Biological virus safety detection integrated box

By designing a portable biological virus safety detection integrated box, which utilizes solar power and multiple detection devices, rapid on-site multi-target biological detection is achieved, solving the problems of slow detection speed and weak multi-target recognition capability of traditional methods, and achieving efficient and accurate detection results.

CN122084022APending Publication Date: 2026-05-26INST OF FORENSIC SCI OF MIN OF PUBLIC SECURITY
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
INST OF FORENSIC SCI OF MIN OF PUBLIC SECURITY
Filing Date
2025-12-23
Publication Date
2026-05-26

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Abstract

The invention belongs to the technical field of biological detection, and particularly discloses a biological virus safety detection integrated box which comprises a luggage box, a luggage box cover, a solar cell panel and a plurality of detection devices. The luggage case is rotationally connected with the luggage case cover; the plurality of detection devices are respectively inserted and fixed in the luggage case, and each detection device is respectively used for different types of biological detection; the solar cell panel is installed on the trunk lid and used for converting solar energy into electric energy and transmitting the electric energy to the power supply board so as to supply power to the detection integrated box. According to the scheme, the technical problems that traditional poison detection depends on laboratories, and the detection capacity is weak are solved.
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Description

Technical Field

[0001] This invention belongs to the technical field of biological detection, specifically relating to an integrated biological virus safety detection box. Background Technology

[0002] In today's era of deepening globalization and rapid technological advancement, the scope of national security has become increasingly broad and complex, with biosecurity, as a key component, playing an increasingly prominent role. Biosecurity is not only related to public health and life, but also closely linked to national stability, economic development, and international image. At the same time, with continuous innovation in biotechnology, the potential risks of dual-use biotechnologies have increased significantly. These intertwined factors have dramatically increased the complexity and uncertainty of the global biosecurity situation, posing unprecedented challenges to the biosecurity capabilities of all countries.

[0003] Currently, my country has established a relatively complete traditional detection technology system in the field of biosafety control. This system has played an important role in responding to past biosafety incidents, accumulating considerable experience in areas such as infectious disease outbreak monitoring and food safety testing. From a technical perspective, traditional detection mainly relies on various sophisticated instruments and complex operating procedures in a laboratory environment. For example, in virus detection, polymerase chain reaction (PCR) technology is commonly used, which amplifies viral nucleic acids using specific primers to detect viruses; in bacterial detection, culture methods are commonly used, identifying bacteria by inoculating samples onto specific culture media and observing bacterial growth. However, these traditional detection technologies also have many limitations in practical applications.

[0004] Traditional detection technologies suffer from a series of significant technical bottlenecks, severely restricting my country's response efficiency to biosecurity threats. First, limited testing scenarios are a prominent issue. Traditional detection relies heavily on the laboratory environment; the entire process, from sample collection and transportation to laboratory testing, is time-consuming and places extremely high demands on laboratory facilities, equipment, and personnel. This not only results in slow testing speeds, making it difficult to meet the rapid response needs of sudden biosecurity incidents. Second, multi-target detection capabilities are weak. A single technology platform can only cover a maximum of 3-5 types of biosecurity threats. Faced with a complex and ever-changing biosecurity situation, it is difficult to comprehensively and accurately identify various potential biosecurity threats, increasing the risk of missed and false detections. Summary of the Invention

[0005] The purpose of this invention is to provide an integrated biological virus safety detection kit to solve the technical problems of traditional biological detection relying on laboratories and having weak detection capabilities.

[0006] To achieve the above objectives, the present invention adopts the following technical solution:

[0007] A biological virus safety detection integrated box includes: a suitcase, a suitcase lid, a solar panel, and multiple detection devices; the suitcase and the suitcase lid are rotatably connected; the multiple detection devices are respectively inserted and fixed inside the suitcase, and each detection device is used for different types of biological detection; the solar panel is installed on the suitcase lid to convert solar energy into electrical energy and transmit it to a power supply board to power the detection integrated box.

[0008] In this invention, by installing various detection devices in a suitcase, a portable on-site rapid detection system is formed, which enables rapid screening and accurate identification of multiple biological types. This achieves on-site and real-time analysis of the integrated biosafety detection system, solving the technical problems of traditional toxic substance detection relying on laboratories and having weak detection capabilities, and achieving the technical effect of rapid on-site detection of biological samples. Attached Figure Description

[0009] Figure 1 This is a schematic diagram of the structure of an integrated biological virus safety detection box in an embodiment of the present invention.

[0010] Figure 2 This is a schematic diagram of the structure of an integrated biological virus safety detection box in an embodiment of the present invention.

[0011] Figure 3 This is a schematic diagram of the network structure of a detection device for an integrated biological virus safety detection box according to an embodiment of the present invention. Detailed Implementation

[0012] The present invention will be further described in detail below with reference to the accompanying drawings and specific embodiments. The advantages and features of the present invention will become clearer from the following description and claims. It should be noted that the drawings are all in a very simplified form and are not to a precise scale, and are only used to facilitate and clarify the illustration of the embodiments of the present invention.

[0013] It should be noted that, in order to clearly illustrate the content of this invention, several embodiments are provided to further explain different implementations of the invention. These embodiments are enumerated rather than exhaustive. Furthermore, for the sake of brevity, content mentioned in the preceding embodiments is often omitted in the following embodiments. Therefore, content not mentioned in the later embodiments can be referred to in the preceding embodiments.

[0014] Example 1

[0015] A biological virus safety detection integrated box, such as Figure 1 As shown, it includes: a suitcase 1, a suitcase lid 2, a solar panel 8, and multiple detection devices;

[0016] Suitcase 1 and suitcase lid 2 are rotatably connected;

[0017] Multiple detection devices are plugged into and fixed inside the suitcase 1, and each detection device is used for different types of biological detection.

[0018] Solar panels 8 are installed on the trunk lid 2 to convert solar energy into electrical energy and transmit it to the power supply board to power the detection integrated box.

[0019] As an optional implementation, the suitcase 1 is rotatably connected to the suitcase lid 2 via a suitcase hinge 3, and the suitcase 1 is equipped with a suitcase handle 4 to facilitate the movement of the suitcase.

[0020] As an optional implementation, a solar panel protective layer 7 is provided between the trunk lid 2 and the solar panel 8 to provide isolation protection for the solar panel.

[0021] As an optional implementation, a display screen 10 is provided on the trunk lid 2 to display detection-related information and detection results.

[0022] As an optional implementation method, the detection equipment includes small mass spectrometers, portable toxicology detectors, Raman instruments, coding and reading instruments, chemical sensor instruments, and virus and bacteria detection instruments.

[0023] As an optional implementation, the testing devices are filled and protected with high-density EVA material.

[0024] As an optional implementation, the power supply board provides 220V-AC power and 5V / 12V DC current to power the detection equipment, and the suitcase is connected to AC-220V via the power interface to power the equipment or charge the power supply board.

[0025] As an optional implementation, the detection device and the network module communicate and transmit data via a wired connection. The 5G signal in the network module uploads the detection data to the cloud or server for data processing and to obtain the detection analysis results.

[0026] As an optional implementation, a computer board 13 is provided on one side of the testing device, and a bus expansion slot 15 is provided on the other side of the computer board 13.

[0027] As an alternative implementation, the computer board 13 is connected to the bus slot 12, which is fixed to the partition 11.

[0028] Specifically, the aforementioned integrated biological virus safety detection box is not limited to, for example, Figure 1 and Figure 2As shown, it includes: a suitcase 1, a suitcase lid 2, a suitcase hinge 3, a suitcase handle 4, a rechargeable battery pack 5, an external power outlet 6, a solar panel protective layer, a solar panel 8, a display screen 10, a partition 11, a bus slot 12, a computer board 13, a bus slot 14, a bus expansion slot 15, an ultra-thin keyboard 16, and multiple detection devices.

[0029] The suitcase 1 is rotatably connected to the suitcase lid 2 via the suitcase hinge 3, and the suitcase 1 is equipped with a suitcase handle 4 to facilitate the movement of the suitcase.

[0030] A solar panel 8 is mounted on the trunk lid 2 to convert solar energy into electrical energy and transmit it to a power supply board to power the integrated detection box. A protective layer 7 for the solar panel is provided between the trunk lid 2 and the solar panel 8 to provide isolation and protection for the solar panel.

[0031] A display screen 10 is installed on the trunk lid 2 to display relevant testing information and results. An ultra-thin keyboard 16 is also installed on the trunk lid 2 as a data input tool for commands, information, etc.

[0032] A computer board 13 is located on one side of the testing equipment, and a bus expansion slot 15 is located on the other side of the computer board 13. The computer board 13 is connected to a bus slot 12, which is fixed to a partition 11. The luggage compartment 1 also has a rechargeable battery pack 5 to power the testing equipment, display screen, and the entire integrated testing unit. It also has an external battery port 6 for connecting an external battery or external power source to power the integrated testing unit or charge the rechargeable battery pack 5.

[0033] Specifically, the detection equipment includes, but is not limited to, small mass spectrometers, portable toxicology detectors, Raman spectrometers, coding and reading instruments, chemical sensor instruments, and virus and bacteria detection instruments. Multiple detection devices are plugged into and fixed inside the suitcase 1, with each device used for different types of biological detection.

[0034] The case is not limited to an aluminum outer casing; high-density EVA material is used to protect the various testing devices or instruments. The integrated testing case has a complete power and communication network. Taking the testing equipment as an example, the structure of the testing equipment section of the integrated testing case is not limited to... Figure 3 As shown, the internal power supply network is not limited to using a dedicated power supply board to provide 220V-AC power and 5V / 12V DC power to power the equipment. The outer enclosure can be connected to AC-220V through a power interface to provide power or charging functions for the entire enclosure of equipment.

[0035] The communication network is not limited to wired communication between equipment and network modules to acquire and upload data. It also supports WIFI connection to acquire and upload data, and then uploads the data to the cloud or back-end server through the 5G signal in the network module for distribution and comparison processing. It also supports APP control and synchronous acquisition of analysis and comparison results.

[0036] In this embodiment, by installing various detection devices in the suitcase, a portable on-site rapid detection system is formed, which enables rapid screening and accurate identification of multiple biological types. This achieves on-site and real-time analysis of the integrated biosafety detection system, solving the technical problems of traditional toxic substance detection relying on laboratories and having weak detection capabilities, and achieving the technical effect of rapid on-site detection of biological samples.

Claims

1. A biological virus safety detection integrated box, characterized in that, include: Suitcase, suitcase lid, solar panels, and multiple testing devices; The suitcase and the suitcase lid are rotatably connected; Multiple testing devices are plugged into and fixed inside the suitcase, with each device used for different types of biological testing. The solar panel is installed on the luggage compartment lid to convert solar energy into electrical energy and transmit it to the power supply board to power the integrated detection box.

2. The integrated biological virus safety detection box as described in claim 1, characterized in that, The suitcase is rotatably connected to the suitcase lid via a suitcase hinge, and the suitcase is equipped with a suitcase handle to facilitate the movement of the suitcase.

3. The integrated biological virus safety detection box as described in claim 2, characterized in that, A protective layer for the solar panel is provided between the luggage lid and the solar panel to isolate and protect the solar panel.

4. The integrated biological virus safety detection box as described in claim 1, characterized in that, The luggage compartment lid is equipped with a display screen for displaying detection-related information and results.

5. The integrated biological virus safety detection box as described in claim 1, characterized in that, The detection equipment includes a small mass spectrometer, a portable toxicology detector, a Raman spectroscopy instrument, a coding and reading instrument, a chemical sensor instrument, and a virus and bacteria detection instrument.

6. The integrated biological virus safety detection box as described in claim 1, characterized in that, The detection devices are filled and protected with high-density EVA material.

7. The integrated biological virus safety detection box as described in claim 1, characterized in that, The power supply board provides 220V-AC power and 5V / 12V DC current to power the detection equipment. The suitcase is connected to AC-220V through a power interface to power the equipment or charge the power supply board.

8. The integrated biological virus safety detection box as described in claim 1, characterized in that, The detection device communicates and transmits data with the network module via a wired connection. The 5G signal in the network module uploads the detection data to the cloud or server for data processing and to obtain the detection analysis results.

9. The integrated biological virus safety detection box as described in claim 1, characterized in that, A computer board is provided on one side of the testing equipment, and a bus expansion slot is provided on the other side of the computer board.

10. The integrated biological virus safety detection box as described in claim 9, characterized in that, The computer board is connected to a bus slot, which is fixed to a partition.