SYSTEM FOR RECIRCULATING WARM AIR
20230065363 · 2023-03-02
Inventors
Cpc classification
A61B90/70
HUMAN NECESSITIES
A47C27/082
HUMAN NECESSITIES
A61F7/0097
HUMAN NECESSITIES
International classification
Abstract
A recirculating warm air system configured to connect to an air inflatable product is provided. The system includes a first chamber and a second chamber. The first chamber includes a first air inlet and a first valve located at the first air inlet. The second chamber includes a second valve located between the first chamber and the second chamber, an air outlet, and a first hose connected to the air outlet. The second chamber further includes an air blower and a heater located between the air blower and the air outlet. The second chamber includes a second air inlet, a third valve located at the second air inlet, and a second hose connected to the second air inlet. The first hose and the second hose are configured to connect to the air inflatable product. The system further includes a processing unit configured to control elements of the system.
Claims
1. A recirculating warm air system, the system comprising: an air inflatable product made of an air-impermeable material; a recirculating warm air machine configured to supply air to the air inflatable product when removably attached thereto, the machine comprising: a first chamber having a first air inlet configured to allow air to pass into the first chamber, a second chamber having a second air inlet configured to allow air to pass into the second chamber and an air outlet configured to allow air to pass out of the second chamber, and one or more one-way valves that are configured to selectively allow the passage of air between the first and second chambers to ensure re-circulation of heated air within the air inflatable product when the inflatable product is attached to the recirculating warm air machine; and a detachable cleaning unit configured to removably attach to the recirculating warm air machine, the cleaning system comprising: an ionizing unit, an intake hose configured to connect to the air outlet of the recirculating warm air machine, and an outlet hose configured to connect to either the first air inlet or the second air inlet of the recirculating warm air machine.
2. The recirculating warm air system of claim 1, wherein air is configured to pass from the second chamber of the air recirculating machine into the ionizing unit via the intake hose, through the ionizing unit, and back into the air recirculating machine via the outlet hose.
3. The recirculating warm air system of claim 1, wherein the recirculating warm air machine further comprises: a first hose configured to connect to the air outlet and to the air inflatable product to pass the air from the air recirculating machine to the air inflatable product; and a second hose configured to connect to the second air inlet and to the air inflatable product to receive the air passing from the air inflatable product.
4. The recirculating warm air system of claim 1, wherein the first and second air inlets have one-way valves located thereon, the one-way valves being configured to only allow air to flow into the recirculating warm air machine.
5. The recirculating warm air system of claim 4, wherein the air outlet has a one-way valve located thereon, the one-way valve being configured to only allow air to flow out of the recirculating warm air machine.
6. The recirculating warm air system of claim 1, wherein the recirculating warm air machine further comprises: an air blower configured to move air toward the air outlet; and a heater located between the air blower and the air outlet.
7. The recirculating warm air system of claim 6, further comprising a processing unit configured to control one or more of the following: the ionizer, the air blower, and the heater.
8. The recirculating warm air system of claim 7, wherein the processing unit is configured to control a time period for which the ionizer runs.
9. The recirculating warm air system of claim 8, wherein a user can select the time period for which the ionizer runs.
10. The recirculating warm air system of claim 9, wherein the processing unit is configured to determine that the ionizer is connected to the recirculating warm air machine and, upon determining that the ionizer is connected to the recirculating warm air machine, initiate cleaning of the recirculating air machine with the ionizer.
11. The recirculating warm air system of claim 7, wherein the processing unit is configured to determine that the inflatable air product is connected to the recirculating warm air machine; and wherein a valve located on the first air inlet is opened upon the determining that the inflatable air product is connected to the recirculating warm air machine.
12. The recirculating warm air system of claim 11, wherein the processing unit is further configured to determine, based on predetermined criteria, that an amount of the air provided to the air inflatable product has reached a predetermined threshold; and based on the determination: close a second valve located between the first air chamber and the second air chamber; and open a third valve located at the second air inlet; wherein upon the closing of the second valve and the opening of the third valve, the air recirculates through the air inflatable product and the second chamber.
13. A recirculating warm air system, the system comprising: a recirculating warm air machine configured to supply air to an air inflatable product when removably attached thereto, the machine comprising: a first chamber having a first air inlet configured to allow air to pass into the first chamber, a second chamber having a second air inlet configured to allow air to pass into the second chamber and an air outlet configured to allow air to pass out of the second chamber, and one or more one-way valves that are configured to selectively allow the passage of air between the first and second chambers to ensure re-circulation of heated air within the air inflatable product when the inflatable product is attached to the recirculating warm air machine; and a cleaning unit permanently attached to the recirculating warm air machine, the cleaning unit comprising: an ionizing unit, and a hose in operative communication with the second chamber, the hose being configured to deliver negative ions into the second chamber.
14. The recirculating warm air system of claim 13, wherein the recirculating warm air machine further comprises: an air blower configured to move air toward the air outlet; and a heater located between the air blower and the air outlet.
15. The recirculating warm air system of claim 14, further comprising a processing unit configured to control one or more of the following: the ionizer, the air blower, and the heater.
16. The recirculating warm air system of claim 15, wherein the processing unit is configured to control a time period for which the ionizer runs.
17. The recirculating warm air system of claim 16, wherein a user can select the time period for which the ionizer runs.
18. The recirculating warm air system of claim 15, wherein the processing unit is configured to determine that the air inflatable product is connected to the recirculating warm air machine.
19. A method of cleaning the recirculating warm air system of claim 1, the method comprising: attaching the intake hose of the cleaning unit to the air outlet of the recirculating warm air machine; attaching the outlet hose of the cleaning unit to either the first air inlet or the second air inlet of the recirculating warm air machine; and setting a time period for which the cleaning unit should run.
20. The method of claim 19, further comprising, prior to attaching the intake and outlet hoses of the cleaning unit, detaching the air inflatable product from the recirculating warm air machine.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022] The features of the invention are set forth with particularity in the appended claims. A better understanding of the features and advantages of the present invention will be obtained by reference to the following detailed description that sets forth illustrative embodiments, in which the principles of the invention are utilized, and which the accompanying drawings illustrate.
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
DETAILED DESCRIPTION
[0031] The following detailed description includes references to the accompanying drawings, which form a part of the detailed description. The drawings show illustrations in accordance with exemplary embodiments. These exemplary embodiments, which are also referred to herein as “examples,” are described in enough detail to enable those skilled in the art to practice the present subject matter. The embodiments can be combined, other embodiments can be utilized, or structural, logical, and electrical changes can be made without departing from the scope of what is claimed. The following detailed description is, therefore, not to be taken in a limiting sense, and the scope is defined by the appended claims and their equivalents.
[0032] Thus, for example, any sequence(s) and/or temporal order of steps of various processes or methods that are described herein are illustrative and not restrictive. Accordingly, it should be understood that, although steps of various processes or methods may be shown and described as being in a sequence or temporal order, the steps of any such processes or methods are not limited to being carried out in any particular sequence or order, absent an indication otherwise. Indeed, the steps in such processes or methods generally may be carried out in various different sequences and orders while still falling within the scope of the present invention. Accordingly, it is intended that the scope of patent protection is to be defined by the issued claim(s) rather than the description set forth herein.
[0033] Additionally, it is important to note that each term used herein refers to that which an ordinary artisan would understand such term to mean based on the contextual use of such term herein. To the extent that the meaning of a term used herein—as understood by the ordinary artisan based on the contextual use of such term—differs in any way from any particular dictionary definition of such term, it is intended that the meaning of the term as understood by the ordinary artisan should prevail.
[0034] Regarding applicability of 35 U.S.C. § 112, ¶6, no claim element is intended to be read in accordance with this statutory provision unless the explicit phrase “means for” or “step for” is actually used in such claim element, whereupon this statutory provision is intended to apply in the interpretation of such claim element.
[0035] Furthermore, it is important to note that, as used herein, “a” and “an” each generally denotes “at least one,” but does not exclude a plurality unless the contextual use dictates otherwise. When used herein to join a list of items, “or” denotes “at least one of the items,” but does not exclude a plurality of items of the list. Finally, when used herein to join a list of items, “and” denotes “all of the items of the list.”
[0036] The following detailed description refers to the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the following description to refer to the same or similar elements. While many embodiments of the disclosure may be described, modifications, adaptations, and other implementations are possible. For example, substitutions, additions, or modifications may be made to the elements illustrated in the drawings, and the methods described herein may be modified by substituting, reordering, or adding stages to the disclosed methods. Accordingly, the following detailed description does not limit the disclosure. Instead, the proper scope of the disclosure is defined by the appended claims. The present disclosure contains headers. It should be understood that these headers are used as references and are not to be construed as limiting upon the subjected matter disclosed under the header.
[0037] The present disclosure includes many aspects and features. Moreover, while many aspects and features relate to, and are described in, the context of heated blankets in a medical setting, embodiments of the present disclosure are not limited to use only in this context.
[0038] The present disclosure is directed to a system for recirculating warm air. The system may comprise, a recirculating warm air machine, an air inflatable product, such as a blanket or a mattress, and/or a cleaning unit for decontaminating the recirculating warm air machine. In some embodiments, the air inflatable product is made of non-porous air-impermeable material. The recirculating warm air machine may be connected to the air inflatable product and/or the cleaning unit via one or more hoses.
[0039] The recirculating warm air machine may include two chambers. The first chamber may include a first air inlet and a first valve configured to pass air into the first chamber. The second chamber may include a second valve located between the first chamber and the second chamber. The second valve may pass the air from the first chamber to the second chamber. In some embodiments, the second chamber may include an air outlet, an air blower, and a heater located between the air blower and the air outlet.
[0040] In example embodiments, when the recirculating warm air machine is turned on, the air blower starts moving the air from the first air inlet to the first chamber to the second valve located between the first chamber and the second chamber. Upon entering the second chamber, the air may pass through the air blower and the heater. The heater may heat the air passing through the heater. In such embodiments, after the air is heated, the air moves to the air outlet in the second chamber, passes through a first hose to the air inflatable product, and inflates the air inflatable product.
[0041] In example embodiments, when the pressure in the air inflatable product reaches a predetermined threshold, a third valve located in the second chamber may open and the air may pass through the second hose from the air inflatable product to the second chamber.
[0042] In example embodiments, once the third valve opens, the second valve between the first chamber and the second chamber may close. In such embodiments, after the second valve closes, the heated air may be recirculated through the air inflatable product and the second chamber.
[0043] Thus, the recirculating warm air system recirculates the air in a closed loop without releasing the air into the environment. Accordingly, the air recirculated inside the recirculating warm air system and the air inflatable product does not come in contact with the environment and cannot be contaminated by bacteria residing in the environment.
[0044] Moreover, because the air inflatable product is non-porous, no air is released by the air inflatable product into the environment. Therefore, there is no air flowing from the air inflatable product into a surgery area during medical procedures.
[0045] Referring now to the drawings,
[0046] In example embodiments, the air inflatable product 120 may include one of the following: a blanket, a mattress, a bag, a suit, and any other product to be inflated with air. The air inflatable product 120 may be used in medicine to keep patients warm. For example, patients may be laid onto an air inflatable mattress, covered by an air inflatable blanket, laid into an air inflatable bag, or clothed in an air inflatable suit during a medical procedure, such as a medical surgery.
[0047] The system 100 may include a first chamber 105 and a second chamber 110 of the recirculating warm air machine 102. The system 100 may further include a chamber separator 104 disposed between the first chamber 105 and the second chamber 110 to separate the first chamber 105 and the second chamber 110 from each other. The chamber separator 104 may include a wall made inside the recirculating warm air machine 102. In some example embodiments, the first chamber 105 and the second chamber 110 may be of the same or different sizes.
[0048] The first chamber 105 may include a first air inlet 115 and a first valve 122 located at the first air inlet 115. The first valve 122 may pass air from an environment 107 into the first chamber 105. In an example embodiment, the first air inlet 115 may have the size of about 2-3 inches.
[0049] The second chamber 110 may further include a second valve 155 located between the first chamber 105 and the second chamber 110. The second valve 155 may be disposed in an opening 147 made in the chamber separator 104. The second valve 155 may pass the air from the first chamber 105 to the second chamber 110.
[0050] The second chamber 110 may have an air outlet 125 and a second air inlet 145. In an example embodiment, the second air inlet 145 and the air outlet 125 may have the size of about 2-3 inches. The second chamber 110 may further include an air blower 135 configured to move the air towards the air outlet 125. The second chamber 110 may have a heater 140 located between the air blower 135 and the air outlet 125.
[0051] The second chamber 110 may be attached to a first hose 130 and a second hose 150. The first hose 130 and the second hose 150 may be made of a flexible air-impermeable material, such as plastic or any other applicable material.
[0052] The air inflatable product 120 may connect to the second chamber 110 using the first hose 130 and the second hose 150. Specifically, the first hose 130 may connect to the air outlet 125 by a first end 132 of the first hose 130 and may connect to the air inflatable product 120 by a second end 134 of the first hose 130. When connected, the first hose 130 may pass the air from the second chamber 110 to the air inflatable product 120.
[0053] The second chamber 110 may further include a second air inlet 145. The second hose 150 may be connected to the second air inlet 145. The second hose 150 may connect to the air inflatable product 120 and receive the air from the air inflatable product 120. Specifically, the second hose 150 may include a first end 152 and a second end 154. The first end 152 may connect to the second air inlet 145 and the second end 154 may connect to the air inflatable product 120. When connected, the second hose 150 may pass the air from the air inflatable product 120 to the second chamber 110.
[0054] The second chamber 110 may further include a third valve 160 located at the second air inlet 145. The third valve 160 may be configured to pass the air received from the air inflatable product 120 into the second chamber 110.
[0055] The system 100 may further include a processing unit 165. The processing unit 165 may be configured to control an operation of elements of the system 100. Specifically, the processing unit 165 may be configured to control one or more of the air blower 135, the heater 140, the first valve 122, the second valve 155, the third valve 160, and a fourth valve 167.
[0056]
[0057] Referring again to
[0058] In the second chamber 110, the air may be moved from the second valve 155 to the air blower 135 (as shown by arrow 3) and then through the air blower 135 and the heater 140 (as shown by arrow 4). The heater 140 may be configured to heat the air passing from the air blower 135 to the air outlet 125 to a predetermined temperature. In an example embodiment, the second chamber 110 may further include a guide wall 112. The guide wall 112 may be disposed in the second chamber 110 in order to direct the air from the second valve 155 to the air blower 135.
[0059] Upon passing through or in a proximity of the heater 140, the air may pass to the air outlet 125 (as shown by arrow 5). Thus, in such embodiments, the air is passed from the second chamber 110 to the air inflatable product 120. Specifically, the air is passed from the air outlet 125 of the second chamber 110 to the first hose 130 and then through the first hose 130 (as shown by arrow 6) to the air inflatable product 120. The third valve 160, when closed, may prevent the air from exiting the air inflatable product 120. Therefore, as the air blower 135 continues to move the air, the air may inflate the air inflatable product 120 (as shown by arrow 7).
[0060] The air inflatable product 120 may be made of a flexible non-porous air-impermeable material, such as plastic, rubber, insulated cloth, and/or the like. In an example embodiment, the air inflatable product 120 may be in a shape of a parallelepiped with rounded corners and edges. Any other applicable shapes of the air inflatable product 120 can be used for specific purposes.
[0061] The air inflatable product 120 may have a first inlet 170 configured to attach to the first hose 130 and a second inlet 175 configured to attach to the second hose 150. The air may pass to the inflatable product 120 through the first inlet 170 (as shown by arrow 7).
[0062] The air inflatable product 120 may have one or more dividers 180. The dividers 180 may connect an upper surface and a lower surface of the air inflatable product 120 and divide the air inflatable product 120 into sections 185. The dividers 180 may have air passages 190 for passing the air between sections 185. The air provided into the air inflatable product 120 may inflate the air inflatable product 120 by moving along the sections 185 and through the air passages 190 (as shown by arrow 8).
[0063] The processing unit 165 may be configured to determine, based on predetermined criteria, that the amount of the air provided to the air inflatable product has reached a predetermined threshold. For example, the third valve 160 may be set to maintain a predetermined pressure in the air inflatable product 120. Therefore, the third valve 160 may be closed until the pressure in the air inflatable product 120 reaches the predetermined pressure. Reaching the predetermined pressure in the air inflatable product 120 means that the amount of the air provided to the air inflatable product 120 has reached the predetermined threshold. The predetermined pressure maintained by the third valve 160 may be a full inflation pressure of the air inflatable product 120 such that the air inflatable product 120 remains full of warm air.
[0064] Upon determining that the amount of the air provided to the air inflatable product 120 has reached the predetermined threshold, the processing unit 165 may close the second valve 155 and open the third valve 160. In other example embodiments, opening of the third valve 160 increases pressure in the second chamber 110, thus closing the second valve 155 between the first chamber 105 and the second chamber 110 and closing the first valve 122 where air enters the recirculating warm air machine 102. Thus, upon closing of the second valve 155 and the opening of the third valve 160, a closed warm air circuit is created in which the air recirculates through the air inflatable product 120 and the second chamber 110. Specifically, the air exits from the second inlet 175 of the air inflatable product 120 (as shown by arrow 9), passes through the second hose 150 (as shown by arrow 10), and enters the second chamber 110 through the second air inlet 145 (as shown by arrow 11). Upon entering the second chamber 110, the air again travels to the air blower 135. The air flow from the air blower 135 and the pressure in the air inflatable product 120 keep the third valve 160 open and keep circulation of the warm air continuous until the system 100 is turned off. Accordingly, the system 100 recirculates the air through the air inflatable product 120 and the second chamber 110 without releasing the air into the environment 107.
[0065] In an example embodiment, the system 100 may further include a fourth valve 167 located between the first chamber 105 and the second chamber 110. The fourth valve 167 may be disposed in an opening 169 made in the chamber separator 104. The fourth valve 167 may include a pressure pop-off valve configured to pass the air from the second chamber 110 to the first chamber 105 (as shown by arrow 12), if pressure in the air inflatable product 120 exceeds a predetermined pressure (i.e., if excess pressure is applied to the air inflatable product 120). Upon releasing the air from the second chamber 110 to the first chamber 105, the fourth valve 167 may close again when the pressure returns to the predetermined level in the air inflatable product 120. In such embodiments, when the fourth valve 167 opens, the first valve 122 in the first chamber 105 is already closed, thus no air is released from the first chamber 105 into the environment 107.
[0066] In an example embodiment, each of the first valve 122, the second valve 155, the third valve 160, and the fourth valve 167 may be one-way valves that allow an air flow to pass in one direction and are completely closed in the opposite direction. Specifically, the first valve 122 may allow the air flow to pass only in the direction from the environment 107 to the first chamber 105. The second valve 155 may allow the air flow to pass only in the direction from the first chamber 105 to the second chamber 110. The third valve 160 may allow the air flow to pass only in the direction from the second hose 150 to the second chamber 110. The fourth valve 167 may allow the air flow to pass only in the direction from the second chamber 110 to the first chamber 105.
[0067] In some embodiments, the processing unit 165 may be configured to determine that the first hose 130 and/or the second hose 150 are connected to the second chamber 110. To prevent release of the air from the second chamber 110 into the environment 107, the opening of the first valve 122 may be initiated upon determining that the first hose 130 and the second hose 150 are connected to the second chamber 110. The air outlet 125 and the second air inlet 145 may include sensors to determine whether the first hose 130 is connected to the air outlet 125 and whether the second hose 150 is connected to the second air inlet 145. Thus, the system 100 has a built-in safety feature where the first hose 130 and the second hose 150 must be connected for the recirculating warm air machine 102 to turn on, thus forbidding the recirculating warm air machine 102 to free the air into the environment 107 instead of the air inflatable product 120.
[0068]
[0069]
[0070] In an example embodiment, the air inflatable product 120 may include a heat reflective backing 310. Specifically, the air inflatable product 120 may have a first surface 315 and a second surface 320. The second surface 320 may be intended to face the patient 305. The heat reflective backing 310 may be applied to the first surface 315 and configured to reflect the heat from an inner side of the first surface 315 down towards the second surface 320. The second surface 320 may not have any heat reflective backing. Therefore, the heat from the second surface 320 may contact the patient 305 through the second surface 320 to keep the patient 305 warm.
[0071]
[0072] In some embodiments, the recirculating warm air system 100 comprises a cleaning unit 400 for decontaminating and/or otherwise cleaning the recirculating warm air machine 102. The cleaning unit 400 may be detachable, as illustrated in the example embodiment of
[0073] Where the cleaning unit 400 is detachably connected to the warm air recirculating machine 102, the cleaning unit 400 may comprise an intake hose 420 and an outlet hose 430. The ionizer 410 may connect to the warm air recirculating machine 102 using the intake hose 420 and the outlet hose 430. Specifically, the intake hose 420 may be configured to connect to the air outlet 125 by a first end 422 and may be configured to connect to the ionizer 410 via a second end 424 of the intake hose 420. When connected, the intake hose 420 may pass contaminated air from the recirculating warm air machine 102 to the ionizer 410. As the air passes through the ionizer 410, filters within the ionizer 410 may capture charged contaminants from the air. The outlet hose 430 may be configured to connect to at least one of the first air inlet 115 and/or the second air inlet 145. Specifically, the outlet hose 430 may be configured to connect to the first and/or second air inlets 115, 145 at a first end 432 and may be configured to connect to the ionizer 410 via a second end 434 of the outlet hose 430. When connected, the outlet hose 430 may pass cleansed air and/or air containing ions from the ionizer 410 to the recirculating warm air machine 102.
[0074] Where the cleaning unit 500 is permanently connected to the recirculating warm air machine 102, the cleaning unit 500 may comprise only a single hose 520. An ionizer 510 may connect to the recirculating warm air machine 102 using the hose 520. Specifically, the hose 520 may be configured to connect to an inlet formed within the air recirculating machine 102 at a first end 522 of the hose 520 and may be configured to connect to the ionizer 510 via a second end 524 of the hose 520. When connected, the hose 520 may pass ions from the ionizer into the recirculating warm air machine 102, which itself may recirculate the air within the machine 102 using a “cleaning” mode, e.g., via activation of the air blower 135.
[0075] In the illustrated embodiments, the ionizer 410, 510 is in operative communication with the second chamber 110 and in operative communication with both the first chamber 105 and the second chamber 110 while the fourth valve 167 and the second valve 155 are in the open position. However, it will be appreciated that the ionizer 410, 510 may be utilized to cleanse any portion of the warm air recirculating machine 102, as well as the entirety of the warm air recirculating machine 102. It will also be appreciated that the cleaning unit 400, 500 may be used to clean the air inflatable product 120.
[0076] The intake hose 420, the outlet hose 430, and/or the dual function hose 520 may be made of a flexible air-impermeable material, such as plastic or any other applicable material.
[0077] It will be appreciated that the cleaning units 400, 500 may be intended for use between patient uses of the recirculating warm air machine 102. In particular, where the cleaning unit 400 is detachable, the cleaning unit 400 may be configured to connect to the same inlets and/or outlets as the inflatable product 120. In such embodiments, the inflatable product 120 cannot be connected to the recirculating warm air machine 102 at the same time as the cleaning unit 400.
[0078] In still further embodiments, the processing unit 165 may be configured to determine that the intake hose 420 and/or the outlet hose 430 of the cleaning unit 400 are connected to the recirculating warm air machine 102. Upon determining that the intake hose 420 and/or the outlet hose 430 are connected to the recirculating warm air machine 102, the processing unit 165 may initiate the cleaning process by turning on the ionizer 410. Additionally or alternatively, the cleaning unit 400 may include a switch, button, or other control (not shown) to manually initiate the cleaning process.
[0079] In some embodiments, the cleaning unit 400, 500 may comprise a timing functionality that enables the ionizer 410, 510 to run for a determined period of time after it is switched on, thus enabling a user to turn on the ionizer 410, 510 and walk away without having to worry about turning off the ionizer. In some embodiments, controls on the ionizer 410, 510 itself may enable a user to set the period of time for which the ionizer 410, 510 is to run before shutting off automatically. Additionally or alternatively, a user may input the period of time to the processing unit 165, which then terminates the cleaning functionality after the predetermined period of time has elapsed. Additionally or alternatively, the period of time may be determined dynamically, by the processing unit. As non-limiting examples, the processing unit 165 may determine the period of time based on one or more of: a contaminant level in air received at the ionizer 410,510, a contaminant level of air in the warm air recirculating machine 102, an amount of time elapsed since the last cleaning, an indication of contamination level input by a user, and/or any other factors related to cleanliness of the system 100 or portions thereof.
[0080]
[0081] The computer system 400 may include a processor or multiple processors 402, a non-volatile storage 404, a main memory 406 and a static memory 408, which communicate with each other via a bus 410. The computer system 400 may also include a network interface device 412. The non-volatile storage 404 may include a machine-readable medium 420, which stores one or more sets of instructions and data 422 embodying or utilized by any one or more of the methodologies or functions described herein. The instructions and data 422 can also reside, completely or at least partially, within the main memory 406 and/or within the processors 402 during execution thereof by the computer system 400. The main memory 406 and the processors 402 also constitute machine-readable media.
[0082] While the machine-readable medium 420 is shown in an exemplary embodiment to be a single medium, the term “computer-readable medium” should be taken to include a single medium or multiple media (e.g., a centralized or distributed database, and/or associated caches and servers) that store the one or more sets of instructions. The term “computer-readable medium” shall also be taken to include any medium that is capable of storing, encoding, or carrying a set of instructions for execution by the machine and that causes the machine to perform any one or more of the methodologies of the present application, or that is capable of storing, encoding, or carrying data structures utilized by or associated with such a set of instructions. The term “computer-readable medium” shall accordingly be taken to include, but not be limited to, solid-state memories, optical and magnetic media. Such media can also include, without limitation, hard disks, floppy disks, NAND or NOR flash memory, digital video disks, Random Access Memory, Read-Only Memory, and the like.
[0083] Embodiments of the present disclosure provide a system operative by a set of methods comprising instructions configured to operate the aforementioned components in accordance with the methods. The following depicts an example of a method of a plurality of methods that may be performed by at least one of the aforementioned components. Various hardware components may be used at the various stages of operations disclosed with reference to each component.
[0084] For example, although methods may be described to be performed by a single component, it should be understood that, in some embodiments, different operations may be performed by different components in operative relation with one another. For example, an apparatus may be employed in the performance of some or all of the stages disclosed with regard to the methods. As such, the apparatus may comprise at least one architectural component disclosed herein.
[0085] Furthermore, although the stages of the following example method are disclosed in a particular order, it should be understood that the order is disclosed for illustrative purposes only. Stages may be combined, separated, reordered, and various intermediary stages may exist. Accordingly, it should be understood that the various stages, in various embodiments, may be performed in arrangements that differ from the ones claimed below. Moreover, various stages may be added or removed from the without altering or deterring from the fundamental scope of the depicted methods and systems disclosed herein.
[0086] Consistent with embodiments of the present disclosure, a method may be performed by at least one of the aforementioned components. For example,
[0087] The example embodiments described herein may be implemented in an operating environment comprising software installed on a computer, in hardware, or in a combination of software and hardware.
[0088] Thus, recirculating warm air systems have been described. Although embodiments have been described with reference to specific exemplary embodiments, it will be evident that various modifications and changes can be made to these exemplary embodiments without departing from the broader spirit and scope of the present application. Accordingly, the specification and drawings are to be regarded in an illustrative rather than a restrictive sense.