Hot weather and activities such as athletic activities can become increasingly uncomfortable, particularly amongst those accustomed to air conditioning. Hand held fans are available, but can be cumbersome to use. Devices and methods for keeping cool in warm or hot conditions are desirable.
US Patent Application Publication 20040075311 by Linder discloses a support affixed to a chair backrest that is suitable for receiving ice cubes. This application docs not disclose fans affixed to the support.
U.S. Pat. No. 4,946,220 to Wyon et al., describes a scat cushion for a car that uses a suction turbine to generate suction pressure to suck heat away from the body. This patent docs not disclose airflow from the scat back to the body of the chair user.
U.S. Pat. Nos. 8,801,091 and 9,173,500, to Squires et al. describe a folding chair that includes a fan assembly. The fan assembly is located in the seat of the chair and uses an airflow guide to direct air generally parallel to the back of the chair (
U.S. Pat. No. 9,155,398 to the University of California discloses a scat having a plenum as pan of a backrest that includes at least one fan that circulates air within the plenum. This patent does not disclose a fan attached to or embedded in the backrest that blows air directly against the user.
U.S. Pat. No. 6,644,735 to Bargheer et al. describes an automobile scat which has an air conditioning vent in the lop of the automobile seal, but this vent is attached to the car's air conditioning system: it docs not provide an independent cooling system.
U.S. Pat. No. 7,866,743 to Russell et al., discloses a thermoelectric cooler in the backrest of a chair, however, this cooler creates temperature gradients based on electricity flow in metal. This patent docs not disclose the use of fans in the backrest of a chair.
U.S. Pat. No. 7,878,585 to Salisbury discloses a foldable chair that includes a forced air cooling system. The foldable chair of Salisbury includes four crossed legs that are pivotally and slidably coupled to a pair of back legs and a pair of front legs, and a circular chair frame. The foldable chair of Salisbury further includes a fan bag that is attached to a meshed backrest. A fan is located at the bottom of the fan bag. This patent describes the direction of air flow from the fan as drawing ambient air into the fan bag and through the meshed backrest. The chair is configured for air to flow through the entire width of the meshed backrest.
An “Air Fan Cooling Chair” listed in a Walmart on-line catalog (Walmart #564462126) is described as containing “a large head, body, and seat with a mesh backing providing big airflow from two AA battery operated fans.” The apparently identical chair is listed on an Amazon UK web catalog. This chair (the “Walmart chair”) is depicted in
The present inventor has developed coding apparatuses that allow for air to blow directly on the back of the user including the user's neck and shoulders, thereby cooling the user. A user can experience increased comfort in hot weather, during or after athletic activity, or other situations where personal cooling is desirable. In various embodiments, a cooling apparatus of the present teachings can be a chair comprising one or more fans. In various configurations, the one or more fans can be positioned to blow air directly on a user sitting in a chair. In various configurations, a chair of the present teachings can cool a user more effectively compared to other chairs known in the art.
In various embodiments, an apparatus of the present teachings can comprise an elongated fan support, or “plenum” having a long axis, at least two fan assemblies mounted within the plenum, and an electric power source. In some configurations, the at least two fan assemblies can each comprise a fan configured to blow air perpendicular to the long axis of the plenum. In various configurations, an elongated fan plenum can be configured to direct airflow to concentrate on the center of the user's back, which can include the user's neck and shoulders. In various configurations, the use of an elongated fan plenum of the present teachings can result in an increased velocity of air propelled by the fans in comparison to chairs described in prior art chairs. Furthermore, in various configurations, an elongated fan plenum can be configured to direct airflow to exit through an upper region of the elongated fan plenum, and can be used to cool a user's upper body, including the neck and shoulders. In some configurations, an apparatus of the present teachings, such as a chair of the present teachings, can include an elongated fan plenum that can extend to a headrest. In various aspects, this can allow airflow to be directed to the user's shoulders, neck and head, and thus can help enhance cooling.
In various configurations, the electric power source can be a DC power source such as a battery. In various configurations, the power source can be a solar power source such as a solar cell. In various configurations, the at leas, two fan assemblies can be at least three fan assemblies. In various configurations, the at least two fan assemblies can be two fan assemblies, three fan assemblies, four fan assemblies or more fan assemblies. In various configurations, electric circuitry can include an On-Off switch, which can be integral with a battery or can be a separate electric component.
In various configurations, each fan of the at least two fans can be, independently, from about 40 mm in length and width up to about 220 mm in width and length. In various configurations, each fan of the at least two fans can be independently 40 mm in width and length, 50 mm in width and length, 60 mm in width and length, 70 mm in width and length, 80 mm in width and length, 92 mm in width and length, 120 mm in width and length, 140 mm in width and length, 200 mm in width and length, or 220 mm in width and length. In various configurations, each fan of the at least two fans can be 92 mm in width and length. In various configurations, each fan of the at least two fans can be 120 mm in width and length.
In various configurations, each fan of the at least two fans can be, independently, from about 10 mm in thickness up to about 32 mm in thickness, or thicker. In various configurations, each fan of the at least two fans can be independently, without limitation, 10 mm in thickness, 15 mm in thickness, 25 mm in thickness, 30 mm in thickness or 32 mm in thickness. In various configurations, each fan of the at least two fans can be 25 mm in thickness.
In various configurations, each fan of the at least two fans can be an axial fan, and can comprise from 3 blades up to 10 blades. In various configurations, each fan assembly can comprise a fan guard exterior to the plenum, a Ian interior to the plenum, and a frame extending from the fan guard, wherein the frame attaches to the fan.
In various configurations, each fan assembly can comprise a fan guard exterior to the plenum, a fan interior to the plenum, and a franc extending from the fan guard. In some configurations, the frame can comprise one or more clips, and a retainer can be configured to slide under the clip, and can secure the fan to the fan guard. In various configurations, a clip can be oriented towards the interior of the frame, oriented towards the outside of the frame, or the clips can be a combination of clips oriented towards the inside of the frame and clips oriented towards the outside of the frame. In some configurations, the clips oriented towards the inside of the frame can secure the fan. In some configurations, the clips oriented towards the outside of the frame can secure the retainer.
In various configurations, each fan can have a volumetric flow rating of 30 to 200 cubic feet per minute. In some configurations, each fan can have a volumetric flow rating of 70-80 cubic feet per minute.
In various configurations, the fans can be wired in parallel to the power source. In various configurations, the electric circuitry can include an On-Off switch.
In various configurations, the power source can be a direct current (DC) power source such as, for example and without limitation, one or more batteries. In some configurations, a battery can have a voltage of from 1 volt DC (VDC) to 20 VDC. In some configurations, a battery can have a voltage of from 1.5 volts DC (VDC) to 12 VDC. In various configurations, a battery can be a lead acid battery, a lithium ion battery, a nickel cadmium battery, a zinc carbon battery, or an alkaline battery. In various configurations, a battery can a rechargeable battery such as a lithium ion battery. In various configurations, a single battery, or a combination of batteries connected in series can have an output direct current voltage of at least 6 volts, such as, without limitation, 12 VDC, 20 VDC, 18 VDC, or 24 VDC.
In various configurations, the electric power source can be an alternating current (AC) source, such as, without limitation, a wall outlet (e.g., 120V or 220V) or a generator. In various configurations, the DC power supply can be a solar power supply.
In various configurations, a DC power source can be, for example, a 6 VDC power supply, or a 12 VDC power supply.
In various configurations, a plenum of the present teachings can comprise a non-porous material. In some configurations, the non-porous material can be, without limitation, a non-porous fabric such as canvas; a metal; a plastic or a polymer such as polyester, nylon or rayon, or a combination thereof. In various configurations, the non-porous material can be, without limitation, a plastic such as polypropylene, polyethylene terephthalate (PET, HDPE, LDPE), acrylonitrile butadiene styrene, polyvinyl chloride; polycarbonate, nylon or a combination thereof.
In various configurations, an apparatus of the present teachings can further comprise a chair comprising a porous or meshed back, whereby a fan assembly can be positioned to direct airflow through the porous or meshed back when a fan is in operation. In some configurations, the porous or meshed back can comprise a porous material such as, for example, TEXTILINE® Wicker Weave (PATIO PRODUCTS, INC®, Boca Raton, Fla.). In various configurations, the plenum can be attached to the porous or meshed back by an attachment or attachment means such as, without limitation, stitching, hook and loop fastener (VELCRO®), one or more snaps, one or more slide fasteners (zippers), one or more hooks configured to hold the plenum against the porous or meshed back by gravity, or a combination thereof. In some configurations, a plenum of the present teachings can be reversibly attached to the porous back by a reversible attachment or a reversible attachment means such as, for example and without limitation, one or more hook and loop fasteners, one or more snaps, one or more slide fasteners (zippers), one or more hooks, or a combination thereof.
In various configurations, an apparatus of the present teachings can further comprise an electric power source such as at least one battery. In some configurations, a battery can be a lithium ion batter). In various configurations, a battery can be a rechargeable battery. In various configurations, a battery can be a 12 V battery. In various configurations, a battery can be, for example, a 6 VDC battery, a 12 VDC battery an 18 VDC battery, or a 24 VDC battery. In various configurations, a battery can have an energy capacity of, for example and without limitation. 100-10,000 milliamp hours (mAh). In various configurations, a battery can have an energy storage capacity of, for example and without limitation, 3,000 mAh, 4,000 mAh, 5,000 mAh, 6000 mAh, 7,000 mAh, 8,000 mAh, 9,000 mAh or 10,000 mAh.
In some embodiments, the present teachings include a chair comprising a chair back comprising a porous material that allows air flow or a mesh that allows air flow; and a non-porous fan plenum attached to the chair back. In various configurations, a fan plenum supports at least one fan assembly, at least two fan assemblies, or at least three fan assemblies. In various configurations, each fan assembly 30 (
In some configurations, each fan assembly can comprise a fan mounted within a fan plenum 10 (
In various configurations, a fan assembly can comprise a fan having, in operation, a volumetric air flow of 30 to 100 cubic feet per minute. In some configurations, a fan assembly can comprise a fan having a volumetric air flow of 75 cubic feet per minute.
In various configurations, the fan assemblies can comprise fans which are wired in parallel. In various configurations, the wiring can include an On-Off switch.
In various configurations, the plenum can comprise canvas.
In various configurations, the plenum can be attached to the back of a chair by an attachment means selected from the group consisting of sewing, hook and loop fasteners, a slide fastener (zipper), and a combination thereof. In some configurations, the plenum can be suspended from and held against the back of a chair by one or more hooks, by one or more clamps, or by a combination thereof.
In various configurations, a plenum can be reversibly attached to a chair by an attachment or an attachment means such as, without limitation, a slide fastener (zipper) a hook and loop fastener (VELCRO®), one or more buttons buttonholes or a combination thereof. In various configurations, a plenum can be reversibly attached to a chair in a configuration that allows access to the fans, e.g., for repair, cleaning or maintenance.
In various configurations, a chair of the present teachings can further comprise a power source. The power source can be any power source that can provide direct current electricity, such as, without limitation, a power supply that can convert 120V or 220V alternating current (“wall current”) to direct current; a solar cell; or a battery. In various configurations, a source of DC power can be, for example and without limitation, one or more rechargeable batteries such as one or more lithium ion batteries. In various configurations, a source of DC power can be one or more single use (“disposable”) batteries. In various configurations, a battery can be, for example and without limitation, a standard size C or D battery. In various configurations, a battery can be, without limitation, an alkaline battery, a carbon-zinc battery, a lithium ion battery, a NiMH battery, or a NiCd battery In various configurations, a battery can have a voltage output of, for example and without limitation, 1.2 VDC, 1.5 VDC, 6 VDC, 9 VDC, 12 VDC or 20 VDC. In various configurations, a battery can have a capacity of 1,000-10,000 milliamp-hours. In various configurations, a battery can be a 6000 milliamp-hour battery or a 3000 milliamp-hour battery.
In various configurations, a chair in accordance with the present teachings can further comprise a battery support, for example, a pouch or pocket that can attach to, or be a part of, a chair.
In various configurations, a chair of the present teaching can be an outdoor chair, i.e., a chair configured for use out-of-doors. In various configurations, the chair can be, for example, a lawn chair, a camp chair, a folding chair, a wicker chair, a patio chair, a porch chair, a deck chair, a beach chair, an acapulco chair, an adirondack chair, a butterfly chair, a director's chair, a glider, a lifeguard chair, a sedan chair, a stroller, a power chair, a rocking chair, a stacking chair, a sweetheart chair, a wheelchair, a lounge chair, a reclining chair, or a quad-chair.
In various configurations, the present teachings disclose, without limitation, the following aspects:
In some aspects, the present teachings include a chair comprising a chair back, wherein the chair back comprises a porous material; an electric power source; and an elongated fan plenum comprising a long axis disposed substantially vertically upon the chair back, wherein the elongated fan plenum comprises a non-porous material and two or more fan assemblies, each fan assembly comprising a fan, wherein each fan is configured to direct air flow through the chair back, and wherein the chair back is taller than that of the chair shown in Walmart catalog #564462126.
In some aspects, the present teachings include an elongated fan plenum comprising a long axis; two or more fan assemblies, each fan assembly comprising a fan; an electric power source, and means for reversibly attaching the elongated fan plenum to a chair back comprising a mesh that allows air flow, wherein each fan is configured to blow air perpendicular to the long axis of the plenum, whereby each fan is configured to direct air flow through a chair back when the plenum is attached to the chair back, and wherein the plenum comprises a non-porous material.
In various aspects, the porous material can be selected from the group consisting of wicker, a nylon mesh, a polyester mesh, a vinyl-coated polyester mesh (PVC mesh), a metal mesh, and a combination thereof. In some aspects, the porous material can be a PVC mesh. In various aspects, the non-porous material can be selected from the group consisting of canvas, woven cotton, metal, plastic, and a combination thereof. In some aspects, the non-porous material can be canvas. In various aspects, an elongated fan plenum can have a cross-sectional area of no more than 0.08 ft2. In various aspects, the electric power source can be a direct current source, such as, for example, at least one battery or at least one solar cell. In some aspects, the at least one battery can be a rechargeable battery. In some aspects, the at least one battery can be a 12 VDC battery. In some aspects, the at least one battery can be a lithium ion battery. In some aspects, the at least one battery can be a NiCd battery. In some aspects, the at least one battery can be an alkaline battery. In some aspects, the electric power source can be an alternating current source. In various aspects, each fan can have a volumetric flow rate of from 30 to 200 cubic feet per minute. In some aspects, each fan can have a volumetric flow rate of from 50 to 150 cubic feet per minute. In some aspects, each fan can have a volumetric flow rate of from 70 to 120 cubic feet per minute. In some aspects, each fan can have a volumetric flow rate of 75 to 100 cubic feet per minute. In some aspects, each fan can have a volumetric flow rate of 75 cubic feet per minute. In various aspects, each fan assembly can further comprise a fan guard.
In various aspects, an elongated fan plenum of the present teachings can include means for reversibly attaching the plenum to a chair back, and such means can include, without limitation, one or more hook and loop fasteners, one or more snaps, one or more slide fasteners, one or more hooks, or a combination thereof. In various aspects, the means for reversibly attaching the plenum to a chair back can comprise one or more hooks.
In various aspects, the present teachings include a kits. A kit of the present teachings can include, without limitation, any or all of the following components: an elongated fan plenum, one or more fan guards, one or more fans, a battery pouch, a battery (including a battery pack).
In some embodiments, an apparatus of the present teachings comprises at least two fan assemblies mounted in an elongated fan plenum, each fan assembly comprising a fan. The fan assemblies can be configured for the fans to blow air perpendicular to the long axis of the fan plenum. An apparatus can comprise two, three or more fans. In various configurations, each fan can have, in operation, a volumetric flow rating of 30-200 cubic feet per minute. In various configurations, the fans can be wired in parallel to a power source. In some configurations, a fan assembly can comprise a fan, a fan guard, and a retainer that secures the fan guard to the fan. In some configurations, the fan guard can comprise a frame. In some configurations, the frame can comprise one or more clips that can be oriented towards the outside of the frame. In some configurations, the frame can comprise clips that can be oriented towards the inside of the frame. In some configurations, a clip oriented towards the outside of the frame can receive a retainer that secures the length and width of the fan to the frame. In some configurations, a clip oriented towards the inside of the frame can receive the fan.
System Components
Elongated Fan Plenum
In various configurations, an elongated fan plenum of the present teachings can be made of any non-porous or airtight material, such as, but without limitation, canvas, woven cotton, metal, or a plastic such as, without limitation, vinyl, rayon, or polyester. The elongated fan plenum can have openings configured for accepting the fans or fan assemblies. An opening configured for accepting a fan can have any convenient shape, such as, without limitation, a square, a rectangle, a circle, or an oval. In some configurations, an elongated fan plenum can have one or more panels that can attach the elongated fan plenum to a chair.
In various configurations, an elongated fan plenum of the present teachings can be attached to a chair by various attachments or attachment means such as, for example and without limitation, stitching, glue, one or more snaps, hook and loop fasteners (such as, for example. VELCRO® (Velcro Industries B.V., Castorweg, Hengelo, Netherlands)), adhesives, heat molding, sliding fasteners (zippers) or a combination thereof. In some configurations, an elongated fan plenum can include one or more hooks configured for suspending the apparatus from the back of a chair. In some configurations, an elongated fan plenum can include one or more clamps configured for suspending the apparatus from the back of a chair.
Fans
As used herein, a fan is a mechanical device that directs air flow. There are commercially available fans that can be used in an apparatus of the present teachings, such as, for example and without limitation, propeller fans commonly used for cooling computers or other electronics. In various configurations, a propeller fan of an apparatus of the present teachings can range in length and width, without limitation, from 20 mm×20 mm to 220 mm×220 mm. A fan of an apparatus of the present teachings can have length and width dimensions of, for example and without limitation, from 25 mm×25 mm to 220 mm×220 mm. A fan of an apparatus of the present teachings can have length and width dimensions of, for example and without limitation, 20 mm×20 mm, 21 mm×21 mm, 22 m×22 mm, 23 mm×23 mm, 24 mm×24 mm, 25 mm×25 mm, 26 mm×26 mm, 27 mm×27 mm, 28 mm×28 mm, 29 mm×29 mm, 30 mm×30 mm, 51 mm×31 mm, 32 mm×32 mm, 33 mm×33 mm, 34 mm×34 mm, 35 mm×35 mm, 36 mm×36 mm, 37 mm×37 mm, 38 mm×38 mm, 39 mm×39 mm, 40 mm×40 mm, 41 mm×41 mm, 42 mm×42 mm, 43 mm×43 mm, 44 mm×44 mm, 45 mm×45 mm, 46 mm×46 mm, 47 mm×47 mm, 48 mm×48 mm, 49 mm×49 mm, 50 mm×50 mm, 51 mm×51 mm, 52 mm×52 mm, 53 mm×53 mm, 54 mm×54 mm, 55 mm×55 mm, 56 mm×56 mm, 57 mm×57 mm, 58 mm×58 mm, 59 mm×59 mm, 60 mm×60 mm, 61 mm×61 mm, 62 mm×62 mm, 63 mm×63 mm, 64 mm×64 mm, 65 mm×65 mm, 66 mm×66 mm, 67 mm×67 mm, 68 mm×68 mm, 69 mm×69 mm, 70 mm×70 mm, 71 mm×71 mm, 72 mm×72 mm, 73 mm×73 mm, 74 mm×74 mm, 75 mm×75 mm, 76 mm×76 mm, 77 mm×77 mm, 78 mm×78 mm, 79 mm×79 mm, 80 mm×80 mm, 81 mm×81 mm, 82 mm×82 mm, 83 mm×83 mm, 84 mm×84 mm, 85 mm×85 mm, 86 mm×86 mm, 87 mm×87 mm, 88 mm×88 mm, 89 mm×89 mm, 90 mm×90 mm, 91 mm×91 mm, 92 mm×92 mm, 93 mm×93 mm, 94 mm×94 mm, 95 mm×95 mm, 96 mm×96 mm, 97 mm×97 mm, 98 mm×98 mm, 99 mm×99 mm, 100 mm×100 mm, 101 mm×101 mm, 102 mm×102 mm, 103 mm×103 mm, 104 mm×104 mm, 105 mm×105 mm, 106 mm×106 mm, 107 mm×107 mm, 108 mm×108 mm, 109 mm×109 mm, 110 mm×110 mm, 111 mm×111 mm, 112 mm×112 mm, 113 mm×113 mm, 114 mm×114 mm, 115 mm×115 mm, 116 mm×116 mm, 117 mm×117 mm, 118 mm×118 mm, 119 mm×119 mm, 120 mm×120 mm, 121 mm×121 mm, 122 mm×122 mm, 123 mm×123 mm, 124 mm×124 mm, 125 mm×125 mm, 126 mm×126 mm, 127 mm×127 mm, 128 mm×128 mm, 129 mm×129 mm, 130 mm×130 mm, 131 mm×131 mm, 132 mm×132 mm, 133 mm×133 mm, 134 mm×134 mm, 135 mm×135 mm, 136 mm×136 mm, 137 mm×137 mm, 138 mm×138 mm, 139 mm×139 mm, 140 mm×140 mm, 141 mm×141 mm, 142 mm×142 mm, 143 mm×143 mm, 144 mm×144 mm, 145 mm×145 mm, 146 mm×146 mm, 147 mm×147 mm, 148 mm×148 mm, 149 mm×149 mm, 150 mm×150 mm, 151 mm×151 mm, 152 mm×152 mm, 153 mm×153 mm, 154 mm×154 mm, 155 mm×155 mm, 156 mm×156 mm, 157 mm×157 mm, 158 mm×158 mm, 159 mm×159 mm, 160 mm×160 mm, 161 mm×161 mm, 162 mm×162 mm, 163 mm×163 mm, 164 mm×164 mm, 165 mm×165 mm, 166 mm×166 mm, 167 mm×167 mm, 168 mm×168 nm 169 mm×169 mm, 170 mm×170 mm, 171 mm×171 mm, 172 mm×172 mm, 173 mm×173 mm, 174 mm×174 mm, 175 mm×175 mm, 176 mm×176 mm, 177 mm×177 mm, 178 mm×178 mm, 179 mm×179 mm, 180 mm×180 mm, 181 mm×181 mm, 182 mm×182 mm, 183 mm×183 mm, 184 mm×184 mm, 185 mm×185 mm, 186 mm×186 mm, 187 mm×187 mm, 188 mm×188 mm, 189 mm×189 mm, 190 mm×190 mm, 191 mm×191 mm, 192 mm×192 mm, 193 mm×193 mm, 194 mm×194 mm, 195 mm×195 mm, 196 mm×196 mm, 197 mm×197 mm, 198 mm×198 mm, 199 mm×199 mm, 200 mm×200 mm, 201 mm×201 mm, 202 mm×202 mm, 203 mm×203 mm, 204 mm×204 mm, 205 mm×205 mm, 206 mm×206 mm, 207 mm×207 mm, 208 mm×208 mm, 209 mm×209 mm, 210 mm×210 mm, 211 mm×211 mm, 212 mm×212 mm, 213 mm×213 mm, 214 mm×214 mm, 215 mm×215 mm, 216 mm×216 mm, 217 mm×217 mm, 218 mm×218 mm, 219 mm×219 mm or 220 mm×220 mm. In various embodiments, a fan comprising an apparatus of the present teachings can have a thickness (depth) of from 10 mm up to 32 mm. In various configurations, a fan can have a depth of 10 mm, 11 mm, 12 mm, 13 mm, 14 mm, 15 mm, 16 mm, 17 mm, 18 mm, 19 mm, 20 mm, 21 mm, 22 mm, 23 mm, 24 mm, 25 mm, 26 mm, 27 mm, 28 mm, 29 mm, 30 mm, 31 mm, or 32 mm.
In various configurations, a propeller fan comprising an apparatus of the present teachings can, in operation, have a capacity (volumetric flow rate) of displacing 30 to 200 cubic feet per minute (cfm). In some configurations, a fan of the present teachings can displace 30 cfm, 31 cfm, 32 cfm, 33 cfm, 34 cfm, 35 cfm, 36 cfm, 37 cfm, 38 cfm, 39 cfm, 40 cfm, 41 cfm, 42 cfm, 43 cfm, 44 cfm, 45 cfm, 46 cfm, 47 cfm, 48 cfm, 49 cfm, 50 cfm, 51 cfm, 52 cfm, 53 cfm, 54 cfm, 55 cfm, 56 cfm, 57 cfm, 58 cfm, 59 cfm, 60 cfm, 61 cfm, 62 cfm, 63 cfm, 64 cfm, 65 cfm, 66 cfm, 67 cfm, 68 cfm, 69 cfm, 70 cfm, 71 cfm, 72 cfm, 73 cfm, 74 cfm, 75 cfm, 76 cfm, 77 cfm, 78 cfm, 79 cfm, 80 cfm, 81 cfm, 82 cfm, 83 cfm, 84 cfm, 85 cfm, 86 cfm, 87 cfm, 88 cfm, 89 cfm, 90 cfm, 91 cfm, 92 cfm, 93 cfm, 94 cfm, 95 cfm, 96 cfm, 97 cfm, 98 cfm, 99 cfm, 100 cfm, 101 cfm, 102 cfm, 103 cfm, 104 cfm, 105 cfm, 106 cfm, 107 cfm, 108 cfm, 109 cfm, 110 cfm, 111 cfm, 112 cfm, 113 cfm, 114 cfm, 115 cfm, 116 cfm, 117 cfm, 118 cfm, 119 cfm, 120 cfm, 121 cfm, 122 cfm, 123 cfm, 124 cfm, 125 cfm, 126 cfm, 127 cfm, 128 cfm, 129 cfm, 130 cfm, 131 cfm, 132 cfm, 133 cfm, 134 cfm, 135 cfm, 136 cfm, 137 cfm, 138 cfm, 139 cfm, 140 cfm, 141 cfm, 142 elm, 143 cfm, 144 cfm, 145 cfm, 146 cfm, 147 cfm, 148 cfm, 149 cfm, 150 cfm, 160 cfm, 161 cfm, 162 cfm, 163 cfm, 164 cfm, 165 elm, 166 cfm, 167 cfm, 168 cfm, 169 cfm, 170 cfm, 171 cfm, 172 cfm, 173 cfm, 174 cfm, 175 cfm, 176cfm, 177 cfm, 178 cfm, 179 cfm, 180 cfm, 181 cfm, 182 cfm, 183 cfm, 184 cfm, 185 cfm, 186 cfm, 187 cfm, 188 cfm, 189 cfm, 190 cfm, 191 cfm, 192 cfm, 193 cfm, 194 cfm, 195 cfm, 196 cfm, 197 cfm, 198 cfm, 199 cfm, or 200 cfm.
Fan Assembly
In some embodiments, a fan assembly 30 (
Skilled artisans will recognize there are many other ways to configure a fan with like results.
Power Source
A fan that can be used in an apparatus of the present teachings can be powered by a wide variety of power sources, such as, without limitation, a standard AC power outlet (120V or 220V), a solar panel, or a battery. In various configurations a battery can be a rechargeable battery or a single use (disposable) battery. A battery can have an EXT voltage output of 1 V, 1.5V, 2 V, 3 V, 4 V, 5 V, 6 V, 7 V, 8 V, 9 V, 10 V, 11 V, 12 V, 13 V, 14 V, 15 V, 16 V, 17 V, 18 V, 19 V, or 20 V. A battery can be a 1,000-10,000 milliamp hour battery. In some configurations a battery can have a capacity of 3000 milliamp hours (i.e., can provide power for 3 hours to a device drawing 1 ampere) or 6000 milliamp hours. A battery that can be used in a device of the present teachings can have a capacity of, for example, 1,000 milliamp hour, 1,250 milliamp hour, 1,500 milliamp hour, 1,750 milliamp hour, 2,000 milliamp hour, 2,250 milliamp hour, 2,500 milliamp hour, 2,750 milliamp hour, 3,000 milliamp hour, 3,250 milliamp hour, 3.500 milliamp hour, 3,750 milliamp hour, 4,000 milliamp hour, 4,250 milliamp hour, 4.500 milliamp hour, 4,750 milliamp hour, 5.000 milliamp hour, 5.250 milliamp hour, 5,500 milliamp hour, 5,750 milliamp hour, 6,000 milliamp hour, 6,250 milliamp hour, 6,500 milliamp hour, 6,750 milliamp hour, 7,000 milliamp hour, 7,250 milliamp hour, 7,500 milliamp hour, 7,750 milliamp hour, 8.000 milliamp hour, 8.250 milliamp hour, 8,500 milliamp hour, 8,750 milliamp hour, 9,000 milliamp hour, 9,250 milliamp hour, 9,500 milliamp hour, 9.750 milliamp hour, or 10,000 milliamp hour batteries. A “battery,” as used herein, can include multiple batteries connected in series to achieve a desired voltage output.
Chair
In some embodiments, an apparatus of the present teachings can include a chair having a porous back rest. A porous back rest, as used herein, includes a back rest that admits air flow. A porous back rest can comprise any material that provides channels for air flow. Non-limiting examples of materials comprising a back rest of a chair of the present teachings can include a porous material or mesh, such as, for example, wicker; a plastic mesh such as nylon mesh, polyester mesh, vinyl-coated polyester mesh (PVC mesh), a metal mesh, or any combination thereof. In some configurations, a back rest of a chair of the present teachings can comprise a porous fabric such as, for example, TEXTILINE® Wicker Weave fabric (manufactured by Twitchell Holding Company (Dothan, Ala.) and supplied by Patio Products, Inc. (Boca Raton, Fla.)). In various configurations a porous back test can be secured on a chair frame by a securing means, such as, without limitation, sewing, hook-and-loop fasteners (VELCRO®), one or more snaps, one or more zippers, or a combination thereof. In some configurations, the securing means can include VELCRO® strips such as 1-inch wide or 2-inch wide VELCRO® strips. In some configurations, a chair of the present teachings can further include a headrest, such as, for example, a rolled foam headrest.
Some non-limiting examples of a chair to which an elongated fan plenum of the present teachings can be attached include: a lawn chair, a camp chair, a folding chair, a wicker chair, a patio chair, a porch chair, a deck chair, a beach chair, an acapulco chair, an adirondack chair, a butterfly chair, a director's chair, a glider, a lifeguard chair, a sedan chair, a stroller, a power chair, a rocking chair, a stacking chair, a sweetheart chair, a wheelchair, a lounge chair, a reclining chair, and a quad-chair.
There are several differences between a chair of the present teachings and the chair described in Walmart catalog#564462126.
1) Because the Walmart chair has a larger cross-sectional area of the “Support” than a chair of the present teachings, airflow velocity is expected to be less for a given fan speed, resulting in less evaporative cooling.
The Fan Cooled Chair provides cooling to the occupant by primarily two principles, convective heal transfer and evaporative cooling.
Evaporative cooling is due to the phase change of liquid water (occupant's sweat) to water vapor. The latent heat of vaporization of water (he) is 2256 kJ/kg water which means that for every gram of sweat evaporated from the occupant, 2256 joules of heal arc removed from the occupant, thus providing cooling to the occupant. The rate of evaporative cooling is governed by several factors, one of which is the airflow velocity. The rate of evaporation slows if stagnate air becomes saturated at the occupant's back.
To maintain an increased rate of evaporation and thus effective cooling, air with a higher water content must be removed quickly and replaced by dryer air. The quick exchange of air can be facilitated by high airflow velocities in the elongated fan plenum. The high airflow con be achieved in a chair of the present teachings by reducing the cross-sectional area of the elongated fan plenum in comparison to a fan support in the Walmart chair. In various configurations, the cross-sectional area of an elongated fan plenum of the present teachings can be 0.08 ft2 while that of the fan support of the Walmart chair (
2) Airflow Velocity of a chair of the present teachings (3 fans): (75 ft3/min fan) (0.08 ft2)=2813 ft/s=14.3 m/s. Because the Walmart chair has a larger cross-sectional area of a fan support compared to an elongated fan plenum, airflow velocity is expected to be less, resulting in less convective cooling.
As previously stated, the Fan Cooled Chair provides cooling to the occupant by primarily two methods, convective heat transfer and evaporative cooling. Convective cooling, otherwise known as Newton's Law of Cooling is given by:
q=hΔT
with regard to a chair of the present teachings:
q=is the heat flux removed from the occupants back (W.m−2)
h=is the convective heat transfer coefficient (W.m−2.K−1)
ΔT=is the temperature difference between the occupants back and free stream air temperature (K).
In this application, with regard to a chair of the present teachings, the value of h is driven by airflow velocity and can be approximated by:
he=10.45−v+10v1/2*
where v=the airflow velocity. This empirical equation can be used for velocities 2 to 20 m/s, and can be graphed as shown in
Lower airflow velocities result in much lower values of h:
with v=2 m/s then h=23 W.m−2.K−1. Again. Newton's Law of Cooling: q/hΔT. One can see for a given ΔT more conductive cooling can be achieved by increasing h. An increase of 48% in convective cooling can be achieved by increasing the airflow velocity from 2 to 14.3 m/s. This increase in airflow velocity and thus more convective cooling can be made possible by reducing the elongated fan support cross-sectional area. The larger cross-sectional area of the Walmart chair fan support reduces convective cooling, making the Walmart chair less effective in cooling.
3) Because the Walmart chair has a shorter “Support” compared to an elongated fan plenum of the present teachings, airflow will be mostly or completely blocked by the occupant, resulting in less no airflow velocity thus less no convective or evaporative cooling. As compared to the Walmart chair, a chair of the present teachings has a taller elongated fan plenum that is not blocked by the occupant.
From the photos (
Conductive heat transfer can be expressed by Fourier's Law:
q=(k/s)ΔT
Where, in this instance:
q=is the heat flux removed from the occupants back (W.m−2)
k=is the conductive heat transfer coefficient of air, 0.0262 W.m−1.K−1
s=the thickness of the air in the Support, approximately 0.13 m for the Walmart chair
ΔT=is the temperature difference between the occupant's back and air temperature (K)
Therefore: k/s=0.0262/0.13=0.20 W.m−2.K−1
Now one can see that a chair of the present teachings can be much more effective than the Walmart chair since:
A chair of the present teachings: h=34 W.m−2.K−1
A Walmart chair (with blocked airflow) h=0.20 W.m−2.K−1
If the Walmart chair Support becomes blocked by the occupant, the cooling rate would be 0.6% of the cooling rate of a chair of the present teachings, further reducing the cooling effectiveness of the Walmart chair.
4) Because the Walmart chair has a short Support, airflow is not directed onto the occupant's shoulders, neck and head. A chair of the present teachings can have a tall Support extending to the headrest. This can allow airflow to be directed to the occupant's shoulders, neck and head, and thus can provide an added cooling feature.
5) The clips on the Fan Guard in some embodiments allows one to attach a Fan to the Fan Guard and also attach the Fan Guard to the Support, without sewing or additional attachment hardware.
6) The Walmart chair is a quad chair which has a steel chair frame and thus would be 2-3 times heavier than an aluminum chair frame of the present teachings.
7) A chair of the present teachings can include a headrest such as a rolled foam headrest. The Walmart chair has no headrest.
The present teachings including descriptions provided in the Examples that are not intended to limit the scope of any claim or aspect. Unless specifically presented in the past tense, an example can be a prophetic or an actual example. The following non-limiting examples are provided to further illustrate the present teachings. Those of skill in the art, in light of the present disclosure, will appreciate that many changes can be made in the specific embodiments that are disclosed and still obtain a like or similar result without departing from the spirit and scope of the present teachings.
In investigations of cooling capabilities of chairs (Examples 12-18), all testing was conducted with the same fully charged battery, on the same day, at the same ambient air temperature.
This example illustrates a fan assembly 30 (
A fan assembly 30 (
This example illustrates a three-fan chair 11 (
A rectangular elongated fan plenum 10 (
This example illustrates a two-fan chair 111 (
A rectangular elongated fan plenum 101 (
This example illustrates a three-fan chair 112 (
A rectangular elongated fan plenum 10 (
This example illustrates a two-fan chair 113 (
A rectangular elongated fan plenum 101 (
This example illustrates a two-fan wo ling apparatus 114 (
An oval elongated elongated fan plenum 102 (
This example illustrates a three-fan cooling apparatus 115 (
An oval elongated fan plenum 103 (
This example illustrates a two-fan cooling apparatus 116 (
An oval elongated fan plenum 102 (
The example illustrates a kit 117 (
A rectangular elongated fan plenum 101 (
This example illustrates a three-fan kit 118 (
A rectangular elongated fan plenum 10 (
This example illustrates a three-fan kit 119 (
A rectangular elongated fan plenum 10 (
This example illustrates cooling capability of a three-fan chair of the present teachings.
In this investigation, thermal images were recorded of the back of a clothed adult female weighing approximately 160 pounds (Subject A) sitting in a chair described in Example 2 using a Fluke Ti400 PRO Thermal Imaging Infrared Camera in accordance with the manufacturer's instructions (
This example illustrates cooling capability of a three-fan chair of the present teachings.
In this lest, thermal images were obtained of subject A's back using the thermal imaging camera as described in Example 12 (
This example illustrates cooling capability of a three-fan chair of the present teachings.
In this test, thermal images were recorded using a thermal imaging camera of subject A's back (
This example illustrates cooling capability of a three-fan chair of the present teachings.
In this investigation, thermal images were taken of the back of an adult male weighing approximately 240 pounds (Subject S) using the Fluke Ti400 PRO Thermal Imaging Infrared Camera of Example 12. The camera recorded a temperature near the center of the subject's back (indicated by square) of 91.1° F.. Subject S sat in the chair of Example 2 for 2 minutes with the fans running, and new thermal images were obtained (
This example illustrates cooling capability of a three-fan chair of the present teachings.
In this test, thermal images were obtained of Subject S's back (
This example illustrates a comparative test of a chair in accordance with the teachings of U.S. Pat. No. 8,801,091.
In these investigations, thermal images were recorded of the back of a clothed adult female (Subject A from Example 12) sitting in a chair described in U.S. Pat. No. 8,801,091 (commercially available as Traveling Breeze Leisure Products. LLC model AIR-C18) using a Fluke Ti400 PRO Thermal Imaging Infrared Camera. Prior to sitting in the chair (
This example illustrates a comparative test of a chair in accordance with the teachings of U.S. Pat. No. 8,801,091.
In these investigations, thermal images were obtained of the back of an adult male (Subject S of Example 15) using the Fluke Ti400 PRO Thermal Imaging Infrared Camera of Example 12.) Prior to sitting in the chair (
All cited references are incorporated by reference, each in its entirety. Applicant reserves the right to challenge any conclusions presented by the authors of any reference.
This application claims priority to U.S. Provisional patent application 62/873,810 filed Jul. 12, 2019, and U.S. Provisional patent application 62/892,216 filed Aug. 27, 2019. Each of these applications is incorporated by reference, each in its entirety.
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Entry |
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https://geardiary.com/2015/07/18/traveling-breeze-fan-cooled-camping-chair-is-the-future-in-outdoor-relaxation/, Perry Brauner, Jul. 18, 2015. |
https://www.walmart.com/ip/Air-Fan-Cooling-Mesh-Camp-Chair-Blue/55846119 Walmart Catalog # 564462126. |
https://www.engineeringtoolbox.com/convective-heat-transfer-d_430.html The Engineering ToolBox Convective Heat Transfer. |
Number | Date | Country | |
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20210007499 A1 | Jan 2021 | US |
Number | Date | Country | |
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62892216 | Aug 2019 | US | |
62873810 | Jul 2019 | US |