Water absorption using an insulated housing
09737844 · 2017-08-22
Assignee
Inventors
Cpc classification
B01D53/265
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D53/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Disclosed is a device for adsorbing water using a sealable housing containing a water adsorbing material and a heat pump.
Claims
1. A water adsorption device comprising: a thermally insulated housing (20) having a sealable inlet (22) and a sealable outlet (24); a container (26) within the housing (20), the container (26) separating the housing in a first compartment (27a) and a second compartment (27b) respectively, the container (26) having at least one inlet (28) and one outlet (30), wherein the inlet (28) of the container (26) communicates with the sealable inlet (22) of the housing and the outlet (30) of the container (26) communicates with the sealable outlet (24) of the housing, whereby gas can flow into the container (26) from the first compartment (27a) and out from the container (26) into the second compartment (27b); a water adsorbing material (32) confined within the container (26), whereby the device is configured to allow the gas to flow from the sealable inlet (22) of the housing through the container (26) in contact with the water adsorbing material (32) in the container (26) to the sealable outlet (24) of the housing, wherein the housing has at least one condensation surface (42), wherein said condensation surface is arranged in the housing to allow condensation of vapour in the gas; a heating device (34) arranged in one of the group consisting of i) a space (37) between the condensation surface (42) and the container (26), ii) in thermal contact with the water adsorbing material, and iii) in thermal contact with the container (26); and a heat pump (43) configured to heat the water adsorbing material (32) and configured to cool the condensation surface (42).
2. The device according to claim 1 wherein the housing is made of a non-transparent material.
3. The device according to claim 1 wherein the temperature of the condensation surface is from 40 to 90° C.
4. The device according to claim 1 wherein a fan is arranged in the housing in order to increase the convectional flow.
5. The device according to claim 1 wherein the container is made of stainless steel.
6. The device according to claim 1 wherein the condensation surface is arranged in the wall of the housing or positioned at least partly facing the inlet and/or the outlet of the container or positioned perpendicular to the inlet and/or the outlet of the container.
7. The device according to claim 1 wherein the heat pump uses a media having a vaporisation energy of more than 1000 kJ/kg.
8. A method of adsorbing water from a gas comprising: a. providing a device according to claim 1; b. bringing a gas flow into contact with the water adsorbing material; c. letting the water adsorbing material adsorb vapour or water from the gas; d. sealing the housing; e. heating the water adsorbing material with the heating device or with heat from the heat pump until the space between the container and the inner surface of the housing has a dew point above 0 degree Celsius; f. continuing heating of the water adsorbing material; g. letting vapour condense on the condensation surface; h. collecting condensed water; and i. unsealing of the housing.
9. The method according to claim 8 wherein the condensing surface has a temperature of 20° C. to 100° C.
10. The method according to claim 8 wherein the water adsorption material in step e is heated to a temperature of 100-140° C.
11. The device according to claim 2 wherein the temperature of the condensation surface is from 40 to 90° C.
12. The device according to claim 2 wherein the container is made of stainless steel.
13. The device according to claim 3 wherein the container is made of stainless steel.
14. The device according to claim 4 wherein the container is made of stainless steel.
15. The device according to claim 2 wherein the condensation surface is arranged in the wall of the housing or positioned at least partly facing the inlet and/or the outlet of the container or positioned perpendicular to the inlet and/or the outlet of the container.
16. The device according to claim 1, wherein the heating device (34) is arranged in the space (37) between the condensation surface (42) and the container.
17. The device according to claim 1, wherein the heating device (34) is arranged in thermal contact with the water adsorbing material.
18. The device according to claim 1, wherein the heating device (34) is arranged in thermal contact with the container.
19. The device according to claim 1, wherein the thermally insulated housing (20) is configured, i) after having allowed the water adsorption material to adsorb water, to seal the seal thermally insulated housing (20) including sealing the sealable inlet (22) and sealing the sealable outlet (24) for allowing the water adsorption material to be heated for a process of releasing the water from the water adsorbing material, and ii) after the process of releasing the water from the water adsorbing material, unsealing of the housing including unsealing the sealable inlet (22) and unsealing the sealable outlet (24), the heat pump (43) is comprised of the condensation surface (42), a compressor (44), a heater (47) and an expansion tank (46) connected via tubing and configured so that cooling and heating media circulates, wherein the heater (47) is arranged in one of the group consisting of the space (37) between the condensation surface (42) and the container (26), in thermal contact with the water adsorbing material (32), and in thermal contact with the container (26), and the heat pump (43) is further configured to, during the process of releasing the water from the water adsorbing material, generate heat that is delivered to the water adsorption material via the heater (47) to heat the water adsorption material for release of the water from the water adsorbing material by condensation onto the condensation surface (42).
20. The device according to claim 1, wherein the thermally insulated housing (20) is configured, i) after having allowed the water adsorption material to adsorb water, to seal the seal thermally insulated housing (20) including sealing the sealable inlet (22) and sealing the sealable outlet (24) for allowing the water adsorption material to be heated by the heat pump (43) for a process of releasing the water from the water adsorbing material, and ii) after the process of releasing the water from the water adsorbing material, unsealing of the housing including unsealing the sealable inlet (22) and unsealing the sealable outlet (24), and the heat pump (43) is further configured to, during the process of releasing the water from the water adsorbing material, i) generate heat that is delivered to the water adsorption material to heat the water adsorption material for release of the water from the water adsorbing material by condensation onto the condensation surface (42), and ii) cool the condensation surface (42).
Description
BRIEF DESCRIPTION OF THE FIGURES
(1)
(2)
(3)
DETAILED DESCRIPTION OF THE INVENTION
(4) In the present application the wordings “water adsorbing material”, “water adsorption material” and “hygroscopic material” are used interchangeably.
(5) The device according to the present invention is designed for water adsorption from a gas, for example from air. The device may be integrated into another device or may be a standalone device.
(6) Referring now to
(7) The condensation surface 42 may be arranged in the space 37 (
(8) When the heat pump 43 starts to generate heat which may be delivered to the water adsorption material via the heater 47 the heating device 34 may be turned off or at least does not have to run on full effect and thereby saving energy. The heating device 34 may be maneuvered using electricity, fuel cells, solar energy or in any other suitable way and the heat could be supplied via electricity, microwaves (for example via the microwave oven principle) or via solar energy.
(9) The heating device 34 may also be connected to a sealing control mechanism to optimize the process of when the sealable inlet and sealable outlet should be opened and closed and when the heating procedure of the water adsorption material should start. Additionally, the housing is preferably constructed in such a way that the gas volume inside a sealed housing remains substantially constant during heating of the water adsorbing material. This may be accomplished by securing or locking the sealing after closing or using a check valve as a sealing.
(10) The present invention is based on the fact that a water adsorption material confined in a container adsorbs, and to some extent maybe also absorbs, water from the surrounding gas, preferably air, and for example to the point of saturation. Thus, after having allowed the water adsorption material to adsorb water, the housing is sealed using a lid or any suitable cover and the water adsorption material is then heated using the heating device, and later also the heater. The process of releasing the water from the water adsorbing material is driven by the difference in vapour pressure of the water in the gas and the water adsorbed in the water adsorbing material. The amount of water released from the water adsorption material to the surroundings can, as mentioned above, be described by Eq. [1].
(11) When the water is vaporized it creates a cooling in the hygroscopic material. The cooling from the vaporization is described by
P.sub.c={dot over (r)}E.sub.V (2)
where P.sub.c is the cooling power and E.sub.V is the vaporization energy. The released water vapour will increase the dew point in the space 37. When the dew point is higher than the temperature on the condensation surface 42, condensation will occur. In the present invention the temperature on the condensation surface is above 0 degrees Celsius.
(12) When the water vapour is condensed on the condensing surface 42 the condensation creates heat. The heating on the condensation surface from the condensed water vapour is equivalent described as
P.sub.H=ċE.sub.V (3)
where P.sub.H is the heating power and ċ is the amount of condensed water vapour per second. The power, P.sub.H, is then transferred back to the water adsorption material via the heater 47. The power needed from the heating device to keep a constant temperature in the hygroscopic material is then reduced with P.sub.H.
(13) Thus, in the special case when
P.sub.H=P.sub.C (4)
all vaporization energy is transferred back to the hygroscopic material. The condensation surface is also heated from thermal convection, conduction and radiation from the hygroscopic material and the container. This thermal energy is also transferred back to the hygroscopic material via the heater.
(14) The condensation surface may be made of metals or metal alloys or any other heat conductive material. The walls of the container and/or the housing may be made of but not limited to metals or metal alloys. Walls made of a heat insulation material will reduce thermal losses. Therefore, the walls of the housing are preferably made of a heat insulation material.
(15) The housing may be thermally insulated from the container with the water adsorbing material, heater and heating device so that the housing is not heated during heating of the water adsorbing material. The housing may be made of a non-transparent material, in one embodiment the housing has a small window for inspection.
(16) Now referring to
(17) The temperature of the condensation surface should be at least 0° C., preferably more than 20° C., or preferably more than 40° C., or preferably more than 60° C. but less than 120° C., or less than 100° C., or less than 80° C. In one embodiment the temperature is from 40 to 90° C. In another embodiment the temperature is 65-75° C., preferably 70° C.
(18) The temperature of the water adsorption material should be higher than that of the condensation surface preferably 70° C. or higher, or 90° C. or higher, or 110° C. or higher. In one embodiment the temperature is between 100-140° C., such as 110-130° C., preferably 120° C.
(19) In order to obtain a better transfer of water vapour and hence a more energy efficient system; the height, length and the temperature difference between the container and the condensation surface can be chosen such that the Sherwood number is maximized. The Sherwood number can be used to estimate the advective water vapour transport between the container and the condensation surface. The Sherwood number is used to scale the diffusion coefficient due to circular motion created inside the housing. The Sherwood number is given by
(20)
where Ra is the Rayleighs numbers, Sc is the Schmidt number, L.sub.H is the height of the housing, L.sub.G is the distance between the container surface and the condensation surface, g is the gravitational acceleration, β is the thermal expansion given by
(21)
where {circumflex over (T)} is the mean value of the temperature between the container surface and the condensation surface, Pr is the Prandtls number, T.sub.H is the temperature on the container surface, T.sub.c is the temperature on the condensation surface, V is the kinematic viscosity of the gas, μ dynamic viscosity, ρ is the density and D is the binary vapor mass diffusion coefficient.
(22) The heating/cooling media of the heat pump 43 is dependent on the temperature wanted for the heater and the condensation surface. In one embodiment it is a media having a boiling point between 50 and 150° C., preferably between 65 and 120° C. It is also preferable that the media has high vaporisation energy, preferably more than 1000 kJ/kg, or more than 1500 kJ/kg, or more than 2000 kJ/kg. The media may be selected from but not limited to water or lower alcohols such as C1-C5 alcohols or mixtures thereof. In one embodiment the mixture is water-ethanol or water-isopropanol.
(23) The walls and the bottom of the housing 20 or the condensation surface 42 may preferably be constructed in such a way that the liquidized water is assembled. This may be accomplished by having grooves, trenches, channels or the like in or along the walls of the housing or condensation surface, they may further continue along the bottom plate of the housing towards an assembling spot. These grooves, trenches or channels could be made of or covered with hydrophobic material. The bottom plate could be constructed in such a way that all the water from the walls and from the hygroscopic material is assembled. This could be achieved by having the bottom lean into one or more spots. The housing has preferably a draining element which could be but is not limited to a tap, faucet or an outlet, or the housing may contain a removable tray where the condensed water is collected and could be discharged from.
(24) The present invention is aimed at extracting water from gas, preferably air, to either produce water or remove the water from the gas. The latter could be used for example, but not limited to, for dehumidification of indoor environments or in air-conditioning devices.