Steam separator and nuclear boiling water reactor including the same
10847273 ยท 2020-11-24
Assignee
Inventors
- Phillip Glen Ellison (Wilmington, NC, US)
- Adrian M. Mistreanu (Wilmington, NC, US)
- Bobby Glen Malone (Wilmington, NC, US)
- John S. Bennion (Wilmington, NC, US)
- Bulent Alpay (Wilmington, NC, US)
- Michael L. James (Wilmington, NC, US)
Cpc classification
B01D45/16
PERFORMING OPERATIONS; TRANSPORTING
Y02E30/30
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
International classification
Abstract
A steam separation system includes a standpipe configured to receive a gas-liquid two-phase flow stream and a diffuser configured to receive the gas-liquid two-phase flow stream from the standpipe. The diffuser includes a swirler configured to separate the gas-liquid two-phase flow stream. The swirler includes a plurality of swirler vanes and a straightener structure. The straightener structure includes a hub. The plurality of swirler vanes is mounted radially around the hub, and a straightener extends in an upward direction from the hub. The system also includes a separation barrel configured to receive the gas-liquid two-phase flow stream from the swirler. The separation barrel includes a rifled channel having orifices along an inner surface thereof. The plurality of swirler vanes is tuned with the rifled channel, such that an angle of each of the plurality of vanes corresponds to an angle of the rifled channel.
Claims
1. A steam separation system comprising: a standpipe configured to receive a gas-liquid two-phase flow stream; a diffuser configured to receive the gas-liquid two-phase flow stream from the standpipe, the diffuser including a swirler configured to separate the gas-liquid two-phase flow stream, the swirler including, a plurality of swirler vanes, and a straightener structure including, a hub, the plurality of swirler vanes mounted radially around the hub, and a straightener extending in an upward direction from the hub; and a separation barrel configured to receive the gas-liquid two-phase flow stream from the swirler, the separation barrel including a rifled channel having orifices along an inner surface thereof, the plurality of swirler vanes being tuned with the rifled channel, such that an angle of each of the plurality of vanes corresponds to an angle of the rifled channel, and the straightener structure is configured to direct the gas of the gas-liquid two-phase flow stream towards a center of the separation barrel.
2. The steam separation system of claim 1, wherein the orifices of the rifled channel are configured to collect the liquid of the gas-liquid two-phase flow stream.
3. The steam separation system of claim 1, wherein the rifled channel of the separation barrel has a variable pitch.
4. The steam separation system of claim 1, wherein the straightener is cone-shaped, and the hub has a cylindrical shape.
5. The steam separation system of claim 1, wherein the inner surface of the separation barrel and an inner surface of the standpipe are coated with an anti-fouling agent.
6. The steam separation system of claim 5, wherein the anti-fouling agent includes TiO.sub.2.
7. The steam separation system of claim 1, wherein the standpipe includes an inlet having a bellmouth shape.
8. The steam separation system of claim 1, wherein the diffuser is a first diffuser and the system further comprises: a second diffuser connected to the separation barrel, the second diffuser configured to mix the gas-liquid two-phase flow stream exiting the separation barrel.
9. The steam separation system of claim 1, further comprising: a drain channel configured to receive the gas-liquid two-phase flow stream from the separation barrel, the drain channel configured to apply suction to the gas-liquid two-phase flow stream prior to the gas-liquid two-phase flow stream entering the orifices of the drain channel.
10. The steam separator of claim 1, wherein the orifices are located only in the rifled channel.
11. A nuclear boiling water reactor comprising: a reactor pressure vessel; a core in the reactor pressure vessel; and a plurality of steam separation systems according to claim 1, the plurality of steam separation systems arranged above the core in the reactor pressure vessel.
12. The nuclear boiling water reactor of claim 11, wherein the orifices of the rifled channel are configured to collect the liquid of the gas-liquid two-phase flow stream.
13. The nuclear boiling water reactor of claim 11, wherein the rifled channel of the separation barrel has a variable pitch.
14. The nuclear boiling water reactor of claim 11, wherein the straightener is cone-shaped, and the hub has a cylindrical shape.
15. The nuclear boiling water reactor of claim 11, wherein the inner surface of the separation barrel and an inner surface of the standpipe are coated with an anti-fouling agent.
16. The nuclear boiling water reactor of claim 15, wherein the anti-fouling agent includes TiO.sub.2.
17. The nuclear boiling water reactor of claim 11, wherein the standpipe includes an inlet having a bellmouth shape.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The various features and advantages of non-limiting example embodiments herein may become more apparent upon review of the detailed description in conjunction with the accompanying drawings. The accompanying drawings are merely provided for illustrative purposes and should not be interpreted to limit the scope of the claims. The accompanying drawings are not to be considered as drawn to scale unless explicitly noted. For purposes of clarity, various dimensions of the drawings may have been exaggerated.
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DETAILED DESCRIPTION
(6) It should be understood that when an element is referred to as being on, connected to, coupled to, or covering another element, it may be directly on, connected to, coupled to, or covering the other element or intervening elements that may be present. In contrast, when an element is referred to as being directly on, directly connected to, or directly coupled to another element, there are no intervening elements present. Like numbers refer to like elements throughout the specification. As used herein, the term and/or includes any and all combinations of one or more of the associated listed items.
(7) It should be understood that, although the terms first, second, third, etc. may be used herein to describe various elements, components, regions, layers and/or sections, these elements, components, regions, layers, and/or sections should not be limited by these terms. These terms are only used to distinguish one element, component, region, layer, or section from another region, layer, or section. Thus, a first element, component, region, layer, or section discussed below could be termed a second element, component, region, layer, or section without departing from the teachings of example embodiments.
(8) Spatially relative terms (e.g., beneath, below, lower, above, upper, and the like) may be used herein for ease of description to describe one element or feature's relationship to another element(s) or feature(s) as illustrated in the figures. It should be understood that the spatially relative terms are intended to encompass different orientations of the device in use or operation in addition to the orientation depicted in the figures. For example, if the device in the figures is turned over, elements described as below or beneath other elements or features would then be oriented above the other elements or features. Thus, the term below may encompass both an orientation of above and below. The device may be otherwise oriented (rotated 90 degrees or at other orientations) and the spatially relative descriptors used herein interpreted accordingly.
(9) The terminology used herein is for the purpose of describing various embodiments only and is not intended to be limiting of example embodiments. As used herein, the singular forms a, an, and the are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms includes, including, comprises, and/or comprising, when used in this specification, specify the presence of stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof.
(10) Example embodiments are described herein with reference to cross-sectional illustrations that are schematic illustrations of idealized embodiments (and intermediate structures) of example embodiments. As such, variations from the shapes of the illustrations as a result, for example, of manufacturing techniques and/or tolerances, are to be expected. Thus, example embodiments should not be construed as limited to the shapes of regions illustrated herein but are to include deviations in shapes that result, for example, from manufacturing.
(11) Unless otherwise defined, all terms (including technical and scientific terms) used herein have the same meaning as commonly understood by one of ordinary skill in the art to which example embodiments belong. It will be further understood that terms, including those defined in commonly used dictionaries, should be interpreted as having a meaning that is consistent with their meaning in the context of the relevant art and will not be interpreted in an idealized or overly formal sense unless expressly so defined herein.
(12)
(13) A cylindrical core shroud 8, which is concentric with the pressure vessel 6, is installed at a lower portion in the pressure vessel 6. A core lower plenum 10 is formed under the shroud 8 in the pressure vessel 6. A core 7 is disposed above this upper plenum 10 and surrounded by the shroud 8. The core 7 includes nuclear fuel, which generates heat turning the light water of the reactor into steam. There is also a core upper plenum 11c above the core 7. A shroud head 12a is disposed above the upper plenum 11c. It is to be noted that an annular space 9 is formed between the pressure vessel 6 and the shroud 8, and this functions as a circulation path for the light water.
(14) A prescribed number of holes (not shown) through which the coolant passes are provided in the shroud head 12a. The plurality of steam separators 1000 are inserted into these holes and are aligned in parallel. The flow paths which join the core 7 and the steam separator 1000 are connected via the upper plenum 11c. Also, a steam dryer 13 is provided above the steam separators 1000. A feedwater inlet nozzle 17 and a steam outlet nozzle 15 are provided at the side wall of the pressure vessel 6. Internal pumps 90 are provided at the lower portion of the reactor pressure vessel 6.
(15) In the nuclear BWR 1A, the steam generated in the core 7 flows in each of the steam separators 1000 mounted on the shroud head 12a via the upper plenum 11c as a gas-liquid two-phase flow including the light water. In the steam separators 1000, the introduced gas-liquid two-phase flow stream passes through in an upward direction.
(16) The steam separators 1000 supply steam containing moisture that could not be removed to the steam dryer 13 positioned above the steam separators 1000.
(17) The steam (saturated steam) from which moisture is further removed by the steam dryer 13 is exhausted from the steam outlet nozzle 15 and supplied to the turbine 2. This steam drives the turbine 2, which rotates a generator (not shown) joined to the turbine 2, and thereby power is generated. The steam exhausted from the turbine 2 is condensed at the condenser 3 and becomes condensed water. The condensed water, that is, the cooling water (light water) is supplied to a feedwater heater 5 by a feedwater pump 4. The cooling water heated by the feedwater heater 5 is introduced to the pressure vessel 6 from the feedwater nozzle 17.
(18) Meanwhile, the water separated by the steam separator 1000 is mixed with the cooling water supplied from the feedwater inlet nozzle 17 and descends the annular space 9 and is introduced to the core 7 via the lower plenum 10. At this time, the cooling water supplied to the core 7 is pressurized by the internal pump 90.
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(20) In an example embodiment, the steam separator 1000 includes a standpipe 100, a first diffuser 150, a swirler 200 including a plurality of vanes 220, a straightener structure 300, a separation barrel 400, a skirt 600, a drain channel 700 and a second diffuser 800.
(21) The standpipe 100 is configured to introduce a gas-liquid two-phase flow stream (FS), which is indicated by the arrow in
(22) The inlet 110 of the standpipe 100 has a bellmouth shape, and the standpipe 100 has a cylindrical shape therebetween. The bellmouth shape of the inlet 110 mitigates or prevents a drop in pressure of the gas-liquid two-phase FS. The bellmouth shape of the inlet 110 has a variable curvature radii, which may be tuned to boundary conditions of the gas-liquid two-phase FS (e.g., flow, pressure and steam quality). The bellmouth shape of the inlet 110 may be modified based on characteristics of the gas-liquid two-phase FS entering the standpipe 100.
(23) The standpipe 100 may be coated with a material that contributes to the mitigation or prevention of a drop in pressure of the gas-liquid two-phase FS. The coating material may be TiO.sub.2, which is described in U.S. Patent Publication No. 2010/0055308, the entire contents of which are incorporated herein by reference.
(24) The first diffuser 150 connects to the upper end surface of the standpipe 100 and forms a flow path. For example, the first diffuser 150 is welded to the standpipe 100. The interior of the first diffuser 150 is equipped with a swirler 200 and a straightener structure 300. The swirler 200 includes a plurality of swirler vanes 220 which are mounted radially around a hub 310 of the straightener structure 300. The straightener structure 300 is an integral structure that includes the hub 310, and a straightener 320 extending in an upward direction from the hub 310. The hub 310 has a cylindrical shape and the straightener 320 is at an upper surface of the hub and may be cone-shaped. However, example embodiments are not limited thereto.
(25) The outer edge of each of the plurality of swirler vanes 220 is connected to the inner surface of the first diffuser 150. As a result, the plurality of swirler vanes 220 form the flow path in the space formed by the inner surface of the first diffuser 150, the straightener structure 300 and the plurality of swirler vanes 220.
(26)
(27) In
(28) The swirler 200 is configured to receive the gas-liquid two-phase FS from the standpipe 100 and separate the liquid of the gas-liquid two-phase FS. The swirler 200 separates the gas-liquid two-phase FS at the axial center vicinity of the first diffuser 150 into steam with a relatively small drop in pressure.
(29) The plurality of swirler vanes 220 are tuned to a rifled channel 410 of the separation barrel 400 which will be described later. For example, the angle of the plurality of swirler vanes 220 is designed to correspond with the angle of the rifled channel 410 of the separation barrel 400 such that the system has a minimum or reduced drop in pressure and maximum or increased separating efficiency (reduced carry-over).
(30) A shape of the plurality of swirler vanes 220 may be modified based on characteristics of the gas-liquid two-phase FS at the entrance to the standpipe 100 (steam-moisture content, flow distribution based on the position of the steam separation system in the BWR and the flow direction in relation to the shroud head 12a (see
(31) The straightener 320 extends in an upward direction from the hub 310 of the swirler 200 within the first diffuser 150. The straightener 320 is configured to receive the gas-liquid two-phase FS from the swirler 200, and to direct the gas of the gas-liquid two-phase FS to the axial center vicinity of the first diffuser 150. By directing the gas towards the center of the first diffuser 150, the straightener 320 mitigates or prevents the drop in pressure of the gas-liquid two-phase FS while enhancing moisture separation.
(32) Returning to
(33) Inner walls 420 of the separation barrel 400 may be coated with an anti-fouling agent in order to minimize or reduce a loss in surface friction. The anti-fouling agent may be TiO.sub.2, which is described in U.S. Patent Publication No. 2010/0055308, the contents of which are incorporated herein by reference.
(34) The separation barrel 400 includes a rifled channel 410, a skirt 600, and a drain channel 700. The rifled channel 410 forms a rifled twist shape on inner walls 420 of the separation barrel 400. The rifled channel 410 is tuned with the plurality of swirler vanes 220. The rifled channel 410 separates the liquid from the gas-liquid two-phase FS and directs the liquid to the drain channel 700, thereby minimizing or reducing the re-entrainment of the separated liquid.
(35) The gas-liquid two-phase FS flows through the separation barrel 400 contacting the rifled channel 410 having the rifled twist shape on the inner walls 420 of the separation barrel, separates the liquid contacting the inner walls 420 from the gas-liquid two-phase FS and directs the liquid to the drain channel 700. The swirler 200 centrifugally separates the liquid from the gas-liquid two-phase FS into droplets that attach to the inner walls 420 of the separation barrel 400 and the gas in the gas-liquid two-phase FS flows to the center of the separation barrel 400.
(36) The rifled channel 410 on the inner walls 420 of the separation barrel 400 enhances the separating capability on and near the surface of the separation barrel 400 and also enhances the drainage capability of the separation barrel 400 while mitigating or preventing a loss in pressure. The rifled channel 410 will reduce the amount of swirl that needs to be imposed at the inlet 110 of the steam separator 1000, thereby mitigating or preventing a loss in pressure.
(37) A series of orifices 430 on the rifled channel 410 will collect liquid from the gas-liquid two-phase FS and redirect it to the drain channel 700. A greater amount of orifices 430 are located in the portion of the rifled channel 410 closest to the standpipe 100 in order to control the drainage capacity. The shape of the orifices 430 is tuned to the location on the rifled channel 410.
(38) The separated liquid of the gas-liquid two-phase FS is picked up by orifices in the rifled channel 410, and flows down through the drain channel 700. The rifled channel 410 obstructs the drain channel 700, and therefore accelerates the separation of the liquid from the gas-liquid two-phase FS. The pressure drop in the separation barrel 400 creates suction in the space between the separation barrel 400 and the drain channel 700 which is then applied to the gas-liquid two-phase FS prior to the gas-liquid two-phase FS entering the drain channel 700.
(39) A further description of the rifled channel 410 will be made with reference to
(40) In
(41) Returning to
(42) All steam separator components may be made of materials that are known to be acceptable for a nuclear environment. For instance, stainless steel (304, 316, XM-19, or equivalent) may be used.
(43) Example embodiments thus being described, it will be appreciated by one skilled in the art that example embodiments may be varied through routine experimentation and without further inventive activity. Variations are not to be regarded as a departure from the spirit and scope of the example embodiments, and all such modifications as would be obvious to one skilled in the art are intended to be included within the scope of the following claims.