The present disclosure is related to lighting, and in particular to retrofits for legacy outdoor lights or luminaires, for instance street lights, lights in parking lots and other area lighting or luminaries.
It is desirable to be able to dim the intensity of solid state luminaires, for example street and area lights, using wireless or Power Line Carrier control systems. A NEMA standard socket with 5 or 7 contacts is often used for this purpose. Traditional 3 contact NEMA sockets have been used with “Dusk to Dawn” photocontrols which are only able to turn the luminaire ON or OFF.
A dimmer plug that is coupleable to a three contact socket of a luminaire, the three contact socket having three female receptacles, may be summarized as including a housing having a first face; only three male electrical contacts, the three male electrical contacts which extend from the first face of the housing, and arranged with respect to one another in a first arrangement; a receiver housed by the housing and operable to receive input signals; and circuitry housed by the housing and communicatively coupled to the receiver, the circuitry operable to provide an output signal via one of the three male electrical contacts based on the input signals received by the receiver. Circuitry may control dimming of the luminaire without controlling a line power of the luminaire. Circuitry may produce the output signal as a pulse-width modulated signal. Circuitry may adjust a duty cycle of the pulse-width modulated signal to adjust a level of illumination produced by the luminaire. Circuitry may produce the output signal as a frequency modulated signal. Circuitry may produce the output signal as a digitally coded signal. Circuitry may produce the output signal as an analog signal with a range of 0 volts to 100 volts.
The receiver may be a radio receiver and may further include an antenna communicatively coupled to the radio receiver to wirelessly receive the input signals. The receiver may be a wire-line receiver electrically coupled to receive the input signals via an electrical power line coupled to the luminaire. The three male electrical contacts may include an AC line contact, an AC neutral contact, and a control signal contact. The only three male electrical contacts may be sized, dimensioned, shaped, and may be arranged with respect to one another according to fit a socket that complies with a National Electrical Manufacturer Association (NEMA) C136 specification, such as the NEMA C136.10 specification, in existence as of Jan. 1, 2016. The dimmer plug may be a twist lock plug. The housing may have a thickness and a second face, the second face opposed across the thickness of the housing from the first face, and the housing may include a plurality of female electrical contacts accessible from the second face, the female electrical contacts electrically coupled to the circuitry. The housing may include either five or seven electrical contacts accessible from the second face. The five or seven electrical contacts may be sized, dimensioned, shaped and arranged to receive at least one of a five position dimming controller and a seven position dimming controller. The housing may include a plurality of pad electrical contacts accessible from the second face. The circuitry may receive the input signals from the dimming controller.
The dimmer plug may further include a light sensor communicatively coupled to the circuitry to provide the circuitry with an electrical signal representative of light sensed by the light sensor. The light sensor may include at least one of either a photo-sensor, a photodetector, and a photo-diode.
A dimmer plug that is coupleable to a three contact socket of a luminaire, the three contact socket having three female receptacles may be summarized as including: a housing having a first face; only three male electrical contacts, the three male electrical contacts which extend from the first face of the housing, and arranged with respect to one another in a first arrangement; a receiver housed by the housing and operable to receive an input signal that is not obtained from a light sensor; and circuitry housed by the housing and communicatively coupled to the receiver, the circuitry operable to provide an output signal via one of the three male electrical contacts based on the input signals received by the receiver.
The circuitry may be operable to control dimming of the luminaire without controlling a line power of the luminaire. The input signal received by the receiver may be not representative of a level of light in an external environment, and the circuitry may be operable to control dimming of the luminaire based at least in part on the input signal that is not representative of a level of light in the external environment.
In the drawings, identical reference numbers identify similar elements or acts. The sizes and relative positions of elements in the drawings are not necessarily drawn to scale. For example, the shapes of various elements and angles are not necessarily drawn to scale, and some of these elements are arbitrarily enlarged and positioned to improve drawing legibility. Further, the particular shapes of the elements as drawn, are not necessarily intended to convey any information regarding the actual shape of the particular elements, and have been solely selected for ease of recognition in the drawings.
The dimmer plug 100 may comprise a 3 contact socket that complies with a specific standard or specification. For example, the dimmer plug 100 may comprise a 3 contact socket that complies with a National Electrical Manufacturer
Association (NEMA) standard or specification or an American National Standards Institute (ANSI) standard or specification, for instance the ANSI C136.10 standard or specification, in existence as of Jan. 1, 2016. The dimmer plug 100 includes a body or housing 102 that houses a dimming circuit 110 and a receiver 116, the receiver communicatively coupled to the dimming circuit 110. The dimming circuit 110 provides dimming of a luminaire to which the dimmer plug 100 is attached, without controlling the line power to the luminaire.
The dimmer plug body or housing 102 has a first face 104 and a second face 106 opposed across a thickness of the body or housing 102 from the first face 104. The body or housing 102 may include one or more side walls 108 that extend between the first and the second faces 104, 106, respectively. In some implementations, the side wall 108 may have an annular cross-section, the housing 108 being cylindrical with the first face 104 at one end of the cylinder and the second face 106 at a second end of the cylinder. The body or housing 102 is not limited to circular profiles, and may have an oval, rectangular, hexagonal or even a free-form profile.
Three male electrical contacts 112a, 112b, 112c (collectively, male electrical contacts 112) may extend perpendicularly from the first face 104. A first one of the male electrical contacts 112a, denominated as control signal contact 112a, may be used to provide an output control signal that controls whether the lighting element in the luminaire is turned ON or turned OFF. In a conventional three-prong photocontroller plug, the control signal contact may provide an AC switch line signal that turns the light source in the luminaire ON at dusk and OFF at dawn, in response to ambient light sensed by a light sensor. As used in the dimmer plug 100, the control signal contact 112a may be used to provide a control signal that selectively cycles the light source in the luminaire ON and OFF to effectively dim the light output of the light source by a selected amount. The second male electrical contact, denominated as AC neutral contact 112b, may provide a connection to the AC neutral line. The third male electrical contact, denominated as AC line contact 112c, may provide a connection to the AC line. The AC neutral contact 112b and the AC line contact 112c may be electrically coupled to a power line and provide electrical power to the luminaire and/or to the dimmer plug 100.
The male electrical contacts 112 may be arranged with respect to each other in a first arrangement. For example, in some implementations, the male electrical contacts 112 may be spaced at equal distances around a circular region 114 included within the first face 104. In some implementations, the male electrical contacts 112 may be sized, dimensioned, shaped, and arranged with respect to each other in order to fit into a socket that complies with a NEMA or ANSI specification or standard, such as the ANSI C136.10 specification or standard in existence on Jan. 1, 2016. In such an implementation, the dimmer plug 100 may fit into a luminaire socket having three complementary female receptacles that correspond to the three male electrical contacts 112. In some implementations, the dimmer plug 100 may comprise a twist-lock plug in which the male electrical contacts 112 may be inserted into and twisted with respect to the corresponding female receptacles to thereby physically securely lock the dimmer plug 100 with the luminaire socket. The twist-lock dimmer plug 100 may be selectively releasable from the luminaire socket, for example by twisting in an opposite direction from the direction used to secure the twist-lock dimmer plug 100 to the luminaire socket.
The dimming circuit 110 may be housed by the body or housing 102, for example enclosed therein. The body or housing 102 may be electrically insulative and may provide environmental protection to the dimming circuit 110. The dimming circuit 110 may include a processor and/or micro-processor and/or micro-controller that execute machine-executable instructions. The dimming circuit 110 may also include one or more non-transitory memories that may store one or more lighting and/or dimming programs operable, when executed by the processor within the dimming circuit 110, to dim the luminaire without controlling the line power provided to the luminaire by, e.g., the AC line signal and AC neutral signal provided from the power line. For example, in some implementations, the dimming circuit 110 may be operable to provide a dimming level signal via the control signal contact 112a. Such a dimming level signal may, for example, be in the form of a pulse width modulated signal, an analog signal, a frequency modulated signal or a digitally coded signal such as ANSCI serial protocol compliant signal, that selectively turns the light source in the luminaire on and off, as discussed below.
The dimming circuit 110 may be electrically and communicatively coupled to a receiver 116 that may be operable to receive input signals that are associated with and indicate specific output signals for effectively dimming the light source of a luminaire. For example, in one embodiment, a Power Line Carrier receiver is coupled to the input power lines and receives the input signals from a remote source, for example from a central network controller. The Power Line Carrier receiver may provide the input signals to the dimming circuit 110 to provide the appropriate output control signals. In some implementations, the input signals may be received by a radio wireless receiver 116 such as a WiFi or Bluetooth radio transceiver that includes an antenna 118. The radio wireless receiver may provide the input signals to the dimming circuit 110 to provide the appropriate output control signals.
In any implementation, the receiver 116 of the dimmer plug 100 receives the transmitted input signal, and the circuitry of the dimming circuit 110 (e.g., analog logic circuitry, digital microcontroller or microprocessor) and/or the instructions executed by the dimming circuit 110 provide an output signal based on the received input signal. For example, in at least some implementations, the input signal received by the receiver 116 is provided to a high voltage solid state switch (e.g., MOSFET, IGBT). The high voltage solid state switch may use analog logic circuitry or digital logic (e.g., a microcontroller) to provide a pulse width modulated signal with a defined period (e.g., 4 seconds) and a voltage level equal to the line voltage based on a dimming level command included within the received input signal.
In one implementation, the output signal provided via the control signal contact 112a is an analog signal with a range of 0 volts to 10 volts. In another implementation, the output signal provided via the control signal contact 112a is an analog signal with a range of 0 volts to 100 volts.
The second female receptacle may correspond to the AC neutral line receptacle 408b that may be used to supply the signal from the AC neutral line to the dimmer plug 100. The third female receptacle may correspond to the AC line receptacle 408c that may be used to supply the AC line signal to the dimmer plug 100. As noted previously, the signal received via the power source input receptacle 408a may be used to control a dimming level for the light source 406 without controlling the line power input to the luminaire 400 via the AC neutral line receptacle 408b and the AC line receptacle 408c.
The second face 506 may have any combination of female receptacles 510 and pad contacts 512. In some implementations, for example, all of the electrical contacts on the second face may be female contacts 510. In other implementations, all of the contacts on the second face may be pad contacts 512. In yet other implementations, the contacts may be a combination of female contacts 510 and pad contacts 512. In some implementations, for example, the second face 506 of the dimmer plug 500 may include three female contacts 510 that may be used to connect to male contacts of older, legacy photocontrol units. Such a second face 506 may include additional pad contacts 512 that may be used for additional functionality provided by relatively newer photocontrol units. For example, in some implementations, the female receptacles 510 and/or pad contacts 512 may be sized, spaced, and dimensioned on the second face 506 to electrically and communicatively couple to corresponding electrical contacts (e.g., male connectors and pad contacts) on a five-position and/or a seven-position dimming controller.
The housing 502 may enclose or house a dimming control circuit 514. In some implementations, the dimming control circuit 514 may be operable to receive dimming control signals input by a photocontrol unit electrically and communicatively coupled to the female contacts 510 and/or pad contacts 512 on the second face 506 of the dimmer plug 500. The dimming control circuit 514 may produce an output signal that can be provided via the control signal contact 112a to selectively dim the light output of the luminaire 400 with a three-receptacle socket 402 based at least in part on the dimming control signals received from the five-contact or the seven-contact dimming controller. The light output of the light source 406 on such a luminaire 400 may be controllably, selectively dimmed according to the control signal received via the control signal contact 112a using the techniques described above.
The dimmer plug 500 may produce a dimming control signal based on the dimming signals received from the five-contact and/or seven-contact dimmer photocontrol unit 600. The dimming control signal may be input via the control signal contact 112a to controllably dim the light source 406 in the luminaire 400 that has a socket 402 configured to receive a three-pin dimmer plug. As such, the light output of the covered light source 406 may be dimmed without controlling the line power for the luminaire 400. In some implementations, for example, the five-contact and/or seven-contact dimmer photocontrol unit 600 may transmit a dimming level control signal that is between zero volts and ten volts. The voltage level of the dimming level control signal may indicate the desired dimming level and/or light intensity (e.g., a voltage level of 7 volts out of 10 volts may indicate 70% light intensity and 30% dimming). In such an implementation, the dimming control circuit 514 (
The various embodiments described above can be combined to provide further embodiments. To the extent that they are not inconsistent with the specific teachings and definitions herein, all of the U.S. patents, U.S. patent application publications, U.S. patent applications, foreign patents, foreign patent applications and non-patent publications referred to in this specification and/or listed in the Application Data Sheet, including but not limited to U.S. Provisional Patent Application No. 61/052,924, filed May 13, 2008; U.S. Pat. No. 8,926,138, issued Jan. 6, 2015; PCT Publication No. WO2009/140141, published Nov. 19, 2009; U.S. Provisional Patent Application No. 61/051,619, filed May 8, 2008; U.S. Pat. No. 8,118,456, issued Feb. 21, 2012; PCT Publication No. WO2009/137696, published Nov. 12, 2009; U.S. Provisional Patent Application No. 61/088,651, filed Aug. 13, 2008; U.S. Pat. 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Number | Date | Country | |
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20170311424 A1 | Oct 2017 | US |
Number | Date | Country | |
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62327939 | Apr 2016 | US |