System And Method To Desalinate A Feed Water Stream By Mixing The Feed Water Stream With A Heating Medium
20170368470 · 2017-12-28
Inventors
- Z. Frank Zheng (Cypress, TX, US)
- Christopher Stephen King (Houston, TX, US)
- Harihara V. Nemmara (Katy, TX, US)
Cpc classification
C02F1/10
CHEMISTRY; METALLURGY
B01D1/0064
PERFORMING OPERATIONS; TRANSPORTING
B01D1/14
PERFORMING OPERATIONS; TRANSPORTING
B01D1/2856
PERFORMING OPERATIONS; TRANSPORTING
B01D5/006
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D1/14
PERFORMING OPERATIONS; TRANSPORTING
C02F1/10
CHEMISTRY; METALLURGY
B01D5/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A system and method to desalinate a feed water stream does so in a liquid pool zone of a vessel as the stream comes into contact with a heating medium that is less volatile than the feed water stream. To keep the pool hot, the heating medium can be recirculated through a heater of a pump-around loop or a heater can be placed in the liquid pool. As the feed water stream is vaporized or partially vaporized, any solids and unvaporized water present in the feed water stream come out of the stream and move into the heating medium. These solids and unvaporized water may be further removed from the heating medium in the pool or in the pump-around loop. The heat exchange surface does not contact the feed water.
Claims
1. A method to desalinate a feed water stream, the method comprising: routing the feed water stream into a liquid pool zone of a vessel, the liquid pool zone including a heating medium, the heating medium being less volatile than the feed water stream and maintained at an operating temperature determined by vaporization requirements; vaporizing at least a portion of volatile components of the feed water stream due to contact with the heating medium in the liquid pool zone; and removing a vaporized portion of the feed water stream from a vapor separation zone of the vessel as steam; compressing at least a portion of the steam; and condensing at least a portion of the steam; wherein the interior volume of the vessel does not include a stripping zone for removal of an unvaporized portion of the feed water stream.
2. A method according to claim 1 further comprising pre-mixing the feed water stream and the heating medium outside of the liquid pool zone of the vessel.
3. A method according to claim 2 wherein during pre-mixing no vaporization of the volatile components of the feed water stream occurs.
4. A method according to claim 2 wherein during pre-mixing no more than about 90% of the volatile components of the feed water stream vaporize.
5. A method according to claim 1 further comprising separating and removing at least some of the unvaporized portion from the vessel directly as blowdown.
6. A method according to claim 1 further comprising: removing a portion of the heating medium residing in the liquid pool zone of the vessel; raising a temperature of the removed portion to produce a heated recycle stream; and routing the heated recycle stream back to the liquid pool zone.
7. A method according to claim 6 wherein the removed portion of the heating medium is a mixture of heating medium and at least some of the unvaporized portion of the feed water stream.
8. A method according to claim 7 further comprising separating and removing at least some of the unvaporized portion from the mixture prior to raising the temperature.
9. A method according to claim 1 wherein a density of the heating medium is greater than that of the feed water stream.
10. A method according to claim 1 wherein the heating medium is immiscible with the feed water stream.
11. A method according to claim 1 wherein there is no pre-treatment of the feed water stream prior to entering the liquid pool zone of the vessel.
12. A method according to claim 1 further comprising filtering the feed water stream by coarse straining prior to the feed water stream entering the liquid pool zone of the vessel.
13. A method according to claim 1 further comprising recovering residual heat in the condensed steam.
14. A method according to claim 1 further comprising routing the heating medium through a secondary heater.
15. A method according to claim 1 further comprising preheating the feed water stream.
16. A system to desalinate a feed water stream, the system comprising: a vessel arranged to contact the feed water stream and route the feed water stream into a liquid pool zone of the vessel, the liquid pool zone including a heating medium less volatile than the feed water stream and maintained at an operating temperature determined by vaporization requirements; a pump-around loop arranged to receive a portion of the heating medium residing in the liquid pool zone and return the portion back to the liquid pool zone; a compressor arranged to receive at least a portion of the steam exiting the vapor separation zone of the vessel and produce a pressurized steam; and a condenser arranged to receive at least a portion of the pressurized steam wherein when the feed water stream is contacted by the heating medium in the liquid pool zone at least a portion of volatile components of the feed water stream vaporize and migrate to a vapor separation zone of the vessel; wherein the vessel does not include a stripping zone for removal of unvaporized portions of the feed water stream.
17. A system according to claim 16 further comprising a mixer located outside of the liquid pool zone of the vessel and arranged to mix the feed water stream and the portion of the heating medium being returned to the vessel.
18. A system according to claim 17 wherein the mixer is arranged so no vaporization of the volatile components of the feed water stream occurs in the mixer.
19. A system according to claim 17 wherein the mixer is arranged so no more than about 90% of the volatile components of the feed water stream vaporize in the mixer.
20. A system according to claim 16 wherein the vessel includes internals arranged to separate at least some of the unvaporized portion of the process stream from the heating medium.
21. A system according to claim 16 further comprising the pump-around loop including a heater.
22. A system according to claim 16 further comprising the pump-around loop including a separation device.
23. A system according to claim 16 wherein the condenser is arranged to transfer heat to the heating medium in the pump-around loop.
24. A system according to claim 16 further comprising a preheater to heat the feed water stream.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014] So that the above recited features can be understood in detail, a more particular description may be had by reference to embodiments, some of which are illustrated in the appended drawings, wherein like reference numerals denote like elements. It is to be noted, however, that the appended drawings illustrate various embodiments and are therefore not to be considered limiting of its scope, and may admit to other equally effective embodiments.
[0015]
[0016]
[0017]
ELEMENTS AND NUMBERING USED IN THE DRAWINGS AND DETAILED DESCRIPTION
[0018] 10 System or method [0019] 15 Feed water stream [0020] 17 Mixer within or outside of 20 [0021] 20 Vessel [0022] 21 Liquid pool zone [0023] 23 Heating medium [0024] 24 Interior volume [0025] 25 Unvaporized (dissolved and undissolved solids and any unvaporized water) portion of 15 [0026] 27 Vapor separation zone [0027] 29 Vaporized portion of 15 [0028] 30 Steam [0029] 35 Removed heating medium stream or mixture (heating medium 23 and portion of 25) [0030] 40 Pump-around loop [0031] 41 Heating medium heater/steam condenser [0032] 45 Heated recycle stream substantially unvaporized portion-free or with a reduced unvaporized portion 25 [0033] 47 Separator or separation device (such as a hydrocyclone, centrifuge, particulate filter, settling tank or their equivalents, or a combination of these) [0034] 50 Heating medium stream substantially unvaporized portion-free or with a reduced unvaporized portion 25 [0035] 60 Secondary heater [0036] 61 Feed water preheater/desalinated water cooler [0037] 65 Condensed desalinated water stream [0038] 66 Cooled desalinated water [0039] 70 Compressor [0040] 75 Pressurized steam
DETAILED DESCRIPTION
[0041] In the following description, numerous details are set forth to provide an understanding of some embodiments of the present disclosure. However, it will be understood by those of ordinary skill in the art that the system and/or methodology may be practiced without these details and that numerous variations or modifications from the described embodiments may be possible.
[0042] In the specification and appended claims, the terms “connect”, “connection”, “connected”, “in connection with”, and “connecting” are used to mean “in direct connect with” or “in connection with via one or more elements”; and the term “set” is used to mean “one element” or “more than one element”. Further, the terms “couple”, “coupling”, “coupled”, “coupled together”, and “coupled with” are used to mean “directly coupled together” or “coupled together via one or more elements”. As used herein, the terms “up” and “down”, “upper” and “lower”, “upwardly” and “downwardly”, “upstream” and “downstream”, “above” and “below”, and other like terms indicated relative positions above or below a given point or element and are used in this description to more clearly describe some embodiments of the disclosure.
[0043] Embodiments of a system and method to desalinate a feed water stream eliminate the vaporization on the heat exchanging surface that drives existing feed water specifications. Therefore, a much wider choice for the source of (lower quality) feed water with very little or no pretreatment is allowed, including produced water and seawater sources.
[0044] The embodiments desalinate the feed water stream through vaporization (or partial vaporization) of the feed water stream when the stream contacts a heating medium residing in a liquid pool zone of a vessel. The vessel is arranged to directly receive the feed water stream, thereby eliminating pre-treatment between it and the upstream process providing the stream. A pump-around loop heats a portion of the heating medium and recycles this heated portion back to the vessel.
[0045] The heating medium, which can be lighter or heavier than the stream, is maintained at an operating temperature required for the desired vaporization (and desalination) effects. If any pre-mixing of the feed water and heating medium occurs outside of the liquid pool, the pre-mixing may be at a level below that at which vaporization occurs. Pre-mixing may also be done to provide a relatively small amount of vaporization to enhance the pre-mixing and accelerate the fluid when it enters the liquid pool. The vessel can also make use of blowdown to remove solids formed during the vaporization of the feed water stream. Blowdown, as used here, refers to the removal of solids or unvaporized feed water stream with concentrated levels of dissolved or undissolved solids. A separator located in the pump-around loop can be used for the separation of the blowdown.
[0046] The different arrangements of the system and method 10 as shown in
[0047] The now vaporized portions 29 of the feed water stream 15 migrate to a vapor separation zone 27 of the vessel 20 and are removed as a vaporized feed water stream 30 in the form of steam. The steam 30 is routed to a compressor 70 and the pressurized steam 75 is routed to a heating medium heater/steam condenser 41 to produce a condensed desalinated water stream 65. Heat from the heating medium heater/steam condenser 41 can be recovered and used to raise the temperature of the recycle stream 45.
[0048] As the volatile components 29 of the feed water stream 15 vaporize, the unvaporized portion 25 of the feed water stream 15 moves into the liquid pool zone 21 along with the heating medium 23. Because the unvaporized portion 25 is solids, or if any liquid, immiscible with the heating medium 23, that portion 25 can separate from the heating medium 23 either within the vessel 20 or within a separator 47 located in the pump-around loop 40. The unvaporized portion 25, both liquid and undissolved solids, can be removed as blowdown stream 25. No stripping zone is used.
[0049] The separator 47 used in the pump-around loop 40 can be any separator suitable, including but not limited to a hydrocyclone, centrifuge, particulate filter, settling tank, or some other piece of separation device equivalent to these, or a combination of these. A heating medium stream 50 with reduced amounts of, or without, unvaporized solids and liquids 25 exits the separator 47. Heat recovered from condensing the steam is used to raise the temperature of the recycle stream 45. A secondary heater 60 can be used to provide additional heat. The heated recycle stream 45 then recycles back to the liquid pool zone 21 of the vessel 20. The heated recycle stream 45 may include some unvaporized portion 25 of the feed water stream 15. A feed water preheater 61 can be used to preheat the feed water to recover the residual heat in the condensed desalinated water.
[0050] The heating medium 23 is maintained at an operating temperature that provides the desired vaporization effects. The heating medium 23 can be any heating medium depending on the make-up of feed water stream 15 and application-specific requirements. For example, the heating medium 23 could be one that one that is lighter than, heavier than, or (in the case of total vaporization of the water) the same density as the feed water stream 15. The heating medium 23 could also be one that forms, in the case of total vaporization, a homogeneous or heterogeneous mixture with the feed water stream 15. However, in the case of partial vaporization in which there is unvaporized water in the unvaporized portion 25, the heating medium 23 is immiscible with the feed water stream 15 to form a heterogeneous mixture. In either case, the heating medium 23 is less volatile than the volatile components 29 of the feed water stream 15.
[0051] To keep the heating medium 23 at the selected operating temperature, a heater (not shown) can be placed in the liquid pool zone 21. Alternatively or additionally, a removed stream 35 of the heating medium 23, which may include unvaporized portion 25 residing within the liquid pool zone 21, can be removed from the vessel 20 and routed to the pump-around loop 40 and its heating medium heater/steam condenser 41 and secondary heater 60. A heated recycle stream 45, which may include solids and unvaporized water from 25, then recycles back to the liquid pool zone 21.
[0052] An embodiment of a method to desalinate a feed water stream includes: [0053] routing the feed water stream 15 into the liquid pool zone 21 of the vessel 20 where it becomes mixed with a heating medium 23 that is less volatile than the feed water stream 15 and maintained at an operating temperature determined by vaporization requirements to vaporize a volatile components portion 29 of the feed water stream 15; [0054] removing the vaporized portion 29 of the feed water stream 15 from the vapor separation zone 27 of the vessel 20 as steam 30; [0055] compressing at least a portion of the steam 30; and [0056] condensing at least of portion of the compressed steam 75.
Condensing can take placed in the pump-around loop 40. Heat recovered from the heating medium heater/steam condenser 41 can be used as pre-heating to raise the temperature of the recycle stream 45.
[0057] Prior to the feed water stream 15 entering the liquid pool zone 21 there may be no pre-treatment of the stream 15 as it exits the upstream process providing the stream 15 and there may be no mixing of the feed water stream 15 with the heating medium 23. Pretreatment means treatment such as but not limited to chemical dosing, filtration using selectively permeable membranes, separators, or the use of ion exchange, deaerators or blowdown prior to the feed water stream 15 entering vessel 20 (or some combination of the above pretreatment methods). (Coarse straining of a kind known in the art and typically done ahead of pretreatment might be used if the feed is taken directly from a natural body of water or from a source with excessive undissolved solids.) If any pre-mixing of the feed water stream 15 and heating medium 23 occurs outside of the liquid pool zone 21 (see e.g. mixer 17 in
[0058] Pre-mixing may also be done to provide a relatively small amount of vaporization to enhance the pre-mixing and accelerate the fluid 15 when it enters the liquid pool 21. The amount of vaporization that occurs may be less than that which occurs in the liquid pool 21. For example, during normal (non-turndown) operations no more than about 20% or about 5% of the volatile components in the stream 15 may vaporize during pre-mixing. If the amount of vaporization does exceed that of the liquid pool, during normal operations vaporization during pre-mixing should not exceed about 80% or about 90% of the volatile components. Limiting the amount of vaporization during pre-mixing helps avoid the design challenges and scaling and plugging problems associated with the mixing zone of the prior art (see Background).
[0059] The heating medium 23 and feed water stream 15 can form a heterogeneous or homogeneous mixture (in the case of total or partial vaporization of water) or a heterogeneous mixture (in the case of partial vaporization of water) when residing within the liquid pool zone 21. Additionally, the density of the heating medium 23 can be greater than, less than, or (in the case of total vaporization) equal to that of the feed water stream 15.
[0060] The method can also include removing a portion 35 of the heating medium 23 residing in the liquid pool zone 21 of the vessel 20; raising a temperature of the removed portion or stream 35 to produce a heated recycle stream 45; and routing the heated recycle stream 45 back to the liquid pool zone 21. The removed stream 35 can also be routed to a separator 47 to produce a heating medium stream 50 substantially unvaporized portion-free or with a reduced unvaporized portion 25. Once stream 50 is heated (by heating medium heater/steam condenser 41 and secondary heater 60 arranged to transfer heat to the stream 50), it can be returned to the liquid pool zone 21 as the heated recycled stream 45.
[0061] An embodiment of a system to desalinate a feed water stream includes a vessel 20 arranged to contact a feed water stream 15 exiting an upstream process and route the feed water stream 15 into a heating medium 23 residing within the liquid pool zone 21 of the vessel 20. The interior volume 24 of the vessel 20 does not include a stripping zone for the removal of unvaporized portion 25. The heating medium 23 is less volatile than the feed water stream 15 and maintained at an operating temperature determined by vaporization requirements. The partially vaporized volatile components 29 of the feed water stream 15 migrate to the vapor separation zone 27 of the vessel 20.
[0062] A pump-around loop 40 is arranged to receive a portion 35 of the mixed heating medium 23 along with the non-volatile (dissolved and undissolved) and unvaporized water 25 of the feed water stream 15 that have moved into the heating medium 23 and then return the portion 35 back to the liquid pool zone 21 as a heated recycle stream 45. The pump-around loop 40 of the system can also include a heating medium heater/steam condenser 41 and secondary heater 60, as well as a separator 47 arranged upstream of the heating medium heater/steam condenser 41, so that a substantially unvaporized portion-free or reduced unvaporized portion heating medium stream 45 is being returned to the vessel 20.
[0063] Prior to contacting the heating medium 23, the feed water stream 15 may not be mixed with the heating medium 23 outside of the liquid pool zone 21 of the vessel 20. If any pre-mixing of the stream 15 and heating medium 23 occurs, the mixing may be at a level below that required for vaporization of the volatile components 29. Pre-mixing may also be done to provide a relatively small amount of vaporization to enhance the pre-mixing and accelerate the fluid when it enters the liquid pool 21.
[0064] The system includes a compressor 70 arranged to receive at least a portion of the steam 30. The system also includes a heating medium heater/steam condenser 41 arranged to receive at least a portion of the steam 30 exiting the vapor separation zone 27 of the vessel 20. Heat recovered from condensing the pressurized stream 75 can be used in the pump-around loop 40 to raise the temperature of the recycle stream 45.
[0065] Although the preceding description has been described herein with reference to particular means, materials, and embodiments, it is not intended to be limited to the particulars disclosed herein; rather, it extends to all functionally equivalent structures, methods, and uses, such as are within the scope of the appended claims.