Various nanosecond pulsers are disclosed. In some embodiments, a nanosecond pulser may include one or more switch circuits including one or more solid state switches, a transformer, and an output. In some embodiments, the transformer may include a first transformer core, a first primary winding that is wound at least partially around a portion of the first transformer core, and a secondary winding wound at least partially around a portion of the first transformer core. In some embodiments, each of the one or more switch circuits are coupled with at least a portion of the first primary winding. In some embodiments, the output may be electrically coupled with the secondary winding and may output electrical pulses having a peak voltage greater than about 1 kilovolt and a rise time of less than 150 nanoseconds or less than 50 nanoseconds.
In some embodiments, the nanosecond pulser may include a pulse compression circuit disposed between the secondary winding and the output. The pulse compression circuit may include at least a saturable inductor arranged in series with the output of the secondary winding and a secondary capacitor arranged in parallel with the output of the secondary winding. The saturable inductor, for example, may be arranged in series with the output and the secondary capacitor is arranged in parallel with the output.
In some embodiments, the first primary winding may include a plurality of primary windings wound at least partially around a portion of the first transformer core, and wherein each of the plurality of switch circuits are coupled with a subset of the primary windings.
In some embodiments, the nanosecond pulser may include a second one or more switch circuit, a second transformer core and a second primary winding wound at least partially around a portion of the second transformer core. One or more of the second one or more switch circuits, for example, may be coupled with the second primary windings. The second primary winding, for example, may be wound at least partially around a portion of the second transformer core. In some embodiments, more than two cores may be used wherein the secondary winding wraps around each core and a set of primary windings coupled with switch circuitry around coupled with one of the cores.
In some embodiments, the first transformer core may include a toroid shape having a hole in the first transformer core. In some embodiments, the secondary winding may pass through the hole in the first transformer core and the first primary winding may pass through the hole in the first transformer core.
In some embodiments, the nanosecond pulser may include a circuit board having a top surface and a plurality of holes. In some embodiments, the first primary winding may terminate on the top surface of the first circuit board in two locations. In some embodiments, the second primary winding may pass through at least two of the plurality of holes for each winding.
A nanosecond pulser is disclosed that includes a first switch circuit; a first transformer core; a first primary winding electrically coupled with the first switch circuit and wrapped at least partially around the first transformer core; a second switch circuit; a second transformer core disposed adjacent to the first transformer core; a second primary winding electrically coupled with the second switch circuit and wrapped at least partially around the second transformer core; a secondary winding wrapped around the first transformer core and the second transformer core; and an output coupled with the secondary winding.
In some embodiments, the output may provide electrical pulses having a peak voltage greater than about 1 kilovolt and a rise time of less than 150 nanoseconds or less than 50 nanoseconds.
In some embodiments the nanosecond pulser may include a circuit board disposed between the first transformer core and the second transformer core.
In some embodiments, the first transformer core comprises a toroid shape with a hole and the second transformer core comprises a toroid shape with a hole. In some embodiments, the circuit board may include a hole that is aligned with the hole of the first transformer and the hole of the second transformer. In some embodiments, the secondary winding may pass through the hole in the first transformer core, the hole in the second transformer core, and the hole in the circuit board. In some embodiments, the secondary winding may pass through the hole in the first transformer core, the hole in the second transformer core, and a different hole in the circuit board for each winding of the secondary winding.
In some embodiments, the first transformer core may include a toroid shape having a hole and a perimeter and the first transformer core is disposed on a top surface of the circuit board. In some embodiments, the first primary winding comprises a first plurality of windings that are electrically coupled with the circuit board near the perimeter of the first transformer core and near the hole of the first transformer core.
In some embodiments, the second transformer core comprises a toroid shape having a hole and a perimeter, and the second transformer core is disposed on a bottom surface of the circuit board. In some embodiments, the second primary winding comprises a second plurality of windings that are electrically coupled with the circuit board near the perimeter of the second transformer core and near the hole of the second transformer core.
In some embodiments, the nanosecond pulser may include a first circuit board and a second circuit board. The first transformer core may include a toroid shape with a hole and may be disposed on the first circuit board. The second transformer core may include a toroid shape with a hole and may be disposed on the second circuit board. The first circuit board, for example, may include a hole that is aligned with the hole of the first transformer and the hole of the second transformer. The second circuit board may include, for example, a hole that is aligned with the hole of the first transformer and the hole of the second transformer. The secondary winding may, for example, pass through the hole in the first transformer core, the hole in the second transformer core, the hole in the first circuit board and the hole in the second circuit board.
In some embodiments, the nanosecond pulser may include a pulse compression circuit disposed between the secondary winding and the output.
In some embodiments, the secondary winding may include a single conductor wrapped multiple times around the first transformer core and the second transformer core.
A nanosecond pulser is disclosed that includes one or more switch circuits including one or more solid state switches; a fast capacitor disposed in series with the switch circuit; a transformer comprising a first transformer core, a first primary winding wound at least partially around a portion of the first transformer core, each of the one or more switch circuits are coupled with at least a portion of the first primary winding; and a secondary winding wound at least partially around a portion of the first transformer core; and an output electrically coupled with the secondary winding that outputs electrical pulses having a peak voltage greater than about 1 kilovolt and a rise time of less than about 150 nanoseconds or 50 nanoseconds.
In some embodiments, any stray inductance associated with the connection between the one or more switch circuits and the fast capacitor is less than 50 nH. In some embodiments, any stray inductance associated with the connection between the fast capacitor and the transformer is less than 50 nH. In some embodiments, any stray inductance associated with the connection between the transformer and the one or more switch circuits is less than 50 nH.
These illustrative embodiments are mentioned not to limit or define the disclosure, but to provide examples to aid understanding thereof. Additional embodiments are discussed in the Detailed Description, and further description is provided. Advantages offered by one or more of the various embodiments may be further understood by examining this specification or by practicing one or more embodiments presented.
These and other features, aspects, and advantages of the present disclosure are better understood when the following Detailed Description is read with reference to the accompanying drawings.
A number of high voltage nanosecond pulsers are disclosed. In some embodiments, a nanosecond pulser may produce pulses with a voltage greater than 1 kilovolt and/or a rise time of less than 150 nanoseconds or less than 50 nanoseconds. In some embodiments, the high voltage nanosecond pulser may produce pulses with a programmable, controllable, and/or variable pulse width.
In some embodiments, the high voltage nanosecond pulser may include a plurality of switch circuits that may include one or more solid state switches coupled with a transformer. The transformer, for example, may include one or more transformer cores and a plurality of primary windings and one or more secondary windings. In some embodiments, the primary windings may be wrapped around a single transformer core and the secondary winding may be wrapped around more than one transformer core.
In some embodiments, the high voltage transformer may include a pulse compression circuit disposed between the transformer and the output that may decrease the rise time of a high voltage pulse.
The switch 106 may include any solid state switching device that can switch high voltages such as, for example, a solid state switch, an IGBT, an FET, a MOSFET, an SiC junction transistor, or a similar device. The switch 106 may include a collector 107 and an emitter 108. Various other components may be included with the switch circuit 105 in conjunction with the switch 106. A plurality of switch circuits 105 in parallel, in series, or some combination thereof may be coupled with the transformer circuit 115.
The switch circuit 105 may be coupled with or may include a fast capacitor 110, which may be used for energy storage. In some embodiments, more than one switch circuit 105 may be coupled with a fast capacitor 110. In some embodiments, the fast capacitor may be an energy storage capacitor. The fast capacitor 110 may have a capacitance value of about 1 μF, about 5 μF, between about 1 μF and about 5 μF, between about 100 nF and about 1,000 nF etc.
During switching of the switch 106, the energy in the fast capacitor 110 may be discharged to the primary winding of the transformer 116. Moreover, in some embodiments, the energy within the fast capacitor 110 may not be substantially drained during each switch cycle, which may allow for a higher pulse repetition frequency. For example, in one switch cycle 5%-50% of the energy stored within the fast capacitor 110 may be drained. As another example, in one switch cycle 10%-40% of the energy stored within the fast capacitor 110 may be drained. As yet another example, in one switch cycle 15%-25% of the energy stored within the fast capacitor 110 may be drained.
The switch circuit 105 and the fast capacitor 110 may be coupled with a transformer circuit 115. The transformer circuit 115, for example, may include a transformer 116, capacitors, inductors, resistors, other devices, or some combination thereof. The transformer 116 may include a transformer core having a central hole with a plurality of primary windings and a plurality of secondary windings wound around the transformer core. In some embodiments, there may be more primary windings than secondary windings. In some embodiments, the transformer core may be toroid shaped; the perimeter may be square, polygonal, oval, rectangular, etc.
The transformer circuit 115 may include stray capacitance and/or stray inductance. Stray capacitor 185 represents the transformer primary to secondary stray capacitance. Stray capacitor 190 represents the transformer secondary stray capacitance. Indicator 155 represents the primary stray inductance of the transformer, and inductor 160 represents the secondary stray inductance of the transformer.
In some embodiments, the transformer 116 may include a toroid shaped transformer core comprised of air, iron, ferret, soft ferret, Man, Nisan, hard ferret, powder, nickel-iron alloys, amorphous metal, glassy metal, or some combination thereof.
In some embodiments, the transformer primary to secondary stray capacitance and/or the transformer secondary stray capacitance may be below about 1 pF, below about 100 pF, about 10 pF, about 20 pF, etc. In some embodiments, the sum of the secondary stray capacitance and the primary stray capacitance may be less than about 50 pF, 75 pF, 100 pF, 125 pF, 135 pF, etc.
In some embodiments, the secondary stray inductance of the transformer and/or the primary stray inductance of the transformer may have an inductance value, for example, of 1 nH, 2 nH, 5 nH, 10 nH, 20 nH, between about 1 nH and 1,000 nH, less than about 100 nH, less than about 500 nH, etc.
In some embodiments, a nanosecond pulser may be designed with low stray capacitance. For example, the sum of all stray capacitance within the nanosecond pulser may be below 500 pF. This may include transformer circuit stray capacitance, switch circuit stray capacitance, other stray capacitance, or some combination thereof.
The primary windings of the transformer 116 can include a plurality of single windings. For example, each of the primary windings may include a single wire that wraps around at least a substantial portion of the toroid shaped transformer core and terminate on either side of the transformer core. As another example, one end of the primary windings may terminate at the collector 107 of the switch 106 and another end of the primary windings may terminate at the fast capacitor 110. Any number of primary windings in series or in parallel may be used depending on the application. For example, about 10, 20, 40, 50, 100, 116, 200, 250, 300, etc. or more windings may be used for the primary winding.
In some embodiments, a single primary winding may be coupled with a single switch circuit 105. In some embodiments, a plurality of switch circuits may be included and each of the plurality of switch circuits may be coupled with one of a plurality of primary windings. The plurality of windings may be arranged in parallel about the transformer core. In some embodiments, this arrangement may be used to reduce stray inductance in the nanosecond pulser 100.
The secondary winding may include a single wire wrapped around the transformer core any number of times. For example, the secondary winding may include 5, 10, 20, 30, 40, 50, 100, etc. windings. In some embodiments, the secondary winding may wrap around the transformer core and through portions of the circuit board (e.g., as shown in
In some embodiments, a pulse compression circuit 195 may be coupled with the transformer circuit 115. The pulse compression circuit 195, for example, may include a saturable inductor 198 and a secondary capacitor 196. The saturable inductor 198, for example, may have an inductance value of less than 100 nH, 10 μH, 100 μH, etc. prior to saturation and after saturation the inductance value may be less than 10 nH, 100 nH etc. The secondary capacitor 196, for example, may have a capacitance of less than about 10 pF, 100 pF, 1 nF, 100 nF, etc. The pulse compression circuit 195 may be coupled with the load 120. In some embodiments, a plurality of pulse compression modules may be coupled in series with the transformer module 115.
In some embodiments, the saturable inductor 198 may be arranged in parallel with the secondary winding of the transformer 116. In some embodiments, the secondary capacitor 196 may be arranged in parallel with the secondary winding of the transformer 116. In some embodiments, the saturable inductor 198 may be arranged in series with the load 120. In some embodiments, the secondary capacitor 196 may be arranged in parallel with the load 120. In some embodiments, the saturable inductor 198 may be arranged in parallel with the secondary capacitor 196.
In some embodiments, the pulse compression circuit 195 may reduce a rise time of a signal from the transformer circuit 115 to a signal with a lower rise time at the load 120. For example, the rise time of a signal at the load 120 may be less than 100 ns, 10 ns, 1 ns, etc. with a voltage greater than 1 kilovolt, 10 kilovolt, etc. and/or with a pulse repetition rate greater than 20 kHz, 50 kHz, 100 kHz, 500 kHz, 1 MHz, 10 MHz, etc. In some embodiments, the rise time produced by the transformer circuit 115 may be reduced by more than 2 times, 5 times, 10 times, 15 times, 20 times, etc.
In some embodiments, the nanosecond pulser 100 with the pulse compression circuit 195 may produce an output pulse with a pulse repetition frequency greater than 1 kHz, 10 kHz, 100 kHz, 1 MHz, 10 MHz, etc. This can be accomplished at least in part, for example, because the pulse compression circuit 195 is driven by the switching circuit 105 and transformer circuit 115 with a high pulse repetition frequency and a high power.
In some embodiments, the pulse compression circuit 195 may drive the load 120 with low impedance such as, for example, impedance below 1,000 Ohms, 500 Ohms, 250 Ohms, 100 Ohms, 50 Ohms, 10 Ohms, etc. In some embodiments, the pulse compression circuit 195 may drive the load 120 with a fast rise time without requiring multiple pulse compression circuits. In some embodiments, multiple pulse compression circuits may be included in series with the pulse compression circuit 195.
In some embodiments, a single pulse compression circuit 195 may be coupled with the transformer circuit 115 and the load 120.
In some embodiments, a plurality of pulse compression circuits may be coupled with the transformer circuit 115 and the load 120 in series and/or in parallel. Each pulse compression circuit 195 may include capacitors and/or inductors of different sizes.
In some embodiments, the value of the saturable inductor 198 and the value of the secondary capacitor 196 may be selected to allow the secondary capacitor 196 to be fully charged when the saturable inductor 198 becomes saturated. The transformer circuit 115 may charge the secondary capacitor 196 while it simultaneously saturates the saturable inductor 198. When the saturable inductor 198 becomes saturated the secondary capacitor 196 may be fully charged. Once the saturable inductor 198 saturates, the energy stored in the secondary capacitor 196 may be discharged through the saturable inductor 198 to the load 120. This may result in a fast rise time. In addition, energy from the transformer circuit 116 may continue to drive the pulse compression circuit 195 with enough energy (or voltage) to keep the saturable inductor 198 saturated and allowing the output pulse to have a pulse width as long as required.
The primary windings of the transformer 116 shown in
In some embodiments, a single primary winding may be coupled with a single switch circuit 105 and/or a single fast capacitor 110. In some embodiments, a plurality of switch circuits 105 and/or a plurality of fast capacitors 110 may be included and each of the plurality of switch circuits may be coupled with one of a plurality of primary windings. The plurality of windings may be arranged in parallel about the transformer core. In some embodiments, this arrangement may be used to reduce stray inductance in the nanosecond pulser 100.
The one or more continuous secondary windings may include an electrical conductor (or wire) that wraps around the toroid shaped transformer core more than once. In some embodiments, the number of secondary windings may be fewer than the number of primary windings. In yet other embodiments, the number of secondary windings may be greater than the number of primary windings.
In some embodiments multiple circuit boards with toroid shaped transformer cores may be stacked together and the secondary windings may wrap around the transformer cores of each board as shown in
Each of the first plurality of primary windings 415 may be wound one or more times around the first transformer core 410. For example, each of the first plurality of primary windings 415 may terminate on the top of the circuit board 405 outside the outer perimeter of the first transformer core 410 and on the top of the circuit board 405 within the hole within the toroid shaped first transformer core 410. Alternatively or additionally, each winding of the first plurality of primary windings 415 may be wound one or more times around the first transformer core 410. The first plurality of primary windings 415 may be coupled with one or more switch circuits (e.g., switch circuits 105 shown in
Each of the second plurality of primary windings 440 is wound one or more times around the second transformer core 435. For example, each of the second plurality of primary windings 440 terminate on the bottom of the circuit board 405 outside the outer perimeter of the second transformer core 435 and on the bottom of the circuit board 405 within the hole within the toroid shaped second transformer core 435. Alternatively or additionally, each winding of the second plurality of primary windings 440 may be wound one or more times around the second transformer core 435. The second plurality of primary windings 440 may be coupled with a second switch circuit (e.g., switch circuit 105 shown in
Each or a plurality of the loops of the secondary windings 450 (only a single loop of the secondary winding is labeled with callout 450 in the figure) are wound around both the first transformer core 410 and the second transformer core 435. For example, each or a plurality of the loops of the secondary windings 450 pass through both holes within each of the toroid shaped first transformer core 410 and the toroid shaped second transformer core 435. In some configurations, each or a plurality of the loops of the secondary windings 450 pass through holes within the circuit board 405.
Each of the first plurality of primary windings 515 is wound once or less around the first transformer core 510. For example, each of the first plurality of primary windings 515 terminate on the first circuit board 505 outside the first transformer core 510 and within the hole within the toroid shaped first transformer core 510. Alternatively or additionally, each winding of the first plurality of primary windings 515 may be wound one or more times around the first transformer core 510. The first plurality of primary windings 515 may be coupled with a first switch circuit (e.g., switch circuit 105 shown in
Each of the second plurality of primary windings 540 is wound once or less around the second transformer core 535. For example, each of the second plurality of primary windings 540 terminate on the second circuit board 530 outside the second transformer core 535 and within the hole within the toroid shaped second transformer core 535. Alternatively or additionally, each winding of the second plurality of primary windings 540 may be wound one or more times around the second transformer core 535. The second plurality of primary windings 540 may be coupled with a second switch circuit (e.g., switch circuit 105 shown in
Each of the third plurality of primary windings 565 is wound once or less around the third transformer core 560. For example, each of the third plurality of primary windings 565 terminate on the third circuit board 555 outside the third transformer core 560 and within the hole within the toroid shaped third transformer core 560. Alternatively or additionally, each winding of the third plurality of primary windings 565 may be wound one or more times around the third transformer core 560. The third plurality of primary windings 565 may be coupled with a third switch circuit (e.g., switch circuit 105 shown in
Each of the fourth plurality of primary windings 585 is wound once or less around the fourth transformer core 580. For example, each of the fourth plurality of primary windings 585 terminate on the fourth circuit board 575 outside the fourth transformer core 580 and within the hole within the toroid shaped fourth transformer core 580. Alternatively or additionally, each winding of the fourth plurality of primary windings 585 may be wound one or more times around the fourth transformer core 580. The fourth plurality of primary windings 585 may be coupled with a fourth switch circuit (e.g., switch circuit 105 shown in
Each or a plurality of the loops of the secondary windings 550 (only a single loop of the secondary winding is labeled with callout 550 in the figure) are wound around both the first transformer core 510 and the second transformer core 535. For example, each or a plurality of the loops of the secondary windings 550 pass through both holes within each of the toroid shaped first transformer core 510 and the toroid shaped second transformer core 535. In some configurations, each or a plurality of the loops of the secondary windings 550 pass through holes within the first circuit board 505 and/or holes within the second circuit board 530.
While the stacked transformer arrangement 400 and the stacked transformer arrangement 500 illustrate examples of stacked transformer cores with two and four stacked transformer cores respectively, any number of transformers may be stacked in any combination. For example, two transformers may be stacked with a first circuit board as shown in
The secondary winding 625 is wound around four transformer cores 620-A, 620-B, 620-C and 620-D of the multi-transformer core nanosecond pulser 600. The secondary winding 625 may include secondary stray inductance 630 and/or the secondary stray capacitance 640. In some embodiments, the secondary stray capacitance 640 may be less than 1 nf, 100 pF, 10 pF, 1 pF, etc. In some embodiments, the secondary stray inductance 630 may be less than 100 nH, 10 nH, 1 nH, etc. In addition, the multi-transformer core nanosecond pulser 600 may be used to drive the load 635. While the stray capacitance and/or stray inductance may be located throughout the transformer the values of the stray capacitance and/or stray inductance may be measured across the secondary winding.
While four switch circuits 605 are shown in multi-transformer core nanosecond pulser 600 any number of switch circuits 605 may be used in a multi-transformer core nanosecond pulser 600.
In some embodiments, the switches in each of the switch circuits 605 may be switched at different times and/or in different sequences. For example, each switch of a subset of the switches or all of the switches may be switched on after a predetermined time period until each switch of a subset of the switches or all of the switches are turned on. An example output signal 705 of a sequential multi-transformer core switching arrangement such as this is shown in
As another example, a subset of switches may be switched on at one period of time and a second subset of switches may be switched on at a different period of time. An example output signal 805 of a sequential multi-transformer core switching arrangement such as this is shown in
Any combination of switching among the switches in switch circuits 605 may be turned on and/or turned off in any combination and/or sequence to produce various output signals shapes or waveforms. In some embodiments, a controller, processor, FPGA, etc. may be used to control the timing, duration, order, sequence, etc. of switching switches on and off to produce waveforms of various sizes, shapes and/or configurations.
In some embodiments, the primary windings may be disposed close to the core to reduce stray inductance. In some embodiments, the secondary windings may be spaced some distance away from the core to reduce stray capacitance.
As shown the primary winding 925 terminates at pad 940 on the outer perimeter of the transformer core 910 and at pad 941 within the central hole of the toroid shaped transformer core 910. In some embodiments, the pad 941 may be coupled with a conductive circuit board trace on an internal layer of the circuit board 905. The pad 940 and the pad 941 electrically couple the primary winding with the primary circuitry including, for example, a switch circuit (e.g., switch circuit 105) and/or other components.
As shown, the secondary winding 920 is wrapped around the transformer core 910 by passing through hole 930 in the circuit board 905 located at the perimeter of the toroid shaped transformer core 910, the internal hole of the toroid shaped transformer core 910, and the hole 911 in the circuit board 905. Successive windings of the secondary winding 920 may pass through hole 930 or another hole 931 in the circuit board. Additionally, successive windings of the secondary winding 920 may pass through hole 911 in the circuit board 905. The secondary winding 920 may be coupled with a secondary circuity such as, for example, a compression circuit, output components, and/or a load. In some embodiments, a single secondary winding 920 may be wrapped around the transformer core 910 a plurality of times passing through a plurality of holes located on the perimeter of the transformer core 910 and the hole 911.
The switch of the switch circuit 105 may include any solid state switching device that can switch high voltages such as, for example, a solid state switch, an IGBT, an FET, a MOSFET, an SiC junction transistor, or a similar device. The switch may include a collector and an emitter. Various other components may be included with the switch circuit 105 in conjunction with the switch. A plurality of switch circuits 105 in parallel, in series, or some combination thereof may be coupled with the transformer circuit 115.
The switch circuit 105 may be coupled with or may include a fast capacitor 110, which may be used for energy storage. In some embodiments, more than one switch circuit 105 may be coupled with a fast capacitor 110. In some embodiments, the fast capacitor may be an energy storage capacitor. The fast capacitor 110 may have a capacitance value of about 1 μF, about 5 μF, between about 1 μF and about 5 μF, between about 100 nF and about 1,000 nF etc.
The fast capacitor 110 may have a stray inductance which is illustrated as stray inductor 1020. This stray inductance may be the stray inductance of the fast capacitor 110 as well as the stray inductance associated with the fast capacitor and/or any connection to other components such as, for example, connections with the switch circuit 105 and/or the transformer circuit 115. In some embodiments, the stray inductor 1020 may have an inductance of less than 1 nH, 5 nH, 20 nH, 50 nH, 100 nH, etc.
During switching of the switch, the energy in the fast capacitor 110 may be discharged to the primary winding of the transformer circuit 115. Moreover, in some embodiments, the energy within the fast capacitor 110 may not be substantially drained during each switch cycle, which may allow for a higher pulse repetition frequency. For example, in one switch cycle 5%-50% of the energy stored within the fast capacitor 110 may be drained. As another example, in one switch cycle 10%-40% of the energy stored within the fast capacitor 110 may be drained. As yet another example, in one switch cycle 15%-25% of the energy stored within the fast capacitor 110 may be drained.
The switch circuit 105 and the fast capacitor 110 may be coupled with a transformer circuit 115. The transformer circuit 115, for example, may include a transformer, capacitors, inductors, resistors, other devices, or some combination thereof. The transformer may include a toroid shaped transformer core with a plurality of primary windings and a plurality of secondary windings wound around the transformer core. In some embodiments, there may be more primary windings than secondary windings.
The transformer circuit 115 may include stray capacitance and/or stray inductance. Stray capacitor 185 represents the transformer primary to secondary stray capacitance. Stray capacitor 190 represents the transformer secondary stray capacitance. Inductor 155 represents the primary stray inductance of the transformer, and inductor 160 represents the secondary stray inductance of the transformer.
Stray inductor 1015 represents the transformer circuit 115 and/or the transformer stray inductance. This stray inductance may include the transformer primary to secondary stray inductance and/or the stray inductance associated with the transformer circuit 115 and/or any connection to other components such as, for example, connections with the switch circuit 105 and/or the fast capacitor 110. In some embodiments, the stray inductor 1015 may have an inductance of less than 1 nH, 5 nH, 20 nH, 50 nH, 100 nH, etc. between about 1 nH and 1,000 nH, less than about 100 nH, or less than about 500 nH, etc.
In some embodiments, the transformer 116 may include a toroid shaped transformer core comprised of air, iron, ferrite, soft ferrite, MnZn, NiZn, hard ferrite, powder, nickel-iron alloys, amorphous metal, glassy metal, or some combination thereof.
In some embodiments, the transformer primary to secondary stray capacitance and/or the transformer secondary stray capacitance may be below about 1 pF, below about 100 pF, about 10 pF, about 20 pF, etc. In some embodiments, the sum of the secondary stray capacitance and the primary stray capacitance may be less than about 50 pF, 75 pF, 100 pF, 125 pF, 135 pF, etc.
In some embodiments, a nanosecond pulser may be designed with low stray capacitance. For example, the sum of all stray capacitance within the nanosecond pulser may be below 500 pF. This may include transformer circuit stray capacitance, switch circuit stray capacitance, other stray capacitance, or some combination thereof.
The primary windings of the transformer 116 can include a plurality of single windings. For example, each of the primary windings may include a single wire that wraps around at least a substantial portion of the toroid shaped transformer core and terminate on either side of the transformer core. As another example, one end of the primary windings may terminate at the collector (e.g., collector 107 shown in
In some embodiments, a single primary winding may be coupled with a single switch circuit 105. In some embodiments, a plurality of switch circuits may be included and each of the plurality of switch circuits may be coupled with one of a plurality of primary windings. The plurality of windings may be arranged in parallel about the transformer core. In some embodiments, this arrangement may be used to reduce stray inductance in the nanosecond pulser 1000.
The nanosecond pulser 1000 may have low stray inductance between components. For example, stray inductor 1005 illustrates the stray inductance associated with the connection between the generalized fast capacitor 110 and the generalized switch circuit 105. Stray inductor 1005 may include at least in part the stray inductance in the fast capacitor 110, the switch circuit 105, the switch within the switch circuit 105, the connections between these components, and/or the circuit board. In some embodiments, the stray inductor 1005 may have an inductance of less than 1 nH, 5 nH, 20 nH, 50 nH, 100 nH, etc. between about 1 nH and 1,000 nH, less than about 100 nH, or less than about 500 nH, etc.
As another example, stray inductor 1010 illustrates the stray inductance associated with the connection between the generalized switch circuit 105 and the generalized transformer circuit 116. Stray inductor 1010 may include at least in part the stray inductance in the switch circuit 105, the switch within the switch circuit 105, the stray inductance in the transformer circuit 115, the transformer within the transformer circuit 115, the primary winding of the transformer within the transformer circuit 116, the connections between these components, and/or the circuit board. In some embodiments, the stray inductor 1010 may have an inductance of less than 1 nH, 5 nH, 20 nH, 50 nH, 100 nH, etc. between about 1 nH and 1,000 nH, less than about 100 nH, or less than about 500 nH, etc.
As another example, stray inductor 1015 illustrates the stray inductance associated with the connection between the fast capacitor 110 and the generalized transformer circuit 116. Stray inductor 1010 may include at least in part the stray inductance in the fast capacitor 110, the stray inductance in the transformer circuit 115, the transformer within the transformer circuit 115, the primary winding of the transformer within the transformer circuit 116, the connections between these components, and/or the circuit board. In some embodiments, the stray inductor 1015 may have an inductance of less than 1 nH, 5 nH, 20 nH, 50 nH, 100 nH, etc. between about 1 nH and 1,000 nH, less than about 100 nH, or less than about 500 nH, etc.
The term “generalized” describes the combination of an idealized element (for example, the transformer circuit 115 and/or the transformer within the transformer circuit 115) along with the associated non ideal elements (for example, the stray inductance 1005, 1110, 1115 and 1020, and/or any stray capacitance).
The stray inductances shown in
The secondary winding of the transformer within the transformer circuit 115 (for example, transformer 116 shown in
Various embodiments of the invention are disclosed and described. The invention may extend to any combination of all or some of each of the disclosed embodiments without limitation.
The term “substantially” means within 5% or 10% of the value referred to or within manufacturing tolerances.
The system or systems discussed herein are not limited to any particular hardware architecture or configuration.
The use of “adapted to” or “configured to” herein is meant as open and inclusive language that does not foreclose devices adapted to or configured to perform additional tasks or steps. Additionally, the use of “based on” is meant to be open and inclusive, in that a process, step, calculation, or other action “based on” one or more recited conditions or values may, in practice, be based on additional conditions or values beyond those recited. Headings, lists, and numbering included herein are for ease of explanation only and are not meant to be limiting.
While the present subject matter has been described in detail with respect to specific embodiments thereof, it will be appreciated that those skilled in the art, upon attaining an understanding of the foregoing, may readily produce alterations to, variations of, and equivalents to such embodiments. Accordingly, it should be understood that the present disclosure has been presented for-purposes of example rather than limitation, and does not preclude inclusion of such modifications, variations, and/or additions to the present subject matter as would be readily apparent to one of ordinary skill in the art.
Number | Name | Date | Kind |
---|---|---|---|
4070589 | Martinkovic | Jan 1978 | A |
4438331 | Davis | Mar 1984 | A |
4504895 | Steigerwald | Mar 1985 | A |
4885074 | Susko et al. | Dec 1989 | A |
4924191 | Erb et al. | May 1990 | A |
4992919 | Lee et al. | Feb 1991 | A |
5072191 | Nakajima et al. | Dec 1991 | A |
5118969 | Ikezi et al. | Jun 1992 | A |
5140510 | Myers | Aug 1992 | A |
5313481 | Cook et al. | May 1994 | A |
5321597 | Alacoque | Jun 1994 | A |
5325021 | Duckworth et al. | Jun 1994 | A |
5392043 | Ribner | Feb 1995 | A |
5451846 | Peterson et al. | Sep 1995 | A |
5488552 | Sakamoto et al. | Jan 1996 | A |
5610452 | Shimer et al. | Mar 1997 | A |
5623171 | Nakajima | Apr 1997 | A |
5656123 | Salimian et al. | Aug 1997 | A |
5729562 | Birx et al. | Mar 1998 | A |
5796598 | Nowak et al. | Aug 1998 | A |
5808504 | Chikai et al. | Sep 1998 | A |
5905646 | Crewson et al. | May 1999 | A |
5930125 | Hitchcock et al. | Jul 1999 | A |
5933335 | Hitchcock et al. | Aug 1999 | A |
5968377 | Yuasa et al. | Oct 1999 | A |
6059935 | Spence | May 2000 | A |
6066901 | Burkhart et al. | May 2000 | A |
6087871 | Kardo-Syssoev et al. | Jul 2000 | A |
6205074 | Van Buskirk et al. | Mar 2001 | B1 |
6233161 | Balakrishnan et al. | May 2001 | B1 |
6238387 | Miller, III | May 2001 | B1 |
6253704 | Savas | Jul 2001 | B1 |
6359542 | Widmayer et al. | Mar 2002 | B1 |
6362604 | Cravey | Mar 2002 | B1 |
6392187 | Johnson | May 2002 | B1 |
6480399 | Balakrishnan et al. | Nov 2002 | B2 |
6483731 | Isurin et al. | Nov 2002 | B1 |
6496047 | Iskander et al. | Dec 2002 | B1 |
6577135 | Matthews et al. | Jun 2003 | B1 |
6741120 | Tan | May 2004 | B1 |
6741484 | Crewson et al. | May 2004 | B2 |
6831377 | Yampolsky et al. | Dec 2004 | B2 |
6897574 | Vaysse | May 2005 | B2 |
6947300 | Pai et al. | Sep 2005 | B2 |
7061230 | Kleine et al. | Jun 2006 | B2 |
7180082 | Hassanein et al. | Feb 2007 | B1 |
7256637 | Iskander et al. | Aug 2007 | B2 |
7291545 | Collins et al. | Nov 2007 | B2 |
7307375 | Smith et al. | Dec 2007 | B2 |
7319579 | Inoue et al. | Jan 2008 | B2 |
7354501 | Gondhalekar et al. | Apr 2008 | B2 |
7396746 | Walther et al. | Jul 2008 | B2 |
7492138 | Zhang et al. | Feb 2009 | B2 |
7512433 | Bernhart et al. | Mar 2009 | B2 |
7521370 | Hoffman | Apr 2009 | B2 |
7601619 | Okumura et al. | Oct 2009 | B2 |
7605385 | Bauer | Oct 2009 | B2 |
7767433 | Kuthi et al. | Aug 2010 | B2 |
7901930 | Kuthi et al. | Mar 2011 | B2 |
7936544 | Beland | May 2011 | B2 |
7948185 | Smith et al. | May 2011 | B2 |
7989987 | McDonald | Aug 2011 | B2 |
8093979 | Wilson | Jan 2012 | B2 |
8115343 | Sanders et al. | Feb 2012 | B2 |
8129653 | Kirchmeier et al. | Mar 2012 | B2 |
8143790 | Smith et al. | Mar 2012 | B2 |
8222936 | Friedman et al. | Jul 2012 | B2 |
8259476 | Ben-Yaakov et al. | Sep 2012 | B2 |
8436602 | Sykes | May 2013 | B2 |
8450985 | Gray et al. | May 2013 | B2 |
8575843 | Moore et al. | Nov 2013 | B2 |
8723591 | Lee et al. | May 2014 | B2 |
8773184 | Petrov et al. | Jul 2014 | B1 |
8847433 | Vandermey | Sep 2014 | B2 |
8963377 | Ziemba et al. | Feb 2015 | B2 |
9067788 | Spielman et al. | Jun 2015 | B1 |
9070396 | Katchmart et al. | Jun 2015 | B1 |
9084334 | Gefter et al. | Jul 2015 | B1 |
9122350 | Kao et al. | Sep 2015 | B2 |
9287086 | Brouk et al. | Mar 2016 | B2 |
9287092 | Brouk et al. | Mar 2016 | B2 |
9306533 | Mavretic | Apr 2016 | B1 |
9329256 | Dolce | May 2016 | B2 |
9417739 | Cordeiro et al. | Aug 2016 | B2 |
9435029 | Brouk et al. | Sep 2016 | B2 |
9493765 | Krishnaswamy et al. | Nov 2016 | B2 |
9601283 | Ziemba et al. | Mar 2017 | B2 |
9706630 | Miller et al. | Jul 2017 | B2 |
9767988 | Brouk et al. | Sep 2017 | B2 |
9960763 | Miller et al. | May 2018 | B2 |
10009024 | Gan et al. | Jun 2018 | B2 |
10020800 | Prager et al. | Jul 2018 | B2 |
10027314 | Prager et al. | Jul 2018 | B2 |
10044278 | Kondo et al. | Aug 2018 | B2 |
10224822 | Miller et al. | Mar 2019 | B2 |
10301587 | Krishnaswamy et al. | May 2019 | B2 |
10304661 | Ziemba et al. | May 2019 | B2 |
10373755 | Prager et al. | Aug 2019 | B2 |
10373804 | Koh et al. | Aug 2019 | B2 |
10382022 | Prager | Aug 2019 | B2 |
10460910 | Ziemba et al. | Oct 2019 | B2 |
10483089 | Ziemba et al. | Nov 2019 | B2 |
10607814 | Ziemba et al. | Mar 2020 | B2 |
10659019 | Slobodov et al. | May 2020 | B2 |
10707864 | Miller et al. | Jul 2020 | B2 |
10734906 | Miller et al. | Aug 2020 | B2 |
10777388 | Ziemba et al. | Sep 2020 | B2 |
10796887 | Prager et al. | Oct 2020 | B2 |
10811230 | Ziemba et al. | Oct 2020 | B2 |
10892140 | Ziemba et al. | Jan 2021 | B2 |
10978955 | Ziemba et al. | Apr 2021 | B2 |
10985740 | Prager | Apr 2021 | B2 |
11004660 | Prager et al. | May 2021 | B2 |
20010008552 | Harada et al. | Jul 2001 | A1 |
20020016617 | Oldham | Feb 2002 | A1 |
20020140464 | Yampolsky | Oct 2002 | A1 |
20020180276 | Sakuma et al. | Dec 2002 | A1 |
20020186577 | Kirbie | Dec 2002 | A1 |
20030021125 | Rufer et al. | Jan 2003 | A1 |
20030021131 | Nadot | Jan 2003 | A1 |
20030071035 | Brailove | Apr 2003 | A1 |
20030137791 | Arnet et al. | Jul 2003 | A1 |
20030169107 | LeChevalier | Sep 2003 | A1 |
20040085784 | Salama et al. | May 2004 | A1 |
20040149217 | Collins et al. | Aug 2004 | A1 |
20050152159 | Isurin et al. | Jul 2005 | A1 |
20050270096 | Coleman | Dec 2005 | A1 |
20060187607 | Mo | Aug 2006 | A1 |
20060192774 | Yasumura | Aug 2006 | A1 |
20060210020 | Takahashi et al. | Sep 2006 | A1 |
20060274887 | Sakamoto et al. | Dec 2006 | A1 |
20070018504 | Wiener et al. | Jan 2007 | A1 |
20070114981 | Vasquez et al. | May 2007 | A1 |
20070115705 | Gotzenberger et al. | May 2007 | A1 |
20070212811 | Hanawa et al. | Sep 2007 | A1 |
20080062733 | Gay | Mar 2008 | A1 |
20080106151 | Ryoo et al. | May 2008 | A1 |
20080143260 | Fuymer et al. | Jun 2008 | A1 |
20080198634 | Scheel et al. | Aug 2008 | A1 |
20080231337 | Krishnaswamy et al. | Sep 2008 | A1 |
20080252225 | Kurachi et al. | Oct 2008 | A1 |
20080272706 | Kwon et al. | Nov 2008 | A1 |
20090016549 | French et al. | Jan 2009 | A1 |
20090108759 | Tao et al. | Apr 2009 | A1 |
20100007358 | Schaerrer et al. | Jan 2010 | A1 |
20100148847 | Schurack et al. | Jun 2010 | A1 |
20100284208 | Nguyen et al. | Nov 2010 | A1 |
20110001438 | Chemel et al. | Jan 2011 | A1 |
20110133651 | Chistyakov et al. | Jun 2011 | A1 |
20110140607 | Moore et al. | Jun 2011 | A1 |
20120016282 | Van Brunt et al. | Jan 2012 | A1 |
20120052599 | Brouk et al. | Mar 2012 | A1 |
20120081350 | Sano et al. | Apr 2012 | A1 |
20120155613 | Caiafa et al. | Jun 2012 | A1 |
20130027848 | Said | Jan 2013 | A1 |
20130075390 | Ashida | Mar 2013 | A1 |
20130113650 | Behbahani et al. | May 2013 | A1 |
20130174105 | Nishio et al. | Jul 2013 | A1 |
20130175575 | Ziemba et al. | Jul 2013 | A1 |
20130320953 | Cassel et al. | Dec 2013 | A1 |
20140009969 | Yuzurihara et al. | Jan 2014 | A1 |
20140021180 | Vogel | Jan 2014 | A1 |
20140077611 | Young et al. | Mar 2014 | A1 |
20140109886 | Singleton et al. | Apr 2014 | A1 |
20140118414 | Seo et al. | May 2014 | A1 |
20140146571 | Ryoo et al. | May 2014 | A1 |
20140268968 | Richardson | Sep 2014 | A1 |
20140354343 | Ziemba et al. | Dec 2014 | A1 |
20150028932 | Ziemba et al. | Jan 2015 | A1 |
20150076372 | Ziemba et al. | Mar 2015 | A1 |
20150084509 | Yuzurihara et al. | Mar 2015 | A1 |
20150130525 | Miller et al. | May 2015 | A1 |
20150155086 | Matsuura | Jun 2015 | A1 |
20150256086 | Miller et al. | Sep 2015 | A1 |
20150303914 | Ziemba et al. | Oct 2015 | A1 |
20150311680 | Burrows et al. | Oct 2015 | A1 |
20150318846 | Prager et al. | Nov 2015 | A1 |
20160020072 | Brouk et al. | Jan 2016 | A1 |
20160220670 | Kalghatgi et al. | Aug 2016 | A1 |
20160241234 | Mavretic | Aug 2016 | A1 |
20160269195 | Coenen et al. | Sep 2016 | A1 |
20160327029 | Ziemba et al. | Nov 2016 | A1 |
20160327089 | Adam et al. | Nov 2016 | A1 |
20170083810 | Ielmini et al. | Mar 2017 | A1 |
20170126049 | Pan et al. | May 2017 | A1 |
20170154726 | Prager et al. | Jun 2017 | A1 |
20170243731 | Ziemba et al. | Aug 2017 | A1 |
20170294842 | Miller et al. | Oct 2017 | A1 |
20170311431 | Park | Oct 2017 | A1 |
20170359886 | Binderbauer et al. | Dec 2017 | A1 |
20180226896 | Miller et al. | Aug 2018 | A1 |
20180286636 | Ziemba et al. | Oct 2018 | A1 |
20180315583 | Luere et al. | Nov 2018 | A1 |
20180374689 | Abraham et al. | Dec 2018 | A1 |
20190080884 | Ziemba et al. | Mar 2019 | A1 |
20190157044 | Ziemba et al. | May 2019 | A1 |
20190172685 | Van Zyl et al. | Jun 2019 | A1 |
20190180982 | Brouk et al. | Jun 2019 | A1 |
20190228952 | Dorf et al. | Jul 2019 | A1 |
20190326092 | Ogasawara et al. | Oct 2019 | A1 |
20190348258 | Koh et al. | Nov 2019 | A1 |
20190393791 | Ziemba et al. | Dec 2019 | A1 |
20200035458 | Ziemba et al. | Jan 2020 | A1 |
20200051786 | Ziemba et al. | Feb 2020 | A1 |
20210152163 | Miller et al. | May 2021 | A1 |
Number | Date | Country |
---|---|---|
2292526 | Dec 1999 | CA |
101534071 | Sep 2009 | CN |
103458600 | Jul 2016 | CN |
106537776 | Mar 2017 | CN |
174164 | Mar 1986 | EP |
0947048 | Oct 1999 | EP |
1128557 | Aug 2001 | EP |
1515430 | Mar 2005 | EP |
H09129621 | May 1997 | JP |
2002-359979 | Dec 2002 | JP |
2013-135159 | Jul 2013 | JP |
2016-134461 | Jul 2016 | JP |
2017-501298 | Jan 2017 | JP |
0193419 | Dec 2001 | WO |
2010069317 | Jun 2010 | WO |
2014036000 | Mar 2014 | WO |
2016171582 | Oct 2016 | WO |
2018186901 | Oct 2018 | WO |
Entry |
---|
U.S. Notice of Allowance in U.S. Appl. No. 16/555,948, dated Jan. 13, 2021, 7 pages. |
U.S. Notice of Allowance in U.S. Appl. No. 16/457,791 dated Jan. 22, 2021, 7 pages. |
International Search Report and written opinion received for PCT Patent Application No. PCT/US2020/60799, dated Feb. 5, 2021, 11 pages. |
Extended European Search Report for Application No. 20195265.2, 8 pages. |
U.S. Notice of Allowance in U.S. Appl. No. 16/722,115, dated Apr. 1, 2021, 9 pages. |
U.S. Notice of Allowance in U.S. Appl. No. 15/889,586 dated Apr. 14, 2021, 9 pages. |
U.S. Non Final Office Action in U.S. Appl. No. 16/941,532, dated Apr. 14, 2021, 10 pages. |
Extended European Search Report for Application No. 20200919.7, 11 pages. |
U.S. Non-Final Office Action in U.S. Appl. No. 16/722,115, dated May 3, 2021, 9 pages. |
U.S. Non-Final Office Action in U.S. Appl. No. 15/889,586 dated Jun. 11, 2021, 11 pages. |
U.S. Notice of Allowance in U.S. Appl. No. 15/623,464, dated Oct. 17, 2018, 7 pages. |
International Search Report and Written Opinion as issued in connection with International Patent Application No. PCT/US2018/48206, dated Nov. 1, 2018, 10 pages. |
U.S. Non Final Office Action in U.S. Appl. No. 15/941,731, dated Nov. 16, 2018, 17 pages. |
U.S. Non-Final Office Action in U.S. Appl. No. 15/921,650 dated Nov. 28, 2018, 11 pages. |
U.S. Non Final Office Action in U.S. Appl. No. 16/178,538, dated Jan. 11, 2019, 27 pages. |
U.S. Non Final Office Action in U.S. Appl. No. 16/250,765, dated Mar. 29, 2019, 11 pages. |
U.S. Notice of Allowance in U.S. Appl. No. 15/921,650 dated Apr. 4, 2019, 7 pages. |
U.S. Non Final Office Action in U.S. Appl. No. 16/178,565, dated Apr. 4, 2019, 10 pages. |
U.S. Final Office Action in U.S. Appl. No. 15/889,586 dated May 2, 2019, 19 pages. |
U.S. Final Office Action in U.S. Appl. No. 15/941,731, dated May 3, 2019, 16 pages. |
U.S. Final Office Action in U.S. Appl. No. 16/178,538 dated Jun. 7, 2019, 17 pages. |
U.S. Notice of Allowance in U.S. Appl. No. 16/250,765, dated Jul. 10, 2019, 9 pages. |
U.S. Final Office Action in U.S. Appl. No. 16/178,565, dated Jul. 12, 2019, 11 pages. |
U.S. Notice of Allowance in U.S. Appl. No. 16/178,538 dated Jul. 17, 2019, 10 pages. |
U.S. Notice of Allowance in U.S. Appl. No. 15/941,731, dated Jul. 17, 2019, 12 pages. |
U.S. Non-Final Office Action in U.S. Appl. No. 15/889,586 dated Sep. 6, 2019, 17 pages. |
International Search Report and Written Opinion as issued in connection with International Patent Application No. PCT/US2019/043933, dated Oct. 25, 2019, 9 pages. |
U.S. Notice of Allowance in U.S. Appl. No. 16/178,565, dated Nov. 14, 2019, 5 pages. |
U.S. Non Final Office Action in U.S. Appl. No. 15/945,722, dated Nov. 15, 2019, 13 pages. |
International Search Report and Written Opinion as issued in connection with International Patent Application No. PCT/US2019/043932, dated Dec. 5, 2019, 16 pages. |
International Search Report and Written Opinion as issued in connection with International Patent Application No. PCT/US2019/043988, dated Dec. 10, 2019, 13 pages. |
U.S. Non Final Office Action in U.S. Appl. No. 16/250,157 dated Dec. 19, 2019, 6 pages. |
U.S. Non-Final Office Action in U.S. Appl. No. 16/599,318, dated Jan. 16, 2020, 11 pages. |
U.S. Non-Final Office Action in U.S. Appl. No. 16/722,085, dated Mar. 6, 2020, 5 pages. |
U.S. Final Office Action in U.S. Appl. No. 15/889,586 dated Mar. 18, 2020, 18 pages. |
U.S. Non-Final Office Action in U.S. Appl. No. 16/523,840, dated Mar. 19, 2020, 6 pages. |
U.S. Notice of Allowance in U.S. Appl. No. 15/945,722, dated Apr. 3, 2020, 7 pages. |
U.S. Notice of Allowance in U.S. Appl. No. 16/114,195, dated Apr. 3, 2019, 9 pages. |
U.S. Non-Final Office Action in U.S. Appl. No. 16/736,971, dated Apr. 7, 2020, 14 pages. |
U.S. Notice of Allowance in U.S. Appl. No. 16/250,157 dated Apr. 13, 2020, 8 pages. |
U.S. Non-Final Office Action in U.S. Appl. No. 16/457,791 dated Apr. 15, 2020, 12 pages. |
U.S. Final Office Action in U.S. Appl. No. 16/736,971, dated Apr. 17, 2020, 6 pages. |
International Search Report and Written Opinion as issued in connection with International Patent Application No. PCT/US2020/016253, dated Apr. 29, 2020, 7 pages. |
U.S. Advisory Action in U.S. Appl. No. 16/736,971, dated May 12, 2020, 5 pages. |
U.S. Non-Final Office Action in U.S. Appl. No. 16/722,115, dated May 14, 2020, 6 pages. |
U.S. Non-Final Office Action in U.S. Appl. No. 16/555,948, dated May 15, 2020, 8 pages. |
International Search Report and Written Opinion as issued in connection with International Patent Application No. PCT/US2020/012641, dated May 28, 2020, 15 pages. |
Extended European Search Report for Application No. 18848041.2, 9 pages. |
U.S. Final Office Action in U.S. Appl. No. 16/523,840, dated Jun. 26, 2020, 5 pages. |
U.S. Notice of Allowance in U.S. Appl. No. 16/736,971, dated Jun. 30, 2020, 14 pages. |
U.S. Advisory Action in U.S. Appl. No. 15/889,586 dated Jul. 10, 2020, 4 pages. |
U.S. Notice of Allowance in U.S. Appl. No. 16/722,085, dated Jul. 16, 2020, 8 pages. |
U.S. Final Office Action in U.S. Appl. No. 16/599,318, dated Jul. 23, 2020, 14 pages. |
U.S. Notice of Allowance in U.S. Appl. No. 16/599,318, dated Aug. 4, 2020, 8 pages. |
U.S. Non Final Office Action in U.S. Appl. No. 16/537,513, dated Sep. 3, 2020, 13 pages. |
U.S. Non-Final Office Action in U.S. Appl. No. 15/889,586 dated Sep. 18, 2020, 19 pages. |
U.S. Notice of Allowance in U.S. Appl. No. 16/523,840, dated Sep. 30, 2020, 11 pages. |
U.S. Non Final Office Action in U.S. Appl. No. 16/903,374, dated Nov. 25, 2020, 16 pages. |
U.S. Final Office Action in U.S. Appl. No. 16/722,115, dated Dec. 2, 2020, 7 pages. |
U.S. Notice of Allowance in U.S. Appl. No. 16/523,840, dated Dec. 4, 2020, 11 pages. |
Prager, J.R. et al., “A High Voltage Nanosecond Pulser with Variable Pulse Width and Pulse Repetition Frequency control for Nonequilibrium Plasma Applications”, 41st International Conference on Plasma Sciences held with 2014 IEEE International Conference on High-Power Particle Beams, May 25-29, 2014, 6, Washington, D C. (Full Document). |
U.S. Non-Final Office Action in U.S. Appl. No. 16/941,532 dated Jul. 16, 2021, 10 pages. |
Bland, M.J., et al., “A High Power RF Power Supply for High Energy Physics Applications,” Proceedings of 2005 the Particle Accelerator Conference, IEEE pp. 4018-4020 (May 16-20, 2005). |
Dammertz, G., et al., “Development of Multimegawatt Gyrotrons for Fusion Plasma Heating and current Drive,” IEEE Transactions on Electron Devices, vol. 52, No. 5, pp. 808-817 (Apr. 2005) (Abstract). |
Garwin, R., “Pulsed Power Peer Review Committee Report,” Sandia National Laboratories Report, SAND2000-2515, pp. 3-38 (Oct. 2000). |
Gaudei, J.A., et al, “Research issues in Developing Compact Pulsed Power for High Peak Power Applications on Mobile Platforms,” Proceedings of the IEEE, vol. 92, No. 7, pp. 1144-1165 (Jul. 2004). |
Goodman, E. A., “Characteristics of sheet windings in transformers”, IEEE Engineering, vol. 82, No. 11, pp. 673-676 (Nov. 1963) (Abstract). |
In, Y., et al., “On the roles of direct feedback and error field correction in stabilizing resistive-wall modes,” Nuclear 2 Fusion, vol. 50, No. 4, pp. 1-5 (2010). |
Kim, J.H., et al., “High Voltage Pulsed Power Supply Using IGBT Stacks,” IEEE Transactions on Dielectrics and Electrical insulation, vol. 14, No. 4, pp. 921-926 (Aug. 2007). |
Locher, R., “Introduction to Power MOSFETs and their Applications (Application Note 558),” Fairchild Semiconductor, 15 pages (Oct. 1998). |
Locher, R.E., and Pathak, A.D., “Use of BiMOSFETs in Modern Radar Transmitters,” IEEE International Conference on Power Electronics and Drive Systems, pp. 776-782 (2001). |
Pokryvailo, A., et al., “A 1KW Pulsed Corona System for Pollution Control Applications,” 14th IEEE International Pulsed Power Conference, Dallas, TX, USA (Jun. 15-18, 2003). |
Pokryvailo, A., et al., “High-Power Pulsed Corona for Treatment of Pollutants in Heterogeneous Media,” IEEE Transactions on Plasma Science, vol. 34, No. 5, pp. 1731-1743 (Oct. 2006) (Abstract). |
Prager, J.R. et al., “A High Voltage Nanosecond Pulser with Variable Pulse Width and Pulse Repetition Frequency control for Nonequilibrium Plasma Applications”, 41st International Conference on Plasma Sciences held with 2014 IEEE International Conference on High-Power Particle Beams, May 25-29, 2014, 6, Washington, D.C. (Abstract). |
Quinley, M., et al., “High Voltage Nanosecond Pulser Operating at 30 kW and 400 kHz” APS-GEC-2018, 1 page (2018). |
Rao, X., et al., “Combustion Dynamics of Plasma-Enhanced Premixed and Nonpremixed Flames,” IEEE Transactions on Plasma Science, vol. 38, No. 12, pp. 3265-3271 (Dec. 2010). |
Reass, W.A., et al., “Progress Towards a 20 KV, 2 KA Plasma Source Ion Implantation Modulator for Automotive Production of Diamond Film on Aluminum,” Submitted to 22nd International Power Symposium, Boca Raton, FL, 6 pages (Jun. 24-27, 1996). |
Sanders, J.M., et al., “Scalable, compact, nanosecond pulse generator with a high repetition rate for biomedical applications requiring intense electric fields,” 2009 IEEE Pulsed Power Conference, Washington, DC, 2 pages (Jun. 28, 2009-Jul. 2, 2009) (Abstract). |
Schamiloglu, E., et al., “Scanning the Technology: Modem Pulsed Power: Charlie Martin and Beyond,” Proceedings of the IEEE, vol. 92, No. 7 , pp. 1014-1020 (Jul. 2004). |
Scoville, J.T., et al., “The Resistive Wall Mode Feedback Control System on DIII-D,” IEEE/NPSS 18th Symposium on fusion Engineering, Albuquerque, NM, Oct. 25-29, 1999, General Atomics Report GAA23256, 7 pages (Nov. 1999). |
Singleton, D.R., et al., “Compact Pulsed-Power System for Transient Plasma Ignition,” IEEE Transactions on Plasma Science, vol. 37, No. 12, pp. 2275-2279 (2009) (Abstract). |
Singleton, D.R., et al., “Low Energy Compact Power Modulators for Transient Plasma Ignition,” IEEE Transactions on Dielectrics and Electrical Insulation, vol. 18, No. 4, pp. 1084-1090 (Aug. 2011) (Abstract). |
Starikovskiy, A. and Aleksandrov, N., “Plasma-assisted ignition and combustion,” Progress in Energy and Combustion Science, vol. 39, No. 1, pp. 61-110 (Feb. 2013). |
Wang, F., et al., “Compact High Repetition Rate Pseudospark Pulse Generator,” IEEE Transactions on Plasma Science, vol. 33, No. 4, pp. 1177-1181 (Aug. 2005) (Abstract). |
Zavadtsev, D.A., et al., “Compact Electron Linear Accelerator RELUS-5 for Radiation Technology Application,” 10th European Particle Accelerator Conference, Edinburgh, UK, pp. 2385-2387 (Jun. 26-30, 2006). |
Zhu, Z., et al., “High Voltage pulser with a fast fall-time for plasma immersion ion implantation,” Review of Scientific Instruments, vol. 82, No. 4, pp. 045102-1-045102-4 (Apr. 2011). |
International Search Report and Written Opinion as issued in connection with International Patent Application No. PCT/US2014/040929, dated Sep. 15, 2014, 10 pages. |
International Search Report and Written Opinion as issued in connection with International Patent Application No. PCT/US2014/065832, dated Feb. 20, 2015, 13 pages. |
International Search Report and Written Opinion as issued in connection with International Patent Application No. PCT/US2015/018349, dated Jul. 14, 2015, 15 pages. |
International Search Report and Written Opinion as issued in connection with International Patent Application No. PCT/US2015/040204, dated Oct. 6, 2015, 12 pages. |
U.S. Non-Final Office Action in U.S. Appl. No. 14/542,487 dated Nov. 23, 2015, 11 pages. |
U.S. Non-Final Office Action in U.S. Appl. No. 14/798,154 dated Jan. 5, 2016, 13 pages. |
U.S. Final Office Action in U.S. Appl. No. 14/542,487 dated Feb. 12, 2016, 11 pages. |
U.S. Non-Final Office Action in U.S. Appl. No. 14/542,487 dated Apr. 8, 2016, 12 pages. |
U.S. Non Final Office Action in U.S. Appl. No. 14/635,991, dated Jul. 29, 2016, 17 pages. |
U.S. Final Office Action in U.S. Appl. No. 14/798,154 dated Oct. 6, 2016, 14 pages. |
U.S. Final Office Action in U.S. Appl. No. 14/542,487 dated Dec. 12, 2016, 13 pages. |
U.S. Final Office Action in U.S. Appl. No. 14/635,991, dated Jan. 23, 2017, 22 pages. |
U.S. Advisory Action in U.S. Appl. No. 14/542,487 dated Mar. 28, 2017, 03 pages. |
U.S. Notice of Allowance in U.S. Appl. No. 14/635,991, dated May 4, 2017, 07 pages. |
U.S. Non-Final Office Action in U.S. Appl. No. 14/798,154 dated May 26, 2017, 16 pages. |
U.S. Non-Final Office Action in U.S. Appl. No. 14/542,487 dated Jun. 5, 2017, 12 pages. |
Partial Supplementary European Search Report in related foreign application No. 14861818.4, 12 Pages. |
U.S. Non Final Office Action in U.S. Appl. No. 15/623,464, dated Nov. 7, 2017, 18 pages. |
U.S. Final Office Action in U.S. Appl. No. 14/542,487 dated Dec. 19, 2017, 07 pages. |
U.S. Final Office Action in U.S. Appl. No. 14/798,154 dated Dec. 28, 2017, 06 pages. |
U.S. Notice of Allowance in U.S. Appl. No. 14/542,487 dated Mar. 21, 2018, 05 pages. |
U.S. Final Office Action in U.S. Appl. No. 15/623,464, dated Mar. 27, 2018, 18 pages. |
International Search Report and Written Opinion as issued in connection with International Patent Application No. PCT/US2018/016993, dated Apr. 18, 2018, 11 pages. |
U.S. Non-Final Office Action in U.S. Appl. No. 15/889,586 dated Sep. 12, 2018, 18 pages. |
U.S. Notice of Allowance in U.S. Appl. No. 14/798,154 dated Jun. 1, 2018, 05 pages. |
International Search Report and Written Opinion as issued in connection with International Patent Application No. PCT/US2018/025440, dated Jun. 25, 2018, 25 pages. |
Non-Final Office Action in U.S. Appl. No. 17/213,230 dated Dec. 14, 2021, 6 pages. |
Notification of Reason for Refusal in JP Patent application No. 2021-101259 dated Feb. 1, 2022, 21 pages. |
Non-Final Office Action in U.S. Appl. No. 17/499,863 dated Jun. 7, 2022, 15 pages. |
Number | Date | Country | |
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20210351767 A1 | Nov 2021 | US |
Number | Date | Country | |
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62023708 | Jul 2014 | US | |
61904278 | Nov 2013 | US |
Number | Date | Country | |
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Parent | 16457791 | Jun 2019 | US |
Child | 17223004 | US | |
Parent | 15921650 | Mar 2018 | US |
Child | 16457791 | US | |
Parent | 14798154 | Jul 2015 | US |
Child | 15921650 | US | |
Parent | 14542487 | Nov 2014 | US |
Child | 14798154 | US |