The present invention relates to a system and method for monitoring efficiency and controlling power transfer across an inductive power coupling.
For safety, the power supplying side of a conductive couple is generally the female part, and does not have bare conductive elements protruding therefrom. A plug coupled to the device is the corresponding male part with bare pins. The size of the pins and holes are such that a child cannot insert his or her fingers thereinto. In high quality sockets, an earth connection is provided, and, only when a plug with a longer earth pin is inserted thereinto, is it possible to insert a pin (or anything else) into the holes connected to the current carrying live and neutral wires. Nevertheless, socket holes are dangerous and children do sometimes manage to insert pencils, pins and other objects into socket holes, sometimes with fatal results. Water can also cause shorting and may result in electrocution.
It can therefore be safer and more reliable to provide socket-less power outlets such as inductive couplers. Inductive power coupling allows energy to be transferred from a power supply to an electric load without connecting wires. A power supply is wired to a primary coil and an oscillating electric potential is applied across the primary coil which induces an oscillating magnetic field therearound. The oscillating magnetic field may induce an oscillating electrical current in a secondary coil, placed close to the primary coil. In this way, electrical energy may be transmitted from the primary coil to the secondary coil by electromagnetic induction without the two coils being conductively connected. When electrical energy is transferred inductively from a primary coil to a secondary coil, the pair are said to be inductively coupled. An electric load wired in series with such a secondary coil may draw energy from the power source when the secondary coil is inductively coupled to the primary coil.
Low power inductive electrical power transmission systems over extended surfaces are not new. One such example is described in U.S. Pat. No. 7,164,255 to Hui. In Hui's system a planar inductive battery charging system is designed to enable electronic devices to be recharged. The system includes a planar charging module having a charging surface on which a device to be recharged is placed. Within the charging module, and parallel to the charging surface, at least one, and preferably an array of primary windings are provided. These couple energy inductively to a secondary winding formed in the device to be recharged. Such systems are adequate for charging batteries in that they typically provide a relatively low power inductive coupling. It will be appreciated however, that extended base units such as Hui's charging surface which transmit energy continually approximately uniformly over the whole area of the unit, are not suitable for use with high energy systems.
By not requiring holes for coupling pins, socket-less outlets may be disguised more effectively than conductive sockets, and are thus less obtrusive. A primary inductive coil, for example, may be concealed behind a surface. Generally, the fact that socket-less outlets are less obtrusive is advantageous. But being harder to spot than conventional power outlets has its disadvantages. The user must somehow locate the outlet before being able to use it by bringing a secondary coil into proximity therewith. The problem of locating such sockets is particularly acute where the power outlets are behind a concealing surface such as a desk top or wall, and the positions thereof are adjustable over a large area.
Locating mobile source ‘hotspots’ or sockets is particularly problematic in high power systems where no extended power transmission surface is provided. Moreover, a high power primary coil produces a large oscillating magnetic field. Where a secondary coil is inductively coupled to the primary coil, the resulting flux linkage causes power to be drawn into the secondary coil. Where there is no secondary coil to focus the power, the oscillating magnetic field causes high energy electromagnetic waves to be transmitted which may be harmful to bystanders. In contrast to low power systems, such as Hui's charging surface, where excess heat may be readily dissipated, uncoupled high power primary coils and their surroundings may become dangerously hot.
In order to provide power to electrical devices in an efficient manner it is important that certain parameters of the power are regulated. By feeding back such parameters as working voltage, current, temperature and the like, the power supply to an electric device may be optimized to minimize energy losses and to prevent excessive heating of the components. Consequently, it may be useful to provide a signal transfer channel for power regulation and the like. Thus a communication channel between source and load device is often provided alongside the power input channel in conventional conductive power supply systems. Methods for providing such a communication channel include wired connections to the device that are often packaged in the same cable as the power lines and conductively coupled to the load via conventional pin-and-socket type connectors.
Leak prevention systems which are able to detect power emanating from a primary coil of an inductive power source and to cut off power to the primary coil if no secondary coil is coupled thereto have been considered. However in order to prevent power leakage from a primary coil while a secondary coil is coupled thereto, a communication channel between the secondary and primary coil would be useful. Nevertheless due to the lack of connecting wires in inductive power couplings, conductive communication channels are not practical.
There is a need for a control system for inductive power outlets, which is capable of locating a concealed power outlet, preventing power leakage from the power outlet, locating secondary coils close to the power outlet and regulating power transfer from the power outlet to a secondary coil coupled thereto. The present invention addresses this need.
A first aspect of the invention is directed to providing signal transfer system for controlling power transfer across an inductive power coupling, said inductive power coupling comprising a primary inductive coil wired to a power source and a secondary inductive coil wired to an electric load; said system comprising: at least one signal generator for generating a control signal; at least one transmitter for transmitting said control signal, and at least one receiver for receiving said control signal.
Optionally, the control signal for carrying encoded data pertains to at least one of the group comprising: presence of said electric load; location of said primary inductive coil; location of said secondary inductive coil; required operating voltage for said electric load; required operating current for said electric load; required operating temperature for said electric load; required operating power for said electric load; measured operating voltage for said electric load; measured operating current for said electric load; measured operating temperature for said electric load; measured operating power for said electric load; power delivered to said primary inductive coil; power received by said secondary inductive coil, and a user identification code.
In one embodiment, the signal generator comprises a transmission circuit connected to the secondary inductive coil; the transmitter comprising the secondary inductive coil, and the receiver comprising the primary inductive coil connected to a reception circuit wherein: said transmission circuit comprises an ancillary load selectively connectable to said secondary inductive coil, and said reception circuit comprises at least one power monitor for monitoring power provided to said primary inductive coil.
In one embodiment, the transmission circuit further comprises at least one switching unit comprising: a modulator for modulating a bit-rate signal with an input signal to create a modulated signal; and a switch for intermittently connecting said ancillary load to said secondary inductive coil according to said modulated signal, and said reception circuit further comprises: at least one current monitor for monitoring a primary current drawn by said primary inductive coil, thereby producing a primary current signal, and at least one correlator for cross-correlating said primary current signal with said bit-rate signal, thereby producing an output signal.
The signal transfer system may include embodiments where: said switching unit further comprises a controller configured to encode data into said input signal; said switching unit further comprises a frequency divider; said inductive power coupling transfers energy with a driving frequency and said bit rate frequency is an integer fraction of said driving frequency; said inductive power coupling is a device selected from the group comprising: a transformer, a DC-to-DC converter, an AC-to-DC converter, an AC-to-AC converter, a flyback transformer, a flyback converter, a full-bridge converter, a half-bridge converter and a forward converter; and said primary inductive coil is galvanically isolated from said secondary inductive coil.
In another embodiment, the transmission circuit further comprises a half-wave rectifier, and the reception circuit is configured to detect second harmonic signals in the power supplied to said primary inductive coil when said secondary inductive coil is coupled thereto.
Optionally, a plurality of the primary inductive coils are each connected to a driver and the driver is configured to selectively operate each primary inductive coil in turn so as to identify which primary inductive coil is closest to the secondary inductive coil.
Optionally, each primary inductive coil is operable at a plurality of power levels and said driver is configured to selectively operate each primary inductive coil at a low power until the primary inductive coil closest to said secondary inductive coil is identified and then to operate said primary inductive coil closest to said secondary inductive coil at a high power.
A second aspect of the invention is directed to an efficiency monitor for monitoring the efficiency of said power transfer comprising the signal transfer system described hereinabove; the efficiency monitor further comprising: at least one input power monitor for measuring the input power delivered to said primary inductive coil; at least one output power monitor for measuring the output power received by said secondary inductive coil; at least one processor for determining an index of power-loss, and at least one communication channel for communicating said input power and said output power to said processor.
The efficiency monitor may include embodiments where: the efficiency monitor additionally comprises at least one circuit-breaker for disconnecting said primary inductive coil from said power supply; the input power monitor is incorporated into an inductive power outlet; the output power monitor is incorporated into an electric device; the index of power-loss is an efficiency quotient Q, defined as the ratio of said output power to said input power; the index of power-loss is an efficiency differential Δ, defined as the difference between said output power and said input power, and the efficiency monitor additionally comprises hazard detectors in communication with said processor.
Optionally, the efficiency monitor is incorporated into an electric device that further comprises at least one said transmitter for transmitting said output power to said receiver.
Optionally, the transmitter is selected from the group comprising: light emitting diodes, radio transmitters, optocouplers, mechanical oscillators, audio sources, ultrasonic transducers and ancillary load transmission circuits.
The signal transfer system may be incorporated into a power outlet locator for locating an inductive power outlet, said power outlet comprising at least one said primary inductive coil and at least one said transmitter; the system further comprising: at least one sensor for detecting said control signal; at least one processor for receiving a sensor signal from said at least one sensor and computing at least one coordinate of a location of said power outlet, and at least one user interface for receiving a signal from said processor and communicating said location to a user.
The power outlet locator may include embodiments where: the at least one sensor being selected to detect an electromagnetic field generated by at least one said primary inductive coil; the processor calculates the distance between said sensor and said power outlet by comparing the intensity of said control signal received by the sensor with a reference value; the processor determines the direction of said power outlet by comparing the relative intensities of said control signal as detected by a plurality of said sensors; the location of said power outlet being encoded into said control signal and decoded by said processor; the user interface comprises a visual display for indicating the location of said power outlet, and the user interface comprises an audible signal.
In one embodiment, the power outlet locator is incorporated into an electrical device.
Optionally, the electrical device may include embodiments where: the electrical device additionally comprises at least one said secondary inductive coil for powering said electrical device; the electrical device additionally comprises at least one electrochemical power cell for powering said electrical device and at least one said secondary inductive coil wired to said electrochemical cell via a rectifier for charging said electrochemical power cell, and the electrical device is selected from the group comprising: telephones, personal digital assistants (PDAs), cameras, media players, computers, keyboards and cursor controllers.
A further aspect of the invention is directed to providing a method for transmitting a control signal through an inductive energy coupling comprising a primary inductive coil connected to a power source and a secondary inductive coil connected to an electric load, said method comprising: providing an input signal; providing a bit-rate signal; modulating the bit-rate signal with the input signal to create a modulated signal; connecting an ancillary load to said secondary inductive coil intermittently according to said modulated signal; monitoring a primary current drawn by said primary inductive coil and producing a primary current signal, and cross-correlating said primary current signal with said bit-rate signal to generate an output signal.
A further aspect of the invention is directed to providing a method for monitoring the efficiency of power transmission by an inductive power outlet comprising at least one primary inductive coil wired to a power supply for inductively coupling with a secondary inductive coil wired to an electric device, said method comprising: measuring the input power delivered to said primary inductive coil; measuring the output power received by said electric device; communicating said input power to a processor; communicating said output power to said processor, and said processor determining an index of power-loss.
In one specific method, a working range of values for said index of power-loss is predetermined, and the method comprises the further step of: disconnecting said primary inductive coil from said power supply if said index of power-loss falls outside said working range of values.
For a better understanding of the invention and to show how it may be carried into effect, reference will now be made, purely by way of example, to the accompanying drawings.
With specific reference now to the drawings in detail, it is stressed that the particulars shown are by way of example and for purposes of illustrative discussion of the preferred embodiments of the present invention only, and are presented in the cause of providing what is believed to be the most useful and readily understood description of the principles and conceptual aspects of the invention. In this regard, no attempt is made to show structural details of the invention in more detail than is necessary for a fundamental understanding of the invention; the description taken with the drawings making apparent to those skilled in the art how the several forms of the invention may be embodied in practice. In the accompanying drawings:
As required, detailed embodiments of the present invention are disclosed herein; however, it is to be understood that the disclosed embodiments are merely exemplary of the invention that may be embodied in various and alternative forms. The figures are not necessarily to scale; some features may be exaggerated or minimized to show details of particular components. Therefore, specific structural and functional details disclosed herein are not to be interpreted as limiting, but merely as a representative basis for teaching one skilled in the art to variously employ the present invention.
Reference is now made to
The inductive power coupling 200 consists of a primary inductive coil 220 and a secondary inductive coil 260. The primary coil 220 is wired to a power supply 240 typically via a driver 230 which provides the electronics necessary to drive the primary coil 220. Driving electronics may include a switching unit providing a high frequency oscillating voltage supply, for example. The secondary coil 260 is wired to an electric load 280.
When the secondary coil 260 is brought into proximity with the primary coil 220, the pair of coils forms an inductive couple and power is transferred from the primary coil 220 to the secondary coil 260. In this way a power outlet 210 may provide power to an electric device 290.
The signal transfer system 100 comprises: a signal generator 120, for generating a control signal SC; a transmitter 140 for transmitting said control signal SC; and a receiver 160 for receiving said control signal SC.
Although in the signal transfer system 100 described herein, the transmitter 140 is incorporated into the power outlet 210 and the receiver 160 is incorporated into the electrical device 290, it will be appreciated that a transmitter 140 may alternatively or additionally be incorporated into the electrical device 290 and a receiver 160 may alternatively or additionally be incorporated into the power outlet 210.
The control signal SC communicates encoded data pertaining to the power transmission. This data may be pertinent to regulating efficient power transmission. Examples of such data includes parameters such as: required operating voltage, current, temperature or power for the electric load 280, the measured voltage, current, temperature or power supplied to the electric load 280 during operation, the measured voltage, current, temperature or power received by the electric load 280 during operation and the like.
In other embodiments, the control signal SC may communicate data relating to the coordinates of the primary inductive coil 220 for the purposes of indicating the location of the power outlet 210. Alternatively, the control signal SC may communicate data relating to the identity or presence of the electric load 280 such as the location of the secondary coil 260, or an identification code or the electric device 290 or its user.
Various transmitters 140 and receivers 160 may be used with the signal transfer system. Where the primary and secondary coils 220, 260 are galvanically isolated for example, optocouplers may have a light emitting diode serving as a transmitter 140 which sends encoded optical signals over short distances to a photo-transistor which serves as a receiver 160. Optocouplers typically need to be aligned such that there is a line-of-sight between transmitter and receiver. In systems where alignment between the transmitter 140 and receiver 160 may be problematic, optocoupling may be inappropriate and alternative systems may be preferred such as ultrasonic signals transmitted by piezoelectric elements or radio signals such as Bluetooth, WiFi and the like. Alternatively the primary and secondary coils 220, 260 may themselves serve as the transmitter 140 and receiver 160.
Coil-to-Coil Signal Transfer
One aspect of the present embodiments relate to a signal transfer system for transferring a transmission signal regarding an electric load connectable via an inductive energy coupling to a power source. The inductive energy coupling comprises a primary coil connectable to the power source in inductive alignment with a secondary coil connectable to the electric load, the system comprises at least one ancillary load; at least one switching unit comprising a modulator for modulating a bit-rate signal with an input signal to create a modulated signal and a switch for intermittently connecting the ancillary load to the secondary coil according to the modulated signal; at least one current monitor for monitoring primary current drawn by the primary coil and producing a primary current signal, and at least one correlator for cross-correlating the primary current signal with the bit-rate signal for producing an output signal.
The switching unit preferably also comprises a controller configured to encode data into the input signal. Typically, the switching unit further comprises a frequency divider and the inductive energy coupling transfers energy with a driving frequency and the bit rate frequency is an integer fraction of the driving frequency.
The inductive energy coupling is typically a device wherein the primary coil is galvanically isolated from said secondary coil. The device may include a transformer, a DC-to-DC converter, an AC-to-DC converter, an AC-to-AC converter, a flyback transformer, a flyback converter, a full-bridge converter, a half-bridge converter, a buck converter, a boost converter, a buck-boost converter, a SEPIC converter or a zeta converter, for example.
Optionally, the input signal carries encoded data pertaining to, for example, the presence of the electric load, required operating voltage for the electric load, required operating current for the electric load, required operating temperature for the electric load, measured operating voltage for the electric load, measured operating current for the electric load, measured operating temperature for the electric load, and/or a user identification code.
In one embodiment, a contactless inductive coupling is provided, comprising the signal transfer system wherein the primary coil is embedded in a power jack and the secondary coil is embedded in a power plug galvanically isolated from the power jack.
An aspect of the technology described herein, teaches a method for transferring a signal through an inductive energy coupling, wherein the inductive energy coupling comprises a primary coil connected to a power source and a secondary coil connected to an electric load, the method comprising the following steps: providing an input signal, providing a bit-rate signal, modulating the bit-rate signal with the input signal to create a modulated signal, connecting an ancillary load to the secondary coil intermittently according to the modulated signal, monitoring a primary current drawn by the primary coil and producing a primary current signal; and cross-correlating the primary current signal with the bit-rate signal to generate an output signal.
According to another aspect, a method for regulating power transfer across a contactless inductive coupling is taught wherein the output signal provides details of power requirements of the load. Typically the input signal is provided by encoding data regarding at least one power requirement of the electric load into the input signal. Optionally and typically, the power requirement depends on parameters such as operating voltage, operating current and/or operating temperature. Alternatively the input signal is provided by monitoring at least one operating parameter of the electric load and encoding monitored parameter data into the input signal. Optionally the parameter is selected from the group comprising operating voltage, operating current and operating temperature. Typically the method for transferring a signal through an inductive energy coupling includes a preliminary step of detecting the presence of an electric load.
Reference is now made to
A transmission circuit 2140 may be connected in parallel with the electric load 2280. The transmission circuit 2140 comprises an ancillary load 2142 connected to the secondary coil L2 via a switching unit 2144. Typically the ancillary load 2142 is much smaller than the electric load 2280.
A corresponding reception circuit 2160 is connected to the primary coil L1 of the inductive energy coupling 2200 and comprises a current monitor 2162, such as an ammeter in series with the primary coil L1, and a correlator 2164.
The switching unit 2144 is configured to receive an input signal Sin and a bit-rate signal Fb. A modulator (not shown) modulates the bit-rate signal Fb with the input signal Sin to produce a modulated signal SM. The ancillary load 2142 is intermittently connected to the secondary coil L2 at a rate determined by the modulated signal SM.
The power source 2240, such as an alternating-current voltage source, intermittent direct current voltage source or the like, is configured and operable to produce a primary voltage V1 which oscillates at a driving frequency Fd. The oscillating primary voltage V1 in coil L1 induces a secondary voltage V2(t) in the secondary coil L2. The secondary voltage V2(t) is optionally passed through an AC-DC converter 22 producing a direct-current voltage V22(t).
The electric load 2280 which is coupled to the secondary coil L2—either directly or via the AC-DC converter 2270—draws a load current I22. The power P22 provided to the load 2280 is given by the scalar product of the voltage V22 and the load current I22. When the ancillary load 2144 is connected, an additional ancillary current i24 is also drawn. Thus, with the ancillary load 2144 connected, the total power P2 drawn by the secondary coil L2 is given by:
P2(t)={right arrow over (V)}22(t)·[{right arrow over (I)}22+{right arrow over (i)}24(t)]
where the ancillary current signal i24(t) varies with the modulated signal SM.
The input power P1(t) provided to the primary coil L1 is given by:
P1(t)={right arrow over (V)}1(t)·{right arrow over (I)}10(t)
where the primary voltage V1(t) oscillates at the driving frequency Fd which is determined by the power supply 2240.
Input power P1(t) provided by the primary coil L1 is generally proportional to the total power P22(t) drawn by the secondary coil L2, and the primary voltage V1(t) is determined by the power supply. Perturbations in the primary current I10(t) supplied to the primary coil L1 are thus in proportion with i24(t).
The current monitor 2162 monitors the primary current I10(t) over time, producing a primary current signal Sp which typically has similar characteristics to the modulated signal SM. The correlator 2164 is configured to cross-correlate the primary current signal Sp with the bit rate Fb. The output signal Sout of the correlator 2164 therefore has the same characteristics as the input signal Sin.
In this manner, information carried by the input signal Sin is transmitted from the transmission circuit 2140 and is retrievable by the receiver circuit 2160 from the output signal Sout. It is noted that the signal transfer system 2100 described herein, transmits a transmission signal across the same inductive power coupling 2200 as used for power transmission. This is in contradistinction to prior art transmission systems, which use additional elements to provide signal transmission channels separate from the power transmission channels. In consequence of this innovative approach, additional transmission elements such as optocouplers, piezoelectric elements, supplementary coil pairs and the like are not generally required.
With reference now to
The connection between the ancillary load 2142 and the load voltage V2 is controlled by a switching unit 2144 which includes a frequency divider 2145, microcontroller 2146 and a switch 2147. The frequency divider 2145 provides the bit-rate signal Fb which is passed to the microcontroller 2146. The microcontroller 2146 is configured to modulate the bit-rate signal Fb according to input signals including control signals SC from the electric load 2280 and external signals SE. as described hereinbelow.
Control signals SC may be used to regulate the power supply. Control signals SC typically provide data relating to load parameters. Typically these include the required operating voltage, current and temperature and the actual measured operating voltage, current and temperature as monitored during operation of the load.
External Signals SE may be used to provide the transmission circuit 2140 with external data to be digitally encoded into the input signal Sin by the microcontroller 2146 and transmitted to the receiver circuit 2160. External information, may, for example, provide useful supplementary data such as a user identification code, a pass key, battery level of the load device and the like.
It will be appreciated that the ability to transmit supplementary information such as external signals SE through the inductive energy coupling 2200 presents a further advantage over prior art systems which are only suitable for transmitting control signals.
An exemplary use of the receiver circuit 2160 of
The switch 2244 is controlled by a driver 2248 which receives a pulsing signal Fd from a clock 2246. The pulsing signal Fd determines the frequency with which the direct current voltage source 2242 is connected to the primary coil L1. The power delivered to the primary coil L1 may be regulated by varying the duty cycle of the switch 2244. The duty cycle is the proportion of the time between pulses during which the switch 2244 is closed.
The microcontroller 2168 generates a control signal SC which is relayed to the driver 2248. The control signal SC determines the duty cycle of the switch 2248 and so may be used to regulate power transmission.
Although only a flyback converter is represented in
As an example of the signal transfer system 100 (
Where a contactless plug 3292 is used, for example to power a portable computer 3290 having on-board power cells 3280, the signal transfer system 3100 may be used to detect the presence of the load 3290 producing a detection signal SDL and then to provide the jack 3212 with signals relating to the identity of the user SID and the serial number SSN or other identifier of the laptop computer 3290. Signals regarding the operating voltage and current required by the PC may be provided as a regulatory signal SQ which may also provide supplementary information such as information related to the power level of the cells 3280, for example. Using this signal SQ, the signal transfer system 3100 may be used to select between powering the computer 3290 directly, recharging the power cells 3280 thereof, or both powering and recharging, depending on defaults and predetermined criteria. It is further noted that when used for recharging cells 3280, the ability to monitor the temperature of the cells 3280 during recharging may be used to prevent overheating.
Referring to
The basic signal transfer system and method described hereinabove are capable of variation. For example, it will be appreciated that through the use of such a system, information regarding a load 2280 may be transmitted to the power outlet 2210 across the inductor coils L1 and L2 of the inductive coupling 2200, as a signal superimposed on the power transmitted, without requiring additional data transmitting components.
Power Coupling Efficiency
Embodiments of the invention are directed to providing methods for monitoring the efficiency of power transmission by an inductive power outlet comprising at least one primary coil wired to a power supply, for inductively coupling with a secondary coil wired to an electric device. The method comprises the steps of: measuring the input power delivered to the primary coil, measuring the output power received by the electric device, communicating the input power to a processor, communicating the output power to the processor and the processor determining an index of power-loss.
In one specific application, the index of power-loss is an efficiency quotient Q, being the ratio of the output power to the input power, and the method comprises the further step of: disconnecting the primary coil from the power supply if the efficiency quotient Q is below a threshold value. Typically the threshold efficiency quotient is in the range of from 75% to 95%.
In another application, the index of power-loss is an efficiency differential Δ, being the difference between the output power to the input power, and the method comprises the further step of: disconnecting the primary coil from the power supply if the efficiency differential Δ is above a threshold value.
A further aspect of the technology described herein relates to an efficiency monitor for monitoring the efficiency of power transmission by an inductive power outlet of the type including at least one primary coil wired to a power supply, for inductively coupling with a secondary coil wired to an electric device. The efficiency monitor includes: at least one input power monitor for measuring the input power delivered to the primary coil; at least one output power monitor for measuring the output power received by the secondary coil; at least one processor for determining an index of power-loss; and at least one communication channel for communicating the input power and the output power to the processor.
Typically the efficiency monitor also includes at least one circuit-breaker for disconnecting the primary coil from the power supply. Preferably the input power monitor is incorporated within the power outlet and the output power monitor is incorporated within the electric device.
Optionally, the electric device comprises at least one transmitter for transmitting the output power to a receiver incorporated in the power outlet. The transmitter may include one or more light emitting diodes, radio transmitters, optocouplers, or ancillary load transmitter circuits, for example.
According to preferred embodiments, the efficiency monitor includes one or more hazard detectors in communication with the processor. Such hazard detectors may include magnetic sensors, heat sensors, electromagnetic radiation sensors and Hall probes, for example.
Reference is now made to
The inductive power outlet 4210 consists of a primary coil 4220 wired to a power supply 4240 via a driver 4230 which provides the electronics necessary to drive the primary coil 4220. Driving electronics may include a switching unit providing a high frequency oscillating voltage supply, for example.
If a secondary coil 4260 is brought into proximity with the primary coil 4220, the pair of coils forms an inductive couple, and power is transferred from the primary coil 4220 to the secondary coil 4260. In this way the power outlet 4210 may provide power to an electric device 4262 comprising an electric load 4280 wired in series with the secondary coil 4260.
The efficiency monitor 4300 consists of an input power monitor 4122 incorporated within the power outlet 4210 and an output power monitor 4124 incorporated within the electric device 4290, both in communication with a processor 4162.
The input power monitor 4122 is configured to measure the input power Pin provided by the primary coil 4220 and communicates this value to the processor 4162. The output power monitor 4124 is configured to measure the output power Pout received by the secondary coil 4260 and communicates this value to the processor 4162.
The processor 4162 is configured to receive the values of the input power Pin and the output power Pout and to calculate an index of power-loss. The index of power loss indicates how much power is leaking from the inductive couple. The index of power-loss may be the efficiency quotient Q which is the ratio between them, Pout/Pin, which is an indication of the efficiency of the inductive coupling. Alternatively the index of power loss may be the efficiency differential Δ which is the difference between Pout and Pin.
The processor 4162 may additionally or alternatively be configured to trigger a circuit-breaker 4280 thereby cutting off the primary coil 4220 from the power supply 4240 when the efficiency quotient Q falls below a predetermined threshold or the efficiency differential Δ rises above a predetermined threshold. Typically, this predetermined threshold for the efficiency quotient Q is in the range of from about 75% to 95%, and more preferably about 85%.
With reference to
In other embodiments a primary coil 5220 may be concealed beneath or within flooring such as rugs, fitted carpet, parquet, linoleum, floor tiles, tiling, paving and the like. Alternatively the primary coil 5220 may be concealed behind or within a vertical surface such as a wall of a building or a cabinet, for example behind wallpaper or stretched canvas or the like.
The primary coil 5220 may be used to power an electrical device 5290 such as a computer wired to a secondary coil 5260. The electrical device 5290 is placed upon the surface 5642 of a platform 5640 such that the secondary coil 5260 is aligned with the primary coil 5220 therebeneath.
The efficiency of the power outlet 5210 is monitored by an efficiency monitor 5300. An input power monitor 5122 is incorporated within the power outlet 5210 behind the platform 5640 and is in direct conductive communication with a processor 5162. An output power monitor 5124 is incorporated within the electrical device 5290 and is not physically connected to the power outlet 5210. The output power monitor 5124 communicates with the processor 5162 via a signal transfer system 5100 comprising a transmitter 5140 incorporated within the electrical device 5290 which is configured to transmit a signal to a receiver 5160 incorporated within the power outlet 5210.
The transmitter 5140 may be a standard transmitter such as those widely used in computing and telecommunications, such as an Infra-red, Wi-fi or Bluetooth transmitter or the like. Indeed, any light emitting diodes, radio transmitters, optocouplers or other such transmitters of radiation for which the platform 5640 is translucent may be used. Alternatively a fiber optic pathway may be provided through the platform.
In certain embodiments, an optical transmitter, such as a light emitting diode (LED) for example, is incorporated within the power outlet 5210 and is configured and operable to transmit electromagnetic radiation of a type and intensity capable of penetrating the casing of the electrical device 5290, and the surface layer 5642. An optical receiver, such as a photodiode, a phototransistor, a light dependent resistors of the like, is incorporated within the primary unit for receiving the electromagnetic radiation transmitted through the surface layer 5642.
It is noted that many materials are partially translucent to infra-red light. It has been found that relatively low intensity infra-red signals from LEDs and the like, penetrate several hundred microns of common materials such as plastic, cardboard, Formica or paper sheet, to a sufficient degree that an optical receiver, such as a photodiode, a phototransistor, a light dependent resistors or the like, behind a sheet of from 0.1 mm to 2 mm of such materials, can receive and process the signal. For example a signal from an Avago HSDL-4420 LED transmitting at 850 nm over 24 degrees, may be detected by an Everlight PD15-22C-TR8 NPN photodiode, from behind a 0.8 mm Formica sheet. For signaling purposes, a high degree of attenuation may be tolerated, and penetration of only a small fraction, say 0.1% of the transmitted signal intensity may be sufficient. Thus an infra-red signal may be used to provide a communication channel between primary and secondary units galvanically isolated from each other by a few hundred microns of wood, plastic, Formica, wood veneer, glass or the like.
The transmitter 5140 and receiver 5160 may be laterally displaced from the primary coil 5220 and secondary coil 5260. In preferred embodiments, however, the transmitter 5140 is located at the center of the secondary coil 5260 and the receiver 5160 is located at the center of the primary coil 5220. This permits alignment to be maintained through 360 degree rotation of the secondary coil 5260 relative to the primary coil 5220.
The processor 5162 is configured to receive the values of the input power Pin, directly from the input power monitor 5122, and the output power Pout, via the receiver 5160. The processor 5162 then calculates the efficiency quotient Q. In normal usage as represented in
In contradistinction to previous systems known to the inventors, embodiments of the present invention measure the efficiency quotient Q. Consequently, when a power drain is introduced, such as that shown in
According to certain embodiments, additional detectors (not shown) may be incorporated within the power outlet 5210, the platform 5640 or the electrical device 5290 for monitoring other scientific effects which may be indications of possible hazards such as the magnetic field generated by the primary coil 5220, or the temperature of the platform 5640 for example. Such detectors may function in accordance with one or more of a variety of principles, including, inter alia, magnetic sensing means, Hall probes, heat sensors or electromagnetic sensors.
The processor 5162 may assess the level of the hazard detected by processing the various signals received according to a predetermined logical sequence. If necessary, the processor 5162 may trigger a circuit-breaker 5280 thereby cutting off the primary coil 5220 from the power supply 5240. Depending on the nature of the hazard, the processor 5162 may additionally or alternatively alert a user to the hazard. The alert may be a visual or audio alarm for example, such as a buzzer or light incorporated in the power transmission surface, or a signal sent to the computer 5290 which displays a warning 5294 on its visual display 5296 or emits a warning sound.
In preferred embodiments the output power Pout may be monitored and encoded into the input signal Sin. The coil-to-coil signal generator shown in
Reference is now made to
Primary Coil Locators
Another aspect of the invention is directed to providing a power outlet locator for locating an inductive power outlet of the type comprising at least one primary coil wired to a power supply for inductively coupling with a secondary coil wired to an electrical device. Typically, the power outlet locator comprises at least one sensor for detecting the at least one power outlet, at least one processor for receiving a sensor signal from the at least one sensor and computing at least one coordinate of a location of the at least one power outlet and at least one user interface for receiving a signal from the processor and communicating the location to a user.
Preferably, at least one sensor is selected to detect radiation transmitted by the at least one the power outlet. Typically, at least one sensor is selected to detect an electromagnetic field generated by at least one the primary coil. Optionally the processor calculates the distance between the sensor and the power outlet by comparing the intensity of the radiation received by the sensor with a reference value. Typically, the processor determines the direction to the power outlet by comparing the relative intensities of the radiation detected by a plurality of the sensors. Alternatively the location of the power outlet is encoded into a signal transmitted by the power outlet and decoded by the processor.
Typically, the user interface comprises a visual display. Optionally, the visual display indicates the direction of the power outlet. Preferably, the visual display indicates the distance to the power outlet. Preferably, the visual display comprises a graphical user interface representing at least a section of a target comprising concentric rings centered on a point indicating the location of the power outlet. Typically, the power outlet is concealed behind a surface and the target is superimposed upon an image of the surface. Alternatively or additionally, the user interface comprises an audible signal.
Another aspect of the invention is to provide an electrical device incorporating a power outlet locator. Typically, the electrical device additionally comprises at least one secondary inductive coil for powering the electrical device. Optionally, the electrical device additionally comprises at least one electrochemical power cell for powering the electrical device and at least one the secondary inductive coil wired to the electrochemical cell via a rectifier for charging the electrochemical power cell. The electrical device may be, but is not necessarily, selected from the group comprising: telephones, personal digital assistants (PDAs), cameras, media players, computers, keyboards and mice.
Reference is now made to
The inductive power outlet 6210 is wired to a power source typically via a driver 230 (
The inductive power outlet 6210 may be incorporated into a vertical surface such as a wall of a building or a cabinet. The inductive power outlet 6210 may be concealed behind a surface 6642 of wallpaper or stretched canvas for example. Alternatively the inductive power outlet 6210 may be incorporated behind a facing layer of a horizontal platform such as a desk-top, a kitchen work-top, a conference table or a work bench for example of mica, Formica or wood veneer. Alternatively, again, an inductive power outlet 6210 may be concealed beneath flooring such as rugs, fitted carpet, parquet, linoleum, floor tiles, tiling, paving and the like.
It will be apparent that when the location of the inductive power outlet 6210 is known, a secondary coil 6260 may be brought into alignment therewith, as shown in
With reference now to
According to various embodiments, the sensor unit 7160 may incorporate magnetic sensors such as Hall probes, for example, configured to detect the magnetic field generated by the inductive power outlet directly. Alternatively, the sensor unit 7160 may incorporate a radio receiver for receiving a radio signal transmitted from the power outlet. It will be appreciated, however, that appropriate sensors may be selected for detecting specific electromagnetic wavelengths, including ultra-violet radiation, micro waves, radio waves or even x-ray or shorter wavelengths. Furthermore, the sensing unit may be configured to receive other types of radiation, including mechanical vibrations such as both audible and inaudible (e.g. ultrasonic) sound waves.
By way of example, an exemplary sensing unit 7460 is represented in
Each sensor 7462 is configured to receive a control signal SC transmitted from an inductive power outlet 7210. The processor 7362 may compare the intensity I of the control signal SC detected by a sensor 7462 with a reference value Ir to indicate the distance between the sensor 7462 and the power outlet 7210.
Furthermore, the diamond configuration, provides two perpendicular opposing pairs of sensors 7462a-b, 7462c-d. The intensity I of the control signal SC is measured by each sensor independently. The processor 7460 may use the differences between intensities measured by opposing pairs (Ia-Ib), (Ic-Id) to provide vector coordinates indicating the direction of the power outlet 7210. Although a two dimensional vector is computed using the two dimensional diamond configuration of sensors described hereinabove, it will be appreciated that a three dimensional vector may be computed from three pairs of sensors in a tetrahedral configuration.
It will be appreciated that the computation method herein described are by way of example, for illustrative purposes only. Alternative methods by which the processor may compute the direction of the power outlet will be familiar to those skilled in the art.
The voltage applied to the primary coil 8220 is thus a modulated variable voltage with a frequency f, carrying an encoded location signal SL. It will be appreciated that the variable voltage may produce a radio wave of frequency f which may be transmitted as a control signal SC. Alternatively, the control signal SC may be transmitted by a dedicated transmitter separate from the primary coil 8220.
The power outlet locator 8500 includes a receiver 8160, a clock 8542 and a cross-correlator 8544. The radio receiver 8160 is tunable to receive radio waves of frequency f, such that it may receive the control signal SC. The clock 8542 produces a fixed reference signal R of frequency f. The cross-correlator 8544 receives both the reference signal R from the clock 8542 and the control signal SC from the receiver 8160 and by cross-correlating these signals the location signal SL is isolated.
Although a digital bit-rate modulated control signal SC is described hereinabove, it will be appreciated that the control signal SC may alternatively be modulated in other ways such as by analogue or digital frequency modulation or by amplitude modulation, for example.
The location of the power outlet 8210 may thereby be transmitted to a remote power outlet indicator 8500, which may then output the location of the power outlet 8210 a user interface 7360 (
As shown in
Although the whole of the virtual target 9660 is represented by a dotted line in
It is further noted that the mobile phone 9290 may itself carry a secondary inductive coil (not shown) wired to a electrochemical cell via a rectifier for inductively coupling with a inductive power outlet and charging the electrochemical power cell. Optimal alignment between the secondary coil and the inductive power outlet may additionally be indicated by an audible signal such as a ring-tone or the like. In other embodiments, particularly useful for the visually impaired, an audible signal may be additionally or alternatively be provided to guide the user to the power outlet, perhaps verbally or alternatively through other variations in pitch, volume or timbre.
It will be apparent that in certain situations such as when the power source of the mobile phone 9660 is completely devoid of power, a power outlet locator 9300 which draws power from the mobile phone 9290 is impractical. In alternative embodiments, therefore, a power outlet locator may be an independently powered unit with a user interface separate from that of the mobile phone 9290. For example, in another embodiment, the power outlet locator draws power from the secondary inductive coil. Additionally or alternatively, it may include a dedicated electrochemical power source, for example. The relative brightness of four light emitting diodes mounted upon the corners of the mobile phone may indicate both the direction and proximity to a primary coil.
Whilst the power outlet locator 9300 is incorporated into a mobile phone 9290 it is noted that such a power outlet locator may alternatively be incorporated within other electrical devices such as fixed telephones, personal digital assistants (PDAs), cameras, media players, computers, keyboards, cursor controllers (e.g. mice) and the like.
Secondary Coil Locators
The signal transfer system may be associated with the primary coil and used to detect the location of the secondary inductive coil. For example, in a power outlet surface comprising multiple primary coils, each primary coil may be independently connected to the power source via a driver. The signal transfer system may be used to identify the primary coil closest to the location of a secondary coil. Typically, the primary coils may be driven at multiple power levels, such that a low power level is used to locate the secondary coil and a higher power is used to transfer power when a secondary coil is located.
In preferred embodiments the secondary coil is wired to a transmission circuit comprising an ancillary load connectable to the secondary coil via a half-wave rectifier, such as a diode. The transmission circuit may also comprise a smoothing capacitor, a low power current source and a DC to DC converter.
When in detection mode, the driver activates each primary coil sequentially at low power. When a secondary coil is close enough to a primary coil to inductively couple with it, the low power pulse is transferred from the primary coil to the secondary coil. An AC voltage is induced in the secondary coil and the transmission circuit is activated. A DC current is produced by the half-wave rectifier and flows through the ancillary load.
A control signal is transmitted by the secondary coil due to the transmission circuit. Because half-wave rectification is used, even harmonics of the power transmission frequency are generated. These may be detected by a reception circuit connected to the primary coil, for example by cross-correlating the power transmission frequency with a reference clock frequency.
The strength of the even harmonic signals may indicate the proximity of the primary to the secondary coil. Once a secondary coil is detected, the driver may switch the closest primary coil to power transmission mode, typically at a higher power.
It will be appreciated that in applications where a main electric load is itself wired to the secondary coil via an AC-DC power converter which performs half-wave rectification, even harmonics are produced whenever the secondary coil is coupled to a primary coil, whether or not the ancillary load is connected. The strength and phase of both odd and even harmonics may be continuously monitored during power transmission so that if the secondary coil is displaced or removed it will be readily detected. Optionally the transmission circuit may be deactivated when power is provided to the electric load. Alternatively, where the main load is wired to the secondary coil via a half-wave rectifier, the ancillary load may be dispensed with entirely.
The multi-coil power transmission surface 2211 comprises an array of primary coils L1n each connected to a driver 2231 wired to a power source 2241. The signal transfer system 2101 includes a transmission circuit 2141 wired to the secondary coil 2221 and a reception circuit 2161 connected to the driver 2231. The transmission circuit 2141 includes a half-wave rectifier 2144 connected to an ancillary load 2142 and the reception circuit 2161 is configured to detect second harmonic signals in the power supplied to the primary inductive coil L1n when the secondary inductive coil L22 is coupled thereto.
The driver 2231 is configured to selectively operate each primary inductive coil L1n in turn preferably at low power so as to identify which primary inductive coil is closest to the secondary inductive coil L22. When a secondary coil L22 is detected, the driver 2231 is then configured to operate the primary inductive coil L1n closest to the secondary inductive coil L22 at a high power. It will be appreciated that for some purposes it may be desirable to disconnect the transmission circuit 2141 after the secondary inductive coil L22 is coupled to a primary coil L1n.
Thus a number of related technologies are presented that use signal transfer systems across an inductive power coupling to regulate the power and to detect and align the two coils.
The scope of the present invention is defined by the appended claims and includes both combinations and sub combinations of the various features described hereinabove as well as variations and modifications thereof, which would occur to persons skilled in the art upon reading the foregoing description.
In the claims, the word “comprise”, and variations thereof such as “comprises”, “comprising” and the like indicate that the components listed are included, but not generally to the exclusion of other components.
While exemplary embodiments are described above, it is not intended that these embodiments describe all possible forms of the invention. Rather, the words used in the specification are words of description rather than limitation, and it is understood that various changes may be made without departing from the spirit and scope of the invention. Additionally, the features of various implementing embodiments may be combined to form further embodiments of the invention.
This application is a continuation of U.S. Ser. No. 14/323,124 filed Mar. 7, 2014, which is a continuation of U.S. Ser. No. 14/098,880 filed Dec. 6, 2013, which is a continuation of U.S. Ser. No. 13/306,379 filed Nov. 29, 2011, which is a continuation of U.S. Ser. No. 12/563,558 filed Sep. 21, 2009, now U.S. Pat. No. 8,090,550, which is a continuation of PCT application Serial No. PCT/IL2008/000401 filed Mar. 23, 2008, which claims the benefit of U.S. provisional application Ser. Nos. 60/907,132 filed Mar. 22, 2007, 60/935,847 filed Sep. 4, 2007, 61/006,076 filed Dec. 18, 2007, 61/006,106 filed Dec. 19, 2007, 61/006,488 filed Jan. 16, 2008 and 61/006,721 filed Jan. 29, 2008, the disclosures of which are hereby incorporated by reference in their entirety.
Number | Name | Date | Kind |
---|---|---|---|
3771085 | Hojo et al. | Nov 1973 | A |
3938018 | Dahl | Feb 1976 | A |
4076996 | Maehara et al. | Feb 1978 | A |
4160193 | Richmond | Jul 1979 | A |
4388727 | Metcalf | Jun 1983 | A |
4431948 | Elder et al. | Feb 1984 | A |
4754180 | Kiedrowski | Jun 1988 | A |
4977515 | Rudden et al. | Dec 1990 | A |
5221877 | Falk | Jun 1993 | A |
5278771 | Nyenya | Jan 1994 | A |
5367242 | Hulman | Nov 1994 | A |
5455466 | Parks et al. | Oct 1995 | A |
5486394 | Stough | Jan 1996 | A |
5528113 | Boys et al. | Jun 1996 | A |
5550452 | Shirai et al. | Aug 1996 | A |
5600225 | Goto | Feb 1997 | A |
5713939 | Nedungadi et al. | Feb 1998 | A |
5734254 | Stephens | Mar 1998 | A |
5762250 | Carlton et al. | Jun 1998 | A |
5821728 | Schwind | Oct 1998 | A |
5821731 | Kuki et al. | Oct 1998 | A |
5850416 | Myer | Dec 1998 | A |
5896278 | Tamura et al. | Apr 1999 | A |
5907285 | Toms et al. | May 1999 | A |
5929598 | Nakama et al. | Jul 1999 | A |
5949214 | Broussard et al. | Sep 1999 | A |
5963012 | Garcia | Oct 1999 | A |
5991170 | Nagai | Nov 1999 | A |
6042005 | Basile et al. | Mar 2000 | A |
6211649 | Matsuda | Apr 2001 | B1 |
6230029 | Hahn et al. | May 2001 | B1 |
6396935 | Makkonen | May 2002 | B1 |
6436299 | Baarman et al. | Aug 2002 | B1 |
6441589 | Frerking et al. | Aug 2002 | B1 |
6484260 | Scott et al. | Nov 2002 | B1 |
6532298 | Cambier et al. | Mar 2003 | B1 |
6586909 | Trepka | Jul 2003 | B1 |
6624616 | Frerking et al. | Sep 2003 | B1 |
6636146 | Wehoski | Oct 2003 | B1 |
6644557 | Jacobs | Nov 2003 | B1 |
6673250 | Kuennen et al. | Jan 2004 | B2 |
6690169 | Candy | Feb 2004 | B2 |
6721540 | Hayakawa | Apr 2004 | B1 |
6731071 | Baarman | May 2004 | B2 |
6766040 | Catalano et al. | Jul 2004 | B1 |
6825620 | Kuennen | Nov 2004 | B2 |
6888438 | Hui et al. | May 2005 | B2 |
6894457 | Germagian et al. | May 2005 | B2 |
D519275 | Shertzer | Apr 2006 | S |
7043060 | Quintana | May 2006 | B2 |
7126450 | Baarman et al. | Oct 2006 | B2 |
7132918 | Baarman et al. | Nov 2006 | B2 |
7164255 | Hui | Jan 2007 | B2 |
7180248 | Kuennen | Feb 2007 | B2 |
7180265 | Naskali et al. | Feb 2007 | B2 |
7210940 | Baily | May 2007 | B2 |
7224086 | Germagian et al. | May 2007 | B2 |
7233319 | Johnson et al. | Jun 2007 | B2 |
D553852 | Brandenburg | Oct 2007 | S |
7310245 | Ohbo | Dec 2007 | B2 |
7385357 | Kuennen | Jun 2008 | B2 |
7392068 | Dayan et al. | Jun 2008 | B2 |
7405535 | Frerking et al. | Jul 2008 | B2 |
7462951 | Baarman | Dec 2008 | B1 |
D586809 | Jones et al. | Feb 2009 | S |
7518267 | Baarman | Apr 2009 | B2 |
7522878 | Baarman | Apr 2009 | B2 |
7554316 | Stevens | Jun 2009 | B2 |
7576514 | Hui | Aug 2009 | B2 |
D599735 | Amidei et al. | Sep 2009 | S |
D599736 | Ferber et al. | Sep 2009 | S |
D599737 | Amidei et al. | Sep 2009 | S |
D599738 | Amidei et al. | Sep 2009 | S |
7605496 | Stevens | Oct 2009 | B2 |
D603603 | Laine et al. | Nov 2009 | S |
7612528 | Baarman et al. | Nov 2009 | B2 |
D607879 | Ferber et al. | Jan 2010 | S |
D611407 | Webb | Mar 2010 | S |
D611408 | Ferber et al. | Mar 2010 | S |
7781312 | Matocha | Aug 2010 | B2 |
7781916 | Boys | Aug 2010 | B2 |
7791312 | Kook | Sep 2010 | B2 |
7952322 | Partovi | May 2011 | B2 |
8093758 | Hussmann | Jan 2012 | B2 |
20020057584 | Brockmann | May 2002 | A1 |
20020158512 | Mizutani et al. | Oct 2002 | A1 |
20030210106 | Cheng et al. | Nov 2003 | A1 |
20040023633 | Gordon | Feb 2004 | A1 |
20040195767 | Randall | Oct 2004 | A1 |
20040203537 | Yoshida et al. | Oct 2004 | A1 |
20040242264 | Cho | Dec 2004 | A1 |
20040261802 | Griffin et al. | Dec 2004 | A1 |
20050007067 | Baarman et al. | Jan 2005 | A1 |
20050083020 | Baarman | Apr 2005 | A1 |
20050130593 | Michalak | Jun 2005 | A1 |
20050169506 | Fenrich et al. | Aug 2005 | A1 |
20050189910 | Hui | Sep 2005 | A1 |
20050192062 | Mickle et al. | Sep 2005 | A1 |
20050233768 | Guo et al. | Oct 2005 | A1 |
20060028176 | Tang et al. | Feb 2006 | A1 |
20060043927 | Beart et al. | Mar 2006 | A1 |
20060052144 | Seil et al. | Mar 2006 | A1 |
20060061325 | Tang et al. | Mar 2006 | A1 |
20060071632 | Ghabra et al. | Apr 2006 | A1 |
20060091222 | Leung et al. | May 2006 | A1 |
20060093132 | Desormiere et al. | May 2006 | A1 |
20060202665 | Hsu | Sep 2006 | A1 |
20070023559 | Scapillato et al. | Feb 2007 | A1 |
20070057763 | Blattner et al. | Mar 2007 | A1 |
20070076459 | Limpkin | Apr 2007 | A1 |
20070103110 | Sagoo | May 2007 | A1 |
20070136593 | Plavcan et al. | Jun 2007 | A1 |
20070165371 | Brandenburg | Jul 2007 | A1 |
20070182367 | Partovi | Aug 2007 | A1 |
20070216487 | Yang | Sep 2007 | A1 |
20070228833 | Stevens | Oct 2007 | A1 |
20070279002 | Partovi | Dec 2007 | A1 |
20080001922 | Johnson et al. | Jan 2008 | A1 |
20080030985 | Jeon et al. | Feb 2008 | A1 |
20080049988 | Basile et al. | Feb 2008 | A1 |
20080079388 | Sarnowski et al. | Apr 2008 | A1 |
20080132293 | Gundlach et al. | Jun 2008 | A1 |
20080157715 | Rosenboom et al. | Jul 2008 | A1 |
20080197802 | Onishi et al. | Aug 2008 | A1 |
20080223926 | Miller et al. | Sep 2008 | A1 |
20080258680 | Frerking et al. | Oct 2008 | A1 |
20080265835 | Reed et al. | Oct 2008 | A1 |
20090026959 | Lin et al. | Jan 2009 | A1 |
20090039828 | Jakubowski | Feb 2009 | A1 |
20090040807 | Doumae et al. | Feb 2009 | A1 |
20090047768 | Jain | Feb 2009 | A1 |
20090047769 | Bhat et al. | Feb 2009 | A1 |
20090075704 | Wang | Mar 2009 | A1 |
20090079387 | Jin et al. | Mar 2009 | A1 |
20090084705 | Justiss | Apr 2009 | A1 |
20090096413 | Partovi | Apr 2009 | A1 |
20090097221 | Sayed et al. | Apr 2009 | A1 |
20090102416 | Burley | Apr 2009 | A1 |
20090134972 | Wu, Jr. et al. | May 2009 | A1 |
20090146608 | Lee | Jun 2009 | A1 |
20090153098 | Toya et al. | Jun 2009 | A1 |
20090153297 | Gardner | Jun 2009 | A1 |
20090174263 | Baarman et al. | Jul 2009 | A1 |
20090203355 | Clark | Aug 2009 | A1 |
20090212639 | Johnson | Aug 2009 | A1 |
20090226050 | Hughes | Sep 2009 | A1 |
20090243791 | Partin et al. | Oct 2009 | A1 |
20090251102 | Hui | Oct 2009 | A1 |
20090261778 | Kook | Oct 2009 | A1 |
20090273891 | Peiker | Nov 2009 | A1 |
20090278494 | Randall | Nov 2009 | A1 |
20090322158 | Stevens | Dec 2009 | A1 |
20100039066 | Yuan et al. | Feb 2010 | A1 |
20140001877 | Stevens | Jan 2014 | A1 |
Number | Date | Country |
---|---|---|
0160990 | Nov 1985 | EP |
0160990 | Jan 1991 | EP |
0558316 | Jan 1993 | EP |
1990734 | Nov 2008 | EP |
2399466 | Sep 2004 | GB |
2399466 | Nov 2005 | GB |
04-156242 | May 1992 | JP |
07-039078 | Feb 1995 | JP |
H09103037 | Apr 1997 | JP |
2001-309579 | Nov 2001 | JP |
2005-006440 | Jan 2005 | JP |
2005-110412 | Apr 2005 | JP |
2006-102055 | Apr 2006 | JP |
07-036556 | Feb 2007 | JP |
2007-529110 | Oct 2007 | JP |
9602879 | Feb 1996 | WO |
0215320 | Feb 2002 | WO |
0201557 | Mar 2002 | WO |
2008030985 | Mar 2003 | WO |
2005041281 | May 2005 | WO |
2006015143 | Feb 2006 | WO |
2008030985 | Mar 2008 | WO |
2008086080 | Jul 2008 | WO |
2008093334 | Jul 2008 | WO |
2008114268 | Sep 2008 | WO |
2009040807 | Apr 2009 | WO |
2009047768 | Apr 2009 | WO |
2009047769 | Apr 2009 | WO |
2009049657 | Apr 2009 | WO |
2009108958 | Sep 2009 | WO |
2010025156 | Mar 2010 | WO |
2010025157 | Mar 2010 | WO |
Entry |
---|
S. Y R. Hui, et al., A New Generation of Universal Contactless Battery Charging Platform for Portable Consumer Electronic Equipment, IEEE Transactions on Power Electronics, vol. 20, No. 3, May 2005. |
X. Liu, et al., An Analysis of a Double-layer Electromagnetic Shield for a Universal Contactless Battery Charging Platform, IEEE 2006. |
X Liu, Equivalent Circuit Modeling of a Multilayer Planar Winding Array Structure for Use in a Universal Contactless Battery Charging Platform, 2006 IEEE. |
S.C. Tang, et al., Evaluation of the Shielding Effects on Printed-Circuit-Board Transformers Using Femite Plates and Copper Sheets, 2002 IEEE. |
Y.P. Xu, et al., Extended Theory on the Inductance Calculation of Planar Spiral Windings Including the Effect of Double-layer Electromagnetic Shield, 2007 IEEE. |
Xun Liu, et al., Optimal Design of a Hybrid Winding Structure for Planar Contactless Battery Charging Platform, 2007 IEEE. |
Xun Liu, et al., Simulation Study and Experimental Verification of a Universal Contactless Battery Charging Platform With Localized Charging Features, 2007 IEEE. |
International Search Report and Written Opinion as filed in PCT/IL2008/001282, dated Mar. 3, 2009. |
International Search Report and Written Opinion as filed in PCT/IL2008001347, dated Feb. 17, 2009. |
International Search Report and Written Opinion as filed in PCT/IL2008/001348, dated Oct. 12, 2008. |
Office Action dated Mar. 22, 2013, for Mexican Application MX/a/2011/003088. |
Office Action dated Feb. 5, 2013, for Chinese Application 201110068458.7. |
Office Action dated May 28, 2013, for Japanese Application 2010-526422. |
Office Action dated May 28, 2013, for Japanese Application 2010-528526. |
Office Action dated May 21, 2013, for Japanese Application 2011-500345. |
Number | Date | Country | |
---|---|---|---|
20160276878 A1 | Sep 2016 | US |
Number | Date | Country | |
---|---|---|---|
61006721 | Jan 2008 | US | |
61006488 | Jan 2008 | US | |
61006106 | Dec 2007 | US | |
61006076 | Dec 2007 | US | |
60935847 | Sep 2007 | US | |
60907132 | Mar 2007 | US |
Number | Date | Country | |
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Parent | 14323124 | Jul 2014 | US |
Child | 15167313 | US | |
Parent | 14098880 | Dec 2013 | US |
Child | 14323124 | US | |
Parent | 13306379 | Nov 2011 | US |
Child | 14098880 | US | |
Parent | 12563558 | Sep 2009 | US |
Child | 13306379 | US | |
Parent | PCT/IL2008/000401 | Mar 2008 | US |
Child | 12563558 | US |