DC link charging of capacitor in a wireless power transfer pad

Information

  • Patent Grant
  • 11462943
  • Patent Number
    11,462,943
  • Date Filed
    Wednesday, January 30, 2019
    5 years ago
  • Date Issued
    Tuesday, October 4, 2022
    a year ago
Abstract
An apparatus for wireless power transfer is disclosed. An alternate apparatus and a system perform the functions of the apparatus. The apparatus includes a wireless power transfer (“WPT”) pad, a secondary circuit with a rectification section that receives power from the WPT pad, a capacitor, and a first rectification device connected to the capacitor. The capacitor and first rectification device are connected in parallel with the rectification section and in parallel with a load. The apparatus includes a second rectification device connected to the rectification section and an intermediate node between the capacitor and first rectification device.
Description
FIELD

This invention relates to wireless power transfer and more particularly relates to DC link charging of a capacitor in a wireless power transfer pad.


BACKGROUND

Wireless power transfer is an emerging field and power levels have increased to the point that wireless power transfer is now used for wireless charging of vehicles. As power levels increase, component sizes increase, including capacitors used for filtering and other purposes.


SUMMARY

An apparatus for wireless power transfer is disclosed. An alternate apparatus and a system perform the functions of the apparatus. The apparatus includes a wireless power transfer (“WPT”) pad, a secondary circuit with a rectification section that receives power from the WPT pad, a capacitor, and a first rectification device connected to the capacitor. The capacitor and first rectification device are connected in parallel with the rectification section and in parallel with a load. The apparatus includes a second rectification device connected to the rectification section and an intermediate node between the capacitor and first rectification device.


Another apparatus for wireless power transfer includes a wireless power transfer (“WPT”) pad, a secondary circuit with a rectification section that receives power from the WPT pad, a capacitor, and a first rectification device connected to the capacitor. The capacitor and first rectification device are connected in parallel with the rectification section and in parallel with a load. The first rectification device includes a blocking diode and the load includes a battery. The apparatus includes a second rectification device connected to the rectification section and an intermediate node between the capacitor and first rectification device, where the second rectification device includes a charging diode. The rectification section includes a full-bridge rectifier with two series-connected diodes in a first leg connected between a positive bus that connects the rectification section to the load and a return and a second leg with two series-connected diodes where an anode of a first charging diode of the second rectification device is connected between the diodes of the first leg and an anode of a second charging diode of the second rectification device is connected between the diodes of the second leg.


A system for wireless power transfer includes a power converter apparatus connected to a power source and a secondary receiver apparatus mounted to a vehicle. The secondary receiver apparatus is configured to receive power wirelessly from the power converter apparatus with a primary WPT pad. The secondary receiver apparatus includes a secondary WPT pad, a secondary circuit with a rectification section that receives power from the secondary WPT pad, a capacitor, and a first rectification device connected to the capacitor. The capacitor and first rectification device are connected in parallel with the rectification section and in parallel with a load of the vehicle. The secondary receiver apparatus includes a second rectification device connected to the rectification section and an intermediate node between the capacitor and first rectification device.





BRIEF DESCRIPTION OF THE DRAWINGS

In order that the advantages of the invention will be readily understood, a more particular description of the invention briefly described above will be rendered by reference to specific embodiments that are illustrated in the appended drawings. Understanding that these drawings depict only typical embodiments of the invention and are not therefore to be considered to be limiting of its scope, the invention will be described and explained with additional specificity and detail through the use of the accompanying drawings, in which:



FIG. 1 is a schematic block diagram illustrating one embodiment of a system with a low voltage wireless power transfer (“WPT”) pad;



FIG. 2 is a schematic block diagram illustrating one embodiment of a power converter apparatus;



FIG. 3A is a schematic block diagram illustrating one embodiment of a secondary circuit with a rectification circuit, the secondary circuit feeding a load;



FIG. 3B is a schematic block diagram illustrating one embodiment of a secondary circuit with a rectification section and a tuning section where the secondary is circuit feeding a load;



FIG. 4A is a schematic block diagram illustrating one embodiment of a rectification section feeding a load and a coil charged direct current (“DC”) link capacitor;



FIG. 4B is a schematic block diagram illustrating another embodiment of a rectification section feeding a load and a coil charged DC link capacitor; and



FIG. 5 is a graphical illustration of a rectification section current and a load current.





DETAILED DESCRIPTION

Reference throughout this specification to “one embodiment,” “an embodiment,” or similar language means that a particular feature, structure, or characteristic described in connection with the embodiment is included in at least one embodiment. Thus, appearances of the phrases “in one embodiment,” “in an embodiment,” and similar language throughout this specification may, but do not necessarily, all refer to the same embodiment, but mean “one or more but not all embodiments” unless expressly specified otherwise. The terms “including,” “comprising,” “having,” and variations thereof mean “including but not limited to” unless expressly specified otherwise. An enumerated listing of items does not imply that any or all of the items are mutually exclusive and/or mutually inclusive, unless expressly specified otherwise. The terms “a,” “an,” and “the” also refer to “one or more” unless expressly specified otherwise.


Furthermore, the described features, structures, or characteristics of the invention may be combined in any suitable manner in one or more embodiments. In the following description, numerous specific details are provided, such as examples of programming, software modules, user selections, network transactions, database queries, database structures, hardware modules, hardware circuits, hardware chips, etc., to provide a thorough understanding of embodiments of the invention. One skilled in the relevant art will recognize, however, that the invention may be practiced without one or more of the specific details, or with other methods, components, materials, and so forth. In other instances, well-known structures, materials, or operations are not shown or described in detail to avoid obscuring aspects of the invention.


The schematic flow chart diagrams included herein are generally set forth as logical flow chart diagrams. As such, the depicted order and labeled steps are indicative of one embodiment of the presented method. Other steps and methods may be conceived that are equivalent in function, logic, or effect to one or more steps, or portions thereof, of the illustrated method. Additionally, the format and symbols employed are provided to explain the logical steps of the method and are understood not to limit the scope of the method. Although various arrow types and line types may be employed in the flow chart diagrams, they are understood not to limit the scope of the corresponding method. Indeed, some arrows or other connectors may be used to indicate only the logical flow of the method. For instance, an arrow may indicate a waiting or monitoring period of unspecified duration between enumerated steps of the depicted method. Additionally, the order in which a particular method occurs may or may not strictly adhere to the order of the corresponding steps shown.


An apparatus for wireless power transfer is disclosed. An alternate apparatus and a system perform the functions of the apparatus. The apparatus includes a wireless power transfer (“WPT”) pad, a secondary circuit with a rectification section that receives power from the WPT pad, a capacitor, and a first rectification device connected to the capacitor. The capacitor and first rectification device are connected in parallel with the rectification section and in parallel with a load. The apparatus includes a second rectification device connected to the rectification section and an intermediate node between the capacitor and first rectification device.


In some embodiments, the first rectification device is a low impedance for current from the capacitor to the load and a high impedance for current from the load to the capacitor. In other embodiments, the first rectification device includes a blocking diode and an anode of the blocking diode is connected to the capacitor and a cathode of the blocking diode is connected to a positive bus that connects the rectification section to the load. In other embodiments, the load includes a battery. In other embodiments, the second rectification device is a low impedance for current from the capacitor to the rectification section and a high impedance for current from the rectification section to the capacitor.


In some embodiments, the second rectification device includes a charging diode. The charging diode has a cathode connected to the intermediate node. In other embodiments, the rectification section includes a full-bridge rectifier with two series-connected diodes in a first leg connected between a positive bus that connects the rectification section to the load and a return and a second leg includes two series-connected diodes. An anode of a first charging diode of the second rectification device is connected between the diodes of the first leg and an anode of a second charging diode of the second rectification device is connected between the diodes of the second leg. In further embodiments, the diodes of the first leg and the diodes of the second leg are connected in series with the cathode of each diode oriented toward the positive bus and the WPT pad provides power to a point between each pair of diodes in the first leg and in the second leg.


In some embodiments, the secondary circuit further includes a tuning section with an inductor and/or a capacitor, where the tuning section is connected between the WPT pad and the rectification section. In other embodiments, the WPT pad includes a ferrite structure with a planar surface and a winding wound adjacent to the planar surface where the winding is in a spiral-type configuration. In other embodiments, the WPT pad includes one or more capacitors in series with one or more windings of the WPT pad. In further embodiments, the WPT pad is a secondary WPT pad that receives power from a primary WPT pad positioned with a gap between the primary and secondary WPT pads and power is transferred wirelessly across the gap. In other embodiments, the primary and secondary WPT pads transfer power with an alternating current (“AC”) waveform that is rectified by the rectification section.


Another apparatus for wireless power transfer includes a wireless power transfer (“WPT”) pad, a secondary circuit with a rectification section that receives power from the WPT pad, a capacitor, and a first rectification device connected to the capacitor. The capacitor and first rectification device are connected in parallel with the rectification section and in parallel with a load. The first rectification device includes a blocking diode and the load includes a battery. The apparatus includes a second rectification device connected to the rectification section and an intermediate node between the capacitor and first rectification device, where the second rectification device includes a charging diode. The rectification section includes a full-bridge rectifier with two series-connected diodes in a first leg connected between a positive bus that connects the rectification section to the load and a return and a second leg with two series-connected diodes where an anode of a first charging diode of the second rectification device is connected between the diodes of the first leg and an anode of a second charging diode of the second rectification device is connected between the diodes of the second leg.


In some embodiments, an anode of the blocking diode is connected to the capacitor and a cathode of the blocking diode is connected to a positive bus that connects the rectification section to the load and the charging diode has a cathode connected to the intermediate node. In other embodiments, the diodes of the first leg and the diodes of the second leg are connected in series with the cathode of each diode oriented toward the positive bus and the WPT pad provides power to a point between each pair of diodes in the first leg and in the second leg. In other embodiments, the secondary circuit includes a tuning section with an inductor and/or a capacitor. The tuning section is connected between the WPT pad and the rectification section.


In some embodiments, the WPT pad includes a ferrite structure with a planar surface and a winding wound adjacent to the planar surface where the winding is in a spiral-type configuration. In other embodiments, the WPT pad includes one or more capacitors in series with one or more windings of the WPT pad and the WPT pad is a secondary WPT pad that receives power from a primary WPT pad positioned with a gap between the primary and secondary WPT pads and power is transferred wirelessly across the gap.


A system for wireless power transfer includes a power converter apparatus connected to a power source and a secondary receiver apparatus mounted to a vehicle. The secondary receiver apparatus is configured to receive power wirelessly from the power converter apparatus with a primary WPT pad. The secondary receiver apparatus includes a secondary WPT pad, a secondary circuit with a rectification section that receives power from the secondary WPT pad, a capacitor, and a first rectification device connected to the capacitor. The capacitor and first rectification device are connected in parallel with the rectification section and in parallel with a load of the vehicle. The secondary receiver apparatus includes a second rectification device connected to the rectification section and an intermediate node between the capacitor and first rectification device.



FIG. 1 is a schematic block diagram illustrating one embodiment of a wireless power transfer (“WPT”) system 100 with a low voltage WPT pad. The WPT system 100 includes a power converter apparatus 104 and a secondary receiver apparatus 106 separated by a gap 108, and a load 110, which are described below.


The WPT system 100 includes a power converter apparatus 104 that receives power from a power source 112 and transmits power over a gap 108 to a secondary receiver apparatus 106, which transfers power to a load 110. The power converter apparatus 104, in one embodiment, may be called a switching power converter and includes a resonant converter 118 that receives a direct current (“DC”) voltage from a DC bus 116.


In one embodiment, the power source 112 provides DC power to the DC bus 116. In another embodiment, the power source 112 is an alternating current (“AC”) power source, for example from a building power system, from a utility, from a generator, etc. and the power converter apparatus 104 includes a form of rectification to provide DC power to the DC bus 116. For example, the rectification may be in the form of a power factor correction and rectification circuit 114. In the embodiment, the power factor correction and rectification circuit 114 may include an active power factor correction circuit, such as a switching power converter. The power factor correction and rectification circuit 114 may also include a full-bridge rectifier, a half-bridge rectifier, or other rectification circuit that may include diodes, capacitors, surge suppression, etc.


The resonant converter 118 may be controlled by a primary controller 120, which may vary parameters within the resonant converter 118, such as conduction time, conduction angle, duty cycle, switching, etc. The primary controller 120 may receive information from sensors and position detection 122 within or associated with the power converter apparatus 104. The primary controller 120 may also receive information wirelessly from the secondary receiver apparatus 106.


The power converter apparatus 104 includes a primary pad 126 (i.e. a primary WPT pad) that receives power from the resonant converter 118. In one embodiment, portions of the resonant converter 118 and primary pad 126 form a resonant circuit that enables efficient wireless power transfer across the gap 108. In another embodiment, the power converter apparatus 104 includes a switching power converter that is not a resonant converter. The gap 108, in some embodiments includes an air gap, but may also may partially or totally include other substances. For example, where the primary pad 126 is in a roadway, the gap 108 may include a resin, asphalt, concrete or other material just over the windings of the primary pad 126 in addition to air, snow, water, etc. between the primary pad 126 and a secondary pad 128 located in the secondary receiver apparatus 106.


The secondary receiver apparatus 106 includes a secondary pad 128 (i.e. a secondary WPT pad) connected to a secondary circuit 130 that delivers power to the load 110. The secondary receiver apparatus 106 may also include a secondary decoupling controller 132 that controls the secondary circuit 130 and may also be in communication with sensors and/or position detection 136 and wireless communications 134 coupled to the power converter apparatus 104.


In one embodiment, the secondary receiver apparatus 106 and load 110 are part of a vehicle 140 that receives power from the power converter apparatus 104. The load 110 may include a battery 138, a motor, a resistive load, a circuit or other electrical load. For example, the WPT system 100 may transfer power to a portable computer, a consumer electronic device, to an industrial load, or other portable load that would benefit from receiving power wirelessly.


In one embodiment, the secondary circuit 130 includes a portion of resonant circuit that interacts with the secondary pad 128 and that is designed to receive power at a resonant frequency. In another embodiment, the secondary circuit 130 includes a power conditioning circuit that is not a resonant circuit. The secondary circuit 130 may also include a rectification circuit, such as a full-bridge rectifier, a half-bridge rectifier, and the like. In another embodiment, the secondary circuit 130 includes a power converter of some type that receives power from the resonant circuit/rectifier and actively controls power to the load 110. For example, the secondary circuit 130 may include a switching power converter. In another embodiment, the secondary circuit 130 includes passive components and power to the load 110 is controlled by adjusting power in the power converter apparatus 104. In another embodiment, the secondary circuit 130 includes an active rectifier circuit that may receive and transmit power. One of skill in the art will recognize other forms of a secondary circuit 130 appropriate for receiving power from the secondary pad 128 and delivering power to the load 110.


The resonant converter 118, in one embodiment, includes an active switching section coupled to a resonant circuit formed with components of the resonant converter 118 and the primary pad 126. The resonant converter 118 is described in more detail with regard to FIG. 2.



FIG. 2 is a schematic block diagram illustrating one embodiment of a power converter apparatus 104. The power converter apparatus 104 is connected to a power source 112 and includes a power factor correction and rectification circuit 114 connected to a DC bus 116 feeding a resonant converter 118 connected to a primary pad 126 as described with regard to the WPT system 100 of FIG. 1.


The resonant converter 118 includes a switching module 202 and a tuning section 204. In one embodiment, the switching module 202 includes four switches configured to connect the DC bus 116 and to ground. Typically, switches S1 and S3 close while switches S2 and S4 are open and vice-versa. When switches S1 and S3 are closed, the DC bus 116 is connected to a positive connection of the tuning section 204 through inductor L1a and the ground is connected to the negative connection of the tuning section 204 through inductor L1b while switches S2 and S4 are open. When switches S2 and S4 are closed and switches S1 and S3 opened, the ground is connected to the positive terminal of the tuning section 204 and the DC bus 116 is connected to the positive connection of the tuning section 204. Thus, the switching module 202 alternates connection of the DC bus 116 and ground to the tuning section 204 simulating an AC waveform. The AC waveform is typically imperfect due to harmonics.


Typically, switches S1-S4 are semiconductor switches, such as a metal-oxide-semiconductor field-effect transistor (“MOSFET”), a junction gate field-effect transistor (“JFET”), a bipolar junction transistor (“BJT”), an insulated-gate bipolar transistor (“IGBT”) or the like. Often the switches S1-S4 include a body diode that conducts when a negative voltage is applied. In some embodiments, the timing of opening and closing switches S1-S4 are varied to achieve various modes of operations, such as zero-voltage switching.


The tuning section 204 of the resonant converter 118 and the primary pad 126 are designed based on a chosen topology. For example, the resonant converter 118 and primary pad 126 may form an inductor-capacitor-inductor (“LCL”) load resonant converter, a series resonant converter, a parallel resonant converter, and the like. The embodiment depicted in FIG. 2 includes an LCL load resonant converter.


Resonant converters include an inductance and capacitance that form a resonant frequency. When a switching frequency of the tuning section 204 is at or close to the resonant frequency, voltage with the tuning section 204 and primary pad 126 often increases to voltages levels higher than the voltage of the DC bus 116. For example, if the voltage of the DC bus 116 is 1 kilovolt (“kV”), voltage in the tuning section 204 and resonant converter 118 may be 3 kV or higher. The high voltages require component ratings, insulation ratings, etc. to be high enough for expected voltages.


The primary pad 126 includes capacitor C3 and inductor Lp while the tuning section 204 includes series capacitor C2. Capacitors C2 and C3 add to provide a particular capacitance that forms a resonant frequency with inductor Lp. While FIG. 2 includes a series capacitor C2 in the tuning section 204 and a series capacitor C3 in the primary pad 126, other embodiments may include a single series capacitor in either the tuning section 204 or in the primary pad 126. Other embodiments may include additional series capacitors, for example in the positive and return lines.


While FIG. 2 is focused on the resonant converter 118 and primary pad 126 of the power converter apparatus 104, the secondary receiver apparatus 106 may include a secondary pad 128 and a secondary circuit 130 that may also include a tuning section 204, where the inductance of the secondary pad 128 and capacitance of the tuning section 204 of the secondary circuit 130 form a resonant frequency, as explained with regard to FIG. 3. The secondary pad 128 and secondary circuit 130 have voltage rating issues similar to the primary pad 126 and resonant converter 118. In other embodiments, the tuning section 204 and primary pad 126 are not designed to produce a resonance, but instead condition voltage from the switching module 202. For example, the tuning section 204 may filter out harmonic content without filtering a switching frequency.



FIG. 3A is a schematic block diagram illustrating one embodiment 300 of a secondary circuit 130 with a rectification section 304, where the secondary circuit 130 feeds a load 110. A secondary pad 128 feeds a rectification section 304 in the secondary circuit 130, which feeds a load 110. In some embodiments described herein, the secondary pad 128 is referred to as a WPT pad 128. The secondary pad 128 includes one or more windings arranged to receive power from a primary pad 126. The secondary pad 128 may include a ferrite structure with a planar surface and windings adjacent to the planar surface of the ferrite structure arranged in a pattern that efficiently receives power from the primary pad 126. For example, the windings may be arranged in a spiral-type configuration. In one embodiment, the secondary pad 128 mirrors the primary pad 126 that transmits power. In another embodiment, the secondary pad 128 differs from the primary pad 126. Typically, the secondary pad 128 includes an inductance Ls formed as a result of the windings and the ferrite structure of the secondary pad 128. In one embodiment, the secondary pad 128 includes two capacitors C4a and C4b as depicted, but the capacitors C4a, C4b may be combined into a single capacitor C4.


A rectification section 304 of the secondary circuit 130 includes diodes, switches, or other rectification elements to convert alternating current (“AC”) power to direct current (“DC”) power. The rectification section 304 depicted in FIG. 3A includes a full bridge rectifier with four diodes D1-D4. In some embodiments, the diodes D1-D4 are replaced with active elements, such as switches, which may be used to reduce harmonics, reduce power consumption, and the like. For example, the rectification section 304 may include a switching power converter that controls an output voltage to the load 110. In another embodiment, the diodes are replaced with solid state devices that include a rectification section. For example, the switches may be semiconductor switches, such as a metal-oxide-semiconductor field-effect transistor (“MOSFET”), a junction gate field-effect transistor (“JFET”), a bipolar junction transistor (“BJT”), silicon-controlled rectifiers (“SCR”), an insulated-gate bipolar transistor (“IGBT”) or the like. The switches may have a lower power consumption than diodes while performing a same function as a diode. For example, the switches may be controlled to turn on when a diode would be forward biased and turn off when a diode is reverse biased. In addition, the switches may include a body diode.


In one embodiment, the rectification section 304 includes a full-bridge rectifier with two series-connected diodes D1, D2 in a first leg connected between a positive bus that connects the rectification section 304 to the load 110 and to a return. In the embodiment, the rectification section 304 includes a second leg with two series-connected diodes D3, D4 also connected between the positive bus and the return. In another embodiment, the diodes D1, D2 of the first leg and the diodes D3, D4 of the second leg are connected in series with the cathode of each diode D1-D4 oriented toward the positive bus. The secondary pad 128 provides power to the point between each pair of diodes D1 and D2, D3 and D4 in the first let and in the second leg.


The load 110, in one embodiment is a battery 138. In other embodiments, the load 110 may include other components, such as a motor, a resistive load, electronics, and the like. In one embodiment, the secondary pad 128, secondary circuit 130 and load 110 are part of a vehicle 140. In other embodiments, the secondary pad 128, secondary circuit 130 and load 110 are part of a computing device, a smartphone, and the like.



FIG. 3B is a schematic block diagram illustrating one embodiment 301 of a secondary circuit 130 with a rectification section 304 and a tuning section 302 where the secondary circuit 130 is feeding a load 110. A secondary pad 128 feeds a tuning section 302 within the secondary circuit 130 and the tuning section 302 feeds a rectification section 304 in the secondary circuit 130, which feeds a load 110. For the embodiments 300, 301 of FIGS. 3A and 3B, the rectification section 304 receives power from the secondary pad 128, directly or the tuning section 302. The secondary pad 128 of the embodiment 300 of FIG. 3A or the tuning section 302 of the embodiment 301 of FIG. 3B is connected to the same location in the rectification section 304. In one embodiment, the secondary pad 128 includes a single capacitor C4.


The tuning section 302 includes one or more capacitors C5, C6 and inductors L2a, L2b that are arranged to form a resonant circuit with the secondary pad 128 with a resonant frequency. In some embodiments, capacitor C6 is not present. In one embodiment, the resonant frequency matches a resonant frequency of the primary pad 126 transmitting power. Typically, a resonant frequency is formed between the inductor Ls of the secondary pad 128 and series capacitors C4 and C5 of the secondary pad 128 and/or tuning section 302. In some embodiments, the secondary pad 128 or the tuning section 302 include a single series capacitor C4 or C5. Other capacitors (e.g. C6) and inductors (e.g. L2a, L2b) may form a low pass filter to reduce voltage ripple at the resonant frequency. In other embodiments, a low-pass filter is included after rectification elements in the rectification section 304. A capacitor C7 is included in the embodiments described herein. One of skill in the art will recognize other configurations of the tuning section 302 that form a resonant tank with the secondary pad 128 and pass energy to the rectification section 304 or another suitable circuit.



FIG. 4A is a schematic block diagram illustrating one embodiment 400 of a rectification section 304 feeding a load 110 and a coil charged direct current (“DC”) link capacitor C7. For convenience, the capacitor C7 is depicted outside the rectification section 304. The secondary circuit 130 includes a first rectification device 402 is connected to the capacitor C7. The capacitor C7 and the first rectification device 402 are connected in parallel with the rectification section 304 and in parallel with the load 110. In addition, the secondary circuit 130 includes a second rectification device 404 connected to the rectification section 304 and an intermediate node 406 between the capacitor C7 and first rectification device 402.


The first rectification device 402, in one embodiment, is a low impedance for current from the capacitor C7 to the load 110 and a high impedance for current from the load 110 to the capacitor C7. For example, the first rectification device 402 may have a diode-type function where when the first rectification device 402 is reverse biased, impedance of first rectification device 402 increases to minimize current from the load 110 to the capacitor C7. This provides a convenient way to block inrush current to the capacitor C7 when the load 110 is connected. For example, when the load is a battery 138, a switch 408 may be included and when closed may provide a high inrush current to the capacitor C7 without the first rectification device 402. Where the first rectification device 402 is included, the first rectification device 402 essentially blocks inrush current.


In other systems, a diode may be placed in series with the load 110. However, the entire current to the load 110 passes through the diode, which causes a tremendous power loss. In a functioning 50 kilowatt (“kW”) system, the diode loss was around 1 kW. Another approach is to put a switch and resistor in parallel with the switch 408 to the load 110. However, this method introduces another mechanical part that introduces another failure mode and the mechanical switch may fail more often than other solid-state parts. While a solid-state switch may be used, in larger systems and for safety reasons, a mechanical switch may be required.


The first rectification device 402 provides a blocking function at a lower power loss. Current through the first rectification device 403 is typically limited to some ripple current from the capacitor C7 towards the load 110.


The second rectification device 404, provides power from the rectification section 304 to the capacitor C7, which may act to charge the capacitor C7 when voltage on the capacitor C7 is low, for example at startup. In one embodiment, the second rectification device 404 is a low impedance for current from the capacitor C7 to the rectification section 304 and a high impedance for current from the rectification section 304 to the capacitor C7. For example, the second rectification device 404 may include a diode-type function for each leg of the rectification section 304. In one embodiment, when voltage on a leg of the rectification section 304 increases, the second rectification device 404 conducts current to the capacitor C7 when the voltage of the leg of the rectification section 304 is above a voltage of the capacitor C7.


In some embodiments, the secondary pad 128 and secondary circuit 130 provide a controllable current source so that current through the second rectification device 404 is controlled to an appropriate level to prevent damage to the capacitor C7. As current in a leg of the rectification section 304 increases, voltage rises to a level to conduct current through the second rectification device 404. Beneficially, pre-charging of the capacitor C7 does not depend on the load 110.



FIG. 4B is a schematic block diagram illustrating another embodiment 401 of a rectification section 304 feeding a load 110 and a coil charged DC link capacitor C7. The embodiment 401 of FIG. 4B includes a blocking diode D5 in the first rectification device 402 where the anode of the blocking diode D5 is connected to the capacitor C7 and a cathode of the blocking diode D5 is connected to a positive bus 410 that connects the rectification section 340 to the load 110.


In other embodiments, the blocking diode D5 is replaced by another device that provides a blocking diode D5 function. For example, the blocking diode D5 may be replaced with a switch with a diode function or a switch that closes when the first rectification device 402 is intended to conduct and is off when the first rectification device 402 is intended to block current from the load 110. The switches may be semiconductor switches, such as a metal-oxide-semiconductor field-effect transistor (“MOSFET”), a junction gate field-effect transistor (“JFET”), a bipolar junction transistor (“BJT”), silicon-controlled rectifiers (“SCR”), an insulated-gate bipolar transistor (“IGBT”) or the like.


In some embodiments, the second rectification device includes a charging diode (e.g. D6 or D7) that has a cathode connected to the intermediate node 406. Where the rectification section 304 is a full-bridge rectifier or has multiple legs with diodes, the second rectification device 404 includes two or more charging diodes D6, D7; one for each leg in the rectification section 304. Where the rectification section 304 is a half-bridge rectifier, the second rectification device 404 may include a single charging diode (e.g. D6). As with the first rectification device 402, the charging diode(s) D6, D7 within the second rectification device 404 may be replaced by a device that includes a diode-type function that conducts when current flows from the rectification section 304 to the capacitor C7 and blocks current from the capacitor C7 to the rectification section 304. The charging diodes D6, D7 may be replaced by a switch, such as the semiconductor switches described above.


Where the rectification section 304 is a full-bridge rectifier, as depicted in FIG. 4B, the full-bridge rectifier includes two series-connected diodes D1, D2 in a first leg connected between the positive bus 410 and a return 412 and a second leg includes two series-connected diodes D3, D4 connected between the positive bus 410 and return 412 as shown. The diodes of the first leg D1, D2 and the diodes D3, D4 of the second leg are connected in series and the cathode of each diode D1-D4 is oriented toward the positive bus 410 and where the secondary pad 128 provides power to a point between each pair of diodes D1, D2 and D3, D4 in the first leg and in the second leg. An anode of a first charging diode D6 of the second rectification device 404 is connected between the diodes D1, D2 of the first leg and an anode of a second charging diode D7 of the rectification device is connected between the diodes D3, D4 of the second leg.



FIG. 5 is a graphical illustration 500 of a rectification section current 502 and a load current 504. The rectification current 502 of the illustration is the rectification section current Irect of FIGS. 3A and 3B and the load current 504 is the load current Iload of FIGS. 3A and 3B. The load current 504 is depicted as a straight line, but one of skill in the art will recognize that the load current 504 typically includes some ripple. Typically, the capacitor C7 provides a low pass filter function to smooth the ripple so that the load current 504 does not have the same profile as the rectification section current 502.


As the rectification section current 502 rises, without the first rectification device 402 and the second rectification device 404 current will flow into the capacitor C7. Voltage of the capacitor C7 changes slowly so that as voltage of the positive bus 410 rises above voltage of the capacitor C7, the capacitor will sink current. Energy stored in the capacitor C7 will support current to the load 110 when voltage of the positive bus 410 is lower than voltage on the capacitor C7.


With the first rectification device 402 and the second rectification device 404 included, as depicted in FIGS. 4A and 4B, the first rectification device 402 will block current from the positive bus 410 from flowing into the capacitor C7, but when voltage at the nodes between the diodes of the rectification section 304 rise above the voltage of the capacitor C7, current will flow through the second rectification device 404 to the capacitor C7, which is represented by the area 508 above the load current 504 and below the rectification section current 502. When the rectification section current 502 is below the load current 504, which corresponds to when voltage at the nodes between the diodes of the rectification section 304 is below the voltage of the capacitor C7, current will not flow through the second rectification device 404, but current will flow from the capacitor C7 through the first rectification device 402 to the load 110. The area 506 below the load current 504 and above the rectification section current 502 represents current flowing through the first rectification device 402.


Power loss in the first rectification device 402 and the second rectification device 404 may be less than power loss through a diode in series with the load 110. In addition, pre-charging of the capacitor C7 may be accomplished through the second rectification device 404 while inrush current from the load 110 is blocked by the first rectification device 402. Energy from the secondary pad 128 and rectification section 304 can be configured as a current source, which limits current to the capacitor C7 to prevent high inrush current.


The present invention may be embodied in other specific forms without departing from its spirit or essential characteristics. The described embodiments are to be considered in all respects only as illustrative and not restrictive. The scope of the invention is, therefore, indicated by the appended claims rather than by the foregoing description. All changes which come within the meaning and range of equivalency of the claims are to be embraced within their scope.

Claims
  • 1. An apparatus comprising: a wireless power receiver (“WPR”) pad configured to receive power wirelessly; anda secondary circuit comprising: a rectification section that receives power from the WPR pad, an output of the rectification section comprising a positive bus and a negative bus;a capacitor;a first rectification device connected between the positive bus and a first connection of the capacitor at an intermediate node, and a second connection of the capacitor connected to the negative bus, wherein a load is connected between the positive bus and the negative bus; anda second rectification device connected to the rectification section and the intermediate node between the capacitor and first rectification device,wherein the rectification section is configured to rectify alternating current received from the WPR pad and configured to provide rectified current to the load.
  • 2. The apparatus of claim 1, wherein the first rectification device is a low impedance for current from the capacitor to the load and a high impedance for current from the load to the capacitor.
  • 3. The apparatus of claim 2, wherein the first rectification device comprises a blocking diode, an anode of the blocking diode is connected to the capacitor, and a cathode of the blocking diode is connected to a positive bus that connects the rectification section to the load.
  • 4. The apparatus of claim 1, wherein the load comprises a battery.
  • 5. The apparatus of claim 1, wherein the second rectification device is a high impedance for current from the capacitor to the rectification section and a low impedance for current from the rectification section to the capacitor.
  • 6. The apparatus of claim 1, wherein the second rectification device comprises a charging diode, the charging diode comprising a cathode connected to the intermediate node.
  • 7. The apparatus of claim 6, wherein the rectification section comprises a full bridge rectifier comprising two series-connected diodes in a first leg connected between the positive bus and the negative bus and a second leg comprising two series-connected diodes connected between the positive bus and the negative bus, wherein an anode of a first charging diode of the second rectification device is connected between the diodes of the first leg and an anode of a second charging diode of the second rectification device is connected between the diodes of the second leg, and wherein a cathode of the first and second charging diodes is connected to the intermediate node.
  • 8. The apparatus of claim 7, wherein the diodes of the first leg and the diodes of the second leg are connected in series with the cathode of each diode oriented toward the positive bus, and wherein the WPR pad provides power to a point between each pair of diodes in the first leg and in the second leg.
  • 9. The apparatus of claim 1, wherein the secondary circuit further comprises a tuning section comprising one or more of an inductor and a capacitor, the tuning section connected between the WPR pad and the rectification section.
  • 10. The apparatus of claim 1, wherein the WPR pad comprises a ferrite structure comprising a planar surface and a winding wound adjacent to the planar surface, wherein the winding is in a spiral-type configuration.
  • 11. The apparatus of claim 10, wherein the WPR pad comprises one or more capacitors in series with one or more windings of the WPR pad.
  • 12. The apparatus of claim 1, wherein the WPR pad is a secondary WPR pad that receives power from a primary wireless power transfer (“WPT”) pad positioned with a gap between the primary WPT pad and the secondary WPR pad, and power is transferred wirelessly across the gap.
  • 13. The apparatus of claim 12, wherein the primary WPT pad and secondary WPR pad transfer power with an alternating current (“AC”) waveform that is rectified by the rectification section.
  • 14. An apparatus comprising: a wireless power receiver (“WPR”) pad configured to receive power wirelessly;a secondary circuit comprising:a rectification section that receives power from the WPR pad, an output of the rectification section comprising a positive bus and a negative bus;a capacitor;a first rectification device connected between the positive bus and a first connection of the capacitor at an intermediate node, and a second connection of the capacitor connected to the negative bus, wherein a load is connected between the positive bus and the negative bus, and wherein the first rectification device comprises a blocking diode and wherein the load comprises a battery; anda second rectification device connected to the rectification section and the intermediate node between the capacitor and first rectification device, wherein the second rectification device comprises a first charging diode and a second charging diode,wherein the rectification section comprises a full-bridge rectifier comprising two series-connected diodes in a first leg connected between the positive bus and the negative bus and a second leg comprising two series-connected diodes connected between the positive bus and the negative bus, wherein an anode of the first charging diode of the second rectification device is connected between the diodes of the first leg and an anode of the second charging diode of the second rectification device is connected between the diodes of the second leg.
  • 15. The apparatus of claim 14, wherein an anode of the blocking diode is connected to the capacitor at the intermediate node and a cathode of the blocking diode is connected to the positive bus, and wherein the first and second charging diodes each comprise a cathode connected to the intermediate node.
  • 16. The apparatus of claim 14, wherein the diodes of the first leg and the diodes of the second leg are connected in series with the cathode of each diode oriented toward the positive bus, and wherein the WPR pad provides power to a point between each pair of diodes in the first leg and in the second leg.
  • 17. The apparatus of claim 14, wherein the secondary circuit further comprises a tuning section comprising one or more of an inductor and a capacitor, the tuning section connected between the WPR pad and the rectification section.
  • 18. The apparatus of claim 14, wherein the WPR pad comprises a ferrite structure comprising a planar surface and a winding wound adjacent to the planar surface, wherein the winding is in a spiral-type configuration.
  • 19. The apparatus of claim 18, wherein the WPR pad comprises one or more capacitors in series with one or more windings of the WPR pad and wherein the WPR pad is a secondary WPR pad that receives power from a primary wireless power transfer (“WPT”) pad positioned with a gap between the primary WPT pad and secondary WPR pad, and power is transferred wirelessly across the gap.
  • 20. A system comprising: a power converter apparatus connected to a power source;a secondary receiver apparatus mounted to a vehicle, the secondary receiver apparatus configured to receive power wirelessly from the power converter apparatus comprising a primary wireless power transfer (“WPT”) pad, the secondary receiver apparatus comprising:a secondary wireless receiver (“WPR”) pad; anda secondary circuit comprising:a rectification section that receives power from the secondary WPR pad, an of output the rectification section comprising a positive bus and a negative bus;a capacitor;a first rectification device connected between the positive bus and a first connection of the capacitor at an intermediate node, and a second connection of the capacitor connected to the negative bus, wherein a load of a vehicle is connected between the positive bus and the negative bus; anda second rectification device connected to the rectification section and the intermediate node between the capacitor and first rectification device,wherein the rectification section is configured to rectify alternating current received from the WPR pad and configured to provide rectified current to the load.
CROSS-REFERENCES TO RELATED APPLICATIONS

This application claims the benefit of U.S. Provisional Patent Application No. 62/623,777 entitled “DC LINK CHARGING OF CAPACITOR IN A WIRELESS POWER TRANSFER PAD” and filed on Jan. 30, 2018 for Patrice Lethellier, which is incorporated herein by reference.

US Referenced Citations (270)
Number Name Date Kind
3938018 Dahl Feb 1976 A
3942535 Schulman Mar 1976 A
4527123 Gilman et al. Jul 1985 A
4647910 Torre Mar 1987 A
4800328 Bolger et al. Jan 1989 A
4836344 Bolger Jun 1989 A
5207304 Lechner et al. May 1993 A
5293308 Boys et al. Mar 1994 A
5469036 Eto Nov 1995 A
5528113 Boys et al. Jun 1996 A
5617003 Odachi et al. Apr 1997 A
5654621 Seelig Aug 1997 A
5669470 Ross Sep 1997 A
5701121 Murdoch Dec 1997 A
5703461 Minoshima et al. Dec 1997 A
5710502 Poumey Jan 1998 A
5734355 Watanabe Mar 1998 A
5808373 Hamanishi et al. Sep 1998 A
5821638 Boys et al. Oct 1998 A
5831841 Nishino Nov 1998 A
5842986 Avrin et al. Dec 1998 A
5850135 Kuki et al. Dec 1998 A
5909100 Watanabe et al. Jun 1999 A
5945888 Weinert et al. Aug 1999 A
5978242 Raad et al. Nov 1999 A
5991170 Nagai et al. Nov 1999 A
6011320 Miyamoto et al. Jan 2000 A
6040986 Sakamoto Mar 2000 A
6075433 Ono et al. Jun 2000 A
6188179 Boys et al. Feb 2001 B1
6305467 Connell et al. Oct 2001 B1
6317338 Boys Nov 2001 B1
6350951 Askew Feb 2002 B1
6421600 Ross Jul 2002 B1
6459218 Boys et al. Oct 2002 B2
6483202 Boys Nov 2002 B1
6501364 Hui et al. Dec 2002 B1
6541966 Keene Apr 2003 B1
6630805 Makaran Oct 2003 B2
6960968 Odendaal et al. Nov 2005 B2
7019620 Bohler et al. Mar 2006 B2
7116540 Green et al. Oct 2006 B2
7157913 Nelson Jan 2007 B2
7164255 Hui Jan 2007 B2
7243752 Green et al. Jul 2007 B2
7375492 Calhoon et al. May 2008 B2
7375493 Calhoon et al. May 2008 B2
7378817 Calhoon et al. May 2008 B2
7451839 Perlman Nov 2008 B2
7521890 Lee et al. Apr 2009 B2
7576514 Hui Aug 2009 B2
7605496 Stevens et al. Oct 2009 B2
7620438 He Nov 2009 B2
7741734 Joannopoulos et al. Jun 2010 B2
7791312 Kook Sep 2010 B2
7804272 Morita et al. Sep 2010 B2
7825537 Freer Nov 2010 B2
7825543 Karalis et al. Nov 2010 B2
7893564 Bennett Feb 2011 B2
7909483 Jacobs et al. Mar 2011 B2
7952322 Partovi et al. May 2011 B2
3008888 Oyobe et al. Aug 2011 A1
3040103 Hui et al. Oct 2011 A1
3050068 Hussmann et al. Nov 2011 A1
3069100 Taylor et al. Nov 2011 A1
8085556 Moussaoui Dec 2011 B2
8093758 Hussmann et al. Jan 2012 B2
8111042 Bennett Feb 2012 B2
8125208 Gyland Feb 2012 B2
8169185 Partovi et al. May 2012 B2
8183938 Boys et al. May 2012 B2
8217621 Tsai et al. Jul 2012 B2
8232764 Inoue et al. Jul 2012 B2
8269595 Okada et al. Sep 2012 B2
8271089 Dinsmoor et al. Sep 2012 B2
8278784 Cook et al. Oct 2012 B2
8290531 Wakamatsu Oct 2012 B2
8304935 Karalis et al. Nov 2012 B2
8332547 Sugaya Dec 2012 B2
8339096 Osada Dec 2012 B2
8362651 Hamam et al. Jan 2013 B2
8378523 Cook et al. Feb 2013 B2
8390249 Walley et al. Mar 2013 B2
8405486 Yamada et al. Mar 2013 B2
8432070 Cook et al. Apr 2013 B2
8446045 Smith et al. May 2013 B2
8446046 Fells et al. May 2013 B2
8466654 Cook et al. Jun 2013 B2
8469122 Perlman et al. Jun 2013 B2
8471410 Karalis et al. Jun 2013 B2
8482157 Cook et al. Jul 2013 B2
8498763 Hafner et al. Jul 2013 B2
8531153 Baarman et al. Sep 2013 B2
8531162 Hafner et al. Sep 2013 B2
8536739 Ichikawa et al. Sep 2013 B2
8547057 Dunworth et al. Oct 2013 B2
8581437 Delforge Nov 2013 B2
8587154 Fells et al. Nov 2013 B2
8639191 Boys Jan 2014 B2
8643219 Yabe et al. Feb 2014 B2
8674551 Low et al. Mar 2014 B2
8710701 Cook et al. Apr 2014 B2
8723366 Fiorello et al. May 2014 B2
8749334 Boys et al. Jun 2014 B2
8766482 Cook et al. Jul 2014 B2
8810071 Sauerlaender et al. Aug 2014 B2
8833533 Suh et al. Sep 2014 B2
8854011 Ichikawa et al. Oct 2014 B2
8855554 Cook et al. Oct 2014 B2
8855786 Derbas et al. Oct 2014 B2
8878393 Kirby et al. Nov 2014 B2
8884468 Lemmens et al. Nov 2014 B2
8884581 Widmer et al. Nov 2014 B2
8901857 Lanchava et al. Dec 2014 B2
8907617 Ichikawa et al. Dec 2014 B2
8912687 Kesler et al. Dec 2014 B2
8914080 Kowalewski Dec 2014 B2
8937409 Ichikawa et al. Jan 2015 B2
9065284 Malpas et al. Jun 2015 B2
9105959 Kesler et al. Aug 2015 B2
9178376 Jung et al. Nov 2015 B2
9184595 Kurs et al. Nov 2015 B2
9190875 Mohammadian Nov 2015 B2
9306635 Kurs et al. Apr 2016 B2
9306636 Kwon et al. Apr 2016 B2
9312924 Ozaki et al. Apr 2016 B2
9442172 Verghese et al. Sep 2016 B2
9444265 Karalis et al. Sep 2016 B2
9450456 Cook et al. Sep 2016 B2
9461505 Teo et al. Oct 2016 B2
9530556 Davila et al. Dec 2016 B2
9561730 Widmer et al. Feb 2017 B2
9634730 Cook et al. Apr 2017 B2
9682632 Brill et al. Jun 2017 B2
9751416 Hafner et al. Sep 2017 B2
9767955 Boys et al. Sep 2017 B2
9774086 Cook et al. Sep 2017 B2
9837204 Widmer et al. Dec 2017 B2
9905351 Tatsuta et al. Feb 2018 B2
9954387 Sultenfuss et al. Apr 2018 B2
9973038 Li et al. May 2018 B2
10205384 Lethellier et al. Feb 2019 B2
10369894 McCool et al. Aug 2019 B2
10493855 Chase et al. Dec 2019 B2
10978245 Lethellier Apr 2021 B2
10988042 Chase Apr 2021 B1
20010012208 Boys Aug 2001 A1
20020093313 Hoffmann Jul 2002 A1
20020177884 Ahn et al. Nov 2002 A1
20030210106 Cheng et al. Nov 2003 A1
20040119576 Nakao et al. Jun 2004 A1
20040203986 Gagnon Oct 2004 A1
20050083019 Green Apr 2005 A1
20050161300 Green Jul 2005 A1
20050189910 Hui Sep 2005 A1
20060006873 Nelson Jan 2006 A1
20070064406 Beart Mar 2007 A1
20070072474 Beasley et al. Mar 2007 A1
20070131505 Kim Jun 2007 A1
20070188284 Dobbs Aug 2007 A1
20080061733 Toya Mar 2008 A1
20080079392 Baarman Apr 2008 A1
20090010028 Baarman et al. Jan 2009 A1
20090058189 Cook et al. Mar 2009 A1
20090067207 Nishino Mar 2009 A1
20090160262 Schmidt et al. Jun 2009 A1
20090313032 Hafner et al. Dec 2009 A1
20090313034 Ferro et al. Dec 2009 A1
20090313174 Hafner et al. Dec 2009 A1
20100017249 Fincham et al. Jan 2010 A1
20100080028 Cheng et al. Apr 2010 A1
20100110741 Lin et al. May 2010 A1
20100225271 Oyobe et al. Sep 2010 A1
20100259109 Sato Oct 2010 A1
20100276995 Marzetta et al. Nov 2010 A1
20100277121 Hall et al. Nov 2010 A1
20100315080 Duncan et al. Dec 2010 A1
20100328044 Wallenschmidt et al. Dec 2010 A1
20110031967 Tanaka et al. Feb 2011 A1
20110074346 Hall et al. Mar 2011 A1
20110127845 Walley et al. Jun 2011 A1
20110127951 Walley Jun 2011 A1
20110184842 Melen Jul 2011 A1
20110254503 Widmer et al. Oct 2011 A1
20110285349 Widmer et al. Nov 2011 A1
20110304217 Yamamoto et al. Dec 2011 A1
20120043172 Ichikawa Feb 2012 A1
20120068655 Inuduka et al. Mar 2012 A1
20120089202 Staller Apr 2012 A1
20120098330 Ichikawa et al. Apr 2012 A1
20120146580 Kitamura et al. Jun 2012 A1
20120161696 Cook et al. Jun 2012 A1
20120181875 Wechlin et al. Jul 2012 A1
20120187757 Wechlin et al. Jul 2012 A1
20120217818 Yerazunis et al. Aug 2012 A1
20120235504 Kesler et al. Sep 2012 A1
20120235566 Karalis et al. Sep 2012 A1
20120235636 Partovi Sep 2012 A1
20120249059 Matsumae Oct 2012 A1
20120306439 Ichikawa et al. Dec 2012 A1
20130002034 Onizuka et al. Jan 2013 A1
20130033351 Kim et al. Feb 2013 A1
20130038272 Sagata Feb 2013 A1
20130039099 Wu et al. Feb 2013 A1
20130062959 Lee et al. Mar 2013 A1
20130088090 Wu et al. Apr 2013 A1
20130119773 Davis May 2013 A1
20130127253 Stark et al. May 2013 A1
20130181667 Takeshita et al. Jul 2013 A1
20130181668 Tabata et al. Jul 2013 A1
20130188397 Wu et al. Jul 2013 A1
20130207468 Wu et al. Aug 2013 A1
20130207601 Wu Aug 2013 A1
20130214735 Kang et al. Aug 2013 A1
20130236337 Gummin et al. Sep 2013 A1
20130249299 Shijo et al. Sep 2013 A1
20130272044 Boys et al. Oct 2013 A1
20130293192 Abe Nov 2013 A1
20130307468 Lee et al. Nov 2013 A1
20140015328 Beaver et al. Jan 2014 A1
20140077614 Park Mar 2014 A1
20140125140 Widmer et al. May 2014 A1
20140153289 Kao et al. Jun 2014 A1
20140183967 Ryu et al. Jul 2014 A1
20140203662 Bae Jul 2014 A1
20140225439 Mao Aug 2014 A1
20140239729 Covic Aug 2014 A1
20140254208 Dai et al. Sep 2014 A1
20150028478 Meyer et al. Jan 2015 A1
20150042168 Widmer Feb 2015 A1
20150077053 Stamenic et al. Mar 2015 A1
20150091517 Blum et al. Apr 2015 A1
20150145634 Kurz et al. May 2015 A1
20150155095 Wu et al. Jun 2015 A1
20150170833 Widmer et al. Jun 2015 A1
20150236546 Kesler et al. Aug 2015 A1
20150246614 Dames et al. Sep 2015 A1
20150263532 Van Wageningen Sep 2015 A1
20150263640 Russell et al. Sep 2015 A1
20150302985 Kurs Oct 2015 A1
20150310722 Sousa et al. Oct 2015 A1
20150364929 Davis Dec 2015 A1
20160141097 Oo et al. May 2016 A1
20160233728 Park et al. Aug 2016 A1
20160241086 Jung et al. Aug 2016 A1
20160285317 Maniktala Sep 2016 A1
20160294189 Uno et al. Oct 2016 A1
20160336816 Mach et al. Nov 2016 A1
20160380469 Lethellier et al. Dec 2016 A1
20170018970 Zhang et al. Jan 2017 A1
20170040845 Yuasa et al. Feb 2017 A1
20170057370 Harper Mar 2017 A1
20170063170 Harper Mar 2017 A1
20170149294 Wight et al. May 2017 A1
20170264130 Lethellier Sep 2017 A1
20170271924 Mao et al. Sep 2017 A1
20170279307 Cho et al. Sep 2017 A1
20170324281 Che Nov 2017 A1
20180040416 Lestoquoy Feb 2018 A1
20180048184 Stout, II et al. Feb 2018 A1
20180062421 Danilovic et al. Mar 2018 A1
20180351415 Masquelier et al. Dec 2018 A1
20180361863 Islinger et al. Dec 2018 A1
20180367030 Lethellier et al. Dec 2018 A1
20190002380 Lethellier Jan 2019 A1
20190051452 Lethellier Feb 2019 A1
20190103767 Lethellier Apr 2019 A1
20190131823 Ahn et al. May 2019 A1
20190198239 Xu et al. Jun 2019 A1
20190252921 Lethellier et al. Aug 2019 A1
Foreign Referenced Citations (78)
Number Date Country
2908352 Oct 2014 CA
1825505 Aug 2006 CN
1901345 Jan 2007 CN
101346870 Jan 2009 CN
102280945 Dec 2011 CN
102299631 Dec 2011 CN
102870338 Jan 2013 CN
103262387 Aug 2016 CN
103918170 Mar 2017 CN
104416266 Apr 2017 CN
106740220 May 2017 CN
110999063 Feb 2020 CN
111183564 Apr 2020 CN
102004023197 Aug 2006 DE
102014218067 Mar 2016 DE
102014218067 Mar 2016 DE
0409880 Jan 1991 EP
0666804 Aug 1995 EP
2091129 Aug 2009 EP
2130287 Dec 2009 EP
2390984 Nov 2011 EP
2752957 Jul 2014 EP
2833509 Feb 2015 EP
2985870 Feb 2016 EP
2819272 Dec 2017 EP
3669437 Mar 2020 EP
3639359 Apr 2020 EP
2389720 Sep 2005 GB
H10261898 Sep 1998 JP
H11186086 Jul 1999 JP
2001044054 Feb 2001 JP
2002078103 Mar 2002 JP
2003284343 Mar 2002 JP
2002137659 May 2002 JP
2002246248 Aug 2002 JP
2002299138 Oct 2002 JP
3432317 Aug 2003 JP
2005073313 Mar 2005 JP
2006042519 Feb 2006 JP
2008087733 Apr 2008 JP
2009205050 Sep 2009 JP
5324901 Oct 2013 JP
2016220312 Dec 2016 JP
100698177 Mar 2007 KR
20150054641 May 2015 KR
274939 Jun 1997 NZ
556646 Jul 2007 NZ
555128 Jan 2010 NZ
99667 Nov 2010 RU
736298 May 1980 SU
M508836 Sep 2015 TW
1989010651 Nov 1989 WO
1993023909 Nov 1993 WO
1995011545 Apr 1995 WO
1998031073 Nov 1998 WO
1998057413 Dec 1998 WO
2003105308 Dec 2003 WO
2003096512 Feb 2004 WO
2005024865 Jun 2005 WO
2006001557 Jan 2006 WO
2008118178 Oct 2008 WO
2008140333 Nov 2008 WO
2009023155 Feb 2009 WO
2009050625 Apr 2009 WO
2009081126 Jul 2009 WO
20110156768 Dec 2011 WO
2012018268 Feb 2012 WO
2012099965 Jul 2012 WO
2012125590 Sep 2012 WO
2013011726 Jan 2013 WO
2013056234 Apr 2013 WO
2013112609 Aug 2013 WO
2013112613 Aug 2013 WO
2013112614 Aug 2013 WO
2014130065 Aug 2014 WO
2015085013 Jun 2015 WO
2016113949 Jul 2016 WO
2018232416 Dec 2018 WO
Non-Patent Literature Citations (89)
Entry
Alekseev O.V. et al. EJST-Tech Devices. Moscow, Energoizdat, 1981, p. 22, fig.2.5 (a).
Basar et al., Application of Wireless Power Transmission Systems in Wireless Capsule Endoscopy: An Overview. Sensor, 2014, 14, pp. 10932-10934.
Choi, “Generalized Models on Self-Decoupled Dual Pick-up Coils for Large Lateral Tolerance” IEEE Transactions on Power Electronics, vol. 30, No. 11, Nov. 2015, pp. 6434-6445 (Year: 2015).
drive2.com, Japanese puzzled wireless charging of electric vehicles, Pavel Greshnykh, 2016, https:/lwww.drive2.com/c/958023. Last visited Sep. 22, 2016.
European Application No. 18818426.1, Extended European Search Report dated Jun. 1, 2021.
European Application No. 18846305.3, Extended European Search Report dated Apr. 1, 2021.
International Application No. PCT/US2018/038125, International Search Report and Written Opinion dated Oct. 4, 2018.
International Application No. PCT/US2018/046757, International Search Report and Written Opinion dated Nov. 8, 2018.
Kaczmarczyk et al., A multi-coil wireless power transfer (MC-WPT) system—analysis method and properties, Measurement Automation Monitoring, Oct. 2015, vol. 61, No. 10, pp. 480-482.
Kim, Mina et al. “Design Methodology of a 500 W Wireless Power Transfer Converter”, 2015 IEEE, 6 pages.
Li,“ A Novel WPT System Based on Dual Transmitters and Dual Receivers for High Power Applications: Analysis, Design and Implementation” Energies 2017, 10, 174, pp. 1-16 (Year: 2017).
Morozov A.G. Ejschtrotechnika, Ejstkronika and Pulse Technology. Moscow, “High School”, 1987, p. 200 paragraph 4, machine translation of paragraph of included.
Mude et al., Design and experimentation of two-coil coupling for electric city-car WPT charging, Journal of Electromagnetic Waves and Applications, Nov. 29, 2015, p. 3.
Office Action for Chinese Application No. 201880053435.9, dated Oct. 12, 2020, 14 pages.
Notice of Allowance for U.S. Appl. No. 16/011,524, dated Oct. 3, 2018, 9 pages.
Corrected Notice of Allowance for U.S. Appl. No. 16/011,524, dated Jan. 14, 2019, 2 pages.
Non-Final Office Action for U.S. Appl. No. 16/103,512, dated May 29, 2020, 17 pages.
Notice of Allowance for U.S. Appl. No. 16/103,512, dated Mar. 10, 2021, 12 pages.
Non-Final Office Action for U.S. Appl. No. 16/273,992, dated Feb. 11, 2011, 21 pages.
Ahn et al., Design of Coupled Resonators for Wireless Power Transfer to Mobile Devices using Magnetic Field Shaping, 2012, IEEE, 44 pages.
Budhia et al., Design and Optimisation of Magnetic Structures for Lumped Inductive Power Transfer Systems, 2009, IEEE, 8 pages.
Chiang, Chao-Wen. Wireless Charging System with Magnetic Field Shaping for Electric Vehicles, 2013, IEEE, 5 pages.
Chinese Patent Application 201880053435.9, Office Action dated Oct. 12, 2020.
Chinese Patent Application 201880053435.9, Office Action dated Jul. 13, 2021, 9 pages.
Chinese Patent Application No. 201680050311.6, Office Action dated Apr. 2, 2021, 10 pages.
Covic et al., Inductive Power Transfer (IPT) Powering our future, 2010, The University of Auckland, Achland Uniservices Ltd., 126 pages.
Covic et al., The Design of a Contact-less Energy Transfer System For a People Mover System, 2000, IEEE, 6 pages.
Deyle et al., PowerPACK: A Wireless Power Distribution System for Wearable Devices, 2008, IEEE, 8 pages.
Dionne et al., Tunability of Microstrip Ferrite Resonator in the Partially Magnetized State, Sep. 1997, vol. 33, No. 5, IEEE, 3 pages.
Donaldson et al., Analysis of Resonant Coupled Coils in the Design of Radio Frequency Transcutaneous Links, 1983, Med. & Biol. Eng. & Comput., 16 pages.
Elliott et al., Magnetically Coupled Systemd for Power Transfer to Electric Vehicles, 1995, IEEE, 5 pages.
European Patent Application No. 18846305.3, EESR dated Apr. 1, 2021, 13 pages.
European Patent Application No. 18818426.1, Search Report dated Jun. 1, 2021, 11 pages.
Fang, et al., Design of Superconducting MRI Surface Coil by Using Method of Moment, Jun. 2002, vol. 12, No. 2, IEEE Transactions on Applied Superconductivity, 5 pages.
Fiedziuszko et al., Dielectric Resonators Raise Your High-Q, Sep. 2001, IEEE Microwave Magazine, 10 pages.
Finkenzeller, Klaus. RFID Handbook, 2003, Second Edition, Rachel Wddington Translation, Wiley, 163 pages.
Freire et al., Near-field imaging in the megahertz range by strongly coupled magnetoinductive surfaces: Experiment and ab initio analysis, Sep. 25, 2006, 10 pages.
Gao, Jianbo. Inductive Power Transmission for Untethered Micro-Robots, 2005, IEEE, 6 pages.
Gao, Jianbo. Traveling Magnetic Field for Homogeneous Wireless Power Transmission, Jan. 2007, vol. 22, No. 1, IEEE Transactions on Power Delivery, 8 pages.
Ghovanloo et al., A Wide-Band Power-Efficient Inductive Wireless Link for Implantable Microelectronic Devices Using Multiple Carriers, Nov. 2007, IEEE, 12 pages.
Gupta, Abheek. Inductor Geometries and Inductance Calculations for Power Transfer in Biomedical Implants, 2003, 95 pages.
Harrison, Reid R. Designing Efficient Inductive Power Links for Implantable Devices, 2007, IEEE, 4 pages.
Helszajn et al., Planar Triangular Resonators with Magnetic Walls, Feb. 1978, vol. MTT-26, No. 2, IEEE Transactions on Microwave Theory and Techniques, 6 pages.
Helszajn, Joseph. Quarter-Wave Coupled Junction Circulators Using Weakly Magnetized Disk Resonators, May 1982, vol. MTT-30, No. 5, IEEE Transactions on Microwave Theory and Techniques, 7 pages.
Hirayama et al., A Consideration of Electro-Magnetic-Resonant Coupling Mode in Wireless Power Transmission, Oct. 10, 2009, vol. 6, No. 19, IEEE Electronic Express, 5 pages.
Hmida et al., Design of Wireless Power and Data Transmission Circuits for Implantable Biomicrosystem, 2007, vol. 6, No. 2, Biotechnology, 13 pages.
Hormby, Tom. A History of Palm, Part 1: Before the PalmPilot, Jul. 19, 2016, Low End Mac, 31 pages. URL: https://lowendmac.com/2016/a-history-of-palm-part-1-before-the-palmpilot.
ICNIRP Guidelines for Limiting Exposure to Time-Varying Electric, Magnetic and Electromagnetic Fields (Up To 300 GHz), International Commission on Non-Ionizing Radiation Protection, 1998, Health Physics 74 (4):494-522, 38 pages.
IEEE Standard for Safety Levels with Respect to Human Exposure to Radio Frequency Electromagnetic Fields 2 kHz to 300 GHz, Apr. 19, 2006, IEEE Standard C95. Jan. 2005, 238 pages.
International Application No. PCT/US2016/039889, International Search Report and Written Opinion dated Oct. 6, 2016, 9 pages.
Jow et al., Design and Optimization of Printed Spiral Coils for Efficient Transcutaneous Inductive Power Transmission, Sep. 2007, vol. 1, No. 3, IEEE Transactions on Biomedical Circuts and Systems, 10 pages.
Karalis et al., Efficient Wireless Non-Radiative Mid-Range Energy Transfer, Apr. 27, 2007, ScienceDirect, 15 pages.
Kim et al., “Design methodology of a 1-15 500 W wireless power transfer converter”, 2015 IEEE PELS Workshop on Emerging Technologies: Wireless Power (2015 WOW), IEEE, Jun. 5, 2015 (Jun. 5, 2015), pp. 1-6, XP032789382, DOI: 10.1109/WOW.2015.7132842 [retrieved on Jun. 24, 2015].
Koenderink et al., Controlling the Resonance of a Photonic Crystal Microcavity by a Near-Field Probe, Oct. 5, 2005, Physical Review Letters, 4 pages.
Kurs et al., Power Transfer Through Strongly Coupled Resonances, Sep. 2007, Massachusetts Institute of Technology, 42 pages.
Kurs et al., Wireless Power Transfer via Strongly Coupled Magnetic Resonances, Jul. 6, 2007, vol. 317, Science, 5 pages.
Leén et al., Full-Wave Analysis of a Wide Class of Microstrip Resonators Fabricated on Magnetized Ferrites With Arbitrarily Oriented Bias Magnetic Field, Jun. 2002, vol. 50, No. 6, IEEE Transactions on Microwave Theory and Techniques, 10 pages.
León et al., Full-Wave Analysis of Tuneable Microstrip Filters Fabricated on Magnetized Ferrites, 2003, IEEE, 4 pages.
Liu et al., Equivalent Circuit Modeling of a Multilayer Planar Winding Array Structure for Use in a Universal Contactless Battery Charging Platform, Jan. 2007, IEEE Transactions on Power Electronics, vol. 22 No. 1, 9 pages.
Maslovski et al., Near-field enhancement and imaging in double planar polariton-resonant structures, Oct. 7, 2018, Physics Optics, 8 pages.
Mohan et al., Power Electronics, 1995, Second Edition, Wiley, 45 pages.
Nakao et al., Ferrite Core Couplers for Inductive Chargers, 2002, IEEE, 5 pages.
Oates et al., Magnetically Tunable Superconducting Resonators and Filters, Jun. 1999, vol. 9, No. 2, IEEE Transactions on Applied Superconductivity, 6 pages.
O'Brien, Kathleen. Inductively Coupled Radio Frequency Power Transmission System for Wireless Systems and Devices, 2007, Shker Verlag, Momentum Dynamics Corporation, 198 pages.
O'Donnell et al., Inductive Powering of Sensor Modules, 2005, IEEE, 6 pages.
Sakamoto et al., Large Air-Gap Coupler for Inductive Charger, Sep. 1999, vol. 35, No. 5, IEEE Transactions on Magnetics, 3 pages.
Schmidt, Stephan. Finite-Difference Time-Domain Methods for Electromagnetic Problems Involving Biological Bodies, 2005, 95 pages.
Segan, Sascha. The Evolution of the Blackberry, Jan. 28, 2013, PC Mag, 23 pages. URL: https://www.pcmag.com/news/the-evolution-of-the-blackberry-from-957-to-z10.
Shen et al., Tunable Dielectric Resonators with Dielectric Tuning Disks, Dec. 2000, vol. 48, No. 12, IEEE Transactions on Microwave Theory and Techniques, 7 pages.
Singh et al., Evolution of Processor Architecture in Mobile Phones, Mar. 2014, vol. 40 No. 4, International Journal of Computer Applications, 6 pages.
Stark III, Joseph C. Wireless Power Transmission Utilizing A Phased Array Of Tesla Coils, May 2004, 247 pages.
Stielau et al., Design of Loosely Coupled Inductive Power Transfer Systems, 2000, IEEE, 6 pages.
Tang et al., A Low-Profile Power Converter Using Printed-Circuit Board (PCB) Power Transformer with Ferrite Polymer Composite, Jul. 2001, vol. 16, No. 4, IEEE Transactions on Power Electronics, 6 pages.
Tang et al., Evaluation of the Shielding Effects on Printed-Circuit-Board Transformers Using Ferrite Plates and Copper Sheets, Nov. 2002, IEEE, 7 pages.
Tang et al., Evaluation of the Shielding Effects on Printed-Circuit-Board Transformers Using Ferrite Plates, 2001, IEEE, 7 pages.
Terman et al., Electronic and Radio Engineering, 1947, Fourth Edition, McGraw-Hill Book Company, 171 pages.
Thiruvenkatanathan et al., Differential Amplification of Structural Perturbations in Weakly Coupled MEMS Resonators, Mar. 2010, vol. 57, No. 3, IEEE Transactions on Ultrasonics, Ferrolectrics, and Frequency Control, 8 pages.
U.S. Appl. No. 16/273,992, Office Action dated Feb. 11, 2021, 36 pages.
U.S. Appl. No. 16/273,992, Office Action dated Sep. 16, 2021, 19 pages.
Vandevoorde et al., Wireless energy transfer for stand-alone systems: a comparison between low and high power applicability, Nov. 24, 2000, Elsevier, 7 pages.
Wang et al., General Stability Criterions for Zero Phase Angle Controlled Loosely Coupled Inductive Power Transfer Systems, 2001, IEEE, 6 pages.
Wang et al., Investigating an LCL Load Resonant Inverter for Inductive Power Transfer Applications, Jul. 2004, vol. 9, No. 4, IEEE Transactions on Power Electronics, 8 pages.
Wang et al., Power Transfer Capability and Bifurcation Phenomena of Loosely Coupled Inductive Power Transfer Systems, Feb. 2004, vol. 51, No. 1, IEEE Transactions on Industrial Electronics, 10 pages.
Wang, Chwei-Sen. Design Considerations for Inductively Coupled Power Transfer Systems, University of Auckland, Oct. 21, 2004, 282 pages.
Zierhofer et al., Coil Design For Improved Power Transfer Efficiency In Inductive Links, 1996, IEEE, 2 pages.
Chinese Patent Application No. 201680050311.6, Office Action dated Oct. 14, 2021, 9 pages.
U.S. Appl. No. 16/273,992, Notice of Allowance dated Feb. 16, 2022, 59 pages.
Chinese Patent Application No. 201880053435.9, Office Action dated May 11, 2022, 9 pages.
U.S. Appl. No. 16/273,992, Notice of Allowance dated Apr. 29, 2022, 50 pages.
Related Publications (1)
Number Date Country
20190238001 A1 Aug 2019 US
Provisional Applications (1)
Number Date Country
62623777 Jan 2018 US