Microorganism detection device for pickle production raw materials
By combining the driving motor and gear system with sliding blocks and other structures, the rapid replacement and stable connection of biosensors in kimchi production are achieved, solving the problems of discontinuous detection and interface damage, and improving detection efficiency and equipment reliability.
Patent Information
- Application Number
- CN202422334486.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-25
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2034-09-25
AI Technical Summary
Inconvenient replacement of biosensor sensitive materials in existing kimchi production leads to discontinuous detection, low efficiency, and poor connection angles to easily damage the interface.
The structure design of driving motors, gears, sliding blocks and interfaces is adopted to achieve rapid switching and stable connection of biosensors, and the stability and accuracy of the connection process are ensured through structures such as push rods, push rods and guide blocks.
It realizes rapid switching of biosensors, ensures detection continuity, improves production efficiency, reduces the risk of equipment damage, and enhances the reliability and service life of equipment.
Smart Images

Figure CN223226073U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of detection devices, in particular to a microorganism detection device for pickle production raw materials. Background Art
[0002] As a traditional fermented food, kimchi is popular all over the world. As people pay more and more attention to food safety, quality control in the kimchi production process has become increasingly important. In kimchi production, microbial testing of raw materials is a key link in ensuring product quality and safety.
[0003] In the microbial detection of kimchi production raw materials, traditional detection methods such as culture method and enzyme-linked immunosorbent assay are usually used. However, these detection methods are complicated to operate and have long detection cycles, and it is difficult to meet the high-efficiency and fast requirements of modern kimchi production. When using biosensor detection methods, when testing kimchi raw materials, the sensitive materials inside them have a limited service life and need to be replaced regularly; although biosensors have improved the sensitivity and specificity of detection to a certain extent, the replacement of sensitive materials often requires manual operation during shutdown, which not only affects the continuity of detection and reduces production efficiency, but also increases labor costs and operational risks. Utility Model Content
[0004] The technical problem to be solved by the utility model is to provide a microorganism detection device for kimchi production raw materials, so as to solve the technical problems that the biosensor connection port and the interface on the bracket are easily damaged if the connection angle of the biosensor connection port is incorrect or the connection port rotates when the biosensor connection port is connected to the interface on the bracket.
[0005] Technical solution: To achieve the above objectives, the present invention is implemented through the following technical solution: a microbial detection device for kimchi production raw materials, comprising: a conveyor belt for conveying kimchi raw materials to be tested; a bracket stably mounted on the conveyor belt, a drive motor stably mounted on the bracket; a gear stably connected to the output end of the drive motor; a sliding block slidably connected to the bracket, the sliding block being located below the gear; a plurality of teeth, the plurality of teeth being linearly arranged, the teeth being stably connected to the sliding block, and the teeth being meshed with the gear; a plurality of mounting blocks, the plurality of mounting blocks being linearly distributed, the mounting blocks being stably connected to the sliding block, the mounting block being used to mount a biosensor; an interface stably connected to the bracket, the interface being used for electrically connecting the biosensor; the gear being used to drive the sliding block to move, the sliding block being used to drive the mounting block to move, wherein the speed of the conveyor belt should be adjustable to adapt to different production requirements; the drive motor should have sufficient torque and stability to ensure the accuracy of gear rotation; the size and shape of the mounting block should match the biosensor to facilitate quick installation and removal; and the interface should adopt a standardized design to facilitate connection with different models of biosensors.
[0006] In a further embodiment, there are multiple auxiliary blocks, and the multiple auxiliary blocks correspond to the multiple mounting blocks, and the auxiliary blocks are stably connected to the sliding block; there are multiple slides, and the multiple slides correspond to the multiple auxiliary blocks, and the slides are slidably connected to the side of the auxiliary block away from the mounting block, wherein the material of the auxiliary block should have certain strength and wear resistance to ensure the stability of the slide; the sliding connection between the slide and the auxiliary block can adopt a precise guide rail structure to ensure the accuracy and smoothness of the sliding; the size of the slide should be moderate, which is convenient for operation and does not take up too much space.
[0007] In a further embodiment, there are at least two push rods, which are respectively located on both sides of the interface, and the push rods are used to push the skateboard to move; the auxiliary frame is stably mounted on the bracket; the push rod is stably mounted on the auxiliary frame, and the push rod is located on the side of the skateboard away from the push rods, and the push rod is used to push the skateboard to move, wherein the stroke of the push rod and the push rod should be adjustable to adapt to skateboards and interfaces of different sizes; the pushing speed of the push rod and the push rod should be moderate to avoid unstable connection or damage to the equipment due to too fast or too slow movement; the structure of the auxiliary frame should be firm and reliable, able to withstand the force of the push rod, and the ejection stroke of the push rod should be greater than the width of the guide block.
[0008] In a further embodiment, the socket is stably mounted on the skateboard, and there are two sockets. The two sockets are electrically connected. The socket on the skateboard close to the bracket is adapted to the interface, and the other socket is adapted to the biosensor connector. The material of the socket should have good conductivity and wear resistance to ensure long-term use; the size of the socket should strictly match the interface and the biosensor connector to avoid looseness or poor contact; the plugging and unplugging force of the socket should be moderate for easy operation.
[0009] In a further embodiment, a winding block is stably connected to the slide, and the winding block is used to wind up the excess circuit of the biosensor, wherein the size of the winding block should be designed according to the circuit length of the biosensor to ensure that the excess circuit can be completely wound; the surface of the winding block should be smooth to avoid circuit wear; the connection of the winding block should be firm and not easy to fall off.
[0010] In a further embodiment, the connecting block is stably connected to the bracket, and the connecting block is used to connect the sliding block and the bracket. The connecting block is slidably connected to the sliding block, and the material of the connecting block should have a certain strength and rigidity to withstand the weight of the sliding block and the biosensor.
[0011] In a further embodiment, at least two guide blocks are provided, and the two guide blocks are respectively located on both sides of the interface. The guide blocks are used to prevent the slide from interfering with the interface when the sliding block slides. The shape and angle of the guide blocks should be carefully designed to ensure that the slide can pass smoothly without colliding with the interface; the installation position of the guide blocks should be accurate, and the relative position relationship with the interface and the slide should be reasonable.
[0012] In a further embodiment, the interface corresponds to the center position of the transmission direction of the conveyor belt, wherein the position of the interface should be precisely adjusted to ensure strict correspondence with the center position of the conveyor belt; the installation of the interface should be firm and reliable and not easily affected by the vibration of the conveyor belt.
[0013] Beneficial effects: 1. The gear is driven to rotate by a driving motor, and the gear engages with a sliding block with teeth. A plurality of mounting blocks for mounting biosensors are installed on the sliding block, as well as the cooperation of interfaces, auxiliary blocks, slide plates and other structures; the purpose of quickly switching the biosensor when the sensitive material of the biosensor needs to be replaced is achieved; the detection is not interrupted, the detection continuity is guaranteed, and at the same time the efficiency of replacing sensitive materials is improved, the downtime caused by replacing sensitive materials is reduced, and the production efficiency is improved.
[0014] 2. By providing a socket on the slide that is compatible with the interface on the bracket, as well as providing a push rod, a push rod, an auxiliary frame and other structures, and providing guide blocks on both sides of the interface, the purpose of smoothly and accurately performing interface connection and disconnection operations during the biosensor connection and switching process is achieved; the effect of avoiding damage to the biosensor connection port and the interface on the bracket due to incorrect connection angle or rotation of the biosensor connection port is achieved. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] In order to more clearly illustrate the practical embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0016] Figure 1 It is a structural diagram of the present utility model.
[0017] Figure 2 Schematic diagram of the structure of the bracket.
[0018] Figure 3 Schematic diagram of the structure of the sliding block.
[0019] Figure 4 for Figure 2 Schematic diagram of the structure at A.
[0020] Figure 5 for Figure 2 Schematic diagram of the structure at B.
[0021] Figure 6 for Figure 3 Schematic diagram of the structure at C.
[0022] The reference numerals in the figure are: 1. Conveyor belt; 2. Bracket; 3. Gear; 4. Connecting block; 5. Sliding block; 501. Teeth; 502. Mounting block; 503. Auxiliary block; 504. Slide plate; 5041. Winding block; 5042. Socket; 6. Interface; 7. Push rod; 8. Auxiliary frame; 9. Push rod; 10. Guide block. DETAILED DESCRIPTION
[0023] To make the purpose, technical solutions, and advantages of this practical embodiment more clear, the technical solutions in this practical embodiment are clearly and completely described. Obviously, the described embodiments are part of the embodiments of this practical, not all of them. Based on the embodiments in this practical, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this practical.
[0024] This embodiment of the present application provides a microbial detection device for kimchi production raw materials, resolving technical issues such as discontinuous detection and low efficiency caused by the inconvenience of replacing biosensor sensitive materials; and the potential for damage to the interface between the biosensor connector and the bracket due to incorrect angles or rotation during connection. In actual use, the device achieves rapid switching of biosensors, ensuring continuous detection and improving efficiency, while also preventing damage to the biosensor connector and bracket interface due to angled connection.
[0025] In order to better understand the above technical solution, the above technical solution will be described in detail below with reference to the accompanying drawings and specific implementation methods.
[0026] Reference Figure 1-6 , a microorganism detection device for kimchi production raw materials, comprising: a conveyor belt 1 for transmitting the kimchi raw materials to be tested; a bracket 2, stably mounted on the conveyor belt 1, and a driving motor stably mounted on the bracket 2; a gear 3, stably connected to the output end of the driving motor; a sliding block 5, slidably connected to the bracket 2, and the sliding block 5 is located below the gear 3; a plurality of teeth 501 are provided, and the plurality of teeth 501 are linearly arranged, the teeth 501 are stably connected to the sliding block 5, and the teeth 501 are meshed with the gear 3; a plurality of mounting blocks 502 are provided, and the plurality of mounting blocks 502 are linearly distributed, the mounting block 502 is stably connected to the sliding block 5, and the mounting block 502 is used to install a biosensor; an interface 6, stably connected to the bracket 2, and the interface 6 is used for electrical connection of the biosensor; the gear 3 is used to drive the sliding block 5 to move, and the sliding block 5 is used to drive the mounting block 502 to move.
[0027] By driving the motor, the gear 3, the sliding block 5 with the teeth 501, the mounting block 502 mounted on the sliding block 5, and the interface 6 stably connected to the bracket 2, the driving motor drives the gear 3 to rotate, and then the gear 3 drives the sliding block 5 to move by engaging with the teeth 501, and the sliding block 5 drives the biosensor on the mounting block 502 to move, thereby achieving the purpose of being able to quickly switch the biosensor when the sensitive material of the biosensor needs to be replaced.
[0028] There are multiple auxiliary blocks 503, and the multiple auxiliary blocks 503 correspond to the multiple mounting blocks 502, and the auxiliary blocks 503 are stably connected to the sliding block 5; there are multiple slides 504, and the multiple slides 504 correspond to the multiple auxiliary blocks 503, and the slides 504 are slidably connected to the side of the auxiliary block 503 away from the mounting block 502.
[0029] By connecting the auxiliary block 503 with the sliding block 5 and slidingly connecting the slide plate 504 with the auxiliary block 503 , the slide plate 504 can slide flexibly on the auxiliary block 503 , facilitating the connection and switching between the biosensor and the interface 6 .
[0030] There are at least two push rods 7, which are respectively located on both sides of the interface 6. The push rods 7 are used to push the slide 504 to move; the auxiliary frame 8 is stably installed on the bracket 2; the push rod 9 is stably installed on the auxiliary frame 8, and the push rod 9 is located on the side of the slide 504 away from the push rod 7. The push rod 9 is used to push the slide 504 to move.
[0031] Through the cooperation of the top rod 7, the auxiliary frame 8, the push rod 9 and the slide 504, the top rod 7 can push the slide 504 to move to release the connection, and the push rod 9 can push the slide 504 to move to establish the connection, which facilitates the switching operation of the biosensor.
[0032] The socket 5042 is stably mounted on the slide 504. There are two sockets 5042. The two sockets 5042 are electrically connected. The socket 5042 on the slide 504 close to the bracket 2 is adapted to the interface 6, and the other socket 5042 is adapted to the biosensor connection port.
[0033] By installing the socket 5042 on the slide 504 and electrically connecting the two sockets 5042, and by adapting one socket 5042 on the slide 504 to the interface 6 and the other socket 5042 to the biosensor connection port, a fast and stable electrical connection effect is achieved between the biosensor and the interface 6.
[0034] The winding block 5041 is stably connected to the slide plate 504 and is used to wind the redundant circuits of the biosensor.
[0035] By means of the stable connection and cooperation between the winding block 5041 and the slide plate 504, the redundant lines of the biosensor are wound, the line confusion is avoided, and the neatness and safety of the device are improved.
[0036] The connecting block 4 is stably connected to the bracket 2 . The connecting block 4 is used to connect the sliding block 5 to the bracket 2 . The connecting block 4 is slidably connected to the sliding block 5 .
[0037] By stably connecting the connecting block 4 to the bracket 2 and cooperating with the sliding connection of the sliding block 5, a stable connection and smooth sliding effect between the sliding block 5 and the bracket 2 is achieved, providing support and guidance for the movement of the biosensor.
[0038] There are at least two guide blocks 10 , which are located on both sides of the interface 6 . The guide blocks 10 are used to prevent the slide 504 from interfering with the interface 6 when the sliding block 5 slides.
[0039] By having the guide blocks 10 located on both sides of the interface 6 and cooperating with the sliding block 5 and the slide plate 504, the slide plate 504 is prevented from interfering with the interface 6 when the sliding block 5 slides, thereby ensuring the stability of the equipment operation.
[0040] The interface 6 corresponds to the center position of the conveying direction of the conveyor belt 1.
[0041] By cooperating with the center position of the conveying direction of the conveyor belt 1 in correspondence with the interface 6, the biosensor can better detect the kimchi production raw materials on the conveyor belt 1, thereby improving the accuracy and uniformity of the detection.
[0042] During use, the raw materials for kimchi production are placed on the conveyor belt 1 for transportation, and the microorganisms on the kimchi raw materials are detected by the biosensor installed on the bracket 2. When the sensitive material in one of the biosensors needs to be replaced, the slide 504 is pushed by the push rod 7 to move, so that the socket 5042 on the slide 504 is disconnected from the interface 6; then the gear 3 continues to drive the sliding block 5 to move, moving the other biosensor to the interface 6; then the slide 504 is pushed by the push rod 9 to move, so that the socket 5042 on the slide 504 is connected to the interface 6, thereby realizing rapid switching of the biosensor; during the switching process, the auxiliary block 503 provides support and guidance for the slide 504, and the winding block 5041 can organize the redundant lines of the biosensor; the connecting block 4 ensures that the sliding block 5 is stably connected to the bracket 2 and can slide smoothly, and the guide block 10 prevents the slide 504 from interfering with the interface 6 when the sliding block 5 slides; the interface 6 corresponds to the center position of the transmission direction of the conveyor belt 1, so that the biosensor can better detect the raw materials.
[0043] The up and down adjustment and left and right adjustment devices, rejection equipment, data analysis and processing devices, and power supply equipment required above all belong to the existing technology and are non-essential technical features in this application, so they are not described or drawn in the documents and drawings of this application; and the figures shown in the drawings are example figures, and their purpose is only to more intuitively demonstrate the key structure and connection relationship of the microbial detection device for kimchi production raw materials of the utility model; in actual application, the appearance and size of the device can be adjusted and optimized according to specific needs.
[0044] In summary, compared with the existing technology, the present invention has the following beneficial effects: it realizes the rapid switching of biosensors. Through the cooperation of drive motors, gears, sliding blocks and other structures, when the sensitive material of a biosensor needs to be replaced, it can be quickly switched to another biosensor, thereby ensuring the continuity of detection, improving detection efficiency, and reducing the downtime caused by replacing sensitive materials; it avoids damage to the biosensor connection port and the bracket interface due to connection angle problems. With the help of structures such as the push rod, push rod, socket, and guide block, during the biosensor connection and switching process, the interface connection and disconnection operations can be performed smoothly and accurately, reducing the risk of equipment damage and improving the reliability and service life of the equipment.
[0045] This invention encompasses any alternatives, modifications, equivalents, and solutions that do not depart from the spirit and scope of this invention. While specific details are described in detail in the preferred embodiments of this invention to provide a thorough understanding, those skilled in the art will be able to fully understand this invention without these details. Furthermore, to avoid unnecessary confusion regarding the essence of this invention, well-known methods, processes, procedures, components, and circuits have not been described in detail.
[0046] The above is only a preferred embodiment of the present invention. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the principles of the present invention. These improvements and modifications should also be regarded as within the scope of protection of the present invention.
Claims
1. A microorganism detection device for kimchi production raw materials, characterized in that: include: A conveyor belt (1) is used to convey the kimchi raw materials to be inspected; A bracket (2) is stably mounted on the conveyor belt (1), and a driving motor is stably mounted on the bracket (2); Gear (3), stably connected to the output end of the drive motor; A sliding block (5) is slidably connected to the bracket (2), and the sliding block (5) is located below the gear (3); There are multiple teeth (501), and the multiple teeth (501) are arranged linearly, the teeth (501) are stably connected to the sliding block (5), and the teeth (501) are meshed with the gear (3); A plurality of mounting blocks (502) are provided, and the plurality of mounting blocks (502) are linearly distributed, the mounting blocks (502) are stably connected to the sliding block (5), and the mounting blocks (502) are used to mount the biosensor; An interface (6) is stably connected to the support (2), and the interface (6) is used for electrical connection of the biosensor; The gear (3) is used to drive the sliding block (5) to move, and the sliding block (5) is used to drive the mounting block (502) to move.
2. The microorganism detection device for kimchi production raw materials according to claim 1, characterized in that: Also includes: A plurality of auxiliary blocks (503) are provided, and the plurality of auxiliary blocks (503) correspond to the plurality of mounting blocks (502), and the auxiliary blocks (503) are stably connected to the sliding block (5); There are multiple slide plates (504), and the multiple slide plates (504) correspond to the multiple auxiliary blocks (503). The slide plates (504) are slidably connected to the side of the auxiliary block (503) away from the mounting block (502).
3. The microorganism detection device for kimchi production raw materials according to claim 2, characterized in that: Also includes: There are at least two push rods (7), the two push rods (7) are respectively located on both sides of the interface (6), and the push rods (7) are used to push the slide plate (504) to move; An auxiliary frame (8) is stably mounted on the bracket (2); A push rod (9) is stably mounted on the auxiliary frame (8), and the push rod (9) is located on a side of the slide plate (504) away from the top rod (7). The push rod (9) is used to push the slide plate (504) to move.
4. The microorganism detection device for kimchi production raw materials according to claim 2, characterized in that: Also includes: The socket (5042) is stably mounted on the slide (504). Two sockets (5042) are provided. The two sockets (5042) are electrically connected. The socket (5042) on the slide (504) near the bracket (2) is adapted to the interface (6), and the other socket (5042) is adapted to the biosensor connection port.
5. The microorganism detection device for kimchi production raw materials according to claim 2, characterized in that: Also includes: The winding block (5041) is stably connected to the slide plate (504), and the winding block (5041) is used to wind the redundant circuits of the biosensor.
6. The microorganism detection device for kimchi production raw materials according to claim 1, characterized in that: Also includes: The connecting block (4) is stably connected to the bracket (2). The connecting block (4) is used to connect the sliding block (5) and the bracket (2). The connecting block (4) and the sliding block (5) are slidably connected.
7. The microorganism detection device for kimchi production raw materials according to claim 2, characterized in that: Also includes: At least two guide blocks (10) are provided, and the two guide blocks (10) are respectively located on both sides of the interface (6). The guide blocks (10) are used to prevent the slide plate (504) from interfering with the interface (6) when the sliding block (5) slides.
8. The microorganism detection device for kimchi production raw materials according to claim 1, characterized in that: The interface (6) corresponds to the center position of the transmission direction of the transmission belt (1).