Shielded Isolation Chamber
20200113090 ยท 2020-04-09
Inventors
Cpc classification
H05K9/0069
ELECTRICITY
A61N1/16
HUMAN NECESSITIES
H05K9/0024
ELECTRICITY
A61M21/0094
HUMAN NECESSITIES
International classification
Abstract
Apparatus and techniques for implementing an isolation chamber, and more particularly for implementing an EMF shielded isolation chamber. In various embodiments, an isolation tank includes a shell having an upper cover and a lower tank portion having one or more sidewalls connected to a floor. The lower tank portion is configured to hold liquid and the lower tank portion and the upper cover together define an interior chamber configured to receive a user. The isolation tank further includes a conductive shield associated with at least a portion of the shell and configured to shield at least a portion of the interior chamber from external electromagnetic fields. In various additional embodiments, the isolation tank includes a shield ground for electrically grounding the shield and/or a liquid ground for electrically grounding the liquid.
Claims
1. An isolation tank comprising: a shell comprising an upper cover and a lower tank portion having one or more sidewalls connected to a floor, the lower tank portion configured to hold liquid, and the lower tank portion and the upper cover together defining an interior chamber configured to receive a user; and a conductive shield operatively associated with at least a portion of the shell and configured to shield at least a portion of the interior chamber from an external electromagnetic field.
2. The isolation tank of claim 1, wherein the isolation tank is configured to isolate the user from external stimulus comprising at least one of sound stimulus, light stimulus, tactile stimulus, or mechanical stimulus.
3. The isolation tank of claim 1, wherein the upper cover comprises a door or hatch.
4. The isolation tank of claim 1, wherein the liquid is at least one of water or water containing a dissolved salt.
5. The isolation tank of claim 1, wherein the liquid is heated to a body temperature of the user.
6. The isolation tank of claim 1, wherein the shield comprises at least one of copper, aluminum, gold, silver, iron, nickel, carbon, or carbon fiber.
7. The isolation tank of claim 1, wherein the shield comprises at least one of a mesh, a mesh cloth, a woven cloth, a sheet, a plurality of wires, a wire grid or a plurality of filaments.
8. The isolation tank of claim 1, wherein the shield is integrated into the shell.
9. The isolation tank of claim 1, wherein the shield is a separate structure from the shell.
10. The isolation tank of claim 1, further comprising: a shield ground electrically coupled to the shield and configured to electrically ground the shield.
11. The isolation tank of claim 10, further comprising: a switch configured to switch between connecting the shield to the shield ground and disconnecting the shield from the shield ground.
12. The isolation tank of claim 1, further comprising: a liquid ground electrically coupled to the liquid contained in the lower tank portion and configured to electrically ground the liquid.
13. The isolation tank of claim 12, further comprising: a switch configured to switch between connecting the liquid to the liquid ground and disconnecting the liquid from the liquid ground.
14. The isolation tank of claim 1, further comprising a shield ground electrically coupled to the shield and configured to electrically ground the shield; a liquid ground electrically coupled to the liquid contained in the lower tank portion and configured to electrically ground the liquid; and a switch configured to switch between at least two of connecting the shield to the shield ground, connecting the liquid to the liquid ground, connecting the shield to the shield ground and connecting the liquid to the liquid ground, disconnecting the shield from the shield ground, disconnecting the liquid from the liquid ground, or disconnecting the shield from the shield ground and disconnecting the liquid from the liquid ground.
15. A method, comprising: providing an isolation tank comprising a shell comprising an upper cover and a lower tank portion having one or more sidewalls connected to a floor, the lower tank portion configured to hold liquid, and the lower tank portion and the upper cover together defining an interior chamber configured to receive a user; and providing a conductive shield operatively associated with at least a portion of the shell and configured to shield at least a portion of the interior chamber from an external electromagnetic field.
16. The method of claim 15, further comprising providing a shield comprising at least one of copper, aluminum, gold, silver, iron, nickel, carbon, or carbon fiber.
17. The method of claim 15, further comprising providing a shield comprising a mesh, a mesh cloth, a woven cloth, a sheet, a plurality of wires, or a plurality of filaments.
18. The method of claim 15, further comprising: providing a shield ground electrically coupled to the shield and configured to electrically ground the shield; providing a switch configured to switch between connecting the shield to the shield ground and disconnecting the shield from the shield ground; and switching, via the switch, between connecting the shield to the shield ground and disconnecting the shield from the shield ground.
19. The method of claim 15, further comprising: providing a liquid ground electrically coupled to the liquid and configured to electrically ground the liquid; providing a switch configured to switch between connecting the liquid to the liquid ground and disconnecting the liquid from the liquid ground; and switching, via the switch, between connecting the liquid to the liquid ground and disconnecting the liquid from the liquid ground.
20. The method of claim 15, further comprising: providing a shield ground electrically coupled to the shield and configured to electrically ground the shield; providing a liquid ground electrically coupled to the liquid and configured to electrically ground the liquid; providing a switch configured to switch between at least two of connecting the shield to the shield ground, connecting the liquid to the liquid ground, connecting the shield to the shield ground and the liquid to the liquid ground, disconnecting the shield from the shield ground, disconnecting the liquid from the liquid ground, or disconnecting the shield from the shield ground and disconnecting the liquid from the liquid ground; and switching, via the switch, between at least two of connecting the shield to the shield ground, connecting the liquid to the liquid ground, connecting the shield to the shield ground and the liquid to the liquid ground, disconnecting the shield from the shield ground, disconnecting the liquid from the liquid ground, or disconnecting the shield from the shield ground and disconnecting the liquid from the liquid ground.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015]
[0016]
[0017]
[0018]
[0019]
DETAILED DESCRIPTION
[0020] In the following description, for the purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the described embodiments. It will be apparent to one skilled in the art, however, that other embodiments of the present invention may be practiced without some of these specific details. Several embodiments are described herein, and while various features are ascribed to different embodiments, it should be appreciated that the features described with respect to one embodiment may be incorporated with other embodiments as well. By the same token, however, no single feature or features of any described embodiment should be considered essential to every embodiment of the invention, as other embodiments of the invention may omit such features.
[0021] Unless otherwise indicated, all numbers used herein to express quantities, dimensions, and so forth used should be understood as being modified in all instances by the term about. In this application, the use of the singular includes the plural unless specifically stated otherwise and use of the terms and and or means and/or unless otherwise indicated. Moreover, the use of the term including, as well as other forms, such as includes and included, should be considered non-exclusive. Also, terms such as element or component encompass both elements and components comprising one unit and elements and components that comprise more than one unit, unless specifically stated otherwise.
[0022] The embodiments disclosed herein provide isolation chambers, also known as floatation tanks, float tanks, isolation tanks, sensory deprivation tanks, or relaxation tanks, having apparatus to shield the interior of the isolation chamber from external electromagnetic fields (EMFs) or undesirable radiation that can otherwise penetrate the exterior shell of an unshielded isolation chamber. Alternative embodiments include apparatus to selectively ground the EMF/radiation shield and/or ground the liquid contained within the isolation chamber. Thus, the embodiments disclosed herein may include any combination of EMF or radiation shield and ground, where the shield provides for the attenuation of EMFs or radiation that would otherwise penetrate the interior of the isolation chamber the ground(s) may selectively ground any combination of the shield, the liquid in the isolation chamber, or the user.
[0023]
[0024] Any liquid placed into the isolation tank 100 is typically, but not necessarily, heated to a desired temperature, for example the exterior body temperature of a user. Heating may be accomplished with any suitable heating apparatus including but not limited to gas or electric powered heaters, solar heating systems or similar apparatus. The floatation liquid 107 can be filtered, circulated, or treated using various apparatus including but not limited to pumps, filters, ozone generating devices, chemical additions and the like. Any electrical element, such as a heater or pump will typically be connected to a ground fault interruption (GFI) circuit as required by local electrical codes. The floatation liquid 107 will typically be water or water with a salt dissolved therein to adjust the specific gravity of the floatation liquid and other attributes. Representative salts that may be dissolved in the floatation liquid 107 include, but are not limited to, magnesium sulfate and sodium chloride.
[0025] The upper walls 104, sidewalls 106, floor, access door 102, and any other exterior panel or surface of the isolation tank 100 together define a shell 108 which substantially encloses the interior of the isolation chamber 100. Additionally, the upper walls 104, sidewalls 106, floor, access door 102 and any other exterior structure of the isolation tank 100 together define a chamber and/or interior space within the isolation chamber 100 configured to hold or receive a user. As noted above, in some embodiments, the shell 108 is a unified structure, potentially having curved surfaces that only generally correspond to upper wall, sidewall, floor, cover and other services.
[0026] The shell 108 may include or be associated with a shield 110, shielding the interior of the isolation chamber from one or more external electromagnetic fields (EMFs) or from undesirable radiation that would otherwise penetrate or be transmitted through the shell 108 without a shield 110. Thus, the shield 110 attenuates EMFs or radiation within the isolation chamber 100. In some embodiments, the shield 110 is incorporated into the entirety of the top, bottom and sides of the shell 108. Other embodiments may include a partial shield 110. The shield 110 may be fabricated from a conductive material such as copper, aluminum, gold, silver, iron, nickel, another metal, alloys or combinations of metals, carbon, carbon fiber or other conductive or shielding material. The shield 110 may be implemented as a mesh, a mesh cloth, a matt, a foil, a woven cloth, a sheet, a plurality of wires, a grid of wires or other elements, a plurality of filaments or other sheathing. The shield 110 may be applied to the shell 108 at or toward the surface of the shell 108, as a layer positioned within the thickness of the shell 108, distributed throughout the shell, positioned at or toward an interior surface of the shell 108, integrated within the shell 108, or some combination of the above.
[0027] In some embodiments, the isolation tank 100 may also include one or more shield ground terminals 112 in electrical communication with the shield 110. Electrical communication between the shield 110 and a shield ground terminal 112 may be provided by a soldered connection, a bolted electrical connection, electrically conductive clips or terminals, or any other method providing a relatively low resistance electrical connection between the shield 110 and a shield ground terminal 112. In addition, one or more separate liquid ground terminals 114 may be provided in electrical communication with the floatation liquid 107. Electrical communication between a liquid ground terminal 114 and the floatation liquid 107 may be provided through a conductive probe, conductive plate, conductive surface, wire, or other conductive element extending into contact with the floatation liquid 107. In certain embodiments, any portions of the liquid ground terminal 114 in contact with the floatation liquid 107 are fabricated from a material which resists corrosion, for example stainless steel, titanium, gold plated conductive metal and the like. A representative shield ground terminal 112 and liquid ground terminal 114 are shown in
[0028] Thus, any shield ground terminal 112 and/or liquid ground terminal 114 may be electrically connected to dedicated grounds away from the isolation chamber 100. See, for example, the dedicated grounds 116 and 118, of
[0029] The electrical connection between a shield ground terminal 112 or liquid ground terminal 114 and the associated ground may be made using a suitable conductor, for example cables 120 or 122, respectively. As detailed below, the connection between a ground terminal and the associated dedicated or shared ground may optionally be disconnected using a switch, for example switch 124 or 126, respectively.
[0030] The shield 110 and associated grounding structures (e.g., shield grounding terminal 112, ground 116, cable 120, switch 124, etc.) may be electrically isolated from the floatation liquid 107. The floatation liquid 107 and associated grounding structures (e.g., liquid grounding terminal 114, ground 118, cable 122, switch 126, etc.) may be electrically isolated from the shield 110. Alternatively, the shield 110 and the floatation liquid 107 may be electrically connected. In some embodiments, a switch, for example switch 124 or 126, respectively, may be provided allowing the user to electrically connect or disconnect the shield 110 and/or floatation liquid 107 from the associated grounds.
[0031] Functionally, the shield ground terminal 112 provides a ground path for any current present in, induced into, or conducted into the shield. The liquid ground terminal 114 provides a ground path for any electrical current present in, induced into, or conducted into the liquid 107 and contents immersed in the floatation liquid 107. In some embodiments, a third ground path may be provided that is directly connected to a user, for example with a conductive bracelet or anklet.
[0032] As noted above, an embodiment having both a shield grounding terminal 112 and a liquid grounding terminal may discharge current to separate or the same physical grounds. For example, as shown in
[0033] The representative embodiments of
[0034] One example of a switch that may be used to provide, disconnect, or connect different grounds is shown in
[0035] The switching embodiment of 5B is representative of an isolation chamber 100 having separate dedicated shell and fluid grounds, as illustrated in
[0036] Furthermore, some or all the grounding switches associated with an isolation chamber 100 may be controlled by an automated system, a remote-control system, or a logically enabled switching system. In one representation of an automated system, shown on
[0037] Alternatively, the sensor 302 may be configured to detect and analyze a free radical count associated with the user of the isolation chamber 100, the presence of an electrical charge in the shell 108 or fluid 107, the presence of an electrical or magnetic field in or near the interior of the isolation chamber 100, or any other condition that may trigger the automatic connection of one or more of the shield 110, fluid 107, or user to ground. As noted above, electrical elements such as a heater or pump associated with the isolation chamber 100 will typically be grounded through the household or building ground and a GFI circuit providing some measure of safety. An automated supplemental ground as described above provides additional safety, in the event of a lightning strike or other transient event.
[0038] Having described the present invention, it will be understood by those skilled in the art that many changes in construction and widely differing embodiments and applications of the invention will suggest themselves without departing from the scope of the present invention.
[0039] Hence, while various embodiments are described withor withoutcertain features for ease of description and to illustrate exemplary aspects of those embodiments, the various components and/or features described herein with respect to a particular embodiment can be substituted, added and/or subtracted from among other described embodiments, unless the context dictates otherwise. Consequently, although several exemplary embodiments are described above, it will be appreciated that the invention is intended to cover all modifications and equivalents within the scope of the following claims.