Device for detecting quality of natural enemy insect trichogramma product

By designing a quality detection device for natural enemy insect red-eyed bees, and automatically detecting the quality of red-eyed bees by image acquisition and software analysis, the problems of cumbersome quality detection and large errors in the existing technology are solved, and efficient and accurate quality control is achieved.

CN120345563APending Publication Date: 2025-07-22GUI ZHOU ZHUO HAO AGRI SCI CO LTD +1
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202510266374.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-07
Publication Date
2025-07-22

AI Technical Summary

Technical Problem

In the prior art, the quality inspection process and the quality control are complicated during the factory breeding process of red-eye bees. The errors and time-consuming are large and cannot meet the needs of efficient production.

Method used

Design a product quality detection device for natural enemy insect red-eyed bees, including a petri dish box, an image acquisition mechanism, a temperature sensor, an electronic control box, etc., and automatically collects image information of natural enemy products through image acquisition surveillance cameras, analyzes image information using software, replaces manual detection, and realizes automatic analysis and calculation of the pass rate.

Benefits of technology

The quality inspection process is simplified, the inspection efficiency is improved, the error is reduced, and the pass rate is realized automatically analyzed and calculated, which is adapted to the efficient production needs of modern agriculture.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120345563A_ABST
    Figure CN120345563A_ABST
Patent Text Reader

Abstract

The invention discloses a natural enemy insect trichogramma product quality detection device, and relates to the technical field of insect detection equipment, the natural enemy insect trichogramma product quality detection device comprises a culture dish box body, and further comprises a mounting bottom plate mounted in the culture dish box body. The culture dish tray is used for normal culture operation, the service life of the equipment is influenced, data are displayed in real time through two display screens, meanwhile, imaging processing is performed by matching with an internal image acquisition mechanism, and equipment control processing is performed through a control switch; the system is provided with the electric control box and the stretching portable bandage, image acquisition data self-filtering and repairing processing are carried out, the definition during imaging is ensured, natural enemy product development change image information is automatically acquired through the image acquisition equipment, the image information and the quality grade of the natural enemy product are automatically analyzed through software, traditional manual detection is replaced, and the detection efficiency is improved. The purposes of simplifying the quality detection process and automatically analyzing and calculating the qualified rate are achieved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of insect detection equipment, and specifically to a device for detecting the product quality of the natural enemy insect Trichogramma Background Technique

[0002] Natural enemy insects play an important role in the ecosystem. By controlling the number of pests, they help maintain ecological balance and biodiversity. Protecting and utilizing natural enemy insects is one of the important measures for sustainable agriculture and ecological protection. The artificial breeding and utilization of natural enemy insects are an important part of modern agriculture and are of great significance for promoting the green development of agriculture and improving the quality of agricultural products. Among them, the development and utilization of Trichogramma is one of the most mature technologies currently promoted and applied, with an annual promotion area exceeding ten million mu and increasing year by year.

[0003] Chinese Patent Publication No. CN 112704051 B discloses an insect trapping and detection device and method. The device includes: a sealed cavity, a signal processing module, and a data server; the side wall of the sealed cavity is composed of a pressure film sheet, and sensing units are distributed in a dot matrix on the pressure film sheet. Each sensing unit is used to separately detect the pressure generated when an insect hits the side wall, and generate a corresponding voltage signal; the signal processing module is used to receive the voltage signal and convert the voltage signal into a pressure signal and send it to the data server; the data server is used to obtain the trapping data of the target insect according to the pressure signal. The insect trapping and detection device and method provided by the present invention use a pressure film sheet to detect the pressure generated when a flying insect hits the baffle of the trap, realize the counting and simple identification of the target insect, can reduce the interference caused by external environmental factors and non-target insects, and can work continuously and stably under various weather conditions.

[0004] However, there are still the following problems in the above solution: During the industrialized breeding and production process of Trichogramma, there are many problems such as cumbersome quality inspection processes and difficult quality control. The quality inspection link basically relies on manual operation, with large errors and long time consumption, which is very unfavorable for the efficient production of natural enemy insect products and cannot meet the requirements of normal use. Therefore, the present invention needs to design a device for detecting the product quality of the natural enemy insect Trichogramma to solve the above problems. Summary of the Invention

[0005] The purpose of the present invention is to provide a device for detecting the product quality of the natural enemy insect Trichogramma to solve the problems raised in the above background technique.

[0006] To achieve the above purpose, the present invention provides the following technical solution: A device for detecting the product quality of the natural enemy insect Trichogramma, including a culture dish box body, and further including:

[0007] An installation base plate is installed inside the petri dish box body, and a culture mechanism is installed above the installation base plate;

[0008] The culture mechanism includes a petri dish tray. The petri dish tray is slidably connected above the installation base plate and is used for normal culture operations;

[0009] A petri dish sealing top cover is installed on the top of the petri dish tray. Equally spaced installation partitions are installed inside the petri dish tray. A placement cavity is formed between every two adjacent installation partitions. The installation partitions are used to separate each culture cavity, which is convenient for culturing multiple samples simultaneously during use and also convenient for manual handling and culturing;

[0010] An installation top plate is installed on the top of the petri dish box body. The installation top plate is located above the installation base plate, and an image acquisition mechanism is installed on the bottom of the installation top plate;

[0011] The image acquisition mechanism includes a connecting plate. The connecting plate is installed on the bottom of the installation top plate. A limiting sleeve is installed on the bottom of the connecting plate. An image acquisition monitoring camera is installed inside the limiting sleeve. The image acquisition monitoring camera can be a monitoring camera or an infrared sensor, which can be replaced according to actual acquisition requirements;

[0012] Equally spaced heat dissipation slots are installed on one side of the petri dish box body, and the heat dissipation slots are used to assist in heat dissipation inside the petri dish box body.

[0013] As a preferred embodiment of the present invention, a light source divergence plate is provided at the bottom of the petri dish tray. Two second lighting lamps are installed inside the light source divergence plate. Light-transmitting plates are installed above the second lighting lamps inside the light source divergence plate. The light source divergence plate is made of frosted glass. Equally spaced installation slots are provided on the outer side of the limiting sleeve. First lighting lamps are installed inside the installation slots. Second fixing blocks are fixedly connected to both sides of the limiting sleeve. Installation insertion rods extending into the installation top plate are installed inside the two second fixing blocks. The second fixing blocks and the connecting plate are positioned and installed through the installation insertion rods, which facilitates the positioning and installation of the image acquisition mechanism and the installation top plate, improving the installation stability during equipment use. Two storage tanks are installed on the bottom of the installation top plate. Both storage tanks are located on one side of the connecting plate. Air outlet pipes are fixedly connected to the bottoms of the two storage tanks. Valves are fixedly connected to the outer sides of the two air outlet pipes. A fan is provided inside the storage tank to assist in heat dissipation. The setting of the valves prevents dust from entering the storage tank reversely and affecting the service life of the equipment.

[0014] As a preferred embodiment of the present invention, a temperature sensor is installed inside the culture dish box body and above the installation bottom plate. The temperature sensor is located on one side of the culture dish tray, and the temperature sensor is used for real-time monitoring and processing of the temperature change inside the culture dish box body.

[0015] As a preferred embodiment of the present invention, a limiting guide rail is provided inside the installation bottom plate. A limiting slider is slidably connected inside the limiting guide rail. The top of the limiting slider is fixedly connected with a first fixing block, and the top of the first fixing block is fixedly connected with the bottom of the culture dish tray. When the culture dish tray is manually pulled out from the top of the installation bottom plate, the sliding track of the culture dish tray is limited by the limiting guide rail and the limiting slider, so as to avoid the situation of falling off caused by directly pulling out the whole culture dish tray, and improve the stability of the equipment during use.

[0016] As a preferred embodiment of the present invention, two positioning buckles are installed on the top of the installation top plate. The two positioning buckles are symmetrically distributed, and a stretchable portable strap is installed between the two positioning buckles. The stretchable portable strap is a stretchable structure.

[0017] As a preferred embodiment of the present invention, two second positioning bolts extending to the inner wall of the culture dish box body are threadedly connected to the top of the installation top plate. The two second positioning bolts are symmetrically distributed, and a first positioning bolt extending to the inside of the installation top plate is threadedly connected to the inside of each of the two positioning buckles. The installation top plate and the culture dish box body can be conveniently and firmly installed through the two second positioning bolts, which is convenient for disassembly and maintenance operations. The positioning buckles and the installation top plate are firmly installed through the two first positioning bolts, so as to conveniently move the whole equipment in cooperation with the stretchable portable strap, and improve the portability effect of the whole equipment during use.

[0018] As a preferred embodiment of the present invention, support feet are fixedly connected to the four corners of the bottom of the culture dish box body. The material of the support feet is PE moisture-proof film. By using the support feet made of PE moisture-proof film as a moisture-proof layer, the moisture in the placement position of the culture dish box body is prevented from penetrating into the inside of the culture dish box body, realizing the protection of the equipment.

[0019] As a preferred embodiment of the present invention, an electric control box is fixedly connected to one side of the culture dish box body. A control panel is installed on the outer side of the electric control box, and equidistantly distributed control switches are installed on the outer side of the control panel. Two display screens are installed on the outer side of the electric control box, and both of the two display screens are located above the control panel. The electric control box, the display screens, the control switches, the temperature sensors, the image acquisition and monitoring cameras, the valves and the first lighting lamps are all electrically connected to the control panel. Data is displayed in real time through the two display screens, and at the same time, imaging processing is performed in cooperation with the internal image acquisition mechanism. Device control processing is performed through the control switches. The control panel is used to control the operation of the electric control box, the display screens, the control switches, the temperature sensors, the image acquisition and monitoring cameras, the valves and the first lighting lamps, realizing the unified management of electrical equipment.

[0020] As a preferred embodiment of the present invention, a wireless signal transceiver is fixedly connected to the top of the installation top plate. The wireless signal transceiver is located on one side of the stretching and portable binding strap. The wireless signal transceiver is electrically connected to the control panel. A main control board is installed inside the wireless signal transceiver. An image acquisition module, a control center and a remote analysis module are provided inside the main control board. The image acquisition module, the control center and the remote analysis module are all communicatively connected to the main control board;

[0021] The image acquisition module is used to receive the real-time image acquisition data sent by the image acquisition and monitoring camera, and perform self-filtering and repair processing on the image acquisition data to ensure the clarity during imaging;

[0022] The control center is used to uniformly control multiple electrical equipment such as the electric control box, the display screens, the control switches, the temperature sensors, the image acquisition and monitoring cameras, the valves and the first lighting lamps, facilitating the individual management of each electrical equipment in cooperation with the on-site and remote operations;

[0023] The remote analysis module is used to perform various aspects of analysis and processing on the received imaging image data, providing data support for remote workers.

[0024] Compared with the prior art, the beneficial effects of the present invention are:

[0025] 1. The present invention is provided with a culture dish box body, a mounting base plate and a culture dish tray. The culture dish tray is used for normal culture operations. The mounting partition is used to separate each culture cavity, which is convenient for culturing multiple at the same time during use and also convenient for manual picking and culturing. When the culture dish tray is manually pulled out from the top of the mounting base plate, the sliding track of the culture dish tray is limited by the limit guide rail and the limit slider, thus avoiding the situation of the whole culture dish tray being directly pulled out and falling off, and improving the stability of the equipment during use. The second fixing block and the connecting plate are positioned and installed through the mounting insertion rod, so as to facilitate the positioning and installation of the image acquisition mechanism and the mounting top plate, and improve the installation stability of the equipment during use. The image acquisition monitoring camera can be a monitoring camera or an infrared sensor, and can be replaced according to actual acquisition requirements. The temperature sensor is used to monitor and process the internal temperature change of the culture dish box body in real time. A fan is arranged inside the storage tank, which can be used for auxiliary heat dissipation. The valve is provided to prevent dust from entering the storage tank reversely and affecting the service life of the equipment. Data is displayed in real time through two display screens, and at the same time, imaging processing is carried out in cooperation with the internal image acquisition mechanism. The equipment is controlled through the control switch;

[0026] 2. The present invention is provided with an electric control box and a stretchable portable strap. The stretchable portable strap is a stretchable structure. The mounting top plate and the culture dish box body are conveniently and firmly installed through two second positioning bolts, which is convenient for disassembly and maintenance operations. The positioning buckle and the mounting top plate are firmly installed through two first positioning bolts, so as to facilitate the convenient movement of the whole equipment in cooperation with the stretchable portable strap, and improve the portability effect of the whole equipment during use. The support foot seat made of PE moisture-proof film is used as a moisture-proof layer to prevent the moisture at the placement position of the culture dish box body from penetrating into the culture dish box body, realizing the protection of the equipment. The image acquisition module is used to receive the real-time image acquisition data sent by the image acquisition monitoring camera, and perform self-filtering and repair processing on the image acquisition data to ensure the clarity during imaging. The image information of the development change of the natural enemy products is automatically collected by the image acquisition device, and the software automatically analyzes the image information to analyze the quality grade of the natural enemy products, replacing the traditional manual detection, achieving the purpose of simplifying the quality detection process and automatically analyzing and calculating the qualification rate. At the same time, by arranging light sources at both the top and bottom of the culture dish tray 4, it is convenient to switch the operation mode during operation. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] Figure 1 is the front view of the overall structure of the present invention;

[0028] Figure 2 is the rear view of the overall structure of the present invention;

[0029] Figure 3 is the first perspective structural cross-sectional view inside the culture dish box body of the present invention;

[0030] Figure 4 It is a second - perspective structural cross - sectional view of the interior of the petri dish box of the present invention;

[0031] Figure 5 It is a third - perspective structural cross - sectional view of the interior of the petri dish box of the present invention;

[0032] Figure 6 It is an enlarged schematic view of the structure of the petri dish tray of the present invention;

[0033] Figure 7 It is an exploded view of the internal structure of the petri dish tray of the present invention;

[0034] Figure 8 It is an enlarged schematic view of the image acquisition mechanism of the present invention;

[0035] Figure 9 It is an enlarged schematic view of the light source divergence plate of the present invention.

[0036] In the figure:

[0037] 1. Petri dish box; 11. Tensile portable strap; 12. Positioning buckle; 13. First positioning bolt; 14. Wireless signal transceiver; 15. Heat dissipation slot; 16. Installation top plate; 17. Second positioning bolt; 18. Support foot seat;

[0038] 2. Electric control box; 21. Display screen; 22. Control panel; 23. Control switch;

[0039] 3. Installation bottom plate; 31. Limit guide rail; 32. Limit slider; 33. Temperature sensor;

[0040] 4. Petri dish tray; 41. Petri dish sealing top cover; 42. First fixing block; 43. Installation partition; 44. Placing cavity; 45. Light source divergence plate; 46. Translucent plate;

[0041] 5. Image acquisition mechanism; 51. Connecting plate; 52. Limit sleeve; 53. Second fixing block; 54. Image acquisition and monitoring camera; 55. Storage tank; 56. Air outlet pipe; 57. Valve; 58. Installation plug rod; 59. First lighting lamp;

[0042] 6. Second lighting lamp. Detailed implementation manners

[0043] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present invention.

[0044] Please refer toFigures 1 - 9 , the present invention provides a technical solution: a device for detecting the product quality of the natural enemy insect Trichogramma, including a culture dish box body 1, and further including: an installation bottom plate 3 is installed inside the culture dish box body 1, and a culture mechanism is installed above the installation bottom plate 3; the culture mechanism includes a culture dish tray 4, and the culture dish tray 4 is slidably connected above the installation bottom plate 3, and the culture dish tray 4 is used for normal culture operations;

[0045] In this solution, a culture dish sealing top cover 41 is installed on the top of the culture dish tray 4, and equally spaced installation partitions 43 are installed inside the culture dish tray 4. A placement cavity 44 is formed between every two adjacent installation partitions 43. The installation partitions 43 are used to separate each culture cavity, which is convenient for culturing multiple at the same time during use and also convenient for manual taking and culturing;

[0046] In this solution, an installation top plate 16 is installed on the top of the culture dish box body 1. The installation top plate 16 is located above the installation bottom plate 3, and an image acquisition mechanism 5 is installed at the bottom of the installation top plate 16; the image acquisition mechanism 5 includes a connecting plate 51, the connecting plate 51 is installed at the bottom of the installation top plate 16, a limit sleeve 52 is installed at the bottom of the connecting plate 51, and an image acquisition monitoring camera 54 is installed inside the limit sleeve 52. The image acquisition monitoring camera 54 can be a monitoring camera or an infrared sensor, and can be replaced according to actual acquisition needs;

[0047] In this solution, equally spaced heat dissipation slots 15 are installed on one side of the culture dish box body 1, and the heat dissipation slots 15 are used to assist in heat dissipation inside the culture dish box body 1.

[0048] Please refer to Figures 1 - 5 , in this solution, a light source divergence plate 45 is provided at the bottom of the culture dish tray 4. Two second lighting lamps 6 are installed inside the light source divergence plate 45. Translucent plates 46 are installed above the second lighting lamps 6 inside the light source divergence plate 45. The light source divergence plate 45 is made of frosted glass. The translucent plates 46 are used to support the culture dish tray 4. By operating the second lighting lamps 6, a light source is set below the culture dish tray 4, and a scattered light source is formed by using the frosted glass light source divergence plate 45, so that the entire culture dish tray 4 is a uniformly translucent carrier. At the same time, by setting light sources at both the top and bottom of the culture dish tray 4, it is convenient to switch the operation mode during operation.

[0049] Equally spaced installation grooves are provided on the outer sides of the limit sleeves 52, and first lighting lamps 59 are installed inside the installation grooves. Second fixing blocks 53 are fixedly connected to both sides of the limit sleeves 52, and installation insertion rods 58 extending into the installation top plate 16 are installed inside the two second fixing blocks 53.

[0050] In this solution, the second fixing block 53 and the connecting plate 51 are positioned and installed by installing the insertion rod 58, so as to facilitate the positioning and installation of the image acquisition mechanism 5 and the installation top plate 16, and improve the installation stability during equipment use.

[0051] In this solution, two storage tanks 55 are installed at the bottom of the installation top plate 16. Both storage tanks 55 are located on one side of the connecting plate 51. Air outlet pipes 56 are fixedly connected to the bottoms of both storage tanks 55, and valves 57 are fixedly connected to the outer sides of both air outlet pipes 56.

[0052] In this solution, a fan is arranged inside the storage tank 55, which can be used to assist in heat dissipation. The setting of the valve 57 prevents dust from entering the storage tank 55 reversely and affecting the service life of the equipment.

[0053] Please refer to Figures 1 - 5 , in this solution, a temperature sensor 33 is installed inside the culture dish box body 1 and above the installation bottom plate 3. The temperature sensor 33 is located on one side of the culture dish tray 4.

[0054] In this solution, the temperature sensor 33 is used to monitor the temperature change inside the culture dish box body 1 in real time.

[0055] In this solution, a limit guide rail 31 is opened inside the installation bottom plate 3. A limit slider 32 is slidably connected inside the limit guide rail 31. The top of the limit slider 32 is fixedly connected to a first fixing block 42, and the top of the first fixing block 42 is fixedly connected to the bottom of the culture dish tray 4.

[0056] In this solution, when the culture dish tray 4 is manually pulled out from the top of the installation bottom plate 3, the sliding track of the culture dish tray 4 is limited by the limit guide rail 31 and the limit slider 32, so as to avoid the situation of direct overall extraction of the culture dish tray 4 resulting in detachment, and improve the stability during equipment use.

[0057] Please refer to Figures 1 - 5 , in this solution, two positioning buckles 12 are installed on the top of the installation top plate 16. The two positioning buckles 12 are symmetrically distributed, and a stretching portable strap 11 is installed between the two positioning buckles 12.

[0058] In this solution, the stretching portable strap 11 is a stretchable structure.

[0059] In this solution, two second positioning bolts 17 extending to the inner wall of the culture dish box body 1 are threadedly connected to the top of the installation top plate 16. The two second positioning bolts 17 are symmetrically distributed, and first positioning bolts 13 extending to the inside of the installation top plate 16 are threadedly connected to the inside of both positioning buckles 12.

[0060] In this solution, two second positioning bolts 17 facilitate the reinforcement and installation of the installation top plate 16 and the petri dish box body 1, making it convenient for disassembly, inspection and maintenance operations. Two first positioning bolts 13 are used to reinforce and install the positioning buckle 12 and the installation top plate 16, so as to facilitate the convenient movement of the overall equipment by stretching the portable strap 11, improving the portability effect when the overall equipment is used.

[0061] In this solution, support feet 18 are fixedly connected to the four peripheries of the bottom of the petri dish box body 1, and the material of the support feet 18 is PE moisture-proof film.

[0062] In this solution, the support feet 18 made of PE moisture-proof film are used as a moisture-proof layer to prevent the moisture in the placement position of the petri dish box body 1 from penetrating into the interior of the petri dish box body 1, realizing the protection of the equipment.

[0063] Please refer to Figures 1 - 9 , in this solution, an electric control box 2 is fixedly connected to one side of the petri dish box body 1. A control panel 22 is installed on the outer side of the electric control box 2. Equally spaced control switches 23 are installed on the outer side of the control panel 22. Two display screens 21 are installed on the outer side of the electric control box 2. Both of the two display screens 21 are located above the control panel 22. The electric control box 2, the display screens 21, the control switches 23, the temperature sensor 33, the image acquisition and monitoring camera 54, the valve 57 and the first lighting lamp 59 are all electrically connected to the control panel 22. Data is displayed in real time through the two display screens 21, and at the same time, imaging processing is carried out in cooperation with the internal image acquisition mechanism 5. The equipment control processing is carried out through the control switches 23. The control panel 22 is used to control the operation of the electric control box 2, the display screens 21, the control switches 23, the temperature sensor 33, the image acquisition and monitoring camera 54, the valve 57 and the first lighting lamp 59, realizing the unified management of electrical equipment.

[0064] Please refer to Figures 1 - 9 , in this solution, a wireless signal transceiver 14 is fixedly connected to the top of the installation top plate 16. The wireless signal transceiver 14 is located on one side of the stretching portable strap 11. The wireless signal transceiver 14 is electrically connected to the control panel 22. A main control board is installed inside the wireless signal transceiver 14. An image acquisition module, a control center and a remote analysis module are provided inside the main control board. The image acquisition module, the control center and the remote analysis module are all communicatively connected to the main control board;

[0065] In this solution, the image acquisition module is used to receive the real-time image acquisition data sent by the image acquisition and monitoring camera 54, and perform self-filtering and repair processing on the image acquisition data to ensure the clarity during imaging;

[0066] In this solution, the control center is used to uniformly control multiple power devices such as the electric control box 2, the display screen 21, the control switch 23, the temperature sensor 33, the image acquisition and monitoring camera 54, the valve 57, and the first lighting lamp 59, facilitating the individual management of each power device in cooperation with on-site and remote operations;

[0067] In this solution, the remote analysis module is used to perform various aspects of analysis and processing on the received imaging image data, providing data support for remote staff.

[0068] Please refer to Figures 1 - 9 , the working principle of the present invention:

[0069] The present invention is provided with a culture dish box body 1, a mounting base plate 3, and a culture dish tray 4. When in use, the control panel 22 is opened. The culture dish tray 4 is used for normal culture operations. The mounting partition 43 is used to separate each culture cavity, forming 400 holes for light entry, facilitating the simultaneous culture of multiple products during use and also facilitating manual taking and culturing.

[0070] The material of the mounting base plate 3 is polycarbonate light-transmitting material. An illumination light source is provided inside the mounting base plate 3, and its activation is controlled according to the usage requirements.

[0071] The material of the culture dish sealing top cover 41 is a glass plate, which can be removed during use. A removal cover is provided at the bottom of the culture dish tray 4. When it is necessary to ensure the light source, the removal cover at the bottom is removed.

[0072] When the culture dish tray 4 is manually pulled out from the top of the mounting base plate 3, the sliding trajectory of the culture dish tray 4 is limited by the limit guide rail 31 and the limit slider 32, thereby avoiding the situation of the entire culture dish tray 4 falling off when directly pulled out, improving the stability of the equipment during use.

[0073] The second fixing block 53 and the connecting plate 51 are positioned and installed through the installation plug rod 58, thereby facilitating the positioning and installation of the image acquisition mechanism 5 and the installation top plate 16, improving the installation stability of the equipment during use. The image acquisition and monitoring camera 54 can be a monitoring camera or an infrared sensor, and can be replaced according to the actual acquisition requirements.

[0074] The light source diverging plate 45 is made of frosted glass. The light-transmitting plate 46 is used to support the culture dish tray 4. By the operation of the second lighting lamp 6, a light source is set below the culture dish tray 4. The frosted glass light source diverging plate 45 is used to form a scattered light source, making the entire culture dish tray 4 a uniformly light-transmitting carrier. At the same time, by setting light sources at both the top and bottom of the culture dish tray 4, it is convenient to switch the operation mode during operation.

[0075] The temperature sensor 33 is used to monitor and process the real-time temperature change inside the petri dish box body 1. A fan is arranged inside the storage tank 55, which can be used to assist in heat dissipation processing. The valve 57 is arranged to prevent dust from entering the storage tank 55 in the reverse direction and affecting the service life of the equipment.

[0076] The real-time data is displayed through two display screens 21. At the same time, it is combined with the internal image acquisition mechanism 5 for imaging processing. The equipment is controlled through the control switch 23. The control panel 22 is used to control the operation of the electric control box 2, the display screen 21, the control switch 23, the temperature sensor 33, the image acquisition and monitoring camera 54, the valve 57 and the first lighting lamp 59, realizing the unified management of electrical equipment.

[0077] The present invention is provided with an electric control box 2 and a stretchable portable strap 11. The stretchable portable strap 11 is a stretchable structure. The installation top plate 16 and the petri dish box body 1 can be conveniently reinforced and installed through two second positioning bolts 17, facilitating disassembly and maintenance operations.

[0078] The positioning buckle 12 and the installation top plate 16 are reinforced and installed through two first positioning bolts 13, so as to conveniently move the whole equipment through the cooperation of the stretchable portable strap 11, improving the portability effect when using the whole equipment. By using the support foot seat 18 made of PE moisture-proof film as a moisture-proof layer, the moisture in the placement position of the petri dish box body 1 is prevented from penetrating into the petri dish box body 1, realizing the protection of the equipment.

[0079] The image acquisition module is used to receive the real-time image acquisition data generated by the image acquisition and monitoring camera 54, and perform self-filtering and repair processing on the image acquisition data to ensure the clarity during imaging. The control center is used to uniformly control multiple electrical equipment such as the electric control box 2, the display screen 21, the control switch 23, the temperature sensor 33, the image acquisition and monitoring camera 54, the valve 57 and the first lighting lamp 59, facilitating the individual management of each electrical equipment in cooperation with the on-site and remote areas. The remote analysis module is used to perform various aspects of analysis and processing on the received imaging image data to provide data support for remote workers. A plurality of equally spaced heat dissipation slots 15 are installed on one side of the petri dish box body 1, and the heat dissipation slots 15 are used to assist in heat dissipation processing inside the petri dish box body 1.

[0080] The image information of the development change of the natural enemy products is automatically collected by the image acquisition device, and the image information is automatically analyzed by the software to analyze the quality grade of the natural enemy products, replacing the traditional manual detection, achieving the purpose of simplifying the quality detection process and automatically analyzing and calculating the qualified rate.

[0081] Although embodiments of the present invention have been shown and described, those of ordinary skill in the art will appreciate that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A quality inspection device for the natural enemy insect Trichogramma, comprising a culture dish box body (1), characterized in that, It further includes: An installation bottom plate (3) is installed inside the culture dish box body (1), and a culture mechanism is installed above the installation bottom plate (3); The culture mechanism includes a culture dish tray (4), and the culture dish tray (4) is slidably connected above the installation bottom plate (3), and the culture dish tray (4) is used for normal culture operations; A culture dish sealing top cover (41) is installed on the top of the culture dish tray (4), and equally spaced installation partitions (43) are installed inside the culture dish tray (4), and a placement cavity (44) is formed between every two adjacent installation partitions (43); An installation top plate (16) is installed on the top of the culture dish box body (1), the installation top plate (16) is located above the installation bottom plate (3), and an image acquisition mechanism (5) is installed on the bottom of the installation top plate (16); The image acquisition mechanism (5) includes a connecting plate (51), the connecting plate (51) is installed on the bottom of the installation top plate (16), a limiting sleeve (52) is installed on the bottom of the connecting plate (51), and an image acquisition monitoring camera (54) is installed inside the limiting sleeve (52); Equally spaced heat dissipation slits (15) are installed on one side of the culture dish box body (1), and the heat dissipation slits (15) are used for assisting in heat dissipation treatment inside the culture dish box body (1).

2. The quality inspection device for Trichogramma, a natural enemy insect product, according to claim 1, characterized in that: A light source divergence plate (45) is provided at the bottom of the culture dish tray (4), two second lighting lamps (6) are installed inside the light source divergence plate (45), and light-transmitting plates (46) are installed above the second lighting lamps (6) inside the light source divergence plate (45). The light source divergence plate (45) is made of frosted glass material, and the light-transmitting plate (46) is used for supporting the culture dish tray (4). By operating the second lighting lamps (6), a light source is set below the culture dish tray (4), and a scattered light source is formed by using the frosted glass material light source divergence plate (45), so that the entire culture dish tray (4) is a uniformly light-transmitting carrier. At the same time, by setting light sources at both the top and bottom of the culture dish tray (4), it is convenient to switch the operation mode during operation. Equally spaced installation grooves are provided on the outer sides of the limiting sleeves (52), and first lighting lamps (59) are installed inside the installation grooves. Second fixing blocks (53) are fixedly connected to both sides of the limiting sleeves (52), and installation insertion rods (58) extending into the installation top plate (16) are installed inside the two second fixing blocks (53).

3. The quality detection device for the natural enemy insect Trichogramma according to claim 2, characterized in that: Two storage tanks (55) are installed on the bottom of the installation top plate (16), both of the two storage tanks (55) are located on one side of the connecting plate (51), air outlet pipes (56) are fixedly connected to the bottoms of the two storage tanks (55), and valves (57) are fixedly connected to the outer sides of the two air outlet pipes (56).

4. The quality inspection device for Trichogramma, a natural enemy insect, according to claim 3, characterized in that: A temperature sensor (33) is installed inside the culture dish box body (1) and above the installation bottom plate (3), and the temperature sensor (33) is located on one side of the culture dish tray (4).

5. The quality inspection device for the natural enemy insect Trichogramma according to claim 1, characterized in that: A limiting guide rail (31) is provided inside the mounting base plate (3). A limiting slider (32) is slidably connected inside the limiting guide rail (31). A first fixing block (42) is fixedly connected to the top of the limiting slider (32).

6. The quality detection device for Trichogramma, a natural enemy insect, according to claim 1, characterized in that: Two positioning buckles (12) are installed on the top of the mounting top plate (16). The two positioning buckles (12) are symmetrically distributed. A stretching portable strap (11) is installed between the two positioning buckles (12).

7. The quality detection device for the natural enemy insect Trichogramma according to claim 6, characterized in that: Two second positioning bolts (17) extending to the inner wall of the petri dish box body (1) are threadedly connected to the top of the mounting top plate (16). The two second positioning bolts (17) are symmetrically distributed. A first positioning bolt (13) extending to the inside of the mounting top plate (16) is threadedly connected to the inside of each of the two positioning buckles (12).

8. The quality detection device for trichogramma, a natural enemy insect product, according to claim 6, is characterized in that: Support feet (18) are fixedly connected to the four peripheries of the bottom of the petri dish box body (1). The material of the support feet (18) is a PE moisture-proof film.

9. The quality inspection device for Trichogramma, a natural enemy insect, according to claim 4, is characterized in that: An electric control box (2) is fixedly connected to one side of the petri dish box body (1). A control panel (22) is installed on the outside of the electric control box (2). Control switches (23) are installed on the outside of the control panel (22) at equidistant intervals. Two display screens (21) are installed on the outside of the electric control box (2). The two display screens (21) are both above the control panel (22). The electric control box (2), the display screens (21), the control switches (23), the temperature sensor (33), the image acquisition monitoring camera (54), the valve (57) and the first lighting lamp (59) are all electrically connected to the control panel (22).

10. The quality inspection device for the natural enemy insect Trichogramma according to claim 9, characterized in that: A wireless signal transceiver (14) is fixedly connected to the top of the mounting top plate (16). The wireless signal transceiver (14) is on one side of the stretching portable strap (11). The wireless signal transceiver (14) is electrically connected to the control panel (22). A main control board is installed inside the wireless signal transceiver (14). An image acquisition module, a control center and a remote analysis module are provided inside the main control board. The image acquisition module, the control center and the remote analysis module are all communicatively connected to the main control board; The image acquisition module is used to receive the real-time image acquisition data sent by the image acquisition monitoring camera (54). The control center is used to uniformly control a plurality of electrical devices such as the electric control box (2), the display screens (21), the control switches (23), the temperature sensor (33), the image acquisition monitoring camera (54), the valve (57) and the first lighting lamp (59). The remote analysis module is used to perform various aspects of analysis and processing on the received imaging image data.

Citation Information

Patent Citations

  • An insect trapping and detection device and method

    CN112704051B