SHELL AND TUBE HEAT EXCHANGER
20210080186 ยท 2021-03-18
Assignee
Inventors
Cpc classification
F28D2021/0059
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/1676
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02P20/52
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
F28D21/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0064
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0075
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/0075
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
Shell and tube apparatus (1) comprising: an outer shell (2); a first tube bundle (3) and a second tube bundle (4) coaxial with each other; a first inner shell (5) and a second inner shell (6); the first inner shell surrounds the first tube bundle and is arranged between said two tube bundles; the second inner shell surrounds the second tube bundle and is arranged in the space between said second tube bundle and the outer shell (2); the first tube bundle (3) operates as a preheater; the second tube bundle (4) operates as a boiler; the coaxial inner shells (5, 6) define a counterflow path for a hot fluid which passes through the shell side.
Claims
1. A shell and tube heat exchanger apparatus comprising: an outer shell, a first tube bundle and a second tube bundle coaxial with each other, wherein: the tubes of said first tube bundle are straight; said second tube bundle is arranged externally around the first tube bundle, and the tubes of said second bundle are U tubes comprising straight outward sections and straight return sections which are parallel to the tubes of the first bundle; the apparatus comprises a first inner shell and a second inner shell, said first inner shell surrounds said first tube bundle and is arranged between said first tube bundle and said second tube bundle; said second inner shell surrounds said second tube bundle and is arranged between said second tube bundle and said outer shell; said first and second tube bundles form a single tube side of the apparatus, which can be passed through by a fluid; the apparatus comprises first inlet and outlet interfaces for a first fluid circulating in the shell side on the outside of the tubes of said first and second tube bundles, and second inlet and outlet interfaces for a second fluid circulating in said tube side; the apparatus is configured such that: the first fluid flows along the shell side passing in sequence through a first space enclosed by the first inner shell and a second space defined between the first inner shell and the second inner shell; the second fluid flows along the tube side passing, in sequence, first through the second tube bundle and then through the first tube bundle.
2. The apparatus according to claim 1, wherein at least one of the first inner shell and the second inner shell comprises a plurality of longitudinal sections connected by removable joints.
3. The apparatus according to claim 1, wherein at least one of the first inner shell and the second inner shell cooperates structurally with at least one tube bundle, resting against at least one baffle of said tube bundle.
4. The apparatus according to claim 1, comprising an inlet for said first fluid communicating with the space defined by the first inner shell inside which the first tube bundle is housed, and said first inner shell comprises passages able to distribute said first fluid in the interspace between the first and second inner shells, the second tube bundle being housed in this interspace such that the first fluid runs over the first tube bundle and the second tube bundle in sequence.
5. The apparatus according to claim 1, wherein the first tube bundle and the second tube bundle operate respectively as boiler and as preheater of the second fluid, the second fluid flowing out from the first tube bundle at least partially evaporated.
6. The apparatus according to claim 5, comprising a plurality of chambers for collecting and distributing the second fluid, arranged so as to: distribute said second fluid, entering the apparatus, into said second tube bundle; collect the second fluid flowing out from the second tube bundle and distribute it in the first tube bundle; collect the at least partially evaporated fluid flowing out from the second tube bundle; separate the steam phase from the liquid phase in said outgoing fluid; reintroduce the liquid phase inside the second tube bundle.
7. The apparatus according to claim 6, wherein said plurality of chambers comprises: a first chamber which receives the second fluid entering the apparatus and which communicates directly with an inlet side of the second tube bundle; a second chamber which is arranged to receive the fluid flowing out from the second tube bundle and which communicates directly with an inlet side of the first tube bundle; a third intermediate chamber which communicates directly with an outlet side of the first tube bundle, collecting an at least partially evaporated flow from said first tube bundle, wherein the third chamber is situated underneath the second chamber and said second chamber and third chamber are divided by a baffle and communicate via a vertical riser tube, so that the effluent of the first tube bundle passes from the third chamber to the second chamber via said riser tube.
8. The apparatus according to claim 7, wherein said riser tube terminates with an end inside the second chamber and said end is situated above the inlet of the first tube bundle, said second chamber thus being able to operate as a gravity separator of the liquid phase and the steam phase contained in the fluid flowing out from the first tube bundle.
9. The apparatus according to claim 8, comprising a first tube plate and a second tube plate, the third intermediate chamber being defined between said two tube plates, and the second tube plate further forming the bottom of the second chamber.
10. The apparatus according to claim 9, wherein the tubes of the first tube bundle are bayonet tubes, each of the bayonet tubes comprising a respective outward tube fixed to said second tube plate and a respective return tube which is coaxial with and on the outside of the outward tube, the return tube being fixed to the first tube plate, each bayonet tube having an inlet of the outward tube which is open towards the second chamber and an outlet of the return tube which is open towards the third intermediate chamber.
11. The apparatus according to claim 9, wherein the tubes of the second tube bundle are U tubes fixed to an outer ring region of said first tube plate.
12. The apparatus according to claim 7, wherein: the apparatus is vertical, the bottom part of the apparatus houses the two coaxial tube bundles, the top part of the apparatus houses the second chamber operating as a steam collection chamber.
13. The apparatus according to claim 12, characterized by natural circulation between the first tube bundle, the intermediate chamber, the riser tube and the second chamber.
14. A method for revamping a chemical plant, in particular a plant for ammonia synthesis, in which: the plant to be revamped comprises a water preheater and a steam generator which use the heat of a process gas as heat source, the method is characterized by replacing both said preheater and said steam generator with a single new apparatus according to claim 1.
15. The method according to claim 14, comprising: redirecting said process gas to a hot gas inlet of said apparatus and redirecting a flow of water, initially directed to said preheater, to a water inlet of said apparatus.
Description
DESCRIPTION OF THE FIGURES
[0058]
[0059]
[0060]
[0061]
[0062]
DETAILED DESCRIPTION
[0063]
[0064] The apparatus 1 essentially comprises the following components: [0065] outer shell 2 [0066] first tube bundle 3 [0067] second tube bundle 4 [0068] first inner shell 5 [0069] second inner shell 6 [0070] first tube plate 7 [0071] second tube plate 8 [0072] head 9 [0073] riser tube 10 [0074] water inlet 11 [0075] steam outlet 12 [0076] hot gas inlet 13 [0077] hot gas outlet 14
[0078] The tube bundles 3 and 4 are arranged coaxially, the bundle 4 being on the outside of the bundle 3.
[0079] The first bundle 3 comprises straight tubes 20 which follow a longitudinal axis A-A of the apparatus 1. In a preferred embodiment said tubes 20 are bayonet tubes 20, as will be explained in detail below. For illustrative clarity,
[0080] The second bundle 4 comprises U tubes with straight outward sections 21 and straight return sections 22 parallel to the tubes 20 of the first bundle. The sections 21 and 22 are connected by curved portions 23 of the U tubes.
[0081] The first inner shell 5 surrounds the first tube bundle 3, being arranged between said first bundle 3 and the second bundle 4.
[0082] The second inner shell 6 surrounds the second tube bundle 4, being arranged between said second tube bundle 4 and the outer shell 2 of the apparatus (
[0083] Preferably, the outer shell 2 and the inner shells 5 and 6 are cylindrical. The inner shells 5 and 6 are coaxial and concentric.
[0084] It can be noted (
[0085] The two tube bundles 3 and 4 form a single tube side. The apparatus is intended to operate as a preheater-boiler; the tube bundle 4 in particular acts as a preheater, while the bundle 3 acts as a boiler. Therefore the water entering via the inlet 11 passes first into the preheating bundle 4 and then into the evaporation bundle 3.
[0086] The shell side of the apparatus comprises the spaces 24 and 25 where the hot gas (heat source) transfers heat respectively to the bundle 3 and the bundle 4. In particular the hot gas first passes through the space 24 and then into the space 25.
[0087] The structure and the operation of the apparatus are now described in greater detail with reference, for easier description, to the tube side and the shell side.
[0088] Tube Side (Water/Steam)
[0089] The first tube plate 7 supports both the tubes 20 of the first bundle 3 and the U tubes 21 of the second bundle 4. In particular, a central region of the plate 7 supports said tubes 20, while a peripheral region of the plate 7, essentially in the form of a ring, supports the tubes 21.
[0090] The following are defined between the first tube plate 7 and the second tube plate 8: a chamber 26 communicating with the water inlet 11 and with an inlet side of the tube bundle 4; a collection chamber 27 for preheated water which communicates with an outlet side of said tube bundle 4; a steam collection chamber 28 which communicates with an outlet side of the first tube bundle 3 (
[0091] A passage 30 connects the water collection chamber 27 with an overlying chamber 31 which is located inside the head 9. Moreover, the riser tube 10 connects said chamber 31 with the steam collection chamber 28.
[0092] A droplet separator (demister) 32 is optionally provided in the top part of the chamber 31, upstream of the steam outlet 12.
[0093] The tubes 20 of the first tube bundle 3 are bayonet tubes with a coaxial structure, which is shown by way of example in
[0094] Each bayonet tube 20 essentially comprises an outward tube 201 and a return tube 202. The outward tube 201 is fixed to the second plate 8 and has an inlet section 203 open towards the upper chamber 31. The return tube 202 is arranged coaxially around the outward tube 201 and is fixed to the first plate 7. Said return tube 202 has an outlet section 204 open towards the said steam collection chamber 28. Said outlet section 204 has an essentially annular form extending around the body of the tube 201.
[0095] The distal end of a tube 20 is shown in
[0096] From the above it can be noted that the apparatus 1 comprises essentially three chambers for the fluid (water or steam) circulating in the tube side:
[0097] a first chamber consists of the chamber 26 which communicates directly with the inlet of the tube bundle 4 as well as with the water inlet 11;
[0098] a second chamber consists of the chamber 31 which is arranged so as to receive the preheated water via the chamber 27 and the passage 30, and which communicates directly with the inlet of the first tube bundle 3, in particular with the inlets 203 of the bayonet tubes 20;
[0099] a third intermediate chamber consists of the chamber 28 which communicates directly with the outlet of the first tube bundle 3, in particular with the outlets 204 of the bayonet tubes 20.
[0100] The third chamber 28 is situated underneath the second chamber 31 in the vertical apparatus. Said second chamber 31 and third chamber 28 are divided by the tube plate 8, which also acts as a dividing wall between the two chambers 28 and 31. A fluid passage between said two chambers is provided by the vertical riser tube 10.
[0101] It should be noted that the inlets 203 of the bayonet tubes are on the bottom of the chamber 31, substantially in the plane defined by the flange 8. The top end 101 of the riser tube 10, instead, is situated at a certain height inside the chamber 31.
[0102] Shell Side (Gas)
[0103] The gas inlet 13 communicates directly with the region 24 of the shell side, passing through the second inner shell 6. Therefore the inlet 13 allows the hot gas to be introduced into the space where the first tube bundle 3 is housed. The gas inlet 13 is positioned on the bottom of the apparatus so as to have a stream of gas directed upwards and countercurrent with respect to the water descending inside the tubes 201.
[0104] The region 25 of the shell side, i.e. the region which is defined between the inner shells 5 and 6 and inside which the preheating tube bundle 4 is located, is further divided up into two passages 251 and 252 by means of dividing walls 44 (
[0105] The passage 251 is defined around the sections 22 (return sections) of the U tubes, while the passage 252 is defined around the outward sections 21 of the tubes.
[0106] The first inner shell 5 comprises first openings 40 which connect the region 26 with said passage 251 of the region 25 (
[0107] The second inner shell 6 comprises second openings 41 (
[0108]
Operation of the Apparatus
[0109] The operating principle of the apparatus may now be described.
[0110] The apparatus essentially operates as a preheater and water boiler, respectively, in the tube bundles 4 and 3 exchanging heat in counterflow with the hot gas in the shell side.
[0111] The incoming water fills the chamber 26, flows downwards along the sections 21 of the U tubes and flow back up along the opposite sections 22; it flows out preheated into the chamber 27 and passes into the upper chamber 31 through the passage 30.
[0112] From the upper chamber 31, the water enters into the evaporation bundle 3 through the inlets 203 of the bayonet tubes 20 (inlets of the inner tubes 201).
[0113] Inside the bayonet tubes 20 the water evaporates at least partially. The steam, or mixed water/steam flow, thus obtained occupies the chamber 28 and flows up into the top part of the chamber 31 via the tube 10.
[0114] Any water droplets (liquid phase) present in the effluent of the tube 10 fall back by of gravity towards the bottom of the chamber 31, from where they are fed again to the tube bundle 3. The steam phase, instead, tends to flow back up towards the demister 32, where present, and steam outlet 12.
[0115] During use, the chamber 31 is partially filled with water up to a given level (underneath the outlet opening 101 of the tube 10), creating a head for the flow circulating inside the tubes 20. By suitable dimensioning, the apparatus may operate with natural circulation between chamber 31, bayonet tubes 20, intermediate chamber 28 and riser tube 10. In some embodiments, a separate steam drum may be provided above the chamber 31 in order to increase the head.
[0116] The hot gas entering via the gas inlet 13 passes firstly into the region 24 where it flows upwards in a counterflow with respect to the water descending inside the tubes. As a result of the arrangement of the openings 40 and 41, the gas subsequently crosses the passages 251 and 252 again in a counterflow with respect to the water being preheated in the bundle 4. Finally the gas passes into the interspace 42 with the effect of flushing the shell 2 and preventing overheating of said shell.
[0117]
[0118]
[0119] The preheater 104 and the boiler 105 are two separate apparatuses, for example two tube bundle exchangers. The apparatus 100 for example is an ammonia synthesis reactor.
[0120] The gas 101 flowing out from the reactor 100 provides heat firstly to the boiler 105; the gas 106 output from said boiler, at a lower temperature, supplies heat to the preheater 104 and flows out as cooled gas 107. In the example the gas circulates in the tube side of both the apparatuses 104 and 105.
[0121] The feed water 102 is preheated in the shell side of the preheater 104; the preheated water 108 is fed to the shell side of the boiler 105 inside which it evaporates, at least partially, forming the flow 103.
[0122] It can be seen how the invention eliminates the connection piping between the two apparatuses of the prior art, indicated by the lines 106 and 108 in
[0123] By means of the apparatus it is thus possible to achieve the aforementioned purposes.