Parallel connected inverters

Abstract
A distributed power system wherein a plurality of power converters are connected in parallel and share the power conversion load according to a prescribed function, but each power converter autonomously determines its share of power conversion. Each power converter operates according to its own power conversion formula/function, such that overall the parallel-connected converters share the power conversion load in a predetermined manner.
Description
TECHNICAL FIELD

The present invention relates to distributed power systems and, more particularly, a system and method for sharing power inversion/conversion between parallel connected power inverters/converters connected to the distributed power system.


DESCRIPTION OF RELATED ART

A conventional installation of a solar distributed power system 10, including multiple solar panels 101, is illustrated in FIG. 1. Since the voltage provided by each individual solar panel 101 is low, several panels 101 are connected in series to form a string 103 of panels 101. For a large installation, when higher current is required, several strings 103 may be connected in parallel to form overall system 10. The interconnected solar panels 101 are mounted outdoors, and connected to a maximum power point tracking (MPPT) module 107 and then to an inverter 104. MPPT 107 is typically implemented as part of inverter 104 as shown in FIG. 1. The harvested power from DC sources 101 is delivered to inverter 104, which converts the direct-current (DC) into alternating-current (AC) having a desired voltage and frequency, which is usually 110V or 220V at 60 Hz, or 220V at 50 Hz. The AC current from inverter 104 may then be used for operating electric appliances or fed to the power grid.


As noted above, each solar panel 101 supplies relatively very low voltage and current. A problem facing the solar array designer is to produce a standard AC current at 120V or 220V root-mean-square (RMS) from a combination of the low voltages of the solar panels. The delivery of high power from a low voltage requires very high currents, which cause large conduction losses on the order of the second power of the current i2. Furthermore, a power inverter, such as inverter 104, which is used to convert DC current to AC current, is most efficient when its input voltage is slightly higher than its output RMS voltage multiplied by the square root of 2. Hence, in many applications, the power sources, such as solar panels 101, are combined in order to reach the correct voltage or current. A large number of panels 101 are connected into a string 103 and strings 103 are connected in parallel to power inverter 104. Panels 101 are connected in series in order to reach the minimal voltage required for inverter 104. Multiple strings 103 are connected in parallel into an array to supply higher current, so as to enable higher power output.



FIG. 1B illustrates one serial string 103 of DC sources, e.g., solar panels 101a-101d, connected to MPPT circuit 107 and inverter 104. The current (ordinate) versus voltage (abscissa) or IV characteristics are plotted (110a-110d) to the left of each DC source 101. For each DC power source 101, the current decreases as the output voltage increases. At some voltage value, the current goes to zero, and in some applications the voltage value may assume a negative value, meaning that the source becomes a sink. Bypass diodes (not shown) are used to prevent the source from becoming a sink. The power output of each source 101, which is equal to the product of current and voltage (P=i*V), varies depending on the voltage drawn from the source. At a certain current and voltage, close to the falling off point of the current, the power reaches its maximum. It is desirable to operate a power generating cell at this maximum power point (MPP). The purpose of the MPPT is to find this point and operate the system at this point so as to draw the maximum power from the sources.


In a typical, conventional solar panel array, different algorithms and techniques are used to optimize the integrated power output of system 10 using MPPT module 107. MPPT module 107 receives the current extracted from all of solar panels 101 together and tracks the maximum power point for this current to provide the maximum average power such that if more current is extracted, the average voltage from the panels starts to drop, thus lowering the harvested power. MPPT module 107 maintains a current that yields the maximum average power from system 10.


However, since power sources 101a-101d are connected in series to single MPPT 107, MPPT 107 selects a maximum power point which is some average of the maximum power points of the individual serially connected sources 101. In practice, it is very likely that MPPT 107 would operate at an I-V point that is optimum for only a few or none of sources 101. In the example of FIG. 1B, the selected point is the maximum power point for source 101b, but is off the maximum power point for sources 101a, 101c and 101d. Consequently, the arrangement is not operated at best achievable efficiency.


The present applicant has disclosed in co-pending U.S. application Ser. No. 11/950,271 entitled “Distributed Power Harvesting Systems Using DC Power Sources”, the use of an electrical power converter, e.g. DC-to-DC converter, attached to the output of each power source, e.g. photovoltaic panel. The electrical power converter converts input power to output power by monitoring and controlling the input power at a maximum power level.


SUMMARY

The following summary of the invention is included in order to provide a basic understanding of some aspects and features of the invention. This summary is not an extensive overview of the invention and as such it is not intended to particularly identify key or critical elements of the invention or to delineate the scope of the invention. Its sole purpose is to present some concepts of the invention in a simplified form as a prelude to the more detailed description that is presented below.


Aspects of the invention provide load balancing of a parallel connected power converter, wherein each converter autonomously determine its own power conversion load.


According to an embodiment of the present invention there is provided a distributed power system including a direct current (DC) power source and multiple inverters. The inverter inputs are adapted for connection in parallel to the DC power source. The inverter outputs adapted for connection in parallel. Multiple control modules connect respectively to the inverters' inputs. The control modules respectively control current drawn by the inverters from the DC input responsive to either the voltage or power of the DC input so that a voltage or power equilibrium, i.e., specified draw, is reached in the DC input. That is, the control module continuously monitors the power provided by the DC power source and adjust the current or power conversion of the power converter according to a specified function. Consequently, the inverters share the load of inverting power from the DC power source to output power. A power module may be attached between the DC power source and the inverters and include an input coupled to said DC power source and an output to the inverter inputs. The power module may be configured to maintain maximum peak power at the input coupled to the DC power source or the power module may be configured to control at maximum peak power at its output. Alternatively, a single maximum peak power tracking module connects the DC power source to the control modules. The control modules include a voltage loop block which upon comparing the voltage of the serial string to a previously specified reference voltage, outputs a current reference signal based on the comparison. A current loop block compares the current reference signal with a current signal proportional to the current in the DC power source.


According to embodiments of the present invention there is provided a method for sharing load in a distributed power system. Multiple inverters are coupled in parallel to the DC power source. The inverters invert power from the DC power source to an output power.


Current drawn by the inverters from the DC power source is autonomously controlled by each inverter responsive to selectably either the voltage or power of the DC input. In this manner, the inverters share the load of the inverting power from the DC power source to the output power according to a prescribed power conversion sharing function. A power module disposed between the DC power source and the inverters includes an input coupled to the DC power source and an output to inputs of the inverters. The power module optionally maintains maximum peak power at the input coupled to the DC power source.


According to another embodiment of the present invention there is provided a distributed power system including a direct current (DC) power source and multiple power converters. The power converter inputs are adapted for connection in parallel to the DC power source. The power converter outputs are adapted for connection in parallel. Multiple control modules connect respectively to the power converter's inputs. The control modules respectively control current drawn by the power converters from the DC input responsive to either the voltage or power of the DC input until either a voltage or power equilibrium is reached in the DC input. The power converters share the load of inverting power from the DC power source to output power.


According to embodiments of the present invention there is provided a method for sharing load in a distributed power system. Current drawn from a DC input by the inverters is individually controlled by each inverter responsive to the DC input. An equilibrium is reached in the DC input for each given DC power input, such that DC power conversion is shared among the inverters according to a prescribed formula. The inverter autonomously draws a portion of the load of inverting power from the DC input to output power.


The foregoing and/or other aspects will become apparent from the following detailed description when considered in conjunction with the accompanying drawing figures.





BRIEF DESCRIPTION OF THE DRAWINGS

The accompanying drawings, which are incorporated in and constitute a part of this specification, exemplify embodiments of the present invention and, together with the description, serve to explain and illustrate principles of the invention. The drawings are intended to illustrate various features of the illustrated embodiments in a diagrammatic manner. The drawings are not intended to depict every feature of actual embodiments nor relative dimensions of the depicted elements, and are not necessarily drawn to scale.


The invention is herein described, by way of example only, with reference to the accompanying drawings, wherein:



FIGS. 1 and 1B are block diagram of conventional power harvesting systems using photovoltaic panels as DC power sources;



FIG. 2 illustrates a distributed power harvesting circuit, based on the disclosure of U.S. application Ser. No. 11/950,271;



FIG. 3 illustrates a simplified system, according to an embodiment of the present invention;



FIG. 4, is a simplified flow diagram of a method, illustrating a feature of the present invention;



FIG. 5 illustrates a simplified system, according to another embodiment of the present invention;



FIG. 6 which illustrates details of a control module integrated inside an inverter, in accordance with different embodiments of the present invention;



FIG. 7 is a graph showing a typical control current-voltage characteristic for controlling current response to input voltage, according to a feature of the present invention; and



FIGS. 8A and 8B which illustrate racks and connections to the racks with parallel connected inverters, according to a feature of the present invention.





DETAILED DESCRIPTION

Reference will now be made in detail to embodiments of the present invention, examples of which are illustrated in the accompanying drawings, wherein like reference numerals refer to the like elements throughout. The embodiments are described below to explain the present invention by referring to the figures.


It should be noted, that although the discussion herein relates primarily to photovoltaic systems and more particularly to those systems previously disclosed in U.S. application Ser. No. 11/950,271, the present invention may, by non-limiting example, alternatively be configured as well using conventional photovoltaic distributed power systems and other distributed power systems including (but not limited to) wind turbines, hydroturbines, fuel cells, storage systems such as battery, super-conducting flywheel, and capacitors, and mechanical devices including conventional and variable speed diesel engines, Stirling engines, gas turbines, and micro-turbines.


By way of introduction, distributed power installations have inverters which invert DC power to AC power. In large scale installations, a large inverter may be used, but a large inverter is more difficult to maintain and repair, leading to long downtime. The use of a number of small inverters has a benefit of modularity. If one inverter constantly is operating and a second inverter begins to operate when there is a larger load to handle, there is more wear on the working inverter. Hence load balancing between the inverters is desired. If the control of the two inverters is through a master/slave technique there is an issue of a single point of failure. The single master may break down and take the rest of the system out of whack. A good solution would be a load-balancing, not master-slave driver modular inverter. This disclosure shows a system and method for doing so. To be sure, in the context of this disclosure, load balancing does not necessarily mean that the load is spread among the converters in equal amounts, but rather that the load is distributed among the converters such that each converter assumes a certain part of the load, which may be predetermined or determined during run time.


It should be noted, that although the discussion herein relates primarily to grid tied power distribution systems and consequent application to inversion (i.e. power conversion from direct current (DC) to alternating current (AC), the teachings of the present invention are equally applicable to DC-DC power conversion systems such as are applicable in battery storage/fuel cell systems. Hence the terms “inverter” and “converter” in the present context represent different equivalent embodiments of the present invention.


Before explaining embodiments of the invention in detail, it is to be understood that the invention is not limited in its application to the details of design and the arrangement of the components set forth in the following description or illustrated in the drawings. The invention is capable of other embodiments or of being practiced or carried out in various ways. Also, it is to be understood that the phraseology and terminology employed herein is for the purpose of description and should not be regarded as limiting.


Reference is now made to FIG. 2 which illustrates a distributed power harvesting circuit 20, based on the disclosure in U.S. application Ser. No. 11/950,271. Circuit 20 enables connection of multiple distributed power sources, for example solar panels 101a-101d, to a single power supply. Series string 203 of solar panels 101 may be coupled to an inverter 204 or multiple connected strings 203 of solar panels 101 may be connected to a single inverter 204. In configuration 20, each solar panel 101a-101d is connected individually to a separate power converter circuit or a module 205a-205d. Each solar panel 101 together with its associated power converter circuit 205 forms a power source or power generating element 222. (Only one such power generating element 222 is marked in FIG. 2.) Each converter 205a-205d adapts optimally to the power characteristics of the connected solar panel 101a-101d and transfers the power efficiently from input to output of converter 205. Converters 205a-205d are typically microprocessor controlled switching converters, e.g. buck converters, boost converters, buck/boost converters, flyback or forward converters, etc. The converters 205a-205d may also contain a number of component converters, for example a serial connection of a buck and a boost converter. Each converter 205a-205d includes a control loop 221, e.g. MPPT loop that receives a feedback signal, not from the converter's output current or voltage, but rather from the converter's input coming from solar panel 101. The MPPT loop of converter 205 locks the input voltage and current from each solar panel 101a-101d at its optimal power point, by varying one or more duty cycles of the switching conversion typically by pulse width modulation (PWM) in such a way that maximum power is extracted from each attached panel 101a-101d. The controller of converter 205 dynamically tracks the maximum power point at the converter input. Feedback loop 221 is closed on the input power in order to track maximum input power rather than closing a feedback loop on the output voltage as performed by conventional DC-to-DC voltage converters.


As a result of having a separate MPPT circuit in each converter 205a-205d, and consequently for each solar panel 101a-101d, each string 203 may have a different number or different specification, size and/or model of panels 101a-101d connected in series. System 20 of FIG. 2 continuously performs MPPT on the output of each solar panel 101a-101d to react to changes in temperature, solar radiance, shading or other performance factors that effect one or more of solar panels 101a-101d. As a result, the MPPT circuit within the converters 205a-205d harvests the maximum possible power from each panel 101a-101d and transfers this power as output regardless of the parameters effecting other solar panels 101a-101d. The outputs of converters 205a-205d are series connected into a single DC output that forms the input to inverter 204. Inverter 204 converts the series connected DC output of converters 205a-205d into an AC power supply.


Reference is now made to FIG. 3 which illustrates a simplified system 30, according to an embodiment of the present invention. A solar panel array 20 in different embodiments may have serial and/or parallel power generating modules 222, each of which includes solar panel 101 and MPPT power converter 205. In system 30, five strings 203 are connected in parallel. Connected to solar panel array 20 are multiple, e.g. two inverters 304 which are parallel connected both at their inputs and their outputs.


Reference is now also made to FIG. 4, a simplified flow diagram illustrating a method 40, according to an embodiment of the present invention. Operation of system 30 is characterized by inverters 304 controlling their input currents based on the voltage input to inverters 304. Under these circumstances, a drop in power (step 401), for instance caused by a cloud moving in front of the sun causes a drop (step 403) in voltage input to inverter 304. The drop (step 403) in voltage input to inverters 304 causes inverters 304 to reduce (step 405) respective input currents which in turn tends to raise the input voltage respectively to inverters 304. An equilibrium is reached (decision box 407) as both inverters 304 handle reduced power (step 409) from solar panel array 20. This process is repeated continuously or intermittently to respond to changes in the operational characteristics of the DC power source.


Referring back to FIG. 3, in an example of an embodiment of the present invention using solar panel array 20 includes five parallel connected strings 203, each string of ten power generating modules 222 each connected in series to parallel-connected inverters 304 which output a grid voltage of 220V RMS. Nominal input voltage to parallel-connected inverters 304 at maximum power conversion, e.g. 10 kiloWatts, is 400 Volts with 5 kiloWatts through each of two inverters 304. Hence, ignoring power conversion/inversion efficiency losses, each of fifty solar panels 101 output 200 Watt of electrical power at 40 Volts. Current through each string is 2000 W/400V=5 amperes. Power generating modules 222 are configured to maximize their power input (or power output from solar panels 101). Voltage output from power generating modules 222 is typically floating. If the power output from power generating modules 222 decreases (for instance as a result of solar shading, e.g., cloud) input power to inverters 304 drops (step 401). Inverters 304 are configured to adjust their current draw (step 405) based on input voltage. Reference is now made to FIG. 7 a graph showing a typical control current-voltage characteristic for controlling current response to input voltage, according to a feature of the present invention. In the example, the horizontal axis is Voltage in volts and the vertical axes indicate respectively and Power in Watts and Current in amperes. Of course, while in this example a linear function is shown for use by all inverters, other functions may be used and/or each individual inverter may have a different function. According to the graph, 5 kW inverters 304 are configured to draw close to zero Watts at 350VDC input, 2.5 kiloWatt at 375 VDC input, and the full 5 kiloWatt at 400VDC input. In this case, if the direct current power is 10 kiloWatt, each inverter 304 operates at full peak load with an input voltage of 400VDC (each inverter 304 drawing each 12.5 ampere, so that total current draft is 25 ampere=10 kiloWatt/400 Volt). If the power input to inverters 304 drops to, e.g., 5 kW total power, both inverters 304 experience a drop in the input voltage (since the DC input is now 5 kW, if inverters 304 keep on drawing 12.5 A each, then the voltage would be 200V). However, each inverter 304 starts reducing its input current until an equilibrium is reached (decision box 407), which in this case is with each inverter 304 drawing 6.25 ampere at 375 VDC input to a total of 2.5 kW power inverted by each inverter 304 and 5 kW for the total both inverters 304.


Reference is now made to FIG. 5 which illustrates a simplified system 50, according to an embodiment of the present invention. A solar panel array 10 in different embodiments may have serial and/or parallel connected solar cells/panels 101. An MPPT power circuit 107 maintains a maximum power output of solar panel array 10 typically by drawing current at the peak power output level of solar panel array 10. The output voltage of MPPT circuit 107 is preferably floating. Connected to MPPT 107 are multiple inverters, e.g. two inverters, 304 which are parallel connected both at their inputs and their outputs.


The operation of system 50 is illustrated by referring back to FIG. 4. If the power output from solar panel array 10 decreases (for instance as a result of solar shading, e.g., cloud) input power to inverters 304 drops (step 401). Inverters 304 are configured to adjust their current draw (step 405) based on input voltage. Each inverter 304 starts reducing (step 405) its input current until an equilibrium is reached (decision box 407) and each inverter 304 handles (step 409) a reduced power load.


Reference is now made to FIG. 6 which illustrates a simplified system diagram of inverter 304 with an integrated control module 60 according to an embodiment of the present invention. Control module 60 includes two control loops a voltage control loop 601 and a current control loop block 605. A previously specified voltage reference block 603 specifies two voltage references, a lower voltage reference and an upper voltage reference. As previously stated, in this example inverter 304 operates with a DC input voltage of 400V in order to invert to 220V RMS. Hence, in this specific example both the lower and upper voltage references are in the vicinity of 400 V DC. In the previous example used in reference to FIG. 3 the lower reference voltage is 350 VDC and the upper reference voltage is 400 VDC. Voltage control loop block 601 compares the actual input DC voltage to the voltage references and outputs a current reference Iref signal. The current reference signal Iref is used as an input to current control loop block 605. Current control loop block 605 receives also a signal 609 proportional to its output current. Typically, a current sensor provides signal 609 from within a pulse width modulation (PWM) block 607 of inverter 304, which performs the power inversion. Current control loop block 605 compares output current signal 609 with the current reference signal Iref and adjusts the output current accordingly until the current (and output power) equilibrate. Thus each inverter 304 typically handles an equal load of power from solar panel array 10 or 20.


As can be understood, in general, embodiments of the invention provide a system whereby a plurality of power converters, e.g., inverters, are connected in parallel and share the power conversion load according to a prescribed function, but each power converter autonomously determines its share of power conversion. That is, each power converter operates according to its own power conversion formula/function, such that overall the parallel-connected converters share the power conversion load in a predetermined manner. That is, while the power conversion sharing scheme is designed according to the system as a whole, i.e., division of duty to all of the converters, each individual inverter operates individually to draw power according to its own formula. In one specific case, e.g., where all of the converters are of the same model and same rating, the formula is the same for all of the converters. On the other hand, in other implementations the formula can be individually tailored to each converter. For example, in installation where one converter has double the conversion capacity as all the other converters in the system, its formula may dictate its power conversion share to be double as the other converters. Also, while the formula exemplified in FIG. 7 is linear, other functions or formulas may be used, as this is given as one particular example.


Reference is now made to FIGS. 8A and 8B which illustrate racks with parallel connected inverters, according to a feature of the present invention. In this embodiment some or all of inverters 304 may be configured for operating in a load-balancing mode, according to an embodiment of the present invention, but inverters 304 may actually share some components. One such embodiment might be parallel inverters 304 with a shared enclosure for the electrically separate inverters, as depicted in FIG. 8A. Other embodiments might also include shared electrical elements of the inverters, and example of which as depicted in FIG. 8B which shows parallel connected inverters with a shared EMI/RFI filter bank (these filters might be at the DC input, AC input, or both). Joint connections are shown in the racks, shared by inverters 304, a joint AC connection 81 to the grid and a joint DC connection 83 to DC power source 20. According to a further feature of the present invention, a joint electromagnetic interference filter is used to filter all the outputs of inverters 304 and electromagnetic radiation thereform, whether they are actually load balancing or not, according to the present invention.


The articles “a”, “an”, as used hereinafter are intended to mean and be equivalent to “one or more” or “at least one”. For instance, “a direct current (DC) power source ” means “one or more direct current (DC) power sources”.


While the invention has been described with respect to a limited number of embodiments, it will be appreciated that many variations, modifications and other applications of the invention may be made.


The present invention has been described in relation to particular examples, which are intended in all respects to be illustrative rather than restrictive. Those skilled in the art will appreciate that many different combinations of hardware, software, and firmware will be suitable for practicing the present invention. Moreover, other implementations of the invention will be apparent to those skilled in the art from consideration of the specification and practice of the invention disclosed herein. Various aspects and/or components of the described embodiments may be used singly or in any combination in the server arts. It is intended that the specification and examples be considered as exemplary only, with a true scope and spirit of the invention being indicated by the following claims.

Claims
  • 1. An apparatus comprising: a power converter having a direct current (DC) input and an output; anda controller configured to adjust input current drawn by the power converter at the DC input in response to a change in a measured input voltage at the DC input until power at the DC input reaches an equilibrium according to a previously prescribed function that specifies a range of input currents for the power converter to draw for a corresponding range of input voltages measured at the DC input.
  • 2. The apparatus of claim 1, wherein the controller is further configured to: reduce, in response to a reduction in the measured input voltage, the input current drawn by the power converter until a specified current drawn and a corresponding specified voltage at the DC input are reached according to the previously prescribed function.
  • 3. The apparatus of claim 1, wherein the range of input currents decreases as the corresponding range of input voltages decreases.
  • 4. The apparatus of claim 1, wherein the previously prescribed function specifies that for the input voltage being measured at a lower end of the range of input voltages, the input current drawn by the power converter is zero.
  • 5. The apparatus of claim 1, wherein the controller, to perform the adjusting of the input current drawn by the power converter, is configured to: compare the measured input voltage at the DC input to at least one reference voltage to produce a voltage comparison;output a current reference signal based on the voltage comparison;compare the current reference signal with a current signal proportional to the input current drawn by the power converter to produce a current comparison; andadjust the input current drawn by the power converter based on the current comparison.
  • 6. The apparatus of claim 1, wherein the equilibrium includes the input current drawn and the measured input voltage at the DC input respectively matching a predetermined input current and a corresponding predetermined input voltage specified by the previously prescribed function.
  • 7. An apparatus comprising: a power converter having a direct current (DC) input and an output; anda controller configured to control input current drawn by the power converter at the DC input in response to a change in a measured input voltage at the DC input according to a previously prescribed function that specifies a range of input currents for a corresponding range of input voltages at the DC input, wherein the range of input voltages and the range of input currents are specified according to a plurality of power output levels of a power source connected to the DC input, wherein for each power output level, in response to a reduction in the input current drawn by the power converter, the measured input voltage driven by the power source increases.
  • 8. An apparatus comprising: a power converter having a direct current (DC) input and an output; anda controller configured to control input current drawn by the power converter at the DC input in response to a change in a measured input voltage at the DC input according to a previously prescribed function that specifies a range of input currents for a corresponding range of input voltages at the DC input, wherein the range of input voltages and the range of input currents are specified according to a plurality of operating conditions of a solar power source connected to the DC input, wherein the plurality of operating conditions include an increase in the measured voltage at the DC input in response a decrease in the input current drawn by the power converter.
  • 9. An apparatus comprising: a power converter having a direct current (DC) input and an output;a controller configured to control input current drawn by the power converter at the DC input in response to a change in a measured input voltage at the DC input according to a previously prescribed function that specifies a range of input currents for a corresponding range of input voltages at the DC input;a second power converter having a second DC input and a second output, wherein the DC input is connected to the second DC input, and wherein the output is connected to the second output; anda second controller configured to control input current drawn by the second power converter at the second DC input in response to a measured second input voltage at the second DC input according to a second previously prescribed function that specifies a second range of input currents for a corresponding second range of input voltages at the second DC input, wherein the controller and second controller are configured to control, independent of each other, the input current drawn by the power converter and the input current drawn by the second power converter, respectively.
  • 10. The apparatus of claim 9, wherein range of input currents specified by the previously prescribed function is different than the second range of input currents specified by the second previously prescribed function.
  • 11. The apparatus of claim 9, further comprising: a serially connected string of power sources connected to the DC input and second DC input, wherein each power source includes a solar power source connected through a DC to DC power converter that includes a maximum power point tracking controller.
  • 12. The apparatus of claim 1, wherein the power converter is a direct current to alternating current inverter.
  • 13. The apparatus of claim 1, wherein the previously prescribed function specifies controlling the input current drawn by the power converter over the range of input currents in linear relationship to the measured input voltage over the range of input voltages at the DC input.
  • 14. A method comprising: converting, with a power converter, direct current (DC) power received at a DC input of the power converter to output power at an output of the power converter; andadjusting input current drawn by the power converter at the DC input in response to a change in measured input voltage at the DC input until power at the DC input reaches an equilibrium according to a previously prescribed function that specifies a range of input currents for the power converter to draw for a corresponding range of input voltages measured at the DC input.
  • 15. The method of claim 14, further comprising:: reducing, in response to a reduction in the measured input voltage, the input current drawn by the power converter until a specified current drawn and a corresponding specified voltage at the DC input are reached according to the previously prescribed function.
  • 16. The method of claim 14, wherein the range of input currents decreases as the corresponding range of input voltages decreases.
  • 17. The method of claim 14, wherein the adjusting of the input current drawn by the power converter comprises: comparing the measured input voltage at the DC input to at least one reference voltage to produce a voltage comparison;outputting a current reference signal based on the voltage comparison;comparing the current reference signal with a current signal proportional to the input current drawn by the power converter to produce a current comparison; andadjusting the input current drawn by the power converter based on the current comparison.
  • 18. A method comprising: converting, with a power converter, direct current (DC) power received at a DC input of the power converter to output power at an output of the power converter; andcontrolling input current drawn by the power converter at the DC input in response to a change in measured input voltage at the DC input according to a predetermined control function that specifies a range of input currents for a corresponding range of input voltages at the DC input, wherein the range of input voltages and range of input currents are specified according to a plurality of power output levels of a power source connected to the DC input, wherein for each power output level, in response to a reduction in the input current drawn by the power converter, the power source increases the measured input voltage.
  • 19. A method comprising: converting, with a power converter, direct current (DC) power received at a DC input of the power converter to output power at an output of the power converter;controlling input current drawn by the power converter at the DC input in response to a change in measured input voltage at the DC input according to a predetermined control function that specifies a range of input currents for a corresponding range of input voltages at the DC input;converting, with a second power converter, additional direct current power received at a second DC input of the second power converter to additional output power at a second output of the second power converter, wherein the DC input is connected to the second DC input, and wherein the output is connected to the second output; andcontrolling additional input current drawn by the second power converter at the second DC input in response to a measured second input voltage at the second DC input according to a second previously prescribed function that specifies a second range of input currents for a second range of input voltages at the second DC input, wherein the controlling of the input current drawn by the power converter is independent from the controlling of the additional input current drawn by the second power converter.
  • 20. The method of claim 14, wherein the power converter is a direct current to alternating current inverter.
CROSS-REFERENCE TO RELATED APPLICATIONS

The present application is a continuation application of U.S. application Ser. No. 12/329,520, filed Dec. 5, 2008, now U.S. Pat. No. 8,289,742, which claims priority benefit from U.S. application Ser. No. 60/992,589, filed Dec. 5, 2007. Benefit of the filing date of each of these prior applications is hereby claimed. Each of these prior applications is hereby incorporated by reference in its entirety.

US Referenced Citations (393)
Number Name Date Kind
3369210 Manickella Feb 1968 A
3596229 Hohorst Jul 1971 A
3958136 Schroeder May 1976 A
4060757 McMurray Nov 1977 A
4101816 Shepter Jul 1978 A
4171861 Hohorst Oct 1979 A
4257087 Cuk Mar 1981 A
4452867 Conforti Jun 1984 A
4460232 Sotolongo Jul 1984 A
4481654 Daniels et al. Nov 1984 A
4554515 Burson et al. Nov 1985 A
4598330 Woodworth Jul 1986 A
4623753 Feldman et al. Nov 1986 A
4637677 Barkus Jan 1987 A
4641042 Miyazawa Feb 1987 A
4641079 Kato et al. Feb 1987 A
4644458 Harafuji et al. Feb 1987 A
4652770 Kumano Mar 1987 A
4706181 Mercer Nov 1987 A
4720667 Lee et al. Jan 1988 A
4720668 Lee et al. Jan 1988 A
4783728 Hoffman Nov 1988 A
RE33057 Clegg et al. Sep 1989 E
4868379 West Sep 1989 A
4888063 Powell Dec 1989 A
4888702 Gerken et al. Dec 1989 A
4899269 Rouzies Feb 1990 A
4903851 Slough Feb 1990 A
4910518 Kim et al. Mar 1990 A
4978870 Chen et al. Dec 1990 A
4987360 Thompson Jan 1991 A
5045988 Gritter et al. Sep 1991 A
5081558 Mahler Jan 1992 A
5191519 Kawakami Mar 1993 A
5280232 Kohl et al. Jan 1994 A
5287261 Ehsani Feb 1994 A
5327071 Frederick et al. Jul 1994 A
5345375 Mohan Sep 1994 A
5402060 Erisman Mar 1995 A
5446645 Shirahama et al. Aug 1995 A
5460546 Kunishi et al. Oct 1995 A
5493154 Smith et al. Feb 1996 A
5497289 Sugishima et al. Mar 1996 A
5517378 Asplund et al. May 1996 A
5530335 Decker et al. Jun 1996 A
5548504 Takehara Aug 1996 A
5604430 Decker et al. Feb 1997 A
5616913 Litterst Apr 1997 A
5644219 Kurokawa Jul 1997 A
5646501 Fishman et al. Jul 1997 A
5659465 Flack et al. Aug 1997 A
5686766 Tamechika Nov 1997 A
5773963 Blanc et al. Jun 1998 A
5777515 Kimura Jul 1998 A
5777858 Rodulfo Jul 1998 A
5780092 Agbo et al. Jul 1998 A
5798631 Spee et al. Aug 1998 A
5801519 Midya et al. Sep 1998 A
5804894 Leeson et al. Sep 1998 A
5821734 Faulk Oct 1998 A
5822186 Bull et al. Oct 1998 A
5838148 Kurokami et al. Nov 1998 A
5869956 Nagao et al. Feb 1999 A
5873738 Shimada et al. Feb 1999 A
5886882 Rodulfo Mar 1999 A
5886890 Ishida et al. Mar 1999 A
5892354 Nagao et al. Apr 1999 A
5905645 Cross May 1999 A
5919314 Kim Jul 1999 A
5923158 Kurokami et al. Jul 1999 A
5932994 Jo et al. Aug 1999 A
5933327 Leighton et al. Aug 1999 A
5945806 Faulk Aug 1999 A
5949668 Schweighofer Sep 1999 A
5963010 Hayashi et al. Oct 1999 A
5990659 Frannhagen Nov 1999 A
6002290 Avery et al. Dec 1999 A
6031736 Takehara et al. Feb 2000 A
6037720 Wong et al. Mar 2000 A
6038148 Farrington et al. Mar 2000 A
6046919 Madenokouji et al. Apr 2000 A
6050779 Nagao et al. Apr 2000 A
6078511 Fasullo et al. Jun 2000 A
6081104 Kern Jun 2000 A
6082122 Madenokouji et al. Jul 2000 A
6105317 Tomiuchi et al. Aug 2000 A
6111188 Kurokami et al. Aug 2000 A
6111391 Cullen Aug 2000 A
6111767 Handleman Aug 2000 A
6163086 Choo Dec 2000 A
6166455 Li Dec 2000 A
6166527 Dwelley et al. Dec 2000 A
6169678 Kondo et al. Jan 2001 B1
6219623 Wills Apr 2001 B1
6255360 Domschke et al. Jul 2001 B1
6256234 Keeth et al. Jul 2001 B1
6259234 Perol Jul 2001 B1
6262558 Weinberg Jul 2001 B1
6285572 Onizuka et al. Sep 2001 B1
6292379 Edevold et al. Sep 2001 B1
6301128 Jang et al. Oct 2001 B1
6304065 Wittenbreder Oct 2001 B1
6320769 Kurokami et al. Nov 2001 B2
6339538 Handleman Jan 2002 B1
6351130 Preiser et al. Feb 2002 B1
6369462 Siri Apr 2002 B1
6380719 Underwood et al. Apr 2002 B2
6396170 Laufenberg et al. May 2002 B1
6433522 Siri Aug 2002 B1
6448489 Kimura et al. Sep 2002 B2
6452814 Wittenbreder Sep 2002 B1
6493246 Suzui et al. Dec 2002 B2
6507176 Wittenbreder, Jr. Jan 2003 B2
6531848 Chitsazan et al. Mar 2003 B1
6545211 Mimura Apr 2003 B1
6548205 Leung et al. Apr 2003 B2
6587051 Takehara et al. Jul 2003 B2
6590793 Nagao et al. Jul 2003 B1
6593521 Kobayashi Jul 2003 B2
6608468 Nagase Aug 2003 B2
6611441 Kurokami et al. Aug 2003 B2
6628011 Droppo et al. Sep 2003 B2
6650031 Goldack Nov 2003 B1
6650560 MacDonald et al. Nov 2003 B2
6653549 Matsushita et al. Nov 2003 B2
6672018 Shingleton Jan 2004 B2
6678174 Suzui et al. Jan 2004 B2
6690590 Stamenic et al. Feb 2004 B2
6731136 Knee May 2004 B2
6738692 Schienbein et al. May 2004 B2
6744643 Luo et al. Jun 2004 B2
6765315 Hammerstrom et al. Jul 2004 B2
6768047 Chang et al. Jul 2004 B2
6788033 Vinciarelli Sep 2004 B2
6788146 Forejt et al. Sep 2004 B2
6795318 Haas et al. Sep 2004 B2
6801442 Suzui et al. Oct 2004 B2
6850074 Adams et al. Feb 2005 B2
6882131 Takada et al. Apr 2005 B1
6914418 Sung Jul 2005 B2
6919714 Delepaut Jul 2005 B2
6927955 Suzui et al. Aug 2005 B2
6933627 Wilhelm Aug 2005 B2
6936995 Kapsokavathis et al. Aug 2005 B2
6950323 Achleitner et al. Sep 2005 B2
6963147 Kurokami et al. Nov 2005 B2
6984967 Notman Jan 2006 B2
6984970 Capel Jan 2006 B2
7030597 Bruno et al. Apr 2006 B2
7031176 Kotsopoulos et al. Apr 2006 B2
7042195 Tsunetsugu et al. May 2006 B2
7046531 Zocchi et al. May 2006 B2
7053506 Alonso et al. May 2006 B2
7072194 Nayar et al. Jul 2006 B2
7079406 Kurokami et al. Jul 2006 B2
7087332 Harris Aug 2006 B2
7090509 Gilliland et al. Aug 2006 B1
7091707 Cutler Aug 2006 B2
7097516 Werner et al. Aug 2006 B2
7126053 Kurokami et al. Oct 2006 B2
7126294 Minami et al. Oct 2006 B2
7138786 Ishigaki et al. Nov 2006 B2
7148669 Maksimovic et al. Dec 2006 B2
7158359 Bertele et al. Jan 2007 B2
7158395 Deng et al. Jan 2007 B2
7174973 Lysaght Feb 2007 B1
7193872 Siri Mar 2007 B2
7218541 Price et al. May 2007 B2
7248946 Bashaw et al. Jul 2007 B2
7256566 Bhavaraju et al. Aug 2007 B2
7277304 Stancu et al. Oct 2007 B2
7281141 Elkayam et al. Oct 2007 B2
7282814 Jacobs Oct 2007 B2
7291036 Daily et al. Nov 2007 B1
RE39976 Schiff et al. Jan 2008 E
7336056 Dening et al. Feb 2008 B1
7348802 Kasanyal et al. Mar 2008 B2
7352154 Cook Apr 2008 B2
7371963 Suenaga et al. May 2008 B2
7372712 Stancu et al. May 2008 B2
7385380 Ishigaki et al. Jun 2008 B2
7385833 Keung Jun 2008 B2
7394237 Chou et al. Jul 2008 B2
7420815 Love Sep 2008 B2
7435134 Lenox Oct 2008 B2
7435897 Russell Oct 2008 B2
7471014 Lum et al. Dec 2008 B2
7504811 Watanabe et al. Mar 2009 B2
7589437 Henne et al. Sep 2009 B2
7600349 Liebendorfer Oct 2009 B2
7602080 Hadar et al. Oct 2009 B1
7605498 Ledenev et al. Oct 2009 B2
7612283 Toyomura et al. Nov 2009 B2
7646116 Batarseh et al. Jan 2010 B2
7719140 Ledenev et al. May 2010 B2
7748175 Liebendorfer Jul 2010 B2
7759575 Jones et al. Jul 2010 B2
7763807 Richter Jul 2010 B2
7780472 Lenox Aug 2010 B2
7782031 Qiu et al. Aug 2010 B2
7783389 Yamada et al. Aug 2010 B2
7787273 Lu et al. Aug 2010 B2
7804282 Bertele Sep 2010 B2
7812701 Lee et al. Oct 2010 B2
7839022 Wolfs Nov 2010 B2
7843085 Ledenev et al. Nov 2010 B2
7868599 Rahman et al. Jan 2011 B2
7880334 Evans et al. Feb 2011 B2
7893346 Nachamkin et al. Feb 2011 B2
7900361 Adest et al. Mar 2011 B2
7919952 Fahrenbruch Apr 2011 B1
7919953 Porter et al. Apr 2011 B2
7925552 Tarbell et al. Apr 2011 B2
7944191 Xu May 2011 B2
7948221 Watanabe et al. May 2011 B2
7952897 Nocentini et al. May 2011 B2
7960650 Richter et al. Jun 2011 B2
7960950 Glovinsky Jun 2011 B2
8003885 Richter et al. Aug 2011 B2
8004116 Ledenev et al. Aug 2011 B2
8004117 Adest et al. Aug 2011 B2
8013472 Adest et al. Sep 2011 B2
8058747 Avrutsky et al. Nov 2011 B2
8058752 Erickson, Jr. et al. Nov 2011 B2
8077437 Mumtaz et al. Dec 2011 B2
8093756 Porter et al. Jan 2012 B2
8093757 Wolfs Jan 2012 B2
8102144 Capp et al. Jan 2012 B2
8111052 Glovinsky Feb 2012 B2
8138914 Wong et al. Mar 2012 B2
8204709 Presher, Jr. et al. Jun 2012 B2
8289742 Adest et al. Oct 2012 B2
8415937 Hester Apr 2013 B2
8436592 Saitoh May 2013 B2
20010023703 Kondo et al. Sep 2001 A1
20010034982 Nagao et al. Nov 2001 A1
20020044473 Toyomura et al. Apr 2002 A1
20020056089 Houston May 2002 A1
20030058593 Bertele et al. Mar 2003 A1
20030066076 Minahan Apr 2003 A1
20030075211 Makita et al. Apr 2003 A1
20030080741 LeRow et al. May 2003 A1
20030214274 Lethellier Nov 2003 A1
20040041548 Perry Mar 2004 A1
20040061527 Knee Apr 2004 A1
20040125618 De Rooij et al. Jul 2004 A1
20040140719 Vulih et al. Jul 2004 A1
20040169499 Huang et al. Sep 2004 A1
20040201279 Templeton Oct 2004 A1
20040201933 Blanc Oct 2004 A1
20040246226 Moon Dec 2004 A1
20050002214 Deng et al. Jan 2005 A1
20050005785 Poss et al. Jan 2005 A1
20050017697 Capel Jan 2005 A1
20050057214 Matan Mar 2005 A1
20050057215 Matan Mar 2005 A1
20050068820 Radosevich et al. Mar 2005 A1
20050099138 Wilhelm May 2005 A1
20050103376 Matsushita et al. May 2005 A1
20050105224 Nishi May 2005 A1
20050121067 Toyomura et al. Jun 2005 A1
20050162018 Realmuto et al. Jul 2005 A1
20050172995 Rohrig et al. Aug 2005 A1
20050226017 Kotsopoulos et al. Oct 2005 A1
20050281064 Olsen et al. Dec 2005 A1
20060001406 Matan Jan 2006 A1
20060017327 Siri et al. Jan 2006 A1
20060034106 Johnson Feb 2006 A1
20060038692 Schnetker Feb 2006 A1
20060053447 Krzyzanowski et al. Mar 2006 A1
20060066349 Murakami Mar 2006 A1
20060068239 Norimatsu et al. Mar 2006 A1
20060108979 Daniel et al. May 2006 A1
20060113843 Beveridge Jun 2006 A1
20060113979 Ishigaki et al. Jun 2006 A1
20060118162 Saelzer et al. Jun 2006 A1
20060132102 Harvey Jun 2006 A1
20060149396 Templeton Jul 2006 A1
20060162772 Presher et al. Jul 2006 A1
20060163946 Henne et al. Jul 2006 A1
20060171182 Siri et al. Aug 2006 A1
20060174939 Matan Aug 2006 A1
20060185727 Matan Aug 2006 A1
20060192540 Balakrishnan et al. Aug 2006 A1
20060208660 Shinmura et al. Sep 2006 A1
20060227578 Datta et al. Oct 2006 A1
20060237058 McClintock et al. Oct 2006 A1
20070013349 Bassett Jan 2007 A1
20070044837 Simburger et al. Mar 2007 A1
20070075711 Blanc et al. Apr 2007 A1
20070081364 Andreycak Apr 2007 A1
20070147075 Bang Jun 2007 A1
20070159866 Siri Jul 2007 A1
20070164612 Wendt et al. Jul 2007 A1
20070164750 Chen et al. Jul 2007 A1
20070165347 Wendt et al. Jul 2007 A1
20070205778 Fabbro et al. Sep 2007 A1
20070227574 Cart Oct 2007 A1
20070236187 Wai et al. Oct 2007 A1
20070247877 Kwon et al. Oct 2007 A1
20070273342 Kataoka et al. Nov 2007 A1
20070290636 Beck et al. Dec 2007 A1
20080024098 Hojo Jan 2008 A1
20080080177 Chang Apr 2008 A1
20080088184 Tung et al. Apr 2008 A1
20080097655 Hadar et al. Apr 2008 A1
20080106250 Prior et al. May 2008 A1
20080115823 Kinsey May 2008 A1
20080136367 Adest et al. Jun 2008 A1
20080143188 Adest et al. Jun 2008 A1
20080143462 Belisle et al. Jun 2008 A1
20080144294 Adest et al. Jun 2008 A1
20080147335 Adest et al. Jun 2008 A1
20080150366 Adest et al. Jun 2008 A1
20080164766 Adest et al. Jul 2008 A1
20080179949 Besser et al. Jul 2008 A1
20080218152 Bo Sep 2008 A1
20080236647 Gibson et al. Oct 2008 A1
20080236648 Klein et al. Oct 2008 A1
20080238195 Shaver et al. Oct 2008 A1
20080246460 Smith Oct 2008 A1
20080246463 Sinton et al. Oct 2008 A1
20080252273 Woo et al. Oct 2008 A1
20080303503 Wolfs Dec 2008 A1
20090039852 Fishelov et al. Feb 2009 A1
20090066399 Chen et al. Mar 2009 A1
20090073726 Babcock Mar 2009 A1
20090084570 Gherardini et al. Apr 2009 A1
20090097172 Bremicker et al. Apr 2009 A1
20090102440 Coles Apr 2009 A1
20090140715 Adest et al. Jun 2009 A1
20090141522 Adest et al. Jun 2009 A1
20090145480 Adest et al. Jun 2009 A1
20090146667 Adest et al. Jun 2009 A1
20090146671 Gazit Jun 2009 A1
20090147554 Adest et al. Jun 2009 A1
20090184746 Fahrenbruch Jul 2009 A1
20090190275 Gilmore et al. Jul 2009 A1
20090206666 Sella et al. Aug 2009 A1
20090224817 Nakamura et al. Sep 2009 A1
20090237042 Glovinski Sep 2009 A1
20090237043 Glovinsky Sep 2009 A1
20090242011 Proisy et al. Oct 2009 A1
20090273241 Gazit et al. Nov 2009 A1
20090282755 Abbott et al. Nov 2009 A1
20090284998 Zhang et al. Nov 2009 A1
20090322494 Lee Dec 2009 A1
20100001587 Casey et al. Jan 2010 A1
20100052735 Burkland et al. Mar 2010 A1
20100085670 Palaniswami et al. Apr 2010 A1
20100124027 Handelsman et al. May 2010 A1
20100127571 Hadar et al. May 2010 A1
20100139743 Hadar et al. Jun 2010 A1
20100176773 Capel Jul 2010 A1
20100181957 Goeltner Jul 2010 A1
20100214808 Rodriguez Aug 2010 A1
20100244575 Coccia et al. Sep 2010 A1
20100269430 Haddock Oct 2010 A1
20100277001 Wagoner Nov 2010 A1
20100282290 Schwarze et al. Nov 2010 A1
20100294528 Sella et al. Nov 2010 A1
20100294903 Shmukler et al. Nov 2010 A1
20100297860 Shmukler et al. Nov 2010 A1
20100301991 Sella et al. Dec 2010 A1
20100308662 Schatz et al. Dec 2010 A1
20110006743 Fabbro Jan 2011 A1
20110037600 Takehara et al. Feb 2011 A1
20110043172 Dearn Feb 2011 A1
20110079263 Avrutsky Apr 2011 A1
20110084553 Adest et al. Apr 2011 A1
20110114154 Lichy et al. May 2011 A1
20110121652 Sella et al. May 2011 A1
20110125431 Adest et al. May 2011 A1
20110133552 Binder et al. Jun 2011 A1
20110140536 Adest et al. Jun 2011 A1
20110181251 Porter et al. Jul 2011 A1
20110181340 Gazit Jul 2011 A1
20110210611 Ledenev et al. Sep 2011 A1
20110254372 Haines et al. Oct 2011 A1
20110260866 Avrutsky et al. Oct 2011 A1
20110267859 Chapman Nov 2011 A1
20110271611 Maracci et al. Nov 2011 A1
20110273015 Adest et al. Nov 2011 A1
20110273016 Adest et al. Nov 2011 A1
20110285205 Ledenev et al. Nov 2011 A1
20110290317 Naumovitz et al. Dec 2011 A1
20110291486 Adest et al. Dec 2011 A1
20110316346 Porter et al. Dec 2011 A1
20120007613 Gazit Jan 2012 A1
20120019966 DeBoer Jan 2012 A1
20120032515 Ledenev et al. Feb 2012 A1
20120081009 Shteynberg et al. Apr 2012 A1
20120091810 Aiello et al. Apr 2012 A1
Foreign Referenced Citations (88)
Number Date Country
1309451 Aug 2001 CN
19737286 Mar 1999 DE
102005030907 Jan 2007 DE
102008057874 May 2010 DE
419093 Mar 1991 EP
420295 Apr 1991 EP
604777 Jul 1994 EP
756178 Jan 1997 EP
827254 Mar 1998 EP
1039621 Sep 2000 EP
1330009 Jul 2003 EP
1503490 Feb 2005 EP
1531542 May 2005 EP
1531545 May 2005 EP
1657557 May 2006 EP
1657797 May 2006 EP
1887675 Feb 2008 EP
2048679 Apr 2009 EP
2315328 Apr 2011 EP
2393178 Dec 2011 EP
2249147 Mar 2006 ES
2249149 Mar 2006 ES
2476508 Jun 2011 GB
2480015 Nov 2011 GB
2480015 Nov 2011 GB
61065320 Apr 1986 JP
8009557 Jan 1996 JP
11041832 Feb 1999 JP
11103538 Apr 1999 JP
11206038 Jul 1999 JP
11289891 Oct 1999 JP
11318042 Nov 1999 JP
2000339044 Dec 2000 JP
2002300735 Oct 2002 JP
2003124492 Apr 2003 JP
2003134667 May 2003 JP
2004194500 Jul 2004 JP
2004260944 Sep 2004 JP
2004334704 Nov 2004 JP
2005192314 Jul 2005 JP
2007058845 Mar 2007 JP
9313587 Jul 1993 WO
9613093 May 1996 WO
9823021 May 1998 WO
0000839 Jan 2000 WO
0021178 Apr 2000 WO
0075947 Dec 2000 WO
0231517 Apr 2002 WO
03050938 Jun 2003 WO
03071655 Aug 2003 WO
2004023278 Mar 2004 WO
2004090993 Oct 2004 WO
2004107543 Dec 2004 WO
2005076444 Aug 2005 WO
2005076445 Aug 2005 WO
2006005125 Jan 2006 WO
2006007198 Jan 2006 WO
2006078685 Jul 2006 WO
2007006564 Jan 2007 WO
2007048421 May 2007 WO
2007073951 Jul 2007 WO
2007084196 Jul 2007 WO
2007090476 Aug 2007 WO
2007113358 Oct 2007 WO
2008008528 Jan 2008 WO
2008125915 Oct 2008 WO
2008132551 Nov 2008 WO
2008132553 Nov 2008 WO
2008142480 Nov 2008 WO
2009007782 Jan 2009 WO
2009046533 Apr 2009 WO
2009051853 Apr 2009 WO
2009118682 Oct 2009 WO
2009118683 Oct 2009 WO
2009073868 Nov 2009 WO
2009136358 Nov 2009 WO
2010002960 Jan 2010 WO
2010065043 Jun 2010 WO
2010065388 Jun 2010 WO
2010072717 Jul 2010 WO
2010078303 Jul 2010 WO
2010094012 Aug 2010 WO
2010134057 Nov 2010 WO
2011011711 Jan 2011 WO
2011017721 Feb 2011 WO
2011023732 Mar 2011 WO
2011059067 May 2011 WO
2011074025 Jun 2011 WO
Non-Patent Literature Citations (123)
Entry
QT Technical Application Papers, “ABB Circuit-Breakers for Direct current Applications”, ABB SACE S.p.A., An ABB Group Coupany, L.V. Breakers, Via Baioni, 35, 24123 Bergamo-Italy, Tel.: +39 035.395.111—Telefax: °39 035.395.306-433, Sep. 2007.
Woyte, et al., “Mains Monitoring and Protection in a European Context”, 17th European Photovoltaic Solar Energy Conference and Exhibition, Munich, Germany, Oct. 22-26, 2001, Achim, Woyte, et al., pp. 1-4.
“Implementation and testing of Anti-Islanding Algorithms for IEEE 929-2000 Compliance of Single Phase Photovoltaic Inverters”, Raymond M. Hudson, Photovoltaic Specialists Conference, 2002. Conference Record of the Twenty-Ninth IEEE, May 19-24, 2002.
Fairchild Semiconductor, Application Note 9016, IGBT Basics 1, by K.S. Oh Feb. 1, 2001.
“Disconnect Switches in Photovoltaic Applications”, ABB, Inc., Low Voltage Control Products & Systems, 1206 Hatton Road, Wichita Falls, TX 86302, Phone 888-385-1221, 940-397-7000, Fax: 940-397-7085, 1SXU301197B0201, Nov. 2009.
Walker, “A DC Circuit Breaker for an Electric Vehicle Battery Pack”, Australasian Universities Power Engineering Conference and IEAust Electric Energy Conference, Sep. 26-29, 1999.
Combined Search and Examination Report for GB1018872.0 dated Apr. 15, 2011, 2 pages.
International Search Report and Opinion of International Patent Application PCT/2009/051221, dated Oct. 19, 2009.
International Search Report and Opinion of International Patent Application PCT/2009/051222, dated Oct. 7, 2009.
Communication in EP07874025.5 dated Aug. 17, 2011.
IPRP for PCT/IB2008/055095 dated Jun. 8, 2010, with Written Opinion.
ISR for PCT/IB2008/055095 dated Apr. 30, 2009.
ISR for PCT/IL07/01064 dated Mar. 25, 2008.
IPRP for PCT/IB2007/004584 dated Jun. 10, 2009, with Written Opinion.
IPRP for PCT/IB2007/004591 dated Jul. 13, 2010, with Written Opinion.
IPRP for PCT/IB2007/004643 dated Jun. 10, 2009, with Written Opinion.
Written Opinion for PCT/IB2008/055092 submitted with IPRP dated Jun. 8, 2010.
IPRP for PCT/US2008/085754 dated Jun. 8, 2010, with Written Opinion dated Jan. 21, 2009.
IPRP for PCT/US20081085755 dated Jun. 8, 2010, with Written Opinion dated Jan. 20, 2009.
IPRP for PCT/IB2009/051221 dated Sep. 28, 2010, with Written Opinion.
IPRP for PCT/IB2009/051222 dated Sep. 28, 2010, with Written Opinion.
IPRP for PCT/IB2009/051831 dated Nov. 9, 2010, with Written Opinion.
IPRP for PCT/US2008/085736 dated Jun. 7, 2011, with Written Opinion.
IPRP for PCT/IB2010/052287 dated Nov. 22, 2011, with Written Opinion.
ISR for PCT/IB2010/052413 dated Sep. 7, 2010.
UK Intellectual Property Office, Application No. GB1109618.7, Patents Act 1977, Examination Report Under Section 18(3), Sep. 16, 2011.
UK Intellectual Property Office, Patents Act 1977: Patents Rules Notification of Grant: Patent Serial No. GB2480015, Nov. 29, 2011.
Walker, et al. “PV String Per-Module Maximim Power Point Enabling Converters”, School of Information Technology and Electrical Engineering The Univiversity of Queensland, Sep. 28, 2003.
Walker, “Cascaded DC-DC Converter Connection of Photovoltaic Modules”, 33rd Annual IEEE Power Electronics Specialists Conference. PESC 2002. Conference Proceedings. CAIRNS, Queensland, Australia, Jun. 23-27, 2002; [Annual Power Electronics Specialists Conference], New York, NY: IEEE US, vol. 1, Jun. 23, 2002, pp. 24-29, XP010596060 ISBN: 978-0-7803-7262-7, figure 1.
Baggio, “Quasi-ZVS Activity Auxiliary Commutation Circuit for Two Switches Forward Converter”, 32nd Annual IEEE Power Electronics Specialists Conference. PESC 2001. Conference Proceedings. Vancouver, Canada, Jun. 17-21, 2001; [Annual Power Electronics Specialists Conference] New York, NY: IEEE, US.
IIic, “Interleaved Zero-Current-Transition Buck Converter”, IEEE Transactions on Industry Applications, IEEE Service Center, Piscataway, NJ, US, vol. 43, No. 6, Nov. 1, 2007, pp. 1619-1627, XP011197477 ISSN: 0093-9994, pp. 1619-1922.
Lee: “Novel Zero-Voltage-Transition and Zero-Current-Transition Pulse-Width-Modulation Converters”, Power Electronics Specialists Conference, 1997, PESC '97, Record, 28th Annual IEEE St. Louis, MO, USA, Jun. 22-27, 1997, New York, NY, USA IEEE, US, vol. 1, Jun. 22, 1997, pp. 233-239, XP010241553, ISBN: 978-0-7803-3840-1, pp. 233-236.
Sakamoto, “Switched Snubber for High-Frequency Switching Converters”, Electronics & Communications in Japan, Part 1—Communications, Wiley, Hoboken, NJ, US, vol. 76, No. 2, Feb. 1, 1993, pp. 30-38, XP000403018 ISSN: 8756-6621, pp. 30-35.
Duarte, “A Family of ZVX-PWM Active-Clamping DC-to-DC Converters: Synthesis, Analysis and Experimentation”, Telecommunications Energy Conference, 1995, INTELEC '95, 17th International The Hague, Netherlands, Oct. 29-Nov. 1, 1995, New York, NY, US, IEEE, US, Oct. 29, 1995, pp. 502-509, XP010161283 ISBN: 978-0-7803-2750-4 p. 503-504.
IPRP for PCT/IL2007/001064 dated Mar. 17, 2009, with Written Opinion dated Mar. 25, 2008.
IPRP for PCT/IB2007/004586 dated Jun. 10, 2009, with Written Opinion.
Gao, et al., “Parallel-Connected Solar PV System to Address Partial and Rapidly Fluctuating Shadow Conditions”, IEEE Transactions on Industrial Electronics, vol. 56, No. 5, May 2009, pp. 1548-1556.
IPRP for PCT/IB2007/004610 dated Jun. 10, 2009, with Written Opinion.
Ciobotaru, et al., Control of single-stage single-phase PV inverter, Aug. 7, 2006.
International Search Report and Written Opinion for PCT/IB20071004591 dated Jul. 5, 2010.
European Communication for EP07873361.5 dated Jul. 12, 2010.
European Communication for EP07874022.2 dated Oct. 18, 2010.
European Communication for EP07875148.4 dated Oct. 18, 2010.
Chen, et al., “A New Low-Stress Buck-Boost Converter for Universal-Input PFC Applications”, IEEE Applied Power Electronics Converence, Feb. 2001, Colorado Power Electronics Center Publications.
Chen, et al., “Buck-Boost PWM Converters Having Two Independently Controlled Switches”, IEEE Power Electronics Specialists Converence, Jun. 2001, Colorado Power Electronics Center Publications.
Esram, et al., “Comparison of Photovoltaic Array Maximum Power Point Tracking Techniques”, IEEE Transactions on Energy Conversion, vol. 22, No. 2, Jun. 2007, pp. 439-449.
Walker, et al., “PhotoVoltaic DC-DC Module Integrated Converter for Novel Cascaded and Bypass Grid Connection Topologies-Design and Optimisation”, 37th IEEE Power Electronics Specialists Converence, Jun. 18-22, 2006, Jeju, Korea.
Geoffrey R. Walker Affidavit re: U.S. Appl. No. 11/950,307.
Geoffrey R. Walker Affidavit re: U.S. Appl. No. 11/950,271.
International Search Report for PCT/IB2007/004610 dated Feb. 23, 2009.
International Search Report for PCT/IB2007/004584 dated Jan. 28, 2009.
International Search Report for PCT/IB2007/004586 dated Mar. 5, 2009.
International Search Report for PCT/IB2007/004643 dated Jan. 30, 2009.
International Search Report for PCT/US2008/085736 dated Jan. 28, 2009.
International Search Report for PCT/US2008/085754 dated Feb. 9, 2009.
International Search Report for PCT/US2008/085755 dated Feb. 3, 2009.
Kajihara, et al., “Model of Photovoltaic Cell Circuits Under Partial Shading”, 2005 IEEE, pp. 866-870.
Knaupp, et al., “Operation of a 10 KW PV Façade with 100 W AC Photovoltaic Modules”, 1996 IEEE, 25th PVSC, May 13-17, 1996, pp. 1235-1238, Washington, DC.
Alonso, et al., “Cascaded H-Bridge Multilevel Converter for Grid Connected Photovoltaic Generators with Independent Maximum Power Point Tracking of Each Solor Array”, 2003 IEEE 34th, Annual Power Electronics Specialists Conference, Acapulco, Mexico, Jun. 15-19, 2003, pp. 731-735, vol. 2.
Myrzik, et al., “String and Module Integrated Inverters for Single-Phase Grid Connected Photovoltaic Systems—A Review”, Power Tech Conference Proceedings, 2003 IEEE Bologna, Jun. 23-26, 2003, p. 8, vol. 2.
Chen, et al., “Predictive Digital Current Programmed Control”, IEEE Transactions on Power Electronics, vol. 18, Issue 1, Jan. 2003.
Wallace, et al., “DSP Controlled Buck/Boost Power Factor Correction for Telephony Rectifiers”, Telecommunications Energy Conference 2001, INTELEC 2001, Twenty-Third International, Oct. 18, 2001, pp. 132-138.
Alonso, “A New Distributed Converter Interface for PV Panels”, 20th European Photovoltaic Solar Energy Conference, Jun. 6-10, 2005, Barcelona, Spain, pp. 2288-2291.
Alonso, “Experimental Results of Intelligent PV Module for Grid-Connected PV Systems”, 21st European Photovoltaic Solar Energy Conference, Sep. 4-8, 2006, Dresden, Germany, pp. 2297-2300.
Enslin, “Integrated Photovoltaic Maximum Power Point Tracking Converter”, IEEE Transactions on Industrial Electronics, vol. 44, No. 6, Dec. 1997, pp. 769-773.
Lindgren, “Topology for Decentralised Solar Energy Inverters with a Low Voltage AC-Bus”, Chalmers University of Technology, Department of Electrical Power Engineering, EPE '99—Lausanne.
Nikraz, “Digital Control of a Voltage Source Inverter in a Photovoltaic Applications”, 2004 35th Annual IEEE Power Electronics Specialists Conference, Aachen, Germany, 2004, pp. 3266-3271.
Orduz, “Evaluation Test Results of a New Distributed MPPT Converter”, 22nd European Photovoltaic Solar Energy Conference, Sep. 3-7, 2007, Milan, Italy.
Palma, “A Modular Fuel Cell, Modular DC-DC Converter Concept for High Performance and Enhanced Reliability”, IEEE 2007, pp. 2633-2638.
Quaschning, “Cost Effectiveness of Shadow Tolerant Photovoltaic Systems”, Berlin University of Technology, Institute of Electrical Energy Technology, Renewable Energy Section. EuroSun '96, pp. 819-824.
Roman, “Intelligent PV Module for Grid-Connected PV Systems”, IEEE Transactions on Industrial Electronics, vol. 52, No. 4, Aug. 2006, pp. 1066-1073.
Roman, “Power Line Communications in Modular PV Systems”, 20th European Photovoltaic Solar Energy Conference, Jun. 6-10, 2005, Barcelona, Spain, pp. 2249-2252.
Uriarte, “Energy Integrated Management System for PV Applications”, 20th European Photovoltaic Solar Energy Conference, Jun. 6-10, 2005, Barcelona, Spain, pp. 2292-2295.
Walker, “Cascaded DC-DC Converter Connection of Photovoltaic Modules”, IEEE Transactions on Power Electronics, vol. 19, No. 4, Jul. 2004, pp. 1130-1139.
Matsui, et al. “A New Maximum Photovoltaic Power Tracking Control Scheme Based on Power Equilibrium at DC Link”, IEEE, 1999, pp. 804-809.
Hou, et al., Application of Adaptive Algorithm of Solar Cell Battery Charger, Apr. 2004.
Stamenic, et al., “Maximum Power Point Tracking for Building Integrated Photovoltaic Ventilation Systems”, 2000.
International Preliminary Report on Patentability for PCT/IB2008/055092 dated Jun. 8, 2010.
International Search Report for PCT/IB2008/055092 dated Sep. 8, 2009.
International Search Report and Opinion of International Patent Application WO2009136358 (PCT/IB2009/051831), dated Sep. 16, 2009.
Informal Comments to the International Search Report dated Dec. 3, 2009.
PCT/IB2010/052287 International Search Report and Written Opinion dated Sep. 2, 2010.
UK Intellectual Property office, Combined Search and Examination Report for GB1100450.4 under Sections 17 and 18 (3), Jul. 14, 2011.
Jain, et al., “A Single-Stage Grid Connected Inverter Topology for Solar PV Systems with Maximum Power Point Tracking”, IEEE Transactions on Power Electronics, vol. 22, No. 5, Sep. 2007, pp. 1928-1940.
Lynch, et al., “Flexible DER Utility Interface System: Final Report”, Sep. 2004-May 2006, Northern Power Systems, Inc., Waitsfield, Vermont B. Kroposki, et al., National Renewable Energy Laboratory Golden, Colorado Technical Report NREL/TP-560-39876, Aug. 2006.
Schimpf, et al., “Grid Connected Converters for Photovoltaic, State of the Art, Ideas for improvement of Transformerless Inverters”, NORPIE/2008, Nordic Workshop on Power and Industrial Electronics, Jun. 9-11, 2008.
Sandia Report SAND96-2797 I UC-1290 Unlimited Release, Printed Dec. 1996, “Photovoltaic Power Systems and the National Electrical Code: Suggested Practices”, by John Wiles, Southwest Technology Development Instutte New Mexico State University Las Cruces, NM.
United Kingdom Intellectual Property Office, Combined Search and Examination Report Under Sections 17 and 18(3), GB1020862.7, dated Jun. 16, 2011.
IPRP PCT/IB2007/004610—date of issue Jun. 10, 2009.
Extended European Search Report—EP12176089.6—Mailing date: Nov. 8, 2012.
Gwon-Jong Yu et al: “Maximum power point tracking with temperature compensation of photovoltaic for air conditioning system with fuzzy controller”, 19960513; 19960513-19960517, May 13, 1996, pp. 1429-1432, XP010208423.
Extended European Search Report—EP12177067.1—Mailing Date: Dec. 7, 2012.
GB Combined Search and Examination Report—GB1200423.0—Mailing date: Apr. 30, 2012.
GB Combined Search and Examination Report—GB1201499.9—Mailing date: May 28, 2012.
GB Combined Search and Examination Report—GB1201506.1—Mailing date: May 22, 2012.
“Study of Energy Storage Capacitor Reduction for Single Phase PWM Rectifier”, Ruxi Wang et al., Virginia Polytechnic Institute and State University, Feb. 2009.
“Multilevel Inverters: A Survey of Topologies, Controls, and Applications”, JoséRodriguez et al., IEEE Transactions on Industrial Electronics, vol. 49, No. 4, Aug. 2002.
Extended European Search Report—EP 08878650.4—Mailing date: Mar. 28, 2013.
Satcon Solstice—Satcon Solstice 100 kW System Solution Sheet—2010.
John Xue, “PV Module Series String Balancing Converters”, University of Queensland—School of Infroamtion Technology & Electrical Engineering, Nov. 6, 2002.
Robert W. Erickson, “Future of Power Electronics for Photovoltaics”, IEEE Applied Power Electronics Conference, Feb. 2009.
GB Combined Search and Examination Report—GB1203763.6—Mailing date: Jun. 25, 2012.
Mohammad Reza Amini et al., “Quasi REsonant DC Link Inverter with a Simple Auxiliary Circuit”, Journal of Power Electronics, vol. 11, No. 1, Jan. 2011.
Khairy Fathy et al., “A Novel Quasi-Resonant Snubber-Assisted ZCS-PWM DC-DC Converter with High Frequency Link”, Journal of Power Electronics, vol. 7, No. 2, Apr. 2007.
Cheng K.W.E., “New Generation of Switched Capacitor Converters”, Department of Electrical Engineering, The Hong Kong Polytechnic University, Hung Hom, Hong Kong, Power Electronics Conference, 1998, PESC 98.
Per Karlsson, “Quasi Resonant DC Link Converters—Analysis and Design for a Battery Charger Application”, Universitetstryckeriet, Lund University, 1999, ISBN 91-88934-14-4.
Hsiao Sung-Hsin et al., “ZCS Switched-Capacitor Bidirectional Converters with Secondary Output Power Amplifier for Biomedical Applications”, Power Electronics Conference (IPEC) Jun. 21, 2010.
Yuang-Shung Lee et al.,“A Novel QR ZCS Switched-Capacitor Bidirectional Converter”, IEEE, 2007.
Antti Tolvanen et al., “Seminar on Solar Simulation Standards and Measurement Principles”, May 9th, 2006 Hawaii.
J.A. Eikelboom and M.J. Jansen, “Characterisation of PV Modules of New Generations—Results of tests and simulations”, Jun. 2000.
Yeong-Chau Kuo et al., “Novel Maximum-Power-Point-Tracking Controller for Photovoltaic Energy Conversion System”, IEEE Transactions on Industrial Electronics, vol. 48, No. 3, Jun. 2001.
C. Liu et al., “Advanced Algorithm for MPPT Control of Photovoltaic Systems”, Canadian Solar Buildings Conference, Montreal, Aug. 20-24, 2004.
Chihchiang Hua and Chihming Shen, “Study of Maximum Power Tracking Techniques and Control of DC/DC Converters for Photovoltaic Power System”, IEEE 1998.
Tore Skjellnes et al., “Load sharing for parallel inverters without communication”, Nordic Workshop in Power and Industrial Electronics, Aug. 12-14, 2002.
Giorgio Spiazzi at el., “A New Family of Zero-Current-Switching Variable Frequency dc-dc Converters”, IEEE 2000.
Nayar, C.V., M. Ashari and W.W.L Keerthiphala, “A Gridinteractive Photovoltaic Uninterruptible Power Supply System Using Battery Storage and a Back up Diesel Generator”, IEEE Transactions on Energy Conversion, vol. 15, No. 3, Sep. 2000, pp. 348?353.
Ph. Strauss et al., “AC coupled PV Hybrid systems and Micro Grids-state of the art and future trends”, 3rd World Conference on Photovoltaic Energy Conversion, Osaka, Japan May 11-18, 2003.
Nayar, C.V., abstract, Power Engineering Society Summer Meeting, 2000. IEEE, 2000, pp. 1280-1282 vol. 2.
D. C. Martins et al., “Analysis of Utility Interactive Photovoltaic Generation System using a Single Power Static Inverter”, Asian J. Energy Environ., vol. 5, Issue 2, (2004), pp. 115-137.
Rafael C. Beltrame et al., “Decentralized Multi String PV System With Integrated ZVT Cell”, Congresso Brasileiro de Automatica / 12 a Sep. 16, 2010, Bonito-MS.
Sergio Busquets-Monge et al., “Multilevel Diode-clamped Converter for Photovoltaic Generators With Independent Voltage Control of Each Solar Array”, IEEE Transactions on Industrial Electronics, Vol. 55, No. 7, Jul. 2008.
Soeren Baekhoej Kjaer et al., “A Review of Single-Phase Grid-Connected Inverters for Photovoltaic Modules”, IEEE Transactions on Industry Applications, vol. 41, No. 5, Sep./Oct. 2005.
Office Action—JP 2011-539491—Mailing date: Mar. 26, 2013.
Related Publications (1)
Number Date Country
20120319490 A1 Dec 2012 US
Provisional Applications (1)
Number Date Country
60992589 Dec 2007 US
Continuations (1)
Number Date Country
Parent 12329520 Dec 2008 US
Child 13596308 US