HIGH-POWER PULSED ELECTROMAGNETIC FIELD APPLICATOR SYSTEM
20220409917 · 2022-12-29
Inventors
- Martin L. Kirk (Scottsdale, AZ, US)
- Shanil MERCHANT (Phoenix, AZ, US)
- Joseph E. Bright (Phoenix, AZ, US)
- Randy CHAVEZ (Mesa, AZ, US)
- Scott S. BROOKS (Phoenix, AZ, US)
- Scott COWLING (Tempe, AZ, US)
- Frank E. CONTRERAS (Phoenix, AZ, US)
- Charles MESAROSH (Mesa, AZ, US)
Cpc classification
A61N1/025
HUMAN NECESSITIES
A61N1/36014
HUMAN NECESSITIES
A61N1/0452
HUMAN NECESSITIES
A61N1/0456
HUMAN NECESSITIES
A61N2/02
HUMAN NECESSITIES
International classification
A61N2/02
HUMAN NECESSITIES
A61N1/40
HUMAN NECESSITIES
Abstract
Described herein are high-power pulsed electromagnetic field (PEMF) applicator systems. The systems can comprise a base housing including a controller configured to generate a low-power control signal and one or more applicators coupled to the base. Each applicator can include a drive circuitry comprising a generator configured to receive the low-power control signal and to produce, in the applicator, a high-power pulsed electromagnetic field signal based on the low-power control signal. The high-power pulsed electromagnetic field signal can has a power of greater than 40 W. Each applicator can further include a coil circuit configured to emit the high-power pulsed electromagnetic field signal, and an electromagnetic energy shield disposed between the drive circuitry and the coil circuit.
Claims
1. A high-power pulsed electromagnetic field (PEMF) applicator system, the system comprising: a base housing comprising a controller configured to generate a low-power control signal; and one or more applicators coupled to the base housing, each applicator comprising: a drive circuitry comprising a generator configured to receive the low-power control signal and generate a high-power pulsed electromagnetic field signal based on the low-power control signal; a coil circuit configured to emit the high-power pulsed electromagnetic field signal; and a feedback circuit disposed behind the coil circuit and on an opposite side of a printed circuit board with respect to the coil circuit, the feedback circuit configured to detect a field strength of the high-power pulsed electromagnetic field signal emitted by the coil circuit and reject capacitively coupled signals from the coil circuit.
2. The high-power PEMF applicator system of claim 1, wherein the high-power pulsed electromagnetic field signal has a power of greater than 40 watts.
3. The high-power PEMF applicator system of claim 1, wherein at least one of the one or more applicators include an electromagnetic energy shield configured to protect the drive circuitry from the high-power pulsed electromagnetic field signal.
4. The high-power PEMF applicator system of claim 1, wherein at least one of the one or more applicators are configured to be hand-held.
5. The high-power PEMF applicator system of claim 1, wherein the controller is configured to adjust an amplitude of the high-power pulsed electromagnetic field in response to the detected field strength by adjusting the low-power control signal.
6. The high-power PEMF applicator system of claim 1, wherein the feedback circuit is printed on a first side of the printed circuit board and the coil circuit is printed on a second side of the printed circuit board.
7. The high-power PEMF applicator system of claim 1, wherein at least one applicator of the one or more applicators further comprises a radio frequency identification (RFID) tuning/matching circuit.
8. The high-power PEMF applicator system of claim 1, wherein the high-power pulsed electromagnetic field signal has a carrier frequency of between approximately 10 MHz and 45 MHz.
9. The high-power PEMF applicator system of claim 1, wherein at least one applicator of the one or more applicators includes an RFID tag.
10. The high-power PEMF applicator system of claim 1, wherein at least one of the one or more applicators includes an RFID reader.
11. The high-power PEMF applicator system of claim 1, wherein the controller is coupled to the one or more applicators by a cable.
12. The high-power PEMF applicator system of claim 1, wherein the controller further comprises a cellular module, configured to transmit patient compliance data to a remote server.
13. The high-power PEMF applicator system of claim 1, wherein the controller is wirelessly coupled to at least one of the one or more applicators.
14. A method for treating a patient with high-power pulsed electromagnetic fields, the method comprising: generating, by a controller, a low-power control signal in a base housing; generating, by drive circuitry, a high-power pulsed electromagnetic field signal based, at least in part, on the low-power control signal; emitting, by a coil circuit, the high-power pulsed electromagnetic field signal, wherein the coil circuit is disposed on a first side of a printed circuit board; and detecting, with a feedback circuit disposed on a second side of the printed circuit board, a field strength of the high-power pulsed electromagnetic field signal emitted by the coil circuit and rejecting capacitively coupled signals from the coil circuit.
15. The method of claim 14, further comprising protecting, with an electromagnetic energy shield, the drive circuitry from the high-power pulsed electromagnetic field signal.
16. The method of claim 14, further comprising adjusting, by the controller, an amplitude of the high-power pulsed electromagnetic field signal in response to the detected field strength.
17. The method of claim 14, further comprising adjusting, by the controller, the low-power control signal in response to the detected field strength.
18. The method of claim 14, further comprising identifying, by the controller, an RFID tag, wherein the high-power pulsed electromagnetic field signal is emitted in response to the identified RFID tag.
19. The method of claim 14, further comprising transmitting patient compliance data to a remote server.
20. A high-power pulsed electromagnetic field (PEMF) applicator system, the system comprising: a base housing comprising a controller configured to generate a low-power control signal; and one or more applicators coupled to the base housing, each applicator comprising: a drive circuitry comprising a generator configured to receive the low-power control signal and generate a high-power pulsed electromagnetic field signal based on the low-power control signal; and a feedback circuit disposed behind a coil circuit and on an opposite side of a printed circuit board with respect to the coil circuit, the feedback circuit configured to detect a field strength of the high-power pulsed electromagnetic field signal emitted by the coil circuit and reject capacitively coupled signals from the coil circuit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0034] The novel features of the invention are set forth with particularity in the claims that follow. A better understanding of the features and advantages of the present invention will be obtained by reference to the following detailed description that sets forth illustrative embodiments, in which the principles of the invention are utilized, and the accompanying drawings of which:
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DETAILED DESCRIPTION
[0055] The present disclosure now will be described in detail with reference to the accompanying figures. This disclosure may be embodied in many different forms and should not be construed as limited to the example embodiments discussed herein.
[0056] Described herein are high-power pulsed electromagnetic field (PEMF) applicator systems. The systems can comprise a base housing including a controller configured to generate a low-power control signal and one or more applicators coupled to the base. Each applicator can include a drive circuitry comprising a generator configured to receive the low-power control signal and to produce a high-power, pulsed electromagnetic field signal based on the low-power control signal, in the applicator instead of in the base housing. The high-power pulsed electromagnetic field signal can has a power of greater than 40 W. It is advantageous for the generator to be disposed in the applicator instead of in the base housing. When the generator is disposed in the base housing, the high power electromagnetic field signal is transmitted to the applicator by a cable. There may be leakage of electromagnetic field signal from the base housing and from the cable, which can be harmful to the patients, and have negative effects for other circuitry in the base housing as well. It is difficult to shield the leakage from the base housing and from the cable. When the generator is disposed in the applicator, the high power electromagnetic field signal is generated in the applicator locally. There will not be high power electromagnetic field signal in the base housing and in the cable, thus significantly reducing harmful electromagnetic field signal leakage and increasing treatment efficiency.
[0057] Each applicator can further include a coil circuit configured to emit or apply the high-power pulsed electromagnetic field signal. Since the high power electromagnetic energy is generated locally in the applicator, an electromagnetic energy shield is disposed in the applicator between the drive circuitry and the coil circuit to protect the drive circuit from the high power electromagnetic energy. For example, the electromagnetic energy shield can be disposed over the drive circuitry on the applicator to shield the emission of the electromagnetic energy.
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[0059] Each applicator (e.g., 20, 20b) can include a drive circuitry comprising a generator (e.g., 25, 25b) configured to receive the low-power control signal and to produce a high-power, pulsed electromagnetic field signal based on the low-power control signal, in the applicator instead of in the base housing. The high-power pulsed electromagnetic field signal can have a power of greater than 40 W. The applicator (e.g., 20, 20b) can have a high voltage set-up locally, while the base housing 10 and the one or more cables (e.g., 15, 15b) remain low voltage. When the generator (e.g., 25, 25b) is disposed in the applicator (e.g., 20, 20b), the high power electromagnetic field signal is generated in the applicator locally, thus significantly reducing harmful electromagnetic field signal leakage and increasing treatment efficiency.
[0060] Each applicator can further include a coil circuit (e.g., 28, 28b) configured to emit or apply the high-power pulsed electromagnetic field signal. Since the high power electromagnetic energy is generated locally in the applicator, an electromagnetic energy shield (e.g., 24, 24b) is disposed in the applicator between the drive circuitry and the coil circuit, for example, over the drive circuitry on the applicator to shield the circuitry from the emission of the high power electromagnetic energy.
[0061] For example, the one or more applicators can be configured to be hand-held or wearable for the convenience of treatment. The one or more applicators can be applied to the back, the feet, the hand, the shoulder, or any other parts of the body of the patient.
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[0063] As shown in
[0064] For example, for RF circuitry, a high power means a power of 40 W or higher. As shown in
[0065] The base housing 10 can include a controller 12. The controller 12 can include a processor, for example, an embedded microprocessor to increase the capability of the system. For example, the controller can comprise an energetic firmware configured to generate the low-power control signal. For example, the controller 12 can include a FPGA block in addition to an energetics firmware. The base housing can further include a display. The base housing 10 can have a user interaction interface and programmable functionalities.
[0066] For example, in some variations, the controller 12 can have a cellular module, which can be configured to communicate with a server wirelessly and monitor compliance remotely. The controller 12 can further include a memory unit to store data on the system.
[0067] For example, the controller 12 can further comprise a diagnostic unit configured to run diagnosis and generate an error code. For example, the diagnosis unit can be configured to run a diagnosis on the system 100 when the system is powered up. The diagnostic info (and compliance/use info, etc.) can be displayed in the display. When the diagnosis unit detects a problem, the diagnosis unit can generate and display an error code. For example, the error code can be stored in the memory of the controller 12. For another example, when there is a cellular module, the system 100 can make connection with the cellular network and upload the diagnostic info (and compliance/use info, etc.) from prior use. The diagnostic info can be sent to the server, along with a unique ID for the system.
[0068] For example, each of the one or more applicators can have a unique radio frequency identification (RFID) tag. For example, the controller 12 can further comprise a radio frequency identification (RFID) reader. The radio frequency identification (RFID) can be transmitted through the one or more cables to RFID Tune/Match in the one or more applicators as shown in
[0069] For example, the one or more applicator comprises two or more applicators. For example, the low power control signal can comprise an address unique to each of the one or more applicators. For example, the one or more applicator further comprises an address decoder. The low power control signal can be transmitted to the one or more applicator with an address, only the applicator that matches the address can be turned on. In this way, the one or more applicators can be turned time sequentially.
[0070] In some variations, the system can be wireless with battery operated applicators. The controller could be battery operated (low power). Because the carrier frequency is generated in the applicator, the transmission of data is simplified.
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[0073] As shown in
[0074] Referring to
[0075] In some variations, the feedback circuit is printed on a first side of a printed circuit board and the coil circuit is printed on an opposite side of the printed circuit board. When the feedback circuit is printed on the same side of the coil circuit, there is a problem of capacitive coupling to the coil circuit. For example, even though the field strength is decreasing, the measured field strength can be still high because of capacitive coupling, thus resulting inaccurate measurement. By printing the feedback circuit on the opposite side of the coil circuit, capacitive coupling is eliminated. Therefore, it is advantageous to print the feedback circuit on the opposite side of the coil circuit to increase measurement accuracy by eliminating capacity coupling errors.
[0076] In some variations, the applicator further comprises a shield board configured to shield one side of the coil circuit. The shield board only allows the electromagnetic field goes in one direction. The applicator can further include an antenna board for RFID tuning and matching.
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[0078] For example, the gating signal sent to the one or more applicators can be identical. However, the gating signal can be configured to include an address. The one or more applicators receive the same address. Each of the one or more applicators has its own unique address. Each of the one or more applicators has an address decoder. Only the address of one of the one or more applicators matches the address in the gating signal at one time, thus only one applicator is turned on at one time.
[0079] In the case of two applicators, for example, the first applicator 20 can have an address of “00”, and the second applicator 20 can have an address of “01”. The controller can be configured to send a first gating signal including the address of “00”. The first applicator 20 is addressed. The first applicator 20 takes the pulse and gates through the carrier frequency. Then controller can be configured to send a second gating signal including the address of “01”. The second applicator 20b is addressed. The second applicator 20 takes the pulse and gates through the carrier frequency.
[0080] After the applicator gates the carrier frequency, the signal goes into the generator, for example, RF drive, where the signal is boosted to high power level. For example, a class-E amplifier can be used in the RF drive, which is very high efficiency.
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[0090] It is advantageous to have dual coil in a single applicator. For example, if the patient wants to treat feet, the patient would need two different treatment cycles for both feet, which can be inconvenient. With this dual coils applicator, the treatment time can be decreased by half. In addition, the dual coils applicator can be used to treat a larger area than a single coil applicator.
[0091] In general, described here is a high-power pulsed electromagnetic field (PEMF) applicator. The applicator can include a drive circuitry configured to receive a low-power control signal from a controller, wherein the drive circuitry comprises a generator configured to generate high-power pulsed electromagnetic field signal having a power of 40 W or greater based on the low-power control signal. The applicator can include a coil circuit configured to apply the high-power pulsed electromagnetic field signal to a subject, an electromagnetic energy shield disposed over the drive circuitry, and a detector configured to detect a field strength of the high-power pulsed electromagnetic field signal applied by the coil circuit, wherein the detector is configured to transmit the field strength to the controller so that the controller can adjust the low-power control signal in response to the detected field strength.
[0092] For example, the detector is disposed on an opposite side of a printed circuit board from the coil circuit to prevent capacitive coupling. For example, the generator is configured to generate pulsed radio frequency (RF) electromagnetic energy having a carrier frequency of 27 MHz. For example, the drive circuitry further comprises one or more impedance matching circuits.
[0093] For example, the applicator can further include an address decoder. For example, the applicator can further include a shield board configured to allow the electromagnetic energy to emit primarily in one direction. For example, the applicator can further include an antenna board.
[0094] Also described herein are methods for treating a patient with high-power pulsed electromagnetic fields. The methods can include providing a low-power control signal including a gating code from a controller in a base housing, transmitting the low-power control signal to at least one hand-held applicator in communication with the base housing, generating, in the hand-held applicator, a high-power, pulsed electromagnetic field signal based on the low-power control signal when the gating code matches an identifier code for the hand-held applicator, emitting the high-power, pulsed electromagnetic field signal from a coil in the at least one applicator, and detecting the emitted high-power, pulsed electromagnetic field signal using a detector that is coupled to an opposite side of the coil in the hand-held applicator.
[0095] For example, the methods can further include the step of transmitting the control signal having 15V or lower. For example, the methods can further include the step of adjusting the low-power control signal based on the detected emitted high-power, pulsed electromagnetic field signal. For example, the methods can further include the step of running diagnosis and generating an error code in the base housing.
[0096] For example, the methods can further include the step of transmitting the low-power control signal to a plurality of hand-held applicators. For example, the methods can further include the step of wirelessly receiving, in the base housing, instructions from a remote server.
[0097] For example, the methods can further include the step of transmitting a radio frequency identification (RFID) address between the hand-held applicator and the base housing and, further wherein the hand-held applicator may generate the high-power, pulsed electromagnetic field only after the base housing verifies the RFID address.
[0098] When a feature or element is herein referred to as being “on” another feature or element, it can be directly on the other feature or element or intervening features and/or elements may also be present. In contrast, when a feature or element is referred to as being “directly on” another feature or element, there are no intervening features or elements present. It will also be understood that, when a feature or element is referred to as being “connected”, “attached” or “coupled” to another feature or element, it can be directly connected, attached or coupled to the other feature or element or intervening features or elements may be present. In contrast, when a feature or element is referred to as being “directly connected”, “directly attached” or “directly coupled” to another feature or element, there are no intervening features or elements present. Although described or shown with respect to one embodiment, the features and elements so described or shown can apply to other embodiments. It will also be appreciated by those of skill in the art that references to a structure or feature that is disposed “adjacent” another feature may have portions that overlap or underlie the adjacent feature.
[0099] Terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. For example, as used herein, the singular forms “a”, “an” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms “comprises” and/or “comprising,” when used in this specification, specify the presence of stated features, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, steps, operations, elements, components, and/or groups thereof. As used herein, the term “and/or” includes any and all combinations of one or more of the associated listed items and may be abbreviated as “/”.
[0100] Spatially relative terms, such as “under”, “below”, “lower”, “over”, “upper” and the like, may be used herein for ease of description to describe one element or feature's relationship to another element(s) or feature(s) as illustrated in the figures. It will be understood that the spatially relative terms are intended to encompass different orientations of the device in use or operation in addition to the orientation depicted in the figures. For example, if a device in the figures is inverted, elements described as “under” or “beneath” other elements or features would then be oriented “over” the other elements or features. Thus, the exemplary term “under” can encompass both an orientation of over and under. The device may be otherwise oriented (rotated 90 degrees or at other orientations) and the spatially relative descriptors used herein interpreted accordingly. Similarly, the terms “upwardly”, “downwardly”, “vertical”, “horizontal” and the like are used herein for the purpose of explanation only unless specifically indicated otherwise.
[0101] Although the terms “first” and “second” may be used herein to describe various features/elements (including steps), these features/elements should not be limited by these terms, unless the context indicates otherwise. These terms may be used to distinguish one feature/element from another feature/element. Thus, a first feature/element discussed below could be termed a second feature/element, and similarly, a second feature/element discussed below could be termed a first feature/element without departing from the teachings of the present invention.
[0102] Throughout this specification and the claims which follow, unless the context requires otherwise, the word “comprise”, and variations such as “comprises” and “comprising” means various components can be co-jointly employed in the methods and articles (e.g., compositions and apparatuses including device and methods). For example, the term “comprising” will be understood to imply the inclusion of any stated elements or steps but not the exclusion of any other elements or steps.
[0103] In general, any of the apparatuses and methods described herein should be understood to be inclusive, but all or a sub-set of the components and/or steps may alternatively be exclusive, and may be expressed as “consisting of” or alternatively “consisting essentially of” the various components, steps, sub-components or sub-steps.
[0104] As used herein in the specification and claims, including as used in the examples and unless otherwise expressly specified, all numbers may be read as if prefaced by the word “about” or “approximately,” even if the term does not expressly appear. The phrase “about” or “approximately” may be used when describing magnitude and/or position to indicate that the value and/or position described is within a reasonable expected range of values and/or positions. For example, a numeric value may have a value that is +/−0.1% of the stated value (or range of values), +/−1% of the stated value (or range of values), +/−2% of the stated value (or range of values), +/−5% of the stated value (or range of values), +/−10% of the stated value (or range of values), etc. Any numerical values given herein should also be understood to include about or approximately that value, unless the context indicates otherwise. For example, if the value “10” is disclosed, then “about 10” is also disclosed. Any numerical range recited herein is intended to include all sub-ranges subsumed therein. It is also understood that when a value is disclosed that “less than or equal to” the value, “greater than or equal to the value” and possible ranges between values are also disclosed, as appropriately understood by the skilled artisan. For example, if the value “X” is disclosed the “less than or equal to X” as well as “greater than or equal to X” (e.g., where X is a numerical value) is also disclosed. It is also understood that throughout the application, data is provided in a number of different formats, and that this data, represents endpoints and starting points, and ranges for any combination of the data points. For example, if a particular data point “10” and a particular data point “15” are disclosed, it is understood that greater than, greater than or equal to, less than, less than or equal to, and equal to 10 and 15 are considered disclosed as well as between 10 and 15. It is also understood that each unit between two particular units are also disclosed. For example, if 10 and 15 are disclosed, then 11, 12, 13, and 14 are also disclosed.
[0105] Although various illustrative embodiments are described above, any of a number of changes may be made to various embodiments without departing from the scope of the invention as described by the claims. For example, the order in which various described method steps are performed may often be changed in alternative embodiments, and in other alternative embodiments one or more method steps may be skipped altogether. Optional features of various device and system embodiments may be included in some embodiments and not in others. Therefore, the foregoing description is provided primarily for exemplary purposes and should not be interpreted to limit the scope of the invention as it is set forth in the claims. The examples and illustrations included herein show, by way of illustration and not of limitation, specific embodiments in which the subject matter may be practiced. As mentioned, other embodiments may be utilized and derived there from, such that structural and logical substitutions and changes may be made without departing from the scope of this disclosure. Such embodiments of the inventive subject matter may be referred to herein individually or collectively by the term “invention” merely for convenience and without intending to voluntarily limit the scope of this application to any single invention or inventive concept, if more than one is, in fact, disclosed. Thus, although specific embodiments have been illustrated and described herein, any arrangement calculated to achieve the same purpose may be substituted for the specific embodiments shown. This disclosure is intended to cover any and all adaptations or variations of various embodiments. Combinations of the above embodiments, and other embodiments not specifically described herein, will be apparent to those of skill in the art upon reviewing the above description.