Die capable of integrating various sensors
By designing a mold that can integrate multiple sensors, and utilizing mounting slots and sensor interfaces to achieve precise positioning and stable connection of sensors, the problems of deviation and high cost in the sensor installation process are solved, thereby improving the accuracy of installation and the flexibility and reliability of the system.
Patent Information
- Application Number
- CN202423070357.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-12
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2034-12-12
AI Technical Summary
Existing sensor installation methods suffer from deviations, high installation costs, lack of flexibility and scalability, and require customization, leading to performance degradation or malfunction.
Design a mold that can integrate multiple sensors, including mounting slots, positioning slots, and sensor interfaces, to ensure accurate sensor positioning and stable connection, and support flexible installation and replacement of multiple sensors.
It achieves high integration and stable connection of sensors, reduces installation costs, improves installation accuracy and system flexibility and reliability, and adapts to the needs of different types of sensors.
Smart Images

Figure CN223512757U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of sensor mold technology, and in particular to a mold that can integrate multiple sensors. Background Technology
[0002] With the advancement of technology, sensor technology has developed rapidly. As the main means of acquiring information in modern information systems, sensors have been widely used in various fields, such as industrial automation, smart homes, and environmental monitoring. Different types of sensors can measure and convert various physical quantities, providing key data inputs for the system. In practical applications, it is often necessary to acquire information on multiple physical quantities simultaneously, which requires the integration of multiple sensors. During the sensor integration process, installation accuracy and stability are crucial. If the sensor installation position is inaccurate or there are deviations during installation, it may lead to a decrease in sensor performance or even failure to function properly. In addition, traditional sensor installation methods often require customization based on the specific sensor model, which not only increases installation costs but also reduces the flexibility and scalability of the system. Utility Model Content
[0003] In view of this, the present invention proposes a mold that can integrate multiple sensors, which can solve the defects of the existing technology, such as deviation in the installation process, high installation cost, lack of flexibility and scalability.
[0004] The technical solution of this utility model is implemented as follows:
[0005] A mold capable of integrating multiple sensors includes a sensor assembly and a mounting component. The mounting component is provided with a mounting groove for accommodating the sensor assembly. One or more positioning grooves are provided on the inner wall of the mounting groove for positioning the sensor assembly during installation. A sensor interface is also provided on the inner wall of the mounting groove for connecting to the sensor assembly mounted on the mounting groove.
[0006] As a further alternative to the mold that can integrate multiple sensors, the sensor assembly includes a touch sensor module, a human body sensor module, and a hand-scanning door control sensor module. The touch sensor module is used to sense the user's touch action, the human body sensor module is used to sense the user's human body action, and the hand-scanning door control sensor module is used to sense hand-scanning action signals and door control signals.
[0007] As a further alternative to the mold capable of integrating multiple sensors, the touch sensor module includes a first rectifier circuit, a first step-down circuit, a touch chip, a first signal control switch, and a first indicator light. The first rectifier circuit is used to convert the input AC power supply into DC power supply. The first step-down circuit is used to reduce the DC power supply voltage to the voltage range in which the touch chip operates. The touch chip controls the on / off state of the signal control switch by detecting the touch signal at the touch point. The first signal control switch is used to control the on / off state of external devices. The first indicator light is used to display the working status of the touch sensor module.
[0008] As a further optional embodiment of the mold capable of integrating multiple sensors, the human body sensing sensor module includes a second rectifier circuit, a second step-down circuit, a human body sensing circuit, a second signal control switch, and a second indicator light. The second rectifier circuit is used to convert the input AC power supply into DC power supply. The second step-down circuit is used to reduce the DC power supply voltage to the operating voltage range of the human body sensing circuit. The human body sensing circuit is used to receive the human body sensing signal generated by the human body sensing head and control the on / off state of the signal control switch according to the signal. The second signal control switch is used to control the on / off state of external devices. The second indicator light is used to display the working status of the human body sensing sensor module.
[0009] As a further optional solution for the mold that can integrate multiple sensors, the hand-scanning door control sensor module includes a third rectifier circuit, a third step-down circuit, a signal receiving and processing circuit, a third signal control switch, and a third indicator light. The third rectifier circuit is used to convert the input AC power supply into DC power supply. The third step-down circuit is used to reduce the DC power supply voltage to the voltage range of the signal receiving and processing circuit. The signal receiving and processing circuit is used to receive the signal triggered by hand-scanning or door control, and control the on / off state of the third signal control switch according to the signal. The third signal control switch is used to control the on / off state of external devices. The third indicator light is used to display the working status of the hand-scanning door control sensor module.
[0010] As a further alternative to the mold that can integrate multiple sensors, the sensor interface includes an electrical connection interface, a wireless signal transmission interface, or an optical fiber interface.
[0011] The beneficial effects of this utility model are as follows: By designing mounting slots on the mounting components to accommodate sensor assemblies, a high degree of sensor integration is achieved. This design allows multiple sensors to be easily replaced and installed in a single mold, reducing installation costs. Furthermore, when a sensor malfunctions or needs replacement, it can be replaced individually without extensive modifications to the entire mold, improving flexibility. One or more positioning slots on the inner wall of the mounting slot ensure the precise position of the sensor assembly during installation. This design not only improves installation accuracy but also ensures the stability and reliability of the sensor during operation. The positioning slots also help prevent the sensor assembly from moving or misaligning during installation, thus avoiding performance degradation or malfunctions due to improper installation. The sensor interface on the inner wall of the mounting slot provides a convenient connection method for the sensor assembly. This design simplifies the connection process between the sensor and the mold, reducing installation difficulty and cost. Simultaneously, the sensor interface ensures a stable and reliable electrical connection between the sensor assembly and the mold, thereby improving the overall performance and reliability of the mold. Due to the high flexibility and scalability of this mold design, it can adapt to various types of sensors. This means that users can select suitable sensors for integration according to their needs, thereby meeting different application scenarios and performance requirements. Attached Figure Description
[0012] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art 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.
[0013] Figure 1 This is a schematic diagram of the mounting component in this utility model;
[0014] Figure 2 This is a circuit diagram of the touch sensor module in this utility model;
[0015] Figure 3 This is a circuit diagram of the human body sensing sensor module in this utility model;
[0016] Figure 4 This is a circuit diagram of the hand-sweeping door control sensor module in this utility model;
[0017] Explanation of reference numerals in the attached drawings: 1. Mounting component; 11. Mounting slot; 12. Positioning slot; 13. Sensor interface. Detailed Implementation
[0018] The technical solutions in the embodiments of this utility model will be clearly and completely described below. Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. 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.
[0019] refer to Figures 1 to 4 A mold capable of integrating multiple sensors includes a sensor assembly and a mounting component 1. The mounting component 1 is provided with a mounting groove 11 for accommodating the sensor assembly. One or more positioning grooves 12 are provided on the inner wall of the mounting groove 11. The positioning grooves 12 are used to position the sensor assembly during installation. A sensor interface 13 is also provided on the inner wall of the mounting groove 11. The sensor interface is used to connect to the sensor assembly installed on the mounting groove 11.
[0020] In this embodiment, the sensor assembly is accommodated by a mounting slot 11 on the mounting component 1, achieving a high degree of sensor integration. This design allows multiple sensors to be easily replaced and installed in a single mold, reducing installation costs. Furthermore, when a sensor malfunctions or needs replacement, it can be replaced individually without extensive modifications to the entire mold, improving flexibility. One or more positioning slots 12 on the inner wall of the mounting slot ensure the precise position of the sensor assembly during installation. This design not only improves installation accuracy but also ensures the stability and reliability of the sensor during operation. The positioning slots 12 also help prevent the sensor assembly from moving or misaligning during installation, thus avoiding performance degradation or malfunctions due to improper installation. The sensor interface 13 on the inner wall of the mounting slot 11 provides a convenient connection method for the sensor assembly. This design simplifies the connection process between the sensor and the mold, reducing installation difficulty and cost. Simultaneously, the sensor interface 13 ensures a stable and reliable electrical connection between the sensor assembly and the mold, thereby improving the overall performance and reliability of the mold. Because this mold design is highly flexible and scalable, it can accommodate various types of sensors. This means that users can select suitable sensors for integration according to their needs, thereby meeting different application scenarios and performance requirements.
[0021] Preferably, the sensor assembly includes a touch sensor module, a human body sensor module, and a hand-scanning door control sensor module. The touch sensor module is used to sense the user's touch action, the human body sensor module is used to sense the user's human body action, and the hand-scanning door control sensor module is used to sense hand-scanning action signals and door control signals.
[0022] In this embodiment, the touch sensor module can accurately sense the user's touch actions, providing an intuitive and sensitive user interface interaction. This instant feedback mechanism can significantly improve the user's sense of control and satisfaction with the device. The human body sensor module can achieve more intelligent responses by sensing the user's human body movements (such as approaching or moving), such as automatically turning on lights and adjusting the air conditioning temperature, thereby improving the comfort and convenience of the living or working environment. The application of the human body sensor module is not limited to improving convenience; it can also be used for security monitoring. For example, in nighttime or low-light environments, it can automatically turn on the lighting when a person approaches, helping to prevent falls and collisions. Therefore, the hand-scanning door control sensor module can enhance security in access control systems. By triggering the door opening mechanism through hand-scanning actions or door control signals, it reduces the risk of leakage of traditional keys or passwords, while providing a more convenient entry and exit experience. Touch sensor modules and human body induction sensor modules can automatically turn off related devices or switch to low-power mode when no one is using them, thereby effectively saving energy consumption. For example, in offices or homes, when no one is detected, electrical appliances such as lights and televisions can be automatically turned off. The hand-scanning door control sensor module can also achieve energy-saving effects in access control systems, such as automatically turning on or off the lighting system by sensing door control signals, reducing unnecessary energy waste.
[0023] Preferably, the touch sensor module includes a first rectifier circuit, a first step-down circuit, a touch chip, a first signal control switch, and a first indicator light. The first rectifier circuit is used to convert the input AC power supply into DC power supply. The first step-down circuit is used to reduce the DC power supply voltage to the voltage range in which the touch chip operates. The touch chip controls the on / off state of the signal control switch by detecting the touch signal of the touch point. The first signal control switch is used to control the on / off state of external devices. The first indicator light is used to display the working status of the touch sensor module.
[0024] In this embodiment, a first rectifier circuit ensures a stable DC power supply for the touch sensor module, avoiding fluctuations and interference that may be caused by AC power, reducing dependence on power type, and improving the versatility and compatibility of the touch sensor module. A first step-down circuit protects the touch chip from damage caused by excessive voltage, ensuring its stable operation, improving energy efficiency, and avoiding unnecessary energy waste. This allows the touch sensor module to adapt to power supplies of different voltage levels, enhancing its flexibility and adaptability. The touch chip enables precise perception and response to user touch actions, improving system interactivity and user experience. The touch chip has high sensitivity and can quickly and accurately detect touch positions, making operation smoother and more convenient. A first signal control switch enables linkage control between the touch sensor module and external devices, improving the overall performance and functionality of the mold. The on / off state of external devices can be controlled by touch actions, making operation more intuitive and convenient. A first indicator light provides intuitive visual feedback, allowing users to easily understand the working status of the touch sensor module, enhancing the reliability and stability of the mold. When the touch sensor module malfunctions or malfunctions, the indicator light can promptly issue a warning signal.
[0025] Preferably, the human body sensing sensor module includes a second rectifier circuit, a second step-down circuit, a human body sensing circuit, a second signal control switch, and a second indicator light. The second rectifier circuit is used to convert the input AC power supply into DC power supply. The second step-down circuit is used to reduce the DC power supply voltage to the operating voltage range of the human body sensing circuit. The human body sensing circuit is used to receive the human body sensing signal generated by the human body sensing head and control the signal control switch to open or close based on the signal. The second signal control switch is used to control the opening or closing of external devices. The second indicator light is used to display the working status of the human body sensing sensor module.
[0026] In this embodiment, a second rectifier circuit ensures a stable DC power supply for the human body sensor module, avoiding fluctuations and interference that may occur with AC power, thereby improving the stability and reliability of the module. A second step-down circuit protects the human body sensing circuit from damage caused by excessive voltage, extending the module's lifespan and enabling the module to adapt to power supplies of different voltage levels, enhancing its versatility and compatibility. Precise voltage regulation ensures the stability and accuracy of the human body sensing circuit. The human body sensing circuit enables accurate perception and response to human movements, improving the interactivity and intelligence level of the mold. The human body sensing circuit features high sensitivity and low power consumption, enabling rapid and accurate detection of human movements while reducing energy waste. A second signal control switch enables the linkage control between the human body sensor module and external devices, improving the overall performance and functionality of the mold. The on / off status of external devices can be controlled by human movements, making operation more intuitive and convenient. A second indicator light provides intuitive visual feedback, allowing users to easily understand the working status of the human body sensor module. When the module malfunctions or malfunctions, the indicator light can promptly issue a warning signal, improving the reliability and safety of the mold.
[0027] Preferably, the hand-scan door control sensor module includes a third rectifier circuit, a third step-down circuit, a signal receiving and processing circuit, a third signal control switch, and a third indicator light. The third rectifier circuit is used to convert the input AC power supply into DC power supply. The third step-down circuit is used to reduce the DC power supply voltage to the voltage range of the signal receiving and processing circuit. The signal receiving and processing circuit is used to receive signals triggered by hand-scanning or door control, and to control the on / off state of the third signal control switch according to the signals. The third signal control switch is used to control the on / off state of external devices. The third indicator light is used to display the working status of the hand-scan door control sensor module.
[0028] In this embodiment, the third rectifier circuit ensures that the hand sweep and door control sensor module obtains a stable and non-fluctuating DC power supply, which is the basis for the stable operation of the module, improves the power utilization efficiency, and reduces the energy consumption and failure rate caused by power fluctuations. The third step-down circuit protects the signal receiving and processing circuit from excessive voltage damage, extends the service life of the module, enables the module to adapt to power supplies of different voltage levels, enhances its versatility and compatibility. The signal receiving and processing circuit realizes the precise sensing and response to hand sweep or door control actions, improves the interactivity and intelligence level of the mold. The signal receiving and processing circuit features high sensitivity and low power consumption, can quickly and accurately detect hand sweep or door control signals, and reduces energy waste at the same time. The third signal control switch realizes the linkage control between the hand sweep and door control sensor module and external devices, improves the overall performance and functionality of the mold. The on / off state of external devices can be controlled through hand sweep or door control actions, making the operation more intuitive and convenient. The third indicator provides intuitive visual feedback, enabling users to conveniently understand the working state of the hand sweep and door control sensor module. When the module fails or malfunctions, the indicator can promptly emit a warning signal, improving the reliability and safety of the mold.
[0029] Preferably, the sensor interface 13 includes an electrical connection interface, a wireless signal transmission interface, or an optical fiber interface.
[0030] In this embodiment, through the physical contact of the electrical connection interface, the electrical connection between the sensor and external devices is realized. The electrical connection interface is one of the most common connection methods in electronic devices, so it has high compatibility and can be conveniently connected to other devices. For some applications that require high-speed data transmission, the electrical connection interface can provide sufficient bandwidth. The manufacturing cost of the electrical connection interface and its related components is relatively low, which helps to reduce the overall cost of the mold. Through the wireless signal transmission interface, the data transmission between the sensor and external devices is realized, which can conveniently achieve remote monitoring and control without laying cables or optical fibers, reducing the complexity of installation and maintenance. New sensors or external devices can be easily added without major modifications to the existing network. Through the optical fiber interface, high-speed and long-distance data transmission between the sensor and external devices is realized. It can support high-speed data transmission and is suitable for applications with high requirements for real-time performance. Optical fiber transmission is not affected by electromagnetic interference, ensuring the stability and accuracy of data transmission. The attenuation of optical fiber transmission is small, enabling long-distance data transmission without intermediate amplification or regeneration of signals. The data transmitted by optical fiber is difficult to be stolen or tampered with, improving the security of data transmission.
[0031] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A mold capable of integrating multiple sensors, characterized in that, The device includes a sensor assembly and a mounting component (1). The mounting component (1) is provided with a mounting groove (11) for accommodating the sensor assembly. One or more positioning grooves (12) are provided on the inner wall of the mounting groove (11). The positioning grooves (12) are used to position the sensor assembly during installation. A sensor interface (13) is also provided on the inner wall of the mounting groove (11). The sensor interface is used to connect to the sensor assembly installed on the mounting groove (11).
2. The mold capable of integrating multiple sensors according to claim 1, characterized in that, The sensor assembly includes a touch sensor module, a human body sensor module, and a hand-scanning door control sensor module. The touch sensor module is used to sense the user's touch action, the human body sensor module is used to sense the user's human body action, and the hand-scanning door control sensor module is used to sense hand-scanning action signals and door control signals.
3. A mold capable of integrating multiple sensors according to claim 2, characterized in that, The touch sensor module includes a first rectifier circuit, a first step-down circuit, a touch chip, a first signal control switch, and a first indicator light. The first rectifier circuit converts the input AC power into DC power, the first step-down circuit reduces the DC power voltage to the operating voltage range of the touch chip, the touch chip controls the on / off state of the signal control switch by detecting the touch signal at the touch point, the first signal control switch controls the on / off state of external devices, and the first indicator light displays the operating status of the touch sensor module.
4. A mold capable of integrating multiple sensors according to claim 2, characterized in that, The human body sensor module includes a second rectifier circuit, a second step-down circuit, a human body sensing circuit, a second signal control switch, and a second indicator light. The second rectifier circuit converts the input AC power into DC power. The second step-down circuit reduces the DC power voltage to the operating voltage range of the human body sensing circuit. The human body sensing circuit receives the human body sensing signal generated by the human body sensing head and controls the on / off state of the signal control switch according to the signal. The second signal control switch controls the on / off state of external devices. The second indicator light displays the operating status of the human body sensor module.
5. A mold capable of integrating multiple sensors according to claim 2, characterized in that, The hand-scan door control sensor module includes a third rectifier circuit, a third step-down circuit, a signal receiving and processing circuit, a third signal control switch, and a third indicator light. The third rectifier circuit converts the input AC power into DC power, the third step-down circuit reduces the DC power voltage to the operating voltage range of the signal receiving and processing circuit, the signal receiving and processing circuit receives signals triggered by hand-scanning or door control, and controls the on / off state of the third signal control switch based on the signals. The third signal control switch controls the on / off state of external devices, and the third indicator light displays the operating status of the hand-scan door control sensor module.
6. A mold capable of integrating multiple sensors according to claim 1, characterized in that, The sensor interface (13) includes an electrical connection interface, a wireless signal transmission interface, or an optical fiber interface.