Pain or discomfort associated with a disorder, including neurologically-mediated disorders such as craniofacial pain syndromes or headache syndromes, may negatively impact the quality of life of the sufferer. In addition to the burden upon the individual, chronic neurological conditions may be a significant strain upon family members, employers, and the healthcare system.
Regarding migraine headaches, concomitant symptoms such as pain, nausea, aura, photophobia, dysesthesias, dizziness, vertigo, and dysequilibrium may represent a significant burden to the population. Epidemiological studies indicate that, in the United States, approximately 18% of women and 6% of men experience frequent migraine headaches and 2% of the general population suffer from chronic migraine headaches. Additionally, persons suffering with chronic migraine headaches or other headaches of similar severity and disability may be at a significantly greater risk for depression and attempted suicide. Thus, it is prudent for clinicians and researchers to continue searching for effective devices and methods to alleviate the symptoms associated with these disorders or to treat the disorders.
Standard pharmaceutical therapies for migraine headaches may generally be prescribed to prevent pain or to relieve pain. The various agents which fall under these two broad categories may exhibit a wide range of effectiveness and also incur varying degrees of side effects. From the perspective of economics, the expense of these medications may be a major source of financial burden on the consumer. Moreover, advanced interventions such as botulinum toxin injections, nerve blockades, neurosurgical alterations, and implanted electrical stimulators may significantly increase costs associated with treatment, while subjecting patients to potential changes in their anatomy and physiology, with no guarantee of complete or permanent symptomatic relief or disorder resolution.
There is a burgeoning field of understanding and applications within the neurosciences which seek to affect positive physiological changes in the nervous system through non-pharmaceutical and non-surgical applications. This field of ‘functional neurology’ views the human nervous system as a receptor driven system, which may be activated and stimulated in specific ways to produce adaptive, long-term changes through the process of neuroplasticity. This approach to neurorehabilitation utilizes, but not necessarily exclusively includes, various forms and patterns of receptor activation or deactivation to promote positive neurophysiological adaptations within the central nervous system, including the brain, brainstem, and spinal cord, which may promote physiological function of associated tissues, organs, and systems.
There would be a substantial advantage in providing a device or methods which can generate one or more stimuli which can alleviate one or more symptoms associated with a disorder, such as craniofacial pain syndromes or headache syndromes, or treat one or more disorders.
A broad object of particular embodiments of the invention can be to provide an external ear canal pressure regulation device including a fluid flow generator which generates a fluid flow; a valved conduit fluidicly coupled to the fluid flow generator, the valved conduit having a first fluid flow conduit interruptible by one or more valves to unidirectionally regulate the fluid flow in the first fluid flow conduit; and an earpiece having an axial earpiece bore which communicates between an earpiece first end and an earpiece second end, the axial earpiece bore fluidicly coupled to the valved conduit opposite the fluid flow generator, the earpiece having a compliant earpiece external surface configured to sealably engage an external ear canal as a barrier between an external ear canal pressure and an ambient pressure.
Another broad object of particular embodiments of the invention can be to provide an external ear canal pressure regulation device having the valved conduit coupled in a first configuration with the fluid flow generator and the earpiece to unidirectionally regulate the fluid flow in a first direction in the first fluid flow conduit such that the fluid flow can egress from the axial earpiece bore of the earpiece toward the external ear canal, thereby achieving an external ear canal pressure greater than the ambient pressure.
Another broad object of particular embodiments of the invention can be to provide an external ear canal pressure regulation device having the valved conduit coupled in a second configuration with the fluid flow generator and the earpiece to unidirectionally regulate the fluid flow in a second direction in the first fluid flow conduit such that the fluid flow can ingress to the axial earpiece bore of the earpiece from the external ear canal, thereby achieving an external ear canal pressure lesser than the ambient pressure.
Another broad object of particular embodiments of the invention can be to provide an external ear canal pressure regulation device having a valved conduit which removably couples to the fluid flow generator and the earpiece. The valved conduit can be coupled in the first configuration with the fluid flow generator and the earpiece to unidirectionally regulate the fluid flow in the first direction in the first fluid flow conduit. Additionally, the valved conduit can be coupled in the second configuration with the fluid flow generator and the earpiece to unidirectionally regulate the fluid flow in the second direction in the first fluid flow conduit.
Another broad object of particular embodiments of the invention can be to provide a method of producing an external ear canal pressure regulation device, the method including providing a fluid flow generator capable of generating a fluid flow; providing a valved conduit capable of being fluidicly coupled to the fluid flow generator, the valved conduit having a first fluid flow conduit; providing one or more valves capable of interrupting the first fluid flow conduit to unidirectionally regulate the fluid flow in the first fluid flow conduit; and providing an axial earpiece bore, which communicates between an earpiece first end and an earpiece second end of an earpiece, the axial earpiece bore capable of being fluidicly coupled to the valved conduit opposite the fluid flow generator, the earpiece having a compliant earpiece external surface configured to sealably engage an external ear canal as a barrier between an external ear canal pressure and an ambient pressure.
Another broad object of particular embodiments of the invention can be to provide a method of using an external ear canal pressure regulation device, the method including obtaining the external ear canal pressure regulation device including a fluid flow generator which generates a fluid flow; a valved conduit fluidicly coupled to the fluid flow generator, the valved conduit having a first fluid flow conduit interruptible by one or more valves to unidirectionally regulate the fluid flow in the first fluid flow conduit; and an earpiece having an axial earpiece bore which communicates between an earpiece first end and an earpiece second end, the axial earpiece bore fluidicly coupled to the valved conduit opposite the fluid flow generator, the earpiece having a compliant earpiece external surface configured to sealably engage an external ear canal as a barrier between an external ear canal pressure and an ambient pressure; sealably engaging the earpiece external surface of the earpiece with the external ear canal; generating the fluid flow between the fluid flow generator and the axial earpiece bore; and regulating an external ear canal pressure differential between the external ear canal pressure and the ambient pressure.
Naturally, further objects of the invention are disclosed throughout other areas of the specification, drawings, and claims.
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The term “pressure differential” for the purposes of this invention means the difference in pressure between two locations.
The term “pressure differential amplitude” for the purposes of this invention means the numerical value of the difference in pressure between two locations. The pressure differential amplitude (59) can be expressed as a number without a sign (positive or negative), regardless of whether the pressure is greater or lesser in the first location relative to the second location. As an illustrative example, an external ear canal pressure (10) of +50 kilopascals above the ambient pressure (11) and an external ear canal pressure (10) of −50 kilopascals below the ambient pressure (11) can both have a pressure differential amplitude (59) of 50 kilopascals.
The term “external ear canal pressure” for the purposes of this invention means forces exerted within the external ear canal (6) and, without limitation to the breadth of the foregoing, means forces exerted within the external ear canal (6) by a fluid volume (12), a pre-selected fluid volume (12), or a fluid flow (8) delivered to or generated in the external ear canal (6) by operation of the external ear canal pressure regulation device (1).
The term “ambient pressure” for the purposes of this invention means forces exerted external to the external ear canal (6) in the ambient environment and, without limitation to the breadth of the foregoing, means forces exerted on the earpiece (3) having the earpiece external surface (7) sealably engaged with the external ear canal (6), as herein described.
The term “pre-selected” for the purposes of this invention means a parameter, such as a fluid volume (12) or a pressure differential amplitude (59) which has been determined prior to administration, for example by a user (23) of the external ear canal pressure regulation device (1), for delivery to, generation in, or administration to the external ear canal (6) by operation of the external ear canal pressure regulation device (1) and subsequently delivered to, generated in, or administered to the external ear canal (6) by operation of the external ear canal pressure regulation device (1). For example, a pre-selected fluid volume (12) of 10 milliliters can be prior selected for delivery to the external ear canal (6) by operation of the external ear canal pressure regulation device (1) and subsequently, the pre-selected fluid volume (12) of 10 milliliters can be delivered to the external ear canal (6) by operation of the external ear canal pressure regulation device (1).
The term “symptom” for the purposes of this invention means any discomfort or combination of discomforts associated with a disorder. Without limiting the breadth of the foregoing, symptoms can include: dizziness; vertigo; nausea; imbalance; paresthesia; dysesthesia; sensitivity to light; sensitivity to odor; sensitivity to sound; anxiety; sleeplessness; irritability; fatigue; loss of appetite; blurred vision; gut disturbances; acute pain or chronic pain of varying characteristics including but not limited to throbbing, tearing, sharp, dull, deep, lancinating, burning, aching, stabbing, intense, lightning-like, sense of swelling, or tingling; or the like; or combinations thereof.
The term “disorder” for the purposes of this invention means a physical or mental condition which may not be normal or healthy. Without limiting the breadth of the foregoing, a disorder can include: neuropathic craniofacial pain syndromes such as neuralgias, for example trigeminal neuralgia; temporomandibular joint syndrome; headache syndromes such as migraine headaches, chronic daily headaches, cluster headaches, muscle tension headaches, post-traumatic headaches, or chronic paroxysmal hemicranias; endolymphatic hydrops; vertigo; tinnitus; syndromes resulting from brain injury; syndromes resulting from impaired neurologic function, including cognitive disorders such as attention deficit disorder, emotional disorders such as anxiety disorders, or seizure disorders; phantom limb; middle ear disorders; inner ear disorders; or the like, or combinations thereof.
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As to particular embodiments, the fluid flow generator (2) can include a bladder (14) or a diaphragm (15) which has a resiliently flexible wall (16) having a wall external surface (17) and a wall internal surface (18). The wall external surface (17) can be configured in any manner which allows deformation of the resiliently flexible wall (16) (as shown in the examples of
As to other particular embodiments, the fluid flow generator (2) can include a positive displacement pump (26) in which a piston (27) reciprocally operates in a barrel (28) (as shown in the illustrative example of
The fluid flow generator (2) can be configured to generate a fluid flow (8) in the valved conduit (5) between the fluid flow generator (2) and the axial earpiece bore (4), whereby the fluid flow (8) can have a fluid volume (12) typically in a range of between 0 milliliters to about 20 milliliters; however, embodiments can have a lesser or greater fluid volume (12) depending upon the application. As to particular embodiments, the fluid volume (12) can be a pre-selected fluid volume (12), which can be selected from one or more of the group including or consisting of: between 0 milliliters to about 2 milliliters, between about 1 milliliter to about 3 milliliters, between about 2 milliliters to about 4 milliliters, between about 3 milliliters to about 5 milliliters, between about 4 milliliters to about 6 milliliters, between about 5 milliliters to about 7 milliliters, between about 6 milliliters to about 8 milliliters, between about 7 milliliters to about 9 milliliters, between about 8 milliliters to about 10 milliliters, between about 9 milliliters to about 11 milliliters, between about 10 milliliters to about 12 milliliters, between about 11 milliliters to about 13 milliliters, between about 12 milliliters to about 14 milliliters, between about 13 milliliters to about 15 milliliters, between about 14 milliliters to about 16 milliliters, between about 15 milliliters to about 17 milliliters, between about 16 milliliters to about 18 milliliters, between about 17 milliliters to about 19 milliliters, and between about 18 milliliters to about 20 milliliters.
One or more pre-selected fluid volumes (12) can be generated with the external ear canal pressure regulation device (1) depending upon the method of use, which can be further influenced by factors such as user (23) anatomy, physiology, or biochemistry of the auditory meatus (24); disorder symptom targeted for alleviation; disorder targeted for treatment; observable effect(s) of using one or more pre-selected fluid volumes (12) in a particular method of using the external ear canal pressure regulation device (1); or the like; or combinations thereof; but not so much as to cause discomfort to the user (23) or injury to the auditory meatus (24) or the tympanic membrane (25).
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The earpiece (3) of the external ear canal pressure regulation device (1) can be formed from a compliant material which can compressibly deform upon engagement with the external ear canal (6), thereby allowing the earpiece (3) to sealably conform to the external ear canal (6). As to these particular embodiments, the earpiece (3) can be formed, molded, three-dimensionally printed, or otherwise fabricated from any of a numerous and wide variety of materials capable of sealable engagement with the external ear canal (6), including or consisting of: a silicone, a foam (including polyurethane foam), a polyvinylsiloxane, a low durometer elastomer, or the like, or combinations thereof.
As to particular embodiments, the earpiece (3) can be formed from one material, for example a lesser durometer elastomer. As to other particular embodiments, the earpiece (3) can be formed from a plurality of layers, for example an inner core layer having a greater durometer surrounded by an outer layer having a lesser durometer or an inner core layer having a lesser durometer surrounded by an outer layer having a greater durometer. As to yet other particular embodiments, a flexible earpiece wall can define a hollow inner space of the earpiece (3), whereby the flexible earpiece wall can deform to allow the earpiece external surface (7) to sealably conform to the external ear canal (6).
As to particular embodiments, a portion of the earpiece external surface (7) can inwardly taper approaching an earpiece second end (29) (as shown in the examples of
The earpiece external surface (7) can further include a plurality of circumferential ribs (30) disposed in spaced apart relation between an earpiece first end (31) and the earpiece second end (29). Each of the plurality of circumferential ribs (30) can extend from the earpiece external surface (7) a substantially uniform height; however, as to those embodiments of the earpiece external surface (7) having a conical configuration, the plurality of circumferential ribs (30) can have a rib diameter (32) which decreases approaching the earpiece second end (29) (as shown in example of
The earpiece external surface (7) can remain sealably engaged with the external ear canal (6) by frictional forces between the earpiece external surface (7) and the external ear canal (6). As to particular embodiments, the earpiece external surface (7) can remain engaged with the external ear canal (6) by forcible urging against the external ear canal pressure regulation device (1) during normal operation. As to other particular embodiments, a restraint element coupled to the external ear canal pressure regulation device (1) can be worn about the ear (35) or the head (36) to assist with retention of the earpiece (3) within the external ear canal (6).
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The tubular bolt (37) can further include a bolt external surface (39) dimensioned for removable insertion into the axial earpiece bore (4), providing an adequate fluid-tight seal to maintain sufficient fluid flow (8) within the axial earpiece bore (4) during normal use as described above, for example over a normal range of operating temperatures and a normal range of operating pressures. As to particular embodiments, the bolt external surface (39) can further include a plurality of circumferential barbs spaced apart along the bolt external surface (39) to assist in retaining the tubular bolt (37) within the axial earpiece bore (4) and in providing the fluid-tight seal.
As to particular embodiments including a discrete tubular bolt (37), the earpiece (3) and the tubular bolt (37) can be provided as a one-piece construct having the earpiece (3) molded or formed about the tubular bolt (37). As to other particular embodiments, the earpiece (3) can be formed or molded to provide increasing rigidity approaching the axial earpiece bore (4). However, embodiments need not necessarily be so limited, as any of a wide variety of numerous structures known to those of ordinary skill in the art can be utilized to provide a tubular bolt (37) in fluid-tight relation with the axial earpiece bore (4).
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The releasably couplable surfaces (44) of the fluid flow generator (2), the earpiece (3), the conduit body first end (42), and the conduit body second end (43) can matably engage. As an illustrative example, the releasably couplable surfaces (44) can be configured as rotatably matable spiral threads. However, embodiments need not necessarily be so limited and can have releasably couplable surfaces (44) configured in any of a wide variety of numerous manners which allow the conduit body (41) including the valved conduit (5) to be positioned in a first configuration (45) to operationally achieve a pressure differential (9) having the external ear canal pressure (10) greater than the ambient pressure (11) (as shown in the example of
As an illustrative example, the conduit body (41) including the valved conduit (5) can be positioned in the first configuration (45) by removably coupling the conduit body first end (42) with the fluid flow generator (2) and removably coupling the conduit body second end (43) with the earpiece (3) (as shown in the example of
As to particular embodiments, the fluid flow generator (2) can be removed from the conduit body first end (42) and the earpiece (3) can be removed from the conduit body second end (43) to disassemble the first configuration (45). The conduit body (41) can be rotated without any structural alteration to reverse orientation of the conduit body first and second ends (42)(43) (as shown in the example of
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The first fluid flow conduit (49) can be interruptible by a first valve (52) to unidirectionally regulate the fluid flow (8) between the first fluid flow conduit first and second ends (50)(51) and, correspondingly, between the fluid flow generator (2) and the axial earpiece bore (4). In the first configuration (45) described above, the fluid flow generator (2) can be sealably engaged with the first fluid flow conduit first end (50) and the axial earpiece bore (4) can be sealably engaged with the first fluid flow conduit second end (51) to unidirectionally regulate the fluid flow (8) in the first direction (47) from the fluid flow generator (2) toward the axial earpiece bore (4). As such, the external ear canal pressure regulation device (1) sealably engaged with an external ear canal (6) can operationally achieve a pressure differential (9) having the external ear canal pressure (10) greater than the ambient pressure (11) by transferring a fluid volume (12) from the fluid flow generator (2) toward the external ear canal (6). In the second configuration (46) described above, the fluid flow generator (2) can be sealably engaged with the first fluid flow conduit first end (50) and the axial earpiece bore (4) can be sealably engaged with the first fluid flow conduit second end (51) to unidirectionally regulate the fluid flow (8) in the second direction (48) from the axial earpiece bore (4) toward the fluid flow generator (2). As such, the external ear canal pressure regulation device (1) sealably engaged with an external ear canal (6) can operationally achieve a pressure differential (9) having the external ear canal pressure (10) lesser than the ambient pressure (11) by transferring a fluid volume (12) from the external ear canal (6) toward the fluid flow generator (2).
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The resiliently flexible wall (16) of the volumetrically adjustable element (13) can return to a non-deformed condition (21) which can increase the internal volume (19) to generate a fluid flow (8) in the second fluid flow conduit (55), whereby the second valve (56) unidirectionally regulates the fluid flow (8) to ingress from an ambient pressure (11) toward the fluid flow generator (2). The first valve (52) can interrupt the fluid flow (8) in the first fluid flow conduit (49) from the axial earpiece bore (4) toward the fluid flow generator (2). Embodiments of the external ear canal pressure regulation device (1) sealably engaged with an external ear canal (6) can operationally maintain a pressure differential (9) in which the external ear canal pressure (10) can be maintained greater than the ambient pressure (11) and concurrently transfer a fluid volume (12) from the ambient pressure (11) toward the fluid flow generator (2) to return the resiliently flexible wall (16) of the volumetrically adjustable element (13) toward the non-deformed condition (21).
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The resiliently flexible wall (16) of the volumetrically adjustable element (13) can return to a non-deformed condition (21) which can increase the internal volume (19) to generate a fluid flow (8) in the second direction (48) in the first fluid flow conduit (49), whereby the first valve (52) unidirectionally regulates the fluid flow (8) to ingress from the axial earpiece bore (4) of the earpiece (3) toward the fluid flow generator (2). The second valve (56) can interrupt the fluid flow (8) in the second fluid flow conduit (55) from the ambient pressure (11) toward the fluid flow generator (2). As such, the external ear canal pressure regulation device (1) sealably engaged with an external ear canal (6) can operationally achieve and maintain a pressure differential (9) in which the external ear canal pressure (10) can be maintained lesser than the ambient pressure (11) and concurrently transfer a fluid volume (12) from the external ear canal (6) toward the fluid flow generator (2) to return the resiliently flexible wall (16) of the volumetrically adjustable element (13) toward the non-deformed condition (21).
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The third fluid flow conduit (57) can be interruptible by a third valve (58) to unidirectionally regulate the fluid flow (8) in the third fluid flow conduit (57). As to particular embodiments, the third valve (58) can regulate the fluid flow (8) to egress toward the ambient pressure (11) from the third fluid flow conduit (57). As to other particular embodiments, the third valve (58) can regulate the fluid flow (8) to ingress from the ambient pressure (11) toward the third fluid flow conduit (57).
As to particular embodiments, the third valve (58) can interrupt the fluid flow (8) within the third fluid flow conduit (57) until a pressure differential (9) between the second portion (54) of the first fluid flow conduit (49) and the ambient pressure (11) exceeds a pre-selected pressure differential (9) having a pressure differential amplitude (59) typically in a range of between 0 kilopascals to about 50 kilopascals; however embodiments can have a lesser or greater pre-selected pressure differential amplitude (59) depending upon the application. As to particular embodiments, the pre-selected pressure differential amplitude (59) can be selected from the group including of consisting of: between 0 kilopascals to about 5 kilopascals, between about 2.5 kilopascals to about 7.5 kilopascals, between about 5 kilopascals to about 10 kilopascals, between about 7.5 kilopascals to about 12.5 kilopascals, between about 10 kilopascals to about 15 kilopascals, between about 12.5 kilopascals to about 17.5 kilopascals, between about 15 kilopascals to about 20 kilopascals, between about 17.5 kilopascals to about 22.5 kilopascals, between about 20 kilopascals to about 25 kilopascals, between about 22.5 kilopascals to about 27.5 kilopascals, between about 25 kilopascals to about 30 kilopascals, between about 27.5 kilopascals to about 32.5 kilopascals, between about 30 kilopascals to about 35 kilopascals, between about 32.5 kilopascals to about 37.5 kilopascals, between about 35 kilopascals to about 40 kilopascals, between about 37.5 kilopascals to about 42.5 kilopascals, between about 40 kilopascals to about 45 kilopascals, between about 42.5 kilopascals to about 47.5 kilopascals, and between about 45 kilopascals to about 50 kilopascals.
One or more pre-selected pressure differential amplitudes (59) can be generated with the external ear canal pressure regulation device (1) depending upon the method of use, which can be further influenced by factors such as user (23) anatomy, physiology, or biochemistry of the auditory meatus (24); disorder symptom targeted for alleviation; disorder targeted for treatment; observable effect(s) of using one or more pre-selected pressure differential amplitudes (59) in a particular method of using the external ear canal pressure regulation device (1); or the like; or combinations thereof; but not so much as to cause discomfort to the user (23) or injury to the auditory meatus (24) or the tympanic membrane (25).
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As to particular embodiments, each of the first, second, or third valves (52)(56)(58) can operate between the closed condition (68), which can be substantially leak-tight to backward flow and substantially leak-tight to forward fluid flow (8) up to about a 50 kilopascal pressure differential amplitude (59) on opposed sides of the valve (61), and the open condition (69), which can have a forward flow in the range of about 0.2 milliliters per second to about 20 milliliters per second. As to particular embodiments, the pressure differential (9) between opposed sides of a valve (61) or the forward fluid flow (8) in the open condition (69) of a valve (61) can be adjusted by the configuration of the valve (61), the unrestricted cross-sectional area of the manifold fluid flow path (62), or the like, or combinations thereof. Additionally, while examples of the external ear canal pressure regulation device (1) disclosed can generate a pressure differential amplitude (59) between the external ear canal pressure (10) and the ambient pressure (11) of up to 50 kilopascals, these examples are not intended to teach or suggest that all embodiments of the external ear canal pressure regulation device (1) necessarily achieve this pressure differential amplitude (59) between the external ear canal pressure (10) and the ambient pressure (11). Rather, particular embodiments of the external ear canal pressure regulation device (1) can be configured to achieve a pressure differential (9) between the external ear canal pressure (10) and the ambient pressure (11) based on being effective to alleviate one or more disorder symptoms, for example neurologically-mediated pain, or treat one or more disorders, for example craniofacial pain syndromes or headache syndromes.
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As to particular embodiments, the pressure relief element (70) can be configured to extend a sufficient distance outward from the conduit body (41) to allow gripping engagement by a user (23). As to other particular embodiments, the pressure relief element (70) can be configured as a resiliently flexible portion of the conduit body (41) which can flex upon pressing engagement, placing the valve (61) in the open condition (69). Upon disengagement of the pressure relief element (70), the valve (61) can return to the closed condition (68).
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As to those embodiments having a volumetrically adjustable element (13), the fluid flow (8) from the external ear canal (6) toward the fluid flow generator (2) can allow the resiliently flexible wall (16) to return toward the non-deformed condition (21) by increasing the internal volume (19). As to those embodiments having a piston (27) which reciprocally operates in a barrel (28), the fluid flow (8) through the first fluid flow conduit (49) from the external ear canal (6) toward the fluid flow generator (2) can allow the piston (27) to return to a location within the barrel (28) which increases the barrel internal volume.
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The third valve (58) can be included in a second valve assembly (84), which can be fluidicly coupled to a third fluid flow conduit (57) communicating between the first fluid flow conduit (49) and the ambient pressure (11) to interrupt the fluid flow (8) between the third fluid flow conduit (57) and the ambient pressure (11), thereby unidirectionally regulating the fluid flow (8) in the third fluid flow conduit (57) between the first fluid flow conduit (49) and the ambient pressure (11). As to particular embodiments, the fluid flow generator (2) and the first and second valve assemblies (83)(84) can be provided as a one-piece construct. As to other particular embodiments, the fluid flow generator (2), the first valve assembly (83), and the second valve assembly (84) can be provided as a plurality of pieces which can be assembled into a configuration capable of removably coupling to the conduit body (41).
As to particular embodiments, the first and second valves (52)(56) included in the first valve assembly (83) can have any type of valve configuration, as described above, which can operate between a closed condition (68) and an open condition (69) to unidirectionally regulate fluid flow (8) in a pre-selected range. As an illustrative example, the first and second valves (52)(56) included in the first valve assembly (83) can both be configured as flapper valves (64) having hinges (94) (as shown in the example of
As to particular embodiments, the second valve assembly (84) can be operable to allow the external ear canal pressure (10) to return toward the ambient pressure (11). The second valve assembly (84) can include a resiliently deformable annular member (85) and a pressure relief element (70) configured as a deformation member (86) capable of deforming the resiliently deformable annular member (85). The resiliently deformable annular member (85) can have an annular member external surface (87) which can be disposed adjacent to and sealably engage with the conduit internal surface (88) of the first fluid flow conduit (49).
An annular member aperture element (89) communicating between an annular member internal surface (90) and the annular member external surface (87) can align with the axial earpiece bore (4) to form a pass-through (91) between the first fluid flow conduit (49) and the axial earpiece bore (4). The deformation member (86) can be disposed through the third fluid flow conduit (57) communicating between the first fluid flow conduit (49) and the ambient pressure (11) such that a deformation member first end (92) can extend outward from the third fluid flow conduit (57) and the conduit body (41) and a deformation member second end (93) can deformably engage the annular member external surface (87). Upon gripping engagement of the deformation member first end (92), the deformation member (86) can be urged toward the resiliently deformable annular member (85) to deform the resiliently deformable annular member (85) such that the annular member external surface (87) disengages from the conduit internal surface (88) of the first fluid flow conduit (49), thereby positioning the third valve (58) in the open condition (69) to allow the fluid flow (8) to flow between the axial earpiece bore (4), the first and third fluid flow conduits (49)(57), and the ambient pressure (11). As such, the third valve (58) in the open condition (69) can generate a fluid flow (8) between the external ear canal (6) and the ambient pressure (11) to return the external ear canal pressure (10) toward the ambient pressure (11), whether from an external ear canal pressure (10) greater than the ambient pressure (11) or an external ear canal pressure (10) lesser than the ambient pressure (11).
The fluid flow generator (2), the first valve assembly (83), and the second valve assembly (84) can be removably coupled to the conduit body (41) in either one of a first configuration (45) or a second configuration (46). The releasably couplable surfaces (44) of the conduit body (41), the fluid flow generator (2), the first valve assembly (83), and the second valve assembly (84) can have sufficiently similar configurations to allow the conduit body (41) to removably couple to the fluid flow generator (2), the first valve assembly (83), and the second valve assembly (84) in either one of the first configuration (45) or the second configuration (46) depending upon whether the valved conduit (5) operates to achieve a pressure differential (9) having the external ear canal pressure (10) greater than the ambient pressure (11) (as shown in the example of
As to the particular embodiments of the external ear canal pressure regulation device (1) described herein, the first and second valves (52)(56) fluidicly couple to the corresponding first and second fluid flow conduits (49)(55) to interrupt the fluid flow (8) within the corresponding first and second fluid flow conduits (49)(55), whether the conduit body (41) can be positioned in the first configuration (45) or the second configuration (46).
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In the first configuration (45), the second valve (56) can be operable to unidirectionally regulate the fluid flow (8) in the second fluid flow conduit (55), whereby the second valve (56) in the open condition (69) allows the fluid flow (8) to flow from the ambient pressure (11) toward the fluid flow generator (2) and, in the closed condition (68), precludes the fluid flow (8) from flowing between the ambient pressure (11) and the fluid flow generator (2).
As such, the fluid flow (8), generated upon return of the resiliently flexible wall (16) of the diaphragm (15) to the non-deformed condition (21) to increase the internal volume (19), can be regulated in the second fluid flow conduit (55) to ingress from the ambient pressure (11) toward the fluid flow generator (2), thereby maintaining the desired pressure differential (9) between the external ear canal pressure (10) and the ambient pressure (11) while allowing the resiliently flexible wall (16) of the diaphragm (15) to return toward the non-deformed condition (21).
As to particular embodiments, the fluid flow generator (2), the first valve assembly (83), and the conduit body (41) in the first configuration (45) can further include the second valve assembly (84), positioned such that the third valve (58) can be fluidicly coupled to the third fluid flow conduit (57) communicating between the first fluid flow conduit (49) and the ambient pressure (11) to unidirectionally regulate the fluid flow (8) in the third fluid flow conduit (57) between the first fluid flow conduit (49) and the ambient pressure (11). The third valve (58) in the open condition (69) allows the fluid flow (8) to flow from the axial earpiece bore (4), through the first and third fluid flow conduits (49)(57), and toward the ambient pressure (11) and, in the closed condition (68), precludes the fluid flow (8) from flowing between the axial earpiece bore (4) and the ambient pressure (11). As such, the third valve (58) in the open condition (69) can generate a fluid flow (8) from the external ear canal (6) toward the ambient pressure (11) to return the external ear canal pressure (10) toward the ambient pressure (11).
As to particular embodiments, the fluid flow generator (2), the first valve assembly (83), and the second valve assembly (84) can be removed from the conduit body (41) to disassemble the first configuration (45). The first valve assembly (83) can be rotated without any structural alteration to reverse orientation of the first valve assembly (83) in relation to the conduit body (41), thereby achieving the second configuration (46).
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In the second configuration (46), the first valve (52) can be operable to unidirectionally regulate the fluid flow (8) in the first fluid flow conduit (49), whereby the first valve (52) in the open condition (69) allows the fluid flow (8) to flow from the axial earpiece bore (4) toward the fluid flow generator (2) and, in the closed condition (68), precludes the fluid flow (8) from flowing between the axial earpiece bore (4) and the fluid flow generator (2).
As such, the fluid flow (8), generated upon return of the resiliently flexible wall (16) of the diaphragm (15) to the non-deformed condition (21) to increase the internal volume (19), can be regulated in a second direction (48) in the first fluid flow conduit (56) to ingress from the external ear canal (6) to the axial earpiece bore (4) toward the fluid flow generator (2), thereby achieving a pressure differential (9) having the external ear canal pressure (10) lesser than the ambient pressure (11). Upon achieving the desired pressure differential (9) between the external ear canal pressure (10) and the ambient pressure (11), the first valve (52) can return toward the closed condition (68), precluding the fluid flow (8) from flowing between the axial earpiece bore (4) and the fluid flow generator (2), thereby maintaining the desired pressure differential (9) between the external ear canal pressure (10) and the ambient pressure (11).
As to particular embodiments, the fluid flow generator (2), the first valve assembly (83), and the conduit body (41) in the second configuration (46) can further include the second valve assembly (84), positioned such that the third valve (58) can be fluidicly coupled to the third fluid flow conduit (57) communicating between the first fluid flow conduit (49) and the ambient pressure (11) to unidirectionally regulate the fluid flow (8) in the third fluid flow conduit (57) between the first fluid flow conduit (49) and the ambient pressure (11). The third valve (58) in the open condition (69) allows the fluid flow (8) to flow from the ambient pressure (11), through the third and first fluid flow conduits (57)(49), and toward the axial earpiece bore (4) and, in the closed condition (68), precludes the fluid flow (8) from flowing between the ambient pressure (11) and the axial earpiece bore (4). As such, the third valve (58) in the open condition (69) can generate a fluid flow (8) from the ambient pressure (11) toward the external ear canal (6) to return the external ear canal pressure (10) toward the ambient pressure (11).
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The constant pressure amplitude (77) can be maintained over a time period (76) to alleviate a disorder symptom or treat a disorder, whereby the constant pressure amplitude (77) can be in a range of between about +50 kilopascals above the ambient pressure (11) to about −50 kilopascals below the ambient pressure (11). A positive external ear canal pressure (10) relative to the ambient pressure (11) can be achieved by maintaining the constant pressure amplitude (77) in a range of between about 0 kilopascals to about +50 kilopascals above the ambient pressure (11). Alternatively, a negative external ear canal pressure (10) relative to the ambient pressure (11) can be achieved by maintaining the constant pressure amplitude (77) in a range of between about −50 kilopascals to about 0 kilopascals below the ambient pressure (11).
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One or more pressure wave frequencies (79) can be generated with the external ear canal pressure regulation device (1) depending upon the method of use, which can be further influenced by factors such as user (23) anatomy, physiology, or biochemistry of the auditory meatus (24); disorder symptom targeted for alleviation; disorder targeted for treatment; observable effect(s) of using one or more pressure wave frequencies (79) in a particular method of using the external ear canal pressure regulation device (1); or the like; or combinations thereof; but not so much as to cause discomfort to the user (23) or injury to the auditory meatus (24) or the tympanic membrane (25).
The pressure wave (78) can oscillate with a desired pressure wave frequency (79) within only positive pressure amplitudes (77) in a range of between 0 kilopascals to about +50 kilopascals above the ambient pressure (11) (as shown in the examples of
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As to particular embodiments, the fluid flow generator (2) and the third valve pressure relief element (72) coupled to the third valve (58) can be alternately repeatedly operated to generate a fluid flow (8) having a pressure wave (78) including a pressure wave amplitude (77) and a pressure wave frequency (79).
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As to particular embodiments, the external ear canal pressure regulation device (1) can further include a housing (80) having a housing internal surface defining a generally hollow internal space in which components of the external ear canal pressure regulation device (1) can be housed. As to particular embodiments, the housing (80) can be configured to fill a concha area (82) of the ear (35), whether in whole or in part, without extending any substantial distance outside of the external auditory meatus (24), thereby providing a discrete, unobtrusive, portable configuration which can be used upon occurrence to alleviate one or more disorder symptoms, for example neurologically-mediated pain, or treat one or more disorders, for example craniofacial pain syndromes or headache syndromes.
While the fluid flow generator (2) of the external ear canal pressure regulation device (1) above described typically delivers a fluid flow (8) of air to the external ear canal (6) to achieve the pressure differential (9) between the external ear canal pressure (10) and the ambient pressure (11), this is not intended to be limiting with respect to the wide variety of fluids which can be delivered to the external ear canal (6) by the external ear canal pressure regulation device (1). As illustrative examples, the wide variety of fluids can include: a purified gas, such as oxygen, nitrogen, argon, or the like; a mixture of partial pressures of gases; a liquid, such as water, oil, alcohol, or the like; or combinations thereof.
Additionally, while the fluid flow (8) or the transfer of a fluid volume (12) between components of the external ear canal pressure regulation device (1), between components of the external ear canal pressure regulation device (1) and the external ear canal (6), or between components of the external ear canal pressure regulation device (1) and the ambient pressure (11) can be above described as typically between a first point and a second point for the purpose of brevity, the fluid flow (8) or the transfer of the fluid volume (12) includes all points within the manifold fluid flow path (62) between the first point and the second point. For example, a fluid volume (12) transferred from the fluid flow generator (2) to the external ear canal (6) can travel along a fluid flow path (62) including the fluid flow generator (2), the first fluid flow conduit first end (50), the first portion (53) of the first fluid flow conduit (49), the first valve (52), the second portion (54) of the first fluid flow conduit (49), the first fluid flow conduit second end (51), the earpiece first end (31), the axial earpiece bore (4), the earpiece second end (29), and the external ear canal (6).
A method of producing particular embodiments of the external ear canal pressure regulation device (1) can include providing a fluid flow generator (2) capable of generating a fluid flow (8); providing a valved conduit (5) capable of fluidicly coupling to the fluid flow generator (2), the valved conduit (5) having a first fluid flow conduit (49); providing a first valve (52) capable of interrupting the first fluid flow conduit (49) to unidirectionally regulate the fluid flow (8) in the first fluid flow conduit (49); and providing an axial earpiece bore (4), which communicates between an earpiece first end (31) and an earpiece second end (32) of an earpiece (3), the axial earpiece bore (4) capable of fluidicly coupling to the valved conduit (5) opposite the fluid flow generator (2), the earpiece (3) having a compliant earpiece external surface (7) configured to sealably engage an external ear canal (6) as a barrier between an external ear canal pressure (10) and an ambient pressure (11).
The method of producing particular embodiments of the external ear canal pressure regulation device (1) can further include providing a fluid flow generator (2) having a configuration capable of generating the fluid flow (8) having a fluid volume (12) in a range of between 0 milliliters to about 20 milliliters. As to particular embodiments, the fluid volume (12) can have a pre-selected fluid volume (12), which can be selected from one or more of the group including or consisting of: between 0 milliliters to about 2 milliliters, between about 1 milliliter to about 3 milliliters, between about 2 milliliters to about 4 milliliters, between about 3 milliliters to about 5 milliliters, between about 4 milliliters to about 6 milliliters, between about 5 milliliters to about 7 milliliters, between about 6 milliliters to about 8 milliliters, between about 7 milliliters to about 9 milliliters, between about 8 milliliters to about 10 milliliters, between about 9 milliliters to about 11 milliliters, between about 10 milliliters to about 12 milliliters, between about 11 milliliters to about 13 milliliters, between about 12 milliliters to about 14 milliliters, between about 13 milliliters to about 15 milliliters, between about 14 milliliters to about 16 milliliters, between about 15 milliliters to about 17 milliliters, between about 16 milliliters to about 18 milliliters, between about 17 milliliters to about 19 milliliters, and between about 18 milliliters to about 20 milliliters.
The method of producing particular embodiments of the external ear canal pressure regulation device (1) can further include providing the valved conduit (5) having a configuration capable of removably coupling to the fluid flow generator (2) and the earpiece (3). As to particular embodiments, the method can further include providing the valved conduit (5) having a configuration capable of coupling in a first configuration (45) with the fluid flow generator (2) and the earpiece (3) to unidirectionally regulate the fluid flow (8) in a first direction (47) in the first fluid flow conduit (49). As to other particular embodiments, the method can further include providing the valved conduit (5) having a configuration capable of coupling in a second configuration (46) with the fluid flow generator (2) and the earpiece (3) to unidirectionally regulate the fluid flow (8) in a second direction (48) in the first fluid flow conduit (49).
The method of producing particular embodiments of the external ear canal pressure regulation device (1) can further include providing the first valve (52) having a configuration capable of dividing the first fluid flow conduit (49) into a first portion (53) proximate a first fluid flow conduit first end (50) and a second portion (54) proximate a first fluid flow conduit second end (51), and further comprising providing a second fluid flow conduit (55) having a configuration capable of fluidicly coupling between the first portion (53) of the first fluid flow conduit (49) and the ambient pressure (11), and further comprising providing a second valve (56) having a configuration capable of interrupting the second fluid flow conduit (55) to unidirectionally regulate the fluid flow (8) in the second fluid flow conduit (55).
The method of producing particular embodiments of the external ear canal pressure regulation device (1) can further include providing the fluid flow generator (2) configured as a volumetrically adjustable element (13) having an internal volume (19), the volumetrically adjustable element (13) having a deformed condition (20) which decreases the internal volume (19) to generate the fluid flow (8) in the first fluid flow conduit (49), the first valve (52) unidirectionally regulating the fluid flow (8) to egress from the axial earpiece bore (4) of the earpiece (3). As to particular embodiments, the volumetrically adjustable element (13) can return to a non-deformed condition (21) which increases the internal volume (19) to generate the fluid flow (8) in the second fluid flow conduit (55), the second valve (56) unidirectionally regulating the fluid flow (8) to ingress from the ambient pressure (11) toward the volumetrically adjustable element (13), the first valve (52) interrupting the fluid flow (8) in the first fluid flow conduit (49) from the second portion (54) toward the first portion (53).
The method of producing particular embodiments of the external ear canal pressure regulation device (1) can further include providing the fluid flow generator (2) configured as a volumetrically adjustable element (13) having an internal volume (19), the volumetrically adjustable element (13) having a deformed condition (20) which decreases the internal volume (19) to generate the fluid flow (8) in the second fluid flow conduit (55), the second valve (52) unidirectionally regulating the fluid flow (8) to egress from the second fluid flow conduit (55) toward the ambient pressure (11). As to particular embodiments, the volumetrically adjustable element (13) can return to a non-deformed condition (21) which increases the internal volume (19) to generate the fluid flow (8) in the first fluid flow conduit (49), the first valve (52) unidirectionally regulating the fluid flow (8) to ingress from the axial earpiece bore (4) of the earpiece (3) toward the volumetrically adjustable element (13), the second valve (56) interrupting the fluid flow (8) in the second fluid flow conduit (55) from the ambient pressure (11) toward the first portion (53).
The method of producing particular embodiments of the external ear canal pressure regulation device (1) can further include providing a third fluid flow conduit (57) having a configuration capable of fluidicly coupling between the second portion (54) of the first fluid flow conduit (49) and the ambient pressure (11), and further comprising providing a third valve (58) having a configuration capable of interrupting the third fluid flow conduit (57) to unidirectionally regulate the fluid flow (8) in the third fluid flow conduit (57). As to particular embodiments, the method can further include providing the third valve (58) having a configuration capable of regulating the fluid flow (8) to egress to the ambient pressure (11). As to other particular embodiments, the method of producing particular embodiments of the external ear canal pressure regulation device (1) can further include providing the third valve (58) having a configuration capable of regulating the fluid flow (8) to ingress from the ambient pressure (11).
The method of producing particular embodiments of the external ear canal pressure regulation device (1) can further include providing the third valve (58) having a configuration capable of interrupting the fluid flow (8) between the second portion (54) of the first fluid flow conduit (49) and the ambient pressure (11) until a pressure differential (9) between the second portion (54) of the first fluid conduit (49) and the ambient pressure (11) exceeds a pre-selected pressure differential (9) having a pressure differential amplitude (59) of between 0 kilopascals to about 50 kilopascals. As to particular embodiments, the one or more pre-selected pressure differential amplitudes (59) can be selected from the group including or consisting of: between 0 kilopascals to about 5 kilopascals, between about 2.5 kilopascals to about 7.5 kilopascals, between about 5 kilopascals to about 10 kilopascals, between about 7.5 kilopascals to about 12.5 kilopascals, between about 10 kilopascals to about 15 kilopascals, between about 12.5 kilopascals to about 17.5 kilopascals, between about 15 kilopascals to about 20 kilopascals, between about 17.5 kilopascals to about 22.5 kilopascals, between about 20 kilopascals to about 25 kilopascals, between about 22.5 kilopascals to about 27.5 kilopascals, between about 25 kilopascals to about 30 kilopascals, between about 27.5 kilopascals to about 32.5 kilopascals, between about 30 kilopascals to about 35 kilopascals, between about 32.5 kilopascals to about 37.5 kilopascals, between about 35 kilopascals to about 40 kilopascals, between about 37.5 kilopascals to about 42.5 kilopascals, between about 40 kilopascals to about 45 kilopascals, between about 42.5 kilopascals to about 47.5 kilopascals, and between about 45 kilopascals to about 50 kilopascals.
The method of producing particular embodiments of the external ear canal pressure regulation device (1) can further include providing a second valve pressure relief element (71) having a configuration capable of coupling to the second valve (56) and a third valve pressure relief element (72) having a configuration capable of coupling to the third valve (58), each one manually operable to correspondingly generate the fluid flow (8) in the second or third fluid flow conduits (55)(57).
The method of producing particular embodiments of the external ear canal pressure regulation device (1) can further include providing the valved conduit (5) having a configuration capable of coupling to the fluid flow generator (2) and the earpiece (3) in a first configuration (45) to unidirectionally regulate the fluid flow (8) in a first direction (47) in the first fluid flow conduit (49) to egress from the axial earpiece bore (4) of the earpiece (3). As to particular embodiments, the method can further include providing the fluid flow generator (2) configured as a volumetrically adjustable element (13) operable from a non-deformed condition (21) toward a deformed condition (20) to generate the fluid flow (2) which egresses from the axial earpiece bore (4) over a time period (76).
The method of producing particular embodiments of the external ear canal pressure regulation device (1) can further include providing the fluid flow generator (2) having a configuration capable of repeated operation from the non-deformed condition (21) toward the deformed condition (20) to generate the fluid flow (8) having a pressure wave (78) including a pressure wave amplitude (77) and a pressure wave frequency (79). As to particular embodiments, the pressure wave frequency (79) can be in a range of between 0 Hertz to about 10 Hertz. As to particular embodiments, one or more pressure wave frequencies (79) can be selected from the group including or consisting of: between 0 Hertz to about 1 Hertz, between about 0.5 Hertz to about 1.5 Hertz, between about 1 Hertz to about 2 Hertz, between about 1.5 Hertz to about 2.5 Hertz, between about 2 Hertz to about 3 Hertz, between about 2.5 Hertz to about 3.5 Hertz, between about 3 Hertz to about 4 Hertz, between about 3.5 Hertz to about 4.5 Hertz, between about 4 Hertz to about 5 Hertz, between about 4.5 Hertz to about 5.5 Hertz, between about 5 Hertz to about 6 Hertz, between about 5.5 Hertz to about 6.5 Hertz, between about 6 Hertz to about 7 Hertz, between about 6.5 Hertz to about 7.5 Hertz, between about 7 Hertz to about 8 Hertz, between about 7.5 Hertz to about 8.5 Hertz, between about 8 Hertz to about 9 Hertz, between about 8.5 Hertz to about 9.5 Hertz, and between about 9 Hertz to about 10 Hertz.
The method of producing particular embodiments of the external ear canal pressure regulation device (1) can further include providing a third valve pressure relief element (72) having a configuration capable of coupling to the third valve (56), whereby the fluid flow generator (2) and the third valve pressure relief element (72) can be capable of alternate repeated operation to generate the fluid flow (2) having the pressure wave (78) including the pressure wave amplitude (77) and the pressure wave frequency (79).
The method of producing particular embodiments of the external ear canal pressure regulation device (1) can further include providing the valved conduit (5) having a configuration capable of coupling to the fluid flow generator (2) and the earpiece (3) in a second configuration (46) to unidirectionally regulate the fluid flow (8) in a second direction (48) in the first fluid flow conduit (49) to ingress to the axial earpiece bore (4) of the earpiece (3). As to particular embodiments, the method can further include providing the fluid flow generator (2) configured as a volumetrically adjustable element (13) operable from a deformed condition (20) toward a non-deformed condition (21) to generate the fluid flow (2) which ingresses from the axial earpiece bore (4) over a time period (76).
The method of producing particular embodiments of the external ear canal pressure regulation device (1) can further include providing the fluid flow generator (2) having a configuration capable of repeated operation from the deformed condition (20) toward the non-deformed condition (21) to generate the fluid flow (8) having a pressure wave (78) including a pressure wave amplitude (77) and a pressure wave frequency (79). As to particular embodiments, the pressure wave frequency (79) can be in a range of between 0 Hertz to about 10 Hertz. As to particular embodiments, one or more pressure wave frequencies (79) can be selected from the group including or consisting of: between 0 Hertz to about 1 Hertz, between about 0.5 Hertz to about 1.5 Hertz, between about 1 Hertz to about 2 Hertz, between about 1.5 Hertz to about 2.5 Hertz, between about 2 Hertz to about 3 Hertz, between about 2.5 Hertz to about 3.5 Hertz, between about 3 Hertz to about 4 Hertz, between about 3.5 Hertz to about 4.5 Hertz, between about 4 Hertz to about 5 Hertz, between about 4.5 Hertz to about 5.5 Hertz, between about 5 Hertz to about 6 Hertz, between about 5.5 Hertz to about 6.5 Hertz, between about 6 Hertz to about 7 Hertz, between about 6.5 Hertz to about 7.5 Hertz, between about 7 Hertz to about 8 Hertz, between about 7.5 Hertz to about 8.5 Hertz, between about 8 Hertz to about 9 Hertz, between about 8.5 Hertz to about 9.5 Hertz, and between about 9 Hertz to about 10 Hertz.
The method of producing particular embodiments of the external ear canal pressure regulation device (1) can further include providing a third valve pressure relief element (72) having a configuration capable of coupling to the third valve (56), whereby the fluid flow generator (2) and the third valve pressure relief element (72) can be capable of alternate repeated operation to generate the fluid flow (2) having the pressure wave (78) including the pressure wave amplitude (77) and the pressure wave frequency (79).
As to particular embodiments, components of the external ear canal pressure regulation device (1) can be entirely formed of the same material, or alternatively, various components of the external ear canal pressure regulation device (1) can be formed from different materials. Additionally, as to particular embodiments, the external ear canal pressure regulation device (1) or components of the external ear canal pressure regulation device (1) can be produced from any of a wide variety of processes depending upon the application, such as press molding, injection molding, fabrication, machining, printing, three-dimensional printing, or the like, or combinations thereof, as one piece or assembled from a plurality of pieces into an embodiment of the external ear canal pressure regulation device (1) or provided as a plurality of pieces for assembly into an embodiment of the external ear canal pressure regulation device (1).
Components of the external ear canal pressure regulation device (1) can be produced from any of a wide variety of materials which can provide an embodiment of the external ear canal pressure regulation device (1) useful to generate and regulate a fluid flow (1). By way of non-limiting example, the valved conduit (1) can be produced from a variety of elastomeric compounds, plastic, plastic-like material, acrylic, polyamide, polyester, polypropylene, polyvinyl chloride-based materials, silicone-based materials, or the like, or combinations thereof.
A method of using a particular embodiment of the external ear canal pressure regulation device (1) can include obtaining the external ear canal pressure regulation (1) device including a fluid flow generator (2) which generates a fluid flow; a valved conduit (5) fluidicly coupled to the fluid flow generator (2), the valved conduit (5) having a first fluid flow conduit (49) interruptible by a first valve (52) to unidirectionally regulate the fluid flow (8) in the first fluid flow conduit (49); and an earpiece (3) having an axial earpiece bore (4) which communicates between an earpiece first end (31) and an earpiece second end (29), the axial earpiece bore (4) fluidicly coupled to the valved conduit (5) opposite the fluid flow generator (2), the earpiece (3) having a compliant earpiece external surface (7) configured to sealably engage an external ear canal (6) as a barrier between an external ear canal pressure (10) and an ambient pressure (11); sealably engaging the earpiece external surface (7) of the earpiece (3) with the external ear canal (6); generating the fluid flow (8) between the fluid flow generator (2) and the axial earpiece bore (4); and regulating a pressure differential (9) between the external ear canal pressure (10) and the ambient pressure (11).
As to particular embodiments, a method of using the external ear canal pressure regulation device (1) can include obtaining the external ear canal pressure regulation device (1) including a fluid flow generator (2) which generates a fluid flow (8); a valved conduit (5) having a first fluid flow conduit (49) interruptible by a first valve (52) to unidirectionally regulate the fluid flow (8) in the first fluid flow conduit (49); and an earpiece (3) having an axial earpiece bore (4) which communicates between an earpiece first end (31) and an earpiece second end (29), the earpiece (3) having a compliant earpiece external surface (7) configured to sealably engage an external ear canal (6) as a barrier between an external ear canal pressure (10) and an ambient pressure (11); fluidicly coupling the valved conduit (5) in a first configuration (45) with the fluid flow generator (2) and the axial earpiece bore (4) of the earpiece (3) to unidirectionally regulate the fluid flow (8) in a first direction (47) in the first fluid flow conduit (49); sealably engaging the earpiece external surface (7) of the earpiece (3) with the external ear canal (6); generating the fluid flow (8) between the fluid flow generator (2) and the axial earpiece bore (4) in the first direction (47) in the first fluid flow conduit (49); and regulating a pressure differential (9) between the external ear canal pressure (10) and the ambient pressure (11) wherein the external ear canal pressure (10) is greater than the ambient pressure (11).
As to particular embodiments, the method of using the external ear canal pressure regulation device (1) can further include operating a pressure relief element (70) to generate the fluid flow (8) from the external ear canal (6) toward the ambient pressure (11) to return the external ear canal pressure (10) toward the ambient pressure (11). As to particular embodiments, the method can further include disengaging the earpiece external surface (7) of the earpiece (3) from the external ear canal (6).
As to particular embodiments, the method of using the external ear canal pressure regulation device (1) can further include uncoupling the valved conduit (5) in the first configuration (45) from the fluid flow generator (2) and the axial earpiece bore (4) of the earpiece (3).
As to particular embodiments, the method of using the external ear canal pressure regulation device (1) can further include fluidicly coupling the valved conduit (5) in a second configuration (46) with the fluid flow generator (2) and the axial earpiece bore (4) of the earpiece (3) to unidirectionally regulate the fluid flow (8) in a second direction (48) in the first fluid flow conduit (49); sealably engaging the earpiece external surface (7) of the earpiece (3) with the external ear canal (7); generating the fluid flow (8) between the fluid flow generator (2) and the axial earpiece bore (4) in the second direction (48) in the first fluid flow conduit (49); and regulating a pressure differential (9) between the external ear canal pressure (10) and the ambient pressure (11) wherein the external ear canal pressure (10) is lesser than the ambient pressure (11).
As to particular embodiments, the method of using the external ear canal pressure regulation device (1) can further include operating a pressure relief element (70) to generate the fluid flow (8) from the ambient pressure (11) toward the external ear canal (6) to return the external ear canal pressure (10) toward the ambient pressure (11). As to particular embodiments, the method can further include disengaging the earpiece external surface (7) of the earpiece (3) from the external ear canal (6).
As to particular embodiments, the method of using the external ear canal pressure regulation device (1) can further include uncoupling the valved conduit (5) in the second configuration (46) from the fluid flow generator (2) and the axial earpiece bore (4) of the earpiece (3).
As can be easily understood from the foregoing, the basic concepts of the present invention may be embodied in a variety of ways. The invention involves numerous and varied embodiments of an external ear canal pressure regulation device and methods for making and using such external ear canal pressure regulation devices including the best mode.
As such, the particular embodiments or elements of the invention disclosed by the description or shown in the figures or tables accompanying this application are not intended to be limiting, but rather exemplary of the numerous and varied embodiments generically encompassed by the invention or equivalents encompassed with respect to any particular element thereof. In addition, the specific description of a single embodiment or element of the invention may not explicitly describe all embodiments or elements possible; many alternatives are implicitly disclosed by the description and figures.
It should be understood that each element of an apparatus or each step of a method may be described by an apparatus term or method term. Such terms can be substituted where desired to make explicit the implicitly broad coverage to which this invention is entitled. As but one example, it should be understood that all steps of a method may be disclosed as an action, a means for taking that action, or as an element which causes that action. Similarly, each element of an apparatus may be disclosed as the physical element or the action which that physical element facilitates. As but one example, the disclosure of a “fluid flow” should be understood to encompass disclosure of the act of “flowing fluid”—whether explicitly discussed or not—and, conversely, were there effectively disclosure of the act of “flowing fluid”, such a disclosure should be understood to encompass disclosure of a “fluid flow” and even a “means for flowing fluid.” Such alternative terms for each element or step are to be understood to be explicitly included in the description.
In addition, as to each term used it should be understood that unless its utilization in this application is inconsistent with such interpretation, common dictionary definitions should be understood to be included in the description for each term as contained in the Random House Webster's Unabridged Dictionary, second edition, each definition hereby incorporated by reference.
All numeric values herein are assumed to be modified by the term “about”, whether or not explicitly indicated. For the purposes of the present invention, ranges may be expressed as from “about” one particular value to “about” another particular value. When such a range is expressed, another embodiment includes from the one particular value to the other particular value. The recitation of numerical ranges by endpoints includes all the numeric values subsumed within that range. A numerical range of one to five includes for example the numeric values 1, 1.5, 2, 2.75, 3, 3.80, 4, 5, and so forth. It will be further understood that the endpoints of each of the ranges are significant both in relation to the other endpoint, and independently of the other endpoint. When a value is expressed as an approximation by use of the antecedent “about,” it will be understood that the particular value forms another embodiment. The term “about” generally refers to a range of numeric values that one of skill in the art would consider equivalent to the recited numeric value or having the same function or result. Similarly, the antecedent “substantially” means largely, but not wholly, the same form, manner or degree and the particular element will have a range of configurations as a person of ordinary skill in the art would consider as having the same function or result. When a particular element is expressed as an approximation by use of the antecedent “substantially,” it will be understood that the particular element forms another embodiment.
Moreover, for the purposes of the present invention, the term “a” or “an” entity refers to one or more of that entity unless otherwise limited. As such, the teens “a” or “an”, “one or more” and “at least one” can be used interchangeably herein.
Thus, the applicant(s) should be understood to claim at least: i) each of the external ear canal pressure regulation devices herein disclosed and described, ii) the related methods disclosed and described, iii) similar, equivalent, and even implicit variations of each of these devices and methods, iv) those alternative embodiments which accomplish each of the functions shown, disclosed, or described, v) those alternative designs and methods which accomplish each of the functions shown as are implicit to accomplish that which is disclosed and described, vi) each feature, component, and step shown as separate and independent inventions, vii) the applications enhanced by the various systems or components disclosed, viii) the resulting products produced by such systems or components, ix) methods and apparatuses substantially as described hereinbefore and with reference to any of the accompanying examples, x) the various combinations and permutations of each of the previous elements disclosed.
The background section of this patent application provides a statement of the field of endeavor to which the invention pertains. This section may also incorporate or contain paraphrasing of certain United States patents, patent applications, publications, or subject matter of the claimed invention useful in relating information, problems, or concerns about the state of technology to which the invention is drawn toward. It is not intended that any United States patent, patent application, publication, statement or other information cited or incorporated herein be interpreted, construed or deemed to be admitted as prior art with respect to the invention.
The claims set forth in this specification, if any, are hereby incorporated by reference as part of this description of the invention, and the applicant expressly reserves the right to use all of or a portion of such incorporated content of such claims as additional description to support any of or all of the claims or any element or component thereof, and the applicant further expressly reserves the right to move any portion of or all of the incorporated content of such claims or any element or component thereof from the description into the claims or vice-versa as necessary to define the matter for which protection is sought by this application or by any subsequent application or continuation, division, or continuation-in-part application thereof, or to obtain any benefit of, reduction in fees pursuant to, or to comply with the patent laws, rules, or regulations of any country or treaty, and such content incorporated by reference shall survive during the entire pendency of this application including any subsequent continuation, division, or continuation-in-part application thereof or any reissue or extension thereon.
Additionally, the claims set forth in this specification, if any, are further intended to describe the metes and bounds of a limited number of the preferred embodiments of the invention and are not to be construed as the broadest embodiment of the invention or a complete listing of embodiments of the invention that may be claimed. The applicant does not waive any right to develop further claims based upon the description set forth above as a part of any continuation, division, or continuation-in-part, or similar application.
This application is the United States National Stage of International Patent Cooperation Treaty Patent Application No. PCT/U.S. Ser. No. 14/44159, filed Jun. 25, 2014, which is a continuation of U.S. Non-Provisional Patent Application No. 14/292,469, filed May 30, 2014, and claims the benefit of U.S. Provisional Patent Application No. 61/983,865, filed Apr. 24, 2014, U.S. Provisional Patent Application No. 61/863,317, filed Aug. 7, 2013, and U.S. Provisional Patent Application No. 61/841,111, filed Jun. 28, 2013, each hereby incorporated by reference herein.
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/US2014/044159 | 6/25/2014 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2015/009421 | 1/22/2015 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
476446 | Brothwell | Jun 1892 | A |
841146 | Hasbrouck | Jan 1907 | A |
2176366 | Smith | Oct 1939 | A |
2437490 | Watson et al. | Mar 1948 | A |
2652048 | Joers | Sep 1953 | A |
3757769 | Arguimbau et al. | Sep 1973 | A |
3872559 | Leight | Mar 1975 | A |
4002161 | Klar et al. | Jan 1977 | A |
4133984 | Watson et al. | Jan 1979 | A |
4160449 | Wade | Jul 1979 | A |
4206756 | Grossan | Jun 1980 | A |
4244377 | Grams | Jan 1981 | A |
4289143 | Canavesio et al. | Sep 1981 | A |
4325386 | Katz | Apr 1982 | A |
4349083 | Bennett | Sep 1982 | A |
4472342 | Carr | Sep 1984 | A |
4552137 | Strauss | Nov 1985 | A |
4594058 | Fischell | Jun 1986 | A |
4632104 | Conrow | Dec 1986 | A |
4667676 | Guinta | May 1987 | A |
4688582 | Heller et al. | Aug 1987 | A |
4754748 | Antowski | Jul 1988 | A |
4757807 | Densert et al. | Jul 1988 | A |
4775370 | Berry | Oct 1988 | A |
4809708 | Geisler et al. | Mar 1989 | A |
4896380 | Kamitani | Jan 1990 | A |
4896679 | St. Pierre | Jan 1990 | A |
4964769 | Hass | Oct 1990 | A |
4984579 | Burgert et al. | Jan 1991 | A |
5024612 | van den Honert | Jun 1991 | A |
5105822 | Stevens et al. | Apr 1992 | A |
5131411 | Casali et al. | Jul 1992 | A |
5228431 | Giarretto | Jul 1993 | A |
5241967 | Yasushi et al. | Sep 1993 | A |
5421818 | Arenberg | Jun 1995 | A |
5476446 | Arenburg | Dec 1995 | A |
5483027 | Krause | Jan 1996 | A |
5483975 | Hirschebain | Jan 1996 | A |
5488961 | Adams | Feb 1996 | A |
5631965 | Chang et al. | May 1997 | A |
5699809 | Combs et al. | Dec 1997 | A |
5740258 | Goodwin-Johansson | Apr 1998 | A |
5746725 | Shalon et al. | May 1998 | A |
5755234 | Mobley et al. | May 1998 | A |
5769891 | Clayton | Jun 1998 | A |
5776179 | Ren et al. | Jul 1998 | A |
5819745 | Mobley | Oct 1998 | A |
5865183 | Hirschebain | Feb 1999 | A |
5868682 | Combe et al. | Feb 1999 | A |
5944711 | Pender | Aug 1999 | A |
6004274 | Nolan et al. | Dec 1999 | A |
6016499 | Ferguson | Jan 2000 | A |
6024726 | Hill | Feb 2000 | A |
6129174 | Brown et al. | Oct 2000 | A |
6139507 | Jeng | Oct 2000 | A |
6159171 | Densert et al. | Dec 2000 | A |
6186959 | Canfield et al. | Feb 2001 | B1 |
6258067 | Hill | Jul 2001 | B1 |
6296652 | Qingmin | Oct 2001 | B1 |
6359993 | Birmhall | Mar 2002 | B2 |
6430443 | Karell | Aug 2002 | B1 |
6511437 | Nakamura et al. | Jan 2003 | B1 |
6592512 | Stöckert et al. | Jul 2003 | B2 |
6629938 | Engvall et al. | Oct 2003 | B1 |
6725568 | Gronka | Apr 2004 | B2 |
6748275 | Lattner et al. | Jun 2004 | B2 |
6800062 | Epley | Oct 2004 | B2 |
6820717 | Fleming et al. | Nov 2004 | B2 |
6878128 | MacMahon et al. | Apr 2005 | B2 |
6958043 | Hissong | Oct 2005 | B2 |
6981569 | Stilp | Jan 2006 | B2 |
7022090 | Engvall et al. | Apr 2006 | B1 |
7162039 | Callahan | Jan 2007 | B1 |
7179238 | Hissong | Feb 2007 | B2 |
7189252 | Krueger | Mar 2007 | B2 |
7268466 | Rasmussen | Sep 2007 | B2 |
7352871 | Mozo | Apr 2008 | B1 |
D570457 | Brown | Jun 2008 | S |
7613519 | De Ridder | Nov 2009 | B2 |
7766858 | Franz et al. | Aug 2010 | B2 |
7779844 | Purcell et al. | Aug 2010 | B2 |
7785346 | Blumberg | Aug 2010 | B2 |
7797042 | Dietrich et al. | Sep 2010 | B2 |
7833282 | Mandpe | Nov 2010 | B2 |
7892180 | Epley | Feb 2011 | B2 |
7959597 | Baker et al. | Jun 2011 | B2 |
7988657 | Shapiro et al. | Aug 2011 | B2 |
8020563 | Pfanstiehl | Sep 2011 | B2 |
8047207 | Perez et al. | Nov 2011 | B2 |
8052693 | Shahoian | Nov 2011 | B2 |
8122892 | Johnson et al. | Feb 2012 | B2 |
8142373 | Riles | Mar 2012 | B1 |
8199919 | Goldstein et al. | Jun 2012 | B2 |
8241224 | Keefe | Aug 2012 | B2 |
8249285 | Killion et al. | Aug 2012 | B2 |
8251925 | Keady et al. | Aug 2012 | B2 |
8262717 | Rogers | Sep 2012 | B2 |
8267983 | Rogers et al. | Sep 2012 | B2 |
8267984 | Rogers | Sep 2012 | B2 |
8328830 | Pandit | Dec 2012 | B1 |
8398562 | Keller | Mar 2013 | B2 |
8414521 | Baker et al. | Apr 2013 | B2 |
8442632 | Kullok et al. | May 2013 | B2 |
8460356 | Rogers et al. | Jun 2013 | B2 |
8506469 | Dietrich et al. | Aug 2013 | B2 |
8515552 | Englehart | Aug 2013 | B2 |
8550206 | Keady et al. | Oct 2013 | B2 |
8568348 | Vlodaver et al. | Oct 2013 | B2 |
8603152 | Smith et al. | Dec 2013 | B2 |
8625833 | Armwood | Jan 2014 | B1 |
8666502 | Hartlep et al. | Mar 2014 | B2 |
8688239 | Hartlep et al. | Apr 2014 | B2 |
8696724 | Rogers | Apr 2014 | B2 |
8858430 | Oyadiran et al. | Oct 2014 | B2 |
8963914 | Rawat et al. | Feb 2015 | B2 |
9039639 | George et al. | May 2015 | B2 |
9168171 | Rogers | Oct 2015 | B2 |
9186277 | George et al. | Nov 2015 | B2 |
9283111 | Rogers et al. | Mar 2016 | B2 |
9526653 | Rogers et al. | Dec 2016 | B2 |
9532900 | Smith et al. | Jan 2017 | B2 |
9579247 | Juto et al. | Feb 2017 | B2 |
9655772 | Smith et al. | May 2017 | B2 |
9744074 | Rogers | Aug 2017 | B2 |
9849026 | Rogers et al. | Dec 2017 | B2 |
10076464 | George et al. | Sep 2018 | B2 |
10251790 | George et al. | Apr 2019 | B2 |
10271992 | Hayashi et al. | Apr 2019 | B2 |
10278868 | George et al. | May 2019 | B2 |
10760566 | George et al. | Sep 2020 | B2 |
10772766 | Sullivan | Sep 2020 | B2 |
20020069883 | Hirchenbain | Jun 2002 | A1 |
20030195588 | Fischell et al. | Oct 2003 | A1 |
20030220536 | Hissong | Nov 2003 | A1 |
20040097839 | Epley | May 2004 | A1 |
20040163882 | Fleming et al. | Aug 2004 | A1 |
20050065585 | Salas | Mar 2005 | A1 |
20050165460 | Erfan | Jul 2005 | A1 |
20050209516 | Fraden | Sep 2005 | A1 |
20050267388 | Hanna | Dec 2005 | A1 |
20060100681 | Salas Carpizo | May 2006 | A1 |
20060197412 | Rasmussen | Sep 2006 | A1 |
20060253087 | Vlodaver et al. | Nov 2006 | A1 |
20060272650 | Hoogenakker et al. | Dec 2006 | A1 |
20070040454 | Freudenberger et al. | Feb 2007 | A1 |
20070060948 | Franz et al. | Mar 2007 | A1 |
20070112279 | Iseberg et al. | May 2007 | A1 |
20070250119 | Tyler et al. | Oct 2007 | A1 |
20070299362 | Epley et al. | Dec 2007 | A1 |
20080011308 | Fleming | Jan 2008 | A1 |
20080154183 | Baker et al. | Jun 2008 | A1 |
20080168775 | Windheim et al. | Jul 2008 | A1 |
20080208100 | Wolff | Aug 2008 | A1 |
20080212787 | Goldstein et al. | Sep 2008 | A1 |
20080220092 | Dipierro | Sep 2008 | A1 |
20080240942 | Heinrich et al. | Oct 2008 | A1 |
20080249439 | Tracey et al. | Oct 2008 | A1 |
20080264464 | Lee et al. | Oct 2008 | A1 |
20090012420 | Keller | Jan 2009 | A1 |
20090082831 | Paul et al. | Mar 2009 | A1 |
20090173353 | Pursell et al. | Jul 2009 | A1 |
20090182399 | Sylvestre | Jul 2009 | A1 |
20090228103 | Clayton | Sep 2009 | A1 |
20090293886 | Dedrick et al. | Dec 2009 | A1 |
20100002897 | Keady | Jan 2010 | A1 |
20100030131 | Morris et al. | Feb 2010 | A1 |
20100071707 | Wohl | Mar 2010 | A1 |
20100071708 | Lenhardt | Mar 2010 | A1 |
20100113991 | Wu | May 2010 | A1 |
20100179490 | Connelly et al. | Jul 2010 | A1 |
20100198282 | Rogers | Aug 2010 | A1 |
20100211142 | Rogers | Aug 2010 | A1 |
20110079227 | Turcot et al. | Apr 2011 | A1 |
20110097141 | Brown | Apr 2011 | A1 |
20110098551 | Zhang | Apr 2011 | A1 |
20110130786 | Clayton et al. | Jun 2011 | A1 |
20110172739 | Mann et al. | Jul 2011 | A1 |
20110184341 | Baker et al. | Jul 2011 | A1 |
20110224493 | Oyadiran et al. | Sep 2011 | A1 |
20110245902 | Katz | Oct 2011 | A1 |
20120046607 | Syk | Feb 2012 | A1 |
20120203309 | Englehart | Aug 2012 | A1 |
20120265093 | Allen et al. | Oct 2012 | A1 |
20120296268 | Vlodavaer et al. | Nov 2012 | A1 |
20120302859 | Keefe | Nov 2012 | A1 |
20120310077 | Rogers | Dec 2012 | A1 |
20120310313 | Rogers et al. | Dec 2012 | A1 |
20120318605 | Brown | Dec 2012 | A1 |
20130123889 | Katz et al. | May 2013 | A1 |
20130136285 | Naumann | May 2013 | A1 |
20130152949 | Simon | Jun 2013 | A1 |
20130177179 | Ambrose et al. | Jul 2013 | A1 |
20130183173 | Kohli et al. | Jul 2013 | A1 |
20130282070 | Cowan et al. | Oct 2013 | A1 |
20130303953 | Lattner | Nov 2013 | A1 |
20130304103 | Burres | Nov 2013 | A1 |
20130310907 | Rogers et al. | Nov 2013 | A1 |
20130324932 | Cogley | Dec 2013 | A1 |
20130331823 | Askem et al. | Dec 2013 | A1 |
20140069442 | Lewis et al. | Mar 2014 | A1 |
20140088671 | Rogers et al. | Mar 2014 | A1 |
20140243941 | Rogers et al. | Aug 2014 | A1 |
20140249608 | Rogers | Sep 2014 | A1 |
20140275827 | Gill et al. | Sep 2014 | A1 |
20140309718 | Smith et al. | Oct 2014 | A1 |
20140334652 | Gebert | Nov 2014 | A1 |
20150000678 | Buckler et al. | Jan 2015 | A1 |
20150005661 | Trammell | Jan 2015 | A1 |
20150141879 | Harper et al. | May 2015 | A1 |
20150320591 | Smith et al. | Nov 2015 | A1 |
20150320592 | Black et al. | Nov 2015 | A1 |
20150374538 | Rogers | Dec 2015 | A1 |
20160058620 | George et al. | Mar 2016 | A1 |
20160128897 | George et al. | May 2016 | A1 |
20160166203 | Goldstein | Jun 2016 | A1 |
20160346117 | Rogers et al. | Dec 2016 | A1 |
20160378945 | Mian et al. | Dec 2016 | A1 |
20170105876 | O'Connell, Sr. et al. | Apr 2017 | A1 |
20170109988 | O'Connell, Sr. et al. | Apr 2017 | A1 |
20170135854 | Rogers et al. | May 2017 | A1 |
20170235889 | Main et al. | Aug 2017 | A1 |
20180000686 | George et al. | Jan 2018 | A1 |
20180008457 | Smith et al. | Jan 2018 | A1 |
20180023558 | George et al. | Jan 2018 | A1 |
20180106244 | Wang et al. | Apr 2018 | A1 |
20180125748 | Goldenberg et al. | May 2018 | A1 |
20190231597 | Sullivan | Aug 2019 | A1 |
20200121544 | George et al. | Apr 2020 | A1 |
20200222272 | George et al. | Jul 2020 | A1 |
Number | Date | Country |
---|---|---|
2004238090 | Nov 2004 | AU |
1136751 | Nov 1982 | CA |
1222464 | Jun 1987 | CA |
1241152 | Aug 1988 | CA |
2003452 | Jun 1990 | CA |
2275057 | Oct 1999 | CA |
2 337 076 | Jan 2000 | CA |
2429560 | Jan 2004 | CA |
2075517 | Apr 1991 | CN |
2418864 | Feb 2001 | CN |
1308513 | Aug 2001 | CN |
2530645 | Jan 2003 | CN |
2912525 | Jun 2007 | CN |
200945215 | Sep 2007 | CN |
201143258 | Nov 2008 | CN |
201164541 | Dec 2008 | CN |
101668497 | Mar 2010 | CN |
201505220 | Jun 2010 | CN |
201524178 | Jul 2010 | CN |
201558360 | Aug 2010 | CN |
201870809 | Jun 2011 | CN |
202036187 | Nov 2011 | CN |
202185057 | Apr 2012 | CN |
102484761 | May 2012 | CN |
102551957 | Jul 2012 | CN |
202313927 | Jul 2012 | CN |
102647966 | Aug 2012 | CN |
202477966 | Oct 2012 | CN |
202505833 | Oct 2012 | CN |
102986250 | Mar 2013 | CN |
102011008802 | Jul 2012 | DE |
0 026 247 | Apr 1981 | EP |
0 400 900 | Dec 1990 | EP |
1 027 863 | Aug 2000 | EP |
2 207 366 | Jul 2010 | EP |
2990017 | Mar 2016 | EP |
2 605 516 | Apr 1988 | FR |
1432572 | Apr 1976 | GB |
1522031 | Aug 1978 | GB |
2054387 | Feb 1981 | GB |
2185688 | Jul 1987 | GB |
2343263 | May 2000 | GB |
2479891 | Nov 2011 | GB |
1214840 | Jan 1990 | IT |
S 57-188245 | Nov 1982 | JP |
H07-111987 | May 1995 | JP |
2006-345903 | Dec 2006 | JP |
2009-022699 | Feb 2009 | JP |
2010-233643 | Oct 2010 | JP |
2011-217986 | Nov 2011 | JP |
2013-068448 | Apr 2013 | JP |
2013-102784 | May 2013 | JP |
10-1273296 | Jun 2013 | KR |
PA03005598 | Oct 2004 | MX |
2010014470 | Feb 2011 | MX |
2011006854 | Aug 2011 | MX |
2012007726 | Aug 2012 | MX |
8601399 | Mar 1986 | WO |
WO 199422372 | Oct 1994 | WO |
WO 199623293 | Aug 1996 | WO |
9723178 | Jul 1997 | WO |
2000001331 | Jan 2000 | WO |
2000001346 | Jan 2000 | WO |
2000010484 | Mar 2000 | WO |
WO 2000010627 | Mar 2000 | WO |
WO 2000010848 | Mar 2000 | WO |
WO 2003075761 | Sep 2003 | WO |
WO 2004064672 | Aug 2004 | WO |
2004100844 | Nov 2004 | WO |
WO 2006009545 | Jan 2006 | WO |
WO 2007084674 | Jul 2007 | WO |
WO 2007118092 | Oct 2007 | WO |
WO 2007145853 | Dec 2007 | WO |
WO 2008036368 | Mar 2008 | WO |
WO 2008064230 | May 2008 | WO |
WO 2008086187 | Jul 2008 | WO |
WO 2008128173 | Oct 2008 | WO |
WO 2008153588 | Dec 2008 | WO |
WO 2009020862 | Feb 2009 | WO |
WO 2009050306 | Apr 2009 | WO |
WO 2009077902 | Jun 2009 | WO |
WO 2010005899 | Jan 2010 | WO |
WO 2010016925 | Feb 2010 | WO |
WO 2010085196 | Jul 2010 | WO |
WO 2011075573 | Jun 2011 | WO |
WO 2011075574 | Jun 2011 | WO |
WO 2012007193 | Jan 2012 | WO |
WO 2012083098 | Jun 2012 | WO |
WO 2012083102 | Jun 2012 | WO |
WO 2012083106 | Jun 2012 | WO |
WO 2012083126 | Jun 2012 | WO |
WO 2012083151 | Jun 2012 | WO |
WO 2013075255 | May 2013 | WO |
WO 2014120947 | Aug 2014 | WO |
WO 2014175257 | Oct 2014 | WO |
WO 2014210457 | Dec 2014 | WO |
WO 2015009421 | Jan 2015 | WO |
2015074060 | May 2015 | WO |
WO 2016022761 | Feb 2016 | WO |
WO 2017040739 | Mar 2017 | WO |
WO 2017040741 | Mar 2017 | WO |
WO 2017040747 | Mar 2017 | WO |
WO 2017197150 | Nov 2017 | WO |
WO 2018157143 | Aug 2018 | WO |
WO 2019246456 | Dec 2019 | WO |
Entry |
---|
Minen, Mia; Tinnitus and Headache, Feb. 8, 17, American Migraine Foundation, https://americanmigrainefoundation.org/understanding-migraine/tinnitus-and-headache/. |
Minen, Mia; Tinnitus and Headache, Feb. 8, 2017, American Migraine Foundation, https://americanmigrainefoundation.org/understanding-migraine/tinnitus-and-headache/ (Year: 2017). |
Berthold Langguth, Verena Hund, Volker Busch, et al., “Tinnitus and Headache,” BioMed Research International, vol. 2015, Article ID 797416, 7 pages, 2015. https://doi.org/10.1155/2015/797416 (Year: 2015). |
Doherty, Colleen. “The Link Between Migraines and Tinnitus”. Verywell Health, Nov. 23, 2019, https://www.verywellhealth.com/link-between-migraines-and-tinnitus-4077631#citation-10 (Year: 2019). |
U.S. Appl. No. 14/292,469, filed May 30, 2014. |
New Zealand Patent Application No. 713887; Office Action dated Jul. 13, 2016, 8 pages total. |
Corresponding Chinese Patent Application No. 201480042665.7; Office Action dated Sep. 4, 2017, 6 pages total. |
U.S. Appl. No. 07/286,744, filed Dec. 19, 1988. |
Pasadena Pain Masnagement. Easing Migraine Symptoms with a Simple Puff of Air into the Ear; article by Dr. Stender. Website, http://www.pasadenapainmanagement.com, originally downloaded Apr. 25, 2016, 5 pages total. |
Smile Columbia Dentistry. Let Me Blow in Your Ear, for Migraine Treatment, of Course; article by Dr. Adam Hahn. Website, https://www.tmjtreatmentse.com, originally downloaded Apr. 25, 2016, 2 pages total. |
U.S. Appl. No. 61/905,616, filed Nov. 18, 2013. |
Patent Cooperation Treaty International Patent Application No. PCT/US2014/0066191; Written Opinion of the International Searching Authority dated Feb. 26, 2015, 7 pages total. |
Scion Neurostim. Therapeutic Neuromodulation via Caloric Vestibular Stimulation. Thermoneuromodulation (TNM). Slides for presentation, dated Sep. 2015, 12 pages total. |
Sameiro-Barbosa et al. Sensory Entrainment Mechanisms in Auditory Perception: Neural Synchronization Cortico-Striatal Activation. Frontiers in Neuroscience, Aug. 2016, vol. 10, Article 361, 8 pages. |
Facebook. Zōk: The first migraine and headache solution. Webpage, https://www.facebook.com, originally downloaded May 18, 2017, 10 pages total. |
Kickstarter. Zōk: The first headache product that solves migraines and headaches. Website, https://www.funded.today, originally downloaded May 18, 2017, 3 pages total. |
Corresponding Chinese Patent Application No. 201480042665.7; Office Action dated Jan. 22, 2017, 26 pages total. |
New Zealand Patent Application No. 713887; Office Action dated Feb. 20, 2017, 9 pages total. |
MINEN. Tinnitus and Headache. American Migraine Foundation, website, downloaded Feb. 8, 2017, 3 pages total. |
Corresponding European Region Patent Application No. 14826160.5; Office Action dated Dec. 8, 2016, 8 pages total. |
Akerman, et al. Pearls and pitfalls in experimental invivo models of migraine: Dural trigeminovascular nociception. Cephalagia, 2013, 33 (8), pp. 557-592. |
Dasilva et al. tdCS-Induced Analgesia and Electrical Fields in Pain-Related Neural Networks in Chronic Migraine. The Journal of Head and Face Pain, Sep. 2012, 52, pp. 1283-1295. |
Hu et al. Burden of migraine in the United States: disability and economic costs. Arch. Intern. Med., Apr. 1999, 159, pp. 813-818. |
Janetta Neurovascular Compress in Cranial Nerve and Systemic Disease. Ann Surg, Oct. 1980, 192(4), pp. 518-524. |
Meng et al. Migraine Prevention with a Supraorbital Transcutaneous Stimulator: A Randomized Controlled Trial. Neurology, Sep. 2013, 81, pp. 1102-1103. |
Mosqueria et al. Vagus Nerve Stimulation in Patients with Migraine. Rev Neurol, 2013, 57(2), English Abstract. |
Olesen et al. Emerging Migraine treatments and drug targets. Trends in Pharmacological Sciences, 2011, 32(6), pp. 352-359. |
Pederson et al. Neurostimulation in cluster headache: A review of current progress. Cephalagia, 2013, 33(14), pp. 1179-1193. |
Schoenen et al. Migraine prevention with a supraorbital transcutaneous stimulator. Neurology, 2013, 80(8), pp. 697-704. |
Silberstein et al. Botulinum Toxin Type A as a Migraine Preventive Treatment. The Journal of Head and Face Pain, Jun. 2000, 40, pp. 445-450. |
International Patent Cooperation Treaty Patent Application No. PCT/US14/044159, filed Jun. 25, 2014. |
U.S. Appl. No. 114/292,469, filed May 30, 2014. |
U.S. Appl. No. 61/983,865, filed Apr. 24, 2014. |
U.S. Appl. No. 61/863,317, filed Aug. 7, 2013. |
U.S. Appl. No. 61/841,111, filed Jun. 28, 2013. |
Baguley et al. Does caloric vestibular stimulation modulate tinnitus? Neuroscience Letters, Mar. 2011, 492(1), pp. 52-54. |
Baier, et al.: “Vestibular-Evoked Myogenic Potentials in “Vestibular Migraine” and Meniere's Disease,” Ann. N.Y. Acad. Sci., May 2009, 1164, pp. 324-327. |
Becker: Weather and migraine: Can so many patients be wrong? Cephalalgia, Mar. 2011, 31(4), pp. 387-390. |
Bolay et al.,: “Does Low Atmospheric Pressure Independently Trigger Migraine?” Headache, Oct. 2011, 51(9), pp. 1426-1430. |
Breathometer. Breathometer—The World's First Smartphone Breathalyzer. Website, http://www.breathometer.co, originall downloaded Jun. 19, 2014, 8 total pages. |
Cadwell. Sierra Wave. Website, http://www.cadwell.com, originally downloaded Feb. 27, 2014, 1 page. |
Dirckx et al. Human tympanic membrane deformation under static pressure. Hearing Research, Jan. 1991, 51(1), pp. 93-106. |
Fasold et al. Human Vestibular Cortex as Identified with Caloric Stimulation in Functional Magnetic Resonance Imaging. Neuroimage, Nov. 2002, 17(3), pp. 1384-1393. |
Ferrotec. Thermal Solutions. Website: http://thermal.ferrotec.com, originally downloaded Feb. 27, 2014, 1 page. |
Ferrotec. Thermoelectric Technical Reference—Installation of Thermoelectric Modules. Website, http://thermal.ferrotec.com, originally downloaded May 21, 2014, 4 total pages. |
Ferrotec. Thermoelectric Technical Reference—Introduction to Thermoelectric Cooling. Website, http://forrotec.com, originally downloaded Feb. 27, 2014, 2 total pages. |
Job et al. Cortical Representation of Tympanic Membrane Movements due to Pressure Variation: An ±MRI Study Human Brain Mapping, May 2011, 32(5), pp. 744-749. |
Klingner et al.: “Components of vestibular cortical function,” Behavioral Brain Research, Jan. 2013, 236(1 ), pp. 194-199. |
Kolev. How caloric vestibular irrigation influences migraine attacks. Cephalagia. Aug. 1990, vol. 10 issue 4, pp. 167-169 (abstract only). |
Lifting the Burden. The Global Campaign Against Headache. Website, http://www.l-t-b.org, originally downloaded Feb. 27, 2014, 1 page. |
Liszewski: Ear Pressure Equalizer. Website, http://www.ohgizmo.com, originally downloaded Dec. 18, 2013, 1 page. |
Long Island news12.com. Long Island Naturally: Migraines. Website video, http://longisland.news12.com/multimedia/long-island-naturally-migraines-1.6501113, Nov. 26, 2013, 3 total pages. |
Mayr: The Origins of Feedback Control. M.I.T. Press, 1970. |
McGeoch et al. Vestibular stimulation can relieve central pain of spinal origin. Spinal Cord, Nov. 2008, 46(11), pp. 756-757. |
Medscape. Peripheral Nerve Stimulator-Train of Four Monitoring. Website, http://emedicine.medscape.com, originally downloaded Feb. 27, 2014, 2 total pages. |
Medtronic. Meniett Device for Meniere's Disease. Meniett Low-Pressure Pulse Generator device. Website, http://www.medtronic.com, originally downloaded Feb. 27, 2014, 2 total pages. |
Medtronic. Restore Life's Balance with Meniett Therapy. The Meniett Device for Meniere's Disease. On-line article, http://www.medtronic.com, originally downloaded Mar. 13, 2015, 2 total pages. |
Nagai et al. Encapsulated nerve corpuscles in the human tympanic membrane. Archives of Otorhinolaryngology, 1989, 246(3), pp. 169-172. |
New York Health Soultions. Migraine Headaches. Website, http://www.nyhealthsolutions.com, originally downloaded May 23, 2014, 2 pages. |
Nihashi et al. Representation of the ear in human primary somatosensory cortex. Neuroimage, Feb. 2001, 13(2), pp. 295-304 (abstract only). |
Pietrobon, Migraine: new molecular mechanism. Neuroscientist. Aug. 2005, vol. 11, Issue 4, pp. 373-386 (abstract only). |
Porta-Etessam et al. Neuro-otological symptoms in patients with migraine. Neurologia, Mar. 2011, 26(2), pp. 100-104. |
Ramachandran et al. Rapid Relief of Thalamic Pain Syndrome Induced by Vestibular Caloric Stimulation. Neurocase, Jun. 2007, 13(3), pp. 185-188. |
Sakata et al. Air pressure-sensing ability of the middle ear—Investigation of sensing regions and appropriate measurement conditions. Auris Nasus Larynx, Aug. 2009, 36(4), pp. 393-399. |
Saunders, Tympanic membrane sensation. Brain. Jun. 1985, vol. 108, Issue 6,pp. 378-404 (abstract only). |
Schulman. Breath-Holding, Head Pressure, and Hot Water: An Effective Treatment for Migraine Headache. Headache, Nov.-Dec. 2002, 42(10), pp. 1048-1050. |
Sheftell, F, Steiner, TJ, Thhomas, H. Harry Potter and the Curse of Headache. Headache: The Journal of Head and Face Pain. Jun. 2007, vol. 47, Issue 6, pp. 911-916 (abstract only). |
Smartproducts. Series 100—Cartridge Specialty Check Valves and Pressure Relief Valves. Online catalog, www.smartproducts.com, originally downloaded Mar. 28, 2014, 2 total. |
Stovnver, LJ, et al. The global burden of headache: a documentation of headache prevalence and disability worldwide. Cephalagia, 2007. vol. 27, pp. 193-210. |
Sullivan: “Ear Insufflation as a Novel Therapy Which Produces Rapid Relief of Migraine Headache—a Case Study,” Funct Neurol Rehabil Egon 2013; vol. 3, Issue 1, pp. 93-107. Published on Jun. 7, 2013. Received on Jan. 2, 2013. Revised Jan. 28, 2013. Accepted Feb. 15, 2013. |
Sullivan: “Ear Insufflation Produces Rapid and Significant Relief of Trigeminal Neuraliga,” Funct Neurol Rehabil Egon 2013; vol. 3, Issue 4, pp. 1-6. Published on May 26, 2014. Received on Jun. 21, 2013. Revised Dec. 24, 2013. Accepted Jan. 12, 2014. |
Ultimate Ears. Ultimate Ears Custom In-Ear Monitors. Website, http://pro.ultimatears.com, originally downloaded Feb. 27, 2014, 3 total pages. |
Westone. Occupational Earpieces. Website, http://www.westone.com, originally downloaded Feb. 27, 2014, 2 total pages. |
Wikipedia. Microcurrent electrical neuromuscular stimulator. Website, http://en.wikipedia.org, originally downloaded Feb. 27, 2014, 3 total pages. |
Wikipedia. Somatosensory evoked potential. Website, http://en.wikipedia.org, originally downloaded Feb. 27, 2014, 5 pages total. |
Wikipedia. Transcutaneous electrical nerve stimulation. Website, http://en.wikipedia.org, originally downloaded Feb. 27, 2014, 5 pages total. |
World Health Organization. Headache disorders. Website, http://www.who.int, originally downloaded Feb. 27, 2014, 4 total pages. |
George et al. Safety and usability factors in development of a novel, automated treatment device for acute migraine. Biomedical sciences instrumentation. Biomedical sciences instrumentation, Jan. 2017, 53, pp. 398-403. |
European Patent Application No. 14816984.0; Office Action dated Nov. 24, 2017, 6 pages total. |
Transcript of News Story, Aug. 22, 2013, video available at: https://www.facebook.com/178787878873891/videos/10201196245541704/. |
Transcript of News Story, Nov. 13, 2013, video available at: https://www.facebook.com/178787878873891/videos/treatment-for-migraines-and-trigeminal-neuralgia/10201781732138503/. |
Transcript of News Story, Jul. 7, 2014, video available at: https://www.facebook.com/178787878873891/videos/681870651898942/. |
Transcript of Webinar, Apr. 10, 2013, video available at: https://www.anymeeting.com/WebConference/RecordingDefault.aspx?c_psrid-ED57DC868548. |
Cathcart, et al., “Pain sensitivity mediates the relationship between stress and headache intensity in chronic tension-type headache”, Nov. 2012 (Year: 2012) in 5 pages. |
Cranial Nerves—Wikipedia, https://en.wikipedia.org/aiki/Cranial_nerves, printed Aug. 16, 2019 in 12 pages. |
Croley, Christen, “Mechanicsburg doctor develops new migraine therapy,” The Sentinel, Nov. 9. 2012. |
Frangos E, Ellrich J, Komisaruk B. Non-invasive access to the vagus nerve central projections via electrical stimulation of the external ear: fMRI evidence in humans. Brain Stimul. Dec. 6, 2014. 8(3), 624-636 in 13 pages. |
Kanzara T, Hall A, Virk J, Leung B, Singh A. Clinical anatomy of the tympanic nerve: A review. World J Otorhinolaryngol. Nov. 2014; 4(4), 17-22 in 8 pages. |
Kiyokawa J., Yamaguchi K, Okada R, Maehara T, Akita K. Origin, course and distribution of the nerves to the posterosuperior wall of the external acoustic meatus. Anat Sci Int. Mar. 2014; 89(4), 238-245. |
Saunders R, Tympanic membrane sensation. Brain. 1985, 108, 378-404 in 18 pages. |
Shevel, “Headaches and tinnitus: correlation found”, May 2008 (Year: 2006). |
Tekdemir I, Aslan a, Elhan A., A clinico-anatomic study of the auricular branch of the vagus nerve and Arnold's ear-cough reflex. Surg Raiol Anat. 1998. 20(4), 253-257 in 5 pages. |
Tekdemir I, Aslan A, Tuccar E, He C, Elhan A, Deda H. An anatomical study of the tympanic branch of the glossopharyngeal nerve (nerve of Jacobson). Ann Anat. Aug. 1998; 180(4): 349-52 in 4 pages. |
Von Korff, et al., “Assessing headaches severity. New Directions”, Jul. 1994 (Year: 1994). |
Widemar L, Hellstrom S, Schultzberg M, Stenfors LE. Autonomic innervation of the tympanic membrane. An immunocytochemical and histofluorescence study. Acta Otolaryngol. Jul.-Aug. 1985;100(1-2):58:65 in 9 pages. |
Number | Date | Country | |
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20160151206 A1 | Jun 2016 | US |
Number | Date | Country | |
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61983865 | Apr 2014 | US | |
61863317 | Aug 2013 | US | |
61841111 | Jun 2013 | US |
Number | Date | Country | |
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Parent | 14292469 | May 2014 | US |
Child | 14900607 | US |