Intelligent control method and system for energy-saving lighting lamp

By collecting and analyzing the operating parameters of energy-saving lighting fixtures and the energy-saving level of interactive devices, combined with the illumination area and ambient brightness, intelligent control of energy-saving lighting fixtures was achieved. This solved the problem of incompatibility with energy-saving levels in existing technologies, ensuring the accuracy and stability of control.

CN119767487BActive Publication Date: 2025-11-18LEAD OPTO TECH CO LTD
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Patent Information

Application Number
CN202510113736.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-01-24
Publication Date
2025-11-18
Estimated Expiration
2045-01-24

AI Technical Summary

Technical Problem

Existing energy-saving lighting fixtures are not compatible with energy-saving ratings when interacting with interactive devices, affecting the accuracy and stability of intelligent control.

Method used

Energy-saving levels are defined by collecting multiple operating parameters, power consumption, and service life of energy-saving lighting lamps. An energy-saving system is formed by combining the energy-saving levels of interactive devices. Intelligent control of the operating power is triggered based on the illumination area, ambient brightness, and current time to generate an illumination change map for intelligent control.

Benefits of technology

It achieves multi-dimensional energy-saving level compatibility between interactive devices and energy-saving lighting, ensuring the accuracy of the energy-saving system and the working stability of the lighting.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The application discloses an intelligent control method and system of an energy-saving lighting lamp, forms an energy-saving system according to the energy-saving grade of an interactive device and the energy-saving grade of the energy-saving lighting lamp, and guarantees the accuracy of the energy-saving system. Further, the illumination intensity required by the energy-saving lighting lamp is defined based on the illumination area of the energy-saving lighting lamp, the ambient brightness of the corresponding use environment and the current time, the intelligent control of the working power of the energy-saving lighting lamp is triggered according to the illumination intensity required by the energy-saving lighting lamp and the energy-saving system, the working power change graph is formed according to multiple working powers, the energy-saving lighting lamp and the corresponding use environment, the illumination change graph of the energy-saving lighting lamp is defined based on multiple illumination brightnesses of the energy-saving lighting lamp, the intelligent control of the energy-saving lighting lamp is triggered based on the working power change graph and the illumination change graph of the energy-saving lighting lamp, the intelligent control of the energy-saving lighting lamp is realized, and the working stability of the energy-saving lighting lamp is guaranteed.
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Description

Technical Field

[0001] This invention relates to the technical field of energy-saving lighting, and more particularly to an intelligent control method and system for energy-saving lighting. Background Technology

[0002] With the development of technology, energy-saving lighting has been applied to people's lives. Energy-saving lighting is widely used in some energy-saving scenarios, making full use of its energy-saving and lighting characteristics. In the existing technology, energy-saving lighting provides external lighting based on a preset energy-saving mode. However, this energy-saving lighting also interacts with interactive devices, which is not compatible with the energy-saving level of the lighting, thus affecting the intelligent control of the lighting. Summary of the Invention

[0003] The purpose of this invention is to overcome the shortcomings of existing technologies. This invention provides an intelligent control method and system for energy-saving lighting. When the energy-saving lighting is in operation, multiple operating parameters of the lighting are collected. Based on these operating parameters, the energy consumption of the lighting, and its service life, the energy-saving level of the lighting is defined. Data is collected on the interactive devices that interact with the lighting. An energy-saving system is formed based on the energy-saving levels of the interactive devices and the lighting, incorporating a holistic consideration of both energy-saving levels. This achieves multi-dimensional control of the energy-saving levels of both devices and lighting, ensuring the accuracy of the energy-saving system.

[0004] Furthermore, based on the illumination area of ​​the energy-saving lamp, the ambient brightness of the corresponding usage environment, and the current time, the required light intensity of the energy-saving lamp is defined. The intelligent control of the energy-saving lamp's operating power is triggered according to the required light intensity and the energy-saving system. A power variation graph is generated based on multiple operating power values, the energy-saving lamp, and the corresponding usage environment. A light variation graph for the energy-saving lamp is defined based on multiple illuminance values. The intelligent control of the energy-saving lamp is triggered based on this power variation graph and the light variation graph, thus achieving intelligent control of the energy-saving lamp and ensuring its operational stability.

[0005] This invention provides an intelligent control method for energy-saving lighting, applicable to intelligent control scenarios for energy-saving lighting;

[0006] The intelligent control method for the energy-saving lighting lamp includes:

[0007] When the energy-saving lighting is in operation, collect multiple operating parameters of the energy-saving lighting.

[0008] The energy efficiency rating of energy-saving lighting is defined based on multiple operating parameters, the power consumption of energy-saving lighting, and the service life of energy-saving lighting.

[0009] The interactive device that interacts with the energy-saving lighting lamp;

[0010] An energy-saving system is formed based on the energy-saving level of interactive devices and the energy-saving level of energy-saving lighting.

[0011] Based on the illumination area of ​​the energy-saving lamp, the ambient brightness of the corresponding usage environment, and the current time, the required light intensity of the energy-saving lamp is defined, and the intelligent control of the working power of the energy-saving lamp is triggered according to the required light intensity and the energy-saving system.

[0012] A power variation diagram is generated based on multiple operating power values, energy-saving lighting fixtures, and corresponding usage environments. An illumination variation diagram for energy-saving lighting fixtures is defined based on multiple illuminance values. Intelligent control of energy-saving lighting fixtures is triggered based on this power variation diagram and the illumination variation diagram.

[0013] Optionally, when the energy-saving light is in operation, collecting multiple operating parameters of the energy-saving light includes:

[0014] Collect operating signals from energy-saving lighting;

[0015] Multiple status parameters are collected based on the tracing of the working signals of energy-saving lighting lamps;

[0016] The operating status of energy-saving lighting is defined based on multiple status parameters;

[0017] The system performs autonomous testing on energy-saving lighting fixtures while they are in operation.

[0018] Optionally, defining the energy-saving level of the energy-saving lighting based on multiple operating parameters, the power consumption of the energy-saving lighting, and the service life of the energy-saving lighting includes:

[0019] Freeze multiple working parameters;

[0020] Collect multiple current parameters of energy-saving lighting lamps and match the corresponding current change graphs based on these multiple current parameters;

[0021] Based on the current change diagram and the model definition of energy-saving lighting, the power consumption of energy-saving lighting is...

[0022] It relates to multiple operating parameters, the power consumption of energy-saving lighting, and the service life of energy-saving lighting;

[0023] The first energy-saving parameter is defined based on multiple operating parameters and the power consumption of the energy-saving lighting lamp; the second energy-saving parameter is defined based on multiple operating parameters and the service life of the energy-saving lighting lamp.

[0024] The energy efficiency rating of energy-saving lighting is defined based on the first energy efficiency parameter, the second energy efficiency parameter, and the energy efficiency matching table.

[0025] Optionally, the interactive device for collecting data on interactions with the energy-saving lighting lamp includes:

[0026] The interaction signals of this energy-saving lighting fixture are captured.

[0027] The interaction space of the energy-saving lighting is defined based on the tracing of the interaction signals of the energy-saving lighting.

[0028] Iterate through the interactive space;

[0029] The interactive devices that interact with the energy-saving light are collected by traversing the interactive space.

[0030] Optionally, the energy-saving system formed based on the energy-saving level of the interactive device and the energy-saving level of the energy-saving lighting includes:

[0031] Freeze-frame interactive devices;

[0032] The interactive device is monitored in real time, and multiple loss coefficients of the interactive device are collected.

[0033] The energy-saving level of the interactive device is matched based on multiple loss coefficients of the interactive device.

[0034] Energy efficiency ratings of related interactive devices and energy-saving lighting fixtures;

[0035] An energy-saving system is formed based on the energy-saving levels of interactive devices and energy-saving lighting.

[0036] Optionally, the intelligent control of the energy-saving lighting system, which defines the required light intensity based on the illumination area of ​​the energy-saving lighting, the ambient brightness of the corresponding usage environment, and the current time, and triggers the operating power of the energy-saving lighting system based on the required light intensity and the energy-saving system, includes:

[0037] Collect the location of energy-saving lighting fixtures;

[0038] The illumination area of ​​an energy-saving light source is defined based on its location, corresponding luminous surface, and specifications.

[0039] Optionally, the intelligent control of the energy-saving lighting system, which defines the required light intensity based on the illumination area of ​​the energy-saving lighting, the ambient brightness of the corresponding usage environment, and the current time, and triggers the operating power of the energy-saving lighting based on the required light intensity and the energy-saving system, further includes:

[0040] The illumination area of ​​the associated energy-saving lighting, the ambient brightness of the corresponding usage environment, and the current time;

[0041] The required light intensity for energy-saving lighting is defined based on the illumination area of ​​the energy-saving lighting, the ambient brightness of the corresponding usage environment, and the current time.

[0042] This relates to the required light intensity and energy-saving system of the energy-efficient lighting fixture.

[0043] The system intelligently controls the operating power of the energy-saving lighting fixture based on the required light intensity and the energy-saving system's triggering mechanism.

[0044] Optionally, the step of forming a power variation map based on multiple operating power levels, energy-saving lamps, and corresponding usage environments, defining an illumination variation map for energy-saving lamps based on multiple luminance levels, and triggering intelligent control of energy-saving lamps based on the power variation map and the illumination variation map includes:

[0045] Stabilize multiple operating power levels;

[0046] Associate multiple operating power ratings, energy-saving lighting fixtures, and their corresponding usage environments;

[0047] A power variation graph is generated based on multiple operating power levels, energy-saving lighting fixtures, and their corresponding usage environments;

[0048] The illumination variation diagram of energy-saving lighting lamps is defined based on multiple illumination intensities.

[0049] Optionally, the step of forming a power variation map based on multiple operating power levels, energy-saving lamps, and corresponding usage environments, defining an illumination variation map for energy-saving lamps based on multiple luminance levels, and triggering intelligent control of energy-saving lamps based on the power variation map and the illumination variation map of energy-saving lamps, further includes:

[0050] Corresponding to the power consumption change graph and the illumination change graph of the energy-saving lighting;

[0051] The intelligent control of the energy-saving lighting is triggered based on the power change diagram and the illumination change diagram of the energy-saving lighting.

[0052] In addition, this invention also provides an intelligent control system for an energy-saving lighting lamp, the intelligent control system for the energy-saving lighting lamp comprising:

[0053] The data acquisition module is used to collect multiple operating parameters of the energy-saving lighting lamp when it is in operation.

[0054] The energy-saving rating module is used to define the energy-saving rating of energy-saving lighting based on multiple operating parameters, the power consumption of energy-saving lighting, and the service life of energy-saving lighting.

[0055] An interactive device module is used to collect data on the interactive devices that interact with the energy-saving light bulb.

[0056] The energy-saving system module is used to form an energy-saving system based on the energy-saving level of the interactive device and the energy-saving level of the energy-saving lighting.

[0057] The working power module is used to define the light intensity required by the energy-saving lamp based on the illumination area of ​​the energy-saving lamp, the ambient brightness of the corresponding usage environment, and the current time. Based on the light intensity required by the energy-saving lamp and the energy-saving system, the module intelligently controls the working power of the energy-saving lamp.

[0058] The intelligent control module is used to generate a working power variation map based on multiple working power, energy-saving lights and corresponding usage environment, define an illumination variation map of energy-saving lights based on multiple illuminance values ​​of energy-saving lights, and trigger intelligent control of energy-saving lights based on the working power variation map and the illumination variation map of energy-saving lights.

[0059] In this embodiment of the invention, the method collects multiple operating parameters of the energy-saving lamp when it is in operation; defines the energy-saving level of the lamp based on these parameters, its power consumption, and its service life; collects data on the interactive device that interacts with the lamp; and forms an energy-saving system based on the energy-saving levels of both the interactive device and the lamp. This system comprehensively considers both energy-saving levels, achieving multi-dimensional control over both levels and ensuring the accuracy of the energy-saving system.

[0060] Furthermore, based on the illumination area of ​​the energy-saving lamp, the ambient brightness of the corresponding usage environment, and the current time, the required light intensity of the energy-saving lamp is defined. The intelligent control of the energy-saving lamp's operating power is triggered according to the required light intensity and the energy-saving system. A power variation graph is generated based on multiple operating power values, the energy-saving lamp, and the corresponding usage environment. A light variation graph for the energy-saving lamp is defined based on multiple illuminance values. The intelligent control of the energy-saving lamp is triggered based on this power variation graph and the light variation graph, thus achieving intelligent control of the energy-saving lamp and ensuring its operational stability. Attached Figure Description

[0061] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0062] Figure 1 This is a flowchart illustrating the intelligent control method for energy-saving lighting in an embodiment of the present invention.

[0063] Figure 2 This is a flowchart illustrating step S11 of the intelligent control method for energy-saving lighting in an embodiment of the present invention.

[0064] Figure 3 This is a flowchart illustrating step S12 of the intelligent control method for energy-saving lighting in an embodiment of the present invention.

[0065] Figure 4 This is a flowchart illustrating step S13 of the intelligent control method for energy-saving lighting in an embodiment of the present invention.

[0066] Figure 5 This is a flowchart illustrating step S14 of the intelligent control method for energy-saving lighting in an embodiment of the present invention.

[0067] Figure 6 This is a flowchart illustrating step S15 of the intelligent control method for energy-saving lighting in an embodiment of the present invention.

[0068] Figure 7 This is a flowchart illustrating step S16 of the intelligent control method for energy-saving lighting in an embodiment of the present invention.

[0069] Figure 8 This is a schematic diagram of the structural composition of the intelligent control system for the energy-saving lighting lamp in an embodiment of the present invention;

[0070] Figure 9 This is a hardware diagram of an electronic device according to an exemplary embodiment. Detailed Implementation

[0071] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0072] Please see Figures 1 to 9 An intelligent control method for energy-saving lighting is provided, applied to intelligent control scenarios for energy-saving lighting. The intelligent control method for energy-saving lighting includes:

[0073] Step S11: When the energy-saving light is in operation, collect multiple operating parameters of the energy-saving light;

[0074] Step S12: Define the energy-saving level of the energy-saving lamp based on multiple operating parameters, the power consumption of the energy-saving lamp, and the service life of the energy-saving lamp;

[0075] Step S13: Collect data on the interactive devices that interact with the energy-saving light bulb;

[0076] Step S14: Form an energy-saving system based on the energy-saving level of the interactive device and the energy-saving level of the energy-saving lighting;

[0077] Step S15: Based on the illumination area of ​​the energy-saving lamp, the ambient brightness of the corresponding usage environment, and the current time, define the light intensity required by the energy-saving lamp, and trigger intelligent control of the working power of the energy-saving lamp according to the light intensity required by the energy-saving lamp and the energy-saving system.

[0078] Step S16: Based on multiple operating power levels, energy-saving lighting fixtures, and corresponding usage environments, a power change graph is generated. Based on multiple illuminance levels of the energy-saving lighting fixtures, a light change graph for the energy-saving lighting fixtures is defined. Based on this power change graph and the light change graph for the energy-saving lighting fixtures, the intelligent control of the energy-saving lighting fixtures is triggered.

[0079] In this embodiment of the invention, the method collects multiple operating parameters of the energy-saving lamp when it is in operation; defines the energy-saving level of the lamp based on these parameters, its power consumption, and its service life; collects data on the interactive device that interacts with the lamp; and forms an energy-saving system based on the energy-saving levels of both the interactive device and the lamp. This system comprehensively considers both energy-saving levels, achieving multi-dimensional control over both levels and ensuring the accuracy of the energy-saving system.

[0080] Furthermore, based on the illumination area of ​​the energy-saving lamp, the ambient brightness of the corresponding usage environment, and the current time, the required light intensity of the energy-saving lamp is defined. The intelligent control of the energy-saving lamp's operating power is triggered according to the required light intensity and the energy-saving system. A power variation graph is generated based on multiple operating power values, the energy-saving lamp, and the corresponding usage environment. A light variation graph for the energy-saving lamp is defined based on multiple illuminance values. The intelligent control of the energy-saving lamp is triggered based on this power variation graph and the light variation graph, thus achieving intelligent control of the energy-saving lamp and ensuring its operational stability.

[0081] refer to Figure 2 In step S11, when the energy-saving lamp is in working condition, multiple operating parameters of the energy-saving lamp are collected.

[0082] In the specific implementation of this invention, the specific steps can be as follows:

[0083] S111: Collects the operating signal of energy-saving lighting;

[0084] S112: Collect multiple status parameters based on the tracing of the working signals of energy-saving lighting lamps;

[0085] S113: Define the operating status of the energy-saving lighting lamp based on multiple status parameters;

[0086] S114: Perform autonomous testing on energy-saving lighting fixtures while they are in operation.

[0087] In the embodiments of this application, the working signal of the energy-saving lighting is collected; multiple state parameters are collected by tracing the working signal of the energy-saving lighting; the working state of the energy-saving lighting is defined according to the multiple state parameters. The introduction of multiple state parameters and the overall consideration of multiple state parameters realize multi-dimensional control of multiple state parameters, ensuring the accuracy of the working state of the energy-saving lighting. At the same time, when the energy-saving lighting is in the working state, the energy-saving lighting is autonomously detected, so as to realize the autonomous detection of the energy-saving lighting.

[0088] refer to Figure 3 In step S12, the energy-saving level of the energy-saving lamp is defined based on multiple operating parameters, the power consumption of the energy-saving lamp, and the service life of the energy-saving lamp.

[0089] In the specific implementation of this invention, the specific steps can be as follows:

[0090] S121: Freeze multiple operating parameters;

[0091] S122: Collect multiple current parameters of energy-saving lighting lamps and match the corresponding current change graphs based on the multiple current parameters;

[0092] S123: Define the power consumption of energy-saving lighting lamps based on the current change diagram and the model of the energy-saving lighting lamp;

[0093] S124: Associates multiple operating parameters, energy consumption of energy-saving lighting, and service life of energy-saving lighting;

[0094] S125: Define a first energy-saving parameter based on multiple operating parameters and the power consumption of the energy-saving lighting lamp; define a second energy-saving parameter based on multiple operating parameters and the service life of the energy-saving lighting lamp.

[0095] S126: Define the energy-saving level of energy-saving lighting lamps based on the first energy-saving parameter, the second energy-saving parameter, and the energy-saving matching table.

[0096] In the embodiments of this application, multiple operating parameters are fixed; simultaneously, multiple current parameters of the energy-saving lighting lamp are collected, and corresponding current change graphs are matched according to the multiple current parameters; the power consumption of the energy-saving lighting lamp is defined according to the current change graph and the model of the energy-saving lighting lamp, which takes into account the overall consideration of the current change graph and the model of the energy-saving lighting lamp, realizes multi-dimensional control of the current change graph and the model of the energy-saving lighting lamp, ensures the accuracy of the power consumption of the energy-saving lighting lamp, and deeply manages the power consumption of the energy-saving lighting lamp.

[0097] Therefore, multiple operating parameters, the power consumption of the energy-saving lighting fixture, and its service life are considered. A first energy-saving parameter is defined based on these parameters, and a second energy-saving parameter is defined based on these parameters and the service life of the lighting fixture. The energy-saving level of the lighting fixture is defined based on the first and second energy-saving parameters and the energy-saving matching table. This comprehensive approach considers the first and second energy-saving parameters and the energy-saving matching table, achieving accuracy in the energy-saving level of the lighting fixture.

[0098] refer to Figure 4 In step S13, the interactive device that interacts with the energy-saving lighting lamp is collected;

[0099] In the specific implementation of this invention, the specific steps can be as follows:

[0100] S131: The interaction signal for fixing this energy-saving lighting lamp;

[0101] S132: Define the interaction space of the energy-saving lighting lamp based on the tracing of the interaction signal of the energy-saving lighting lamp;

[0102] S133: Traverse the interactive space;

[0103] S134: The interactive device that interacts with the energy-saving light is collected based on the traversal of the interactive space.

[0104] In the embodiments of this application, the interaction signal of the energy-saving lamp is fixed, and the interaction signal of the energy-saving lamp is introduced to further control the interaction signal of the energy-saving lamp.

[0105] Therefore, the interaction space of the energy-saving light is defined by tracing the interaction signals of the energy-saving light; the interaction space is traversed; based on the traversal of the interaction space, the interaction devices that interact with the energy-saving light are collected, thereby fixing the interaction devices and further controlling the interaction devices.

[0106] refer to Figure 5 S14: An energy-saving system is formed based on the energy-saving level of the interactive equipment and the energy-saving level of the energy-saving lighting.

[0107] In the specific implementation of this invention, the specific steps can be as follows:

[0108] S141: Freeze-motion interactive device;

[0109] S142: Monitor the interactive device in real time and collect multiple loss coefficients of the interactive device;

[0110] S143: Match the energy-saving level of the interactive device based on multiple loss coefficients of the interactive device;

[0111] S144: Energy efficiency rating of associated interactive devices and energy efficiency rating of energy-saving lighting fixtures;

[0112] S145: An energy-saving system is formed based on the energy-saving level of interactive devices and the energy-saving level of energy-saving lighting.

[0113] In the embodiments of this application, when the energy-saving lamp is in operation, multiple operating parameters of the energy-saving lamp are collected; the energy-saving level of the energy-saving lamp is defined based on the multiple operating parameters, the power consumption of the energy-saving lamp, and the service life of the energy-saving lamp; the energy-saving system of the interactive device interacting with the energy-saving lamp is collected; and an energy-saving system is formed based on the energy-saving level of the interactive device and the energy-saving level of the energy-saving lamp. This system takes into account the overall energy-saving level of both the interactive device and the energy-saving lamp, achieving multi-dimensional control over the energy-saving level of both the interactive device and the energy-saving lamp, and ensuring the accuracy of the energy-saving system.

[0114] At this point, the interactive device is frozen in time, and multiple loss coefficients of the interactive device are collected and introduced. Based on these multiple loss coefficients, the energy-saving level of the interactive device is matched, thereby controlling the energy-saving level of the interactive device.

[0115] Furthermore, the energy-saving levels of the interactive devices and energy-saving lighting are linked; an energy-saving system is formed based on the energy-saving levels of the interactive devices and energy-saving lighting, which takes into account the overall energy-saving levels of the interactive devices and energy-saving lighting, and realizes multi-dimensional control over the energy-saving levels of the interactive devices and energy-saving lighting, thus ensuring the accuracy of the energy-saving system.

[0116] refer to Figure 6 S15: Based on the illumination area of ​​the energy-saving lamp, the ambient brightness of the corresponding usage environment, and the current time, define the light intensity required by the energy-saving lamp, and intelligently control the working power of the energy-saving lamp according to the light intensity required by the energy-saving lamp and the energy-saving system.

[0117] In the specific implementation of this invention, the specific steps can be as follows:

[0118] S151: Collect the location of the energy-saving lighting fixture;

[0119] S152: Define the illumination area of ​​the energy-saving lamp according to its location, corresponding light-emitting surface, and specifications.

[0120] S153: Associate the illumination area of ​​the energy-saving lighting fixture, the ambient brightness of the corresponding usage environment, and the current time;

[0121] S154: Define the required light intensity of the energy-saving lighting lamp based on the illumination area of ​​the energy-saving lighting lamp, the ambient brightness of the corresponding usage environment, and the current time;

[0122] S155: Related to the light intensity required by this energy-saving lighting fixture and its energy-saving system;

[0123] S156: Intelligent control of the working power of the energy-saving lighting lamp based on the light intensity required by the energy-saving lighting lamp and the energy-saving system.

[0124] In the embodiments of this application, the location of the energy-saving lamp is collected; the illumination area of ​​the energy-saving lamp is defined according to its location, corresponding luminous surface, and specifications. By introducing the location, luminous surface, and specifications of the energy-saving lamp as a whole, the location, luminous surface, and specifications of the energy-saving lamp are considered as a whole, achieving multi-dimensional control of these factors and ensuring the accuracy of the illumination area of ​​the energy-saving lamp.

[0125] At this point, the system associates the illumination area of ​​the energy-saving lighting fixture with the ambient brightness of the corresponding environment and the current time. Based on the illumination area of ​​the energy-saving lighting fixture, the ambient brightness of the corresponding environment, and the current time, the system defines the required light intensity of the energy-saving lighting fixture. This comprehensive consideration of the illumination area of ​​the energy-saving lighting fixture, the ambient brightness of the corresponding environment, and the current time enables multi-dimensional control of these factors, ensuring the accuracy of the required light intensity of the energy-saving lighting fixture.

[0126] Furthermore, the system is linked to the light intensity required by the energy-saving lighting fixture and the energy-saving system; based on the light intensity required by the energy-saving lighting fixture and the energy-saving system, the system triggers intelligent control of the working power of the energy-saving lighting fixture, thereby achieving multi-dimensional control of the working power of the energy-saving lighting fixture.

[0127] refer to Figure 7 S16: Based on multiple operating power, energy-saving lighting lamps and corresponding usage environment, a working power change diagram is formed; based on multiple luminous intensities of energy-saving lighting lamps, a light change diagram of energy-saving lighting lamps is defined; based on the working power change diagram and the light change diagram of energy-saving lighting lamps, intelligent control of energy-saving lighting lamps is triggered.

[0128] In the specific implementation of this invention, the specific steps can be as follows:

[0129] S161: Fixed multiple operating power levels;

[0130] S162: Associates multiple operating power, energy-saving lighting fixtures, and their corresponding usage environments;

[0131] S163: A power variation diagram is generated based on multiple operating power ratings, energy-saving lighting fixtures, and corresponding usage environments;

[0132] S164: Illumination variation diagram of energy-saving lighting lamps based on multiple illuminance definitions;

[0133] S165: Associate the power consumption change graph with the illumination change graph of the energy-saving lighting lamp;

[0134] S166: Based on the power change diagram and the illumination change diagram of the energy-saving lighting, trigger the intelligent control of the energy-saving lighting.

[0135] In the specific implementation of this invention, the required light intensity of the energy-saving lighting is defined based on the illumination area of ​​the energy-saving lighting, the ambient brightness of the corresponding usage environment, and the current time. The intelligent control of the energy-saving lighting's operating power is triggered based on the required light intensity and the energy-saving system. A power variation graph is formed based on multiple operating powers, the energy-saving lighting, and the corresponding usage environment. An illumination variation graph of the energy-saving lighting is defined based on multiple illuminance values ​​of the energy-saving lighting. The intelligent control of the energy-saving lighting is triggered based on this power variation graph and the illumination variation graph, thus realizing intelligent control of the energy-saving lighting and ensuring its operational stability.

[0136] At this point, multiple operating power levels are fixed, and multiple operating power levels, energy-saving lighting fixtures, and corresponding usage environments are associated with them. Based on these multiple operating power levels, energy-saving lighting fixtures, and corresponding usage environments, an operating power variation graph is generated. This approach takes into account the overall consideration of multiple operating power levels, energy-saving lighting fixtures, and corresponding usage environments, achieving multi-dimensional control over these factors and ensuring the accuracy of the operating power variation graph.

[0137] Furthermore, based on multiple illuminance values ​​of the energy-saving lighting fixture, a light variation diagram of the energy-saving lighting fixture is defined; this diagram is linked to the operating power variation diagram and the light variation diagram of the energy-saving lighting fixture; based on this diagram and the light variation diagram of the energy-saving lighting fixture, intelligent control of the energy-saving lighting fixture is triggered. This approach takes into account the overall consideration of both the operating power variation diagram and the light variation diagram of the energy-saving lighting fixture, achieving multi-dimensional control of both diagrams and realizing intelligent control of the energy-saving lighting fixture.

[0138] Simultaneously, a power variation diagram is generated based on multiple operating power levels, energy-saving lighting fixtures, and corresponding usage environments. An illumination variation diagram for energy-saving lighting fixtures is defined based on multiple illuminance levels. The intelligent control of energy-saving lighting fixtures is triggered based on this power variation diagram and the illumination variation diagram, thus realizing intelligent control of energy-saving lighting fixtures and ensuring their operational stability.

[0139] In this embodiment of the invention, the method collects multiple operating parameters of the energy-saving lamp when it is in operation; defines the energy-saving level of the lamp based on these parameters, its power consumption, and its service life; collects data on the interactive device that interacts with the lamp; and forms an energy-saving system based on the energy-saving levels of both the interactive device and the lamp. This system comprehensively considers both energy-saving levels, achieving multi-dimensional control over both levels and ensuring the accuracy of the energy-saving system.

[0140] Furthermore, based on the illumination area of ​​the energy-saving lamp, the ambient brightness of the corresponding usage environment, and the current time, the required light intensity of the energy-saving lamp is defined. The intelligent control of the energy-saving lamp's operating power is triggered according to the required light intensity and the energy-saving system. A power variation graph is generated based on multiple operating power values, the energy-saving lamp, and the corresponding usage environment. A light variation graph for the energy-saving lamp is defined based on multiple illuminance values. The intelligent control of the energy-saving lamp is triggered based on this power variation graph and the light variation graph, thus achieving intelligent control of the energy-saving lamp and ensuring its operational stability.

[0141] Please see Figure 8 , Figure 8 This is a schematic diagram of the structural composition of the intelligent control system for an energy-saving lighting lamp in an embodiment of the present invention.

[0142] like Figure 8 As shown, an intelligent control system for an energy-saving lighting lamp includes:

[0143] The data acquisition module 21 is used to acquire multiple operating parameters of the energy-saving lighting lamp when it is in operation.

[0144] Energy-saving rating module 22 is used to define the energy-saving rating of energy-saving lighting based on multiple operating parameters, the power consumption of energy-saving lighting, and the service life of energy-saving lighting.

[0145] Interactive device module 23 is used to collect data on interactive devices that interact with the energy-saving light bulb;

[0146] Energy-saving system module 24 is used to form an energy-saving system based on the energy-saving level of the interactive device and the energy-saving level of the energy-saving lighting.

[0147] The working power module 25 is used to define the light intensity required by the energy-saving lighting lamp based on the illumination area of ​​the energy-saving lighting lamp, the ambient brightness of the corresponding usage environment, and the current time, and to intelligently control the working power of the energy-saving lighting lamp according to the light intensity required by the energy-saving lighting lamp and the energy-saving system.

[0148] The intelligent control module 26 is used to generate a working power variation diagram based on multiple working power, energy-saving lighting lamps and corresponding usage environment, define an illumination variation diagram of energy-saving lighting lamps based on multiple illuminance values ​​of energy-saving lighting lamps, and trigger intelligent control of energy-saving lighting lamps based on the working power variation diagram and the illumination variation diagram of energy-saving lighting lamps.

[0149] Please see Figure 9 See below for reference. Figure 9 To describe an electronic device 40 according to this embodiment of the present invention. Figure 9 The electronic device 40 shown is merely an example and should not impose any limitation on the functionality and scope of use of the embodiments of the present invention.

[0150] like Figure 9 As shown, the electronic device 40 is manifested in the form of a general-purpose computing device. The components of the electronic device 40 may include, but are not limited to: at least one processing unit 41, at least one storage unit 42, and a bus 43 connecting different system components (including storage unit 42 and processing unit 41).

[0151] The storage unit stores program code, which can be executed by the processing unit 41 to perform the steps described in the "Embodiment Methods" section of this specification according to various exemplary embodiments of the present invention.

[0152] Storage unit 42 may include a readable medium in the form of a volatile storage unit, such as random access memory (RAM) 421 and / or cache memory 422, and may further include a read-only memory (ROM) 423.

[0153] Storage unit 42 may also include a program / utility 424 having a set (at least one) of program modules 425, including but not limited to: an operating system, one or more application programs, other program modules, and program data, each or some combination of these examples may include an implementation of a network environment.

[0154] Bus 43 can represent one or more of several types of bus structures, including a memory cell bus or memory cell controller, a peripheral bus, a graphics acceleration port, a processing unit, or a local bus using any of the multiple bus structures.

[0155] Electronic device 40 can also communicate with one or more external devices (e.g., keyboard, pointing device, Bluetooth device, etc.), and with one or more devices that enable a user to interact with electronic device 40, and / or with any device that enables electronic device 40 to communicate with one or more other computing devices (e.g., router, modem, etc.). This communication can be performed through input / output (I / O) interface 44. Furthermore, electronic device 40 can also communicate with one or more networks (e.g., local area network (LAN), wide area network (WAN), and / or public networks, such as the Internet) through network adapter 45. Figure 9 As shown, network adapter 45 communicates with other modules of electronic device 40 via bus 43. It should be understood that, although... Figure 9 As not shown, other hardware and / or software modules may be used in conjunction with electronic device 40, including but not limited to: microcode, device drivers, redundant processing units, external disk drive arrays, RAID systems, tape drives, and data backup planning systems.

[0156] From the above description of the embodiments, those skilled in the art will readily understand that the exemplary embodiments described herein can be implemented by software or by combining software with necessary hardware. Therefore, the technical solutions according to the embodiments of this disclosure can be embodied in the form of a software product, which can be stored in a non-volatile storage medium (such as a CD-ROM, USB flash drive, external hard drive, etc.) or on a network, including several instructions to cause a computing device (such as a personal computer, server, terminal device, or network device, etc.) to execute the methods according to the embodiments of this disclosure.

[0157] Those skilled in the art will understand that all or part of the steps in the various methods of the above embodiments can be implemented by a program instructing related hardware. This program can be stored in a computer-readable storage medium, which may include: read-only memory (ROM), random access memory (RAM), a magnetic disk, or an optical disk, etc. Furthermore, it stores computer program instructions, which, when executed by a computer, cause the computer to perform the methods described above.

[0158] Furthermore, the intelligent control method and system for energy-saving lighting provided in the embodiments of the present invention have been described in detail above. Specific examples have been used to illustrate the principles and implementation methods of the present invention. The description of the above embodiments is only for the purpose of helping to understand the method and core ideas of the present invention. At the same time, for those skilled in the art, there will be changes in the specific implementation methods and application scope based on the ideas of the present invention. Therefore, the content of this specification should not be construed as a limitation of the present invention.

Claims

1. An intelligent control method for an energy-saving lighting lamp, characterized in that, Applications include intelligent control scenarios for energy-saving lighting fixtures; The intelligent control method for the energy-saving lighting lamp includes: When the energy-saving lighting is in operation, collect multiple operating parameters of the energy-saving lighting. The energy efficiency rating of energy-saving lighting is defined based on multiple operating parameters, the power consumption of energy-saving lighting, and the service life of energy-saving lighting. The interactive device that interacts with the energy-saving lighting lamp; An energy-saving system is formed based on the energy-saving level of interactive devices and the energy-saving level of energy-saving lighting. Based on the illumination area of ​​the energy-saving lamp, the ambient brightness of the corresponding usage environment, and the current time, the required light intensity of the energy-saving lamp is defined, and the intelligent control of the working power of the energy-saving lamp is triggered according to the required light intensity and the energy-saving system. A power variation diagram is generated based on multiple operating power values, energy-saving lighting fixtures, and corresponding usage environments. An illumination variation diagram for energy-saving lighting fixtures is defined based on multiple illuminance values. Intelligent control of energy-saving lighting fixtures is triggered based on this power variation diagram and the illumination variation diagram.

2. The intelligent control method for energy-saving lighting according to claim 1, characterized in that, When the energy-saving light is in operation, multiple operating parameters of the energy-saving light are collected, including: Collect operating signals from energy-saving lighting; Multiple status parameters are collected based on the tracing of the working signals of energy-saving lighting lamps; The operating status of energy-saving lighting is defined based on multiple status parameters; The system performs autonomous testing on energy-saving lighting fixtures while they are in operation.

3. The intelligent control method for energy-saving lighting according to claim 1, characterized in that, The energy efficiency rating of energy-saving lighting is defined based on multiple operating parameters, the power consumption of the energy-saving lighting, and the service life of the energy-saving lighting, including: Freeze multiple working parameters; Collect multiple current parameters of energy-saving lighting lamps and match the corresponding current change graphs based on these multiple current parameters; The energy consumption of energy-saving lighting lamps is defined based on the current change diagram and the model of the energy-saving lighting lamp. It relates to multiple operating parameters, the power consumption of energy-saving lighting, and the service life of energy-saving lighting; The first energy-saving parameter is defined based on multiple operating parameters and the power consumption of the energy-saving lighting lamp; the second energy-saving parameter is defined based on multiple operating parameters and the service life of the energy-saving lighting lamp. The energy efficiency rating of energy-saving lighting is defined based on the first energy efficiency parameter, the second energy efficiency parameter, and the energy efficiency matching table.

4. The intelligent control method for energy-saving lighting according to claim 3, characterized in that, The interactive device for collecting data on interactions with the energy-saving lighting lamp includes: The interaction signals of this energy-saving lighting fixture are captured. The interaction space of the energy-saving lighting is defined based on the tracing of the interaction signals of the energy-saving lighting. Traverse the interaction space; The interactive devices that interact with the energy-saving light are collected by traversing the interactive space.

5. The intelligent control method for energy-saving lighting according to claim 4, characterized in that, The energy-saving system formed based on the energy-saving level of the interactive device and the energy-saving level of the energy-saving lighting includes: Freeze-frame interactive devices; The interactive device is monitored in real time, and multiple loss coefficients of the interactive device are collected. The energy-saving level of the interactive device is matched based on multiple loss coefficients of the interactive device. Energy efficiency ratings of related interactive devices and energy-saving lighting fixtures; An energy-saving system is formed based on the energy-saving levels of interactive devices and energy-saving lighting.

6. The intelligent control method for energy-saving lighting according to claim 5, characterized in that, The intelligent control of the energy-saving lighting system, which defines the required light intensity based on the illumination area of ​​the energy-saving lighting, the ambient brightness of the corresponding usage environment, and the current time, and triggers the operating power of the energy-saving lighting system according to the required light intensity, includes: Collect the location of energy-saving lighting fixtures; The illumination area of ​​an energy-saving light source is defined based on its location, corresponding luminous surface, and specifications.

7. The intelligent control method for energy-saving lighting according to claim 6, characterized in that, The intelligent control method, which defines the required light intensity of the energy-saving lighting based on the illumination area of ​​the energy-saving lighting, the ambient brightness of the corresponding usage environment, and the current time, and triggers the working power of the energy-saving lighting based on the required light intensity and the energy-saving system, further includes: The illumination area of ​​the associated energy-saving lighting, the ambient brightness of the corresponding usage environment, and the current time; The required light intensity for energy-saving lighting is defined based on the illumination area of ​​the energy-saving lighting, the ambient brightness of the corresponding usage environment, and the current time. This relates to the required light intensity and energy-saving system of the energy-efficient lighting fixture. The system intelligently controls the operating power of the energy-saving lighting fixture based on the required light intensity and the energy-saving system's triggering mechanism.

8. The intelligent control method for energy-saving lighting according to claim 7, characterized in that, The process involves generating a power variation map based on multiple operating power levels, energy-saving lighting fixtures, and corresponding usage environments; defining an illumination variation map for energy-saving lighting fixtures based on multiple luminance levels; and triggering intelligent control of the energy-saving lighting fixtures based on this power variation map and the illumination variation map. This includes: Stabilize multiple operating power levels; Associate multiple operating power ratings, energy-saving lighting fixtures, and their corresponding usage environments; A power variation graph is generated based on multiple operating power levels, energy-saving lighting fixtures, and their corresponding usage environments; The illumination variation diagram of energy-saving lighting lamps is defined based on multiple illumination intensities.

9. The intelligent control method for energy-saving lighting according to claim 8, characterized in that, The method of generating a power variation map based on multiple operating power levels, energy-saving lamps, and corresponding usage environments; defining an illumination variation map for energy-saving lamps based on multiple luminance levels; and triggering intelligent control of energy-saving lamps based on the power variation map and the illumination variation map of energy-saving lamps, further includes: Corresponding to the power consumption change graph and the illumination change graph of the energy-saving lighting; The intelligent control of the energy-saving lighting is triggered based on the power change diagram and the illumination change diagram of the energy-saving lighting.

10. An intelligent control system for an energy-saving lighting lamp, characterized in that, The intelligent control system for the energy-saving lighting lamp is applied to the intelligent control method for the energy-saving lighting lamp as described in any one of claims 1-9, wherein the intelligent control system for the energy-saving lighting lamp includes: The data acquisition module is used to collect multiple operating parameters of the energy-saving lighting lamp when it is in operation. The energy-saving rating module is used to define the energy-saving rating of energy-saving lighting based on multiple operating parameters, the power consumption of energy-saving lighting, and the service life of energy-saving lighting. An interactive device module is used to collect data on the interactive devices that interact with the energy-saving light bulb. The energy-saving system module is used to form an energy-saving system based on the energy-saving level of the interactive device and the energy-saving level of the energy-saving lighting. The working power module is used to define the light intensity required by the energy-saving lamp based on the illumination area of ​​the energy-saving lamp, the ambient brightness of the corresponding usage environment, and the current time. Based on the light intensity required by the energy-saving lamp and the energy-saving system, the module intelligently controls the working power of the energy-saving lamp. The intelligent control module is used to generate a working power variation map based on multiple working power, energy-saving lights and corresponding usage environment, define an illumination variation map of energy-saving lights based on multiple illuminance values ​​of energy-saving lights, and trigger intelligent control of energy-saving lights based on the working power variation map and the illumination variation map of energy-saving lights.

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