WO2012095016A1 - 具有电磁波无线通信模块的感应式照明装置以及应用于其中的控制方法 - Google Patents

具有电磁波无线通信模块的感应式照明装置以及应用于其中的控制方法 Download PDF

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Publication number
WO2012095016A1
WO2012095016A1 PCT/CN2012/070296 CN2012070296W WO2012095016A1 WO 2012095016 A1 WO2012095016 A1 WO 2012095016A1 CN 2012070296 W CN2012070296 W CN 2012070296W WO 2012095016 A1 WO2012095016 A1 WO 2012095016A1
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WO
WIPO (PCT)
Prior art keywords
inductive
wireless communication
communication module
lamp
lighting device
Prior art date
Application number
PCT/CN2012/070296
Other languages
English (en)
French (fr)
Inventor
陈明允
陈志宏
Original Assignee
东莞巨扬电器有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from CN2011200101305U external-priority patent/CN202040658U/zh
Priority claimed from CN2011200100891U external-priority patent/CN202040582U/zh
Priority claimed from CN2011200100567U external-priority patent/CN202040654U/zh
Priority claimed from CN2011200100660U external-priority patent/CN202040655U/zh
Priority claimed from CN2011200100779U external-priority patent/CN202040581U/zh
Priority claimed from CN2011200100942U external-priority patent/CN202040656U/zh
Priority claimed from CN2011200101911U external-priority patent/CN202040586U/zh
Priority claimed from CN2011200100497U external-priority patent/CN202040653U/zh
Priority claimed from CN2011200101004U external-priority patent/CN202040657U/zh
Priority claimed from CN201120010205XU external-priority patent/CN202040705U/zh
Priority claimed from CN2011200101451U external-priority patent/CN202040583U/zh
Priority claimed from CN2011200101413U external-priority patent/CN202040659U/zh
Priority claimed from CN201120010153U external-priority patent/CN202132723U/zh
Priority claimed from CN201120010170XU external-priority patent/CN202040585U/zh
Priority claimed from CN2011200102153U external-priority patent/CN202040587U/zh
Priority claimed from CN2011200101235U external-priority patent/CN202040762U/zh
Priority claimed from CN2011200101269U external-priority patent/CN202040719U/zh
Priority claimed from CN2011200101659U external-priority patent/CN202040584U/zh
Priority claimed from CN2011200102026U external-priority patent/CN202040704U/zh
Priority claimed from CN2011200101998U external-priority patent/CN202040703U/zh
Priority claimed from CN2011200102187U external-priority patent/CN202040588U/zh
Priority to EP12734305.1A priority Critical patent/EP2664840A4/en
Priority to JP2013548732A priority patent/JP2014505977A/ja
Priority to US13/979,469 priority patent/US9453615B2/en
Application filed by 东莞巨扬电器有限公司 filed Critical 东莞巨扬电器有限公司
Publication of WO2012095016A1 publication Critical patent/WO2012095016A1/zh

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Classifications

    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B47/00Circuit arrangements for operating light sources in general, i.e. where the type of light source is not relevant
    • H05B47/10Controlling the light source
    • H05B47/105Controlling the light source in response to determined parameters
    • H05B47/115Controlling the light source in response to determined parameters by determining the presence or movement of objects or living beings
    • H05B47/13Controlling the light source in response to determined parameters by determining the presence or movement of objects or living beings by using passive infrared detectors
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21KNON-ELECTRIC LIGHT SOURCES USING LUMINESCENCE; LIGHT SOURCES USING ELECTROCHEMILUMINESCENCE; LIGHT SOURCES USING CHARGES OF COMBUSTIBLE MATERIAL; LIGHT SOURCES USING SEMICONDUCTOR DEVICES AS LIGHT-GENERATING ELEMENTS; LIGHT SOURCES NOT OTHERWISE PROVIDED FOR
    • F21K9/00Light sources using semiconductor devices as light-generating elements, e.g. using light-emitting diodes [LED] or lasers
    • F21K9/20Light sources comprising attachment means
    • F21K9/23Retrofit light sources for lighting devices with a single fitting for each light source, e.g. for substitution of incandescent lamps with bayonet or threaded fittings
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21KNON-ELECTRIC LIGHT SOURCES USING LUMINESCENCE; LIGHT SOURCES USING ELECTROCHEMILUMINESCENCE; LIGHT SOURCES USING CHARGES OF COMBUSTIBLE MATERIAL; LIGHT SOURCES USING SEMICONDUCTOR DEVICES AS LIGHT-GENERATING ELEMENTS; LIGHT SOURCES NOT OTHERWISE PROVIDED FOR
    • F21K9/00Light sources using semiconductor devices as light-generating elements, e.g. using light-emitting diodes [LED] or lasers
    • F21K9/20Light sources comprising attachment means
    • F21K9/23Retrofit light sources for lighting devices with a single fitting for each light source, e.g. for substitution of incandescent lamps with bayonet or threaded fittings
    • F21K9/232Retrofit light sources for lighting devices with a single fitting for each light source, e.g. for substitution of incandescent lamps with bayonet or threaded fittings specially adapted for generating an essentially omnidirectional light distribution, e.g. with a glass bulb
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21KNON-ELECTRIC LIGHT SOURCES USING LUMINESCENCE; LIGHT SOURCES USING ELECTROCHEMILUMINESCENCE; LIGHT SOURCES USING CHARGES OF COMBUSTIBLE MATERIAL; LIGHT SOURCES USING SEMICONDUCTOR DEVICES AS LIGHT-GENERATING ELEMENTS; LIGHT SOURCES NOT OTHERWISE PROVIDED FOR
    • F21K9/00Light sources using semiconductor devices as light-generating elements, e.g. using light-emitting diodes [LED] or lasers
    • F21K9/20Light sources comprising attachment means
    • F21K9/27Retrofit light sources for lighting devices with two fittings for each light source, e.g. for substitution of fluorescent tubes
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21KNON-ELECTRIC LIGHT SOURCES USING LUMINESCENCE; LIGHT SOURCES USING ELECTROCHEMILUMINESCENCE; LIGHT SOURCES USING CHARGES OF COMBUSTIBLE MATERIAL; LIGHT SOURCES USING SEMICONDUCTOR DEVICES AS LIGHT-GENERATING ELEMENTS; LIGHT SOURCES NOT OTHERWISE PROVIDED FOR
    • F21K9/00Light sources using semiconductor devices as light-generating elements, e.g. using light-emitting diodes [LED] or lasers
    • F21K9/20Light sources comprising attachment means
    • F21K9/27Retrofit light sources for lighting devices with two fittings for each light source, e.g. for substitution of fluorescent tubes
    • F21K9/278Arrangement or mounting of circuit elements integrated in the light source
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21VFUNCTIONAL FEATURES OR DETAILS OF LIGHTING DEVICES OR SYSTEMS THEREOF; STRUCTURAL COMBINATIONS OF LIGHTING DEVICES WITH OTHER ARTICLES, NOT OTHERWISE PROVIDED FOR
    • F21V23/00Arrangement of electric circuit elements in or on lighting devices
    • F21V23/04Arrangement of electric circuit elements in or on lighting devices the elements being switches
    • F21V23/0435Arrangement of electric circuit elements in or on lighting devices the elements being switches activated by remote control means
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21VFUNCTIONAL FEATURES OR DETAILS OF LIGHTING DEVICES OR SYSTEMS THEREOF; STRUCTURAL COMBINATIONS OF LIGHTING DEVICES WITH OTHER ARTICLES, NOT OTHERWISE PROVIDED FOR
    • F21V23/00Arrangement of electric circuit elements in or on lighting devices
    • F21V23/04Arrangement of electric circuit elements in or on lighting devices the elements being switches
    • F21V23/0442Arrangement of electric circuit elements in or on lighting devices the elements being switches activated by means of a sensor, e.g. motion or photodetectors
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21VFUNCTIONAL FEATURES OR DETAILS OF LIGHTING DEVICES OR SYSTEMS THEREOF; STRUCTURAL COMBINATIONS OF LIGHTING DEVICES WITH OTHER ARTICLES, NOT OTHERWISE PROVIDED FOR
    • F21V23/00Arrangement of electric circuit elements in or on lighting devices
    • F21V23/04Arrangement of electric circuit elements in or on lighting devices the elements being switches
    • F21V23/0442Arrangement of electric circuit elements in or on lighting devices the elements being switches activated by means of a sensor, e.g. motion or photodetectors
    • F21V23/0471Arrangement of electric circuit elements in or on lighting devices the elements being switches activated by means of a sensor, e.g. motion or photodetectors the sensor detecting the proximity, the presence or the movement of an object or a person
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21VFUNCTIONAL FEATURES OR DETAILS OF LIGHTING DEVICES OR SYSTEMS THEREOF; STRUCTURAL COMBINATIONS OF LIGHTING DEVICES WITH OTHER ARTICLES, NOT OTHERWISE PROVIDED FOR
    • F21V29/00Protecting lighting devices from thermal damage; Cooling or heating arrangements specially adapted for lighting devices or systems
    • F21V29/50Cooling arrangements
    • F21V29/70Cooling arrangements characterised by passive heat-dissipating elements, e.g. heat-sinks
    • F21V29/74Cooling arrangements characterised by passive heat-dissipating elements, e.g. heat-sinks with fins or blades
    • F21V29/77Cooling arrangements characterised by passive heat-dissipating elements, e.g. heat-sinks with fins or blades with essentially identical diverging planar fins or blades, e.g. with fan-like or star-like cross-section
    • F21V29/773Cooling arrangements characterised by passive heat-dissipating elements, e.g. heat-sinks with fins or blades with essentially identical diverging planar fins or blades, e.g. with fan-like or star-like cross-section the planes containing the fins or blades having the direction of the light emitting axis
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B45/00Circuit arrangements for operating light-emitting diodes [LED]
    • H05B45/20Controlling the colour of the light
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B47/00Circuit arrangements for operating light sources in general, i.e. where the type of light source is not relevant
    • H05B47/10Controlling the light source
    • H05B47/105Controlling the light source in response to determined parameters
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B47/00Circuit arrangements for operating light sources in general, i.e. where the type of light source is not relevant
    • H05B47/10Controlling the light source
    • H05B47/105Controlling the light source in response to determined parameters
    • H05B47/11Controlling the light source in response to determined parameters by determining the brightness or colour temperature of ambient light
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B47/00Circuit arrangements for operating light sources in general, i.e. where the type of light source is not relevant
    • H05B47/10Controlling the light source
    • H05B47/175Controlling the light source by remote control
    • H05B47/19Controlling the light source by remote control via wireless transmission
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21SNON-PORTABLE LIGHTING DEVICES; SYSTEMS THEREOF; VEHICLE LIGHTING DEVICES SPECIALLY ADAPTED FOR VEHICLE EXTERIORS
    • F21S9/00Lighting devices with a built-in power supply; Systems employing lighting devices with a built-in power supply
    • F21S9/02Lighting devices with a built-in power supply; Systems employing lighting devices with a built-in power supply the power supply being a battery or accumulator
    • F21S9/03Lighting devices with a built-in power supply; Systems employing lighting devices with a built-in power supply the power supply being a battery or accumulator rechargeable by exposure to light
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21VFUNCTIONAL FEATURES OR DETAILS OF LIGHTING DEVICES OR SYSTEMS THEREOF; STRUCTURAL COMBINATIONS OF LIGHTING DEVICES WITH OTHER ARTICLES, NOT OTHERWISE PROVIDED FOR
    • F21V21/00Supporting, suspending, or attaching arrangements for lighting devices; Hand grips
    • F21V21/08Devices for easy attachment to any desired place, e.g. clip, clamp, magnet
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21VFUNCTIONAL FEATURES OR DETAILS OF LIGHTING DEVICES OR SYSTEMS THEREOF; STRUCTURAL COMBINATIONS OF LIGHTING DEVICES WITH OTHER ARTICLES, NOT OTHERWISE PROVIDED FOR
    • F21V21/00Supporting, suspending, or attaching arrangements for lighting devices; Hand grips
    • F21V21/08Devices for easy attachment to any desired place, e.g. clip, clamp, magnet
    • F21V21/0824Ground spikes
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21VFUNCTIONAL FEATURES OR DETAILS OF LIGHTING DEVICES OR SYSTEMS THEREOF; STRUCTURAL COMBINATIONS OF LIGHTING DEVICES WITH OTHER ARTICLES, NOT OTHERWISE PROVIDED FOR
    • F21V3/00Globes; Bowls; Cover glasses
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21WINDEXING SCHEME ASSOCIATED WITH SUBCLASSES F21K, F21L, F21S and F21V, RELATING TO USES OR APPLICATIONS OF LIGHTING DEVICES OR SYSTEMS
    • F21W2131/00Use or application of lighting devices or systems not provided for in codes F21W2102/00-F21W2121/00
    • F21W2131/10Outdoor lighting
    • F21W2131/109Outdoor lighting of gardens
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21YINDEXING SCHEME ASSOCIATED WITH SUBCLASSES F21K, F21L, F21S and F21V, RELATING TO THE FORM OR THE KIND OF THE LIGHT SOURCES OR OF THE COLOUR OF THE LIGHT EMITTED
    • F21Y2101/00Point-like light sources
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21YINDEXING SCHEME ASSOCIATED WITH SUBCLASSES F21K, F21L, F21S and F21V, RELATING TO THE FORM OR THE KIND OF THE LIGHT SOURCES OR OF THE COLOUR OF THE LIGHT EMITTED
    • F21Y2113/00Combination of light sources
    • F21Y2113/10Combination of light sources of different colours
    • F21Y2113/13Combination of light sources of different colours comprising an assembly of point-like light sources
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21YINDEXING SCHEME ASSOCIATED WITH SUBCLASSES F21K, F21L, F21S and F21V, RELATING TO THE FORM OR THE KIND OF THE LIGHT SOURCES OR OF THE COLOUR OF THE LIGHT EMITTED
    • F21Y2115/00Light-generating elements of semiconductor light sources
    • F21Y2115/10Light-emitting diodes [LED]
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B20/00Energy efficient lighting technologies, e.g. halogen lamps or gas discharge lamps
    • Y02B20/30Semiconductor lamps, e.g. solid state lamps [SSL] light emitting diodes [LED] or organic LED [OLED]
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B20/00Energy efficient lighting technologies, e.g. halogen lamps or gas discharge lamps
    • Y02B20/40Control techniques providing energy savings, e.g. smart controller or presence detection
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B20/00Energy efficient lighting technologies, e.g. halogen lamps or gas discharge lamps
    • Y02B20/72Energy efficient lighting technologies, e.g. halogen lamps or gas discharge lamps in street lighting

Definitions

  • the present invention relates to the field of inductive lighting technologies, and more particularly to an inductive lighting device, an inductive lighting group, and a control method applied thereto.
  • the lighting is widely used in various indoor/outdoor environments such as workshops, work tables, walkways, offices, homes, roads, courtyards, public places, etc., and brings many living things to human beings.
  • commonly used lighting devices include at least a light bulb, a lamp, various types of lamps (for example, ceiling lamps or garden lamps) or various work lamps (for example, work lights that can be humidified or sprayed), and the light source used therein, It can be a U-shaped bulb, a fluorescent lamp, or an LED lamp that has both environmental protection and power saving functions.
  • an inductive component for example, a passive human body infrared (PIR) sensing component that senses the movement of the human body, or a response speed.
  • PIR passive human body infrared
  • Microwave microwave sensing components, such as inductive lighting with sensing components, can achieve some degree of automatic induction lighting control, to achieve more energy-saving purposes.
  • inductive lighting devices are often unable to be used in large quantities because of their high initial construction cost, or they interfere with or interfere with each other when they are combined with other inductive lighting devices. Negative factors such as sex can also cause some inconveniences in use; or even for the desire to be able to more refined the lighting control and balance between multiple inductive lighting devices in the same space, it is difficult to pass through the current independent
  • the inductive control mechanism is synchronized to complete.
  • the main object of the present invention is to provide a wireless communication Inductive lighting device with letter function.
  • Another object of the present invention is to provide an inductive lighting group having a wireless communication function. It is still another object of the present invention to provide a method of wirelessly controlling between inductive lighting groups using wireless communication techniques.
  • the technical solution provided by the present invention is to provide an inductive lighting device, comprising: an illumination body, comprising at least a control circuit and a light source group electrically connected to the control circuit; In the illumination body, the sensing component is electrically connected to the control circuit; and the electromagnetic wave wireless communication module is disposed in the illumination body, and the electromagnetic wave wireless communication module is electrically connected to the control circuit.
  • the inductive lighting device is at least one of an inductive LED bulb, an inductive LED tube, an inductive lamp, and an inductive work lamp; wherein the inductive lamp is at least one An inductive ceiling lamp or an inductive garden lamp, and the inductive work lamp is at least a sprayable inductive work lamp or a humidified inductive work lamp.
  • the inductive LED bulb comprises a bulb body as the illumination body, and the bulb body further comprises at least a male connector, a bulb housing, an LED light source group and a bulb lampshade;
  • the socket is disposed at one end of the bulb housing, and the LED light source group and the bulb lamp cover are disposed in the bulb housing corresponding to the other end of the end portion, and the bulb lamp cover covers the LED light source group.
  • the bulb housing is a heat dissipation structure
  • the heat dissipation structure has a mounting through hole communicating with the end portion and the other end portion for receiving at least some components of the control circuit, and the heat dissipation structure
  • the outer side wall is provided with a heat dissipating fin, and the male joint is disposed at the end of the heat dissipating structure, and the LED light source group and the lamp cover are disposed at the other end of the heat dissipating structure.
  • the bulb cover is at least one of a square cover, a cylindrical cover and a spherical cover.
  • the inductive LED tube comprises a lamp body as the illumination body, and the lamp body further comprises at least two lamp caps, a non-closed circular lamp tube housing, an LED light source group and a light tube. a lamp cover; wherein the two lamp caps are disposed at both ends of the non-closed circular lamp tube housing, and the LED lamp source group and the lamp lamp cover are both coupled to the opening of the non-closed circular lamp tube housing, and The lamp light cover is provided with the LED light source group.
  • the non-closed circular lamp tube housing is a non-closed circular heat dissipating structure
  • the outer side wall of the non-closed circular heat dissipating structure is provided with heat dissipating fins, and the two lamp caps are disposed on the non-closed circular heat dissipating junction
  • the LED lamp source group and the lamp lamp cover are both coupled to the opening of the non-closed circular heat dissipation structure.
  • the lamp lamp cover is at least one PVC lamp cover, and is combined with the non-closed circular lamp housing to form a closed circular lamp body.
  • the inductive lighting device is at least one of the inductive ceiling lamp, the inductive garden lamp, the sprayable inductive work lamp, and the humidizable inductive work lamp.
  • the source group may be an LED light source group including a plurality of LED dies, or the light source group may be a black light source group or a fluorescent light source group.
  • the LED light source group can be an LED light source group including a plurality of LED dies, and the color temperature or brightness or chroma of each of the LED dies can be identical, or at least part of The color temperature or brightness or chroma of the grains is different from the other portions of the grains.
  • the sensing element is a passive human body infrared (PIR) sensing element or a microwave (wave) sensing element.
  • PIR passive human body infrared
  • microwave microwave
  • the electromagnetic wave wireless communication module is an electromagnetic wave wireless communication module belonging to the invisible light spectrum segment, and the electromagnetic wave wireless communication module can be at least a 313.325 MHz wireless communication module, a 433 MHz wireless communication module, a 418 MHz wireless communication module, A 2.4 GHz wireless communication module, a 5.8 GHz wireless communication module, a 10 GHz wireless communication module, a Bluetooth wireless communication module, a Wi-Fi wireless communication module, a near field communication (NFC) wireless communication module, and a Z-Wave wireless A communication module, any of a ZigBee wireless communication module.
  • the electromagnetic wave wireless communication module can be at least a 313.325 MHz wireless communication module, a 433 MHz wireless communication module, a 418 MHz wireless communication module, A 2.4 GHz wireless communication module, a 5.8 GHz wireless communication module, a 10 GHz wireless communication module, a Bluetooth wireless communication module, a Wi-Fi wireless communication module, a near field communication (NFC) wireless communication module, and a Z-Wave wireless
  • the inductive lighting device further includes at least one music playing device, a security monitoring device, a voice control switch and/or a light control switch disposed in the lighting body; wherein the music playing device, the security monitoring device The device, the voice switch or the light control switch can be electrically connected to the control circuit.
  • the inductive lighting device when the inductive lighting device is applied to an outdoor inductive lighting device, the inductive lighting device further includes at least one solar cell; wherein the solar cell is electrically connected to the control circuit.
  • the present invention also provides an inductive lighting group, comprising at least: a first lighting device, comprising at least a first light source group, a first sensing element, a first electromagnetic wave wireless communication module, and an electrical connection The first light source group, the first sensing element, a first control circuit of the first magnetic wave wireless communication module, and a second lighting device comprising at least a second light source group and a second electromagnetic wave wireless communication module And a second control circuit electrically connected to the second light source group and the second magnetic wave wireless communication module; wherein the first electromagnetic component is caused by an environmental sensing result of the first sensing component
  • the wave wireless communication module establishes a communication channel with the second magnetic wave wireless communication module, and controls the light and dark function of the first light source group and/or the second light source group.
  • the first lighting device is a lighting device having at least a main control function
  • the second lighting device is a lighting device having at least a controlled function, so that the first lighting device can be actively controlled according to an environmental sensing result.
  • the light and dark function of the first light source group, and the second lighting device passively controls the light and dark function of the second light source group in response to a control command from the first lighting device.
  • the second illuminating device further includes a second sensing component, configured to establish the communication channel between the first electromagnetic wave wireless communication module and the second magnetic wave wireless communication module according to the environmental sensing result, and control the The light and dark function of the first light source group and/or the second light source group.
  • a second sensing component configured to establish the communication channel between the first electromagnetic wave wireless communication module and the second magnetic wave wireless communication module according to the environmental sensing result, and control the The light and dark function of the first light source group and/or the second light source group.
  • the first lighting device and the second lighting device are both lighting devices having a main control function and a controlled function, so that the lighting devices can be automatically executed and controlled according to a lighting control program.
  • any one of the first sensing element and the second sensing element is a passive human body infrared (PIR) sensing element or a microwave (infrared) sensing element.
  • PIR passive human body infrared
  • microwave infrared
  • any one of the first lighting device and the second lighting device is at least one of an inductive LED bulb, an inductive LED tube, an inductive lamp, and an inductive work lamp.
  • the inductive lamp is at least an inductive ceiling lamp or an inductive garden lamp
  • the inductive work lamp is at least a sprayable inductive work lamp or a humidizable inductive work lamp.
  • the first electromagnetic wave wireless communication module and the second electromagnetic wave wireless communication module are both electromagnetic wave wireless communication modules belonging to the invisible light spectrum segment, and any electromagnetic wave wireless communication module can be at least one 313.325 MHz wireless communication module, a 433MHz wireless communication module, a 418 MHz wireless communication module, a 2.4GHz wireless communication module, a 5.8GHz wireless communication module, a 10GHz wireless communication module, a Bluetooth wireless communication module, a Wi-Fi wireless communication A module, a near field communication (NFC) wireless communication module, a Z-Wave wireless communication module, or a ZigBee wireless communication module.
  • any electromagnetic wave wireless communication module can be at least one 313.325 MHz wireless communication module, a 433MHz wireless communication module, a 418 MHz wireless communication module, a 2.4GHz wireless communication module, a 5.8GHz wireless communication module, a 10GHz wireless communication module, a Bluetooth wireless communication module, a Wi-Fi wireless communication A module, a near field communication (NFC) wireless communication module, a Z-Wave wireless communication
  • At least one of the first lighting device and the second lighting device may further include at least one of a music playing device, a security monitoring device, a light control switch, a voice switch, and/or a solar battery disposed therein One.
  • the present invention also provides a control method for an inductive lighting group, comprising at least the following steps: providing a first lighting device, wherein the first lighting device comprises at least a first light source group, a first sensing element, a first electromagnetic wave wireless communication module, and a first control circuit electrically connected to the first light source group, the first sensing element, and the first magnetic wave wireless communication module;
  • the illuminating device wherein the second illuminating device comprises at least a second light source group, a second electromagnetic wave wireless communication module, and a second electrically connected to the second light source group and the second magnetic wave wireless communication module a control circuit; and an environmental sensing result of the first sensing element to drive a communication channel between the first magnetic wave wireless communication module and the second magnetic wave wireless communication module to control the first light source group and/or Or the shading function of the second light source group.
  • the first lighting device is a lighting device having at least a main control function
  • the second lighting device is a lighting device having at least a controlled function, so that the first lighting device can be actively controlled according to an environmental sensing result.
  • the light and dark function of the first light source group, and the second lighting device passively controls the light and dark function of the second light source group in response to a control command from the first lighting device.
  • the second illuminating device further includes a second sensing component, configured to establish the communication channel between the first electromagnetic wave wireless communication module and the second magnetic wave wireless communication module according to the environmental sensing result, and control the The light and dark function of the first light source group and/or the second light source group.
  • a second sensing component configured to establish the communication channel between the first electromagnetic wave wireless communication module and the second magnetic wave wireless communication module according to the environmental sensing result, and control the The light and dark function of the first light source group and/or the second light source group.
  • the first lighting device and the second lighting device are both lighting devices having a main control function and a controlled function, so that the lighting devices can be automatically executed and controlled according to a lighting control program.
  • any one of the first sensing element and the second sensing element is a passive human body infrared (PIR) sensing element or a microwave (infrared) sensing element.
  • PIR passive human body infrared
  • microwave infrared
  • any one of the first lighting device and the second lighting device is at least one of an inductive LED bulb, an inductive LED tube, an inductive lamp, and an inductive work lamp.
  • the inductive lamp is at least an inductive ceiling lamp or an inductive garden lamp
  • the inductive work lamp is at least a sprayable inductive work lamp or a humidizable inductive work lamp.
  • the first electromagnetic wave wireless communication module and the second electromagnetic wave wireless communication module are both electromagnetic wave wireless communication modules belonging to the invisible light spectrum segment, and any electromagnetic wave wireless communication module can be at least one 313.325 MHz wireless communication module, a 433MHz wireless communication module, a 418 MHz wireless communication module, a 2.4GHz wireless communication module, a 5.8GHz wireless communication module, a 10GHz wireless communication module, a Bluetooth wireless communication module, a Wi-Fi wireless communication A module, a near field communication (NFC) wireless communication module, a Z-Wave wireless communication module, or a ZigBee wireless communication module.
  • at least one of the first lighting device and the second lighting device may further include at least one of a music playing device, a security monitoring device, a light control switch, a voice switch, and/or a solar battery disposed therein One.
  • the invention can easily solve the problem that the inductive lighting device cannot be widely used due to the high initial construction cost by designing and group control arrangement of the inductive lighting device, and can avoid mutual generation when combined with other inductive lighting devices. Negative situations such as lighting interference or inconsistency; of course, the present invention also facilitates more refined lighting control and balance between multiple inductive lighting devices in the same space; in addition, if inductive lighting devices are desired to provide inductive lighting In addition to the illumination function, and in combination with other additional control functions of the electromagnetic wave wireless communication function (for example, playing music or security monitoring or voice control, etc.), the present invention can also easily implement group control in a low cost manner.
  • Fig. 1 is a perspective view showing the structure of a microwave-inductive LED bulb having a microwave sensing element and an electromagnetic wave wireless communication module according to the present invention.
  • Fig. 2 is a perspective view showing the three-dimensional structure of the LED light source group combined with the bulb housing in the microwave induction type LED bulb shown in Fig. 1.
  • Figure 3 is a perspective view showing the structure of the bulb housing in the microwave-sensing LED bulb shown in Figure 1.
  • Fig. 4 is a perspective view showing another perspective view of the bulb housing in the microwave-inductive LED bulb shown in Fig. 1.
  • Fig. 5 is a perspective view showing the structure of the control circuit in the microwave induction type LED bulb shown in Fig. 1.
  • Fig. 6 is a schematic view showing the structure of a part of the circuit of the microwave induction element in the microwave induction type LED bulb shown in Fig. 1.
  • Figure 7 is a perspective view showing the inductive illumination device of the present invention as a P I R inductive L E D bulb having a PIR sensing element and an electromagnetic wave wireless communication module.
  • Figure 8 is a perspective view showing the three-dimensional structure of a microwave-inductive LED lamp having a microwave sensing element and an electromagnetic wave wireless communication module.
  • Figure 9 is a perspective view showing the inductive illumination device of the present invention as a P I R inductive L E D lamp having a PIR sensing element and an electromagnetic wave wireless communication module.
  • Fig. 10 is a perspective view showing the structure of a microwave induction type ceiling lamp having a microwave sensing element and an electromagnetic wave wireless communication module according to the present invention.
  • Figure 11 is an inductive lighting device of the present invention having a microwave sensing element and electromagnetic wave wireless Schematic diagram of the three-dimensional structure of the microwave induction working lamp of the communication module.
  • Fig. 12 is a perspective view showing the three-dimensional structure of a microwave-sensing garden lamp having a microwave sensing element and an electromagnetic wave wireless communication module according to the present invention.
  • Figure 13 is a schematic diagram showing a first preferred group control implementation concept for forming an inductive lighting group using the inductive lighting device of the present invention.
  • Figure 14 is a flow chart showing the implementation steps of a control method for a first preferred lighting group of the present invention.
  • Figure 15 is a schematic diagram showing a second preferred group control implementation concept for forming an inductive lighting group using the inductive lighting device of the present invention.
  • Figure 16 is a flow chart showing the implementation steps of a second preferred lighting group control method of the present invention.
  • Figure 17 is a schematic diagram showing a third preferred group control implementation concept for integrating the preferred group control modes shown in Figures 13 and 15. detailed description
  • the present invention adds a receiving/transmitting module for wireless communication to the inductive lighting device. And further enhance the wireless control function of the inductive lighting device or the inductive lighting group.
  • the wireless communication module used in the present invention is an electromagnetic wave wireless communication module belonging to the invisible light spectrum segment, and the electromagnetic wave wireless communication module can be at least a 313.325 MHz wireless communication module, a 433 MHz wireless communication module, and a 418 MHz wireless communication.
  • the inductive component used in the inductive illumination device of the present invention is a passive human body infrared (PIR) sensing component or a microwave sensing component; and not limited thereto, for example, a special light wave can also be used.
  • the sensing device senses illumination sensing that is unmanned or the object is moved.
  • the inductive lighting device of the present invention is a light bulb or a light pipe
  • the light source group is included a group of LED light sources of a plurality of LED dies, and the color temperature or brightness or chroma of each of the dies of the LED dies may be identical, or the color temperature or brightness or chroma of at least part of the dies The other part of the grain is not the same.
  • the sensing element used in conjunction with the bulb or tube is directly integrated with the illumination body of the bulb or tube (please refer to later) rather than separate (or separate) settings.
  • the inductive lighting device of the present invention is any one of an inductive lamp and an inductive work lamp
  • the inductive lamp is at least an inductive ceiling lamp or an inductive garden lamp.
  • the inductive work light is at least a sprayable inductive work light or a humidizable inductive work light; and is not limited thereto.
  • the light source group used in the inductive lamp or the inductive work lamp may be an LED lamp source group including a plurality of LED chips, or the lamp source group may be a U.S. lamp source group or a fluorescent lamp. Source group.
  • the LED light source group can be an LED light source group including a plurality of LED dies, and the color temperature or brightness or chroma of each of the LED dies can be identical, or The color temperature or brightness or chroma of at least a portion of the grains is different from the other portions of the grains.
  • the sensing component used in combination with the inductive lamp or the inductive worklight such as a passive human body infrared (PIR) sensing component, or a microwave (inductive component), can be directly disposed on the inductive lamp.
  • PIR passive human body infrared
  • the sensing element used is separate (or separated) from the bulb or tube provided to provide the light source, but still The inductive luminaire or the illuminating body of the inductive worklight is combined.
  • the inductive lighting device of the present invention further includes at least a music playing device, a security monitoring device, a voice control switch and/or a light control switch disposed in the lighting body of the inductive lighting device; wherein the music playing device
  • the safety monitoring device or the light control switch can be electrically connected to a control circuit.
  • the music playing device incorporated in the inductive lighting device of the present invention is a playback device having a built-in automatic playing music function, or it can be further combined with the electromagnetic wave wireless communication module to receive operation from a user.
  • portable electronic devices such as iPhone or iPad
  • the chroma of some of the crystal grains in the LED light source group is different from the other crystal grains, it can also control and generate different illumination light changes through the rhythm of the music.
  • the inductive lighting device of the present invention may be combined with a photo monitoring device and the electromagnetic wave wireless communication module to monitor the judgment result of the image.
  • control commands are issued to perform a wide range of intense illumination of a particular area.
  • the inductive illumination device of the present invention can also cooperate with the above-mentioned light control switch and the electromagnetic wave wireless communication module, so that the light/dark adjustment effect of each sub-area in the illumination space can be more balanced and accurate.
  • the inductive illumination device of the present invention can also be combined with a voice-activated switch and the above-mentioned electromagnetic wave wireless communication module to perform a wireless communication control for illumination or other functions in response to the voice-activated sensing result of the voice-activated switch.
  • the inductive lighting device of the present invention is an outdoor inductive lighting device
  • the inductive lighting device further includes at least one solar cell as a backup power source; wherein the solar cell is electrically connected to The above control circuit.
  • FIG. 1 is a perspective view showing a three-dimensional structure of a microwave induction type LED bulb having a microwave sensing element and an electromagnetic wave wireless communication module according to the present invention
  • FIG. 2 is a microwave diagram of FIG.
  • FIG. 3 is a schematic diagram of a three-dimensional structure of a bulb housing of the microwave inductive LED bulb shown in FIG. 1
  • FIG. 4 is a microwave induction LED of FIG. 1
  • FIG. 5 is a perspective view showing the three-dimensional structure of the control circuit of the microwave-inducing LED bulb shown in FIG. 1
  • FIG. 6 is a schematic view of the microwave sensing element in the microwave-inductive LED bulb shown in FIG. 1 . Schematic diagram of the three-dimensional structure of some circuits.
  • the microwave-inductive LED bulb 1 includes a bulb body 11 as an illumination body, a microwave sensing component 12, and an electromagnetic wave wireless communication module 13; wherein the bulb body 11 includes at least a control circuit 111 and an electrical connection.
  • the electromagnetic wave wireless communication module 13 The electromagnetic wave wireless communication module 13 is electrically connected to the control circuit 111. In this way, the microwave-inductive LED bulb 1 can perform group illumination control with other illumination devices (including inductive and non-inductive illumination devices) through the electromagnetic wave wireless communication module 13 or perform other additions. Functional wireless communication control.
  • the bulb body 11 further includes a male connector 113, a bulb housing 114 and a bulb cover 115.
  • the male connector 113 is disposed at one end 1141 of the bulb housing 114.
  • the LED light source group 112 and the light bulb cover 115 are disposed in the bulb housing 114 corresponding to the other end portion 1142 of the end portion 1141 , and the bulb lamp cover 115 covers the LED light source group 112 .
  • the heat dissipation structure 114 is internally provided with a mounting through hole 1140 communicating with the end portion 1141 and the other end portion 1142 for accommodating at least some components of the control circuit 111.
  • the outer sidewall of the heat dissipation structure 114 is provided with heat dissipation fins 1143.
  • the heat dissipation structure 114 can be a heat dissipation structure of an aluminum alloy or other metal alloy, or a heat dissipation structure formed of other materials having heat dissipation capability (for example, a porous ceramic).
  • the heat source generated by the LED light source group 112 can be quickly dispersed.
  • the bulb cover 115 may be at least one of a square cover body, a cylindrical cover body and a spherical cover body; and is not limited thereto.
  • a microwave receiving circuit 121 having a receiving/transmitting antenna 1210 in the microwave sensing element 12 is shown.
  • the microwave can smoothly penetrate the bulb lampshade 115 to perform the sensing of the moving body.
  • the microwave-inductive LED lamp 1 can further include an additional electronic device 14, which can be a music playing device, a security monitoring device, a voice-activated switch, and/or a light-controlled switch.
  • an additional electronic device 14 can be a music playing device, a security monitoring device, a voice-activated switch, and/or a light-controlled switch.
  • the PIR inductive LED bulb 2 includes a bulb body 21, a PIR sensing component 22, and an electromagnetic wave wireless communication module 23; and the bulb body 21 includes at least a male connector 213, a bulb housing 214, and a Light bulb shade 215.
  • a control circuit (not shown) further included in the bulb body 21 is similar to the control circuit 111 shown in FIG. 1, but is electrically connected to a PIR sensing element 22, so that the control portion is controlled in detail.
  • the circuit design will be slightly different from the control circuit 111 shown in FIG. 1; however, this will be known to those of ordinary skill in the art and will not be described herein.
  • the LED light source group (not shown) further included in the bulb body 21, the male connector 213 and the bulb housing 214, and the electromagnetic wave wireless communication module 23 are similar to those shown in FIG. Elements or structures of the same function will not be described again here.
  • the bulb cover 215 is different from the bulb cover 115 of FIG. 1 in that the PIR sensing element 22 is not shielded by the bulb cover 215 during the limp induction, and therefore, the PIR sensing element 22 will be designed to be convex.
  • the PIR-type LED lamp can 2 can further include an additional electronic device 24, which can be a music playing device, a security monitoring device, a voice control switch and/or a light control switch.
  • the inductive illumination device of the present invention is a three-dimensional structure diagram of a microwave inductive LED lamp having a microwave inductive component and an electromagnetic wave wireless communication module.
  • the microwave-inductive LED tube 3 includes a lamp body 31 for the illumination body, a microwave sensing element 32, and an electromagnetic wave wireless communication module 33.
  • the lamp body 31 includes at least two lamp holders 313.
  • the control circuit (not shown) further included in the lamp body 31, it is similar to the control circuit 111 shown in Fig. 1, and will not be described herein.
  • An elongated LED light source group (not shown) further included in the lamp body 31 and the two light heads 313, and the electromagnetic wave wireless communication module 33 are similar to those shown in FIG. The components or structures are not described here.
  • the lamp tube housing 314 in the embodiment is a non-closed circular lamp tube housing (or a non-closed circular heat dissipation structure), and the outer side wall of the non-closed circular heat dissipation structure 314 is provided with
  • the heat dissipation fins 3143 are disposed at the two ends of the non-closed circular heat dissipation structure 314.
  • the elongated LED light source group and the lamp light cover 315 are combined with the non-closed circular heat dissipation structure 314.
  • the opening of the lamp is combined with the non-closed circular heat dissipation structure 314 to form a closed circular lamp body; wherein the lamp cover 315 can be a PVC lamp cover, and is not limited thereto.
  • the lamp tube housing 314 belongs to a non-closed lamp tube housing, and is not limited to a circular or nearly circular or elliptical or other special arc-shaped non-closed lamp tube housing; in addition, it may also be non-closed. 1/2 or 3/4 round tube housing, not limited to this.
  • the microwave inductive LED tube 3 further includes an additional electronic device 34, which can be a music playing device, a security monitoring device, a voice control switch and/or a light control switch.
  • an additional electronic device 34 can be a music playing device, a security monitoring device, a voice control switch and/or a light control switch.
  • the inductive illumination device of the present invention is a three-dimensional structure diagram of a PIR inductive LED lamp having a PIR sensing element and an electromagnetic wave wireless communication module.
  • the PIR inductive LED tube 4 includes a lamp body 41 for the illumination body, a PIR sensing component 42 and an electromagnetic wave wireless communication module 43.
  • the lamp body 41 includes at least two lamp caps 413, A lamp housing 414 and a lamp shade 415.
  • control circuit (not shown) of the PIR sensing element 42 and the lamp body 41
  • the PIR sensing element 22 and the control circuit are similar to those of FIG. 7, and will not be described herein.
  • the lamp body 41 further includes an elongated LED light source group (not shown), the The two lamp caps 413, the lamp tube housing 414 and the lamp lamp cover 415, and the electromagnetic wave wireless communication module 43 are similar to those having the same functions as those shown in FIG. 8, and are not described herein again.
  • the PIR inductive LED tube 4 further includes an additional electronic device 44, which can be a music playing device, a security monitoring device, a voice control switch and/or a light control switch.
  • an additional electronic device 44 can be a music playing device, a security monitoring device, a voice control switch and/or a light control switch.
  • FIG. 10 is a perspective view of a three-dimensional structure of a microwave induction type ceiling-mounted luminaire having a microwave sensing element and a electromagnetic wave wireless communication module.
  • the microwave inductive ceiling lamp 5 includes a ceiling lamp body 51 as an illumination body, a microwave inductive component 52, and an electromagnetic wave wireless communication module 53.
  • the ceiling lamp body 51 includes at least a control circuit (not shown) and a ring LED light source group 512, and the microwave sensing element 52 is assembled in the ceiling lamp body 51.
  • the microwave inductive ceiling lamp 5 further includes an additional electronic device 54, which can be a music playing device, a security monitoring device, a voice control switch and/or a light control switch.
  • an additional electronic device 54 can be a music playing device, a security monitoring device, a voice control switch and/or a light control switch.
  • the inductive illumination device of the present invention is a three-dimensional structure diagram of a microwave inductive worklight having a microwave inductive component and an electromagnetic wave wireless communication module.
  • the microwave induction work light 6 (for example, a spray or humidification microwave induction work light) includes a work light body 61 as a lighting body, a microwave sensing element 62, and an electromagnetic wave wireless communication module. 63.
  • the work light body 61 includes at least a work light cover 615, a rotatable hook 616, a control circuit (not shown) and an LED light source set (not shown), and the microwave sensing element 62 is assembled Inside the worklight body 61.
  • the microwave inductive worklight 6 further includes an additional electronic device 64, which can be a music playback device, a security monitoring device, a voice control switch and/or a light control switch.
  • an additional electronic device 64 can be a music playback device, a security monitoring device, a voice control switch and/or a light control switch.
  • FIG. 12 is a perspective view of a three-dimensional structure of a microwave induction garden lamp with a microwave sensing element and an electromagnetic wave wireless communication module.
  • the microwave inductive garden lamp 7 includes a garden lamp body 71 as a lighting body, a microwave inductive element 72, and an electromagnetic wave wireless communication module 73.
  • the garden lamp body 71 includes at least a control circuit (not shown) and an LED light source group (not shown), and the microwave sensing element 72 is assembled in the garden lamp body 71.
  • the microwave-inductive garden luminaire 7 further includes an additional electronic device 74, which can be a music playback device, a security monitoring device, a voice-activated switch, and/or a solar battery.
  • an additional electronic device 74 can be a music playback device, a security monitoring device, a voice-activated switch, and/or a solar battery.
  • FIG. 13 is a schematic diagram of a first preferred group control implementation concept for forming an inductive lighting group according to the inductive lighting device of the present invention; wherein there are 5 lighting devices 81 to 85 in the space 8 ,
  • the illumination device 81 is an inductive illumination device having both an inductive component and an electromagnetic wave wireless communication module, and the inductive illumination device 81 is an inductive illumination device having at least a main control function.
  • the illumination devices 82 to 85 are non-inductive illumination devices having electromagnetic wave wireless communication modules (that is, general illumination devices), and any one of the illumination devices 82 to 85 has only one A controlled function lighting device that can only passively accept wireless lighting control and cannot actively issue control commands (eg, lighting control commands) to other lighting devices.
  • the inductive lighting device 81 can actively control the brightness and light function of its own light source group according to an environmental sensing result, and simultaneously emit a lighting control command C1 by electromagnetic wave wireless communication to make the lighting devices 82 to 85 passively control the light and dark functions of the respective light source groups of the lighting devices 82 to 85 in response to the lighting control command C1.
  • the above lighting control command C1 is only an example, and may also include a control command for performing the other additional functions described above.
  • S12 providing a first lighting device, wherein the first lighting device comprises at least a first light source group, a first sensing component, a first electromagnetic wave wireless communication module, and is electrically connected to the first light source a first sensing element, a first control circuit of the first magnetic wave wireless communication module;
  • S13 providing a second illumination device, wherein the second illumination device comprises at least a second light source group, a second electromagnetic wave wireless communication module, and is electrically connected to the second light source group, the second magnetic wave a second control circuit of the wireless communication module;
  • FIG. 15 is a schematic diagram of a second preferred group control implementation concept for forming an inductive lighting group by the inductive lighting device of the present invention; wherein there are 5 lighting devices 91 to 95 in the space 9 ,
  • the inductive lighting devices 91 to 95 are both inductive lighting devices having an inductive component and an electromagnetic wave wireless communication module, and the inductive lighting devices 91 to 95 both have a master function/controlled function. Inductive lighting.
  • the illumination devices 91 to 95 can transmit or return a lighting control command C2 to other illumination devices by electromagnetic wave wireless communication according to the brightness change in the sub-regions that are self-sensing, and therefore, The illumination devices 91-95 need to coordinate with each other to achieve a more accurate illumination balance scheme according to a lighting control program.
  • the above lighting control command C2 is only an example, and may also include a control command for performing the other additional functions described above.
  • S22 providing a first lighting device, wherein the first lighting device comprises at least a first light source group, a first sensing component, a first electromagnetic wave wireless communication module, and is electrically connected to the first light source group The first sensing element, a first control circuit of the first magnetic wave wireless communication module;
  • S23 providing a second lighting device, wherein the second lighting device comprises at least a second light source group, a second sensing component, a second electromagnetic wave wireless communication module, and is electrically connected to the second light source group a second control circuit of the second magnetic wave wireless communication module;
  • a communication channel between the first magnetic wave wireless communication module and the second magnetic wave wireless communication module is driven by the environment sensing result of the first sensing element and/or the second sensing element, and is automatically executed. Controlling the light and dark function of the first light source group and/or the second light source group according to a lighting control program;
  • FIG. 17 is a schematic diagram of a third preferred group control implementation concept in which the preferred group control modes shown in FIG. 13 and FIG. 15 are integrated.
  • the inductive lighting device 81 can communicate with the lighting devices 91 to 95 through a lighting control command C3 and another lighting control program. Coordinate with the execution function.
  • the present invention can be easily accomplished for illumination control and balance between multiple inductive lighting devices that are desired to be more refined in the same space; If the existing inductive lighting device is desired to provide other in addition to the inductive lighting function, and can be combined with other additional control functions of the electromagnetic wave wireless communication function (for example, playing music or security monitoring or voice control, etc.), the present invention can also be easily low.
  • the cost mode realizes group control; therefore, the present invention is a highly industrial work.

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Description

技术领域
本发明关于感应式照明技术领域, 尤其是涉及一种具有可提供无线通信 功能的感应式照明装置、 感应式照明群组以及应用于其中的控制方法。 龍
现有技术中, 照明灯被大量广泛地使用于车间、 工作台、 走道、 办公室、 家庭、 道路、 庭院、 公共场所等等各种室内 /室外的环境中, 并为人类带来许 多生活上的便利性。 其中, 常用的照明装置至少包括灯泡、 灯管、 各式灯具 (例如, 吸顶灯具或花园灯具) 或各式工作灯 (例如, 可加湿或喷雾的工作 灯), 且其中所使用的光源, 可以是乌丝灯泡、 日光灯, 也可以是兼具有环保 与省电功能的 LED灯。
对于欲进一步追求更加省电的照明装置而言, 目前常见的做法, 是予以 加上一感应元件, 例如, 可为一感应人体移动的被动式人体红外线 (PIR ) 感应元件, 抑或为一具有反应速度快且灵敏的微波 (Microwave ) 感应元件, 如此一来, 具有感应元件的感应式照明装置, 即可实现某种程度的自动感应 照明控制, 以达到更加节能的目的。
惟, 单一型式 (或独立型式) 的感应式照明装置, 往往会因为其初期建 置成本较高而无法被大量采用、 抑或其于搭配其它感应式照明装置时所产生 的彼此照明干扰或不协调性等等负面因素, 也会造成使用上的若干不便利; 甚或, 对于希望能够更精致化位于同一空间内多个感应式照明装置间的照明 控制与平衡, 也很难透过目前各自独立式的感应控制机制来同步完成。
当然, 如果希望感应式照明装置能提供照明以外的附加控制功能, 其往 往也因为是独立展现而无法实现群组式控制, 甚或是需要以大幅增加设置成 本的方式来实施。 因此, 以上现有技术的缺失, 即成为本发明极欲解决的技 术课题。 发明内容
针对现有技术存在的不足, 本发明的主要目的在于提供一种具有无线通 信功能的感应式照明装置。
本发明的另一目的在于提供一种具有无线通信功能的感应式照明群组。 本发明的又一目的在于提供一种利用无线通信技术而于感应式照明群组 间遂行无线控制的方法。
为实现上述目的, 本发明采用的技术方案是提供一种感应式照明装置, 其包括: 照明本体, 至少包括一控制电路与电性连接于该控制电路的一灯源 组; 感应元件, 设置于该照明本体中, 且该感应元件电性连接于该控制电路; 以及电磁波无线通信模块, 设置于该照明本体中, 且该电磁波无线通信模块 电性连接于该控制电路。
较佳地,所述感应式照明装置至少为一感应式 LED灯泡、一感应式 LED 灯管、 一感应式灯具、 一感应式工作灯中的任一者; 其中, 该感应式灯具至 少为一感应式吸顶灯具或一感应式花园灯具, 而该感应式工作灯至少为一可 喷雾的感应式工作灯或一可加湿的感应式工作灯。
较佳地, 该感应式 LED灯泡包括一灯泡本体, 作为该照明本体, 且该灯 泡本体还至少包括一公座接头、 一灯泡壳体、 一 LED灯源组与一灯泡灯罩; 其中, 该公座接头设置于该灯泡壳体的一端部, 该 LED灯源组与该灯泡灯罩 皆设置于该灯泡壳体中相对应于该端部的另一端部, 且该灯泡灯罩罩设该 LED灯源组。
较佳地, 该灯泡壳体为一散热结构, 该散热结构内部开设有连通该端部 与该另一端部的安装通孔, 以供容置该控制电路中的至少部分元件, 且该散 热结构的外侧壁设置有散热鳍片, 该公座接头设置于该散热结构的该端部, 该 LED灯源组与该灯罩皆设置于该散热结构的该另一端部。
较佳地, 该灯泡灯罩至少为一方块形罩体、 一圆柱形罩体、 一球形罩体 中的任一者。
较佳地, 该感应式 LED灯管包括灯管本体, 作为该照明本体, 且该灯管 本体更至少包括两灯头、一非封闭圆型灯管壳体、一 LED灯源组与一灯管灯 罩; 其中, 该两灯头设置于该非封闭圆型灯管壳体的两端部, 该 LED灯源组 与该灯管灯罩皆结合于该非封闭圆型灯管壳体的开口处, 且该灯管灯罩罩设 该 LED灯源组。
较佳地, 该非封闭圆型灯管壳体为一非封闭圆型散热结构, 该非封闭圆 型散热结构的外侧壁设置有散热鳍片, 该两灯头设置于该非封闭圆型散热结 构的两端部,该 LED灯源组与该灯管灯罩皆结合于该非封闭圆型散热结构的 开口处。
较佳地, 该灯管灯罩至少为一 PVC灯管灯罩, 且其与该非封闭圆型灯管 壳体结合成一封闭圆形的灯管本体。
较佳地, 该感应式照明装置至少为该感应式吸顶灯具、 该感应式花园灯 具、 该可喷雾的感应式工作灯、 该可加湿的感应式工作灯中的任一者时, 该 灯源组可为包括多个 LED晶粒的 LED灯源组, 抑或该灯源组可为乌丝灯源 组或日光灯源组。
较佳地, 该 LED灯源组可为包括多个 LED晶粒的 LED灯源组, 且该些 LED晶粒中的各晶粒的色温或亮度或彩度可皆完全相同, 抑或其中至少部分 晶粒的色温或亮度或彩度与另一部分晶粒互不相同。
较佳地, 该感应元件为被动式人体红外线 (PIR ) 感应元件, 抑或为微 波 (Microwave ) 感应元件。
较佳地, 该电磁波无线通信模块为属于不可见光频谱段的电磁波无线通 信模块, 且该电磁波无线通信模块至少可为一 313.325MHz无线通信模块、 一 433MHz无线通信模块、 一 418 MHz无线通信模块、 一 2.4GHz无线通信 模块、 一 5.8GHz无线通信模块、 一 10GHz无线通信模块、 一蓝牙无线通信 模块、一 Wi-Fi无线通信模块、一近场通信(NFC )无线通信模块、一 Z-Wave 无线通信模块、 一 ZigBee无线通信模块中的任一者。
较佳地, 所述感应式照明装置还至少包括设置于该照明本体中的一音乐 播放装置、 一安全监控装置、 声控开关及 /或一光控开关; 其中, 该音乐播放 装置、该安全监控装置、该声控开关或该光控开关可电性连接于该控制电路。
较佳地, 所述感应式照明装置为应用于户外的感应式照明装置时, 该感 应式照明装置还至少包括一太阳能电池; 其中, 该太阳能电池可电性连接于 该控制电路。
本发明还提供一种感应式照明群组, 其至少包括: 一第一照明装置, 至 少包括一第一灯源组、 一第一感应元件、 一第一电磁波无线通信模块、 与电 性连接于该第一灯源组、 该第一感应元件、 该第一磁波无线通信模块的一第 一控制电路; 以及一第二照明装置, 至少包括一第二灯源组、 一第二电磁波 无线通信模块、 与电性连接于该第二灯源组、 该第二磁波无线通信模块的一 第二控制电路; 其中, 因应该第一感应元件的一环境感应结果, 该第一电磁 波无线通信模块于与第二磁波无线通信模块之间建立一通信通道, 俾控制该 第一灯源组及 /或该第二灯源组的明暗功能。
较佳地, 该第一照明装置为至少具有主控功能的照明装置, 该第二照明 装置为至少具有受控功能的照明装置, 以使该第一照明装置可因应该环境感 应结果而主动控制该第一灯源组的明暗功能, 且使该第二照明装置被动因应 来自该第一照明装置的一控制指令而控制该第二灯源组的明暗功能。
较佳地, 该第二照明装置还包括第二感应元件, 用以因应该环境感应结 果, 使该第一电磁波无线通信模块于与第二磁波无线通信模块之间建立该通 信信道, 俾控制该第一灯源组及 /或该第二灯源组的明暗功能。
较佳地, 该第一照明装置与该第二照明装置皆为兼具有主控功能与被控 功能的照明装置, 以使该些照明装置之间可自动执行并因应一照明控制程序 而控制该第一灯源组及 /或该第二灯源组的明暗功能。
较佳地, 该第一感应元件与第二感应元件中的任一者, 为被动式人体红 外线 (PIR) 感应元件, 抑或为微波 (Microwave ) 感应元件。
较佳地, 该第一照明装置与该第二照明装置中的任一者, 至少为一感应 式 LED灯泡、 一感应式 LED灯管、 一感应式灯具、 一感应式工作灯中的任 一者; 其中, 该感应式灯具至少为一感应式吸顶灯具或一感应式花园灯具, 而该感应式工作灯至少为一可喷雾的感应式工作灯或一可加湿的感应式工作 灯。
较佳地, 该第一电磁波无线通信模块与该第二电磁波无线通信模块中的 任一者, 皆为属于不可见光频谱段的电磁波无线通信模块, 且任一电磁波无 线通信模块至少可为一 313.325MHz无线通信模块、 一 433MHz无线通信模 块、 一 418 MHz无线通信模块、 一 2.4GHz无线通信模块、 一 5.8GHz无线 通信模块、 一 10GHz无线通信模块、 一蓝牙无线通信模块、 一 Wi-Fi无线通 信模块、 一近场通信 (NFC ) 无线通信模块、 一 Z- Wave无线通信模块、 一 ZigBee无线通信模块中的任一者。
较佳地, 该第一照明装置与该第二照明装置中的至少一者, 还可包括设 置于其中的音乐播放装置、 安全监控装置、 光控开关、 声控开关及 /或太阳能 电池中的至少一者。
本发明还提供一种应用于感应式照明群组的控制方法, 至少包括下列步 骤: 提供一第一照明装置, 其中, 该第一照明装置至少包括一第一灯源组、 一第一感应元件、一第一电磁波无线通信模块、与电性连接于该第一灯源组、 该第一感应元件、 该第一磁波无线通信模块的一第一控制电路; 提供一第二 照明装置, 其中, 该第二照明装置至少包括一第二灯源组、 一第二电磁波无 线通信模块、 与电性连接于该第二灯源组、 该第二磁波无线通信模块的一第 二控制电路; 以及因应该第一感应元件的一环境感应结果, 以驱动该第一磁 波无线通信模块与该第二磁波无线通信模块之间建立一通信通道, 俾控制该 第一灯源组及 /或该第二灯源组的明暗功能。
较佳地, 该第一照明装置为至少具有主控功能的照明装置, 该第二照明 装置为至少具有受控功能的照明装置, 以使该第一照明装置可因应该环境感 应结果而主动控制该第一灯源组的明暗功能, 且使该第二照明装置被动因应 来自该第一照明装置的一控制指令而控制该第二灯源组的明暗功能。
较佳地, 该第二照明装置还包括第二感应元件, 用以因应该环境感应结 果, 使该第一电磁波无线通信模块于与第二磁波无线通信模块之间建立该通 信信道, 俾控制该第一灯源组及 /或该第二灯源组的明暗功能。
较佳地, 该第一照明装置与该第二照明装置皆为兼具有主控功能与被控 功能的照明装置, 以使该些照明装置之间可自动执行并因应一照明控制程序 而控制该第一灯源组及 /或该第二灯源组的明暗功能。
较佳地, 该第一感应元件与第二感应元件中的任一者, 为被动式人体红 外线 (PIR) 感应元件, 抑或为微波 (Microwave ) 感应元件。
较佳地, 该第一照明装置与该第二照明装置中的任一者, 至少为一感应 式 LED灯泡、 一感应式 LED灯管、 一感应式灯具、 一感应式工作灯中的任 一者; 其中, 该感应式灯具至少为一感应式吸顶灯具或一感应式花园灯具, 而该感应式工作灯至少为一可喷雾的感应式工作灯或一可加湿的感应式工作 灯。
较佳地, 该第一电磁波无线通信模块与该第二电磁波无线通信模块中的 任一者, 皆为属于不可见光频谱段的电磁波无线通信模块, 且任一电磁波无 线通信模块至少可为一 313.325MHz无线通信模块、 一 433MHz无线通信模 块、 一 418 MHz无线通信模块、 一 2.4GHz无线通信模块、 一 5.8GHz无线 通信模块、 一 10GHz无线通信模块、 一蓝牙无线通信模块、 一 Wi-Fi无线通 信模块、 一近场通信 (NFC ) 无线通信模块、 一 Z- Wave无线通信模块、 一 ZigBee无线通信模块中的任一者。 较佳地, 该第一照明装置与该第二照明装置中的至少一者, 还可包括设 置于其中的音乐播放装置、 安全监控装置、 光控开关、 声控开关及 /或太阳能 电池中的至少一者。
本发明通过对感应式照明装置的设计与群组控制安排, 可轻易解决感应 式照明装置因初期建置成本较高而无法被大量采用的问题, 且可避免搭配其 它感应式照明装置时产生彼此照明干扰或不协调性等等负面情况; 当然, 本 发明亦便于更精致化位于同一空间内多个感应式照明装置间的照明控制与平 衡; 此外, 如果希望感应式照明装置能提供除感应式照明功能以外, 且能结 合电磁波无线通信功能的其它附加控制功能 (例如, 播放音乐或安全监控或 声控等等), 本发明也可轻易以低成本的方式实现群组式控制。 附图说明
图 1 : 为本发明的感应式照明装置为一具有微波感应元件与电磁波无线 通信模块的微波感应式 LED灯泡的立体结构示意图。
图 2 : 为图 1所示微波感应式 LED灯泡中 LED灯源组结合灯泡壳体的 立体结构示意图。
图 3 : 为图 1所示微波感应式 LED灯泡中灯泡壳体的立体结构示意图。 图 4 : 为图 1所示微波感应式 LED灯泡中灯泡壳体的另一视角立体结构 示意图。
图 5 : 为图 1所示微波感应式 LED灯泡中控制电路的立体结构示意图。 图 6 : 为图 1所示微波感应式 LED灯泡中微波感应元件的部分电路的立 体结构示意图。
图 7 : 为本发明的感应式照明装置为一具有 PIR感应元件与电磁波无线 通信模块的 P I R感应式 L E D灯泡的立体结构示意图。
图 8 : 为本发明的感应式照明装置为一具有微波感应元件与电磁波无线 通信模块的微波感应式 LED灯管的立体结构示意图。
图 9: 为本发明的感应式照明装置为一具有 PIR感应元件与电磁波无线 通信模块的 P I R感应式 L E D灯管的立体结构示意图。
图 10 :为本发明的感应式照明装置为一具有微波感应元件与电磁波无线 通信模块的微波感应式吸顶灯的立体结构示意图。
图 11 :为本发明的感应式照明装置为一具有微波感应元件与电磁波无线 通信模块的微波感应式工作灯的立体结构示意图。
图 12 :为本发明的感应式照明装置为一具有微波感应元件与电磁波无线 通信模块的微波感应式花园灯的立体结构示意图。
图 13 :为以本发明感应式照明装置组成一感应式照明群组的一第一较佳 群组控制实施概念示意图。
图 14 :为本发明一第一较佳照明群组的控制方法的实施步骤的流程概念 示意图。
图 15 :为以本发明感应式照明装置组成一感应式照明群组的一第二较佳 群组控制实施概念示意图。
图 16 :为本发明一第二较佳照明群组的控制方法的实施步骤的流程概念 示意图。
图 17 :为将图 13与图 15所示较佳群组控制方式结合于一体的一第三较 佳群组控制实施概念示意图。 具体实施方式
首先要说明的是, 为达到更高的自动照明控制程度, 甚至为增加使用上 或控制上的多元化应用, 本发明于感应式照明装置上再增设一可供遂行无线 通信的收 /发模块,且进一步强化感应式照明装置或感应式照明群组的无线控 制功能。
其中, 本发明所使用的无线通信模块, 为一属于不可见光频谱段的电磁 波无线通信模块, 且该电磁波无线通信模块至少可为一 313.325MHz无线通 信模块、 一 433MHz无线通信模块、 一 418MHz无线通信模块、 一 2.4GHz 无线通信模块、 一 5.8GHz无线通信模块、 一 10GHz无线通信模块、 一蓝牙 无线通信模块、 一 Wi-Fi无线通信模块、 一近场通信 (NFC )无线通信模块、 一 Z- Wave无线通信模块、一 ZigBee无线通信模块中的任一者; 且不以此为 限。
再则, 本发明感应式照明装置所使用的感应元件, 为一被动式人体红外 线(PIR )感应元件, 抑或为一微波(Microwave )感应元件; 且不以此为限, 例如, 亦可使用特殊光波的感应装置进行感应有无人走动或物体被移动的照 明感应控制。
另外, 当本发明的感应式照明装置为灯泡或灯管时, 其灯源组为一包括 多个 LED晶粒的 LED灯源组,且该些 LED晶粒中的各晶粒的色温或亮度或 彩度可皆为完全相同者, 抑或其中至少部分晶粒的色温或亮度或彩度与另一 部分晶粒互属不相同者。 且与灯泡或灯管搭配所使用的感应元件, 是直接与 灯泡或灯管的照明本体结合于一起 (请参后述), 而非分开 (或分离) 设置。
再则, 当本发明的感应式照明装置为一感应式灯具和一感应式工作灯中 的任一者时, 该感应式灯具至少为一感应式吸顶灯具或一感应式花园灯具, 而该感应式工作灯至少为一可喷雾的感应式工作灯或一可加湿的感应式工作 灯; 且并不以此为限,
其中, 该感应式灯具或该感应式工作灯所使用的灯源组, 可为一包括多 个 LED晶粒的 LED灯源组, 抑或该灯源组可为一乌丝灯源组或一日光灯源 组。 当然, 其中该 LED灯源组可为一包括多个 LED晶粒的 LED灯源组, 且 该些 LED晶粒中的各晶粒的色温或亮度或彩度可皆为完全相同者,抑或其中 至少部分晶粒的色温或亮度或彩度与另一部分晶粒互属不相同者。
且, 与该感应式灯具或该感应式工作灯搭配所使用的感应元件, 例如一 被动式人体红外线(PIR)感应元件, 抑或为一微波(Microwave )感应元件, 可直接与设置于该感应式灯具或该感应式工作灯中的灯泡或灯管的照明本体 结合于一起, 抑或所使用的感应元件虽与设置其中用以负责提供光源的灯泡 或灯管分开 (或分离) 设置, 但仍与该感应式灯具或该感应式工作灯的照明 本体结合于一起。
又, 本发明的感应式照明装置更至少包括设置于感应式照明装置的照明 本体中的一音乐播放装置、 一安全监控装置、 一声控开关及 /或一光控开关; 其中, 该音乐播放装置、 该安全监控装置或该光控开关可电性连接于一控制 电路。
例如, 结合于本发明感应式照明装置中的该音乐播放装置, 为一属于内 建具有自动播放音乐功能的播放装置, 抑或其可进一步结合上述电磁波无线 通信模块,而接受来自使用者所操作的随身电子装置(例如, iPhone或 iPad ) 或其它播音设备所产生的音频信号, 并同步播放音乐。 其中, 若 LED灯源组 中部分晶粒的彩度与另一部分晶粒互属不相同者时, 亦可透过音乐的节奏而 控制并产生不同的照明光线变化。
再举该安全监控装置做说明, 例如, 本发明的感应式照明装置亦可结合 一摄影监视装置与上述电磁波无线通信模块, 以因应监视影像的判断结果, 进而发出控制指令来对特定区域进行大范围的强力照明。
又例如, 本发明的感应式照明装置亦可配合上述光控开关与上述电磁波 无线通信模块, 以使照明空间内的各子区域的明 /暗调节效果, 将可更为平衡 与精确。
另外, 本发明的感应式照明装置亦可结合一声控开关与上述电磁波无线 通信模块, 以因应该声控开关的声控感应结果, 进而发出控制指令来进行照 明或其它功能的无线通信控制。
当然,于本发明的感应式照明装置为一应用于户外的感应式照明装置时, 该感应式照明装置更至少包括一太阳能电池, 以作为一备用电源; 其中, 该 太阳能电池可电性连接于上述控制电路。
以下兹举各种类型的感应式照明装置, 并请配合上述说明, 俾得一更深 入的了解。
请参阅图 1至图 6; 其中, 图 1为本发明的感应式照明装置为一具有微 波感应元件与电磁波无线通信模块的微波感应式 LED灯泡的立体结构示意 图、 图 2为图 1所示微波感应式 LED灯泡中 LED灯源组结合灯泡壳体的立 体结构示意图、图 3为图 1所示微波感应式 LED灯泡中灯泡壳体的立体结构 示意图、图 4为图 1所示微波感应式 LED灯泡中灯泡壳体的另一视角立体结 构示意图、图 5为图 1所示微波感应式 LED灯泡中控制电路的立体结构示意 图、图 6为图 1所示微波感应式 LED灯泡中微波感应元件的部分电路的立体 结构示意图。
其中, 该微波感应式 LED灯泡 1包括一作为照明本体之用的灯泡本体 11、 一微波感应元件 12以及一电磁波无线通信模块 13 ; 其中, 该灯泡本体 11至少包括一控制电路 111与电性连接于该控制电路 111的一 LED灯源组 112; 该微波感应元件 12则设置于该照明本体 11中, 且该微波感应元件 12 电性连接于该控制电路 111 ; 另外, 该电磁波无线通信模块 13设置于该灯泡 本体 11中, 且该电磁波无线通信模块 13电性连接于该控制电路 111。 如此 一来, 该微波感应式 LED灯泡 1即可透过该电磁波无线通信模块 13而遂行 与其它照明装置 (包括感应式与非感应式的照明装置) 间的群组照明控制, 抑或执行其它附加功能的无线通信控制。
再则, 该灯泡本体 11更至少包括一公座接头 113、 一灯泡壳体 114与一 灯泡灯罩 115 ;其中,该公座接头 113设置于该灯泡壳体 114的一端部 1141, 该 LED灯源组 112与该灯泡灯罩 115皆设置于该灯泡壳体 114中相对应于该 端部 1141的另一端部 1142, 且该灯泡灯罩 115罩设该 LED灯源组 112。
其中, 该灯泡壳体 114为一散热结构, 该散热结构 114内部开设有连通 该端部 1141与该另一端部 1142的一安装通孔 1140, 以供容置该控制电路 111中的至少部分元件, 且该散热结构 114的外侧壁设置有散热鳍片 1143。 一较佳做法, 该散热结构 114可为铝合金或其它金属合金的散热结构, 也可 为以具有散热能力的其它材料 (例如, 多孔隙陶瓷) 所形成的散热结构。 且 透过安装通孔 1140及 /或散热鳍片 1143的设计安排, 将可快速散开该 LED 灯源组 112所产生的热源。
至于该灯泡灯罩 115, 其至少可为一方块形罩体、 一圆柱形罩体和一球 形罩体中的任一者; 且不以此为限。
当然, 有关该微波感应元件 12的具体实施概念, 还请参阅图 6; 亦即, 于其中所示者,为该微波感应元件 12中一具有收 /发天线 1210的微波接收电 路 121。 且, 如一般熟悉微波技术者所能知悉, 微波可顺利穿透该灯泡灯罩 115而进行移动体的感应应殆无疑义。
当然, 该微波感应式 LED灯炮 1更可包括一附加的电子装置 14, 其可 为一音乐播放装置、 一安全监控装置、 一声控开关及 /或一光控开关。
请参阅图 7, 其为本发明的感应式照明装置为一具有 PIR感应元件与电 磁波无线通信模块的 PIR感应式 LED灯泡的立体结构示意图。 于其中, 该 PIR感应式 LED灯泡 2包括一灯泡本体 21、 一 PIR感应元件 22以及一电磁 波无线通信模块 23 ; 且, 该灯泡本体 21至少包括一公座接头 213、 一灯泡 壳体 214与一灯泡灯罩 215。至于该灯泡本体 21所更包括的一控制电路(图 未示出),类似于图 1所示控制电路 111,但其因有改电连接于一 PIR感应元 件 22, 因此于感应部分的细部控制电路设计将略有不同于图 1所示的控制电 路 111 ; 惟, 此为本领域普通技术人员所能知悉, 在此即不再赘述。
至于该灯泡本体 21所更包括的一 LED灯源组(图未示出)、该公座接头 213与该灯泡壳体 214, 以及该电磁波无线通信模块 23, 因皆类似图 1中所 示具有相同功能的元件或结构, 在此即不再赘述。
另外, 该灯泡灯罩 215与图 1灯泡灯罩 115的差异点在于, 该 PIR感应 元件 22于遂行感应时, 是不能受到该灯泡灯罩 215的遮蔽, 因此, 该 PIR 感应元件 22将会被设计为凸出于该灯泡灯罩 215。 当然, 该 PIR应式 LED灯炮 2更可包括一附加的电子装置 24, 其可为 一音乐播放装置、 一安全监控装置、 一声控开关及 /或一光控开关。
请参阅图 8, 其为本发明的感应式照明装置为一具有微波感应元件与电 磁波无线通信模块的微波感应式 LED灯管的立体结构示意图。于其中, 该微 波感应式 LED灯管 3包括一作为照明本体之用的灯管本体 31、 一微波感应 元件 32以及一电磁波无线通信模块 33 ; 且, 该灯管本体 31至少包括两灯头 313、 一灯管壳体 314与一灯管灯罩 315。 至于该灯管本体 31所更包括的一 控制电路 (图未示出), 因类似于图 1所示控制电路 111, 在此即不再赘述。
至于该灯管本体 31所更包括的一长条型 LED灯源组 (图未示出) 与该 两灯头 313, 以及该电磁波无线通信模块 33, 因皆类似图 1中所示具有相同 功能的元件或结构, 在此即不再赘述。
又, 于本实施例中的该灯管壳体 314, 为一非封闭圆型灯管壳体 (或为 一非封闭圆型散热结构), 该非封闭圆型散热结构 314 的外侧壁设置有散热 鳍片 3143, 该两灯头 313设置于该非封闭圆型散热结构 314的两端部, 该长 条型 LED灯源组与该灯管灯罩 315皆结合于该非封闭圆型散热结构 314的开 口处,而与该非封闭圆型散热结构 314结合成一封闭圆形的灯管本体;其中, 该灯管灯罩 315可为一 PVC灯管灯罩, 且不以此为限。
较佳地, 该灯管壳体 314属于非封闭灯管壳体, 可不限于是圆形或近圆 形或椭圆或其它特殊圆弧状的非封闭灯管壳体;另外,其也可是非封闭的 1/2 或 3/4圆形灯管壳体, 且不以此为限。
当然, 该微波感应式 LED灯管 3更包括一附加的电子装置 34, 其可为 一音乐播放装置、 一安全监控装置、 一声控开关及 /或一光控开关。
请参阅图 9, 其为本发明的感应式照明装置为一具有 PIR感应元件与电 磁波无线通信模块的 PIR感应式 LED灯管的立体结构示意图。 于其中, 该 PIR感应式 LED灯管 4包括一作为照明本体之用的灯管本体 41、 一 PIR感 应元件 42以及一电磁波无线通信模块 43 ; 且, 该灯管本体 41至少包括两灯 头 413、 一灯管壳体 414与一灯管灯罩 415。
至于该 PIR感应元件 42与该灯管本体 41所更包括的一控制电路 (图未 示出), 因类似于图 7所述的该 PIR感应元件 22与控制电路, 在此即不再赘 述。
另外, 该灯管本体 41所更包括的一长条型 LED灯源组(图未示出)、该 两灯头 413、 该灯管壳体 414与该灯管灯罩 415, 以及该电磁波无线通信模 块 43, 因皆类似图 8中所示具有相同功能的元件或结构, 在此亦不再赘述。
当然, 该 PIR感应式 LED灯管 4更包括一附加的电子装置 44, 其可为 一音乐播放装置、 一安全监控装置、 一声控开关及 /或一光控开关。
请参阅图 10,其为本发明的感应式照明装置为一具有微波感应元件与电 磁波无线通信模块的微波感应式吸顶灯具的立体结构示意图。 于其中, 该微 波感应式吸顶灯具 5包括一作为照明本体之用的吸顶灯具本体 51、一微波感 应元件 52以及一电磁波无线通信模块 53。 其中, 吸顶灯具本体 51至少包括 一控制电路 (图未示出) 与一环形 LED灯源组 512, 且该微波感应元件 52 被组装于吸顶灯具本体 51内。
当然, 该微波感应式吸顶灯具 5更包括一附加的电子装置 54, 其可为一 音乐播放装置、 一安全监控装置、 一声控开关及 /或一光控开关。
请参阅图 11,其为本发明的感应式照明装置为一具有微波感应元件与电 磁波无线通信模块的微波感应式工作灯的立体结构示意图。 于其中, 该微波 感应式工作灯 6 (例如, 可为一喷雾或加湿的微波感应式工作灯) 包括一作 为照明本体之用的工作灯本体 61、 一微波感应元件 62以及一电磁波无线通 信模块 63。 其中, 工作灯本体 61至少包括一工作灯罩 615、 一可旋转挂钩 616、 一控制电路 (图未示出) 与一 LED灯源组 (图未示出), 且该微波感 应元件 62被组装于工作灯本体 61内。
当然, 该微波感应式工作灯 6更包括一附加的电子装置 64, 其可为一音 乐播放装置、 一安全监控装置、 一声控开关及 /或一光控开关。
请参阅图 12,其为本发明的感应式照明装置为一具有微波感应元件与电 磁波无线通信模块的微波感应式花园灯具的立体结构示意图。 于其中, 该微 波感应式花园灯具 7包括一作为照明本体之用的花园灯具本体 71、一微波感 应元件 72以及一电磁波无线通信模块 73。 其中, 花园灯具本体 71至少包括 一控制电路 (图未示出) 与一 LED灯源组 (图未示出), 且该微波感应元件 72被组装于花园灯本体 71内。
当然, 该微波感应式花园灯具 7更包括一附加的电子装置 74, 其可为一 音乐播放装置、 一安全监控装置、 一声控开关及 /或一太阳能电池。
以下将说明以本发明上述的各种感应式照明装置, 予以实施于照明群组 进行控制的具体做法。 请参阅图 13,其为以本发明感应式照明装置组成一感应式照明群组的一 第一较佳群组控制实施概念示意图; 于其中, 在空间 8内共有 5个照明装置 81〜85, 照明装置 81 为一兼具有感应元件与电磁波无线通信模块的感应式 照明装置, 且该感应式照明装置 81 为一至少具有主控功能的感应式照明装 置。
至于该些照明装置 82〜85,则为具有电磁波无线通信模块的非感应式照 明装置(即, 为一般的照明装置), 且该些照明装置 82〜85中的任一照明装 置仅为一具有受控功能的照明装置, 其仅能被动接受无线照明控制而无法主 动发出控制指令 (例如, 照明控制指令) 给其它的照明装置。
如此一来,该感应式照明装置 81即可因应一环境感应结果而主动控制其 本身的灯源组的明暗功能, 且以电磁波无线通信方式同步发出一照明控制指 令 C1 , 以使该些照明装置 82〜85被动因应该照明控制指令 C1而控制该些 照明装置 82〜85中各个灯源组的明暗功能。
上述做法的好处之一, 即可提供于同一空间中仅需安装一个较高成本的 感应式照明装置, 其余照明装置则改采用成本较低的一般性元件而仍可完成 整个空间的照明平衡控制的较佳解决方案; 因此, 此等做法显可大幅降低配 置照明装置所需的初期建置成本。
当然, 上述照明控制指令 C1仅为一示例, 亦可包括执行上述其它附加 功能的控制指令。
再则,有关上述群组照明控制的一第一较佳实施方法,请参阅图 14所示 较佳群组控制实施步骤以及下列说明:
S 11 : 开始;
S 12 : 提供一第一照明装置; 其中, 该第一照明装置至少包括一第一灯 源组、 一第一感应元件、 一第一电磁波无线通信模块、 与电性连接于该第一 灯源组、 该第一感应元件、 该第一磁波无线通信模块的一第一控制电路;
S 13 : 提供一第二照明装置; 其中, 该第二照明装置至少包括一第二灯 源组、 一第二电磁波无线通信模块、 与电性连接于该第二灯源组、 该第二磁 波无线通信模块的一第二控制电路; 以及
S 14 : 因应该第一感应元件的一环境感应结果, 以驱动该第一磁波无线 通信模块与该第二磁波无线通信模块之间建立一通信通道, 俾控制该第一灯 源组及 /或该第二灯源组的明暗功能; S 15 : 结束。
请参阅图 15,其为以本发明感应式照明装置组成一感应式照明群组的一 第二较佳群组控制实施概念示意图; 于其中, 在空间 9内共有 5个照明装置 91〜95, 该些感应式照明装置 91〜95 皆为兼具有感应元件与电磁波无线通 信模块的感应式照明装置, 且该些感应式照明装置 91〜95 皆为兼具有主控 功能 /受控功能的感应式照明装置。
如此一来, 该些照明装置 91〜95 即可因应其个自感应到的子区域内明 暗变化, 以电磁波无线通信方式发送或回传一照明控制指令 C2给其它的照 明装置, 因此, 该些照明装置 91〜95 即需要依据一照明控制程序而彼次相 互协调出一更为精确的照明平衡方案。
当然, 上述照明控制指令 C2仅为一示例, 亦可包括执行上述其它附加 功能的控制指令。
再则,有关上述群组照明控制的一第二较佳实施方法,请参阅图 16所示 较佳群组控制实施步骤以及下列说明:
S21 : 开始;
S22 : 提供一第一照明装置; 其中, 该第一照明装置至少包括一第一灯 源组、 一第一感应元件、 一第一电磁波无线通信模块、 与电性连接于该第一 灯源组、 该第一感应元件、 该第一磁波无线通信模块的一第一控制电路;
S23 : 提供一第二照明装置; 其中, 该第二照明装置至少包括一第二灯 源组、 一第二感应元件、 一第二电磁波无线通信模块、 与电性连接于该第二 灯源组、 该第二磁波无线通信模块的一第二控制电路; 以及
S24 : 因应该第一感应元件及 /或该第二感应元件的一环境感应结果, 以 驱动该第一磁波无线通信模块与该第二磁波无线通信模块之间建立一通信通 道,俾自动执行并因应一照明控制程序而控制该第一灯源组及 /或该第二灯源 组的明暗功能;
S25 : 结束。
另一较佳做法, 是关于不同空间或区域之间的群组控制; 申言之, 其亦 可透过于感应式照明装置中加装磁波无线通信模块而得到解决。 举例而言, 请参阅图 17,其为将图 13与图 15所示较佳群组控制方式结合于一体的一第 三较佳群组控制实施概念示意图。于其中, 该感应式照明装置 81可透过一照 明控制指令 C3以及另一照明控制程序, 而与该些照明装置 91〜95取得沟通 与协调执行功能。
综上所述, 透过本发明的设计与群组控制安排, 显然可轻易解决感应式 照明装置因初期建置成本较高而无法被大量采用的问题, 且不会于搭配其它 感应式照明装置时产生彼此照明干扰或不协调性等等负面情况; 当然, 对于 希望能够更精致化位于同一空间内多个感应式照明装置间的照明控制与平 衡, 本发明也能轻易完成; 更甚者, 如果希望现有感应式照明装置能提供除 感应式照明功能以外,且能结合电磁波无线通信功能的其它附加控制功能(例 如,播放音乐或安全监控或声控等等),本发明也可轻易以低成本的方式实现 群组式控制; 故, 本发明实为一极具产业价值之作。
以上所述仅为本发明的较佳实施例, 并非用以限定本发明的权利要求范 围, 因此凡其它未脱离本发明所揭示的精神下所完成的等效改变或修饰, 均 应包含于本发明的范围内。

Claims

权利要求书
1、 一种感应式照明装置, 包括:
照明本体, 至少包括一控制电路与电性连接于该控制电路的一灯源组; 感应元件,设置于该照明本体中,且该感应元件电性连接于该控制电路; 以及
电磁波无线通信模块, 设置于该照明本体中, 且该电磁波无线通信模块 电性连接于该控制电路。
2、 如权利要求 1所述的感应式照明装置, 至少为一感应式 LED灯泡、 一感应式 LED灯管、 一感应式灯具、 一感应式工作灯中的任一者; 其中, 该 感应式灯具至少为一感应式吸顶灯具或一感应式花园灯具, 而该感应式工作 灯至少为一可喷雾的感应式工作灯或一可加湿的感应式工作灯。
3、 如权利要求 2所述的感应式照明装置, 其中该感应式 LED灯泡包括 一灯泡本体, 作为该照明本体, 且该灯泡本体还至少包括一公座接头、 一灯 泡壳体、一 LED灯源组与一灯泡灯罩; 其中, 该公座接头设置于该灯泡壳体 的一端部,该 LED灯源组与该灯泡灯罩皆设置于该灯泡壳体中相对应于该端 部的另一端部, 且该灯泡灯罩罩设该 LED灯源组。
4、如权利要求 3所述的感应式照明装置,其中该灯泡壳体为一散热结构, 该散热结构内部开设有连通该端部与该另一端部的安装通孔, 以供容置该控 制电路中的至少部分元件, 且该散热结构的外侧壁设置有散热鳍片, 该公座 接头设置于该散热结构的该端部,该 LED灯源组与该灯罩皆设置于该散热结 构的该另一端部。
5、如权利要求 3所述的感应式照明装置,其中该灯泡灯罩至少为一方块 形罩体、 一圆柱形罩体、 一球形罩体中的任一者。
6、 如权利要求 2所述的感应式照明装置, 其中该感应式 LED灯管包括 灯管本体, 作为该照明本体, 且该灯管本体更至少包括两灯头、 一非封闭圆 型灯管壳体、一 LED灯源组与一灯管灯罩; 其中, 该两灯头设置于该非封闭 圆型灯管壳体的两端部,该 LED灯源组与该灯管灯罩皆结合于该非封闭圆型 灯管壳体的开口处, 且该灯管灯罩罩设该 L E D灯源组。
7、如权利要求 6所述的感应式照明装置,其中该非封闭圆型灯管壳体为 一非封闭圆型散热结构, 该非封闭圆型散热结构的外侧壁设置有散热鳍片, 该两灯头设置于该非封闭圆型散热结构的两端部,该 LED灯源组与该灯管灯 罩皆结合于该非封闭圆型散热结构的开口处。
8、如权利要求 6所述的感应式照明装置,其中该灯管灯罩至少为一 PVC 灯管灯罩, 且其与该非封闭圆型灯管壳体结合成一封闭圆形的灯管本体。
9、如权利要求 2所述的感应式照明装置,其中该感应式照明装置至少为 该感应式吸顶灯具、 该感应式花园灯具、 该可喷雾的感应式工作灯、 该可加 湿的感应式工作灯中的任一者时, 该灯源组为包括多个 LED晶粒的 LED灯 源组, 抑或该灯源组为乌丝灯源组或日光灯源组。
10、 如权利要求 3、 6或 9所述的感应式照明装置, 其中该 LED灯源组 为包括多个 LED晶粒的 LED灯源组,且该些 LED晶粒中的各晶粒的色温或 亮度或彩度皆完全相同, 抑或其中至少部分晶粒的色温或亮度或彩度与另一 部分晶粒互不相同。
11、 如权利要求 1所述的感应式照明装置, 其中该感应元件为被动式人 体红外线感应元件, 抑或为微波感应元件。
12、 如权利要求 1所述的感应式照明装置, 其中该电磁波无线通信模块 为属于不可见光频谱段的电磁波无线通信模块, 且该电磁波无线通信模块至 少为一 313.325MHz无线通信模块、 一 433MHz无线通信模块、 一 418 MHz 无线通信模块、一 2.4GHz无线通信模块、一 5.8GHz无线通信模块、一 10GHz 无线通信模块、 一蓝牙无线通信模块、 一 Wi-Fi无线通信模块、 一近场通信 无线通信模块、一 Z- Wave无线通信模块、一 ZigBee无线通信模块中的任一 者。
13、 如权利要求 1所述的感应式照明装置, 还至少包括设置于该照明本 体中的一音乐播放装置、一安全监控装置、声控开关及 /或一光控开关;其中, 该音乐播放装置、 该安全监控装置、 该声控开关或该光控开关电性连接于该 控制电路。
14、 如权利要求 1所述的感应式照明装置, 为应用于户外的感应式照明 装置时, 该感应式照明装置还至少包括一太阳能电池; 其中, 该太阳能电池 电性连接于该控制电路。
15、 一种感应式照明群组, 至少包括:
一第一照明装置, 至少包括一第一灯源组、 一第一感应元件、 一第一电 磁波无线通信模块、 与电性连接于该第一灯源组、 该第一感应元件、 该第一 磁波无线通信模块的一第一控制电路; 以及
一第二照明装置,至少包括一第二灯源组、一第二电磁波无线通信模块、 与电性连接于该第二灯源组、 该第二磁波无线通信模块的一第二控制电路; 其中, 因应该第一感应元件的一环境感应结果, 该第一电磁波无线通信 模块于与第二磁波无线通信模块之间建立一通信通道, 俾控制该第一灯源组 及 /或该第二灯源组的明暗功能。
16、 如权利要求 15所述的感应式照明群组, 其中该第一照明装置为至 少具有主控功能的照明装置, 该第二照明装置为至少具有受控功能的照明装 置, 以使该第一照明装置可因应该环境感应结果而主动控制该第一灯源组的 明暗功能, 且使该第二照明装置被动因应来自该第一照明装置的一控制指令 而控制该第二灯源组的明暗功能。
17、 如权利要求 15或 16所述的感应式照明群组, 其中该第二照明装置 还包括第二感应元件, 用以因应该环境感应结果, 使该第一电磁波无线通信 模块于与第二磁波无线通信模块之间建立该通信信道, 俾控制该第一灯源组 及 /或该第二灯源组的明暗功能。
18、 如权利要求 17所述的感应式照明群组, 其中该第一照明装置与该 第二照明装置皆为兼具有主控功能与被控功能的照明装置, 以使该些照明装 置之间可自动执行并因应一照明控制程序而控制该第一灯源组及 /或该第二 灯源组的明暗功能。
19、 如权利要求 17所述的感应式照明群组, 其中该第一感应元件与第 二感应元件中的任一者, 为被动式人体红外线感应元件, 抑或为微波感应元 件。
20、 如权利要求 17所述的感应式照明群组, 其中该第一照明装置与该 第二照明装置中的任一者, 至少为一感应式 LED灯泡、一感应式 LED灯管、 一感应式灯具、 一感应式工作灯中的任一者; 其中, 该感应式灯具至少为一 感应式吸顶灯具或一感应式花园灯具, 而该感应式工作灯至少为一可喷雾的 感应式工作灯或一可加湿的感应式工作灯。
21、 如权利要求 15所述的感应式照明群组, 其中该第一电磁波无线通 信模块与该第二电磁波无线通信模块中的任一者, 皆为属于不可见光频谱段 的电磁波无线通信模块, 且任一电磁波无线通信模块至少为一 313.325MHz 无线通信模块、 一 433MHz无线通信模块、 一 418MHz无线通信模块、 一 2.4GHz无线通信模块、 一 5.8GHz无线通信模块、 一 10GHz无线通信模块、 一蓝牙无线通信模块、 一 Wi-Fi无线通信模块、 一近场通信无线通信模块、 一 Z-Wave无线通信模块、 一 ZigBee无线通信模块中的任一者。
22、 如权利要求 15所述的感应式照明群组, 其中该第一照明装置与该 第二照明装置中的至少一者, 还包括设置于其中的音乐播放装置、 安全监控 装置、 光控开关、 声控开关及 /或太阳能电池中的至少一者。
23、 一种应用于感应式照明群组的控制方法, 至少包括下列步骤: 提供一第一照明装置; 其中, 该第一照明装置至少包括一第一灯源组、 一第一感应元件、一第一电磁波无线通信模块、与电性连接于该第一灯源组、 该第一感应元件、 该第一磁波无线通信模块的一第一控制电路;
提供一第二照明装置; 其中, 该第二照明装置至少包括一第二灯源组、 一第二电磁波无线通信模块、 与电性连接于该第二灯源组、 该第二磁波无线 通信模块的一第二控制电路; 以及
因应该第一感应元件的一环境感应结果, 以驱动该第一磁波无线通信模 块与该第二磁波无线通信模块之间建立一通信通道,俾控制该第一灯源组及 / 或该第二灯源组的明暗功能。
24、 如权利要求 23所述的应用于感应式照明群组的控制方法, 其中该 第一照明装置为至少具有主控功能的照明装置, 该第二照明装置为至少具有 受控功能的照明装置, 以使该第一照明装置可因应该环境感应结果而主动控 制该第一灯源组的明暗功能, 且使该第二照明装置被动因应来自该第一照明 装置的一控制指令而控制该第二灯源组的明暗功能。
25、 如权利要求 23或 24所述的应用于感应式照明群组的控制方法, 其 中该第二照明装置还包括第二感应元件, 用以因应该环境感应结果, 使该第 一电磁波无线通信模块于与第二磁波无线通信模块之间建立该通信信道, 俾 控制该第一灯源组及 /或该第二灯源组的明暗功能。
26、 如权利要求 25所述的应用于感应式照明群组的控制方法, 其中该 第一照明装置与该第二照明装置皆为兼具有主控功能与被控功能的照明装 置, 以使该些照明装置之间可自动执行并因应一照明控制程序而控制该第一 灯源组及 /或该第二灯源组的明暗功能。
27、 如权利要求 25所述的应用于感应式照明群组的控制方法, 其中该 第一感应元件与第二感应元件中的任一者, 为被动式人体红外线感应元件, 抑或为微波感应元件。
28、 如权利要求 25所述的应用于感应式照明群组的控制方法, 其中该 第一照明装置与该第二照明装置中的任一者, 至少为一感应式 LED灯泡、一 感应式 LED灯管、 一感应式灯具、 一感应式工作灯中的任一者; 其中, 该感 应式灯具至少为一感应式吸顶灯具或一感应式花园灯具, 而该感应式工作灯 至少为一可喷雾的感应式工作灯或一可加湿的感应式工作灯。
29、 如权利要求 23所述的应用于感应式照明群组的控制方法, 其中该 第一电磁波无线通信模块与该第二电磁波无线通信模块中的任一者, 皆为属 于不可见光频谱段的电磁波无线通信模块, 且任一电磁波无线通信模块至少 为一 313.325MHz无线通信模块、 一 433MHz无线通信模块、 一 418MHz无 线通信模块、一 2.4GHz无线通信模块、一 5.8GHz无线通信模块、一 10GHz 无线通信模块、 一蓝牙无线通信模块、 一 Wi-Fi无线通信模块、 一近场通信 无线通信模块、一 Z-Wave无线通信模块、一 ZigBee无线通信模块中的任一 者。
30、 如权利要求 23所述的应用于感应式照明群组的控制方法, 其中该 第一照明装置与该第二照明装置中的至少一者, 还包括设置于其中的音乐播 放装置、安全监控装置、光控开关、声控开关及 /或太阳能电池中的至少一者。
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