WO2012172470A1 - Adaptive controlled outdoor lighting system and method of operation thereof - Google Patents
Adaptive controlled outdoor lighting system and method of operation thereof Download PDFInfo
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- WO2012172470A1 WO2012172470A1 PCT/IB2012/052934 IB2012052934W WO2012172470A1 WO 2012172470 A1 WO2012172470 A1 WO 2012172470A1 IB 2012052934 W IB2012052934 W IB 2012052934W WO 2012172470 A1 WO2012172470 A1 WO 2012172470A1
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Classifications
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- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05B—ELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
- H05B47/00—Circuit arrangements for operating light sources in general, i.e. where the type of light source is not relevant
- H05B47/10—Controlling the light source
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05B—ELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
- H05B45/00—Circuit arrangements for operating light-emitting diodes [LED]
- H05B45/10—Controlling the intensity of the light
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05B—ELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
- H05B45/00—Circuit arrangements for operating light-emitting diodes [LED]
- H05B45/20—Controlling the colour of the light
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05B—ELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
- H05B47/00—Circuit arrangements for operating light sources in general, i.e. where the type of light source is not relevant
- H05B47/10—Controlling the light source
- H05B47/175—Controlling the light source by remote control
-
- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05B—ELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
- H05B45/00—Circuit arrangements for operating light-emitting diodes [LED]
- H05B45/20—Controlling the colour of the light
- H05B45/28—Controlling the colour of the light using temperature feedback
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02B—CLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
- Y02B20/00—Energy efficient lighting technologies, e.g. halogen lamps or gas discharge lamps
- Y02B20/40—Control techniques providing energy savings, e.g. smart controller or presence detection
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02B—CLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
- Y02B20/00—Energy efficient lighting technologies, e.g. halogen lamps or gas discharge lamps
- Y02B20/72—Energy efficient lighting technologies, e.g. halogen lamps or gas discharge lamps in street lighting
Definitions
- the present system relates to an adaptive lighting system and, more particularly, to an adaptive outdoor lighting system that may include weather management and a method of operation thereof.
- a lighting system including at least one controller (e.g., a processor) which may obtain weather forecast information including one or more of current and expected weather conditions (e.g., a weather forecast); determine one or more lighting settings based upon the weather forecast information; form lighting setting information in accordance with the determined lighting settings; and/or transmit the lighting setting information to one or more luminaires of the system.
- the luminaires may include a transmitter/receiver (Tx/Rx) which may receive the lighting setting information; at least one illumination source to provide illumination; and/or a control portion to control the illumination source to provide illumination in accordance with the lighting setting information.
- the controller may determine one or more power settings based upon the weather forecast information and/or form corresponding power setting information.
- the system may further include a power portion having circuitry configured to selectively couple the luminaires to a power source of a plurality of power sources in accordance with the power setting information.
- the controller may select a power source of a plurality of power sources in accordance with weather forecast information.
- the controller may form the weather forecast information in accordance with one or more of sensor information and weather information, wherein the weather information is obtained from a weather information source.
- the lighting setting information may include information related to one or more of illumination pattern, illumination intensity, illumination spectrum, illumination polarization, and energy usage of one or more luminaires of the system.
- the method may include one or more acts of: obtaining weather forecast information comprising one or more of current and expected weather conditions; determining one or more lighting settings based upon the weather forecast information; forming lighting setting information in accordance with the determined lighting settings; and transmitting the lighting setting information.
- the method may include acts of: receiving the lighting setting information; and/or controlling an illumination source to provide illumination in accordance with the lighting setting information.
- the method may include acts of determining one or more power settings based upon the weather forecast information; and/or forming corresponding power setting information.
- the method may include an act of coupling luminaires to a selected power source of a plurality of power sources in accordance with the power setting information.
- the method may include an act of selecting a power source of a plurality of power sources in accordance with weather forecast information.
- the method may also include an act of determining the weather forecast information in accordance with one or more of sensor information and weather information, wherein the weather information is obtained from a weather information source.
- the method may also include an act of forming the lighting setting information to include information related to one or more of illumination pattern, illumination intensity, illumination spectrum, illumination polarization, and energy usage of luminaires of the system.
- a computer program stored on a computer readable memory medium, the computer program configured to provide a user interface (Ul) to accomplish a task, the computer program may include a program portion configured to: obtain weather forecast information comprising one or more of current and expected weather conditions;
- the program portion may further be configured to receive the lighting setting information; and/or control an illumination source to provide illumination in accordance with the lighting setting information. Further, the program portion may be further configured to: determine one or more power settings based upon the weather forecast information; and/or form corresponding power setting information. Moreover, the program portion may be further configured to select luminaires and couple the selected luminaires to a selected power source of a plurality of power sources in accordance with the power setting information. Further, the program portion may be further configured to select a power source of a plurality of power sources in accordance with weather forecast information. Moreover, it is envisioned that the program portion may be further configured to determine the weather forecast information in accordance with one or more of sensor information and weather information, wherein the weather information may be obtained from a weather resource.
- FIG. 1 is a schematic view of a lighting system in accordance with embodiments of the present system
- FIG. 2 is perspective view of a lighting system in accordance with embodiments of the present system
- FIG. 3 shows a flow diagram that illustrates a process in accordance with embodiments of the present system
- FIG. 4 shows a flow diagram that illustrates a process in accordance with embodiments of the present system
- FIG. 5 shows a portion of a system in accordance with embodiments of the present system.
- Embodiments of the present system may interface with conventional lighting infrastructures such as urban walkway, street, and/or highway lighting systems to control one or more portions of conventional lighting systems. Further, embodiments of the present system may incorporate automatic weather detection techniques to determine one or more lighting settings and/or to control and/or configure lighting systems in accordance with the determined one or more lighting settings.
- conventional lighting infrastructures such as urban walkway, street, and/or highway lighting systems to control one or more portions of conventional lighting systems.
- embodiments of the present system may incorporate automatic weather detection techniques to determine one or more lighting settings and/or to control and/or configure lighting systems in accordance with the determined one or more lighting settings.
- the one or more determined lighting settings or weather related information may be based at least in part upon sensor information obtained from sensors of the system such as optical sensors (e.g., image capture devices such as cameras, etc.), radar-based (e.g., Doppler effect) sensors, rain sensors (resistance based, etc.), location sensors (e.g., GPS, predetermined, etc.), temperature sensors (e.g., thermocouples, infrared (IR), bimetallic, mercury, etc.), etc., which may be located in one or more locations such as poles, luminaires, etc., in accordance with embodiments of the present system.
- one or more sensors may be incorporated into outdoor light poles and may provide sensor information to the system using any suitable communication method. Although only a limited number of sensors are shown for example in FIG. 1 , other sensors are also envisioned such as satellite image sensors which may provide images of atmospheric temperature, cloud cover, precipitation, etc.
- the sensors may provide sensor information which may be processed to determine weather forecast information, power availability, lighting settings, power settings, etc.
- Doppler Effect radar sensors may provide information on an amount of precipitation that is currently falling.
- optical sensors may capture image information which may be processed using a suitable image processing technique to determine, for example, current weather conditions such as whether rain, hail, or snow is falling and/or if clouds are present.
- a specific set of image acquisition parameters and/or detection algorithm settings may be provided to one or more sensors for each weather condition.
- a detection threshold for an imaging sensor may be increased to avoid false triggers due to, for example, a rain drop moving in front of the sensor.
- a similar type of adaptation may be applied to a given sensing modality and/or weather forecast.
- a lighting system may be provided which obtains various sensor information such as weather information, image information, etc., which is processed to determine weather conditions and/or lighting conditions in the vicinity of a corresponding sensor at one or more times or periods. Thereafter, an illumination and/or power setting for selected luminaires may be determined in accordance with the determined weather conditions and/or lighting conditions.
- a control system which may set an illumination configuration of a first luminaire in accordance with sensory information received from a second luminaire.
- the system may set an illumination configuration including one or more of an illumination pattern (e.g., a shape of an illuminated area), illumination intensity (e.g., brightness), illumination spectrum (e.g., color), illumination polarization, illumination frequency, etc., of the first luminaire in accordance with the sensor information received from the second luminaire.
- an illumination pattern e.g., a shape of an illuminated area
- illumination intensity e.g., brightness
- illumination spectrum e.g., color
- illumination frequency polarization
- FIG. 1 is a schematic view of a lighting system 100 in accordance with
- the lighting system 100 may include one or more of a controller 102, a memory 104, a plurality of luminaires 106-1 through 106-N (generally 106-x), a plurality of sensors 1 10-1 through 1 10-M (generally 1 10-x), weather resources 1 12, a power portion 1 14, and a network 108 which, in accordance with embodiments of the present system, may operably couple two or more of the elements of the present system.
- the controller 102 may include one or more processors which may control the overall operation of the system 100. Accordingly, the controller 102 may communicate with one or more of the memory 104, the luminaires 106-x, the sensors 1 10-x, the power portion 1 14, and/or the resources 1 12 to send (e.g., transmit) and/or receive various information in accordance with embodiments of the present system.
- the controller 102 may request (e.g., using a query or queries, etc.) sensor information from one or more of the sensors 1 10-x and/or weather forecast information from the resources 1 12 and may receive corresponding information (e.g., results of the query, etc.) from the sensors 1 10-x and/or the resources which may be processed to determine lighting settings (e.g., a lighting strategy) for one or more of the luminaires 106-x. Further, the controller 102 may store information (e.g., historical information) which it receives and/or generates, in the memory 104 for further use such as to determine lighting and/or charging characteristics in accordance with embodiments of the present system.
- information e.g., historical information
- the controller 102 may include a plurality of processors which may be located locally or remotely from each other and may communicate with each other via the network 108.
- the controller 102 may control the network 108, or portions thereof, to route power from selected sources such as may be available over a "grid” (e.g., a municipal electrical supply system, etc.) and/or from "green” sources (e.g., solar, hydro, chemical, hydrogen, and/or wind power sources) for immediate use and/or storage for use at a later time in accordance with a selected and projected lighting and/or power settings.
- a "grid” e.g., a municipal electrical supply system, etc.
- green sources e.g., solar, hydro, chemical, hydrogen, and/or wind power sources
- the system may determine power draw due to luminaires and may prepare energy sources (e.g., batteries, capacitors, fuel cells, chemical cells, thermo cells, etc.) to store power based upon the actual or predicted weather.
- energy sources e.g., batteries, capacitors, fuel cells, chemical cells, thermo cells, etc.
- the controller 102 may determine lighting settings (e.g., illumination pattern, illumination intensity, illumination spectrum, illumination polarization, illumination frequency, etc.) for a corresponding luminaire 106-x and may determine energy requirements in accordance with the determined lighting configurations. Moreover, the controller 102 may request weather reports from the resources 1 12 and may determine when to charge selected power storage devices in accordance with system settings based on received weather report information and/or history information (e.g., statistical information, etc.). Accordingly, the system may include statistical and/or heuristic engines to fit data.
- lighting settings e.g., illumination pattern, illumination intensity, illumination spectrum, illumination polarization, illumination frequency, etc.
- the controller 102 may request weather reports from the resources 1 12 and may determine when to charge selected power storage devices in accordance with system settings based on received weather report information and/or history information (e.g., statistical information, etc.). Accordingly, the system may include statistical and/or heuristic engines to fit data.
- the network 108 may include one or more power supply networks which may provide power to the system 100 via, for example, conventional sources (e.g., the "grid”) and/or “green” sources such as solar, hydro, wind, fuel cells, chemical, thermal, battery, etc.
- conventional sources e.g., the "grid”
- green sources such as solar, hydro, wind, fuel cells, chemical, thermal, battery, etc.
- the network 108 may include power switching circuitry such as may be included in the power portion 1 14 to switch power to/from a desired electrical
- the memory 104 may include any suitable non-transitory memory and may store information used by the system such as information related to operating code, applications, settings, history, user information, account information, weather related information, system configuration information, calculations based thereon, etc.
- the memory 104 may include one or more memories which may be located locally or remote from each other (e.g., a surface area network (SAN).
- SAN surface area network
- the resources 1 12 may include weather related information resources such as proprietary and/or third party weather related resources (e.g., the National Weather Service, AccuweatherTM, etc.) which may provide weather information such as weather reports and/or forecasts (generally weather forecast information which may include actual or expected weather forecast information) to the controller 102 and/or the luminaires 106-x. Further, the resources 1 12 may include weather report applications to process information which may be sent to the resources 1 12 such as the sensor information and/or weather reports and provide corresponding weather forecast information. Thus, the weather report applications may further refine a weather report for an area and/or time period using sensor information obtained by sensors such as the sensors 1 10-x.
- weather related information resources such as proprietary and/or third party weather related resources (e.g., the National Weather Service, AccuweatherTM, etc.) which may provide weather information such as weather reports and/or forecasts (generally weather forecast information which may include actual or expected weather forecast information) to the controller 102 and/or the luminaires 106-x.
- the resources 1 12 may include
- the power portion 1 14 may include power sources which may include conventional (e.g., "grid” based (e.g., from a municipal power authority) or "green” (e.g., from a “green” source such as hydro, solar, wind based sources, etc.) and/or
- the energy settings of the system may be determined by the controller 102 based upon, for example, weather information, power supply information (e.g., power blackout expected at 12:00 am, duration 3 hours, etc.), lighting settings (e.g., full, energy savings, etc.), power requirements, etc. Accordingly, the power circuitry 1 18 may be configured in accordance with the energy settings so as to switch power to and/or from, sources (e.g., the "grid,” battery storage, solar cells, capacitors, thermal storage, chemical storage, fuel cells, etc.).
- sources e.g., the "grid,” battery storage, solar cells, capacitors, thermal storage, chemical storage, fuel cells, etc.
- the controller 102 may configure the power portion 1 14 with a power setting such that a first luminaire 106-1 may operate on power from the "grid," while a second luminaire 106-2 may operate on battery power, while a third luminaire 106-3 may operate on solar power provided by a solar cell (e.g., at a remote location), etc., as desired.
- the controller 102 and/or other portions of the system e.g., one or more of the sensors, the luminaires, and the power portion
- the power management module may determine the power required by the system at various times and thereby control power usage and/or generation to allocate power to luminaires, storage devices, sources, etc.
- the sensors 1 10 may include a plurality of sensors such as sensors 1 10-1 through 1 10-M (generally 1 10-x) which may generate sensor information such as image information, status information (e.g., luminaire operative, non operative, etc.), radar information (e.g., Doppler information, etc.), geophysical information (e.g., geophysical coordinates obtained from, for example, a global positioning system (GPS)), pressure information, humidity information, etc.
- the sensors 1 10-x may be located at one or more geophysical locations and may report their location to the controller 102. Each sensor 1 10-x may include a network address or other address which may be utilized to identify the sensor.
- the luminaires 106-x may include one or more of a transmission/reception (Tx/Rx) portion 109, a controller 105 (which may be part of the controller 102), illumination sources 107 such as lamps (e.g., a gas lamp, etc.), light emitting diodes (LEDs), incandescent lamps, fluorescent lamps, etc., and may be controlled by the controller 105.
- illumination sources 107 such as lamps (e.g., a gas lamp, etc.), light emitting diodes (LEDs), incandescent lamps, fluorescent lamps, etc., and may be controlled by the controller 105.
- the illumination sources may be configured in a matrix (e.g., a 10x10 matrix of illumination sources) in which illumination characteristics such as illumination pattern, intensity, spectrum (e.g., hue, color, etc.), polarization, frequency, etc., from one or more of the plurality of illumination sources and/or light pattern for a plurality of illumination sources, may be actively controlled by the system.
- the luminaires 106 may further include one or more light controlling elements 130 such as active reflector arrays to actively control illumination patterns from one or more of illumination sources of the plurality of illumination sources.
- the controller may control illumination spectrum and/or light output (e.g., in Lm/M2) by one or more of the illumination sources.
- the controller may control an illumination intensity by controlling the illumination output from an illumination source.
- the controller may control two or more illumination sources to control an illumination pattern.
- illumination characteristics such as illumination pattern, illumination intensity, illumination spectrum, illumination polarization, etc., of one or more luminaires may be controlled by the controller 105 and/or by the respective luminaire 106-x.
- Each luminaire 106-x and/or groups thereof may include a network address and/or other identifying information such that transmissions from/to the luminaire 106-x may be suitably directed.
- the luminaire identifying information may further include a geophysical location.
- FIG. 2 is perspective view of a lighting system 200 in accordance with
- the Tx/Rx portion 209 may transmit and/or receive information such as sensor information, lighting setting information, power setting information, etc., to and/or from the controller (e.g., see, controller 102), other luminaires 206-x, a power portion, sensors, etc.
- the battery 220 may receive energy generated by a corresponding solar cell 222 and may store the energy selectively for later use by one or more selected luminaires 206-x.
- one or more of the luminaires 206-x may include sensors such as an infrared (IR) temperature sensor 226, an air (e.g., ambient) temperature sensor 228, a radar sensor 230 (e.g., a Doppler effect radar sensor to detect precipitation), an image sensor 232, etc., which may be included in sensor information provide to a controller in accordance with embodiments of the present system.
- the IR temperature sensor 226 may report temperature such as ground temperature in one or more locations about a corresponding luminaire 206-x.
- the air temperature sensor 228 may provide air temperature information in the vicinity of a corresponding luminaire 206-x.
- the image sensor may provide image information (e.g., which may be processed to determine atmospheric conditions such as whether it is raining, desired illumination levels, etc.).
- the controller may process the sensor information and/or weather information (e.g., received from a third party such as AccuweatherTM, etc.) and determine a lighting setting in accordance with the weather information and/or the sensor information. The controller may then form corresponding lighting setting information that may be transmitted to one or more of the luminaires 206-x.
- the lighting setting information may include information that may be used to control characteristics of a luminaire such as power use, illumination patterns, illumination intensities, illumination spectrums (e.g., hues, colors, etc.), illumination polarizations, etc., of one or more of the luminaires 206-x.
- one or more luminaires 206-x may transmit sensor information to a neighboring luminaire 206-x (e.g., using a low power communication link) which may then form corresponding sensor information for two or more luminaires 206-x and transmit (e.g., using a higher power communication link) this sensor information to the controller for further processing.
- a neighboring luminaire 206-x e.g., using a low power communication link
- transmit e.g., using a higher power communication link
- the controller may control the luminaires 206-x to adjust illumination intensity for one or more determined areas or portions of one or more areas of an illumination pattern (e.g., see, darker shading which indicates brighter illumination than lighter shading in FIG. 2) in accordance with the lighting setting information.
- a luminaire 206-x such as the luminaire 206-8 may illuminate an area 235-8 which may correspond with, for example, an illuminated matrix (x,, )
- the controller may control the illumination source 206-8 to adjust an illumination pattern to illuminate an area such as the whole matrix (x,, ) or a portion of the matrix such as an area defined by an illumination pattern 231 -8.
- the controller may receive (e.g., in response to requests or periodically) sensor information which may be analyzed (e.g., using image analysis of image information received in the sensor information) and determine whether a lighting pattern is sufficient and/or to adjust a lighting pattern if it is determined that a current lighting pattern does not meet current lighting requirements (e.g., is insufficient).
- the controller may then form and/or update a lighting setting information database in a memory of the system 200 in accordance with information generated and/or received by the system such as the current lighting setting information, sensor information, weather information, and/or weather forecasts, etc. for later use.
- a lighting setting information database in a memory of the system 200 in accordance with information generated and/or received by the system such as the current lighting setting information, sensor information, weather information, and/or weather forecasts, etc. for later use.
- lighting settings for certain weather patterns may be modified by the system and/or by a user as described herein.
- the process may obtain sensor information which may, for example, include one or more of image information, temperature information (e.g., ground and/or air), Doppler radar information, pressure information, wind speed and/or direction information, barometric pressure information, relative humidity information, etc. After obtaining the sensor information, the process may continue to act 305.
- sensor information may, for example, include one or more of image information, temperature information (e.g., ground and/or air), Doppler radar information, pressure information, wind speed and/or direction information, barometric pressure information, relative humidity information, etc.
- the process may determine current weather status by analyzing the sensor information. For example, the process may analyze image information, temperature information, pressure information, radar information, and determine that it is currently raining. Further, the current weather status information may include information related to the current weather conditions in the vicinity of reporting sensors such as one or more of precipitation (e.g., rain, snow, fog, drizzle, ice, etc.), a rate of precipitation (e.g., 0.02, 2, etc., inches of rain per hour obtained by radar, collector, and/or image based sensors), humidity (bar), barometric pressure (inches-mercury in-hg), dew point, ambient illumination (e.g., dark such as nighttime which may also be determined together with or indecently with time information on a current time), etc.
- precipitation e.g., rain, snow, fog, drizzle, ice, etc.
- a rate of precipitation e.g., 0.02, 2, etc., inches of rain per hour obtained by radar, collector, and/or image based sensors
- the process may process image information using an image recognition algorithm or other digital signal processing technique and determine that it is raining and dark and form corresponding current weather status information.
- the process may also determine ground and/or air temperatures, etc.
- the process may use any suitable method such as a weather forecast application which may be run locally or at a remote location (e.g., by a third party application, etc.), etc.
- the process may forward the processed or unprocessed sensor information to a weather forecast application and receive information related to the current weather status (e.g., rain, dew point, expected weather pattern (e.g., clearing, becoming cloudier, colder, etc.) etc.).
- the current weather status information may further include future weather forecast information.
- the process may obtain the weather status information from a third party application. After completing act 305, the process may continue to act 307.
- the present system may determine a lighting setting in accordance with the current weather status information.
- the lighting setting may, for example, control the profile, illumination pattern(s), intensities, spectrum(s), polarization(s), frequencies (e.g., for flashing or continuous lighting, etc.), etc., of illumination provided by one or more of the one or more luminaires. Accordingly, the lighting setting may be determined using an algorithm and/or a look up table such as is shown in Table 1 below.
- the illumination pattern may include a normal and a spread pattern.
- the normal profile may define a normal area (e.g., a matrix) having a normal shape and/or size while a spread profile may have, for example, the same shape but may have a bigger size (or may have a different shape, if desired).
- the present system may set the lighting setting based upon the weather status information. For example, if the identified weather status is determined to be Fog (e.g., foggy), the process may set the light profile to spread the intensity to normal, the color to yellow and the frequency to 90 Hz (e.g., not flashing).
- the lighting settings as shown Table 1 may be set and/or updated by the system and/or by the user. For example, with respect to the Fog weather status setting, the user may set the color frequency to Red and may set the frequency to 20 Hz such that a flashing red light will be perceived by an individual when noticing light output from a corresponding luminaire.
- the system may use historical information to modify information in a lighting setting table.
- the process may form corresponding lighting setting information which may be transmitted to, and/or received by, a central controller and/or one or more of the selected luminaires of a plurality of luminaires in the lighting system, if desired.
- the process may continue to act 309.
- the present system may configure the selected luminaires to illuminate in accordance with the lighting setting information.
- LED sources may be configured to output illumination patterns, intensities, colors, color intensities, color spectrums, and/or frequencies in accordance with the lighting setting information.
- the illumination patterns may be determined using matrixes which may indicate intensity distribution over area.
- different illumination sources e.g., gas lamps, LEDs, etc.
- the process may continue to act 31 1.
- the present system may form and/or update history information (e.g., a statistical information) of a memory of the present system in accordance with the determined weather status, the sensor information, day, date, time, etc. which information may be used at a later time.
- update history information e.g., a statistical information
- the process may continue to act 313.
- the present system may determine whether to repeat one or more acts of the process. Accordingly, if it is determined to repeat one or more acts of the process, the process may continue to act 303 (or to another act which is desired to be repeated). Conversely, if it is determined not to repeat one or more acts of the process, the process may continue to act 315, where it ends.
- the process may be repeated at certain periodic and/or non-periodic time intervals.
- history information may be accessed and used to determine, for example, rate of change of the sensor information. For example, when repeating act 305, past weather or sensor information may be obtained and compared with current weather or sensor information to determine a rate of change of rainfall, temperature, humidity, barometric pressure, cloud cover, etc.
- This information may be used to determine lighting settings. For example, if the rate of change of rainfall is greater than 2 inches per hour, the process may select a corresponding lighting setting such as a maximum intensity red illumination to indicate increasing rainfall; while if it is determine that the rainfall is decreasing, the process may select a lighting setting of minimum intensity, green illumination to indicate passing of the heavy rainfall, etc., to indicate that the rainfall is decreasing. Accordingly, a person located indoors may easily ascertain outdoor weather conditions by observing illumination patterns of luminaires operating in accordance with embodiments of the present system. This may be useful for example, for person in a store who may wish to determine whether to go outside at the present time or remain indoors until, for example, a thunderstorm ends.
- FIG. 4 shows a flow diagram that illustrates a process 400 in accordance with embodiments of the present system.
- the process 400 may be performed by a system having one or more computers which may communicate over a network.
- the process 400 may include one of more of the following acts. Further, one or more of these acts may be combined and/or separated into sub-acts, if desired. In operation, the process may start during act 401 and then proceed to act 403.
- a query request may be generated periodically, non-periodically, at specified times, due to a certain occurrence (e.g., detected change in weather, such as was raining, as determined from historical weather information, but currently is not), when sensor information is received from luminaires, etc., which may be determined by the process and/or user.
- the query may be specific to an area served by the lighting system. Accordingly, weather information relevant to a specific area in which, for example, the system is located in and/or peripheral areas (e.g., a 50 mile radius) may be returned to the system as results of the query.
- the process may continue to act 405.
- the present system may determine whether to obtain sensor information from one or more sensors of the present system.
- the system may select certain sensors from which information is desired based upon location and/or type of sensor or other information. For example, if the process determines to check for solar conditions (e.g., sunlight) to charge batteries, the system may query image sensors for information. For example, if the process determines to check for a rate of precipitation, it may query Doppler radar sensors for information.
- the present system may determine a current weather forecast (e.g., including weather status and/or a weather forecast information) for a certain time interval (e.g., 1 , 12, 24 hrs., etc.). Accordingly the present system may analyze one or more of the weather information and the sensor information using any suitable method. For example, text based weather information may be analyzed using a context-based analysis engine while image based weather information and/or the sensor information may be analyzed using, for example, a digital signal processing (DSP) method, an image processing method, etc., to determine a current and/or expected weatherstatus for one or more times or time periods (e.g., 24 hours in the present example).
- DSP digital signal processing
- This information may be indexed for further use in determining system power configuration as will be described below with reference to Table 2.
- the image based weather information such as Doppler radar map image information may be processed and it may be determined that it is currently raining. Further, the weather information may be processed and it may be determined that rain is expected to last for several hours before clearing at about 9:00 pm. Accordingly, the present system may determine that a current weather status until 9:00 pm corresponds with a rain setting and that it will be clearing after 9:00 pm.
- the present system may index the forecast weather information using any suitable method such as shown in Table 2 below which is a graph illustrating (current, and future) weather status information over time and expected energy draw (illustrated as “-” ) or gain (illustrated as “+”) in units such as kWh.
- the energy draw may correspond with energy consumed by the system and the gain may be energy provided to the system from one or more sources such as "green” sources. However, it is also envisioned that the energy gain may reflect power provided by the "grid.” Further, the present system may determine that after 9:00 pm the weather will be clear until the next evening. Accordingly, the embodiments of the present system may determine energy provided by, for example, solar cells (e.g., during daylight hours), using predetermined calculations and/or using history information.
- solar cells e.g., during daylight hours
- the history information may provide data, such as statistical data, which may be used to calculate power produced by a particular source such as a "green" source.
- data such as statistical data
- the embodiments of the present system may determine expected power gain from one or more solar cells in accordance with history information corresponding with power generated by the one or more solar cells.
- the present system may query a memory for historical output of one or more solar cells during similar weather conditions or weather forecasts (e.g., a clear day, an overcast day, etc.), on or about the same date (e.g., to account for ecliptic or other variations), and/or at about the same temperature (e.g., to account for temperature variations), and obtain results of the query which may be used to interpolate expected power gain from the one or more solar cells.
- similar weather conditions or weather forecasts e.g., a clear day, an overcast day, etc.
- the same date e.g., to account for ecliptic or other variations
- temperature e.g., to account for temperature variations
- the embodiments of the present system may determine for example, expected wind speed for a given period to determine expected output of from one or more wind turbines based upon specified information (e.g., a manufacture's data sheet or past performance which may be, for example, stored in the history information or obtained via a network when desired by the process).
- specified information e.g., a manufacture's data sheet or past performance which may be, for example, stored in the history information or obtained via a network when desired by the process.
- an "x” indicates a predicted weather pattern (c.f. , Tables 1 and 2) and the "c” indicates a current time interval. After completing act 409, the process may continue to act 41 1.
- the present system may determine appropriate system
- the system configuration settings may include system power configuration settings and/or lighting settings for the determined weather forecast. Accordingly, the lighting settings may be selected using any suitable method such as a table lookup as illustrated in Table 1 above. Further, to determine system power settings, the system may rely upon any suitable power distribution analysis and/or techniques. For example, by determining expected lighting settings and weather status for a period of time (e.g., 6, 12, 24, 36, 48 ...hrs.), the system may determine expected power use for the period (e.g., shown in kWh although other units of measurement are also envisioned).
- a period of time e.g., 6, 12, 24, 36, 48 ...hrs.
- the controller may collect sensor information from sensors of the system such as roadside weather sensors, etc., which may include information indicative of a local weather conditions , surface conditions, etc.
- the controller may then update the weather forecast information in accordance with the sensor information (e.g., using weather models, etc.) to determine updated weather forecast information which may for example, include an updated weather forecast.
- the controller may transmit the sensor information to a weather forecast service (e.g., a third party application, etc.) which may apply the sensor information to a weather forecast model and may transmit results of the modeling to the controller.
- a weather forecast service e.g., a third party application, etc.
- the controller may identify light units of the present system and determine their capabilities (e.g., lighting output, operating status, etc.).
Landscapes
- Circuit Arrangement For Electric Light Sources In General (AREA)
Abstract
Description
Claims
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RU2014100883/07A RU2604654C2 (en) | 2011-06-13 | 2012-06-11 | Adaptive controlled outdoor lighting system and operation method thereof |
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Also Published As
Publication number | Publication date |
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JP2014519693A (en) | 2014-08-14 |
RU2604654C2 (en) | 2016-12-10 |
EP2719258B1 (en) | 2016-02-03 |
ES2565064T3 (en) | 2016-03-31 |
PL2719258T3 (en) | 2016-07-29 |
EP2719258A1 (en) | 2014-04-16 |
US20140117852A1 (en) | 2014-05-01 |
US9253847B2 (en) | 2016-02-02 |
RU2014100883A (en) | 2015-07-20 |
CN103609201A (en) | 2014-02-26 |
CN103609201B (en) | 2017-01-18 |
JP6430247B2 (en) | 2018-11-28 |
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