Wireless culture monitoring device
By integrating carbon dioxide, oxygen, and temperature and humidity sensors into the wireless cultivation monitoring device, the problem of the inability to monitor carbon dioxide and humidity in existing technologies has been solved, enabling real-time display and monitoring of multiple parameters and improving ease of operation.
Patent Information
- Application Number
- CN202520409482.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-10
- Publication Date
- 2026-03-06
- Estimated Expiration
- 2035-03-10
AI Technical Summary
Existing wireless culture monitoring devices cannot simultaneously monitor carbon dioxide concentration and humidity in culture tanks, and the parameter information collected by the sensors cannot be integrated and displayed on the display screen of the culture monitoring device, resulting in inconvenience in operation.
A wireless culture monitoring device was designed, which includes a carbon dioxide sensor, an oxygen sensor, and a temperature and humidity sensor. It can simultaneously monitor multiple parameters in the culture tank and integrate these parameters to display them on the incubator's screen through a data processing module.
It enables comprehensive monitoring of carbon dioxide concentration, oxygen concentration, gas pressure, temperature, and humidity inside the culture tank, allowing users to view and operate it in a timely manner.
Smart Images

Figure CN223974096U_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of cell or microbial culture technology, and particularly relates to a wireless culture monitoring device. Background Technology
[0002] Wireless culture monitoring is a method that uses wireless communication technology to monitor the cell or microbial culture process in real time. It primarily uses sensors to collect key parameters in the culture environment (such as temperature, pH, dissolved oxygen, and CO2 concentration) and wirelessly transmits the data to a monitoring system. This helps users monitor the culture status in real time and optimize experimental conditions. Existing wireless culture monitoring devices can only monitor one or a few parameters among oxygen concentration, internal pressure, and temperature in the culture vessel. They cannot simultaneously monitor carbon dioxide concentration and humidity. However, monitoring carbon dioxide concentration and humidity in the culture vessel is also very important, especially under certain culture conditions, where changes in carbon dioxide concentration and humidity can significantly affect the growth and metabolism of the culture.
[0003] In addition, existing wireless culture monitoring devices have the problem that the parameter information collected by the sensors inside the culture tank cannot be integrated and displayed on the display screen of the culture monitoring device. Users need to view the data on the monitoring module separately, which causes inconvenience in operation.
[0004] In view of this, the present invention proposes a wireless culture monitoring device. Utility Model Content
[0005] To address the shortcomings of related technologies, this invention provides a wireless culture monitoring device that can simultaneously monitor multiple parameters in a culture tank, including oxygen concentration, carbon dioxide concentration, temperature, humidity, and pressure. Furthermore, it can integrate and display the monitoring data on the incubator's display screen for convenient observation and use by the user.
[0006] This utility model provides a wireless cultivation monitoring device, including: a transmitter and a receiver. The transmitter includes a monitoring module, a power supply module and a data processing module. The monitoring module is installed on the monitored object or attached to the body of the transmitter and is used to monitor the controlled object. The power supply module is connected to an external power supply and provides sufficient power to the transmitter.
[0007] The data processing module is connected to the monitoring module to receive and process the data acquired by the monitoring module; the monitoring module includes multiple sensors, including a carbon dioxide sensor, an oxygen sensor, and a temperature and humidity sensor.
[0008] The receiving unit is electrically or signal-connected to the transmitting unit. The receiving unit includes a data acquisition module and a display module. The data acquisition module is electrically connected to the display module. The data acquisition module includes a data transmitter and a connector. The data transmitter transmits data to the display module through the connector.
[0009] Preferably, the carbon dioxide sensor, oxygen sensor, and temperature and humidity sensor are all electrically connected to the data processing module, and the carbon dioxide sensor, oxygen sensor, and temperature and humidity sensor are connected in parallel with each other.
[0010] Preferably, the launch unit also includes a support body, which is a plate-shaped structure, and the monitoring module, power supply module and data processing module are all installed on the support body.
[0011] Preferably, the carbon dioxide sensor and the oxygen sensor are symmetrically installed at both ends of the support body, and the temperature and humidity sensor is installed in the middle of the support body. The carbon dioxide sensor, the oxygen sensor, and the temperature and humidity sensor are all detachably connected to the transmitter.
[0012] Preferably, the power supply module includes a charging interface and a power supply battery. The charging interface is electrically connected to an external power source and stores the power in the power supply battery.
[0013] Preferably, the power supply battery is located at the lower part of the support body, and the temperature and humidity sensor is located at the upper part of the support body, with the power supply battery and the temperature and humidity sensor arranged opposite each other.
[0014] Preferably, the data processing module includes a data processor, which is electrically or signal-connected to the carbon dioxide sensor, oxygen sensor, and temperature and humidity sensor. The data processor processes the gas parameters acquired by each sensor into gas data.
[0015] Preferably, the transmitter also includes a switch, which is detachably mounted on the support body.
[0016] Preferably, the switch includes a contact part and a control part. The contact part is located on the upper part of the support body and is connected to the control part. The contact part can extend and retract along the installation direction of the control part. The switch is used to control the start and stop of signal transmission between the transmitter and receiver.
[0017] Preferably, the data transmitter includes a data input interface connected to the transmitter; the data input interface receives and transmits gas data transmitted by the transmitter; the connector includes a plug that is plugged into the incubator.
[0018] Based on the above technical solution, the embodiments of this utility model have the following technical advantages compared with the prior art:
[0019] 1. This utility model, by setting up a carbon dioxide sensor, an oxygen sensor, and a temperature and humidity sensor, can simultaneously monitor multiple gas parameters in the incubator, including carbon dioxide concentration, oxygen concentration, gas pressure, temperature, and humidity. The carbon dioxide concentration is detected and obtained by the carbon dioxide sensor, the oxygen concentration and gas pressure are detected and obtained by the oxygen sensor, and the temperature and humidity are detected and obtained by the temperature and humidity sensor. Through the monitored parameters, the biological culture environment in the incubator can be monitored more comprehensively.
[0020] 2. This utility model also includes a receiving unit, which includes a data acquisition module and a display module. The data acquisition module and the display module are electrically connected. The data acquisition module includes a data transmitter and a connector. The data transmitter transmits data to the display module through the connector. The display module can simultaneously display multiple gas parameters such as carbon dioxide concentration, oxygen concentration, gas pressure, temperature and humidity, which is convenient for users to view or export for use in a timely manner. Attached Figure Description
[0021] The accompanying drawings are provided to further illustrate the present invention and form part of this application. The illustrative embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an undue limitation of the present invention.
[0022] In the attached diagram:
[0023] Figure 1 This is a schematic diagram of the structure of the launching part in this utility model;
[0024] Figure 2 This is a schematic diagram of the receiving part in this utility model.
[0025] In the picture:
[0026] 10. Transmitter; 101. Monitoring module; 1011. Carbon dioxide sensor; 1012. Oxygen sensor; 1013. Temperature and humidity sensor; 102. Power supply module; 1021. Charging interface; 1022. Power supply battery; 103. Data processing module; 104. Switch; 20. Receiver; 201. Acquisition module; 2011. Data transmitter; 2012. Connector; 2013. Support plate. Detailed Implementation
[0027] The technical solutions in the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of this utility model without creative effort are within the scope of protection of this utility model.
[0028] In the description of this utility model, it should be understood that the terms "center", "lateral", "longitudinal", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", and "outer" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0029] The terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined as "first," "second," or "third" may explicitly or implicitly include one or more of that feature.
[0030] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.
[0031] To address the problems in existing wireless culture monitoring devices that cannot monitor carbon dioxide concentration and humidity in culture tanks, and that the data detected by the detector cannot be displayed in a timely manner, this invention provides a wireless culture monitoring device.
[0032] As attached Figure 1-2 As shown, a wireless cultivation monitoring device includes: a transmitter 10 and a receiver 20. The transmitter 10 includes a monitoring module 101, a power supply module 102, and a data processing module 103. The monitoring module 101 is installed on the monitored object or attached to the transmitter 10 body. The power supply module 102 is connected to an external power source and provides sufficient power to the transmitter 10. The data processing module 103 is connected to the monitoring module 101 and receives and processes the data acquired by the monitoring module 101. The monitoring module 101 includes multiple sensors, including a carbon dioxide sensor 1011, an oxygen sensor 1012, and a temperature and humidity sensor 1013. The receiver 20 is electrically or signal-connected to the transmitter 10. The receiver 20 includes an acquisition module 201 and a display module. The acquisition module 201 is electrically connected to the display module. The acquisition module 201 includes a data transmitter 2011 and a connector 2012. The data transmitter 2011 transmits data to the display module through the connector 2012.
[0033] Obviously, this application sets up multiple monitoring sensors, including a carbon dioxide sensor 1011, an oxygen sensor 1012, and a temperature and humidity sensor 1013. The carbon dioxide sensor 1011 can detect and acquire the carbon dioxide concentration value in the culture tank, the oxygen sensor 1012 can detect and acquire the oxygen concentration and gas pressure value in the culture tank, and the temperature and humidity sensor 1013 can detect and acquire the temperature and humidity in the culture tank. It can simultaneously monitor five gas parameters in the culture tank: carbon dioxide concentration, oxygen concentration, gas pressure, temperature, and humidity, and can more comprehensively monitor various status parameters in the incubator.
[0034] As an example of this application, see the attached document. Figure 1 As shown, the transmitter 10 includes a monitoring module 101, a power supply module 102, and a data processing module 103. The monitoring module 101 is installed on the monitored object or attached to the transmitter 10 body and is used to monitor the controlled object. The power supply module 102 is connected to an external power source and provides sufficient power to the transmitter 10. The data processing module 103 is connected to the monitoring module 101 and receives and processes the data acquired by the monitoring module 101.
[0035] Furthermore, the monitoring module 101 includes multiple sensors, including a carbon dioxide sensor 1011, an oxygen sensor 1012, and a temperature and humidity sensor 1013. These sensors can monitor key parameters such as carbon dioxide concentration, oxygen concentration, gas pressure, temperature, and humidity, and transmit them to the display module for intelligent display, so that researchers can understand and control the culture environment in a timely and comprehensive manner.
[0036] Carbon dioxide sensor 1011, oxygen sensor 1012, and temperature and humidity sensor 1013 are all electrically connected to data processing module 103, and are connected in parallel. Clearly, this parallel connection allows each sensor to perform independent monitoring without interfering with others, while simultaneously monitoring multiple parameters to meet the multi-dimensional monitoring needs in complex environments. Furthermore, this installation configuration ensures that if a single sensor fails or malfunctions, the others can continue to operate normally, improving the reliability and stability of the system.
[0037] As an embodiment of this application, carbon dioxide sensor 1011 and oxygen sensor 1012 are symmetrically installed at both ends of the support body, and temperature and humidity sensor 1013 is installed in the middle of the support body. Carbon dioxide sensor 1011, oxygen sensor 1012, and temperature and humidity sensor 1013 are all detachably connected to the transmitter.
[0038] The carbon dioxide sensor 1011, oxygen sensor 1012, and temperature and humidity sensor 1013 can be detachably connected to the support body. Optionally, the detachable connection includes any one or more of the following: threaded connection, snap-fit connection, plug-in connection, and fastener connection. Those skilled in the art can make the specific selection according to the actual needs during installation.
[0039] The operation of the monitoring module 101 requires the power supply module 102 to provide sufficient power. The power supply module 102 includes a charging interface 1021 and a power supply battery 1022. The charging interface 1021 is electrically connected to an external power source and stores the power in the power supply battery 1022.
[0040] Furthermore, the power supply battery 1022 is located at the lower part of the support body, and the temperature and humidity sensor 1013 is located at the upper part of the support body, with the power supply battery 1022 and the temperature and humidity sensor 1013 arranged opposite each other vertically. The power supply module 102 can ensure that the device can still work normally in the event of a power outage or movement, without affecting the normal monitoring operation of the sensor, thus saving installation space and improving space utilization.
[0041] As an embodiment of this application, the transmitting unit 10 further includes a data processing module 103, which is connected to the monitoring module 101 and receives and processes the data acquired by the monitoring module 101. The data processing module 103 can receive and process various parameter data detected by multiple sensors, and translate the various parameter data into the required gas data and send it to the receiving unit 20.
[0042] The data processor can quickly process the gas parameters collected by various sensors and output usable gas data, thus improving the efficiency and accuracy of data processing.
[0043] Specifically, the data processing module 103 includes a data processor, which is electrically or signal-connected to the carbon dioxide sensor 1011, oxygen sensor 1012, and temperature and humidity sensor 1013. The data processor processes the gas parameters acquired by each sensor into gas data. For example, the signal connection methods include, but are not limited to, Bluetooth, Wi-Fi, etc. The data processor and the sensors can interact wirelessly, ensuring the stability and reliability of data transmission.
[0044] As a further embodiment of this application, the launching unit 10 also includes a support body, which is a plate-shaped structure. The monitoring module 101, the power supply module 102, and the data processing module 103 are all mounted on the support body. The plate-shaped structure design makes the layout of the monitoring module 101, the power supply module 102, and the data processing module 103 more reasonable, improving the overall stability and durability of the device.
[0045] As an embodiment of this application, the transmitter 10 also includes a switch 104, which is detachably mounted on the support body. This facilitates the user's control of starting and stopping the device, improves operational convenience, and avoids unnecessary energy consumption.
[0046] Furthermore, the switch 104 includes a contact portion and a control portion. The contact portion is located on the upper part of the support body and is connected to the control portion. The contact portion can extend and retract along the installation direction of the control portion. The switch 104 is used to control the start and stop of signal transmission between the transmitter 10 and the receiver 20. In addition, the user can adjust the installation position of the switch 104 according to actual needs to extend the service life of the device.
[0047] As attached Figure 2 As shown, the wireless cultivation monitoring device also includes a receiving unit 20, which receives and displays the data monitored and processed by the transmitting unit 10 in a timely manner. The receiving unit 20 includes a data acquisition module 201 and a display module. The data acquisition module 201 is electrically connected to the display module. The data acquisition module 201 includes a data transmitter 2011 and a connector 2012. The data transmitter 2011 transmits the data to the display module through the connector 2012.
[0048] The data transmitter 2011 includes a data input interface connected to the transmitter 10; the data input interface receives and transmits gas data transmitted by the transmitter 10; the connector 2012 includes a plug that is inserted into the incubator. The receiver 20 is electrically connected to the incubator via the connector 2012, thereby receiving and transmitting gas data. A display module is provided on the incubator, and the gas data is displayed through the display module.
[0049] The acquisition module 201 also includes a carrier plate 2013, on which the data transmitter 2011 and the connector 2012 are mounted and fixed. The data transmitter 2011 and the connector 2012 are installed and fixed through the carrier plate 2013.
[0050] The wireless culture monitoring device described in this application can be installed in a culture vessel, which provides a culture environment for biological samples. The wireless monitoring device can monitor various environmental indicators in the culture vessel in real time. Through modular layout, wireless transmission, and efficient data processing, it achieves comprehensive monitoring of various indicators in the culture vessel, including carbon dioxide concentration, oxygen concentration, gas pressure, temperature, and humidity. These indicators are displayed in a timely manner through a display module, allowing users to monitor the various indicators within the culture vessel in real time.
[0051] As can be seen from the above embodiments, the technical solution of this utility model achieves the following technical effects:
[0052] This invention, by setting up a carbon dioxide sensor 1011, an oxygen sensor 1012, and a temperature and humidity sensor 1013, can simultaneously monitor multiple gas parameters in the incubator, including carbon dioxide concentration, oxygen concentration, gas pressure, temperature, and humidity. The carbon dioxide concentration is detected and obtained by the carbon dioxide sensor 1011, the oxygen concentration and gas pressure are detected and obtained by the oxygen sensor 1012, and the temperature and humidity are detected and obtained by the temperature and humidity sensor 1013, which can more comprehensively monitor various status parameters in the incubator.
[0053] This utility model also includes a receiving unit 20, which includes a data acquisition module 201 and a display module. The data acquisition module 201 is electrically connected to the display module. The data acquisition module 201 includes a data transmitter 2011 and a connector 2012. The data transmitter 2011 transmits data to the display module through the connector 2012. The display module can simultaneously display multiple gas parameters such as carbon dioxide concentration, oxygen concentration, gas pressure, temperature, and humidity, making it convenient for users to view or export them in a timely manner.
[0054] Finally, it should be noted that the various embodiments in this specification are described in a progressive manner, with each embodiment focusing on the differences from other embodiments. The same or similar parts between the various embodiments can be referred to each other.
[0055] The above embodiments are only used to illustrate the technical solution of this utility model and not to limit it; although the utility model has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications can still be made to the specific implementation of this utility model or equivalent substitutions can be made to some technical features without departing from the spirit of the technical solution of this utility model, and all such modifications and substitutions should be covered within the scope of the technical solution claimed by this utility model.
Claims
1. A wireless culture monitoring device, characterized in that, The application relates to a wireless transmission and receiving device for monitoring the gas parameters of a culture box. The device comprises a transmitting part and a receiving part, the transmitting part comprises a monitoring module, a power supply module and a data processing module, the monitoring module is installed on a monitored object or attached to the body of the transmitting part, the power supply module is connected with an external power supply and provides sufficient power for the transmitting part; the data processing module is connected with the monitoring module, receives and processes the data obtained by the monitoring module; the monitoring module comprises a plurality of sensors, the plurality of sensors comprise a carbon dioxide sensor, an oxygen sensor and a temperature and humidity sensor; the receiving part is electrically connected or signal-connected with the transmitting part, the receiving part comprises a collecting module and a display module, the collecting module is electrically connected with the display module, the collecting module comprises a data transmitter and a connecting piece, the data transmitter transmits data to the display module through the connecting piece.
2. The wireless culture monitoring device of claim 1, wherein, The carbon dioxide sensor, the oxygen sensor and the temperature and humidity sensor are electrically connected with the data processing module, and the carbon dioxide sensor, the oxygen sensor and the temperature and humidity sensor are connected in parallel with each other.
3. The wireless culture monitoring device of claim 1, wherein, The transmitting part further comprises a supporting body, the supporting body is in a plate-shaped structure, the monitoring module, the power supply module and the data processing module are all installed on the supporting body.
4. The wireless culture monitoring device of claim 3, wherein, The carbon dioxide sensor and the oxygen sensor are symmetrically installed at two ends of the supporting body, the temperature and humidity sensor is installed at the middle part of the supporting body, and the carbon dioxide sensor, the oxygen sensor and the temperature and humidity sensor are detachably connected with the transmitter.
5. The wireless culture monitoring device of claim 4, wherein, The power supply module comprises a charging interface and a power supply battery, the charging interface is electrically connected with an external power supply and stores the electric quantity in the power supply battery.
6. The wireless culture monitoring device of claim 5, wherein, The power supply battery is arranged at the lower part of the supporting body, and the temperature and humidity sensor is arranged at the upper part of the supporting body, the power supply battery and the temperature and humidity sensor are arranged oppositely.
7. The wireless culture monitoring device of claim 5, wherein, The data processing module comprises a data processor, the data processor is electrically connected or signal-connected with the carbon dioxide sensor, the oxygen sensor and the temperature and humidity sensor, and the data processor outputs and processes the gas parameters obtained by each sensor into gas data.
8. The wireless culture monitoring device of claim 1, wherein, The transmitting part further comprises a switch, the switch is detachably installed on the supporting body.
9. The wireless culture monitoring device of claim 8, wherein, The switch comprises a contact part and a control part, the contact part is located at the upper part of the supporting body, the contact part is connected with the control part, the contact part can be extended and contracted along the installation direction of the control part, and the switch is used for controlling the start and stop of the signal transmission between the transmitting part and the receiving part.
10. The wireless culture monitoring device of claim 1, wherein, The data transmitter comprises a data input interface, the data input interface is connected with the transmitting part, the data input interface receives and transmits the gas data transmitted by the transmitting part, the connecting piece comprises a plug, and the plug is plugged into a culture box.