A detection device and system

CN224707555UActive Publication Date: 2026-09-01YANTAI RAYTRON TECH CO LTD
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Patent Information

Application Number
CN202522112718.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-30
Publication Date
2026-09-01
Estimated Expiration
2035-09-30

AI Technical Summary

Technical Problem

目前的红外热像仪大多只支持红外探测功能,不具备其他光探测功能,用户需要额外使用其他探测装置来实现激光测距等其他光探测功能,难以携带,并且红外热像仪的红外探测功能也无法与其他探测装置配合应用,导致实际探测时存在探测误差等问题,影响用户使用体验

Benefits of technology

[0034]本实用新型提供了一种探测装置,包括红外探测模组、光探测模块、转接模块和连接端口,光探测模块包括至少一个光探测模组,红外探测模组以及光探测模块中的光探测模组均与转接模块连接,经过转接模块的信号整合之后,红外探测模组以及各光探测模组均通过连接端口与电子设备之间连接。利用转接模块和连接端口实现红外探测模组和其他光探测模组之间的集成,使得探测装置可以同时实现红外探测功能,以及其他光探测模组对应的光探测功能,多种光探测功能相互配合,实现高精度检测,并且整个探测装置可以通过连接端口与电子设备连接,最终实现支持多种光探测功能的便携式探测装置,方便用户使用,提升用户体验。

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Abstract

This utility model discloses a detection device and system relating to the field of optical detection. It includes an infrared detection module, an optical detection module, an adapter module, and a connection port. The optical detection module includes at least one optical detection module. The infrared detection module and the optical detection modules within the optical detection module are all connected to the adapter module. After signal integration by the adapter module, the infrared detection module and each optical detection module are connected to electronic devices via the connection port. By utilizing the adapter module and connection port to integrate the infrared detection module with other optical detection modules, the detection device can simultaneously perform infrared detection and the corresponding optical detection functions of other optical detection modules. These multiple optical detection functions work together to achieve high-precision detection. Furthermore, the entire detection device can be connected to electronic devices via the connection port, ultimately realizing a portable detection device supporting multiple optical detection functions, facilitating user operation and improving the user experience.
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Description

Technical Field

[0001] This utility model relates to the field of optical detection, and in particular to a detection device and system. Background Technology

[0002] With the continuous development of optical detection technology, users have increasingly higher requirements for detection devices such as infrared thermal imagers, demanding more and more functions from these devices. Currently, most infrared thermal imagers only support infrared detection and lack other optical detection capabilities. Users need to use additional detection devices to achieve other optical detection functions such as laser ranging, which is inconvenient to carry. Furthermore, the infrared detection function of infrared thermal imagers cannot be used in conjunction with other detection devices, leading to detection errors and other problems during actual detection, thus affecting the user experience. Utility Model Content

[0003] The purpose of this invention is to provide a detection device and system, specifically a portable detection device that supports multiple optical detection functions.

[0004] To solve the above-mentioned technical problems, this utility model provides a detection device, comprising:

[0005] Infrared detection module;

[0006] A light detection module, the light detection module comprising at least one light detection module;

[0007] The adapter module has its first end connected to the output end of the infrared detection module and the output end of each of the optical detection modules in the optical detection module, respectively, for integrating the output signals of the infrared detection module and each of the optical detection modules into a single port signal realized through a single connection port;

[0008] Connection port, used to connect to electronic devices.

[0009] Optionally, the connection port includes:

[0010] Data pins are provided so that the electronic device can obtain detection results from each of the infrared detection modules and the optical detection modules through the data pins of the connection port;

[0011] A power pin is provided so that the electronic device can supply power to the infrared detection module and each of the optical detection modules in the optical detection module through the power pin of the connection port.

[0012] Optionally, the infrared detection module includes:

[0013] An infrared detector, connected to the first end of an infrared system-on-a-chip, is used to receive infrared light signals and convert the infrared light signals into electrical signals;

[0014] The second terminal of the infrared system-on-a-chip is connected to the first terminal of the adapter module, and is used to process the electrical signal output by the infrared detector and then output it.

[0015] Optionally, the light detection module is one or more combinations of a laser detection module, a low-light detection module, and a visible light detection module.

[0016] Optionally, the laser detection module includes:

[0017] A laser detector, connected to the first end of a laser system-on-a-chip, is used to receive laser signals and convert the laser signals into electrical signals;

[0018] The second end of the laser system-on-a-chip is connected to the first end of the adapter module, and is used to process the electrical signal output by the laser detector and then output it.

[0019] Optionally, the low-light detection module includes:

[0020] A low-light detector is connected to the first end of a low-light system-on-a-chip to receive low-light signals and convert the low-light signals into electrical signals;

[0021] The second end of the low-light system-on-a-chip is connected to the first end of the adapter module, and is used to process the electrical signal output by the low-light detector and then output it.

[0022] Optionally, the visible light detection module includes:

[0023] A visible light detector, connected to the first end of a visible light system-on-a-chip, is used to receive visible light signals and convert the visible light signals into electrical signals;

[0024] The visible light system-on-a-chip has its second end connected to the first end of the adapter module, and is used to process and output the electrical signal output by the visible light detector.

[0025] Optionally, the adapter module includes:

[0026] Several signal conversion modules are provided, with their first ends connected one-to-one to the output ends of the infrared detection module and the output ends of each of the optical detection modules in the optical detection module. The signal conversion modules are used to convert the output signals of the corresponding infrared detection module or optical detection module into port signals corresponding to the connection ports.

[0027] An interface expansion module includes an uplink port and several downlink ports. The several downlink ports are connected one-to-one with the second terminals of several signal conversion modules, and the uplink port is connected to the connection port.

[0028] The interface expansion module is used to integrate several port signals connected to several downlink ports into a single port signal.

[0029] Optionally, the connection port is a USB port;

[0030] The signal conversion module is a USB transceiver chip or a USB bus-based adapter chip.

[0031] The interface expansion module is a USB hub.

[0032] Optionally, it also includes a housing; the infrared detection module, the optical detection module, and the adapter module are all disposed inside the housing.

[0033] To address the aforementioned technical problems, this utility model also provides a detection system, including an electronic device and a detection device as described above, wherein the electronic device is connected to the detection device via a connection port.

[0034] This invention provides a detection device, including an infrared detection module, a light detection module, an adapter module, and a connection port. The light detection module includes at least one light detection unit. The infrared detection module and the light detection units within the light detection module are all connected to the adapter module. After signal integration by the adapter module, the infrared detection module and each light detection module are connected to an electronic device via the connection port. By utilizing the adapter module and the connection port to integrate the infrared detection module with other light detection modules, the detection device can simultaneously perform infrared detection and the corresponding light detection functions of other light detection modules. These multiple light detection functions work together to achieve high-precision detection. Furthermore, the entire detection device can be connected to an electronic device via the connection port, ultimately realizing a portable detection device supporting multiple light detection functions, facilitating user operation and improving the user experience.

[0035] This invention also provides a detection system that has the same beneficial effects as the detection device described above. Attached Figure Description

[0036] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the prior art and embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0037] Figure 1 A schematic diagram of the structure of a detection device provided by this utility model;

[0038] Figure 2A schematic diagram of a detection device including an infrared detection module and a laser detection module provided by this utility model;

[0039] Figure 3 A schematic diagram of another detection device including an infrared detection module and a laser detection module provided by this utility model. Detailed Implementation

[0040] The core of this utility model is to provide a detection device and system that integrates an infrared detection module with other optical detection modules using an adapter module and a connection port. This allows the detection device to simultaneously perform infrared detection and optical detection functions corresponding to other optical detection modules. The multiple optical detection functions work together to achieve high-precision detection. Furthermore, the entire detection device can be connected to electronic devices through the connection port, ultimately realizing a portable detection device that supports multiple optical detection functions, making it convenient for users and improving the user experience.

[0041] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of 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 some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.

[0042] See Figure 1 As shown, Figure 1 This utility model provides a structural schematic diagram of a detection device; to solve the above-mentioned technical problems, this utility model provides a detection device, comprising:

[0043] Infrared detection module 1;

[0044] A light detection module, comprising at least one light detection module 2;

[0045] The adapter module 3 has its first end connected to the output end of the infrared detection module 1 and the output ends of each optical detection module 2 in the optical detection module, respectively, and is used to integrate the output signals of the infrared detection module 1 and each optical detection module 2 into a single port signal realized through a single connection port 4.

[0046] Connection port 4 is used for connecting to electronic devices.

[0047] It is easy to understand that, in order to improve the detection performance of the detection device, this application simultaneously includes an infrared detection module 1 and other optical detection modules 2 similar to the infrared module in the detection device. The optical detection modules 2 in the optical detection module are small detection modules capable of performing optical detection functions other than infrared detection. The infrared detection module 1 and each optical detection module 2 in the optical detection module are independent of each other, allowing the detection device to use the infrared detection module 1 to perform infrared detection functions and the optical detection modules 2 in the optical detection module to perform other optical detection functions. At the same time, for ease of application, the detection device also includes an adapter module 3 and a connection port 4. The adapter module 3 integrates the output signals of the infrared detection module 1 and each optical detection module 2 into a single port signal, so that the infrared detection module 1 and all optical detection modules 2 in the optical detection module can be connected to electronic devices through the connection port 4. Ultimately, the entire detection device can be used as an external functional expansion module, such as as a mobile phone plug-in or computer component.

[0048] It should be noted that this application does not impose any special limitations on the specific types and implementation methods of the infrared detection module 1 and the various optical detection modules 2 within the optical detection module. Different types of optical detection modules 2 can be selected according to actual application requirements to achieve flexible and diverse functions in conjunction with the infrared detection module 1. Similarly, this application does not impose any special limitations on the specific types and implementation methods of the adapter module 3 and the connection port 4. The specific implementation of the adapter module 3 can be adaptively configured according to the specific type of the connection port 4. The connection port 4 can be a USB (Universal Serial Bus) port or other types of device ports. The specific type of the connection port 4 can be selected and configured according to the port types supported by the electronic device. This application does not impose any special limitations on the specific types and implementation methods of the electronic devices. They can be smart terminal devices such as mobile phones and PCs (Personal Computers), or other types of electronic devices.

[0049] Furthermore, the infrared detection module 1 and each optical detection module 2 in the optical detection module can be activated simultaneously according to actual application requirements to achieve functional coordination. For example, when the optical detection module 2 in the optical detection module is a laser detection module, the infrared detection module 1 and the laser detection module can work simultaneously. While performing infrared detection, laser ranging is added through laser detection. The infrared detection determines the position of the target object, while the laser ranging accurately measures the distance to the target object. This mutual coordination captures more comprehensive and complete light information, improving detection accuracy and reducing misjudgments through multi-dimensional analysis and data. The infrared detection module 1 and each optical detection module 2 in the optical detection module can also work independently and switch functions under the control of electronic equipment. For example, when the optical detection module 2 in the optical detection module is a visible light detection module, the electronic equipment can first control the infrared detection module 1 to perform infrared detection, and then control the visible light detection module to switch to visible light detection functionality. There are various ways to implement the functional cooperation between the infrared detection module 1 and the various optical detection modules 2 in the optical detection module, as well as the functional application of the detection device. This application does not make any special limitations here.

[0050] This invention provides a detection device, including an infrared detection module 1, a light detection module, an adapter module 3, and a connection port 4. The light detection module includes at least one light detection module 2. Both the infrared detection module 1 and the light detection modules 2 are connected to the adapter module 3. After signal integration by the adapter module 3, the infrared detection module 1 and each light detection module 2 are connected to an electronic device through the connection port 4. By utilizing the adapter module 3 and the connection port 4 to integrate the infrared detection module 1 with other light detection modules 2, the detection device can simultaneously perform infrared detection and the corresponding light detection functions of other light detection modules 2. These multiple light detection functions work together to achieve high-precision detection. Furthermore, the entire detection device can be connected to an electronic device through the connection port 4, ultimately realizing a portable detection device supporting multiple light detection functions, which is convenient for users and improves the user experience.

[0051] See Figure 2 As shown, Figure 2 A schematic diagram of a detection device including an infrared detection module and a laser detection module provided by this utility model; see also Figure 3 As shown, Figure 3 A schematic diagram of another detection device including an infrared detection module and a laser detection module provided by this utility model. As an optional embodiment, connection port 4 includes:

[0052] Data pins are provided so that electronic devices can obtain detection results from infrared detection module 1 and each optical detection module 2 in optical detection module through the data pins of connection port 4;

[0053] Power pins are provided so that electronic devices can supply power to the infrared detection module 1 and each of the optical detection modules 2 in the optical detection module via the power pins of the connection port 4.

[0054] It is understandable that, in order to further reduce costs and improve the portability of the entire detection device, the connection port 4 in the detection device can be implemented as a port with both data pins and power pins. Electronic devices can obtain the output signals of the infrared detection module 1 and each optical detection module 2 in the optical detection module through the data pin of the connection port 4, thereby determining the corresponding detection results; and can execute operations such as issuing commands to the infrared detection module 1 and / or each optical detection module 2 in the optical detection module through the data pin. This application does not make any special limitations here. Meanwhile, the electronic device can power the infrared detection module 1 and each optical detection module 2 in the optical detection module through the power pin. If needed, the adapter module 3 and the connection port 4 can also be powered through this power pin. The connection lines between the modules in the detection device will also be configured with data management lines and power management lines respectively. In this way, the entire detection device can be powered entirely by the electronic device. Furthermore, the detection results of the infrared detection module 1 and each optical detection module 2 in the optical detection module can be directly output to the electronic device through the data pin. Imaging and output of detection results are performed in the electronic device, so that the detection device does not need to be equipped with separate batteries, screens, buttons, and other materials. After connecting to the electronic device, the electronic device realizes the power supply of the detection device, the output of detection results, and the control of detection work through the connection between the detection device and the electronic device.

[0055] Specifically, by configuring the data pins and power pins in connection port 4, the detection device can directly use the connection port 4 to connect with electronic devices to meet the working conditions. The electronic devices can be directly reused to realize the power supply of the detection device, the output of detection results, and the control of detection work, which greatly reduces the design cost and size of the detection device and improves the portability of the detection device.

[0056] As an optional embodiment, the infrared detection module 1 includes:

[0057] Infrared detector 11 is connected to the first end of infrared system-on-a-chip 12 and is used to receive infrared light signals and convert the infrared light signals into electrical signals.

[0058] The second end of the infrared system-on-a-chip 12 is connected to the first end of the adapter module 3, and is used to process the electrical signal output by the infrared detector 11 and then output it.

[0059] It is easy to understand that the infrared detection module 1 includes an infrared detector 11 to detect infrared light signals. The infrared detector 11 converts the detected infrared light signals into optical signals. Considering that the electrical signal output by the infrared detector 11 is a weak, unprocessed raw signal, the infrared detection module 1 also includes an infrared SOC (System On Chip) 12 to process the electrical signal output by the infrared detector 11. The signal processing of the infrared SOC 12 can be one or more combinations of filtering, analog-to-digital conversion, temperature calibration, linearization correction, and zero-point correction. Other types of signal processing can also be performed depending on the actual application scenario; this application does not impose any special limitations on these methods. This application also does not impose any special limitations on the specific types and implementation methods of the infrared detector 11 and the infrared SOC 12.

[0060] Specifically, by combining the infrared detector 11 and the infrared SOC 12, the detection of infrared light signals can be effectively achieved, and the accuracy and reliability of the detection results output to the electronic equipment can be improved, thereby enhancing the detection precision of the entire detection device.

[0061] As an optional embodiment, the light detection module is one or more combinations of a laser detection module, a low-light detection module, and a visible light detection module.

[0062] It is understood that the optical detection module 2 in the optical detection module can be flexibly configured according to actual application requirements. Specifically, the optical detection module 2 can be a laser detection module, a low-light detection module, or a visible light detection module. Multiple different types of optical detection modules 2 can be configured in the optical detection module, and can be flexibly combined according to actual application requirements. For example, when two optical detection modules 2 are configured in the optical detection module, the two optical detection modules 2 can be a laser detection module and a low-light detection module, or a low-light detection module and a visible light detection module, or a visible light detection module and a laser detection module, respectively. When three optical detection modules 2 are configured in the optical detection module, the three optical detection modules 2 can be a laser detection module, a low-light detection module, and a visible light detection module, respectively. This application does not specifically limit the specific types and implementation methods of the laser detection module, low-light detection module, and visible light detection module.

[0063] Specifically, the different implementation methods of the optical detection module 2 in the optical detection module can be flexibly adjusted according to actual application needs. It has high flexibility and strong scalability, enabling the detection device to be widely used in various application scenarios and has a wide range of applications.

[0064] As an optional embodiment, the laser detection module includes:

[0065] Laser detector 21 is connected to the first end of laser system-on-a-chip 22 and is used to receive laser signals and convert the laser signals into electrical signals.

[0066] The laser system-on-a-chip 22 has its second end connected to the first end of the adapter module 3, and is used to process and output the electrical signal output by the laser detector 21.

[0067] As an optional embodiment, the low-light detection module includes:

[0068] The low-light detector is connected to the first end of the low-light system-on-a-chip to receive low-light signals and convert them into electrical signals.

[0069] The low-light system-on-a-chip has its second end connected to the first end of the adapter module 3, and is used to process and output the electrical signal output by the low-light detector.

[0070] As an optional embodiment, the visible light detection module includes:

[0071] The visible light detector is connected to the first end of the visible light system-on-a-chip to receive visible light signals and convert them into electrical signals.

[0072] The visible light system-on-a-chip has its second end connected to the first end of the adapter module 3, and is used to process and output the electrical signal output by the visible light detector.

[0073] It is easy to understand that the optical detection module 2 in the optical detection module can adopt a similar setup as the infrared detection module 1. Specifically, the laser detection module will include a laser detector 21 to detect laser signals. The laser detector 21 will convert the detected laser signals into optical signals. Simultaneously, a laser SOC 22 will be added to the laser detection module to process the electrical signals output by the laser detector 21. The signal processing of the laser SOC 22 can be one or more combinations of filtering, analog-to-digital conversion, temperature calibration, linearization correction, and zero-point correction. Other types of signal processing can also be performed depending on the actual application scenario; this application does not impose any particular limitations here. This application does not impose any particular limitations on the specific types and implementation methods of the laser detector 21 and the laser SOC 22. Low-light detection modules and visible light detection modules can also adopt similar setups, which will not be elaborated upon here. This application does not impose any particular limitations on the specific types and implementation methods of low-light detectors, low-light SOCs, visible light detectors, and visible light SOCs.

[0074] Specifically, by combining a photodetector with a corresponding SOC, the detection of optical signals can be effectively achieved, and the accuracy and reliability of the detection results output to electronic devices can be improved, thereby enhancing the detection precision of the entire detection device.

[0075] As a specific embodiment, taking a light detection module with only a single light detection module 2, and this light detection module 2 being a laser detection module, as an example, the entire working process of the detection device will be described in detail. After the detection device is connected to the electronic device through the connection port 4, the power pin of the connection port 4 will automatically receive the power supply output from the electronic device and then power the entire detection device. The power output from the electronic device will be delivered to the infrared detection module 1 and each light detection module 2 in the light detection module through the adapter module 3, such as... Figure 2 and Figure 3 As shown, the electronic device manages the power supply of the detection device through the power pin of the connection port 4. The power supplied by the electronic device is divided into two paths through the interface expansion module 32 in the adapter module 3. The power is output to the signal conversion module 31 corresponding to the infrared detection module 1 and the signal conversion module 31 corresponding to the laser detection module, respectively. One path powers the infrared detection module 1 through the signal conversion module 31, the infrared SOC 12 and the infrared detector 11 in sequence, and the other path powers the laser detection module through the signal conversion module 31, the laser SOC 22 and the laser detector 21 in sequence.

[0076] After receiving power from the power management system, the infrared SOC12 begins operation. Simultaneously, it powers the infrared detector 11 using the power provided by the electronic device through the power management line. Furthermore, the infrared SOC12 obtains the configuration parameters for the infrared detector 11 from the data pin of connection port 4 via the data management line to configure the infrared detector 11. Once powered on and configured, the infrared detector 11 begins operation, performing infrared light detection and outputting the detection results to the infrared SOC12 via the data management line. Figure 3 As shown, the infrared SOC12 is connected to the signal conversion module 31 via a parallel interface. The infrared detector 11 outputs the detection results to the infrared SOC12 through the parallel port image parameters. After performing signal processing operations such as correction and optimization on the image parameters, the infrared SOC12 sends the data to the signal conversion module 31 through the data management line. The signal conversion module 31 then converts the data from the parallel port image parameters into port signals (such as...). Figure 3 After the USB signal shown, it is sent to the interface expansion module 32. The interface expansion module 32 then sends it to the electronic device using the single port signal of the connection port 4. The image is displayed through mobile phone APP (Application Program), computer PC, etc. The electronic device can also perform operations such as setting the displayed image.

[0077] Furthermore, for the optical detection module 2 in the optical detection module, the controllability of the optical detection module 2 can be achieved through the pre-configuration of the electronic equipment and the interface expansion module 32. The interface expansion module 32 will only supply power to the laser detection module through the power management line when it receives a specific instruction from the electronic equipment indicating that the laser ranging function needs to be turned on. After receiving the power supply, the laser SOC 22 starts to operate and simultaneously supplies power to the laser detector 21 through the power management line using the power provided by the electronic equipment; and the laser SOC 22 will also obtain the configuration parameters of the electronic equipment for the laser detector 21 from the data pin of the connection port 4 through the data management line to configure the parameters of the laser detector 21. After the laser detector 21 is powered on and the parameter configuration is completed, it starts to operate, performs laser ranging, and outputs the detected distance parameters to the laser SOC 22 through the data management line. After the laser SOC 22 performs signal processing operations such as correction and optimization of the distance parameters, it sends the data to the signal conversion module 31 through the data management line. The signal conversion module 31 converts the distance parameters into port signals (such as...). Figure 3 After the USB signal shown, it is sent to the interface expansion module 32. The interface expansion module 32 then uses the single port signal of the connection port 4 to send it to the electronic device, and the electronic device displays the distance result.

[0078] By combining the infrared detection module 1 and the laser detection module, a portable infrared thermal imager supporting laser ranging can be realized. This detection device can be directly controlled and powered by an electronic device connected via port 4, and automatically outputs infrared images using the electronic device. It supports mobile APP and PC image display applications, and supports backend image processing and fusion technology, enabling it to support large infrared array designs such as 640×512 area arrays, resulting in a stronger image quality. It allows users to selectively activate the laser ranging function under electronic control to detect the distance to target objects, facilitating intuitive target distance testing and enriching product application scenarios. It also features a large area array, strong visual impact, and accurate ranging.

[0079] As an optional embodiment, the adapter module 3 includes:

[0080] Several signal conversion modules 31 are connected one-to-one with the output terminal of the infrared detection module 1 and the output terminal of each optical detection module 2 in the optical detection module. The signal conversion module 31 is used to convert the output signal of the corresponding infrared detection module 1 or optical detection module 2 into the port signal corresponding to the connection port 4.

[0081] Interface expansion module 32 includes an uplink port and several downlink ports. The several downlink ports are connected one-to-one with the second terminals of several signal conversion modules 31, and the uplink port is connected to the connection port 4.

[0082] The interface expansion module 32 is used to integrate several port signals connected to several downlink ports into a single port signal.

[0083] It is understandable that, considering the different output signal methods of different types of optical detection modules (including infrared detection modules), the adapter module 3 first sets up a signal conversion module 31 directly connected to the optical detection module 2. This module first converts the output signals of the infrared detection module 1 and each optical detection module 2 into port signals that match the connection port 4 and are supported for transmission by the connection port 4. Then, the interface expansion module 32 is used to integrate the infrared detection module 1 with each optical detection module 2 in the optical detection module, integrating the output signals corresponding to multiple optical detection modules 2 into a single port signal, so that the detection device can be connected to the electronic device through a single connection port 4. This application does not specifically limit the specific type and implementation method of the signal conversion module 31 and the interface expansion module 32. They can be selected according to the specific type of the connection port 4 and the actual situation of the output signals of the optical detection modules 2. Assuming that N optical detection modules 2 are set in the optical detection module 2, then N+1 signal conversion modules 31 need to be set up, corresponding one-to-one with the infrared detection module 1 and the N optical detection modules 2.

[0084] Specifically, signal conversion module 31 and interface expansion module 32 are used to realize signal conversion and interface expansion respectively, so as to integrate the output signals of each optical detection module 2 in the infrared detection module 1 and the optical detection module into the connection port 4, realizing a single-port multi-functional detection device.

[0085] As an optional embodiment, connection port 4 is a USB port;

[0086] The signal conversion module 31 is a USB transceiver chip or a USB bus-based adapter chip.

[0087] Interface expansion module 32 is a USB hub.

[0088] It's easy to understand that electronic devices often use smart terminal devices such as mobile phones or computers. Most of these smart terminal devices currently support USB interfaces, so connection port 4 can be implemented using a USB port. Correspondingly, signal conversion module 31 needs to convert the output signals of infrared detection module 1 and light detection module 2 into USB signals. Therefore, it can be implemented using a USB transceiver chip or a USB bus-based adapter chip. Interface expansion module 32 needs to expand the USB port, which can be implemented using a USB hub. In this case, the entire detection device can connect to smart terminal devices such as mobile phones or computers through a single USB port, directly plugged into the phone or computer for application, and based on the USB port, implement OTG (USB On-The-Go) dominated by the electronic device, achieving intelligent and controllable detection. Figure 3 As shown, considering that the infrared SOC12 uses a parallel port to output signals, a USB transceiver chip U1 is used to implement its corresponding signal conversion module 31. The laser SOC22 uses RXD and TXD to output signals, so a USB bus-based adapter chip U2 is used to implement its corresponding signal conversion module 31. The USB HUB is implemented using a 1-input, 2-output USB hub U3, and a USB port is implemented through a connector J1.

[0089] Specifically, a universal USB port can be used to connect port 4, facilitating plug-and-play between the detection device and electronic equipment. The USB port also supports bidirectional data transmission and integrated power supply, ensuring the effective implementation of data management and power management lines between the detection device and the device.

[0090] As an optional embodiment, it also includes a housing; the infrared detection module 1, the light detection module 2 and the adapter module 3 are all disposed inside the housing.

[0091] To solve the above-mentioned technical problems, this utility model also provides a detection system, including an electronic device and a detection device as described above, wherein the electronic device is connected to the detection device through a connection port.

[0092] For a description of the detection system provided by this utility model, please refer to the embodiments of the detection device described above. This utility model will not be described again here.

[0093] The various embodiments described in this specification are presented in a progressive manner, with each embodiment focusing on its differences from other embodiments. Similar or identical parts between embodiments can be referred to interchangeably. It should also be noted that in this specification, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, 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 a process, method, article, or apparatus. Without further limitations, 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 said element.

[0094] The above description of the disclosed embodiments enables those skilled in the art to make or use the present invention. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A detection device, characterized in that, include: Infrared detection module; A light detection module, the light detection module comprising at least one light detection module; The adapter module has its first end connected to the output end of the infrared detection module and the output end of each of the optical detection modules in the optical detection module, respectively, for integrating the output signals of the infrared detection module and each of the optical detection modules into a single port signal realized through a single connection port; Connection port, used to connect to electronic devices.

2. The detection device according to claim 1, characterized in that, The connection port includes: Data pins are provided so that the electronic device can obtain detection results from each of the infrared detection modules and the optical detection modules through the data pins of the connection port; A power pin is provided so that the electronic device can supply power to the infrared detection module and each of the optical detection modules in the optical detection module through the power pin of the connection port.

3. The detection device according to claim 1, characterized in that, The infrared detection module includes: An infrared detector, connected to the first end of an infrared system-on-a-chip, is used to receive infrared light signals and convert the infrared light signals into electrical signals; The second terminal of the infrared system-on-a-chip is connected to the first terminal of the adapter module, and is used to process the electrical signal output by the infrared detector and then output it.

4. The detection device according to claim 1, characterized in that, The optical detection module is one or more of the following: laser detection module, low-light detection module, and visible light detection module.

5. The detection device according to claim 4, characterized in that, The laser detection module includes: A laser detector, connected to the first end of a laser system-on-a-chip, is used to receive laser signals and convert the laser signals into electrical signals; The second end of the laser system-on-a-chip is connected to the first end of the adapter module, and is used to process the electrical signal output by the laser detector and then output it.

6. The detection device according to claim 4, characterized in that, The low-light detection module includes: A low-light detector is connected to the first end of a low-light system-on-a-chip to receive low-light signals and convert the low-light signals into electrical signals; The second end of the low-light system-on-a-chip is connected to the first end of the adapter module, and is used to process the electrical signal output by the low-light detector and then output it.

7. The detection device according to claim 4, characterized in that, The visible light detection module includes: A visible light detector, connected to the first end of a visible light system-on-a-chip, is used to receive visible light signals and convert the visible light signals into electrical signals; The visible light system-on-a-chip has its second end connected to the first end of the adapter module, and is used to process and output the electrical signal output by the visible light detector.

8. The detection device according to any one of claims 1 to 7, characterized in that, The adapter module includes: Several signal conversion modules are provided, with their first ends connected one-to-one to the output ends of the infrared detection module and the output ends of each of the optical detection modules in the optical detection module. The signal conversion modules are used to convert the output signals of the corresponding infrared detection module or optical detection module into port signals corresponding to the connection ports. An interface expansion module includes an uplink port and several downlink ports. The several downlink ports are connected one-to-one with the second terminals of several signal conversion modules, and the uplink port is connected to the connection port. The interface expansion module is used to integrate several port signals connected to several downlink ports into a single port signal.

9. The detection device according to claim 8, characterized in that, The connection port is a USB port; The signal conversion module is a USB transceiver chip or a USB bus-based adapter chip. The interface expansion module is a USB hub.

10. The detection device according to any one of claims 1 to 7, characterized in that, It also includes a housing; the infrared detection module, the optical detection module, and the adapter module are all disposed inside the housing.

11. A detection system, characterized in that, It includes an electronic device and a detection device as described in any one of claims 1-10, wherein the electronic device is connected to the detection device via a connection port.