Microorganism detection device and method

By designing a microbial detection device that includes a detection rack, detection disc, crushing cylinder, and detector, the problems of incomplete material crushing and low efficiency of multiple tests are solved, achieving thorough material crushing and multiple tests, thus improving detection efficiency and accuracy.

CN120905009AActive Publication Date: 2025-11-07HARBIN INST OF TECH AT WEIHAI
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Patent Information

Application Number
CN202511176337.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-21
Publication Date
2025-11-07
Estimated Expiration
2045-08-21

AI Technical Summary

Technical Problem

Existing microbial detection devices suffer from problems such as incomplete material crushing, inability to detect multiple materials simultaneously, and inability to adjust the distance between the detector and the material, resulting in low detection efficiency and poor accuracy.

Method used

A microbial detection device was designed, comprising a detection rack, a detection disc, a crushing cylinder, and a detector. The device uses a drive assembly to move a crushing rod and a crushing block to pre-crush and further crush materials. The distance between the detector and the detection chamber is adjusted by the detection disc and the positioning rod, enabling the sequential detection of multiple materials.

Benefits of technology

It achieves complete crushing and multiple tests of materials, improving testing efficiency and accuracy, ensuring that the materials in each testing chamber can be detected, and enhancing the effect of microbial detection.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a microorganism detection device and method. Comprising a detection frame plate, a detection disc is rotatably installed on the upper end face of the detection frame plate, a plurality of detection cavities are formed in the detection disc, to-be-detected materials are placed through the detection cavities, a support plate is fixedly installed on the detection frame plate, and a mashing cylinder is fixedly installed on the support plate; the lower end face of the mashing cylinder fixedly communicates with a discharging pipe, and a valve is arranged on the discharging pipe. A driving assembly is arranged on the support plate, a flow dividing block is fixedly installed in the mashing cylinder, an annular net plate is fixedly installed on the outer side face of the flow dividing block, and a mashing rod is arranged on the driving assembly. According to the microorganism detection device provided by the invention, the driving assembly and the auxiliary assembly are matched for use, so that materials can be automatically pretreated and crushed, and accurate detection is realized, the detection efficiency and effect are improved, and the use effect of the detection device is greatly improved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of microorganism detection, and in particular to a microorganism detection device and method. BACKGROUND

[0002] The food microorganism detection method is an important part of food quality management, which can effectively prevent or reduce the occurrence of food zoonosis, and protect the health of the people.

[0003] At present, when some materials are detected, the materials to be detected need to be crushed, and then a detector is used for detection. However, in the prior art, when the materials are crushed, the crushing mode is mostly a single movement mode, and only reciprocating rotation cannot cover all areas, and there is a crushing dead angle, so that the materials to be detected cannot be completely crushed. At the same time, when the microorganisms are detected, some detection devices can only detect the microorganisms of one material. When the same material is detected for the second or third time, the material in the detection device needs to be taken out, and then the same batch of materials is put into the detection device for detection in turn. The detection method is too complicated, which seriously affects the detection efficiency. In addition, the distance between the detector and the material to be detected in some devices cannot be adjusted, so that the material cannot be optimized and adjusted according to its different properties, and the most accurate detection result cannot be obtained.

[0004] Therefore, it is necessary to provide a microorganism detection device and method to solve the above technical problems. SUMMARY

[0005] The present application provides a microorganism detection device and method, which solves the problems that the material crushing is not complete, only one material can be detected for microorganism detection at a time, multiple materials in the same batch cannot be detected at the same time, and the distance between the detector and the microorganism cannot be adjusted in the process of microorganism detection of the prior art.

[0006] To solve the above technical problems, the present application provides a microorganism detection device, which comprises a detection frame plate, a detection disc is rotatably installed on the upper end face of the detection frame plate, a plurality of detection cavities are formed in the detection disc, and the detection cavities are used for placing materials to be detected, a support plate is fixedly installed on the detection frame plate, a crushing cylinder is fixedly installed on the support plate, a discharge pipe is fixedly communicated with the lower end face of the crushing cylinder, and a valve is arranged on the discharge pipe.

[0007] The support plate is provided with a driving assembly, the inside of the crushing cylinder is fixedly installed with a flow divider, the outer side of the flow divider is fixedly installed with an annular mesh plate, the driving assembly is provided with a crushing rod, and the crushing rod is fixedly installed with crushing blades.

[0008] The support plate is provided with an auxiliary assembly, the auxiliary assembly is provided with a detector, and the detector is located directly above one of the detection cavities.

[0009] Preferably, the driving assembly comprises a driving motor fixedly installed on the detection frame plate, the output end of the driving motor is fixedly installed with a driving shaft, the top end of the driving shaft is fixedly installed with a driving disc, the driving disc is fixedly installed with a T-shaped shaft, the T-shaped shaft is rotatably installed with a driving rod, one end of the driving rod away from the T-shaped shaft is rotatably connected with a three-head connecting frame, and the three-head connecting frame is rotatably installed with symmetrically arranged left and right push rods.

[0010] Preferably, the upper end surface of the support plate is fixedly installed with symmetrically arranged side plates, a horizontal rod is fixedly installed between the two side plates, the horizontal rod is slidably installed with left and right L-shaped rods, the left L-shaped rod is fixedly installed with a first tooth block group, the right L-shaped rod is fixedly installed with a second tooth block group, the top end of the crushing rod is fixedly installed with a driving gear, the outer side of the support plate is fixedly installed with a stabilizing plate, the stabilizing plate is fixedly installed with an L-shaped plate, the L-shaped plate is fixedly installed with a positioning rod, and the upper end surface of the three-head connecting frame is fixedly installed with a stabilizing ring.

[0011] Preferably, one end of the left push rod away from the three-head connecting frame is rotatably connected to the left L-shaped rod, one end of the right push rod away from the three-head connecting frame is rotatably connected to the right L-shaped rod, the left L-shaped rod is located on the front side of the driving gear, the right L-shaped rod is located on the rear side of the driving gear, the first tooth block group and the second tooth block group are sequentially meshed with the driving gear, the top end of the driving shaft penetrates through the stabilizing plate and is rotatably connected with the stabilizing plate, and the stabilizing ring is slidably installed on the positioning rod.

[0012] Preferably, the left L-shaped rod is fixedly installed with a left connecting block, the right L-shaped rod is fixedly installed with a right connecting block, the inside of the crushing cylinder is provided with a crushing block, the crushing block is fixedly connected with left and right pull ropes, the side end surface of the crushing cylinder is fixedly installed with guide pipes, the driving shaft is fixedly installed with a pinion, and the outer side of the detection disc is fixedly installed with a large tooth ring.

[0013] Preferably, the left rope is fixedly connected with the left connecting block and passes through one of the guide pipes away from the end of the crushing block, and the right rope is fixedly connected with the right connecting block and passes through the other guide pipe away from the end of the crushing block, the position of the pinion is above the detection frame plate, and the pinion is engaged with the gear ring.

[0014] Preferably, the auxiliary assembly comprises a plurality of positioning frame rods fixedly installed on the detection disc, and a plurality of lower pressing wheels are rotatably installed inside the positioning frame rods.

[0015] Preferably, a lower pressing plate is slidably installed on the vertical rod, a reset spring is fixedly connected to the lower end surface of the lower pressing plate, an arc-shaped block is fixedly installed on the upper end surface of the lower pressing plate, and a connecting plate is fixedly installed on the outer surface of the lower pressing plate.

[0016] Preferably, the detector is fixedly installed on the connecting plate, one end of the reset spring away from the lower pressing plate is fixedly connected to the detection frame plate, and a plurality of lower pressing wheels are in turn in sliding contact with the arc-shaped block.

[0017] A microorganism detection method based on the microorganism detection device.

[0018] S1, when in use, the material to be detected is placed in the crushing cylinder, then the driving motor drives the driving disc on the driving shaft to rotate, the three-joint frame on the T-shaped shaft moves horizontally through the positioning rod, the left L-shaped rod and the right L-shaped rod on the three-joint frame are pushed by the left push rod and the right push rod, so that the left L-shaped rod and the right L-shaped rod are in a reciprocating state, and the first tooth block group, the second tooth block group and the driving gear are in turn engaged, so that the crushing blades on the crushing rod reciprocate, and the crushing blades are used for pre-crushing the material to be detected.

[0019] S2, the pre-crushed material falls to the bottom of the crushing cylinder through the annular mesh plate, and when the left L-shaped rod and the right L-shaped rod move outward synchronously, the left rope and the right rope are driven by the left connecting block and the right connecting block to drive the crushing block to reciprocate, and the crushing block is used for further crushing the material at the bottom of the crushing cylinder, then the valve is opened, the material in the crushing cylinder falls into the detection cavity on the detection disc through the discharge pipe, the valve is intermittently opened, and the cooperation of the pinion and the gear ring drives the detection disc to rotate, so that the plurality of detection cavities on the detection disc can be in turn filled with the material to be detected, and the materials in the plurality of detection cavities can be in turn detected.

[0020] S3, when the detection disc rotates, the positioning frame rod is synchronously rotated, the lower pressing wheel on the positioning frame rod is synchronously moved, when the lower pressing wheel rotates to the position of the lower pressing plate, through the continuous movement of the lower pressing wheel, the lower pressing plate on the arc-shaped block is synchronously lowered through the cooperation of the lower pressing wheel and the arc-shaped block, the detector on the connecting plate is slowly lowered to the position of the detection cavity, and the distance between the detector and the detection cavity is adjusted, so that the microbial detection effect is improved.

[0021] Compared with the related art, the microbial detection device and method provided by the application has the following advantages

[0022] Advantages:

[0023] The application provides a microbial detection device and method, first, the to-be-detected is put into a crushing cylinder, a driving motor drives a driving disc to rotate, left and right L-shaped rods of a three-head connecting frame are reciprocally moved through a push rod, a crushing blade is driven to pre-crush materials, blades on a crushing rod are reciprocally moved through meshing of a gear block and a driving gear, so that the materials are effectively crushed, the pre-crushed materials fall to the bottom through a mesh plate, the left L-shaped rod and the right L-shaped rod are synchronously moved, a drawstring lifts the crushing block for further crushing, and finally the materials are discharged into detection cavities in a detection disc through a valve, so that the materials in the multiple cavities can be sequentially detected, when the detection disc rotates, a positioning frame rod is synchronously rotated to move a lower pressing wheel, so that a lower pressing plate is lowered, a detector gradually approaches the detection cavity, the distance between the detector and the detection cavity is adjusted, and the microbial detection effect is enhanced. BRIEF DESCRIPTION OF DRAWINGS

[0024] Figure 1 A structure schematic view of a preferred embodiment of the microbial detection device and method provided by the application is shown in the figure;

[0025] Figure 2 A structure schematic view of a preferred embodiment of the microbial detection device and method provided by the application is shown in the figure; Figure 1 An enlarged schematic view of part A shown in the figure;

[0026] Figure 3 A structure schematic view of a preferred embodiment of the microbial detection device and method provided by the application is shown in the figure;

[0027] Figure 4 A structure schematic view of a preferred embodiment of the microbial detection device and method provided by the application is shown in the figure;

[0028] Figure 5 An enlarged schematic view of part B shown in the figure; Figure 4 An enlarged schematic view of part B shown in the figure;

[0029] Figure 6 A structure schematic view of a preferred embodiment of the microbial detection device and method provided by the application is shown in the figure;

[0030] Figure 7 A structure schematic view of a preferred embodiment of the microbial detection device and method provided by the application is shown in the figure;

[0031] Figure 8 Figure 1 is a structural schematic diagram of the left L-shaped rod and the right L-shaped rod in the present application.

[0032] Figure 1 is a structural schematic diagram of the left L-shaped rod and the right L-shaped rod in the present application. DETAILED DESCRIPTION

[0033] The present application will be further described below in conjunction with the drawings and embodiments.

[0034] Please refer to Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 , wherein, Figure 1 Figure 1 is a structural schematic diagram of the left L-shaped rod and the right L-shaped rod in the present application. Figure 2 Figure 1 is a structural schematic diagram of the left L-shaped rod and the right L-shaped rod in the present application. Figure 1 Figure 1 is a structural schematic diagram of the left L-shaped rod and the right L-shaped rod in the present application. Figure 3 Figure 1 is a structural schematic diagram of the left L-shaped rod and the right L-shaped rod in the present application. Figure 4 Figure 1 is a structural schematic diagram of the left L-shaped rod and the right L-shaped rod in the present application. Figure 5 Figure 1 is a structural schematic diagram of the left L-shaped rod and the right L-shaped rod in the present application. Figure 4 Figure 1 is a structural schematic diagram of the left L-shaped rod and the right L-shaped rod in the present application. Figure 6 Figure 1 is a structural schematic diagram of the left L-shaped rod and the right L-shaped rod in the present application. Figure 7 Figure 1 is a structural schematic diagram of the left L-shaped rod and the right L-shaped rod in the present application. Figure 8 Figure 1 is a structural schematic diagram of the left L-shaped rod and the right L-shaped rod in the present application.

[0035] The utility model provides a kind of detection device of microorganism, including detection shelf plate 1, the upper end surface of detection shelf plate 1 is rotatably installed with detection disc 2, multiple detection cavities 3 are opened in detection disc 2, for placing the material to be detected by detection cavity 3, detection shelf plate 1 is fixedly installed with support plate 4, support plate 4 is fixedly installed with mashing cylinder 5, the lower end surface of mashing cylinder 5 is fixedly communicated with discharge pipe 6, valve 7 is arranged on discharge pipe 6, drive assembly is arranged on support plate 4, the inside of mashing cylinder 5 is fixedly installed with shunt block 8, annular mesh plate 9 is fixedly installed on the outside of shunt block 8, drive assembly is provided with mashing rod 10, mashing rod 10 is fixedly installed with mashing blade 11, support plate 4 is provided with auxiliary assembly, auxiliary assembly is provided with detector 12, the position of detector 12 is in the directly above of one of detection cavities 3, wherein discharge pipe 6 has filter and pipeline composition, utilize filter to facilitate the impurity of some oversized in material to be intercepted, avoid plugging pipeline, since the technology is the technology that personnel in the art are familiar with, not specific here.

[0036] The driving assembly comprises a driving motor 13 fixedly installed on the detection frame plate 1, an output end of the driving motor 13 is fixedly installed with a driving shaft 14, a top end of the driving shaft 14 is fixedly installed with a driving disc 15, the driving disc 15 is fixedly installed with a T-shaped shaft 16, the T-shaped shaft 16 is rotatably installed with a driving rod 17, one end of the driving rod 17 away from the T-shaped shaft 16 is rotatably connected with a three-head connecting frame 18, the three-head connecting frame 18 is rotatably installed with symmetrically arranged left and right push rods 19 and 20, the upper end surface of the support plate 4 is fixedly installed with symmetrically arranged side plates 21, the two side plates 21 are fixedly installed with a horizontal rod 22, the horizontal rod 22 is slidably installed with left and right L-shaped rods 23 and 24, the left L-shaped rod 23 is fixedly installed with a first tooth block group 25, the right L-shaped rod 24 is fixedly installed with a second tooth block group 26, the top end of the crushing rod 10 is fixedly installed with a driving gear 27, the outer side surface of the support plate 4 is fixedly installed with a stabilizing plate 28, the stabilizing plate 28 is fixedly installed with an L-shaped plate 29, the L-shaped plate 29 is fixedly installed with a positioning rod 30, the upper end surface of the three-head connecting frame 18 is fixedly installed with a stabilizing ring 31, one end of the left push rod 19 away from the three-head connecting frame 18 is rotatably connected to the left L-shaped rod 23, one end of the right push rod 20 away from the three-head connecting frame 18 is rotatably connected to the right L-shaped rod 24, the position of the left L-shaped rod 23 is in front of the driving gear 27, the position of the right L-shaped rod 24 is behind the driving gear 27, the first tooth block group 25 and the second tooth block group 26 are in sequence engaged with the driving gear 27, the top end of the driving shaft 14 penetrates through and is rotatably connected with the stabilizing plate 28, the stabilizing ring 31 is slidably installed on the positioning rod 30, wherein the crushing cylinder 5 is provided with a feeding port, through which the material to be detected can be conveniently put into the crushing cylinder 5, and the crushing cylinder 5 is fixedly installed with a vertical plate, one end of the positioning rod 30 away from the L-shaped plate 29 is fixedly installed on the vertical plate, the vertical plate and the L-shaped plate 29 are used to ensure the stability of the positioning rod 30, meanwhile, the left push rod 19 and the right push rod 20 are both arranged in an inclined manner, and the first tooth block group 25 and the second tooth block group 26 are arranged in a cross manner, so as to avoid affecting the normal rotation of the driving gear 27.

[0037] In the embodiment, the material to be detected is put into the crushing cylinder 5, then the driving disc 15 on the driving shaft 14 is driven to rotate by the driving motor 13, the three-head connecting frame 18 on the T-shaped shaft 16 is moved in the horizontal direction through the positioning rod 30, the left L-shaped rod 23 and the right L-shaped rod 24 on the three-head connecting frame 18 are pushed by the left push rod 19 and the right push rod 20, so that the left L-shaped rod 23 and the right L-shaped rod 24 are in a reciprocating moving state, the first tooth block group 25 and the second tooth block group 26 are in sequence engaged with the driving gear 27, so that the crushing blades 11 on the crushing rod 10 are reciprocatingly rotated, and the material to be detected is pre-crushed by the crushing blades 11.

[0038] The left L-shaped rod 23 is fixedly installed with a left connecting block 32, the right L-shaped rod 24 is fixedly installed with a right connecting block 33, the inside of the crushing cylinder 5 is provided with a crushing block 34, the crushing block 34 is fixedly connected with a left pull rope 35 and a right pull rope 36, the side end face of the crushing cylinder 5 is fixedly installed with a guide pipe 37, the driving shaft 14 is fixedly installed with a pinion 38, the outside of the detection disc 2 is fixedly installed with a gear ring 39, the left pull rope 35 is fixedly connected with the left connecting block 32 at the end away from the crushing block 34 and passes through one of the guide pipes 37, the right pull rope 36 is fixedly connected with the right connecting block 33 at the end away from the crushing block 34 and passes through the other guide pipe 37, the position of the pinion 38 is above the detection frame plate 1, the pinion 38 is engaged with the gear ring 39, wherein when the pinion 38 rotates a number of turns, the gear ring 39 drives the detection disc 2 to rotate a quarter or a sixth of a turn, so as to avoid the high-speed rotation of the detection disc 2 affecting the detection of microorganisms in the detection cavity 3 by the detector 12, in order to ensure that the crushing block 34 moves in the vertical direction, a vertical sliding rod is fixedly installed at the bottom of the shunt block 8, and the crushing block 34 is slidingly installed on the vertical sliding rod, since the structure and principle of the technology are well known to those skilled in the art, they are not shown in the figure.

[0039] In the embodiment, the pre-crushed material falls to the bottom of the crushing cylinder 5 through the annular mesh plate 9, and when the left L-shaped rod 23 and the right L-shaped rod 24 move outward synchronously, the left connecting block 32 and the right connecting block 33 drive the left pull rope 35 and the right pull rope 36 to drive the crushing block 34 to reciprocatingly rise, the crushing block 34 further crushes the material at the bottom of the crushing cylinder 5, then the valve 7 is opened, the material in the crushing cylinder 5 falls into the detection cavity 3 on the detection disc 2 through the discharge pipe 6, the valve 7 is intermittently opened, the pinion 38 and the gear ring 39 are matched, so that the detection disc 2 rotates, so that the multiple detection cavities 3 on the detection disc 2 can be sequentially filled with the material to be detected, and the material in the multiple detection cavities 3 can be sequentially detected.

[0040] The auxiliary assembly comprises a plurality of positioning frame rods 40 fixedly installed on the detection disc 2, a lower pressing wheel 41 rotatably installed inside each of the plurality of positioning frame rods 40, a vertical rod 42 fixedly installed on the upper end face of the detection frame plate 1 and outside the detection disc 2, a baffle 43 fixedly installed at the top end of the vertical rod 42, a lower pressing plate 44 slidably installed on the vertical rod 42, a return spring 45 fixedly connected to the lower end face of the lower pressing plate 44, an arc-shaped block 46 fixedly installed on the upper end face of the lower pressing plate 44, a connecting plate 47 fixedly installed on the outer side face of the lower pressing plate 44, a detector 12 fixedly installed on the connecting plate 47, and an end of the return spring 45 away from the lower pressing plate 44 fixedly connected to the detection frame plate 1. The plurality of lower pressing wheels 41 are in sliding contact with the arc-shaped blocks 46 in sequence. The number of the positioning frame rods 40 is the same as the number of the detection cavities 3. When the lower pressing wheels 41 are not in contact with the arc-shaped blocks 46, the lower pressing plate 44 is restored to the original position through the function of the return spring 45 and the limiting of the baffle 43.

[0041] In the embodiment, when the detection disc 2 rotates, the positioning frame rods 40 rotate synchronously, the lower pressing wheels 41 on the positioning frame rods 40 move synchronously, when the lower pressing wheels 41 rotate to the position of the lower pressing plate 44, through the continuous movement of the lower pressing wheels 41 and the cooperation of the lower pressing wheels 41 and the arc-shaped blocks 46, the lower pressing plate 44 on the arc-shaped block 46 descends synchronously, the detector 12 on the connecting plate 47 slowly descends to the position of the detection cavity 3, and the distance between the detector 12 and the detection cavity 3 is adjusted, so that the effect of microorganism detection is improved.

[0042] A microorganism detection method based on the microorganism detection device described above, comprising the following steps:

[0043] S1, in use, the material to be detected is placed in the crushing cylinder 5, then the driving disc 15 on the driving shaft 14 is driven to rotate by the driving motor 13, the three-joint frame 18 on the T-shaped shaft 16 is moved horizontally by the positioning rod 30, the left L-shaped rod 23 and the right L-shaped rod 24 on the three-joint frame 18 are pushed by the left push rod 19 and the right push rod 20, so that the left L-shaped rod 23 and the right L-shaped rod 24 are in a reciprocating state, the crushing blades 11 on the crushing rod 10 are reciprocatingly rotated by the sequential meshing of the first tooth block set 25, the second tooth block set 26 and the driving gear 27, and the material to be detected is pre-crushed by the crushing blades 11.

[0044] S2, the pre-crushed material will fall through the annular mesh plate 9 to the bottom of the ramming cylinder 5, while the left L-shaped rod 23 and the right L-shaped rod 24 are synchronized to move outward, the left connecting block 32 and the right connecting block 33 will drive the left pull rope 35 and the right pull rope 36 to drive the ramming block 34 to reciprocatingly rise, the material at the bottom of the ramming cylinder 5 is further rammed by the ramming block 34, then the valve 7 is opened, the material in the ramming cylinder 5 will fall into the detection cavity 3 on the detection disc 2 through the discharge pipe 6, through the intermittent opening of the valve 7, and then the cooperation of the pinion 38 and the gear ring 39, so that the detection disc 2 rotates, which facilitates the detection disc 2 to be sequentially put into the material to be detected in the plurality of detection cavities 3, and ensures that the material in the plurality of detection cavities 3 can be sequentially detected;

[0045] S3, when the detection disc 2 rotates, the positioning frame rod 40 will be synchronously rotated, the lower pressing wheel 41 on the positioning frame rod 40 will move synchronously, when the lower pressing wheel 41 rotates to the position of the lower pressing plate 44, through the continuous movement of the lower pressing wheel 41, the lower pressing plate 44 on the arc block 46 is synchronously lowered by the cooperation of the lower pressing wheel 41 and the arc block 46, the detector 12 on the connecting plate 47 will slowly descend to the position of the detection cavity 3, by adjusting the distance between the detector 12 and the detection cavity 3, the effect of microorganism detection is facilitated to be improved.

[0046] The working principle of the microorganism detection device and method provided by the application is as follows: in use, S1, the material to be detected is placed in the crushing cylinder 5, then the driving disc 15 on the driving shaft 14 is driven to rotate by the driving motor 13, the three-head connecting frame 18 on the T-shaped shaft 16 is moved horizontally through the positioning rod 30, the left L-shaped rod 23 and the right L-shaped rod 24 on the three-head connecting frame 18 are pushed through the left push rod 19 and the right push rod 20, so that the left L-shaped rod 23 and the right L-shaped rod 24 are in a reciprocating state, the first tooth block group 25, the second tooth block group 26 and the driving gear 27 are sequentially meshed, so that the crushing blades 11 on the crushing rod 10 reciprocate, the material to be detected is pre-crushed by the crushing blades 11, the pre-crushed material falls to the bottom of the crushing cylinder 5 through the annular mesh plate 9, and when the left L-shaped rod 23 and the right L-shaped rod 24 move outward synchronously, the left connecting block 32 and the right connecting block 33 drive the left pull rope 35 and the right pull rope 36 to drive the crushing block 34 to reciprocate, the material at the bottom of the crushing cylinder 5 is further crushed by the crushing block 34, then the valve 7 is opened, the material in the crushing cylinder 5 falls into the detection cavity 3 on the detection disc 2 through the discharge pipe 6, the valve 7 is intermittently opened, the small gear 38 and the large gear ring 39 are matched, so that the detection disc 2 rotates, so that the plurality of detection cavities 3 on the detection disc 2 can be sequentially placed in the material to be detected, and the material in the plurality of detection cavities 3 can be sequentially detected, when the detection disc 2 rotates, the positioning frame rod 40 rotates synchronously, the pressing wheel 41 on the positioning frame rod 40 moves synchronously, when the pressing wheel 41 rotates to the position of the pressing plate 44, the pressing plate 44 on the arc-shaped block 46 is lowered synchronously through the cooperation of the pressing wheel 41 and the arc-shaped block 46, the detector 12 on the connecting plate 47 slowly descends to the position of the detection cavity 3, the distance between the detector 12 and the detection cavity 3 is adjusted, so as to improve the effect of microorganism detection, and when the pressing wheel 41 is not in contact with the arc-shaped block 46, the pressing plate 44 returns to the original position through the function of the return spring 45 and the limiting of the baffle 43.

[0047] Compared with the related art, the microorganism detection device and method provided by the application has the following beneficial effects:

[0048] 1. In this invention, the material to be tested is placed into the crushing cylinder, and then the drive motor drives the drive disc on the drive shaft to rotate. The three-head connecting frame on the T-shaped shaft will move horizontally through the positioning rod. The left L-shaped rod and the right L-shaped rod on the three-head connecting frame will be pushed by the left push rod and the right push rod, so that the left L-shaped rod and the right L-shaped rod are in a reciprocating state. Then, by the sequential meshing of the first tooth block group, the second tooth block group and the drive gear, the crushing blade on the crushing rod will rotate reciprocally, and the crushing blade will be used to pre-crush the material to be tested.

[0049] 2. In this invention, the pre-crushed material falls to the bottom of the crushing cylinder through the annular mesh plate. Simultaneously, when the left and right L-shaped rods move outward in sync, they drive the left and right pull ropes, respectively, through the left and right connecting blocks, causing the crushing blocks to rise back and forth. The crushing blocks further crush the material at the bottom of the crushing cylinder. Then, the valve is opened, and the material in the crushing cylinder falls into the detection chamber on the detection plate through the discharge pipe. By intermittently opening the valve and using the cooperation of the small gear and the large gear ring, the detection plate is rotated, allowing the material to be tested to be placed into the multiple detection chambers on the detection plate in sequence, ensuring that the material in the multiple detection chambers can be tested sequentially.

[0050] 3. In this invention, when the detection disc rotates, it will drive the positioning frame rod to rotate synchronously. The pressure roller on the positioning frame rod will move synchronously. When the pressure roller rotates to the position of the pressure plate, through the continuous movement of the pressure roller and the cooperation of the pressure roller and the arc block, the pressure plate on the arc block will descend synchronously. The detector on the connecting plate will slowly descend to the position of the detection chamber. By adjusting the distance between the detector and the detection chamber, the effect of microbial detection can be improved.

[0051] The above description is merely an embodiment of the present invention and does not limit the patent scope of the present invention. Any equivalent structural or procedural transformations made based on the content of the present invention specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of the present invention.

Claims

1. A device for detecting microorganisms, characterized in that, Including detection frame board (1), the upper end surface of detection frame board (1) is rotatably installed with detection disc (2), a plurality of detection cavities (3) are opened on detection disc (2), and the material to be detected is placed through the detection cavity (3), the support plate (4) is fixedly installed on the detection frame board (1), the rammer cylinder (5) is fixedly installed on the support plate (4), the lower end surface of the rammer cylinder (5) is fixedly communicated with the discharge pipe (6), and the valve (7) is arranged on the discharge pipe (6); The support plate (4) is provided with a driving assembly, the inside of the rammer cylinder (5) is fixedly installed with a flow divider (8), the outer side of the flow divider (8) is fixedly installed with an annular mesh plate (9), the driving assembly is provided with a ramming rod (10), and the ramming rod (10) is fixedly installed with a ramming blade (11); The support plate (4) is provided with an auxiliary assembly, and the auxiliary assembly is provided with a detector (12), and the position of the detector (12) is directly above one of the detection cavities (3).

2. The device for detecting microorganisms according to claim 1, wherein The driving assembly includes a driving motor (13) fixedly installed on the detection frame board (1), a driving shaft (14) fixedly installed at the output end of the driving motor (13), a driving disc (15) fixedly installed at the top end of the driving shaft (14), a T-shaped shaft (16) fixedly installed on the driving disc (15), a driving rod (17) rotatably installed on the T-shaped shaft (16), and a three-head connecting frame (18) rotatably connected to the end of the driving rod (17) away from the T-shaped shaft (16), and the three-head connecting frame (18) is rotatably installed with symmetrically arranged left and right push rods (19) and (20).

3. The device for detecting microorganisms according to claim 2, wherein The upper end surface of the support plate (4) is fixedly installed with symmetrically arranged side plates (21), a horizontal rod (22) is fixedly installed between the two side plates (21), a left L-shaped rod (23) and a right L-shaped rod (24) are slidably installed on the horizontal rod (22), a first tooth block group (25) is fixedly installed on the left L-shaped rod (23), a second tooth block group (26) is fixedly installed on the right L-shaped rod (24), a driving gear (27) is fixedly installed at the top end of the ramming rod (10), a stable plate (28) is fixedly installed on the outer side of the support plate (4), an L-shaped plate (29) is fixedly installed on the stable plate (28), a positioning rod (30) is fixedly installed on the L-shaped plate (29), and a stable ring (31) is fixedly installed on the upper end surface of the three-head connecting frame (18).

4. The device for detecting microorganisms according to claim 3, wherein The left push rod (19) is rotatably connected to the left L-shaped rod (23) at one end away from the three-joint frame (18), the right push rod (20) is rotatably connected to the right L-shaped rod (24) at one end away from the three-joint frame (18), the left L-shaped rod (23) is located at the front side of the drive gear (27), the right L-shaped rod (24) is located at the rear side of the drive gear (27), the first tooth block group (25) and the second tooth block group (26) are sequentially engaged with the drive gear (27), the top end of the drive shaft (14) penetrates through the stable plate (28) and is rotatably connected with the stable plate (28), and the stable ring (31) is slidably installed on the positioning rod (30).

5. The device for detecting microorganisms according to claim 4, wherein The left L-shaped rod (23) is fixedly installed with a left connecting block (32), the right L-shaped rod (24) is fixedly installed with a right connecting block (33), the inside of the crushing cylinder (5) is provided with a crushing block (34), the crushing block (34) is fixedly connected with a left pull rope (35) and a right pull rope (36), the side end face of the crushing cylinder (5) is fixedly installed with a guide pipe (37), the drive shaft (14) is fixedly installed with a pinion (38), and the outer side face of the detection disc (2) is fixedly installed with a gear ring (39).

6. The device for detecting microorganisms according to claim 5, wherein The left pull rope (35) penetrates through one of the guide pipes (37) at one end away from the crushing block (34) and is fixedly connected with the left connecting block (32), the right pull rope (36) penetrates through the other guide pipe (37) at one end away from the crushing block (34) and is fixedly connected with the right connecting block (33), the pinion (38) is located above the detection frame plate (1), and the pinion (38) is engaged with the gear ring (39).

7. The device for detecting microorganisms according to claim 1, wherein The auxiliary assembly comprises a plurality of positioning frame rods (40) fixedly installed on the detection disc (2), the inside of each of the positioning frame rods (40) is rotatably installed with a pressing wheel (41), the upper end face of the detection frame plate (1) and located at the outer side of the detection disc (2) is fixedly installed with symmetrically arranged vertical rods (42), and the top end of each of the vertical rods (42) is fixedly installed with a baffle (43).

8. The device for detecting microorganisms according to claim 7, wherein The vertical rod (42) is slidably installed with a pressing plate (44), the lower end face of the pressing plate (44) is fixedly connected with a return spring (45), the upper end face of the pressing plate (44) is fixedly installed with an arc-shaped block (46), and the outer side face of the pressing plate (44) is fixedly installed with a connecting plate (47).

9. The device for detecting microorganisms according to claim 8, wherein The detector (12) is fixedly installed on the connecting plate (47), one end of the return spring (45) away from the pressing plate (44) is fixedly connected to the detection frame plate (1), and the plurality of pressing wheels (41) are sequentially in sliding contact with the arc-shaped block (46).

10. A method for detecting a microorganism based on the microorganism detection device according to any one of claims 1 to 9, characterized by, The method comprises the following steps: The method comprises the following steps: S1, in use, the material to be detected is put into the crushing cylinder (5), then the driving disc (15) on the driving shaft (14) is rotated by the driving motor (13), the three-head connecting frame (18) on the T-shaped shaft (16) moves horizontally through the positioning rod (30), the left L-shaped rod (23) and the right L-shaped rod (24) on the three-head connecting frame (18) are pushed by the left push rod (19) and the right push rod (20), so that the left L-shaped rod (23) and the right L-shaped rod (24) are in a reciprocating state, and the crushing blade (11) on the crushing rod (10) is rotated reciprocatingly by the meshing of the first tooth block group (25), the second tooth block group (26) and the driving gear (27), so that the crushing blade (11) pre-crushes the material to be detected; S2, the pre-crushed material falls to the bottom of the crushing cylinder (5) through the annular mesh plate (9), and when the left L-shaped rod (23) and the right L-shaped rod (24) move outward synchronously, the left connecting block (32) and the right connecting block (33) drive the left pull rope (35) and the right pull rope (36) to drive the crushing block (34) to reciprocatingly rise, and the crushing block (34) further crushes the material at the bottom of the crushing cylinder (5), then the valve (7) is opened, the material in the crushing cylinder (5) falls into the detection cavity (3) on the detection disc (2) through the discharge pipe (6), the detection disc (2) is rotated by the intermittent opening of the valve (7) and the cooperation of the pinion (38) and the large gear ring (39), so that the multiple detection cavities (3) on the detection disc (2) can be sequentially put into the material to be detected, and the materials in the multiple detection cavities (3) can be sequentially detected; S3, when the detection disc (2) rotates, the positioning frame rod (40) rotates synchronously, the pressing wheel (41) on the positioning frame rod (40) moves synchronously, when the pressing wheel (41) rotates to the position of the pressing plate (44), the pressing plate (44) on the arc-shaped block (46) descends synchronously by the cooperation of the pressing wheel (41) and the arc-shaped block (46) through the continuous movement of the pressing wheel (41), the detector (12) on the connecting plate (47) slowly descends to the position of the detection cavity (3), and the distance between the detector (12) and the detection cavity (3) is adjusted, so as to improve the effect of microorganism detection.

Citation Information

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