Coaxial Ventilator
Abstract
A coaxial ventilator exchanges atmosphere between parts of a building that are at differing heights. The coaxial ventilator includes an outer conduit that extends from an upper end thereof downward to a lower end thereof. The outer conduit surrounds an inner conduit that extends substantially the entire length of the outer conduit. Both the outer and inner conduits are open at their respective upper ends and lower ends. Temperatures of atmosphere both surrounding and within the outer conduit and the inner conduit induce an exchange of atmosphere between the coaxial ventilator and surrounding atmosphere.
Claims
exact text as granted — not AI-modified1 . A coaxial ventilator ( 20 ) adapted for inclusion in a building ( 22 ) for exchanging atmosphere between parts of the building ( 22 ) at differing heights thereof, the coaxial ventilator ( 20 ), comprising:
a. an outer conduit ( 24 ) adapted for being juxtaposed with at least a portion of the building ( 22 ), the portion being selected from a group consisting of:
i. a roof ( 32 );
ii. a floor ( 38 ); and
iii. a wall ( 52 a, 52 b ), and
the outer conduit ( 24 ) having a length that extends from an upper end ( 42 ) thereof downward to a lower end ( 44 ) thereof; and
b. an inner conduit ( 62 ) surrounded by the outer conduit ( 24 ) and extending substantially along the entire length of the outer conduit ( 24 ) with an upper end ( 66 ) and a lower end ( 68 ) of the inner conduit ( 62 ) being located near the upper end ( 42 ) and lower end ( 44 ) of the outer conduit ( 24 ), both the outer conduit ( 24 ) and the inner conduit ( 62 ) being directly open to atmosphere surrounding the coaxial ventilator ( 20 ) only at the respective upper ends ( 42 , 66 ) and lower ends ( 44 , 68 ) thereof, c. a cooling tube ( 124 ) positioned within the inner conduit ( 62 ), and d. a rotatable water pan ( 84 ) in fluid communication with the cooling tube ( 124 ); whereby, automatically without physical relocation of ducting, and responsive to temperatures of atmosphere both surrounding and within the outer conduit ( 24 ) and the inner conduit ( 62 ) simultaneously:
i. atmosphere about the upper end ( 42 and 42 ″) of the outer conduit ( 24 and 24 ″) enters into one (1) of two (2) conduits ( 24 , 62 ) selected from a group consisting of:
A. the outer conduit ( 24 ); and
B. the inner conduit ( 62 ); and
ii. atmosphere within the coaxial ventilator ( 20 ) exits into atmosphere about the upper end ( 42 ) of the outer conduit ( 24 ) from one (1) of two (2) conduits ( 24 , 62 ) selected from a group consisting of:
A. the inner conduit ( 62 ); and
B. the outer conduit ( 24 ); and
wherein the coaxial ventilator is adapted for use in a multi-stage implementation.
2 . The coaxial ventilator ( 20 ) of claim 1 , wherein the upper end ( 42 and 42 ″) of the outer conduit ( 24 and 24 ″) is locatable above the roof ( 32 ) of the building ( 22 ), or within the building itself, and wherein the coaxial ventilator ( 20 and 20 ″) further comprises a cover ( 82 and 82 ″) disposed above the upper end ( 42 and 42 ″) of the outer conduit ( 24 and 24 ″) that occludes while simultaneously permitting atmosphere to enter thereinto, and wherein the coaxial ventilator is adapted for installation in a stacked configuration in series at different levels for enhanced cooling effect, with the upper end of the topmost coaxial ventilator ( 20 ) locatable above the roof, and where the lower level coaxial ventilator ( 20 ″) is installed in a room or cavity below the upper most coaxial ventilator ( 20 ) so that the upper end of the lower coaxial ventilator ( 20 ″) is surrounded by the cool air descending from the lower end of the upper coaxial ventilator ( 20 ), and where the warm air rising from the upper end of the lower coaxial ventilator ( 20 ″) would be sucked into the lower end of the upper coaxial ventilator ( 20 ) and may be exhausted at roof level, and where the uppermost coaxial ventilator ( 20 ) has its upper end open to the atmosphere above the roof level.
3 . The coaxial ventilator ( 20 ) of claim 2 , wherein one or more of the coaxial ventilators is adapted for installation in the stacked configuration with or without water pan ( 84 ).
4 . The coaxial ventilator ( 20 ) of claim 1 , wherein the inner conduit ( 62 ) has at least one (1) hole ( 63 ) formed therethrough for allowing passage of air from the inner conduit ( 62 ) into the outer conduit ( 24 ) or from the outer conduit ( 24 ) into the inner conduit ( 62 ).
5 . The coaxial ventilator ( 20 ) of claim 4 , wherein the upper end ( 42 ) of the outer conduit ( 24 ) is locatable above the roof ( 32 ) of the building ( 22 ), and the coaxial ventilator ( 20 ) further comprises a cover ( 82 ) disposed above the upper end ( 42 ) of the outer conduit ( 24 ) that occludes upper ends ( 42 , 66 ) both of the outer conduit ( 24 ) and of the inner conduit ( 62 ) thereby preventing precipitation from entering thereinto while simultaneously permitting atmosphere to enter thereinto.
6 . The coaxial ventilator ( 20 ) of claim 4 , wherein the cover ( 82 ) includes:
a. a pan ( 84 ) spaced a distance above the upper end ( 42 ) of the outer conduit ( 24 ) so atmosphere about the upper end of the coaxial ventilator ( 20 ) may enter thereinto, the pan ( 84 ) being adapted for holding liquid ( 126 , 138 ); b. a lid ( 88 ) spaced a distance above the pan ( 84 ); and c. mesh ( 86 ) that spans between peripheries of the pan ( 84 ) and the lid ( 88 ) for:
i. barring entry of insects into the cover ( 82 ), while
ii. permitting atmosphere to circulate therethrough, whereby volatile liquid ( 126 , 128 ) in the pan ( 84 ) evaporatively cools atmosphere entering the coaxial ventilator ( 20 ); and
d. a fan ( 402 ) positioned above the water pan ( 84 ) for increasing the evaporative heat loss rate from the water pan ( 84 ).
7 . The coaxial ventilator of claim 6 , further comprising an evaporative cooling mat ( 404 ) suspended above and partially submerged in the water pan ( 84 ).
8 . The coaxial ventilator of claim 7 , wherein the evaporative cooling mat ( 404 ) is wetted by way of spraying by pumps.
9 . The coaxial ventilator of claim 8 , further comprising photovoltaic cells for providing power to one or more of the vertical axis exhaust wind turbine ( 400 ), exhaust fan ( 402 ), and pumps.
10 . The coaxial ventilator ( 20 ) of claim 6 , further comprising:
a. at least one (1) cooling tube ( 124 ) adapted for filling with liquid ( 126 , 138 ), the cooling tube ( 124 ) depending beneath the pan ( 84 ) into at least one (1) of the conduits ( 24 , 62 ) for advantageously increasing thermal conductivity between:
i. the pan ( 84 ) and contents therein; and
ii. the conduits ( 24 , 62 ); and
b. a bulb tank ( 182 ) in communication with the cooling tube ( 124 ) at an end opposite the pan ( 84 ).
11 . The coaxial ventilator of claim 10 , further comprising at least one of a vertical axis wind turbine ( 400 ) and an exhaust fan ( 402 ).
12 . The coaxial ventilator of claim 11 , further comprising photovoltaic cells for providing power to one or more of the vertical axis exhaust wind turbine ( 400 ), exhaust fan ( 402 ), and pumps.
13 . The coaxial ventilator ( 20 ) of claim 10 , wherein the at least one (1) cooling tube ( 124 ) is a thermosyphon tube.
14 . The coaxial ventilator ( 20 ) of claim 10 , wherein the at least one (1) cooling tube ( 124 ) is semi-permeable for providing a surface area thereon for evaporation cooling.
15 . The coaxial ventilator ( 20 ) of claim 10 , wherein:
a. the at least one (1) cooling tube ( 124 ) is coupled to the pan ( 84 ); b. the at least one (1) cooling tube ( 124 ) and a lower portion of the pan ( 84 ) is filled with a liquid ( 138 ) that is:
i. immiscible in water 126 ; and
ii. heavier than water 126 ; and
c. water 126 fills a portion of the pan ( 84 ) above the liquid ( 138 ).
16 . The coaxial ventilator ( 20 ) of claim 10 , wherein a tube ( 132 ) encircles the at least one (1) cooling tube ( 124 ) thereby establishing an annularly-shaped space ( 134 ) between the cooling tube ( 124 ) and the tube ( 132 ), the annularly-shaped space ( 134 ) being adapted for filling with liquid ( 126 , 138 ) for bettering cooling by the coaxial ventilator ( 20 ).
17 . The coaxial ventilator of claim 6 , further comprising a cooling module ( 500 ) positioned at the bottom of the lid ( 88 ) and partially submergible in water held by the pan ( 84 ) when the pan ( 84 ) is full, the cooling module ( 500 ) condensing atmospheric water vapor into water droplets, thereby filling the water pan ( 84 ), and directly cooling the water in the pan ( 84 ) when the pan ( 84 ) is full.
18 . The coaxial ventilator of claim 17 , wherein the cooling module ( 500 ) is a thermoelectric cooling module.
19 . The coaxial ventilator ( 20 ) of claim 1 , further comprising at least one (1) turbine ( 102 ) located in a section thereof in which the inner conduit ( 62 ) lacks a hole ( 63 ), the turbine ( 102 ) being adapted for:
a. in a first configuration extracting power from air flowing through the coaxial ventilator ( 20 ); and b. in a second configuration being energized for boosting air flow through the coaxial ventilator ( 20 ).
20 . The coaxial ventilator of claim 1 , wherein the rotatable water pan defines a half round trough shape.
21 . The coaxial ventilator of claim 1 , wherein the cooling tube ( 124 ) is in fluid communication with a plurality of sprinklers ( 405 ) that are adapted to deliver fluid for fire suppression, heat reduction, or a combination thereof.Join the waitlist — get patent alerts
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