IP Library › Granted Patent US 11,473,274
Granted Patent B2
US 11,473,274 · App. 16/497,069 · Granted Oct 18, 2022

Apparatus for producing water

Inventor: Massimo Vicentini (Camisano Vicentino, IT)
Assignee: RONDA HIGH TECH S.R.L.
E03B3/28B01D5/0003B01D5/0075B01D53/0438B01D53/0462B01D53/261B01D53/28F24S10/70B01D2253/106B01D2257/80B01D2259/4009
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Quick Facts
Patent No.
US 11,473,274
App. No.
16/497,069
Granted
Oct 18, 2022
Kind
B2
Abstract

Apparatus for producing water ( 1 ) from ambient humidity comprising a heat exchanger ( 10 ), comprising a desiccant ( 11 a ′) of ambient humidity, a solar thermal panel ( 30 ) for giving up heat to the heat exchanger ( 10 ) and the solar thermal panel ( 30 ) being a concentrated one.

Claims (24)

1. An apparatus for producing water ( 1 ) from ambient humidity, comprising:

a heat exchanger ( 10 ) comprising an inlet opening ( 14 ), an outlet opening ( 15 ), a forward direction of an airflow comprising ambient humidity being defined between said inlet opening ( 14 ) and said outlet opening ( 15 ), a plurality of desiccating zones ( 10 a, 10 b, 10 c, 10 d ) arranged in succession in said forward direction of said airflow and comprising respective desiccating elements ( 11 ), each comprising a respective desiccant ( 11 a′ ) for extracting water from ambient air, the desiccating elements of each desiccating zone being arranged staggered with respect to the desiccating elements of the desiccating zones adjacent thereto, to divert the airflow comprising ambient humidity with respect to said forward direction; and

a solar thermal panel ( 30 ) for giving up heat to said heat exchanger ( 10 ), wherein said solar thermal panel ( 30 ) is a concentrated solar thermal panel.

2. The apparatus for producing water ( 1 ) according to claim 1 , wherein said heat exchanger ( 10 ) further comprises

at least one coil ( 12 ) that circulates a heat-transfer fluid in order to heat a desiccant of said respective desiccants ( 11 a′ ).

3. The apparatus for producing water ( 1 ) according to claim 1 , wherein each desiccating zone of said plurality of desiccating zones has a number of desiccating elements ( 11 ) such that the number of desiccating elements increases in the direction of said airflow.

4. A heat exchanger ( 10 ) for use in an apparatus for producing water ( 1 ) according to claim 1 , the heat exchanger comprising at least one coil ( 12 ) adapted to allow circulation of a heat-transfer fluid, and at least one desiccating element ( 11 ) comprising a desiccant ( 11 a′ ) of said respective desiccants associated with said at least one coil ( 12 ), said at least one coil ( 12 ) being designed to heat said desiccant ( 11 a′ ) through the circulation of the heat-transfer fluid.

5. The heat exchanger ( 10 ) according to claim 4 , wherein at least one desiccant ( 11 a′ ) comprises silica gel.

6. The heat exchanger ( 10 ) according to claim 4 wherein said at least one coil ( 12 ) defines an element for supporting said at least one desiccating element ( 11 ).

7. The heat exchanger ( 10 ) according to claim 4 , wherein said at least one desiccating element ( 11 ) comprises a non-woven fabric container that is provided to contain an associated desiccant ( 11 a′ ) of said respective desiccants.

8. An apparatus for producing water ( 1 ) from ambient humidity comprising:

a first heat exchanger ( 10 ) and a second heat exchanger ( 110 ), the first heat exchanger ( 10 ) and the second heat exchanger ( 110 ) each comprising a desiccant ( 11 a′ ) for extracting water from ambient air,

a concentrated solar thermal panel ( 30 ) for giving up heat to said first heat exchanger or said second heat exchanger; and

an ejector ( 170 ) that is fluid-dynamically connected between and to said first heat exchanger and said second heat exchanger ( 10 , 110 ) such that, whilst the first heat exchanger ( 10 ) or the second heat exchanger ( 110 ) produces aqueous vapor, said aqueous vapor passes inside a main duct of said ejector ( 170 ) in the form of a motor flow, thereby producing a depression in said second heat exchanger or said first heat exchanger ( 110 , 10 ), respectively.

9. An apparatus for producing water ( 1 ) from ambient humidity, comprising:

a heat exchanger ( 10 ) comprising at least one coil ( 12 ) adapted to allow circulation of a heat-transfer fluid, and a plurality of desiccating elements ( 11 ), each comprising a respective desiccant ( 11 a′ ), for extracting water from ambient air, each desiccating element being associated with a coil of the at least one coil ( 12 ), said at least one coil ( 12 ) being configured to heat said desiccant ( 11 a′ ) through the circulation of the heat-transfer fluid,

a concentrated solar thermal panel ( 30 ) for giving up heat to said heat exchanger ( 10 ),

an inlet opening ( 14 ),

an outlet opening ( 15 ),

a forward direction of an airflow comprising ambient humidity being defined between said inlet opening ( 14 ) and said outlet opening ( 15 ), and

a plurality of desiccating zones ( 10 a, 10 b, 10 c, 10 d ) that are arranged in succession in said forward direction of said airflow and comprise respective desiccating elements ( 11 ), of said plurality of said desiccating elements,

the desiccating elements of a respective desiccating zone being arranged staggered with respect to the desiccating elements of desiccating zones adjacent thereto, to divert the airflow comprising ambient humidity with respect to said forward direction.

10. The heat exchanger according to claim 9 , wherein each desiccating zone of said plurality of desiccating zones has a number of desiccating elements ( 11 ) such that the number of desiccating elements increases in the direction of said airflow.

11. The heat exchanger ( 10 ) according to claim 9 , wherein the plurality of desiccating elements includes first desiccating elements ( 11 a′ ) and second desiccating elements ( 11 b′ ), said second desiccating elements ( 11 b′ ) being arranged in a second desiccating zone ( 10 b ) of said plurality of desiccating zones ( 10 a, 10 b, 10 c, 10 d ) 10 d ) and housed in cascade with said first desiccating elements ( 11 a′ ) arranged in a first desiccating zone ( 10 a ) of said plurality of desiccating zones ( 10 a, 10 b, 10 c, 10 d ) with respect to said airflow.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 26, 2022
From: RONDA HIGH TECH S.R.L.
To: AKUA S.R.L.
Reel/Frame 061550/0862 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 15, 2021
From: VICENTINI, MASSIMO
To: RONDA HIGH TECH S.R.L.
Reel/Frame 056539/0496 →
Priority Claims (1)
IT 102017000032936 · Mar 24, 2017 · national
Continuity (1)
Related Publication 20210113957A1 · Apr 22, 2021