Method and device for implementing smart lamp with adjustable ugr value, and smart lamp
By acquiring the light interval distance and beam angle of the smart lamp, calculating the operating current value, and dynamically adjusting the luminous flux, the problem of adjusting the UGR value of the smart lamp is solved, achieving a more comfortable lighting effect.
Patent Information
- Application Number
- CN202310624920.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-05-30
- Publication Date
- 2026-02-06
- Estimated Expiration
- 2043-05-30
AI Technical Summary
Existing smart lights struggle to achieve dynamic and intelligent adjustment of UGR values, relying primarily on luminaire design and optical system selection.
By obtaining the distance between the light emitted by the light source component and the surface of the optical component, the beam angle and operating current value are calculated, and the output is adjusted in combination with the luminous flux to achieve dynamic adjustment of the UGR value of the smart lamp.
It enables dynamic adjustment of the UGR value of smart lights, providing a more comfortable lighting experience and meeting the needs of different scenarios and users.
Smart Images

Figure CN116582978B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of lamp lighting, in particular to an implementation method and device of an intelligent lamp with adjustable UGR value and the intelligent lamp. BACKGROUND
[0002] In the existing lamp lighting system, in order to meet the needs of different scenes and users, the lamp lighting quality needs to be adjusted; an important parameter of the lamp lighting quality is the UGR value (i.e. Unified Glare Rating, the same below), which is used to evaluate the glare intensity perceived by the human eye.
[0003] At present, the intelligent lamps on the market have made certain progress in adjusting brightness, color and light effect. However, there are still challenges in adjusting the UGR value. The traditional UGR adjustment method mainly depends on the design of the lamp and the selection of the optical system, and it is difficult to realize dynamic and intelligent adjustment. SUMMARY
[0004] The embodiments of the present application provide an implementation method and device of an intelligent lamp with adjustable UGR value and the intelligent lamp, aiming to solve the problem that the lamp cannot realize dynamic and intelligent adjustment in the prior art.
[0005] In a first aspect, the embodiments of the present application provide an implementation method of an intelligent lamp with adjustable UGR value, the intelligent lamp with adjustable UGR value comprising a lamp, a control module and a monitoring module, the control module and the monitoring module being arranged in the lamp; the lamp comprising a light source assembly, an optical assembly and a light shielding assembly, the light source assembly, the optical assembly and the light shielding assembly being connected with the control module through signal lines, characterized in that the implementation method comprises:
[0006] obtaining the interval distance of the light emitted by the light source assembly to the surface of the optical assembly;
[0007] comparing the interval distance with a preset set distance to obtain an adjustment parameter of the light source assembly;
[0008] positionally adjusting the light source assembly according to the adjustment parameter to obtain a beam angle;
[0009] calculating the working current of the intelligent lamp to obtain a working current value;
[0010] output adjusting the luminous flux of the intelligent lamp according to the working current value and the beam angle to obtain a UGR value.
[0011] In a second aspect, the embodiments of the present application provide an implementation device of an intelligent lamp with adjustable UGR value, comprising:
[0012] a distance acquisition unit configured to acquire a distance between a light emitted by the light source assembly and a surface of the optical assembly;
[0013] a distance comparison unit configured to compare the distance with a preset distance to obtain an adjustment parameter of the light source assembly;
[0014] a position adjustment unit configured to adjust a position of the light source assembly according to the adjustment parameter to obtain a beam angle;
[0015] a current calculation unit configured to calculate a working current of the smart lamp to obtain a working current value;
[0016] an output adjustment unit configured to adjust an output of a light flux of the smart lamp according to the working current value and the beam angle to obtain a UGR value.
[0017] In a third aspect, an embodiment of the present application provides a smart lamp with adjustable UGR value, which comprises a lamp, a control module and a monitoring module, the control module and the monitoring module are arranged in the lamp; the lamp comprises a light source assembly, an optical assembly and a light shielding assembly, the light source assembly, the optical assembly and the light shielding assembly are connected with the control module through signal lines, and the control module comprises the implementation device of the smart lamp with adjustable UGR value as described in the second aspect.
[0018] An embodiment of the present application provides an implementation method of a smart lamp with adjustable UGR value, which comprises a lamp, a control module and a monitoring module, the lamp comprises a light source assembly, an optical assembly and a light shielding assembly, and the implementation method comprises the following steps: acquiring a distance between a light emitted by the light source assembly and a surface of the optical assembly; comparing the distance with a preset distance to obtain an adjustment parameter of the light source assembly; adjusting a position of the light source assembly according to the adjustment parameter to obtain a beam angle; calculating a working current of the smart lamp to obtain a working current value; and adjusting an output of a light flux of the smart lamp according to the working current value and the beam angle to obtain a UGR value. The beam angle of the smart lamp is calculated, and the output of the light flux of the smart lamp is adjusted in combination with the working current value of the smart lamp, so that the UGR value is dynamically adjusted.
[0019] An embodiment of the present application further provides an implementation device of a smart lamp with adjustable UGR value and a smart lamp with adjustable UGR value, which also have the beneficial effects described above. BRIEF DESCRIPTION OF DRAWINGS
[0020] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following will briefly introduce the drawings needed in the embodiment description. Obviously, the drawings in the following description are some embodiments of the present application, and other drawings can also be obtained by those skilled in the art without any creative effort.
[0021] Figure 1 A flowchart of an implementation method of an intelligent lamp with adjustable UGR value provided by the embodiment of the present application is shown in the figure.
[0022] Figure 2 A structural diagram of an intelligent lamp with adjustable UGR value provided by the embodiment of the present application is shown in the figure.
[0023] Figure 3 A schematic block diagram of an implementation device of an intelligent lamp with adjustable UGR value provided by the embodiment of the present application is shown in the figure.
[0024] Explanation of the figure:
[0025] 10, housing; 20, light source assembly; 30, optical assembly; 40, light shielding assembly; 50, prismatic optical cover. DETAILED DESCRIPTION
[0026] The technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are some embodiments of the present application, but not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without any creative effort belong to the protection scope of the present application.
[0027] It should be understood that the terms "comprising" and "including" as used in the specification and the appended claims indicate the presence of the described features, integers, steps, operations, elements, and / or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and / or groups thereof.
[0028] It should also be understood that the terms used in the present application specification are only for the purpose of describing specific embodiments and are not intended to limit the present application. As used in the present application specification and the appended claims, the singular forms "a", "an" and "the" are intended to include the plural forms unless the context clearly indicates otherwise.
[0029] It should be further understood that the term "and / or" as used in the present application specification and the appended claims means any combination of one or more of the associated listed items and all possible combinations thereof, and includes these combinations.
[0030] Please refer to the following Figure 1 and Figure 2 , Figure 1 The flowchart of the method for adjusting the UGR value of the intelligent lamp provided by the embodiment of the application, specifically comprising: steps S101-S105.
[0031] The intelligent lamp capable of adjusting the UGR value comprises a lamp, a control module and a monitoring module, the control module and the monitoring module are arranged in the lamp, the lamp comprises a light source assembly 20, an optical assembly 30 and a light shielding assembly 40, and the light source assembly 20, the optical assembly 30 and the light shielding assembly 40 are connected with the control module through signal lines.
[0032] S101, the interval distance of the light emitted by the light source assembly 20 reaching the surface of the optical assembly 30 is obtained.
[0033] S102, the interval distance is compared with the preset set distance to obtain the adjustment parameter of the light source assembly 20.
[0034] S103, the position of the light source assembly 20 is adjusted according to the adjustment parameter to obtain the beam angle.
[0035] S104, the working current of the intelligent lamp is calculated to obtain the working current value.
[0036] S105, the light flux of the intelligent lamp is output adjusted according to the working current value and the beam angle to obtain the UGR value.
[0037] In step S101, the interval distance can be obtained by an optical measurement method, the path information of the light source assembly 20 reaching the surface of the optical assembly 30 can be extracted from the measured data, and specific marker points, edge features and the like are processed to determine the projection path of the light, and finally the pixel length of the light path can be measured, combined with the size of the lamp, and the pixel length can be converted into the actual interval distance.
[0038] In an embodiment, the step S101 comprises:
[0039] The environmental data is collected, the distance of the light emitted by the light source assembly 20 reaching the surface of the optical assembly 30 is measured according to the environmental data to obtain measurement data, the measurement data is processed by data filtering to obtain a filtering result, and the filtering result is processed by data correction to obtain the interval distance.
[0040] In this embodiment, various environmental parameters of the intelligent lamp are collected, for example, temperature and humidity will affect the propagation speed of light, and the degree of air pollution will affect the propagation distance of light; the environmental parameters can be collected by sensors, such as temperature sensors, humidity sensors, air quality sensors, etc. According to the collected environmental parameters, the distance of the light reaching the surface of the optical assembly 30 is measured, and multiple measurements can be performed during the measurement to improve the accuracy of the measurement.
[0041] Further, the measurement data is subjected to data filtering processing to exclude noise or abnormal values to obtain the filtering result. The method used in data filtering processing can be selected according to the actual situation. According to the filtering result, the correction processing can be performed to obtain the interval distance; for example, high environmental temperature may cause the propagation speed of light to be faster, thereby causing the measured interval distance to be smaller. Through correction, the influence can be reduced to improve the accuracy of measurement.
[0042] In step S102, by comparing the interval distance of the light emitted by the light source assembly 20 reaching the surface of the optical assembly 30 with the preset set distance (i.e. the data set in advance, which can be set according to the demand), the adjustment parameter required for the light source assembly 20 can be obtained. The adjustment parameter will be used for position adjustment of the light source assembly 20 to achieve the required light beam angle.
[0043] In an embodiment, the step S102 comprises:
[0044] The input instruction of the user is received, and the input instruction is analyzed to obtain the set distance; the set distance is compared with the interval distance to calculate the deviation distance; it is judged whether the deviation distance is within the set deviation threshold, if yes, no adjustment is needed; if not, the adjustment parameter is calculated by deviation calculation.
[0045] In this embodiment, the set distance is first determined, which can be obtained by receiving and analyzing the input instruction of the user, or can be measured by experiment. Under different set distances, the change of the light beam angle is measured, and then the most suitable data is selected as the set distance. Then, the interval distance is compared with the set distance and calculated, for example, the mean deviation, variance, etc. can be calculated; if the condition allows, the method of machine learning, such as neural network, can be used to establish the relationship between the set distance and the interval distance, so as to more accurately calculate the deviation distance. Finally, the deviation distance needs to be judged, if the deviation distance is within the deviation threshold range, no adjustment is needed; if the deviation distance exceeds the deviation threshold range, the adjustment parameter of the light source assembly 20 needs to be calculated and the corresponding adjustment is performed.
[0046] In step S103, the position of the light source assembly 20 can be adjusted according to the adjustment parameter. By adjusting the adjustment parameter, the propagation direction and angle of the light beam emitted by the light can be changed, and finally the light beam angle is obtained.
[0047] In an embodiment, the step S103 comprises:
[0048] The adjustment parameter is analyzed and at least one control signal is generated. The control signal is received and the position of the light source assembly 20 is adjusted to obtain the position information of the light source assembly 20. It is judged whether the position information reaches the set position threshold. If yes, the light beam angle is directly output. If not, the adjustment parameter is referred to and recalculated until the set position threshold is reached.
[0049] In this embodiment, the adjustment parameter is analyzed to generate one or more control signals. This generation process can convert the adjustment parameter into electronic or mechanical control signals through an algorithm. After receiving the control signal, the control module controls the position of the light source assembly 20 according to the control signal. During the position adjustment of the light source assembly 20, the position change can also be monitored by the monitoring module to confirm whether the position adjustment achieves the expected effect, and the position information of the light source assembly 20 can be obtained. It is judged whether the position information reaches the set position threshold. If the set position threshold is reached, the light beam angle is directly output. If the set position threshold is not reached, the adjustment parameter is referred to and recalculated until the position information reaches the set position threshold. It should be noted that the output light beam angle is the angle data of the light beam angle.
[0050] In step S104, the working current of the smart lamp can be calculated by a conventional constant formula to obtain a working current value. The constant formula can have multiple choices, which can be selected according to the actual situation, and is not limited here.
[0051] In step S105, the working current value is the current intensity of the smart lamp, and the light beam angle is the angle of the light emission. These two parameters are used to determine the lighting characteristics of the smart lamp. The luminous flux refers to the total light power emitted by the smart lamp per unit time, which can also be understood as the brightness of the light. By adjusting the luminous flux of the smart lamp, the light and dark degree of the light can be changed. The UGR value is an index used to evaluate the glare degree in the light environment. By adjusting the brightness of the light, i.e. the luminous flux, according to the working current value and the light beam angle of the smart lamp, the UGR value of the smart lamp is calculated to evaluate the glare degree in the light environment. This process can be used to optimize the lighting effect of the smart lamp and provide a more comfortable lighting experience.
[0052] In an embodiment, the step S105 comprises:
[0053] According to the light beam angle, a light beam angle working current value is calculated, the light beam angle working current value is neutralized and adjusted with the working current value to determine an adjustment value of the luminous flux; a corresponding encoding signal is generated according to the adjustment value, and the encoding signal is sent to the control module; the encoding signal is received and data is parsed to obtain an adjustment instruction of the luminous flux; the luminous flux is adjusted according to the adjustment instruction to obtain the UGR value.
[0054] In the embodiment, a light beam angle working current value can be calculated according to the light beam angle, the light beam angle working current value is neutralized and adjusted with the working current value calculated previously to determine an adjustment value of the luminous flux, which can be understood as a comparison, that is, when the light beam angle working current value is too high compared with the working current value, it needs to be adjusted lower, and when the light beam angle working current value is too low compared with the working current value, it needs to be adjusted higher, and finally the adjustment value of the luminous flux is obtained; the adjustment value is converted into an encoding signal to enable the control module to parse data, so as to accurately output the adjustment instruction of the luminous flux; finally, the luminous flux is adjusted according to the adjustment instruction, and the UGR value can be obtained.
[0055] In an embodiment, the implementation method of the adjustable UGR value intelligent lamp further comprises:
[0056] The real light-shielding angle value of the light-shielding assembly 40 is obtained, the real light-shielding angle value of the light-shielding assembly 40 is compared with the preset set angle value to obtain a first angle difference value, the perpendicular distance between the lamp and the target surface and the parallel distance between the lamp and the target surface are obtained respectively, and the first angle difference value is adjusted to obtain a second angle difference value; the light-shielding assembly 40 is adjusted according to the second angle difference value to obtain a target light-shielding angle value.
[0057] In the embodiment, the light shielding component 40 refers to a component installed on the smart lamp for shielding light; by measuring or obtaining the real light shielding angle value of the light shielding component 40, the specific angle of the current light shielding component 40 can be obtained; the real light shielding angle value of the light shielding component 40 obtained is compared with the preset set angle value, and by calculating the difference value between the two, the first angle difference value, that is, the difference between the real light shielding angle value and the set angle value, can be obtained; the vertical distance and the parallel distance between the lamp and the target surface are obtained respectively, which are used to further calculate the information required for adjusting the light shielding angle; by using the vertical distance and the horizontal distance between the lamp and the target surface, the first angle difference value is adjusted, and the second angle difference value can be obtained; finally, the light shielding angle of the light shielding component 40 is adjusted by using the second angle difference value, so that the light shielding component 40 can achieve the expected light shielding effect at a specific position and direction, thereby obtaining the target light shielding angle value to achieve the expected lighting effect.
[0058] In an embodiment, the implementation method of the smart lamp with adjustable UGR value further comprises:
[0059] Obtaining the real illuminance value of the target surface; comparing the real illuminance value of the target surface with the preset set illuminance value to obtain the illuminance value difference; adjusting the luminous flux according to the illuminance value difference to obtain the target illuminance value.
[0060] In the embodiment, the illuminance value refers to the illumination intensity of light on a specific surface, that is, the light energy received per unit area. By measuring or obtaining the real illuminance value on the target surface, the current light level of the surface can be obtained. The real illuminance value obtained is compared with the preset set illuminance value, and by calculating the difference value between the two, the illuminance value difference, that is, the difference between the real illuminance value and the set illuminance value, can be obtained. The luminous flux of the smart lamp is adjusted according to the illuminance value difference, and by increasing or decreasing the luminous flux, the brightness level of light can be changed. The purpose of adjusting the luminous flux is to make the light intensity on the target surface reach the preset target illuminance value to meet the requirements of specific scenes or tasks.
[0061] In summary, the intelligent lamp of the present application is provided with three modes, namely health mode, energy saving mode and custom mode, when the user selects the health mode, the UGR value is less than 19, the target shading angle value is 30 degrees and the target illuminance value is 300LUX in the control module; when the user selects the energy saving mode, the UGR value is less than 22, the target shading angle value is 20 degrees and the target illuminance value is 250LUX in the control module; when the user selects the custom mode, no preset parameters are required, the control module receives the UGR value, the target shading angle value and the target illuminance value input by the user, and adjusts the three parameters at the same time. After the adjustment of the control module, the monitoring module monitors the target changes (such as the position of the person, the height of the lamp, the ambient light, etc.) in real time; when the monitoring module detects changes, the corresponding mode is entered for adjustment; when the monitoring module detects no changes, the normal work is maintained; when the intelligent lamp receives the light-off instruction, the control module can also memorize all parameters when the light is turned off, so as to facilitate the next time the machine works, and quickly execute the previous function.
[0062] In combination Figure 3 As shown, Figure 3 The present application provides a schematic block diagram of an implementation device of an intelligent lamp with adjustable UGR value, the implementation device 300 of the intelligent lamp with adjustable UGR value, comprising:
[0063] The distance acquisition unit 301 is used for acquiring the interval distance from the light source assembly 20 to the surface of the optical assembly 30;
[0064] The distance comparison unit 302 is used for comparing the interval distance with the preset set distance to obtain the adjustment parameter of the light source assembly 20;
[0065] The position adjustment unit 303 is used for adjusting the position of the light source assembly 20 according to the adjustment parameter to obtain the beam angle;
[0066] The current calculation unit 304 is used for calculating the working current of the intelligent lamp to obtain the working current value;
[0067] The output adjustment unit 305 is used for adjusting the luminous flux of the intelligent lamp according to the working current value and the beam angle to obtain the UGR value.
[0068] In the embodiment, the distance acquisition unit 301 acquires the interval distance of the light emitted by the light source assembly 20 to the surface of the optical assembly 30; the distance comparison unit 302 compares the interval distance with the preset set distance to obtain the adjustment parameter of the light source assembly 20; the position adjustment unit 303 adjusts the position of the light source assembly 20 according to the adjustment parameter to obtain the beam angle; the current calculation unit 304 calculates the working current of the smart lamp to obtain the working current value; and the output adjustment unit 305 adjusts the luminous flux output of the smart lamp according to the working current value and the beam angle to obtain the UGR value.
[0069] In an embodiment, the distance acquisition unit 301 comprises:
[0070] The acquisition unit is configured to acquire environmental data.
[0071] The measurement unit is configured to measure the distance of the light emitted by the light source assembly 20 to the surface of the optical assembly 30 according to the environmental data to obtain measurement data.
[0072] The filtering unit is configured to perform data filtering processing on the measurement data to obtain a filtering result.
[0073] The correction unit is configured to perform data correction processing on the filtering result to obtain the interval distance.
[0074] In an embodiment, the distance comparison unit 302 comprises:
[0075] The analysis unit is configured to receive an input instruction of a user and analyze the input instruction to obtain the set distance.
[0076] The comparison unit is configured to compare the set distance with the interval distance to calculate a deviation distance.
[0077] The deviation unit is configured to determine whether the deviation distance is within a set deviation threshold, and if yes, no adjustment is needed; and if no, the adjustment parameter is calculated by deviation.
[0078] In an embodiment, the position adjustment unit 303 comprises:
[0079] The control unit is configured to analyze the adjustment parameter and generate at least one control signal.
[0080] The adjustment unit is configured to receive the control signal and drive the light source assembly 20 to perform position adjustment to obtain position information of the light source assembly 20.
[0081] A position unit is configured to determine whether the position information reaches a set position threshold value, and if yes, directly output the beam angle, and if not, refer to the adjustment parameter and recalculate until the set position threshold value is reached.
[0082] In an embodiment, the output adjustment unit 305 comprises:
[0083] A current unit is configured to calculate a beam angle working current value according to the beam angle, neutralize and adjust the beam angle working current value and the working current value to determine an adjustment value of the luminous flux;
[0084] An encoding unit is configured to generate a corresponding encoding signal according to the adjustment value, and send the encoding signal to the control module;
[0085] An instruction unit is configured to receive the encoding signal and perform data analysis to obtain an adjustment instruction of the luminous flux;
[0086] An output unit is configured to perform output adjustment on the luminous flux according to the adjustment instruction to obtain the UGR value.
[0087] In an embodiment, the implementation device of the adjustable UGR value intelligent lamp further comprises:
[0088] A shading unit is configured to obtain an actual shading angle value of the shading assembly 40;
[0089] A setting unit is configured to compare the actual shading angle value of the shading assembly 40 with a preset set angle value to obtain a first angle difference value;
[0090] A parallel unit is configured to obtain a vertical distance of the lamp and a target surface and a parallel distance of the lamp and the target surface respectively, and adjust the first angle difference value to obtain a second angle difference value;
[0091] A target unit is configured to adjust the shading angle value of the shading assembly 40 according to the second angle difference value to obtain a target shading angle value.
[0092] In an embodiment, the implementation device of the adjustable UGR value intelligent lamp further comprises:
[0093] A real unit is configured to obtain a real illuminance value of a target surface;
[0094] An illuminance unit is configured to compare the real illuminance value of the target surface with a preset set illuminance value to obtain an illuminance value difference;
[0095] A flux unit is configured to adjust the luminous flux according to the illuminance value difference to obtain a target illuminance value.
[0096] Since the embodiments of the device part correspond to the embodiments of the method part, the embodiments of the device part are described by referring to the description of the embodiments of the method part.
[0097] The embodiment of the present application also provides a smart lamp with adjustable UGR value, which comprises a lamp, a control module and a monitoring module, wherein the control module and the monitoring module are arranged in the lamp; the lamp comprises a light source assembly 20, an optical assembly 30 and a light shielding assembly 40, and the light source assembly 20, the optical assembly 30 and the light shielding assembly 40 are connected with the control module through signal lines; and the control module comprises the implementation device of the smart lamp with adjustable UGR value.
[0098] In the embodiment, the lamp further comprises a shell 10 and a prismatic optical lampshade 50, the light source assembly 20, the optical assembly 30 and the light shielding assembly 40 are arranged in the shell 10, and the prismatic optical lampshade 50 is arranged at an end of the light shielding assembly 40 away from the optical assembly 30; the prismatic optical lampshade 50 serves as an auxiliary light scattering layer and also as a protective layer to protect the components such as the light source assembly 20, the optical assembly 30 and the light shielding assembly 40 in the shell 10 from being damaged. The control module and the monitoring module are arranged in the lamp, and the control module comprises the implementation device of the smart lamp with adjustable UGR value.
[0099] In an embodiment, one end of the optical assembly 30 is arranged away from the light source assembly 20, and the other end of the optical assembly 30 is connected with the light shielding assembly 40.
[0100] In the embodiment, the optical assembly 30 is arranged between the light source assembly 20 and the light shielding assembly 40, the light emitted by the light source assembly 20 is irradiated after being processed by the optical assembly 30, and the light shielding assembly 40 can adjust the angle of the light shielding angle to adjust the beam angle.
[0101] The embodiments in the description are described in a progressive manner, and each embodiment focuses on the difference from other embodiments, and the same or similar parts of each embodiment can be referred to each other. For the system disclosed in the embodiments, since it corresponds to the method disclosed in the embodiments, the description is relatively simple, and the related parts are described in the method part. It should be pointed out that, for ordinary skilled in the art, without departing from the principles of the present application, the present application can be improved and modified, and these improvements and modifications also fall within the protection scope of the claims of the present application.
[0102] It is further noted that the terminology "first", "second" and the like used in the specification are merely used for differentiating one entity or action from another, and do not necessarily imply any actual physical or logical relationship or order between such entities or actions. Moreover, the use of the term "including", "containing" or any other variant thereof is intended to cover non-exclusive inclusion, such that a process, method, article or apparatus that comprises a list of elements is not required to comprise only those elements but can include other elements not expressly listed or inherent to such process, method, article or apparatus. An element preceded by "comprises a..." does not, without further restriction, preclude the existence of additional elements of the same nature as those recited.
Claims
1. A method of implementing an adjustable UGR value smart light, the adjustable UGR value smart light comprising: A lamp, a control module and a monitoring module, the control module and the monitoring module are arranged in the lamp; The lamp comprises a light source assembly, an optical assembly and a light shielding assembly, the light source assembly, the optical assembly and the light shielding assembly are connected with the control module through signal lines, and the method comprises the following steps: Obtaining the interval distance of the light emitted by the light source assembly to the surface of the optical assembly; Comparing the interval distance with the preset set distance to obtain the adjustment parameter of the light source assembly; According to the adjustment parameter, the position of the light source assembly is adjusted to obtain the beam angle; Calculating the working current of the intelligent lamp to obtain the working current value; According to the working current value and the beam angle, the luminous flux of the intelligent lamp is output adjusted to obtain the UGR value.
2. The method of claim 1, wherein the UGR-adjustable smart light is implemented by, The interval distance of the light emitted by the light source assembly to the surface of the optical assembly is obtained, which comprises the following steps: Collecting environmental data; According to the environmental data, the distance of the light emitted by the light source assembly to the surface of the optical assembly is measured to obtain measurement data; The measurement data is filtered to obtain a filtering result; The filtering result is corrected to obtain the interval distance.
3. The method of claim 1, wherein the UGR-adjustable smart light is implemented by, The interval distance is compared with the preset set distance to obtain the adjustment parameter of the light source assembly, which comprises the following steps: Receiving the input instruction of the user and analyzing the input instruction to obtain the set distance; Comparing the set distance with the interval distance to calculate the deviation distance; Judging whether the deviation distance is within the set deviation threshold, if yes, no adjustment is needed, if not, the adjustment parameter is calculated by deviation.
4. The method of claim 1, wherein the UGR-adjustable smart light is implemented by, According to the adjustment parameter, the position of the light source assembly is adjusted to obtain the beam angle, which comprises the following steps: Analyzing the adjustment parameter and generating at least one control signal; Receiving the control signal and driving the light source assembly to adjust the position to obtain the position information of the light source assembly; Judging whether the position information reaches the set position threshold, if yes, the beam angle is directly output, if not, the adjustment parameter is referred to and recalculated until the set position threshold is reached.
5. The method of claim 1, wherein the adjustable UGR value of the smart light is implemented by, According to the working current value and the beam angle, the luminous flux of the intelligent lamp is output adjusted to obtain the UGR value, which comprises the following steps: According to the beam angle, the beam angle working current value is calculated, the beam angle working current value is neutralized and adjusted with the working current value to determine the adjustment value of the luminous flux; According to the adjustment value, the corresponding encoding signal is generated and sent to the control module; Receiving the encoding signal and performing data analysis to obtain the adjustment instruction of the luminous flux; According to the adjustment instruction, the luminous flux is output adjusted to obtain the UGR value.
6. The method of claim 1, wherein the UGR-adjustable smart light is implemented as a light emitting diode (LED) light. Further comprising: Obtaining the real light shielding angle value of the light shielding assembly; Comparing the real light shielding angle value of the light shielding assembly with the preset set angle value to obtain the first angle difference value; Obtain the vertical distance between the lamp and the target surface and the parallel distance between the lamp and the target surface, and adjust the first angle difference to obtain a second angle difference; Adjust the shading angle value of the shading assembly according to the second angle difference to obtain a target shading angle value.
7. The method of claim 1, wherein the UGR-adjustable smart light is implemented by, Further comprising: Obtain the real illuminance value of the target surface; Compare the real illuminance value of the target surface with a preset set illuminance value to obtain an illuminance value difference; Adjust the luminous flux according to the illuminance value difference to obtain a target illuminance value.
8. An apparatus for implementing an adjustable UGR value smart light, the adjustable UGR value smart light comprising: A lamp, a control module and a monitoring module, the control module and the monitoring module are arranged in the lamp; The lamp comprises a light source assembly, an optical assembly and a shading assembly, and the light source assembly, the optical assembly and the shading assembly are connected with the control module through signal lines, characterized in that the implementation device comprises: A distance acquisition unit is arranged for acquiring the interval distance between the light emitted by the light source assembly and the surface of the optical assembly; A distance comparison unit is arranged for comparing the interval distance with a preset set distance to obtain an adjustment parameter of the light source assembly; A position adjustment unit is arranged for adjusting the position of the light source assembly according to the adjustment parameter to obtain a beam angle; A current calculation unit is arranged for calculating the working current of the intelligent lamp to obtain a working current value; An output adjustment unit is arranged for adjusting the luminous flux of the intelligent lamp according to the working current value and the beam angle to obtain a UGR value.
9. An adjustable UGR value smart light, characterized by, The adjustable UGR value intelligent lamp comprises a lamp, a control module and a monitoring module, the control module and the monitoring module are arranged in the lamp; the lamp comprises a light source assembly, an optical assembly and a shading assembly, and the light source assembly, the optical assembly and the shading assembly are connected with the control module through signal lines, and the control module comprises the implementation device of the adjustable UGR value intelligent lamp as claimed in claim 8.
10. The smart light of claim 9, wherein, One end of the optical assembly is arranged apart from the light source assembly, and the other end of the optical assembly is connected with the shading assembly.
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