Apparatus and method for protecting the tube-sheet of a syngas loop boiler
11454461 · 2022-09-27
Assignee
Inventors
Cpc classification
C01B3/025
CHEMISTRY; METALLURGY
F28F9/0229
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2265/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2245/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E20/18
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
F28F2265/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F19/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0075
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F21/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F21/089
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/185
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28F9/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C01B3/02
CHEMISTRY; METALLURGY
F28F21/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A syngas loop boiler includes a casing that surrounds a tube bundle, wherein the tube bundle includes a plurality of tubes. One end of each of the tubes is joined to a tube-sheet provided with corresponding tube-sheet inlet holes for inletting the syngas in the boiler, wherein each tube-sheet inlet hole is internally provided with at least a protective sleeve welded at both ends to corresponding surfaces of the tube-sheet inlet hole. Each tube-sheet inlet hole is provided with a first respective weld overlay placed at the inlet mouth of the tube-sheet inlet hole, so that a first end of each protective sleeve is welded to the first weld overlay. Each tube-sheet inlet hole is internally provided with at least a bore groove that contains a respective in-bore second weld overlay, so that the second end of the protective sleeve is welded to the in-bore second weld overlay. Each protective sleeve is thus welded at both ends to respective weld overlays, with the possibility of removal and re-installation without performing any post weld heat treatment.
Claims
1. A syngas loop boiler comprising: a tube bundle; and a casing that surrounds the tube bundle, wherein said tube bundle comprises a plurality of tubes, wherein one end of each of the plurality of tubes is joined to a tube-sheet provided with a plurality of tube-sheet inlet holes for inletting syngas in the boiler, and wherein a first tube-sheet inlet hole of the plurality of tube-sheet inlet holes is provided with: a protective sleeve welded at both ends to said first tube-sheet inlet hole, a first weld overlay placed at an inlet mouth of said first tube-sheet inlet hole, the first weld overlay encircling a first end of the protective sleeve so that the first end of the protective sleeve is welded to said first weld overlay, and a bore groove that contains a second weld overlay, the second weld overlay having a first end and a second end spaced from the first end in an axial direction of the protective sleeve, the second overlay encircling and directly contacting a second end of the protective sleeve so that the second end of the protective sleeve is between the first end and second end of the second weld overlay, wherein the second weld overlay is spaced from the first weld overlay in the axial direction of the protective sleeve.
2. The syngas loop boiler according to claim 1, wherein the tube-sheet is manufactured with a material selected in the group consisting of: grade F11 alloy steel; grade F12 alloy steel; grade F21 alloy steel; grade F22 alloy steel; and grade F22V alloy steel.
3. The syngas loop boiler according to claim 1, wherein the protective sleeve is manufactured with an austenitic nickel-chromium-based superalloy.
4. The syngas loop boiler according to claim 1, wherein the first weld overlay and the second weld overlay are each manufactured with an austenitic steel or nickel based alloy.
5. The syngas loop boiler according to claim 1, wherein said plurality of tubes are U-shaped tubes.
6. A method for inserting and welding a protective sleeve in a corresponding tube-sheet inlet hole of the syngas loop boiler according to claim 1, the method comprising the steps of: obtaining the first tube-sheet inlet hole in the tube-sheet of the syngas loop boiler; obtaining the bore groove inside the first tube-sheet inlet hole by groove machining; depositing the second weld overlay into the bore groove by welding; inserting the protective sleeve into the first tube-sheet inlet hole; welding of the protective sleeve, at a second end thereof, to the second weld overlay; and welding of the protective sleeve, at a first end thereof, to the first weld overlay.
7. The method according to claim 6, wherein said second weld overlay is welded to the bore groove by a multiple pass welding process.
8. The method according to claim 7, wherein the second weld overlay is obtained by at least 5 weld passes according to a predetermined welding sequence.
9. The method according to claim 6, wherein the second weld overlay has a thickness greater than 4.5 mm.
10. The method according to claim 6, wherein the first tube-sheet inlet hole is obtained by drilling of the tube-sheet.
11. The method according to claim 6, wherein, after the second weld overlay deposition step and before the protective sleeve insertion step, a pre-machining step of the second weld overlay to a cylindrical shape is performed for facilitating the insertion of said protective sleeve into the first tube-sheet inlet hole.
12. The method according to claim 11, wherein, after the pre-machining step, a final machining step of the second weld overlay is performed to create a welding bevel.
13. The method according to claim 11, wherein, after the second weld overlay deposition step and after the pre-machining step, a non-destructive testing (NDT) procedure is performed in order to check the second weld overlay, wherein said second weld overlay is inspected by an ultrasonic testing (UT) performed through a UT probe.
14. The method according to claim 13, wherein a preliminary calibration process of the UT probe is performed using a calibration block that simulates a tube-sheet inlet hole provided with a bore groove and an in-bore second weld overlay, wherein a weld overlay shape and main dimensions of the calibration block are substantially identical to ones obtained on the tube-sheet of the syngas loop boiler, and wherein the calibration block is manufactured with the same material grade and form of said tube-sheet.
15. The method according to claim 12, wherein, after the second weld overlay final machining step, both the second weld overlay surface and the protective sleeve, once welded to said second weld overlay, are checked by a penetrant test (PT) adopting an optical inspection device.
16. The loop boiler according to claim 1, wherein the first tube-sheet inlet hole of the plurality of tube-sheet inlet holes extends between a first surface of the tube-sheet and a second surface of the tube-sheet, and wherein the bore groove is between and spaced from the first surface of the tube-sheet and the second surface of the tube-sheet.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The characteristics and advantages of an apparatus and a method for protecting the tube-sheet of a syngas loop boiler according to the present invention will be clearer from the following exemplifying and non-limiting description, with reference to the enclosed schematic drawings, in which:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(12) With reference to the figures, one embodiment of an apparatus for protecting the tube-sheet of a syngas loop boiler according to the present invention is shown. The syngas loop boiler 10 is of the type comprising a casing 12 that surrounds a tube bundle 14. Although the syngas loop boiler 10 is shown in a horizontal orientation, it may also be oriented vertically or at any angle with respect to a horizontal surface.
(13) The tube bundle 14 comprises a plurality of tubes 16. The tubes 16 are preferably U-shaped tubes, but the apparatus and the method according to the present invention can also be applied to tube bundles with straight tubes. One end of each of the tubes 16 is joined to a tube-sheet 18 provided with corresponding tube-sheet inlet holes 20 for inletting the syngas in the boiler 10. In case of U-shaped tubes, the other end of each of the tubes 16 is joined to the tube-sheet 18, which then is provided with tube-sheet outlet holes for outletting the syngas. In case of straight tubes, the other end of each of the tubes is joined to another tube-sheet provided with tube-sheet outlet holes for outletting the syngas. The tube-sheet 18 can be typically manufactured with a grade F11, F12, F21, F22, F22V or equivalent low alloy steel, preferably with a grade F22 low alloy steel.
(14) Each tube-sheet inlet hole 20 is internally provided with at least a protective sleeve 22 welded at both ends to corresponding surfaces of said tube-sheet inlet hole 20. Each protective sleeve 22 can be typically manufactured with an austenitic nickel-chromium-based superalloy known with the Inconel® brand name.
(15) For example,
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(17) Each weld overlay 24A, 24B is preferably manufactured with the Inconel® superalloy, or with an austenitic steel or nickel based alloy, and is preferably provided at both ends of the Inconel® protective sleeve 22. In other words, each Inconel® protective sleeve 22 results welded at both ends to respective Inconel® weld overlays 24A, 24B, with the possibility of removal and re-installation without performing any post weld heat treatment (PWHT) process.
(18) With reference to
(19) Manufacturing the new solution involved developing new weld procedures to deposit the in-bore second Inconel® weld overlay 24B inside the bore groove 26 and to weld the Inconel® protective sleeve 22 to said in-bore second Inconel® weld overlay 24B. The method for inserting and welding the in-bore second Inconel® weld overlay 24B inside the bore groove 26 of the tube-sheet 18 comprises the preliminary step of obtaining at least a tube-sheet inlet hole 20 in said tube-sheet 18, as shown in
(20) The in-bore second Inconel® weld overlay 24B is then deposited into a corresponding bore groove 26 by welding, preferably by a multiple pass welding process. This procedure is shown in
(21) Preferably, the in-bore second Inconel® weld overlay 24B is pre-machined to a cylindrical shape, as shown in
(22) A non-destructive testing (NDT) procedure has been developed in order to check the second Inconel® weld overlay 24B. In detail, after the in-bore second Inconel® weld overlay 24B deposition and after the respective pre-machining, said in-bore second Inconel® weld overlay 24B is inspected by an ultrasonic testing (UT) performed through a customized automatic UT probe (not shown). The UT probe gives a C-scan representation of the in-bore second Inconel® weld overlay 24B and is performed for lack of bond detection.
(23) More precisely, the UT probe could be equipped with two tandem crystals, transmitter and receiver, and could be positioned inside the tube-sheet inlet hole 20 at the bore groove 26, on the longitudinal axis. The UT probe moves following an helix path with a pitch of 0.5 mm. The UT probe shall be moved on the bore internal surface and it must cover the complete in-bore second Inconel® weld overlay 24B surface.
(24) The ultrasonic data obtained by the UT probe are processed and stored in unprocessed form. During scanning, the scan images can be built-up on-line. After finalizing a scan, data shall be evaluated and documented, which can be performed off-line. The final results are presented in terms of position, length and depth location of the reflector in relation to the weld section.
(25) A preliminary calibration process of the UT probe may be performed using a specific calibration block 28 (
(26) The calibration block 28 is provided with a plurality of calibration and/or verification holes 30, obtained at the respective weld overlay. Scanning range calibration shall be set in order to detect clearly all the holes 30, 32 of the calibration block 28. The scanning range shall be set out in the UT probe software.
(27) The in-bore second Inconel® weld overlay 24B is then final machined (
(28) After final machining step of the in-bore second Inconel® weld overlay 24B, both the in-bore second weld overlay 24B surface and the protective sleeve 22, once welded to said in-bore second Inconel® weld overlay 24B, can be checked by penetrant test (PT) adopting an optical inspection device for developer application, comprising for example a borescope. The weld between the protective sleeve 22 and the in-bore second Inconel® weld overlay 24B can be both a full or a partial fusion weld according to the specific requests.
(29) In case the weld between the protective sleeve 22 and the in-bore second Inconel® weld overlay 24B is obtained by a full fusion welding process, then a sophisticated ultrasonic testing (UT) examination of the weld is possible. The ultrasonic testing is performed by a special bore probe operating UT creep waves and giving an A-scan representation. The ultrasonic testing can detect both surface and root defects.
(30) The manufacturing process is completed by the welding of the first weld overlay 24A at the first end of the protective sleeve 22, as well as by the welding of the tubes 16 to the tube-sheet 18 by inner bore welding technique. The boiler 10 is then completed in a manner known per se and the post weld heat treatment (PWHT) process can be performed.
(31) It is thus seen that the apparatus and the method for protecting the tube-sheet of a syngas loop boiler according to the present invention achieves the previously outlined objects, in particular obtaining the following advantages: the possibility of removal and re-installation of the sleeve without performing any post weld heat treatment (PWHT) process; the possibility of site repair of the sleeve weld in case of failure; and the possibility of site removal and replacement of the sleeve for the inspection of the tube-sheet base material.
(32) The apparatus and the method for protecting the tube-sheet of a syngas loop boiler of the present invention thus conceived are susceptible in any case of numerous modifications and variants, all falling within the same inventive concept; in addition, all the details can be substituted by technically equivalent elements. In practice, the materials used, as well as the shapes and size, can be of any type according to the technical requirements.
(33) The protective scope of the invention is therefore defined by the enclosed claims.