Water purification apparatus and method
09981199 ยท 2018-05-29
Assignee
Inventors
Cpc classification
B01D1/14
PERFORMING OPERATIONS; TRANSPORTING
B01D5/006
PERFORMING OPERATIONS; TRANSPORTING
B01D3/346
PERFORMING OPERATIONS; TRANSPORTING
B04C11/00
PERFORMING OPERATIONS; TRANSPORTING
Y02A20/124
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B01D1/0064
PERFORMING OPERATIONS; TRANSPORTING
B01D1/04
PERFORMING OPERATIONS; TRANSPORTING
B04C3/06
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D1/14
PERFORMING OPERATIONS; TRANSPORTING
B01D3/34
PERFORMING OPERATIONS; TRANSPORTING
B01D5/00
PERFORMING OPERATIONS; TRANSPORTING
B01D1/04
PERFORMING OPERATIONS; TRANSPORTING
B04C11/00
PERFORMING OPERATIONS; TRANSPORTING
B04C3/06
PERFORMING OPERATIONS; TRANSPORTING
Abstract
There is disclosed a water purification apparatus and method, related to desalinization. In an embodiment, a water purification apparatus and method includes at least one port for receiving airflow therethrough, at least one port for receiving salt water therethrough, at least one output for providing outflow of pure water vapor, and at least one output for proving outflow of a mixture of water, salt and air; and a plurality of chambers for evaporating the salt water into the airflow, at least one of the chambers forming a plurality of ports arranged in a plurality of rows. In an embodiment, a method includes providing airflow to a water purification apparatus; providing salt water to the water purification apparatus and method; forming a vortex in the airflow to evaporate water vapor from the salt water; and providing the water vapor in the airflow to a condenser so as to obtain pure water.
Claims
1. A water purification apparatus, comprising: a first end and a second end, a longitudinal axis extending between the first end and the second end; at least one first port positioned at the first end to receive airflow at a pressure higher than an ambient atmospheric pressure; at least one second port positioned at the first end to receive salt water at a pressure higher than the ambient atmospheric pressure; a plurality of processor chambers arranged in series along the longitudinal axis, the salt water and airflow forming a vortex flow in each of the plurality of processor chambers to evaporate water from the salt water into the airflow; a plurality of passageways, one of the plurality of passageways surrounding one of the processor chambers for each of the plurality of passageways and processor chambers; a plurality of processor ports providing flow communication between each passageway and its associated processor chamber; a plurality of processor outlets, a separate one of the plurality of processor outlets providing an outlet for water, salt, air, and purified water vapor from each processor chamber to the passageway associated with a successive processor chamber, the processor outlets being arranged coaxially along the longitudinal axis; a first outlet positioned at the second end, the purified water vapor exiting the water purification apparatus at the first outlet; a second outlet positioned at the second end, the water, salt and air exiting the water purification apparatus at the second outlet.
2. A water purification apparatus according to claim 1, further comprising: an airflow connector connected to the at least one first port and configured to receive tubing for the airflow provided thereto; a fluid connector connected to the at least one second port and configured to receive tubing for the salt water provided thereto; a valve assembly configured to regulate flow of the saltwater.
3. A water purification apparatus according to claim 2, wherein the airflow connector is configured to provide the airflow at a pressure of about 80 psi.
4. A water purification apparatus according to claim 2, wherein the airflow connector is configured to provide the airflow at a volume of about 10 to 50 cfm.
5. A water purification apparatus according to claim 2, wherein the airflow connector is configured to provide the airflow at a temperature of about 100 to 150 F.
6. A water purification apparatus according to claim 2, wherein the fluid connector is configured to provide the salt water at a pressure of about 5 to 10 psi greater than the pressure of the airflow so as to provide a pressure differential to allow the salt water to enter the airflow.
7. A water purification apparatus according to claim 1, further comprising a refrigerator configured to condense the purified water vapor into salt-free water.
8. A water purification apparatus according to claim 1, further comprising a separator bottle configured to collect the mixture of salt, water, and air.
9. A water purification apparatus according to claim 1, further comprising at least one tube casing, the at least one tube casing comprising: a processing section that includes the plurality of processor chambers, the plurality of passageways, the plurality of processor ports, and the plurality of processor outlets, the processing section being configured to receive airflow and salt water from the first end and to evaporate at least a portion of the salt water; a separator section in fluid communication with the processing section, the separator section being configured to discharge the purified water vapor through the first outlet to a refrigerator wherein the purified water vapor is condensed into salt-free water, and to discharge a mixture of water, salt and air through the second outlet.
10. A water purification apparatus according to claim 9, wherein the processing section directs the airflow through the chamber ports to form a vortex flow about the longitudinal axis so as to evaporate water from the salt water into the airflow.
11. A water purification apparatus according to claim 9, wherein the plurality of processor chambers includes different cup configurations, and the different cup configurations are selected from a group consisting of a restrictive v-cup, a 3 row v-cup and a 5 row v-cup.
12. A water purification apparatus according to claim 11, wherein the restrictive v-cup is configured to create a pressure drop of the airflow and the salt water therein so as to increase pressure prior to the restrictive v-cup toward the first end and allow the airflow to hold additional water vapor.
13. A water purification apparatus according to claim 9, wherein the processing section and the separator section are each configured to create a pressure drop of about 0.75 to 4 psi.
14. A water purification apparatus, comprising: an elongate tubular casing having a longitudinal axis, a first end and a second end; a first inlet positioned at the first end and configured to receive a flow of salt water; a second inlet positioned at the first end and configured to receive a flow of air; at least one outlet positioned at the second end and configured to output a flow of purified water vapor; a processing section positioned in the casing and comprising: a plurality of axially aligned processors, each processor comprising: a chamber; a plurality of inlets arranged to direct flow of salt water and air radially into the chamber; a chamber outlet arranged coaxially with the longitudinal axis and in flow communication with the plurality of inlets for a successive processor, wherein the chamber outlet comprises a conical shaped structure, the conical shaped structure tapering smaller toward the first end; wherein the processing section provides a pressure drop between successive processors.
15. A water purification apparatus according to claim 14, further comprising: a separator section arranged in series with the processing section, the separator section comprising: a separator inlet in flow communication with an outlet of the processing section; a separator outlet; at least one flange positioned in the separator section and arranged to provide physical separation between a flow of water vapor and a flow of salt and water passing through the separator section.
16. A water purification apparatus according to claim 15, wherein the at least one flange has a disk shape and an aperture formed coaxially with the longitudinal axis.
17. A water purification apparatus, comprising: a processing section, comprising: a plurality of processors arranged in succession along a length of the apparatus, each processor comprising: a processor chamber; a plurality of processor inlets to the processor chamber arranged around a perimeter of the processor chamber; a processor outlet opening aligned coaxially with outlet openings of successive processors; a separator section arranged in series with the processing section, the separator section comprising: a separator inlet in flow communication with an outlet of the processing section; a separator outlet; at least one flange positioned in the separator section and arranged to provide physical separation between a flow of water vapor and a flow of salt and water passing through the separator section; a first inlet configured to receive the flow of salt water for delivery into the processing section; a second inlet configured to receive a flow of air for delivery into the processing section; a first outlet configured to receive a flow of purified water vapor from the separator section and discharge the purified water vapor from the water purification apparatus; a second outlet configured to receive a flow of water, salt and air from the separator section and discharge the water, salt and air from the water purification apparatus.
18. A water purification apparatus according to claim 17, wherein the at least one flange includes a plurality of disk shaped members axially spaced apart from each other and each comprising an aperture formed coaxially with the longitudinal axis.
19. A water purification apparatus according to claim 17, wherein the plurality of processor inlets to the processor chambers are arranged at tangential angles to provide a vortex flow of water vapor, salt and water in each processor chamber.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying drawings illustrate certain embodiments discussed below and are a part of the specification.
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12) Throughout the drawings, identical reference characters and descriptions indicate similar, but not necessarily identical elements.
DETAILED DESCRIPTION
(13) Illustrative embodiments and aspects are described below. It will of course be appreciated that in the development of any such actual embodiment, numerous implementation-specific decisions must be made to achieve the developers' specific goals, such as compliance with system-related and business-related constraints, that will vary from one implementation to another. Moreover, it will be appreciated that such a development effort might be complex and time-consuming, but would nevertheless be a routine undertaking for those of ordinary skill in the art having the benefit of this disclosure.
(14) As used throughout the specification and claims, the words including and having, as used in the specification, including the claims, have the same meaning as the word comprising.
(15) Turning now to the figures, and in particular to
(16) There may be provided at least one tube casing 50 extending between first end 15 and the second end 20. Tube casing 50 may enclose a plurality of chambers 55 (see
(17) Still referring to
(18) Airflow and salt water input may be adjusted for efficient evaporation within the desalinization apparatus. For example, airflow connector 80 may be configured to provide airflow 30AF at a pressure of about 80 psi into desalinization apparatus 10. Airflow connector 80 may be configured to provide airflow 30AF at a volume of about 10 to 50 cubic feet per minute (cfm.) Airflow connector 80 may be configured to provide airflow 30AF at a temperature of about 100 to 150 F.
(19) Fluid connector 85 may be configured to provide salt water 35SW at a pressure of about 5 to 10 psi greater than the pressure of the airflow so as to provide a pressure differential to allow salt water 35SW to enter the airflow. In one embodiment, desalinization apparatus 10 may provide at least 10 ml per minute of water from the pure water vapor. In another embodiment, desalinization apparatus 10 may provide at least 13.5 ml per minute of water from the pure water vapor.
(20) Output may provide to a passageway 115 in communication with a refrigerator to condense the water vapor into salt-free water. In one embodiment, output 45 may be configured for providing outflow of a mixture of water, salt and air is configured to provide the mixture to a separator bottle to further process the mixture into salt-free water. Referring to
(21) In order to evaporate water from the salt water into the airflow, processing section 105 directs the airflow and the salt water through ports 65 of chambers 55 to form at least one vortex about axis 25 so as to evaporate water vapor from the salt water into the airflow. For example, one or more processors in the device may be configured to create a pressure drop in the direction of airflow, and this pressure drop evaporates liquid into the airflow. In an exemplary embodiment, each of eight processors may provide a pressure drop so as to evaporate liquid. The pressure drop per processor may be within a range of 0.75 to 4 pounds per square inch (psi). In one embodiment, the plurality of chambers 55 forming processing section 105 may include different types of v-cups 120. The different types of v-cups 120 include a restrictive v-cup 102R, a 3 row v-cup 120R3, and a 5 row v-cup 120R5. Restrictive v-cup 120R may be configured to create a pressure drop of airflow 30AF and salt water 35SW therein. This increases pressure prior to restrictive v-cup 120R toward the first end 15 and allows airflow 30AF to hold additional water vapor. Processing section 105 may be configured to maximize evaporation of the salt water 35SW prior to the separator section 110.
(22) Separator section 110 may be configured to prevent salt from being discharged from output 40 for providing outflow of pure water vapor. In an embodiment, processing section 105 may be configured to provide additional evaporation of the salt water prior to the second end 20.
(23) One or more flanges 125 may be provided to connect processor section 105 and separator section 110 to input body 75 and output 40, respectively, as together with one another. In various embodiments, flanges 125 may be removable for cleaning or repairing desalinization apparatus 10. In alternative embodiments, flanges 125 may be integrally formed with tube casing 50 or omitted from desalinization apparatus 10.
(24) As best illustrated in
(25) Referring to
(26)
(27) An exemplary embodiment of this configuration can also be seen in
(28) Referring to
(29) Looking at
(30) A restrictive v-cup 120R is illustrated in
(31)
(32) Referring now to
(33) In an embodiment, method 2300 may include forming the vortex occurs in a chamber. For example, this may include forming a plurality of vortices in a plurality of chambers in series with one another prior to providing the water vapor in the airflow to the condenser.
(34) Method 2300 may also include regulating flow of the airflow to the desalinization device. Airflow into the desalinization apparatus may be provided at a pressure of about 80 psi. Airflow into the desalinization apparatus may be provided at a volume of about 10 to 50 cfm. Airflow into the desalinization apparatus may be provided at a temperature of about 100 to 150 F.
(35) Method 2300 may also include regulating flow of the salt water into the desalinization device. Salt water into the desalinization apparatus may be provided at a pressure of about 5 to 10 psi greater than the pressure of the airflow so as to provide a pressure differential to allow the salt water to enter the airflow. Using the above-identified specifications for example, the desalinization apparatus may provide at least 10 ml per minute of water from the pure water vapor. However, the desalinization apparatus may provide at least 13.5 ml per minute of water from the pure water vapor.