Single bi-temperature thermal storage tank for application in solar thermal plant
09657966 ยท 2017-05-23
Assignee
Inventors
- Robert Zachary Litwin (Canoga Park, CA, US)
- David Wait (Canoga Park, CA, US)
- Robert T. Lancet (Canoga Park, CA, US)
Cpc classification
Y02E60/14
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
F28D2020/0047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2020/0091
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/40
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
Y02E70/30
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
F24S60/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D20/0039
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2265/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
Thermocline storage tanks for solar power systems are disclosed. A thermocline region is provided between hot and cold storage regions of a fluid within the storage tank cavity. One example storage tank includes spaced apart baffles fixed relative to the tank and arranged within the thermocline region to substantially physically separate the cavity into hot and cold storage regions. In another example, a flexible baffle separated the hot and cold storage regions and deflects as the thermocline region shifts to accommodate changing hot and cold volumes. In yet another example, a controller is configured to move a baffle within the thermocline region in response to flow rates from hot and cold pumps, which are used to pump the fluid.
Claims
1. A tank comprising: a wall having a portion providing a cavity; wherein the tank has a horizontal cross-section defining a cross-sectional area, the cross-section accommodating a baffle, the baffle configured to be located in a thermocline region of a fluid within the cavity and vertically separating the cavity into first and second regions, and configured to permit substantially limited flow between the first region and the second region wherein the baffle has a flow area comprising one or more aperture(s), wherein the flow area is configured to permit fluid flow between the first and second regions, the flow area corresponding to less than 1% of the cross-sectional area; and a skirt attached to the baffle, the skirt having a geometry based at least in part on the portion, the skirt proximate to the portion.
2. The tank of claim 1, wherein the portion defines at least a majority of a vertical portion of the wall.
3. The tank of claim 1, wherein the baffle substantially separates the first and second regions respectively into a first volume and a second volume.
4. The tank of claim 3, wherein a hot fluid is in the first volume and a cold fluid is in the second volume.
5. The tank of claim 4, wherein a mixing of the hot fluid and the cold fluid is limited by the baffle.
6. The tank of claim 5, wherein the baffle includes plural apertures configured to permit substantially limited flow between the first volume and the second volume.
7. A tank comprising: a wall having a portion providing a cavity; wherein the tank has a horizontal cross-section defining a cross-sectional area, the cross-section accommodating a membrane, the membrane configured to be located in a thermocline region of a fluid within the cavity and vertically separating the cavity into first and second regions, and configured to permit substantially limited flow between the first region and the second region wherein the membrane has a flow area comprising one or more aperture(s), wherein the flow area configured to permit fluid flow between the first and second regions, the flow area corresponding to less than 1% of the cross-sectional area; and a skirt attached to the membrane, the skirt having a geometry based at least in part on the portion, the skirt proximate to the portion.
8. The tank of claim 7, wherein the portion is a vertical portion.
9. The tank of claim 7, wherein the membrane substantially separates the first and second regions respectively into a first volume and a second volume.
10. The tank of claim 9, wherein a hot fluid is in the first volume and a cold fluid is in the second volume.
11. The tank of claim 10, wherein a mixing of the hot fluid and the cold fluid is limited by the membrane.
12. The tank of claim 11, wherein the membrane includes plural apertures configured to permit substantially limited flow between the first volume and the second volume.
13. A tank comprising: a wall having a portion providing a cavity; a baffle configured to be located in a thermocline region of a fluid within the cavity and vertically separating the cavity into first and second regions, and configured to permit substantially limited flow between the first region and the second region; a skirt attached to the baffle, the skirt having a geometry based at least in part on the portion, the skirt proximate to the portion; and wherein the tank has a width and height, and the width is greater than the height; wherein the tank has a horizontal cross-section defining a cross-sectional area, the cross sectional accommodating the baffle, wherein the baffle has a flow area comprising one or more aperture(s), wherein the flow area is configured to permit fluid flow between the first and second regions, the flow area corresponding to less than 1% of the cross-sectional area.
14. A tank comprising: a wall having a portion providing a cavity; a membrane configured to be located in a thermocline region of a fluid within the cavity and vertically separating the cavity into first and second regions, and configured to permit substantially limited flow between the first region and the second region; a skirt attached to the membrane, the skirt having a geometry based at least in part on the portion, the skirt proximate to the portion; and wherein the tank has a width and height, and the width is greater than its height; wherein the tank has a horizontal cross-section defining a cross-sectional area, the cross-section accommodating the membrane, wherein the membrane has a flow area comprising one or more aperture(s), wherein the flow area is configured to permit fluid flow between the first and second regions, the flow area corresponding to less than 1% of the cross-sectional area.
15. The tank of claim 1 configured for use with a fluid at a temperature of at least 288 C.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) These and other features of the disclosure can be best understood from the following specification and one or more drawings, the following of which is a brief description.
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DETAILED DESCRIPTION
(12) Referring to
(13) Molten salt or other thermal transfer fluid is communicated to and from a single bi-temperature thermal storage tank or thermocline storage tank 27. The thermocline storage tank 27 includes a cold storage region 28 and a hot storage region 30 in a common tank. Cold salt, which is around 550 F. (288 C.) in one example, is communicated from the cold storage region 28 through the central receiver system 22 where it is heated. The hot thermal transfer fluid, in the example, salt at around 1050 F. (566 C.), is then communicated to the hot storage region 30. When power is required, the hot molten salt is pumped to a steam generator system 32 that produces steam. The steam drives a steam turbine/generator 34 that creates electricity for communication to a power grid 38. The salt is returned to the cold storage tank system 27 (from the steam generator system 32), where it is stored and eventually reheated in the central receiver system 22. It should be understood that although a particular component arrangement is disclosed in the illustrated embodiment, any arrangement that utilizes a single bi-temperature thermal storage tank would also benefit from the disclosed examples.
(14) A thermocline storage tank is based on the principle that hot fluid in a quiescent environment tends to rise and stay above colder fluid in the same tank. This phenomenon is also known as thermal stratification, which is graphically illustrated in
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(16) The flows in and out of the hot and cold pools disturb the inherent quiescent nature of the thermal stratification. The baffle assembly 46 limits mixing of fluid between the cold and hot storage regions 28, 30 by substantially physically separating the cavity 45 into the cold and hot storage regions 28, 30 as well as reducing thermal conductivity between the fluids. The baffle assembly 46 may include openings or perforations 58 in the baffles, as illustrated by the first baffle 50 in
(17) In one example, one or more immersion heaters 62 may used to heat the hot storage region fluid, and trace heaters 64 may be used to heat the cold storage region fluid. Cold salt is pumped from one or more cold salt pumps 68 that withdraw fluid from the cold storage region 38 through a cold salt supply line 74. The cold salt supply line 74 extends though apertures 75 in the baffle assembly 46. The salt is heated in the receiver system 22 to 1050 F. (566 C.) and re-enters the tank through a hot salt return line 72, discharging to the hot storage region 30. Salt is withdrawn from the hot storage region 30 at 1050 F. (566 C.) using one or more hot salt pumps 66 through a hot salt supply line 70 and flows to the steam generator 32 before returning through the cold salt return line 76. The cold salt return line 76 extends through apertures 79 in the baffle assembly 46 to the cold storage region 30. The cold salt return line 76 is insulated using insulation 77 as it passes through the hot upper pool to minimize parasitic heat exchange.
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(19) The baffle 146 includes a perimeter 156 that that may be substantially sealed and affixed relative to the wall 41 to separate the cavity 45 into cold and hot cavities, respectively providing the cold and hot storage regions 28, 30. In the example, the portion 43 of the wall 41 is integrated with and provides the skirt 44, such that the portion 43 provides at least a majority of the vertical portion of the wall 41. In one example, the aperture 75 provides a flow area between the cold salt supply line 74 and the flexible baffle 146 is configured to permit limited fluid flow between the hot and cold cavities. The flow area generally corresponds to less than 1% of a horizontal cross-section through the tank cavity at the thermocline region. Alternatively, the cold pumps can be relocated within a small cold salt region along one side of the wall 41.
(20) Another example storage tank is shown in
(21) One or more pumps 66 (hot supply), 68 (cold supply), 92 (hot return), 94 (cold return) are used to pump fluid into and out of the cold and hot storage regions 28, 30, which shifts the thermocline region. The location of the thermocline region can be determined by a controller 96, which may communicate with the pumps 66, 68, 92, 94 to determine their respective flow rates. The controller 96 is configured or programmed to adjust the vertical position of the baffle 246 based upon at least one pump flow rate to maintain the baffle 246 in the thermocline region.
(22) Although example embodiments have been disclosed, a worker of ordinary skill in this art would recognize that certain modifications would come within the scope of the claims. For that reason, the following claims should be studied to determine their true scope and content.