Remote control induction system and remote control induction lamp

By introducing a remote control sensing system into the lighting control system, the data of the wireless connection and detection module can be used to realize remote adjustment of the lighting load working mode and working parameters, the problem of cumbersome adjustment and inability to achieve preset mode work in the existing system is solved, and the convenience of use and the adaptability of the lighting environment is improved.

CN119997325APending Publication Date: 2025-05-13DONGGUAN BONTECK HARDWARE
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510381303.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-28
Publication Date
2025-05-13

AI Technical Summary

Technical Problem

In the existing lighting control system, the regulator needs to perform tedious working parameters on the lamp, and the knob adjustment can only adjust the working parameters of the lamp, and cannot work in the preset working mode.

Method used

It provides a remotely controlled sensing system, including a detection module, a receiving module, a controller and a remote control, and realizes remote adjustment of the working mode and working parameters of the lighting load through wireless connection, and adjusts it in real time based on human sensing detection data and illuminance detection data.

Benefits of technology

Remote adjustment of lighting load working mode and working parameters is realized, which improves the convenience of use and can be adjusted in real time according to the lighting environment according to the required functions.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN119997325A_ABST
    Figure CN119997325A_ABST
Patent Text Reader

Abstract

The invention discloses a remote control induction system and a remote control induction lamp, and relates to the field of lamp illumination, the control system comprises a detection module, a receiving module, a controller and a remote controller; the remote controller is wirelessly connected with the receiving module; the remote controller is used for sending control instructions to the receiving module; the detection module and the receiving module are both connected with the controller; the detection module is used for acquiring human body induction detection data and illuminance detection data, and the receiving module is used for transmitting a control instruction to the controller; the controller is connected with the lighting load; the controller is used for controlling the lamp to switch working modes according to the control instruction. According to the invention, the human body induction detection data and the illuminance detection data are obtained through the detection module, and the control instruction remotely sent by the remote controller is combined, so that the working mode and the working parameters of the lighting load are remotely adjusted, real-time adjustment can be carried out according to the required functions according to the lighting environment, and the use convenience is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present application relates to the technical field of lamp lighting, and in particular to a remote-controllable sensing system and a remote-control sensing lamp. Background Art

[0002] Lighting control system is a system that uses modern communication technology, computer technology and control technology to intelligently manage the internal and external lighting of buildings. Through real-time monitoring and adjustment of lighting equipment, the lighting effect is optimized, thus achieving the goals of energy saving, environmental protection and comfort.

[0003] In some cases, the induction lamp lights up when the motion detector detects a moving person or object, and turns off directly when the motion detector does not detect a moving person or object. The sensitivity and delay time of the motion detector are adjusted by the control regulator. The existing control regulators all require the adjustment of working parameters on the lamp, which is cumbersome and has poor applicability. In addition, the knob adjustment can only adjust the working parameters of the lamp, and it is impossible to make the lamp work according to the preset working mode. Summary of the invention

[0004] The purpose of this application is to provide a remote-controllable sensing system and a remote-control sensing lamp, which can realize remote adjustment of the working mode and working parameters of the lighting load, can be adjusted in real time according to the required functions based on the lighting environment, and improve ease of use.

[0005] To achieve the above objectives, this application provides the following solutions:

[0006] In the first aspect, the present application provides a remotely controllable sensing system connected to a lighting load, the remotely controllable sensing system comprising: a detection module, a receiving module, a controller and a remote controller; the remote controller is wirelessly connected to the receiving module; the remote controller is used to issue control instructions to the receiving module; the detection module and the receiving module are both connected to the controller; the detection module is used to obtain human body sensing detection data and light illumination detection data; the receiving module is used to transmit control instructions to the controller; the controller is connected to the lighting load; the controller is used to control the lighting load to switch working modes according to the control instructions; the working mode is a mode of changing the working parameters of the lighting load according to the human body sensing detection data and the light illumination detection data.

[0007] In the second aspect, the present application provides a remote-controlled induction lamp, which comprises: a lighting fixture and the remote-controllable induction system described above; the lighting fixture comprises: a lamp housing, a lampshade and a lighting load; the lampshade is fixed to the bottom of the lamp housing; the controller is embedded in the lamp housing; the lighting load is arranged in the lampshade; the detection module and the receiving module are arranged on the outside of the lighting fixture or embedded in the lampshade; the remote control is wirelessly connected to the receiving module; the remote control is used to issue control instructions to the receiving module; the detection module and the receiving module are both connected to the controller; the detection module is used to obtain human body sensing detection data and light intensity detection data; the receiving module is used to transmit control instructions to the controller; the controller is connected to the lighting load; the controller is used to control the lighting load to switch the working mode according to the control instruction; the working mode is a mode of changing the working parameters of the lighting load according to the human body sensing detection data and the light intensity detection data.

[0008] According to the specific embodiments provided in this application, this application discloses the following technical effects:

[0009] This application obtains human body sensing detection data and light intensity detection data through the detection module, and combines it with the control instructions issued remotely by the remote control to realize remote adjustment of the working mode and working parameters of the lighting load. It can be adjusted in real time according to the required functions based on the lighting environment, thereby improving convenience of use. BRIEF DESCRIPTION OF THE DRAWINGS

[0010] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the drawings required for use in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative work.

[0011] Figure 1 A schematic diagram of the structure of a remotely controllable sensing system provided in an embodiment of the present application.

[0012] Figure 2 A schematic diagram of the module circuit connection of the remotely controllable sensing system provided in an embodiment of the present application.

[0013] Figure 3 A circuit diagram of a remotely controllable sensing system provided in an embodiment of the present application.

[0014] Figure 4 A schematic diagram of the structure of the integrated detection control unit provided in the embodiment of the present application Figure 1 .

[0015] Figure 5 A schematic diagram of the structure of the integrated detection control unit provided in the embodiment of the present application Figure 2 .

[0016] Figure 6 A schematic diagram of the structure of a remote control induction lamp provided in an embodiment of the present application Figure 1 .

[0017] Figure 7 A schematic diagram of the structure of a remote control induction lamp provided in an embodiment of the present application Figure 2 .

[0018] Explanation of symbols:

[0019] Detection module-1; human body sensor-11; light sensor-12; controller-2; remote controller-3; parameter adjustment knob-4; receiving module-5; lighting fixture-6; lamp housing-61; lamp cover-62 and lighting load-63. DETAILED DESCRIPTION

[0020] The following will be combined with the drawings in the embodiments of the present application to clearly and completely describe the technical solutions in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of this application.

[0021] In order to make the above-mentioned objects, features and advantages of the present application more obvious and easy to understand, the present application is further described in detail below in conjunction with the accompanying drawings and specific implementation methods.

[0022] Embodiment 1, as Figure 1-Figure 2 As shown, this embodiment provides a remote-controllable sensing system connected to a lighting load, and the remote-controllable sensing system includes: a detection module 1, a receiving module 5, a controller 2 and a remote controller 3; the remote controller 3 is wirelessly connected to the receiving module 5; the remote controller 3 is used to send control instructions to the receiving module 5; the detection module 1 and the receiving module 5 are both connected to the controller 2; the detection module 1 is used to obtain human body sensing detection data and light intensity detection data; the receiving module 5 is used to transmit the control instructions to the controller 2; the controller 2 is connected to the lighting load; the controller 2 is used to control the lamp to switch the working mode according to the control instruction; the working mode is a mode of changing the working parameters of the lighting load according to the human body sensing detection data and the light intensity detection data.

[0023] Furthermore, the working parameters include: any one of infrared detection range, lighting time, delay time, photosensitivity activation threshold, color temperature range and brightness range. Figure 3 Shows the circuit connection diagram of the remote sensing control system.

[0024] Optionally, the detection module 1 and the receiving module 5 are both fixedly arranged inside the controller 2 as (combined into) an integrated detection control unit; Figure 4-Figure 5 A schematic structural diagram of an integrated detection control unit is shown.

[0025] In actual application, the detection module 1, the receiving module 5 and the controller 2 are integrated together as a whole to obtain an integrated detection control unit, which simplifies the structure of the remotely controllable sensing system and improves the system stability.

[0026] Furthermore, the working modes include at least: test mode (single infrared sensing mode), energy-saving mode (ECO mode, i.e., the light is turned on when it senses someone at night, and it will be turned off after the person leaves), night light mode (DIM mode, i.e., the night light is on all night, and all lights are on when it senses someone, and it will be turned on after the person leaves), light control mode (DTD mode, i.e., it detects the surrounding light, controls the lighting load to automatically light up at night, and automatically turns off the light during the day), Reset mode (restoring factory settings, no remote control signal is required, and the sensor can work independently according to its own internal MCU algorithm) and long-light mode (switch mode, i.e., the light remains on all night regardless of day or night).

[0027] Furthermore, the detection module 1 specifically includes: a human body sensor 11 and a photosensor 12; the human body sensor 11 and the photosensor 12 are both connected to the controller 2; the human body sensor 11 is used to perform human body sensing detection and obtain human body sensing detection data; the photosensor 12 is used to perform light intensity detection and obtain light intensity detection data.

[0028] Furthermore, the human body sensor includes at least: any one of an infrared sensor and a microwave module.

[0029] Optionally, the infrared sensor includes at least: a pyroelectric infrared sensor 11 (PIR, Passive Infrared Sensor).

[0030] Furthermore, the photosensor 12 at least includes: a photosensor.

[0031] The photosensitive element at least includes: any one of a photoresistor, a photodiode, and a phototransistor.

[0032] Furthermore, the model of the receiving module 5 at least includes: any one of an infrared receiving module, a WIFI receiving module, a Bluetooth receiving module and an RF module.

[0033] Furthermore, the controller 2 includes: an MCU and a load control unit.

[0034] The MCU is connected to the detection module 1, the receiving module 5 and the load control unit respectively; the MCU is used to send a control drive signal to the load control unit based on the control instruction, the human body sensing detection data and the light intensity detection data.

[0035] Optionally, the load control unit includes at least one of a thyristor, a MOS tube and a relay.

[0036] The load control unit is connected to the lighting load; the load control unit is used to drive the lighting load to switch the working mode according to the control drive signal.

[0037] Optionally, the MCU model includes at least EAST2022-22A.

[0038] Furthermore, the remote controllable sensing system further includes a plurality of parameter adjustment knobs 4, which are all arranged on the outside of the controller 2. The working parameters of the lighting load can be dual-controlled by the plurality of parameter adjustment knobs 4 and the remote controller 3, further improving the application scope of the remote controllable sensing system.

[0039] Table 1 shows the characteristics and specifications of the remote controllable sensing system.

[0040] Table 1 Comparison table of characteristics and specifications of remote control sensing systems (can be increased or decreased)

[0041]

[0042] In actual application, when the remote control sensing system does not receive a new control command from the remote controller 3:

[0043] 1) ECO mode or DIM mode can be selected by switching the power switch twice within 3 seconds.

[0044] 2) Test mode function: During the day or at night (based on the light data and the light threshold to determine whether it is day or night), when the motion stops, the light will turn off or return to 40% brightness within 5 seconds. The test mode lasts for 2 minutes and then automatically enters ECO mode or DIM mode.

[0045] 3) ECO mode function: At dusk, the light will stay on as long as human motion is detected, and will go off after 2 minutes when people leave.

[0046] 4) DIM mode function: At dusk, the light will turn on at low brightness (40% brightness), when human motion is detected, the light will light up at full brightness and will stay on as long as the motion continues, and the light will return to low brightness 2 minutes after no more motion is detected.

[0047] 5) Toggle the power switch three times within 5 seconds to restore factory settings and enter DIM mode after 2 minutes of Test mode.

[0048] 6) Manual long-light mode: Switch the power switch within 2 seconds to remotely control the sensor system to light up for 6 or 8 hours that night.

[0049] When the remote control sensing system receives a new control command from remote controller 3:

[0050] 1) Test mode + automatic mode (ECO mode + DIM mode can be set by the ECO / DIM button on remote control 3) + DTD mode + on / off mode can be set by remote control 3.

[0051] 2) Test Mode Function: During the day or at night, when motion stops, the light will turn off or return to low brightness in about 5 seconds.

[0052] 3) ECO mode function: At dusk, as long as motion is detected, the light will turn on at high brightness. When people leave, the light will turn on for the time you pre-set (adjustable from 1 minute to 10 minutes), and then turn off automatically.

[0053] 3) DIM mode function: At dusk, the light will turn on at low brightness. When motion is detected, the light will turn on at full brightness and will remain on as long as the motion continues. After motion is no longer detected, the light will return to low brightness within the time you pre-set (adjustable from 1 minute to 10 minutes).

[0054] 4)DTD mode Function: The light turns on at high brightness at dusk and turns off automatically at dawn.

[0055] 5) On / off mode (switch mode): Turn on / off the lighting load at high brightness using the remote controller 3.

[0056] 6) In ECO mode or DIM mode, the delay time can be set from 1 minute to 10 minutes via the remote control 3.

[0057] 7) The sensitivity can be set to L (2 meters) or M (5 meters) or H (8 meters) via remote control 3.

[0058] 8) In DIM mode, the low brightness can be adjusted from 15% to 50% via remote control 3.

[0059] 9) In ECO mode, DTD mode or ON / OFF mode, the high brightness can be adjusted from 100% to 50% via remote controller 3.

[0060] 10) Through the "Lux+" and "Lux-" buttons on the remote control 3, the activation brightness (startup LUX) of the photosensitive parts can be adjusted from 10 Lux to 300 Lux.

[0061] 11) The illumination of the light activating lamp for the photosensitive part can be set as required by pressing the "Learn" button on the remote control 3.

[0062] 12) Detection range: Maximum 8M×360° when installed on the ceiling.

[0063] 13) Toggle the power switch three times within 5 seconds or press the "Reset" button on the remote control 3 to restore factory settings and enter DIM mode after 2 minutes in test mode.

[0064] In actual application, the control instructions corresponding to the buttons on the remote controller 3 are as follows:

[0065] ON / OFF button: Enter the ON mode, the light stays on; press the ON / OFF button again to exit the ON mode and return to the function before the ON button is pressed. It has a power-off memory function.

[0066] Reset button: All parameters are restored to factory settings. Factory settings function: The sensor is in DIM mode, the delay time is 2 minutes, the low-level brightness is 40%, and the startup LUX is 50LUX.

[0067] The Test button can sense and turn on the light during the day or at night. After people leave, the light will be turned off or switched to a low brightness level after a delay of 5 seconds ± 3 seconds.

[0068] Auto button: The sensor can detect human activity and control the lighting load only at night. ECO mode and DIM mode can be set in Auto mode.

[0069] DTD button: lights on at night and off during the day.

[0070] Time-button: Set the delay time of ECO mode and DIM mode. Each time you press the button, the delay time decreases by one minute. The adjustment range is 10 minutes to 1 minute.

[0071] Time+ button: Set the delay time of ECO mode and DIM mode. Each time you press the button, the delay time increases by one minute. The adjustment range is 1Min to 10Min.

[0072] ECO / DIM button: Set the single-step brightness in ECO mode or the dual-step brightness in DIM mode.

[0073] When working in TEST mode, ECO mode, DTD mode and ON mode, press the Dim- button to dim the brightness of the lamp by 10% each time, and the adjustment range is 100% to 50%; when working in DIM mode, press the Dim- button to dim the low-level standby brightness of the lamp by 10% each time, and the adjustment range is 50% to 20%.

[0074] When working in TEST mode, ECO mode, DTD mode and ON mode, press the Dim- button to adjust the brightness of the lamp by 10% each time, and the adjustment range is 50% to 100%; when working in DIM mode, press the Dim- button to adjust the low-level standby brightness of the lamp by 10% each time, and the adjustment range is 20% to 50%.

[0075] L button: Set the sensitivity to 30% and the sensing distance to 2 meters ± 1.5 meters.

[0076] M button: Set the sensitivity to 60% and the sensing distance to 5 meters ± 2 meters.

[0077] H button; set the sensitivity to 100% and the sensing distance to 8 meters ± 2 meters.

[0078] Lux-button: Set the startup LUX, 300LUX→200LUX→100LUX→50LUX→15LUX.

[0079] Lux-button: Set the startup LUX, 300LUX→200LUX→100LUX→50LUX→15LUX.

[0080] Learn button: Press and hold for 3 seconds to automatically learn the ambient light currently detected by the photosensitive component as the starting LUX. When the ambient light is lower than this threshold, the sensor starts working, and when it is higher than this threshold, the sensor stops working.

[0081] Embodiment 2, as Figure 6-Figure 7As shown, the present application also discloses a remote-controlled induction lamp, which comprises: a lighting fixture 6 and the remote-controllable induction system described above; the lighting fixture 6 comprises: a lamp housing 61, a lamp shade 62 and a lighting load 63; the lamp shade 62 is fixed to the bottom of the lamp housing 61; the controller 2 is embedded in the lamp housing 61; the lighting load 63 is arranged in the lamp shade 62; the detection module 1 and the receiving module 5 are arranged outside the lighting fixture 6 or embedded in the lamp shade 62; the remote controller 3 is wirelessly connected to the receiving module 5; the remote The controller 3 is used to send control instructions to the receiving module 5; the detection module 1 and the receiving module 5 are both connected to the controller 2; the detection module 1 is used to obtain human body sensing detection data and light illumination detection data; the receiving module 5 is used to transmit the control instructions to the controller 2; the controller 2 is connected to the lighting load 63; the controller 2 is used to control the lighting load 63 to switch the working mode according to the control instruction; the working mode is a mode of changing the working parameters of the lighting load 63 according to the human body sensing detection data and the light illumination detection data.

[0082] Optionally, there is at least one lighting load 63.

[0083] Optionally, the lighting load 63 includes at least an incandescent bulb, an LED bulb and an LED module.

[0084] The technical features of the above embodiments may be combined arbitrarily. To make the description concise, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0085] This article uses specific examples to illustrate the principles and implementation methods of this application. The description of the above embodiments is only used to help understand the method and core ideas of this application. At the same time, for those skilled in the art, according to the ideas of this application, there will be changes in the specific implementation methods and application scope. In summary, the content of this specification should not be understood as limiting this application.

Claims

1. A remotely controllable sensing system connected to a lighting load, characterized in that: The remote controllable sensing system comprises: a detection module, a receiving module, a controller and a remote controller; The remote controller is wirelessly connected to the receiving module; the remote controller is used to send control instructions to the receiving module; The detection module and the receiving module are both connected to the controller; the detection module is used to obtain human body sensing detection data and light illumination detection data; the receiving module is used to transmit control instructions to the controller; The controller is connected to the lighting load; the controller is used to control the lighting load to switch working modes according to the control instruction; the working mode is a mode of changing the working parameters of the lighting load according to the human body sensing detection data and the light illumination detection data.

2. The remote controllable sensing system according to claim 1, characterized in that: The receiving module model includes at least: any one of an infrared receiving module, a WIFI receiving module, a Bluetooth receiving module and an RF module.

3. The remote controllable sensing system according to claim 1, characterized in that: The detection module specifically includes: a human body sensor and a photosensitive sensor; The human body sensor and the light sensor are both connected to the controller; the human body sensor is used to perform human body sensing detection to obtain human body sensing detection data; the light sensor is used to perform light intensity detection to obtain light intensity detection data.

4. The remote controllable sensing system according to claim 3, characterized in that: The human body sensor includes at least: an infrared sensor and a microwave module.

5. The remote controllable sensing system according to claim 3, characterized in that: The photosensitive sensor at least comprises: a photosensitive element; The photosensitive element at least includes: any one of a photoresistor, a photodiode, and a phototransistor.

6. The remote controllable sensing system according to claim 1, characterized in that: The controller comprises: an MCU and a load control unit; The MCU is connected to the detection module, the receiving module and the load control unit respectively; the MCU is used to send a control drive signal to the load control unit based on the control instruction, the human body sensing detection data and the light illumination detection data; The load control unit is connected to the lighting load; the load control unit is used to drive the lighting load to switch working modes according to the control drive signal.

7. The remote controllable sensing system according to claim 1, characterized in that: The remotely controllable sensing system also includes a plurality of parameter adjustment knobs; The plurality of parameter adjustment knobs are all arranged on the outside of the controller.

8. The remote controllable sensing system according to claim 1, characterized in that: The working parameters include: any one of infrared detection range, lighting time, delay time, photosensitivity activation threshold, color temperature range and brightness range.

9. The remote controllable sensing system according to claim 1, characterized in that: The working mode includes at least one of a test mode, a power saving mode, a night light mode, a light control mode, a reset mode and a long light mode.

10. A remote-controlled induction lamp, characterized in that: The remote control induction lamp comprises: a lighting lamp and a remote control induction system according to any one of claims 1 to 9; The lighting fixture comprises: a lamp housing, a lampshade and a lighting load; The lampshade is fixed to the bottom of the lamp housing; the controller is embedded in the lamp housing; the lighting load is arranged in the lampshade; the detection module and the receiving module are arranged outside the lighting fixture or embedded in the lampshade; The remote controller is wirelessly connected to the receiving module; the remote controller is used to send control instructions to the receiving module; The detection module and the receiving module are both connected to the controller; the detection module is used to obtain human body sensing detection data and light illumination detection data; the receiving module is used to transmit control instructions to the controller; The controller is connected to the lighting load; the controller is used to control the lighting load to switch working modes according to the control instruction; the working mode is a mode of changing the working parameters of the lighting load according to the human body sensing detection data and the light illumination detection data.