EVAPORATOR OF A WORKING FLUID FOR AN OTEC PLANT COMPRISING A COVER
20220316696 · 2022-10-06
Inventors
Cpc classification
F28D7/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/30
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
F28F2009/224
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B27/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F25/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03G7/05
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/0224
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D9/0006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F22B27/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03G7/05
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention relates to an evaporator of a working fluid for an OTEC plant, comprising an elongated evaporator body extending along a main axis, a bundle of evaporators transporting hot water, a sprinkling system arranged in an upper part of the evaporator body, a system for evacuating the fluid in gaseous state and a guide system for the fluid in gaseous state towards the evacuation system. The guide system comprises an elongated cover extending along the main axis, covering the bundle of evaporators and the sprinkling system, and two partitioning means which are arranged at each end of the evaporator body and form on each of these ends a sealed connection between the outer surface of the cover and the inner surface of the evaporator body.
Claims
1. An evaporator of a working fluid for an OTEC plant, comprising: an evaporator body of elongated shape, extending along a main axis between two ends, defining an inner surface, an upper part, an intermediate part and a lower part and comprising two side walls extending between the lower part and the upper part on either side of the main axis; a bundle of evaporators for transporting hot water and extending along the main axis; a sprinkling system arranged in the upper part of the evaporator body above the bundle of evaporators and able to sprinkle the working fluid in liquid state onto the bundle of evaporators, in order to transform the working fluid into a gaseous state; a system for evacuating the working fluid in gaseous state, arranged in the upper part of the evaporator body above the sprinkling system; and a system for guiding fluid in gaseous state to the system for evacuating; wherein the guide system comprises: a cover of elongated shape, extending along the main axis, covering the bundle of evaporators and the sprinkling system in the upper and intermediate parts of the evaporator body, and defining an outer surface, a longitudinal opening being formed in the lower part of the evaporator body between each of the sidewalls and the cover; and two partitions arranged at each end of the evaporator body and forming a sealed connection at each of these ends, between the outer surface of the cover and the inner surface of the evaporator body.
2. The evaporator according to claim 1, wherein each partition takes the form of a “U”-shaped cut-out plate defining an inner contour in contact with the cover, an outer contour in contact with the inner surface of the evaporator body, and a partition extending between the inner contour and the outer contour.
3. The evaporator according to claim 2, wherein the partition of each of said plates is perpendicular to the main axis.
4. The evaporator according to claim 2, wherein the outer contour and the inner contour of one of said plates are sealed to the inner surface of the evaporator body and to the outer surface of the cover, respectively.
5. The evaporator according to claim 2, wherein the inner contour or the outer contour of one of said plates is sealed to the outer surface of the cover or to the inner surface of the evaporator body and the other contour of this plate is sealed to the inner surface of the evaporator body or the outer surface of the cover.
6. The evaporator according to claim 5, wherein the other contour is able to slide along the inner surface of the evaporator body or along the outer surface of the cover.
7. The evaporator according to claim 5, wherein the other contour comprises a seal providing a seal between the free contour and the corresponding surface.
8. The evaporator according to claim 1, wherein the cover has a “U” shaped bent sheet.
9. The evaporator according to claim 8, wherein the cover defines a substantially planar part facing each sidewall.
10. The evaporator according to claim 1, wherein a channel for passage of the working fluid in gaseous state, between each longitudinal opening and the evacuation system, is delimited by the outer surface of the cover, the inner surface of the evaporator body and the two partitions.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0031] These features and advantages of the invention will become apparent from the following description, given only as a non-limiting example, and made with reference to the appended drawings, in which:
[0032]
[0033]
[0034]
DETAILED DESCRIPTION
[0035] In fact, an evaporator 10 for an OTEC plant has been shown in
[0036] With reference to
[0037] At the first end 12, the evaporator body 11 has a substantially conical shape 14 opening into a substantially cylindrical shape 15 defining the second end 13.
[0038] The evaporator body 11 is pressurized, for example, and may also be referred to in the terminology used in the prior art as a shell.
[0039] In each cross-section of the cylindrical part 15 (one of which is visible in
[0040] The evaporator body 11 further defines an inner surface 16 delimiting the interior of said body and two side walls 17A, 17B.
[0041] As visible in
[0042] Referring again to
[0043] The sprinkling system 24 is arranged in the upper part PS of the evaporator body 11 and comprises a supply network and a plurality of sprinkling nozzles arranged on this supply network.
[0044] In particular, in the example of
[0045] Within the evaporator body 11, each supply pipe 30 extends along the main axis X above the bundle of evaporators 25. Thus, in
[0046] Furthermore, as can be seen in cross-section in
[0047] The opening of this arc of a circle 31 is between 80° and 160°, for example.
[0048] In addition, the supply pipes 30 are evenly distributed along this arc, for example.
[0049] Thus, in the example shown in
[0050] The bundle of evaporators 25 takes the form of a plurality of pipes passing through the cylindrical part 15 of the body 11 along the main axis X. These pipes are a few thousand in number, for example, such as 3000 in number. Thus, for reasons of legibility of
[0051] The pipes of the bundle of evaporators 25 transport water, called warm water, i.e. surface water. This water circulates in the bundle of evaporators 25 along the main axis X, from left to right in the example of
[0052] Thus, when a working fluid sprinkled via the sprinkling system 24 comes into contact with the pipes of the bundle 25, it vaporizes.
[0053] The channeling system 26 allows the non-vaporized working fluid to be channeled back into the evaporator 10 via the sprinkling system 24, for example.
[0054] This channeling system 26 is arranged in the lower part PI of the evaporator body 11, below the bundle of evaporators 25.
[0055] The evacuation system 27 is used to evacuate steam produced by the bundle of evaporators 25 and to guide it to a (non-illustrated) turbine, for rotation.
[0056] This evacuation system 27 is arranged in the upper part PS of the evaporator body 11, above the sprinkler system 24 and thus above the bundle of evaporators 25.
[0057] The evacuation system 27 takes the form of a plurality of channels passing through the evaporator body 11 in the upper part thereof, for example.
[0058] The guide system 28 is used to guide the working fluid in a gaseous state to the evacuation system 27.
[0059] For this purpose, the guide system 28 comprises a cover 40 and at least two partitioning means 42, 43, as can be seen in
[0060] The cover 40 is elongated, extends along the main axis X and covers the bundle of evaporators 25 and the sprinkling system 24 in the upper part PS and intermediate part PM of the evaporator body 11.
[0061] In particular, in the illustrated example, the cover 40 has a “U”-shaped bent sheet metal. This sheet metal defines an outer surface 46 which, in turn, defines at least two substantially planar parts 47A, 47B, visible in
[0062] More generally, according to other embodiments, the cover 40 has any other shape covering the sprinkling system 24 and the evaporator bundle 25.
[0063] Each of these planar parts 47A, 47B is arranged opposite one of the side walls 17A, 17B of the evaporator body 11.
[0064] In the simplified example of
[0065] According to other embodiments, these parts 47A, 47B may have any other shape chosen in particular depending on the shape of the evaporator body 11. Thus, for example, when the evaporator body 11 has a conical shape at its ends, the parts 47A, 47B may follow this shape.
[0066] The cover 40 is arranged away from the inner surface 16 of the evaporator body 11 so as to form a channel for the passage of steam.
[0067] This channel opens in the lower part PI of the evaporator body 11 onto two longitudinal openings 49A, 49B, formed between the cover 40 and the side walls 17A, 17B, and in the upper part PS of the evaporator body 11, on the evacuation system 27.
[0068] In particular, each longitudinal opening 49A, 49B is formed between one of the side walls 17A, 17B and the planar part 47A, 47B of the cover 40 corresponding to that side wall 17A, 17B.
[0069] Each of the partitioning means 42, 43 takes the form of a plate cut out in a “U” shape, defining an inner contour 52, 53 respectively, an outer contour 62, 63 respectively and a partition 72, 73 respectively.
[0070] Each inner contour 52, 53 is in sealed contact with the outer surface 46 of the cover 40 and each outer contour 62, 63 is in sealed contact with the inner surface 16 of the evaporator body 11.
[0071] Each wall 72, 73 extends between the corresponding inner contour 52, 53 and outer contour 62, 63, substantially perpendicular to the main axis X, for example.
[0072] Thus, the walls 72, 73 define and complete the channel for passage of steam formed between the outer surface 46 of the cover 40 and the inner surface 16 of the evaporator body 11.
[0073] The cover 40 is held away from the inner surface 16 of the evaporator body 11 by the partition means 43.
[0074] In particular, this partitioning means 43 corresponding to the end 13 of the evaporator body 11 is sealed between the cover 40 and the evaporator body 11, for example.
[0075] In other words, in this case, the inner contour 53 of this means 43 is sealed to the outer surface 46 of the cover 40 and the outer contour 63 is sealed to the inner surface 16 of the evaporator body 11. This attachment is made by angle welding, for example.
[0076] The partition means 42 corresponding to the end 12 of the evaporator body 11 is sealed to the evaporator body 11 and is in free contact with the cover 40.
[0077] In this case, the outer contour 62 is sealed by welding, for example, to the inner surface 16 of the evaporator body 11 and the inner contour 52 is in free contact with the outer surface 46 of the cover 40. In this case, the inner contour 52 is said to be free contour.
[0078] Thus, during longitudinal expansions of the cover 40, the inner contour 52 is able to slide along the outer surface 46 of the cover 40 along the main axis X.
[0079] The seal between the inner contour 52 and the outer surface 46 of the cover 42 is ensured by a metal-to-metal type sealing contact, for example, or by a seal provided for this purpose between these parts.
[0080] In a variant, the inner contour 52 of the partitioning means 42 is fixed to the outer surface 46 of the cover 40 and the outer contour 62 is thus in free contact with the inner surface 16 of the evaporator body 11.
[0081] In this case, the outer contour 62 is thus said to be a free contour, capable of sliding along the inner surface 16 of the evaporator body 11 and ensuring sealing either by metal-to-metal contact or through a seal provided for this purpose with this surface 16.
[0082] Of course, it is possible to provide a partitioning means with a free contour (analogous to the partitioning means 42) at the end 13 of the evaporator body 11 and a partitioning means with the two contours fixed (analogous to the partitioning means 43) at the end 12 of the evaporator body 11. It is also possible to arrange these partitioning means in different parts of the evaporator body 11 than the ends 12, 13.
[0083] It is then conceivable that the present invention has a number of advantages.
[0084] Indeed, in the evaporator according to the invention, the partitioning means of the cover, used to isolate the fluid in a liquid state with the steam makes it possible for the cover to expand along the main axis independently of the evaporator body.
[0085] Thus, the seal of the steam guide channel is not broken, which allows the fluid in liquid state to be effectively isolated from the fluid in gaseous state.
[0086] It is thus clear that the guidance system within the meaning of the invention makes it possible to decorrelate the sealing function with expansion of the intersection function of the shapes of the cover and the evaporator body, particularly in its conical part.
[0087] This then makes it possible to increase the efficiency of the turbine and more generally, the efficiency of the OTEC plant.