mounted on the machine base and connected to the noodle conveying equipment.

[0023] Adjustable guide rails are fixedly installed on both sides of the feed channel, and cutting components are slidably and adjustablely installed on the adjustable guide rails;

[0024] The controller is fixedly mounted on the faceted assembly.

[0025] As a further improvement of this utility model, the controller is used to control the cutting component to cut the noodles when the preset noodle weight is reached.

[0026] Compared with the prior art, the beneficial effects of this utility model are:

[0027] When the weight of the noodles on the first weighing component reaches the preset weight, the noodle processing component first cuts the continuously conveyed noodles. After cutting, the drive component drives the first weighing component away from the noodle holding area and closer to the next conveying processing mechanism. At the same time, after approaching the next conveying mechanism, the first weighing component 62 lifts and tilts, causing the noodles to quickly slide onto the next conveying processing mechanism.

[0028] When the first weighing component moves away from the noodle container, the second weighing component is driven to slide relative to the mounting bracket under the action of the linkage telescopic rod, that is, the second weighing component moves closer to the noodle container; when the first weighing component tilts the noodles, the noodle processing component controls the noodles to continue falling at a uniform speed onto the second weighing component. After the second weighing component reaches the preset noodle weight, the noodle processing component cuts the noodles. At the same time, the drive component drives the first weighing component to reset to the noodle container, that is, under the action of the linkage telescopic rod, the second weighing component moves away from the noodle container and reaches the next conveying processing mechanism. The second weighing component lifts and tilts, causing the noodles to slide onto the next conveying mechanism.

[0029] In summary, by setting up a first weighing component and a second weighing component, and through the linkage switching of the telescopic rod, in conjunction with the noodle processing component, continuous and uninterrupted fully automated weighing and unloading of noodles can be achieved, significantly improving the automated production efficiency of noodles. Attached Figure Description

[0030] Figure 1 This is a schematic diagram of an automated noodle weighing device.

[0031] Figure 2 This is a schematic diagram of the weighing components of an automated noodle weighing device;

[0032] Figure 3 This is a schematic diagram of the weighing component structure of an automated noodle weighing device;

[0033] Figure 4 A schematic diagram of a mounting bracket for an automated noodle weighing device;

[0034] Figure 5 This is a schematic diagram showing the connection between the drive component and the weighing component of an automated noodle weighing device.

[0035] Figure 6 This is a schematic diagram of the unloading drive component of an automated noodle weighing device.

[0036] The components include: 1. Base; 2. Infeed channel; 3. Adjusting guide rail; 4. Cutting assembly; 5. Controller; 6. Weighing mechanism; 61. Mounting bracket; 611. Fixing rod; 612. Support rod; 613. L-shaped frame; 614. Clearance groove; 615. Rotating rod; 62. First weighing assembly; 621. Container panel one; 622. First slider; 623. Linear guide rail one; 624. Connecting seat one; 625. Second slider; 626. Electric telescopic rod one; 627. Boss; 63. Second weighing assembly; 631. Container panel two; 632. Third slider; 633. Linear guide rail two; 634. Connecting seat two; 635. Fourth slider; 636. Electric telescopic rod two; 64. Linkage rod; 7. Drive assembly; 72. Bearing seat; 73. Lead screw; 74. Connecting seat. Detailed Implementation

[0037] See Figures 1 to 6 As shown, an automated noodle weighing device is characterized by comprising: a base 1, a noodle processing component, a weighing mechanism 6, and a drive component 7.

[0038] The noodle processing component is installed on the base 1. The noodle processing component cuts the noodles after they reach the preset weight of the weighing mechanism 6. The drive component 7 is installed on the base 1 and is used to drive the weighing mechanism 6 to weigh alternately and continuously.

[0039] The weighing mechanism 6 is mounted on the base 1 and connected to the drive assembly 7; wherein, the weighing mechanism 6 includes two mounting brackets 61, which are symmetrically fixedly mounted on the base 1, and a first weighing assembly 62 and a second weighing assembly 63 are mounted on the mounting brackets 61; the first weighing assembly 62 is connected to the drive assembly 7.

[0040] The second weighing component 63 is connected to the first weighing component 62 by a linkage telescopic rod 64, which is rotatably mounted on the mounting bracket 61.

[0041] The finished noodles are conveyed at a constant speed to the noodle processing component through automated equipment. The noodle processing component guides the noodles to the weighing mechanism 6. The weighing mechanism 6 weighs the noodles that fall on it. When the preset weight is reached, the noodle processing component cuts the conveyed noodles. At the same time, the weighing mechanism 6 pours the noodles onto the next conveying and processing mechanism, thus achieving a fully automated noodle weighing operation.

[0042] It should be noted that when the weight of the noodles on the first weighing component 62 reaches the preset weight, the noodle processing component first cuts the continuously conveyed noodles. After cutting, the drive component 7 drives the first weighing component 62 away from the noodle container and closer to the next conveying processing mechanism. At the same time, after approaching the next conveying mechanism, the first weighing component 62 lifts and tilts, causing the noodles to slide onto the next conveying processing mechanism.

[0043] It should be explained that when the first weighing component 62 is away from the container surface, the second weighing component 63 is driven to slide relative to the mounting bracket 61 under the action of the linkage telescopic rod 64, that is, the second weighing component 63 is close to the container surface.

[0044] When the first weighing component 62 is tilting the noodles, the noodle processing component controls the noodles to continue falling at a constant speed onto the second weighing component 63. After the second weighing component 63 reaches the preset noodle weight, the noodle processing component cuts the noodles. At the same time, the drive component 7 drives the first weighing component 62 to reset to the noodle holding position. That is, under the action of the linkage telescopic rod 64, the second weighing component 63 moves away from the noodle holding position and reaches the next conveying processing mechanism. The second weighing component 63 lifts and tilts to make the noodles slide onto the next conveying mechanism.

[0045] In summary, by setting up the first weighing component 62 and the second weighing component 63, and with the linkage switching of the telescopic rod 64, the noodle processing component can be used to achieve continuous and uninterrupted fully automated weighing and unloading of noodles, significantly improving the automated production efficiency of noodles.

[0046] In a preferred embodiment, the first weighing component 62 includes two linear guide rails 623, which are symmetrically mounted on the base 1. A first slider 622 and a second slider 625 are slidably disposed on the linear guide rails 623.

[0047] A connecting seat 624 is fixedly provided on the first slider 622. A holding panel 621 is rotatably provided through the connecting seat 624. One end of an electric telescopic rod 626 is rotatably provided on the holding panel 621. The other end of the electric telescopic rod 626 is rotatably provided on the second slider 625.

[0048] In a preferred embodiment, the second weighing component 63 includes two linear guide rails 633, which are fixedly mounted on the mounting bracket 61. A third slider 632 and a fourth slider 635 are slidably mounted on the linear guide rails 633.

[0049] A connecting seat 634 is fixedly installed on the third slider 632. A holding panel 631 is rotatably installed through the connecting seat 634. One end of an electric telescopic rod 636 is rotatably installed on the holding panel 631. The other end of the electric telescopic rod 636 is rotatably installed on the fourth slider 635.

[0050] It should be noted that, driven by the drive component 7, the first serving panel 621 slides on the first linear guide rail 623 via the first slider 622 and the second slider 625. During the sliding of the first serving panel 621, the second serving panel 631 slides on the second linear guide rail 633 via the linkage telescopic rod 64, thereby realizing the mutual switching between the first serving panel 621 and the second serving panel 632, achieving automated continuous weighing of noodles, and improving the operating efficiency of the automated noodle production line.

[0051] When the noodles on the weighing plate 621 reach the preset weight and are at the unloading point, the electric telescopic rod 626 is activated to raise one end of the weighing plate 621, causing the weighing plate 621 to rotate around the connecting seat 624, thereby placing the weighing plate 621 on an inclined platform, prompting the noodles to fall quickly onto the next conveying and processing mechanism; after unloading, the electric telescopic rod 626 controls the weighing plate 621 to return to its initial state, in preparation for the next weighing operation.

[0052] It should be explained that the working platform of the second weighing component 63 is the same as that of the first weighing component 62, and will not be described in detail here.

[0053] In a preferred embodiment, pressure sensors are provided on the first slider 622, the second slider 625, the third slider 632, and the fourth slider 635.

[0054] The pressure sensor weighs the noodles on the first and second serving panels 621 and transmits a signal to the noodle processing component after the weight is reached. The noodle cutting command is executed, and the drive component 7 is controlled to perform related drive operations.

[0055] The linkage telescopic rod 64 is rotatably mounted on the mounting bracket 61, with one end rotatably mounted on the third slider 632 and the other end rotatably mounted on the first slider 622.

[0056] The mounting bracket 61 includes a fixing rod 611, which is fixedly mounted on the base 1. An L-shaped frame 613 is fixedly mounted on the other end. The L-shaped frame 613 has a through-hole groove 614, which is used to avoid the linkage telescopic rod 64.

[0057] Support rod 612 is fixedly mounted on fixed rod 611, and rotating rod 615 is fixedly mounted on it. Linkage telescopic rod 64 is rotatably mounted on rotating rod 615.

[0058] During the movement of the first slider 622, the rotation of the middle part of the linkage telescopic rod 64 is limited by the rotating rod 615, thereby realizing the joint drive of the third slider 632.

[0059] In a preferred embodiment, the drive assembly 7 includes a lead screw 73, which is rotatably mounted on the base 1 via a bearing seat 72. A connecting seat 74 is threadedly connected to one end of the lead screw 73, and a limit groove is formed at the other end of the connecting seat 74.

[0060] A boss 627 is snapped into the limiting groove, and the boss 627 is fixedly mounted on the holding panel 621.

[0061] The lead screw 73 is driven by a motor, which is located inside the machine base 1.

[0062] The motor is started to rotate the lead screw 73, which causes the connecting seat 74 to move. When the boss 627 is in the limiting groove, the holding panel 621 will move synchronously.

[0063] In a preferred embodiment, the noodle processing component includes:

[0064] The noodle inlet 2 is fixedly installed on the machine base 1 and connected to the noodle conveying equipment;

[0065] Adjustable guide rail 3 is fixedly installed on both sides of the feed channel 2, and a cutting component 4 is slidably adjusted on the adjustable guide rail 3;

[0066] The controller 5 is fixedly mounted on the cutting surface assembly 4.

[0067] The controller 5 is used to control the cutting component 4 to cut the noodles when the preset noodle weight is reached.

[0068] The preset weight of the noodles on the first serving panel 621 should be slightly lower than the weight of the second serving panel 631. After the noodle cutting component 4 completes the cutting, the suspended part of the noodles falls onto the first serving panel 621 and remains within the weighing range.

[0069] In practical applications, the conveying equipment uniformly transports the finished noodles to the noodle inlet 2, which guides the noodles to the weighing mechanism 6. The first weighing component 62 and the second weighing component 63 on the weighing mechanism 6 take turns weighing the noodles under the action of the drive component 7. After reaching the preset weight, the noodle cutting component 4 cuts the noodles, thereby completing the fully automated continuous weighing of the noodles and improving industrial efficiency.

[0070] The above description is merely a specific embodiment of this utility model, but the protection scope of this utility model is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this utility model should be included within the protection scope of this utility model. Therefore, the protection scope of this utility model should be primarily defined by the scope of the claims.

Claims

1. An automated noodle weighing apparatus, characterized by: Include: Base (1), noodle processing assembly, weighing mechanism (6), drive assembly (7); The noodle processing assembly is installed on the base (1), and the noodle processing assembly cuts off the noodles after the noodles reach the preset weight of the weighing mechanism (6); the drive assembly (7) is installed on the base (1) and used for driving the weighing mechanism (6) to alternate and continuously weigh; The weighing mechanism (6) is arranged on the base (1) and connected with the drive assembly (7); wherein the weighing mechanism (6) comprises two mounting brackets (61), the two mounting brackets (61) are symmetrically fixedly installed on the base (1), a first weighing assembly (62) and a second weighing assembly (63) are arranged on the mounting bracket (61); the first weighing assembly (62) is connected with the drive assembly (7); The second weighing assembly (63) and the first weighing assembly (62) are connected through a linkage telescopic rod (64), and the linkage telescopic rod (64) is rotationally arranged on the mounting bracket (61).

2. The automatic noodle weighing apparatus according to claim 1, characterized by: The first weighing assembly (62) comprises two linear guides (623), and the two linear guides (623) are symmetrically installed on the base (1), and a first sliding block (622) and a second sliding block (625) are slidably arranged on the linear guide (623); A connecting seat (624) is fixedly arranged on the first sliding block (622), a noodle containing plate (621) is rotationally arranged through the connecting seat (624), one end of an electric telescopic rod (626) is rotationally arranged on the noodle containing plate (621), and the other end of the electric telescopic rod (626) is rotationally arranged on the second sliding block (625).

3. The automatic noodle weighing apparatus according to claim 2, characterized by: The second weighing assembly (63) comprises two linear guides (633), and the two linear guides (633) are fixedly arranged on the mounting bracket (61), and a third sliding block (632) and a fourth sliding block (635) are slidably arranged on the linear guide (633); A connecting seat (634) is fixedly arranged on the third sliding block (632), a noodle containing plate (631) is rotationally arranged through the connecting seat (634), one end of an electric telescopic rod (636) is rotationally arranged on the noodle containing plate (631), and the other end of the electric telescopic rod (636) is rotationally arranged on the fourth sliding block (635).

4. The automatic noodle weighing apparatus according to claim 3, characterized by: Pressure sensors are arranged on the first sliding block (622), the second sliding block (625), the third sliding block (632) and the fourth sliding block (635).

5. The automatic noodle weighing apparatus according to claim 3, characterized by: The linkage telescopic rod (64) is rotationally arranged on the mounting bracket (61), one end is rotationally arranged on the third sliding block (632), and the other end is rotationally arranged on the first sliding block (622).

6. The automatic noodle weighing apparatus according to claim 1, characterized by: The mounting bracket (61) comprises a fixing rod (611), one end of which is fixedly arranged on the base (1), and the other end is fixedly arranged with an L-shaped bracket (613), which is provided with an avoiding slot (614) penetrating through, which is used for avoiding the linkage telescopic rod (64); A supporting rod (612) is fixedly arranged on the fixing rod (611), and a rotating rod (615) is fixedly arranged on the supporting rod (612), and the linkage telescopic rod (64) is rotatably arranged on the rotating rod (615).

7. The automatic noodle weighing apparatus according to claim 2, characterized by: The driving assembly (7) comprises a lead screw (73) rotatably arranged on the base (1) through a bearing seat (72), one end of which is threadedly connected with a connecting seat (74), and the other end of the connecting seat (74) is provided with a limiting slot; A boss (627) is clamped in the limiting slot, and the boss (627) is fixedly arranged on the noodle panel (621).

8. The automatic noodle weighing apparatus according to claim 7, characterized by: The lead screw (73) is driven by a motor, and the motor is arranged in the base (1).

9. The automatic noodle weighing apparatus according to claim 1, characterized by: The noodle processing assembly comprises: A noodle inlet (2) is fixedly arranged on the base (1) and connected with a noodle conveying device; Adjusting guide rails (3) are fixedly arranged on both sides of the noodle inlet (2), and a noodle cutting assembly (4) is slidingly arranged on the adjusting guide rails (3); A controller (5) is fixedly arranged on the noodle cutting assembly (4).

10. The automatic noodle weighing apparatus according to claim 9, characterized by: The controller (5) is used for controlling the noodle cutting assembly (4) to cut the noodles when the preset noodle weight is reached.

Citation Information

Patent Citations

  • Full-automatic weighing device for finished noodles

    CN211442949U