Incubator detection system

The automated collection and analysis of incubator operation and environmental data by the incubator testing system solves the problem of low efficiency in manual testing and achieves real-time monitoring and safety assurance.

CN223940314UActive Publication Date: 2026-02-24EVE ENERGY CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422977897.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-03
Publication Date
2026-02-24
Estimated Expiration
2034-12-03

AI Technical Summary

Technical Problem

The current technology of manually detecting the operation of the incubator is inefficient, cannot achieve real-time monitoring, and poses safety hazards.

Method used

Design a temperature chamber detection system, including an operation data acquisition unit, an environmental data acquisition unit, a logic processing unit, and an early warning unit, to automatically collect and analyze the operation and environmental data of the temperature chamber and trigger an electro-acoustic and visual alarm in a timely manner.

Benefits of technology

It enables automated monitoring of the incubator's operating status, improves testing efficiency, reduces manual intervention, and lowers safety risks.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223940314U_ABST
    Figure CN223940314U_ABST
Patent Text Reader

Abstract

The utility model discloses an incubator detection system. Relates to the field of incubator detection and other related technical fields, and comprises an operation data acquisition unit connected with a to-be-detected incubator and used for acquiring operation data of the to-be-detected incubator to obtain an operation data value; the environment data acquisition unit is connected with the to-be-detected incubator and is used for acquiring environment data in the to-be-detected incubator to obtain an environment data value; the logic processing unit is connected with the operation data acquisition unit and the environment data acquisition unit, and is used for outputting a target signal to the early warning unit based on a first detection result between a first preset threshold value and an operation data value and / or a second detection result between a second preset threshold value and an environment data value; and the early warning unit is connected with the logic processing unit and is used for triggering an electric sound-light alarm based on the target signal. Through application of the method and the device, the problem that the detection efficiency of the incubator is relatively low due to the fact that the operation condition of the incubator is detected in a manual mode in related technologies is solved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the field of incubator testing and other related technical fields, and more specifically, to an incubator testing system. Background Technology

[0002] Incubator monitoring refers to the process of real-time monitoring and control of the incubator's operation and parameters such as temperature and humidity of the samples inside. Monitoring allows for the timely detection and adjustment of any abnormalities, ensuring that the environmental conditions within the incubator meet operational requirements. Traditional methods primarily rely on periodic inspections by staff, but this requires manual data processing and analysis, which is time-consuming, labor-intensive, and prone to errors. Furthermore, in emergency situations (such as blocked water outlets, fires or smoke inside the incubator, or electrical malfunctions), real-time manual monitoring is impossible, posing a significant threat to the safety of both the incubator and the samples.

[0003] There is currently no effective solution to the problem that the detection efficiency of the incubator is relatively low due to the manual detection of its operation in related technologies. Utility Model Content

[0004] The main objective of this application is to provide a temperature chamber testing system to solve the problem that the testing efficiency of temperature chambers is relatively low due to the manual testing of their operation in related technologies.

[0005] To achieve the above objectives, according to one aspect of this application, a temperature chamber detection system is provided. The system includes: an operational data acquisition unit connected to the temperature chamber under test, for acquiring operational data of the temperature chamber under test to obtain operational data values; an environmental data acquisition unit connected to the temperature chamber under test, for acquiring environmental data in the temperature chamber under test to obtain environmental data values; a logic processing unit connected to the operational data acquisition unit and the environmental data acquisition unit, for outputting a target signal to an early warning unit based on a first detection result between a first preset threshold and the operational data values ​​and / or a second detection result between a second preset threshold and the environmental data values; and an early warning unit connected to the logic processing unit, for triggering an electro-acoustic and visual alarm based on the target signal.

[0006] Furthermore, the operational data acquisition unit includes: a water level sensor connected to the temperature chamber under test, used to acquire the water level value of the temperature chamber under test in the operational data values; a pressure sensor connected to the temperature chamber under test, used to acquire the pressure value of the temperature chamber under test in the operational data values; a voltage detector connected to the temperature chamber under test, used to acquire the voltage value of the temperature chamber under test in the operational data values; and a smoke detector connected to the temperature chamber under test, used to acquire the smoke detection value of the temperature chamber under test in the operational data values ​​after the temperature chamber under test catches fire.

[0007] Furthermore, the smoke detector includes: a light-emitting element connected to the test chamber for generating light after the test chamber catches fire to illuminate the smoke; a photosensitive element connected to the light-emitting element for collecting the light change value when the smoke enters the light path; and a signal processing circuit connected to the photosensitive element for outputting the smoke detection value based on the light change value.

[0008] Furthermore, the environmental data acquisition unit includes: a gas sensor connected to the test chamber for acquiring the gas value of the sample in the test chamber from the environmental data values; a temperature sensor connected to the test chamber for acquiring the temperature value of the sample in the test chamber from the environmental data values; and a humidity sensor connected to the test chamber for acquiring the humidity value of the sample in the test chamber from the environmental data values.

[0009] Furthermore, the gas sensor includes: an oxygen sensor connected to the test chamber for collecting the oxygen content value of the sample in the test chamber from the environmental data values; and a carbon dioxide sensor connected to the test chamber for collecting the carbon dioxide content value of the sample in the test chamber from the environmental data values.

[0010] Further, the logic processing unit includes: a boost module connected to the logic processing module, used to provide a driving voltage to the logic processing module to drive the logic processing module to operate; the logic processing module is used to output the target signal based on a first detection result between the first preset threshold and the operating data value and / or a second detection result between the second preset threshold and the environmental data value; and an undervoltage / overvoltage protection module connected to the logic processing module, used to protect the boost module.

[0011] Furthermore, the early warning unit includes: a signal collector connected to the logic processing unit for collecting the target signal; and an alarm connected to the signal collector for triggering an electro-acoustic and optical alarm signal based on the target signal.

[0012] Furthermore, the temperature chamber detection system also includes: a result display unit, connected to the operation data acquisition unit and the environmental data acquisition unit, for displaying the operation data values ​​and the environmental data values ​​to the target object; and an interruption unit, connected to the early warning unit, for interrupting the electro-acoustic and visual alarm triggered by the early warning unit based on the interruption signal triggered by the target object.

[0013] Furthermore, the result display unit includes: a host computer connected to the running data acquisition unit and the environmental data acquisition unit, for receiving the running data values ​​and the environmental data values; a switch connected between the host computer and the display, for converting the format of the running data values ​​and the environmental data values; and the display connected to the switch, for displaying the running data values ​​and the environmental data values ​​to the target object.

[0014] Furthermore, the interrupt unit includes: an interrupt request register, connected to the temperature chamber to be tested, for receiving the interrupt signal; and an interrupt controller, connected to the early warning unit, for interrupting the electro-acoustic and visual alarm triggered by the early warning unit based on the interrupt signal.

[0015] This application employs the following apparatus: a running data acquisition unit connected to the test chamber for acquiring running data of the test chamber to obtain running data values; an environmental data acquisition unit connected to the test chamber for acquiring environmental data of the test chamber to obtain environmental data values; a logic processing unit 30 connected to the running data acquisition unit and the environmental data acquisition unit for outputting a target signal to an early warning unit based on a first detection result between a first preset threshold and the running data value and / or a second detection result between a second preset threshold and the environmental data value; and an early warning unit connected to the logic processing unit for triggering an electro-acoustic and optical alarm based on the target signal. This application solves the problem in related technologies where the operation of the test chamber is detected manually, resulting in low detection efficiency.

[0016] By operating the data acquisition unit and the environmental data acquisition unit, the operating data values ​​and environmental data values ​​of the test chamber can be automatically collected during operation. The logic processing unit can then use these data values ​​to promptly detect any abnormalities in the test chamber and trigger an electro-acoustic and visual alarm. This reduces manual intervention, improves work efficiency, and ultimately reduces the potential risks of the test chamber. Attached Figure Description

[0017] The accompanying drawings, which form part of this application, are used to provide a further understanding of this application. The illustrative embodiments and descriptions of this application are used to explain this application and do not constitute an undue limitation of this application. In the drawings:

[0018] Figure 1 This is a schematic diagram of the incubator detection system provided according to the embodiments of this application. Figure 1 ;

[0019] Figure 2 This is a schematic diagram of the running data acquisition unit 10 provided according to an embodiment of this application;

[0020] Figure 3 This is a schematic diagram of a smoke detector 104 provided according to an embodiment of this application;

[0021] Figure 4 This is a schematic diagram of the environmental data acquisition unit 20 provided according to an embodiment of this application;

[0022] Figure 5 This is a schematic diagram of a gas sensor 201 provided according to an embodiment of this application;

[0023] Figure 6 This is a schematic diagram of the logic processing unit 30 provided according to an embodiment of this application;

[0024] Figure 7 This is a schematic diagram of the early warning unit 40 provided according to an embodiment of this application;

[0025] Figure 8 This is a schematic diagram of the incubator detection system provided according to the embodiments of this application. Figure 2 ;

[0026] Figure 9 This is a schematic diagram of the result display unit 50 provided according to an embodiment of this application;

[0027] Figure 10 This is a schematic diagram of the interrupt unit 60 provided according to an embodiment of this application;

[0028] The components include: 10-operational data acquisition unit, 20-environmental data acquisition unit, 30-logic processing unit, 40-early warning unit, 50-result display unit, 60-interrupt unit, 101-water level sensor, 102-pressure sensor, 103-voltage detector, 104-smoke detector, 201-gas sensor, 202-temperature sensor, 203-humidity sensor, 301-boost module, 302-logic processing module, 303-undervoltage / overvoltage protection module, 401-signal acquisition unit, 402-alarm device, 501-host computer, 502-switch, 503-display, 601-interrupt request register, 602-interrupt controller, 1041-light-emitting element, 1042-photosensitive element, 1043-signal processing circuit, 2011-oxygen sensor, and 2012-carbon dioxide sensor. Detailed Implementation

[0029] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. This application will now be described in detail with reference to the accompanying drawings and embodiments.

[0030] To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present application, and not all embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative effort should fall within the scope of protection of the present application.

[0031] It should be noted that the terms "first," "second," etc., in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate for the embodiments of this application described herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus.

[0032] It should be noted that all information (including but not limited to user device information, user personal information, etc.) and data (including but not limited to data used for display, data used for analysis, etc.) involved in this disclosure are information and data authorized by the user or fully authorized by all parties. For example, this system has an interface with relevant users or organizations. Before obtaining relevant information, it is necessary to send an acquisition request to the aforementioned user or organization through the interface, and obtain the relevant information after receiving consent information from the aforementioned user or organization.

[0033] The following describes this application in conjunction with the preferred implementation steps. Figure 1 This is a schematic diagram of the incubator detection system provided according to the embodiments of this application. Figure 1 ,like Figure 1 As shown, the device includes:

[0034] The operation data acquisition unit 10 is connected to the test chamber and is used to acquire the operation data of the test chamber to obtain the operation data value; the environmental data acquisition unit 20 is connected to the test chamber and is used to acquire the environmental data in the test chamber to obtain the environmental data value; the logic processing unit 30 is connected to the operation data acquisition unit 10 and the environmental data acquisition unit 20 and is used to output a target signal to the early warning unit 40 based on the first detection result between the first preset threshold and the operation data value and / or the second detection result between the second preset threshold and the environmental data value; the early warning unit 40 is connected to the logic processing unit 30 and is used to trigger an electro-acoustic and light alarm based on the target signal.

[0035] Optionally, the temperature chamber detection system includes: an operational data acquisition unit 10, an environmental data acquisition unit 20, a logic processing unit 30, and an early warning unit 40. The operational data acquisition unit 10 and the environmental data acquisition unit 20 are both connected to the logic processing unit 30, and the logic processing unit 30 is connected to the early warning unit 40.

[0036] By operating the data acquisition unit 10 and the environmental data acquisition unit 20, the operating data values ​​and environmental data values ​​of the test chamber can be automatically collected during operation. The logic processing unit 30 can then use these data values ​​to promptly detect any abnormalities in the test chamber and trigger an electro-acoustic and visual alarm. This reduces manual intervention, improves work efficiency, and ultimately reduces the potential risks of the test chamber.

[0037] Optionally, in the incubator detection system provided in this application embodiment, the operation data acquisition unit 10 includes: a water level sensor 101, connected to the incubator to be tested, for acquiring the water level value of the incubator to be tested in the operation data values; a pressure sensor 102, connected to the incubator to be tested, for acquiring the pressure value of the incubator to be tested in the operation data values; a voltage detector 103, connected to the incubator to be tested, for acquiring the voltage value of the incubator to be tested in the operation data values; and a smoke detector 104, connected to the incubator to be tested, for acquiring the smoke detection value of the incubator to be tested in the operation data values ​​after the incubator to be tested catches fire.

[0038] In an alternative embodiment, Figure 2 This is a schematic diagram of the running data acquisition unit 10 provided according to an embodiment of this application, as shown below. Figure 2 As shown, the operational data acquisition unit 10 includes: a water level sensor 101, a pressure sensor 102, a voltage detector 103, and a smoke detector 104. The water level sensor 101, pressure sensor 102, voltage detector 103, and smoke detector 104 are connected to their respective positions in the temperature chamber under test, ensuring the connections are secure and correct. A corresponding data acquisition program is written to collect real-time operational data values ​​such as water level, pressure, voltage, and smoke detection values ​​from the temperature chamber under test.

[0039] It should be noted that the water level sensor 101 typically determines the liquid level by measuring the resistance or capacitance of the liquid inside the incubator. When the water level sensor 101 is immersed in the liquid, the liquid changes the sensor's resistance or capacitance, thus reflecting the liquid level and preventing the sample from being submerged or the incubator from running out of water, which could lead to equipment shutdown or failure. The pressure sensor 102 is a sensor that determines the pressure value by measuring changes in the applied pressure. For samples that need to be stored under specific pressure conditions, such as items after autoclaving, when a pressure change occurs inside the incubator, the pressure sensor 102 will be subjected to pressure. This pressure is converted into an electrical signal by the pressure-sensitive element inside the sensor, thereby measuring the pressure value. The voltage detector 103 is typically an instrument that determines the electrical value by detecting current and voltage. When the voltage detector 103 is connected to the incubator, it can monitor the current and voltage values ​​in real time to obtain the electrical value. Smoke detector 104 typically detects smoke particles in the air using photoelectric or ionization principles. When a fire occurs inside the chamber to be tested and smoke is generated, smoke detector 104 detects the smoke particles and converts them into an electrical signal, thereby measuring the smoke detection value.

[0040] It should be noted that when the test chamber catches fire, the smoke detector 104 automatically activates the control switch of the test chamber to introduce cooling water to extinguish the fire.

[0041] Through the above steps, the operational data values ​​of the test chamber, such as water level, pressure, voltage, and smoke detection, can be collected and monitored, thereby improving the real-time monitoring of the test chamber's operating status and ensuring its safety.

[0042] Optionally, in the incubator detection system provided in this application embodiment, the smoke detector 104 includes: a light-emitting element 1041 connected to the incubator to be detected, used to generate light after the incubator to be detected catches fire, so as to illuminate the smoke; a photosensitive element 1042 connected to the light-emitting element 1041, used to collect the light change value when the smoke enters the light path; and a signal processing circuit 1043 connected to the photosensitive element 1042, used to output the smoke detection value based on the light change value.

[0043] In an alternative embodiment, Figure 3 This is a schematic diagram of a smoke detector 104 provided according to an embodiment of this application, as shown below. Figure 3As shown, the smoke detector 104 includes a light-emitting element 1041, a photosensitive element 1042, and a signal processing circuit 1043. When a fire occurs inside the chamber to be detected, producing smoke, the smoke enters the smoke detector 104 and emits light through the light-emitting element 1041 to illuminate the smoke. The photosensitive element 1042 then receives and detects the change in light and sends the signal to the signal processing circuit 1043. The signal processing circuit 1043 analyzes the signal and outputs the smoke detection value.

[0044] It should be noted that the light-emitting element 1041 includes, but is not limited to, LEDs, fluorescent lamps, neon lamps, organic light-emitting diodes (OLEDs), and lasers, etc., connected to the interior of the chamber under test via a circuit. When a fire occurs inside the chamber, the LEDs will be illuminated to produce light. The photosensitive element 1042 includes, but is not limited to, photoresistors, photodiodes, phototransistors, photodiodes, phototransistors, and photocapacitors, etc., connected to the light-emitting element 1041 via a circuit to detect changes in light intensity when smoke is emitted. The signal processing circuit 1043 includes, but is not limited to, a microprocessor and a dedicated signal processing chip, connected to the photosensitive element 1042, analyzing and processing the changes in light intensity to output smoke detection values.

[0045] It should be noted that the smoke detector 104 can also be an ionization smoke detector, which contains a radioactive source (usually cesium-137) and two electrodes. The radioactive source releases alpha particles, which collide with oxygen and nitrogen molecules in the air, ionizing them to produce positive and negative ions. These ions move under the influence of an electric field, forming an electric current. When smoke enters the smoke detector, the particles in the smoke adsorb ions, causing a change in the current. The smoke detector 104 detects this change in current to output a smoke detection value.

[0046] Through the multiple components of the smoke detector 104, when a fire occurs inside the chamber to be tested and smoke is generated, it can be quickly processed and detected, thereby enabling timely detection of the fire and the implementation of corresponding measures.

[0047] Optionally, in the incubator testing system provided in this application embodiment, the environmental data acquisition unit 20 includes: a gas sensor 201, connected to the incubator to be tested, for acquiring the gas value of the sample in the incubator to be tested from the environmental data values; a temperature sensor 202, connected to the incubator to be tested, for acquiring the temperature value of the sample in the incubator to be tested from the environmental data values; and a humidity sensor 203, connected to the incubator to be tested, for acquiring the humidity value of the sample in the incubator to be tested from the environmental data values.

[0048] In an alternative embodiment, Figure 4 This is a schematic diagram of the environmental data acquisition unit 20 provided in the embodiments of this application, as shown below. Figure 4As shown, the environmental data acquisition unit 20 includes a gas sensor 201, a temperature sensor 202, and a humidity sensor 203. The pins of the gas sensor 201, temperature sensor 202, and humidity sensor 203 are connected to the corresponding interfaces or pins of the chamber under test, ensuring a secure and reliable connection, to acquire the gas, temperature, and humidity values ​​of the sample inside the chamber.

[0049] It should be noted that when a sample in the test chamber releases a specific gas, the gas sensor 201 reacts chemically with the gas, causing changes in the sensor's resistance, capacitance, or voltage. This change is detected by the gas sensor 201 and converted into an electrical signal related to the gas concentration. By analyzing this electrical signal, the gas concentration of the sample in the test chamber is obtained. When the temperature sensor 202 is exposed to the sample in the test chamber, the temperature affects the sensor's internal electrical characteristics, such as resistance, voltage, or current. By measuring these changes in electrical characteristics, the temperature of the sample in the test chamber is obtained. When the humidity sensor 203 is exposed to the sample in the test chamber, water vapor in the air affects the sensor's capacitance or resistance. By measuring these changes in electrical characteristics, the humidity of the sample in the test chamber is obtained.

[0050] It should be noted that gas sensor 201, temperature sensor 202, and humidity sensor 203 typically need to be calibrated before use to ensure the accuracy and reliability of their output data. Calibration can be performed for different environmental conditions and requirements.

[0051] Through multiple components of the environmental data acquisition unit 20, the gas, temperature and humidity values ​​of the sample in the test chamber can be monitored in real time, helping staff to monitor and adjust the environmental conditions of the sample in the chamber.

[0052] Optionally, in the incubator detection system provided in this application embodiment, the gas sensor 201 includes: an oxygen sensor 2011, connected to the incubator to be tested, used to collect the oxygen content value of the sample in the incubator to be tested from the environmental data values; and a carbon dioxide sensor 2012, connected to the incubator to be tested, used to collect the carbon dioxide content value of the sample in the incubator to be tested from the environmental data values.

[0053] In an alternative embodiment, Figure 5 This is a schematic diagram of the gas sensor 201 provided according to an embodiment of this application, as shown below. Figure 5 As shown, the gas sensor 201 includes an oxygen sensor 2011 and a carbon dioxide sensor 2012.

[0054] For samples that need to be preserved in a specific gaseous environment, such as food and pharmaceuticals, an oxygen sensor 2011 is used to monitor the oxygen content inside the incubator. When the oxygen in the incubator comes into contact with the oxidizing substances in the oxygen sensor 2011, a redox reaction occurs, generating a current or voltage signal. By measuring the magnitude of these signals, the oxygen content of the sample can be determined.

[0055] Controlling carbon dioxide concentration is crucial when culturing cells or preserving biological products in an incubator. When carbon dioxide in the incubator comes into contact with the carbon dioxide absorbent in the carbon dioxide sensor 2012, the carbon dioxide content of the sample can be determined by observing changes in the absorbent's color or volume. Alternatively, the carbon dioxide content can be determined by measuring the energy of infrared light absorbed by carbon dioxide molecules in the carbon dioxide sensor 2012.

[0056] The oxygen sensor 2011 and carbon dioxide sensor 2012 can quickly and accurately obtain the oxygen and carbon dioxide content values ​​of the sample in the test chamber.

[0057] Optionally, in the temperature chamber detection system provided in this application embodiment, the logic processing unit 30 includes: a boost module 301 connected to the logic processing module 302, used to provide a driving voltage to the logic processing module to drive the logic processing module 302 to operate; the logic processing module 302 is used to output a target signal based on a first detection result between a first preset threshold and the operating data value and / or a second detection result between a second preset threshold and the environmental data value; and an undervoltage / overvoltage protection module 303 connected to the logic processing module 302, used to protect the boost module 301.

[0058] In an alternative embodiment, Figure 6 This is a schematic diagram of the logic processing unit 30 provided in the embodiments of this application, as shown below. Figure 6 As shown, the logic processing unit 30 includes: a boost module 301, a logic processing module 302, and an undervoltage / overvoltage protection module 303.

[0059] The boost module 301 uses a boost circuit (e.g., a switching power supply circuit, utilizing inductors, capacitors, and switching devices) to convert the lower voltage from the power input to the higher voltage required by the logic processing module 302. It also uses a Zener diode or linear regulator to ensure that the output voltage remains stable within a certain range, maintaining a stable power supply to the logic processing module 302 even if the input voltage fluctuates.

[0060] After receiving the operating data value and the environmental data value, the logic processing module 302 analyzes the operating data value and the environmental data value based on the first preset threshold or the second preset threshold using the built-in data analysis algorithm and judgment algorithm to determine whether the operating status of the test chamber is normal, and generates a target signal when the logic processing module 302 identifies an abnormal situation.

[0061] The undervoltage / overvoltage protection module 303 continuously monitors the voltage value output by the boost module and determines whether it exceeds the predetermined safety range. If an abnormal voltage is detected (e.g., below the minimum operating voltage or above the maximum safe voltage), it will immediately disconnect the logic processing module 302 from the power supply to prevent damage to it or system failure.

[0062] Through the coordinated operation of the boost module 301, the logic processing module 302, and the undervoltage / overvoltage protection module 303, the logic processing unit 30 can stably and accurately process and analyze the operating data values ​​and environmental data values ​​from the test chamber.

[0063] Optionally, in the incubator detection system provided in this application embodiment, the early warning unit 40 includes: a signal collector 401, connected to the logic processing unit 30, for collecting target signals; and an alarm 402, connected to the signal collector 401, for triggering an electro-acoustic and optical alarm signal based on the target signal.

[0064] In an alternative embodiment, Figure 7 This is a schematic diagram of the early warning unit 40 provided according to an embodiment of this application, as shown below. Figure 7 As shown, the early warning unit 40 includes a signal collector 401 and an alarm 402.

[0065] The signal acquisition unit 401 acquires the target signal output by the logic processing unit 30 through a sensor and converts it into an electrical signal. The signal acquisition unit 401 typically includes a sensor, a signal converter, and a signal processing circuit.

[0066] Alarm 402 triggers an audible and visual alarm signal based on the target signal. Alarm 402 includes, but is not limited to, a sound generator and a light generator. When the target signal exceeds a set threshold or condition, it sends a signal to alarm 402, triggering an audible or visual alarm to alert staff to take appropriate measures.

[0067] The early warning unit 40 can issue an alarm in a timely manner when the target signal is abnormal, helping to reduce the possibility of accidents and ensure the safety of equipment and personnel.

[0068] Optionally, in the incubator testing system provided in this application embodiment, the incubator testing system further includes: a result display unit 50, connected to the operation data acquisition unit 10 and the environmental data acquisition unit 20, for displaying the operation data values ​​and environmental data values ​​to the target object; and an interruption unit 60, connected to the early warning unit 40, for interrupting the electro-acoustic and light alarm triggered by the early warning unit 40 based on the interruption signal triggered by the target object.

[0069] In an alternative embodiment, Figure 8 This is a schematic diagram of the incubator detection system provided according to the embodiments of this application. Figure 2 ,like Figure 8 As shown, the temperature chamber testing system also includes a result display unit 50 and an interrupt unit 60.

[0070] The results display unit 50 processes the operating data values ​​and environmental data values ​​from the operating data acquisition unit 10 and the environmental data acquisition unit 20 to generate the equipment operating curve corresponding to the test chamber, and displays the equipment operating curve to the staff (i.e., the target object). After receiving the interrupt signal triggered by the target object, the interrupt unit 60 interrupts the electro-acoustic and light alarm triggered by the early warning unit 40 to avoid unnecessary alarm sound or light interfering with the target object.

[0071] The efficiency of the temperature chamber testing system can be improved by working in coordination between the result display unit 50 and the interrupt unit 60.

[0072] Optionally, in the incubator testing system provided in this application embodiment, the result display unit 50 includes: a host computer 501, connected to the operation data acquisition unit 10 and the environmental data acquisition unit 20, for receiving operation data values ​​and environmental data values; a switch 502, connected between the host computer 501 and the display 503, for converting the format of the operation data values ​​and environmental data values; and a display 503, connected to the switch 502, for displaying the operation data values ​​and environmental data values ​​to the target object.

[0073] In an alternative embodiment, Figure 9 This is a schematic diagram of the result display unit 50 provided according to an embodiment of this application, such as... Figure 9 As shown, the result display unit 50 includes: a host computer 501, a switch 502, and a display 503.

[0074] The host computer 501 is typically a computer or similar device that receives operational data values ​​and environmental data values ​​via a network or by directly connecting to the operational data acquisition unit 10 and the environmental data acquisition unit 20, and processes and analyzes them, including but not limited to: data format conversion, anomaly detection, historical data storage and trend analysis, etc.

[0075] Switch 502 connects the host computer 501 and the display 503, as well as other possible network devices, to establish a local area network or internal communication link. After receiving data packets sent by the host computer 501, switch 502 efficiently forwards them to the correct receiving device based on the destination address of the data packets. In the temperature chamber monitoring system, data may be transmitted in different formats or protocols. The switch can perform protocol conversion to ensure that the data can be correctly interpreted by the display. For example, it can convert TCP / IP data output by the host computer into a video signal format that the display can recognize.

[0076] Display 503 is the terminal device of the results display unit 50, responsible for visualizing the data processed by the host computer 501. The built-in signal processor in display 503 can parse the received data signals and convert them into image and text information. For example, temperature and humidity data may be parsed as a dynamic curve, while water level and power status may be displayed as digital readings or status indicator icons. On display 503, this processed data is presented in the form of charts, numbers, and warning symbols, allowing users to directly see whether the various parameters of the incubator are within the normal range and any possible abnormalities. Furthermore, display 503 can also provide historical data queries and trend analysis to help users better understand the long-term performance of the incubator.

[0077] Through the collaborative work of the above components, the results display unit 50 can display the operating data and environmental status of the incubator to the user in real time and accurately, which facilitates monitoring and maintenance.

[0078] Optionally, in the temperature chamber detection system provided in this application embodiment, the interrupt unit 60 includes: an interrupt request register 601, connected to the temperature chamber to be tested, for receiving an interrupt signal; and an interrupt controller 602, connected to the early warning unit 40, for interrupting the electro-acoustic and light alarm triggered by the early warning unit 40 based on the interrupt signal.

[0079] In an alternative embodiment, Figure 10 This is a schematic diagram of the interrupt unit 60 provided according to an embodiment of this application, as shown below. Figure 10 As shown, the interrupt unit 60 includes an interrupt request register 601 and an interrupt controller 602.

[0080] Interrupt request register 601 is a hardware or software component in interrupt unit 60. It receives interrupt requests issued by the user through the operating interface (such as a touch screen, button or remote control command), or receives signals from inside the system (such as the logic processing unit 30 confirming that the alarm is invalid) (i.e., interrupt signals, such as high-level or low-level pulses, used to instruct the warning unit 40 to stop the alarm or reset), and transmits the interrupt signal to interrupt controller 602 after receiving the interrupt signal.

[0081] The interrupt controller 602 reads the interrupt signal from the interrupt request register 601. After confirming an interrupt request, the interrupt controller 602 determines, according to preset control logic, whether the electro-optical and visual alarm triggered by the warning unit 40 should be interrupted. Simultaneously, the interrupt controller 602 can also monitor the status of the warning unit 40 to confirm whether the alarm has been successfully stopped and restore the status if necessary.

[0082] It should be noted that in some advanced designs, the interrupt controller 602 may also be responsible for communication coordination with other components in the system.

[0083] By working together, the unnecessary actions and resource waste caused by false alarms are reduced.

[0084] It should be noted that the incubator testing system may also include: a camera, a video storage system, a power detector, a backup power system, and a gas leak detection module. The camera is used to observe the status of the items inside the incubator in real time. The video storage system stores the videos and images captured by the camera for later review and analysis by staff. The power detector monitors the power consumption of the incubator in real time to detect abnormal power conditions, such as overload or short circuit. The backup power system ensures the incubator can continue operating during power outages; this system includes, but is not limited to, uninterruptible power supplies (UPS) or generators. The gas leak detection module promptly detects gas leaks within the incubator, preventing safety accidents and damage to items caused by gas leaks.

[0085] The incubator detection system provided in this application embodiment includes an operating data acquisition unit 10 connected to the incubator under test for collecting operating data of the incubator to obtain operating data values; an environmental data acquisition unit 20 connected to the incubator under test for collecting environmental data of the incubator to obtain environmental data values; a logic processing unit 30 connected to the operating data acquisition unit 10 and the environmental data acquisition unit 20 for outputting a target signal to an early warning unit 40 based on a first detection result between a first preset threshold and the operating data value and / or a second detection result between a second preset threshold and the environmental data value; and an early warning unit 40 connected to the logic processing unit 30 for triggering an electro-acoustic and optical alarm based on the target signal. This solves the problem in related technologies where the detection of the incubator's operating status is carried out manually, resulting in low detection efficiency.

[0086] By operating the data acquisition unit 10 and the environmental data acquisition unit 20, the operating data values ​​and environmental data values ​​of the test chamber can be automatically collected during operation. The logic processing unit 30 can then use these data values ​​to promptly detect any abnormalities in the test chamber and trigger an electro-acoustic and visual alarm. This reduces manual intervention, improves work efficiency, and ultimately reduces the potential risks of the test chamber.

[0087] The memory may include non-permanent memory in computer-readable media, such as random access memory (RAM) and / or non-volatile memory, such as read-only memory (ROM) or flash RAM, and the memory includes at least one memory chip.

[0088] Those skilled in the art will understand that embodiments of this application can be provided as methods, systems, or computer program products. Therefore, this application can take the form of a completely hardware embodiment, a completely software embodiment, or an embodiment combining software and hardware aspects. Furthermore, this application can take the form of a computer program product embodied on one or more computer-usable storage media (including but not limited to disk storage, CD-ROM, optical storage, etc.) containing computer-usable program code.

[0089] It should also be noted that the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus. Unless otherwise specified, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes that element.

[0090] Those skilled in the art will understand that embodiments of this application can be provided as methods, systems, or computer program products. Therefore, this application can take the form of a completely hardware embodiment, a completely software embodiment, or an embodiment combining software and hardware aspects. Furthermore, this application can take the form of a computer program product embodied on one or more computer-usable storage media (including, but not limited to, disk storage, CD-ROM, optical storage, etc.) containing computer-usable program code.

[0091] The above are merely embodiments of this application and are not intended to limit the scope of this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the scope of the claims of this application.

Claims

1. A temperature chamber detection system, characterized in that, include: The data acquisition unit (10) is connected to the test chamber and is used to collect the operating data of the test chamber to obtain the operating data value. An environmental data acquisition unit (20) is connected to the test chamber and is used to acquire environmental data in the test chamber to obtain environmental data values. The logic processing unit (30) is connected to the running data acquisition unit (10) and the environmental data acquisition unit (20) and is used to output a target signal to the early warning unit (40) based on the first detection result between the first preset threshold and the running data value and / or the second detection result between the second preset threshold and the environmental data value. The early warning unit (40) is connected to the logic processing unit (30) and is used to trigger an electro-acoustic and optical alarm based on the target signal; The operational data acquisition unit (10) includes: A water level sensor (101) is connected to the temperature chamber to be tested and is used to collect the water level value of the temperature chamber to be tested from the operating data values. A pressure sensor (102) is connected to the temperature chamber to be tested and is used to collect the pressure value of the temperature chamber to be tested from the operating data values. A voltage detector (103) is connected to the temperature chamber to be tested and is used to collect the voltage value of the temperature chamber to be tested from the operating data values. A smoke detector (104) is connected to the temperature chamber to be tested and is used to collect the smoke detection value of the temperature chamber to be tested from the operating data value after the temperature chamber to be tested catches fire. The temperature chamber detection system also includes: a camera, a video storage system, a power detector, a backup power system, and a gas leak detection module.

2. The temperature chamber detection system according to claim 1, characterized in that, The smoke detector (104) includes: A light-emitting element (1041) is connected to the test chamber and is used to generate light after the test chamber catches fire in order to illuminate the smoke; A photosensitive element (1042) is connected to the light-emitting element (1041) and is used to collect the light change value of the smoke when it enters the light path; The signal processing circuit (1043) is connected to the photosensitive element (1042) and is used to output the smoke detection value based on the light change value.

3. The temperature chamber detection system according to claim 1, characterized in that, The environmental data acquisition unit (20) includes: A gas sensor (201) is connected to the test chamber and is used to collect the gas value of the sample in the test chamber from the environmental data values. A temperature sensor (202) is connected to the test chamber and is used to collect the temperature value of the sample in the test chamber from the environmental data values. A humidity sensor (203) is connected to the test chamber and is used to collect the humidity value of the sample in the test chamber from the environmental data values.

4. The temperature chamber detection system according to claim 3, characterized in that, The gas sensor (201) includes: An oxygen sensor (2011) is connected to the test chamber and is used to collect the oxygen content value of the sample in the test chamber from the environmental data values. A carbon dioxide sensor (2012) is connected to the test chamber and is used to collect the carbon dioxide content value of the sample in the test chamber from the environmental data values.

5. The temperature chamber detection system according to claim 1, characterized in that, The logic processing unit (30) includes: A boost module (301) is connected to a logic processing module (302) and is used to provide a drive voltage to the logic processing module (302) to drive the logic processing module (302) to operate. The logic processing module (302) is used to output the target signal based on a first detection result between the first preset threshold and the running data value and / or a second detection result between the second preset threshold and the environmental data value; An undervoltage / overvoltage protection module (303) is connected to the logic processing module (302) and is used to protect the boost module (301).

6. The temperature chamber detection system according to claim 1, characterized in that, The early warning unit (40) includes: A signal acquisition unit (401) is connected to the logic processing unit (30) and is used to acquire the target signal; An alarm (402) is connected to the signal collector (401) and is used to trigger an electro-acoustic and optical alarm signal based on the target signal.

7. The temperature chamber detection system according to claim 1, characterized in that, The temperature chamber detection system also includes: The result display unit (50) is connected to the operation data acquisition unit (10) and the environmental data acquisition unit (20) and is used to display the operation data value and the environmental data value to the target object; An interrupt unit (60) is connected to the warning unit (40) and is used to interrupt the electro-acoustic and light alarm triggered by the warning unit (40) based on an interrupt signal triggered by the target object.

8. The temperature chamber detection system according to claim 7, characterized in that, The result display unit (50) includes: The host computer (501) is connected to the running data acquisition unit (10) and the environmental data acquisition unit (20) and is used to receive the running data value and the environmental data value; A switch (502) is connected between the host computer (501) and the display (503) and is used to convert the format of the running data value and the environmental data value. The display (503) is connected to the switch (502) and is used to display the running data values ​​and the environmental data values ​​to the target object.

9. The temperature chamber detection system according to claim 7, characterized in that, The interrupt unit (60) includes: An interrupt request register (601) is connected to the temperature chamber to be tested and is used to receive the interrupt signal; An interrupt controller (602) is connected to the warning unit (40) and is used to interrupt the electro-acoustic and light alarm triggered by the warning unit (40) based on the interrupt signal.