Food safety detection sampling device in biscuit production
By designing a highly adaptable sampling device, the problem of cross-contamination of crumbs in biscuit production was solved, ensuring sample purity and testing accuracy, reducing operational burden, and improving the reliability of production decisions.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ANHUI GOLDEN FUJI FOOD CO LTD
- Filing Date
- 2025-04-30
- Publication Date
- 2026-05-19
AI Technical Summary
In biscuit production, crumbs adhering to the sample surface affect the sample purity, leading to cross-contamination between different types of biscuit samples, interfering with test results, and misleading production decisions.
A sampling device was designed, comprising a sample box, a displacement component, a rotating wiping component, and a cleaning component. The displacement component adjusts the angle, the rotating wiping component cleans up debris, and the cleaning component collects and prevents debris from spreading, thus ensuring sample purity.
It enables flexible and adaptable cleaning of different biscuit samples, reduces cross-contamination, improves the accuracy and efficiency of testing, and ensures food safety.
Smart Images

Figure CN224262835U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of food safety technology, and in particular to a food safety testing and sampling device for biscuit production. Background Technology
[0002] Food safety refers to food that is non-toxic and harmless, meets nutritional requirements, and will not cause acute, subacute, or chronic harm to human health. Furthermore, food production and distribution are subject to strict standards and supervision to ensure public food safety and health.
[0003] In the current biscuit production process, biscuit samples need to be collected, placed in a sampling device, and then sent to the testing department for analysis. However, due to the characteristics of the biscuit manufacturing process, biscuit samples often have crumbs adhering to their surface. These crumbs not only affect the purity of the samples, but also, when collecting samples of multiple types of biscuits simultaneously, the powders from different biscuits are highly susceptible to cross-contamination. This not only interferes with the accurate testing of individual biscuit samples but may also lead to biased test results that fail to accurately reflect the original quality of the biscuits, thus misleading product quality control and subsequent production decisions.
[0004] Therefore, it is necessary to provide a food safety testing and sampling device for biscuit production to solve the above-mentioned technical problems. Utility Model Content
[0005] This invention provides a food safety testing sampling device for biscuit production, which solves the problem that when biscuit samples are sent for testing, the samples are attached with fragments due to the process, and the fragments of different types of biscuits are easily cross-contaminated, interfering with the testing and misleading production decisions.
[0006] To solve the above-mentioned technical problems, the present invention provides a food safety testing sampling device for biscuit production, comprising: a sample box, a displacement component for adjusting the angle installed on the right side of the sample box, a rotating wiping component for cleaning biscuit crumbs outside the displacement component, and a cleaning component for preventing the crumbs from spreading inside the displacement component.
[0007] Preferably, the displacement assembly includes a support member and a semi-circular locking plate. The support member is installed on the right side of the sample box. A circular sleeve for supporting rotation is fixedly connected to the outside of the support member. A rotating member is movably connected inside the circular sleeve. The rotating member passes through the circular sleeve and extends to its outside. An adjustment member for angle change is fixedly connected to the end of the rotating member. A pressing reset member is provided on one side of the adjustment member. The semi-circular locking plate is installed on the outside of the support member. A plurality of equidistant locking holes are opened on the outside of the semi-circular locking plate. The pressing reset member passes through the locking holes and extends to its outside, and the pressing reset member can slide within the locking holes.
[0008] Preferably, the rotating wiping assembly includes a driving device and a wiping component. The driving device is installed on one side of the adjusting component, and a transmission component is fixedly connected to the output end of the driving device. The transmission component passes through the adjusting component and extends to its exterior, and the wiping component is installed outside the transmission component.
[0009] Preferably, the cleaning assembly includes a debris collection component and a connecting rod. A short rod structure is fixedly connected to the other side of the adjusting component. One side of the connecting rod is installed at the end of the short rod structure. A movable component is fixedly connected to the other side of the connecting rod. A rotating hole is provided on the outside of the supporting component. The movable component is movably connected to the rotating hole. The debris collection component is installed on the other side of the connecting rod. A telescopic connecting pipe for connecting a vacuum cleaner is provided on the outside of the debris collection component.
[0010] Preferably, the sample box is internally provided with a placement adjustment assembly, which includes a receiving component, a synchronizing component, and a partition component. The partition component is installed inside the sample box, and guide structures are respectively provided on the left and right sides of the partition component. A positioning component is provided inside the guide structure, and a transmission screw is movably connected inside the positioning component. A cross groove component is fixedly connected to the top of the transmission screw. An operating hole is opened on the top of the partition component, and the cross groove component passes through the operating hole and extends to its outside. The interior of the synchronizing component is threadedly connected to the outer surface of the transmission screw, and the synchronizing component is fixedly connected to the receiving component.
[0011] Preferably, the container is provided with a protective component inside, the protective component including a drying component and a through hole, the top of the container is provided with a placement groove, the drying component is installed inside the placement groove, the through holes are equidistantly arranged on the inner wall of the container, and the bottom of the container is provided with a telescopic reset component for protecting the integrity of the sample biscuit, the bottom of the telescopic reset component is fixedly connected to the inside of the sample box.
[0012] Preferably, the sample box is provided with an auxiliary component on its exterior. The auxiliary component includes an elastic compression member and a sealing lid. The sealing lid is rotatably connected to the top of the sample box. The elastic compression member is installed inside the sealing lid. The top of the sealing lid is provided with a lifting component for handling.
[0013] Compared with related technologies, the food safety testing and sampling device for biscuit production provided by this utility model has the following beneficial effects:
[0014] This invention provides a food safety testing sampling device for biscuit production. The displacement component on the right side of the sample box can flexibly adjust the angle of the rotating wiping component according to different biscuit styles. During actual sampling, it can automatically adapt to differences in biscuit placement and shape, eliminating the need for personnel to bend over and reducing their workload. The rotating wiping component can clean up debris from all directions, and the cleaning component within the displacement component promptly collects debris and prevents its spread, providing a good environment for the sample and ensuring efficient and accurate food safety testing. Attached Figure Description
[0015] Figure 1 A schematic diagram of a preferred embodiment of the food safety testing and sampling device for biscuit production provided by this utility model;
[0016] Figure 2 for Figure 1 The diagram shown is a top view.
[0017] Figure 3 for Figure 2 The enlarged schematic diagram of part A shown below;
[0018] Figure 4 for Figure 1 The diagram shown is a left-view illustration;
[0019] Figure 5 for Figure 4 The enlarged schematic diagram of section B is shown below;
[0020] Figure 6 for Figure 1 The front sectional view shown is shown below;
[0021] Figure 7 for Figure 6 The enlarged schematic diagram of section C is shown below;
[0022] Figure 8 for Figure 6 The enlarged schematic diagram of part D is shown below;
[0023] Figure 9 for Figure 1 The diagram shows a partial cross-sectional view.
[0024] The diagram labels are as follows: 1. Sample box; 2. Displacement assembly; 21. Support component; 22. Semi-circular locking plate; 23. Circular sleeve; 24. Rotating component; 25. Adjusting component; 26. Press-to-reset component; 27. Locking hole; 3. Rotary wiping assembly; 31. Drive device; 32. Wiping component; 33. Transmission component; 4. Cleaning assembly; 41. Debris collection component; 42. Connecting rod; 43. Short rod structure; 44. Movable component; 45. Rotating hole. 46. Telescopic connecting pipe fitting; 5. Placement and adjustment component; 52. Receiving component; 53. Synchronizing component; 54. Partition component; 55. Guide structure; 56. Positioning component; 57. Transmission screw; 58. Cross groove component; 59. Operating hole; 6. Protection component; 61. Drying component; 62. Through hole; 63. Placement groove; 64. Telescopic reset component; 7. Auxiliary component; 71. Elastic extrusion component; 72. Sealing box cover; 73. Lifting component. Detailed Implementation
[0025] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0026] Please refer to the following: Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7 , Figure 8 and Figure 9 ,in, Figure 1 A schematic diagram of a preferred embodiment of the food safety testing and sampling device for biscuit production provided by this utility model; Figure 2 for Figure 1 The diagram shown is a top view. Figure 3 for Figure 2 The enlarged schematic diagram of part A shown below; Figure 4 for Figure 1 The diagram shown is a left-view illustration; Figure 5 for Figure 4 The enlarged schematic diagram of section B is shown below; Figure 6 for Figure 1 The front sectional view shown is shown below; Figure 7 for Figure 6 The enlarged schematic diagram of section C is shown below;
[0027] Figure 8 for Figure 6 The enlarged schematic diagram of part D is shown below; Figure 9 for Figure 1The diagram shows a partial cross-sectional view. The food safety testing sampling device in biscuit production includes: a sample box 1, a displacement component 2 for adjusting the angle installed on the right side of the sample box 1, a rotating wiping component 3 for cleaning up biscuit crumbs outside the displacement component 2, and a cleaning component 4 for preventing the crumbs from spreading inside the displacement component 2.
[0028] The displacement assembly 2 includes a support member 21 and a semi-circular locking plate 22. The support member 21 is installed on the right side of the sample box 1. A circular sleeve 23 for supporting rotation is fixedly connected to the outside of the support member 21. A rotating member 24 is movably connected inside the circular sleeve 23. The rotating member 24 passes through the circular sleeve 23 and extends to its outside. An adjusting member 25 for angle change is fixedly connected to the end of the rotating member 24. A pressing reset member 26 is provided on one side of the adjusting member 25. The semi-circular locking plate 22 is installed outside the support member 21. A plurality of equidistant locking holes 27 are opened on the outside of the semi-circular locking plate 22. The pressing reset member 26 passes through the locking holes 27 and extends to its outside, and the pressing reset member 26 can slide within the locking holes 27.
[0029] The support member 21 is installed on the right side of the sample box 1, serving as a basic support. The circular sleeve 23 is fixed to the outside of the support member 21, providing movable support space for the rotating member 24, allowing it to rotate flexibly within it. One end of the rotating member 24 is connected to the circular sleeve 23, and the other end is connected to the adjusting member 25. Rotation causes the adjusting member 25 to change its angle. The adjusting member 25 is used to precisely control the angle of the rotating wiping assembly 3 to meet the sampling needs of different biscuits. The pressing and resetting member 26 is located on one side of the adjusting member 25 and cooperates with the locking hole 27 on the semi-circular locking plate 22. By sliding within the locking hole 27, the adjusted angle of the adjusting member 25 is fixed, ensuring stable operation of the device. The semi-circular locking plate 22 is installed outside the support member 21, and its equidistant locking holes 27 provide multiple fixed positions for the pressing and resetting member 26 to accommodate different angle adjustments.
[0030] Among them, the semi-circular locking plate 22 includes, but is not limited to, various arc-shaped locking components with angle positioning functions, such as fan-shaped positioning plates, semi-circular toothed locking plates, semi-circular locking plates with positioning holes, etc.
[0031] In this embodiment, the semi-circular locking plate 22 is preferably a semi-circular locking plate with equidistant locking holes 27. Its processing and manufacturing are relatively simple and the cost is low. By cooperating with the pressing and resetting member 26, it can accurately and conveniently achieve the positioning and locking of the rotation angle of the adjusting member 25, and meet the requirements of the device for structural stability and angle fixation under different working conditions.
[0032] The rotating wiping assembly 3 includes a driving device 31 and a wiping component 32. The driving device 31 is installed on one side of the adjusting component 25. The output end of the driving device 31 is fixedly connected to a transmission component 33. The transmission component 33 passes through the adjusting component 25 and extends to its outside. The wiping component 32 is installed on the outside of the transmission component 33.
[0033] In the rotating wiping assembly 3, the drive device 31 is installed on one side of the adjusting member 25, and its output end is connected to the transmission member 33. After starting, the drive device 31 drives the transmission member 33 to rotate. The transmission member 33 passes through the adjusting member 25 and extends to the outside, transmitting power to the wiping member 32 installed on its outside, causing the wiping member 32 to rotate, thereby completing the wiping work of the crumbs on the surface of the biscuit.
[0034] Among them, the wiping component 32 includes, but is not limited to, various components with cleaning and wiping functions, such as sponge wiping heads, brush rollers, pig bristle wiping tools made of pig bristles, fiber cloth covers, etc.
[0035] In this embodiment, the wiping component 32 is preferably a hog bristle wiping tool. Hog bristle is tough and elastic, which is effective against stubborn crumbs and stains adhering to the surface of the biscuits. At the same time, the natural material properties of hog bristle make it less likely to generate static electricity during wiping, reducing interference with the biscuit samples. It is also relatively durable and can meet the needs of a certain frequency of cleaning work.
[0036] The cleaning assembly 4 includes a debris collection component 41 and a connecting rod 42. A short rod structure 43 is fixedly connected to the other side of the adjusting component 25. One side of the connecting rod 42 is installed at the end of the short rod structure 43, and a movable component 44 is fixedly connected to the other side of the connecting rod 42. A rotating hole 45 is provided on the outside of the support component 21, and the movable component 44 is movably connected to the rotating hole 45. The debris collection component 41 is installed on the other side of the connecting rod 42, and a telescopic connecting pipe 46 for connecting a vacuum cleaner is provided on the outside of the debris collection component 41.
[0037] The short rod structure 43, fixedly connected to the other side of the adjusting member 25, serves as the mounting base for the connecting rod 42. One end of the connecting rod 42 is installed at the end of the short rod structure 43. The other end of the connecting rod 42 is fixedly connected to the movable member 44, while the support member 21 has a rotating hole 45 on its exterior. The movable member 44 is movably connected to the rotating hole 45. When the angle of the adjusting member 25 changes, the connecting rod 42 will change position accordingly because the short rod structure 43 is fixed to the adjusting member 25. Through the rotation of the movable member 44 within the rotating hole 45, the angle of the debris collecting component 41 driven by the connecting rod 42 changes synchronously. The debris collecting component 41 is installed on the other side of the connecting rod 42 and is specifically used to collect biscuit crumbs that fall during wiping. The telescopic connecting tube 46 on its exterior can be connected to a vacuum cleaner. With the suction power of the vacuum cleaner, the debris inside the debris collecting component 41 is sucked away, effectively preventing the debris from spreading in the surrounding environment and creating a clean environment for sample testing.
[0038] Among them, the telescopic connecting pipe fitting 46 includes, but is not limited to, various pipe fittings that can realize telescopic functions to adapt to different connection needs, such as corrugated pipes, telescopic metal conduits, rubber telescopic pipes, etc.
[0039] In this embodiment, the telescopic connecting pipe 46 is preferably a corrugated pipe. Corrugated pipes have good telescopic performance, allowing for flexible length adjustment within a wide range to accommodate vacuum cleaner connections at different locations and distances. Their material typically possesses a certain degree of flexibility and bend resistance, making them less prone to damage and effectively reducing airflow resistance during vacuuming, thus ensuring optimal vacuuming performance. Furthermore, corrugated pipes are relatively inexpensive and easy to install and maintain.
[0040] The sample box 1 is internally provided with a placement adjustment assembly 5, which includes a receiving component 52, a synchronizing component 53, and a partition component 54. The partition component 54 is installed inside the sample box 1. Guide structures 55 are respectively provided on the left and right sides of the partition component 54. A positioning component 56 is provided inside the guide structure 55. A transmission screw 57 is movably connected inside the positioning component 56. A cross groove component 58 is fixedly connected to the top of the transmission screw 57. An operating hole 59 is opened on the top of the partition component 54. The cross groove component 58 passes through the operating hole 59 and extends to its outside. The interior of the synchronizing component 53 is threadedly connected to the outer surface of the transmission screw 57. The synchronizing component 53 is fixedly connected to the receiving component 52.
[0041] The sample box 1 is equipped with a placement and adjustment assembly 5, which includes a receiving component 52, a synchronizing component 53, and a partition component 54. The partition component 54 is installed inside the sample box 1, and the guide structures 55 on its left and right sides serve as guides. The positioning component 56 inside the guide structure 55 provides a stable moving space for the transmission screw 57. The top of the transmission screw 57 is fixedly connected to a cross groove component 58. An operating hole 59 is opened on the top of the partition component 54, and the cross groove component 58 extends to the outside through the operating hole 59, making it convenient for operators to insert tools into the cross groove component 58 for operation. When the cross groove component 58 is rotated, the transmission screw 57 rotates accordingly. Since the synchronizing component 53 is threadedly connected to the outer surface of the transmission screw 57, and the synchronizing component 53 is fixedly connected to the receiving component 52, the rotation of the transmission screw 57 can drive the synchronizing component 53 to move up and down along the guide structure 55, thereby realizing the adjustment of the position of the receiving component 52. The placement space can be flexibly adjusted according to the size and quantity of different biscuit samples, improving the applicability of the sample box 1.
[0042] Among them, the synchronizing component 53 includes, but is not limited to, various connecting transmission components that can achieve synchronous action with the transmission screw 57 and thereby drive other components to move, such as screw nut, synchronizing slider, transmission sleeve, threaded moving block, etc.
[0043] In this embodiment, the synchronizing element 53 is preferably a threaded moving block. The threaded moving block is connected to the transmission screw 57 by a thread, which can convert the rotational motion of the transmission screw 57 into its own linear motion, thereby achieving synchronous movement with the transmission screw 57.
[0044] The interior of the receiving component 52 is provided with a protective component 6, which includes a drying component 61 and a through hole 62. The top of the receiving component 52 is provided with a placement groove 63, and the drying component 61 is installed inside the placement groove 63. The through holes 62 are equidistantly arranged on the inner wall of the receiving component 52. The bottom of the receiving component 52 is provided with a telescopic reset component 64 for protecting the integrity of the sample biscuit. The bottom of the telescopic reset component 64 is fixedly connected to the interior of the sample box 1.
[0045] The drying component 61, installed in the placement slot 63 at the top of the container 52 through the protective component 6 inside the container 52, can absorb moisture in the sample box 1, keep the biscuit sample dry, and prevent it from getting damp and deteriorating; the through holes 62, which are equidistantly arranged on the inner wall of the container 52, facilitate air circulation and assist the drying component 61 in its function; the telescopic reset component 64 at the bottom of the container 52, with one end fixed to the inside of the sample box 1, can provide cushioning support when the biscuit sample is placed, protect the integrity of the biscuit, and prevent the biscuit from breaking due to collision or vibration.
[0046] The drying component 61 includes, but is not limited to, various materials or devices with moisture absorption and drying functions, such as silica gel desiccant, activated carbon packs, molecular sieves, calcium chloride desiccant, etc.
[0047] In this embodiment, the drying component 61 is preferably made of silica gel desiccant. Silica gel desiccant has a strong moisture absorption capacity, which can quickly absorb moisture in the sample box 1, effectively keeping the environment in which the biscuit sample is located dry and preventing the biscuits from becoming damp, soft, or spoiled.
[0048] An auxiliary component 7 is provided on the outside of the sample box 1. The auxiliary component 7 includes an elastic squeezing member 71 and a sealing box cover 72. The sealing box cover 72 is rotatably connected to the top of the sample box 1. The elastic squeezing member 71 is installed inside the sealing box cover 72. A lifting component 73 for handling is provided on the top of the sealing box cover 72.
[0049] An auxiliary component 7 is provided on the outside of the sample box 1, including an elastic squeezing member 71, a sealing lid 72, and a lifting component 73. The sealing lid 72 is rotatably connected to the top of the sample box 1, and can be easily flipped over to cover the sample box 1 when it is necessary to seal the biscuit sample. The elastic squeezing member 71 installed inside the sealing lid 72 cooperates with the receiving member 52 inside the sample box 1 when the lid is closed. When the biscuit sample is placed in the receiving member 52 and the sealing lid 72 is closed, the elastic squeezing member 71 will squeeze downward as the lid closes. Due to its elasticity, when it comes into contact with the biscuit sample in the receiving member 52, it will elastically deform according to the shape of the biscuit, pressing the biscuit tightly from above, effectively preventing the biscuit from shaking inside the receiving member 52. This avoids the biscuit from breaking or affecting the test results due to shaking. The lifting component 73 provided on the top of the sealing lid 72 provides convenience for moving the sample box 1.
[0050] Among them, the elastic extrusion component 71 includes, but is not limited to, various components that can generate elastic deformation and provide extrusion force, such as rubber extrusion blocks, spring washers, sponges, gas springs, etc.
[0051] In this embodiment, the elastic extruder 71 is preferably a sponge. The sponge is soft and has good elasticity and compressibility, which can adapt to different degrees of compression deformation, thereby protecting the integrity of the sampled biscuit.
[0052] The working principle of the food safety testing sampling device for biscuit production provided by this utility model is as follows: First, when faced with different types of biscuits, the operator can manually operate the displacement component 2 on the right side of the sample box 1. Adjusting the displacement component 2 flexibly changes the angle of the rotating wiping component 3, adapting the device to the specific conditions of different biscuits. Then, after completing the angle adjustment, the rotating wiping component 3 begins to work. The operator activates the switch of the rotating wiping component 3, which, based on the manually adjusted angle, wipes the sampled biscuit from all angles, cleaning the crumbs off the biscuit surface. Finally, during the cleaning process, the cleaning component 4 inside the displacement component 2 operates synchronously, promptly collecting the cleaned crumbs to prevent their spread.
[0053] Compared with related technologies, the food safety testing and sampling device for biscuit production provided by this utility model has the following beneficial effects:
[0054] This invention provides a food safety testing sampling device for biscuit production. The displacement component 2 on the right side of the sample box 1 can flexibly adjust the angle of the rotating wiping component 3 according to different biscuit styles. During actual sampling, it can automatically adapt to differences in biscuit placement and shape, eliminating the need for personnel to bend over and reducing their workload. The rotating wiping component 3 can clean up debris from all directions, and the cleaning component 4 inside the displacement component 2 collects debris in a timely manner and prevents it from spreading, providing a good environment for the sample and ensuring efficient and accurate food safety testing.
[0055] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the content of this utility model specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.
Claims
1. A food safety testing and sampling device for biscuit production, characterized in that, include: The sample box has a displacement component for adjusting the angle installed on its right side. The exterior of the displacement component is provided with a rotating wiping component for cleaning up sample biscuit crumbs, and the interior of the displacement component is provided with a cleaning component for preventing the crumbs from spreading.
2. The food safety testing and sampling device for biscuit production according to claim 1, characterized in that, The displacement assembly includes a support member and a semi-circular locking plate. The support member is installed on the right side of the sample box. A circular sleeve for supporting rotation is fixedly connected to the outside of the support member. A rotating member is movably connected inside the circular sleeve. The rotating member passes through the circular sleeve and extends to its outside. An adjustment member for angle change is fixedly connected to the end of the rotating member. A pressing reset member is provided on one side of the adjustment member. The semi-circular locking plate is installed on the outside of the support member. Several equidistant locking holes are opened on the outside of the semi-circular locking plate. The pressing reset member passes through the locking holes and extends to its outside, and the pressing reset member can slide within the locking holes.
3. The food safety testing and sampling device for biscuit production according to claim 1, characterized in that, The rotating wiping assembly includes a driving device and a wiping component. The driving device is installed on one side of the adjusting component, and a transmission component is fixedly connected to the output end of the driving device. The transmission component passes through the adjusting component and extends to its outside. The wiping component is installed outside the transmission component.
4. The food safety testing and sampling device for biscuit production according to claim 2, characterized in that, The cleaning assembly includes a debris collection component and a connecting rod. A short rod structure is fixedly connected to the other side of the adjusting component. One side of the connecting rod is installed at the end of the short rod structure. A movable component is fixedly connected to the other side of the connecting rod. A rotating hole is opened on the outside of the supporting component. The movable component is movably connected to the rotating hole. The debris collection component is installed on the other side of the connecting rod. A telescopic connecting pipe for connecting a vacuum cleaner is provided on the outside of the debris collection component.
5. The food safety testing and sampling device for biscuit production according to claim 1, characterized in that, The sample box is internally equipped with a placement and adjustment assembly, which includes a receiving component, a synchronizing component, and a partition component. The partition component is installed inside the sample box, and guide structures are respectively provided on the left and right sides of the partition component. A positioning component is provided inside the guide structure, and a transmission screw is movably connected inside the positioning component. A cross groove component is fixedly connected to the top of the transmission screw. An operating hole is opened on the top of the partition component, and the cross groove component passes through the operating hole and extends to its outside. The interior of the synchronizing component is threadedly connected to the outer surface of the transmission screw, and the synchronizing component is fixedly connected to the receiving component.
6. The food safety testing and sampling device for biscuit production according to claim 5, characterized in that, The container is provided with a protective component inside, which includes a drying component and a through hole. The top of the container is provided with a placement groove, and the drying component is installed inside the placement groove. The through holes are equidistantly arranged on the inner wall of the container. The bottom of the container is provided with a telescopic reset component for protecting the integrity of the sample biscuit. The bottom of the telescopic reset component is fixedly connected to the inside of the sample box.
7. The food safety testing and sampling device for biscuit production according to claim 1, characterized in that, The sample box is provided with an auxiliary component on its exterior. The auxiliary component includes an elastic compression member and a sealing lid. The sealing lid is rotatably connected to the top of the sample box. The elastic compression member is installed inside the sealing lid. The top of the sealing lid is provided with a lifting component for handling.