Systems and methods for generating liquid water from air

US2021106946A1 · US · A1

Patent metadata
FieldValue
Publication numberUS-2021106946-A1
Application numberUS-202017081898-A
CountryUS
Kind codeA1
Filing dateOct 27, 2020
Priority dateNov 20, 2014
Publication dateApr 15, 2021
Grant date

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

This disclosure includes systems and methods for extracting water vapor from atmospheric air and, more particularly, but not by way of limitation, systems and methods for optimizing liquid water production from air, in some instances, taking into account diurnal variations. The systems comprise an adsorption zone an a desorption zone, an actuator to move a desiccant between the adsorption zone and the desorption zone. The liquid water production is optimized based, at least in part, on measurements of one or more of: an ambient air temperature, ambient air relative humidity, and a level of solar insolation.

First claim

Opening claim text (preview).

1 . A system for generating liquid water from air, the system comprising: a desiccant configured to be in fluid communication with a process airflow path and a regeneration fluid path, wherein: water is captured from air in the process airflow path; and water is released to regeneration fluid in the regeneration fluid path; a condenser configured to receive regeneration fluid from the desiccant via the regeneration fluid path and to produce the liquid water from the regeneration fluid received from the desiccant; a sensor configured to capture data indicative of a level of solar insolation; and a controller configured to control a production rate of the liquid water by controlling at least one of: a flow rate of air through the process airflow path; or a flow rate of regeneration fluid through the regeneration fluid path, based, at least in part, on a signal received from the sensor. 2 . The system of claim 1 , further comprising one or more of: a housing defining an adsorption zone and a desorption zone, wherein: the desiccant is selectively movable between: the adsorption zone in which the desiccant is in fluid communication with the process airflow path such that the desiccant can capture water from air in the process airflow path; and the desorption zone in which the desiccant is in fluid communication with the regeneration fluid path such that the desiccant can release water to regeneration fluid in the regeneration fluid path; a blower configured to adjust the flow rate of air through the process airflow path; a circulator configured to adjust the flow rate of regeneration fluid through the regeneration fluid path; or a thermal unit comprising a casing in fluid communication with the regeneration fluid path and configured to provide thermal energy to regeneration fluid in the regeneration fluid path. 3 - 7 . (canceled) 8 . The system of claim 1 , wherein the controller is configured to control the production rate of the liquid water over a diurnal cycle based, at least in part, on diurnal variations in the level of solar insolation, as captured by the data from the sensor. 9 . The system of claim 2 , wherein the housing is configured such that dimensions of the adsorption zone and the desorption zone are adjustable. 10 . The system of claim 1 , further comprising a temperature sensor configured to capture data indicative of an ambient air temperature. 11 . The system of claim 1 , further comprising a humidity sensor configured to capture data indicative of an ambient air relative humidity. 12 . (canceled) 13 . The system of claim 2 , wherein the sensor comprises a temperature sensor configured to capture data indicative of a temperature of regeneration fluid in the regeneration fluid path downstream of the thermal unit. 14 . The system of claim 1 , further comprising: a temperature sensor configured to capture data indicative of a temperature of air in the process airflow path, wherein the controller is configured to control the production rate of the liquid water based, at least in part, on the data captured by the temperature sensor. 15 . The system of claim 1 , further comprising: a humidity sensor configured to capture data indicative of a relative humidity of air in the process airflow path, wherein the controller is configured to control the production rate of the liquid water based, at least in part, on the data captured by the humidity sensor. 16 . The system of claim 1 , further comprising: a humidity sensor configured to capture data indicative of a relative humidity of regeneration fluid in the regeneration fluid path, wherein the controller is configured to control the production rate of the liquid water based, at least in part, on the data captured by the humidity sensor. 17 . The system of claim 1 , further comprising: a flow sensor configured to capture data indicative of the flow rate of air through the process airflow path, wherein the controller is configured to control the production rate of the liquid water based, at least in part, on the data captured by the flow sensor. 18 . The system of claim 1 , further comprising: a flow sensor configured to capture data indicative of the flow rate of regeneration fluid through the regeneration fluid path, wherein the controller is configured to control the production rate of the liquid water based, at least in part, on the data captured by the flow sensor. 19 . The system of claim 2 , wherein the thermal unit is configured to absorb sunlight to provide at least a portion of the thermal energy to regeneration fluid in the regeneration fluid path. 20 . The system of claim 19 , wherein the thermal unit comprises: a transparent layer configured to allow sunlight to enter the casing of the thermal unit; an absorber configured to absorb thermal energy from the sunlight and provide at least a portion of the thermal energy absorbed from the sunlight to regeneration fluid in the regeneration fluid path; and an insulator configured to insulate at least a portion of the casing. 21 . The system of claim 2 , wherein the condenser is configured to transfer thermal energy from regeneration fluid in the regeneration fluid path downstream of the desiccant to air in the process airflow path upstream of the desiccant. 22 . The system of claim 1 , further comprising a water collection unit configured to receive the liquid water produced from the condenser. 23 . The system of claim 22 , wherein the water collection unit comprises a filter. 24 . The system of claim 22 , wherein the water collection unit comprises an ultraviolet (UV) light source. 25 . The system of claim 22 , wherein the water collection unit comprises a receptacle configured to receive one or more additives for introduction to the liquid water produced from the condenser. 26 . The system of claim 22 , wherein the water collection unit has a footprint with a maximum transverse dimension less than or equal to 8 feet (ft). 27 . The system of claim 26 , wherein an area of the footprint is less than or equal to 64 square feet (ft 2 ). 28 . The system of claim 26 , wherein the water collection unit can be contained within a cubic volume less than or equal to 512 cubic feet (ft 3 ). 29 . The system of claim 1 , further comprising a solar power unit configured to provide electrical power to the system. 30 . The system of claim 29 , wherein the solar power unit comprises a solar panel. 31 . The system of claim 29 , wherein the system is configured to operate without an external source of electrical power. 32 . The system of claim 2 , further comprising a purge airflow path configured to transfer thermal energy from a portion of the adsorption zone to a portion of the desorption zone. 33 . The system of claim 32 , wherein the controller is configured to increase liquid water production based, at least in part, on a temperature of air in the purge airflow path. 34 . The system of any of claim 2 , further comprising a recovery heat exchanger configured to transfer thermal energy from regeneration fluid in the regeneration fluid path downstream of the desiccant to regeneration fluid in the regeneration fluid path upstream of the desiccant. 35 . The system of claim 2 , further comprising a second desiccant

Assignees

Inventors

Classifications

  • Water conservation; Efficient water supply; Efficient water use · CPC title

  • Disinfection · CPC title

  • Controlling adsorption (controlling temperature swing adsorption B01D53/0462, controlling pressure swing adsorption B01D53/047) · CPC title

  • B01D53/261Primary

    by adsorption · CPC title

  • with moving adsorbents, e.g. rotating beds {(B01D53/025 takes precedence)} · CPC title

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What does patent US2021106946A1 cover?
This disclosure includes systems and methods for extracting water vapor from atmospheric air and, more particularly, but not by way of limitation, systems and methods for optimizing liquid water production from air, in some instances, taking into account diurnal variations. The systems comprise an adsorption zone an a desorption zone, an actuator to move a desiccant between the adsorption zone …
Who is the assignee on this patent?
Univ Arizona State
What technology area does this patent fall under?
Primary CPC classification B01D53/0454. Mapped technology areas include Operations & Transport.
When was this patent published?
Publication date Thu Apr 15 2021 00:00:00 GMT+0000 (Coordinated Universal Time) (A1). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).