TECHNICAL FIELD
[0001] The present invention relates to a method for connecting heat exchanging surfaces
to a main structure of a boiler, boiler and boiler module.
[0002] Preferably, the boiler is a large boiler of a power plant for electric power generation.
BACKGROUND
[0003] Boilers are known to comprise a main structure (also known as steel structure) that
supports heat exchanging surfaces such as (from the top of the boiler downwards) an
economizer, a reheater, a superheater, an evaporator.
[0004] Typically, during the erection of the boiler, the main structure is erected first
and the heat exchanging surfaces are then element-by-element connected to the main
structure, often by handling them with large cranes.
[0005] This erection process is very time consuming, because of the element-by-element connection
and, in addition, because the large cranes could hinder each other.
SUMMARY
[0006] An aspect of the invention includes providing a method for connecting heat exchanging
surfaces to a main structure of a boiler, a boiler and a boiler module that allow
a quick boiler erection. In particular, the heat exchanging surfaces can e.g. be the
economizer and/or reheater and/or superheater and/or evaporator.
[0007] These and further aspects are attained by providing a method for connecting heat
exchanging surfaces to a main structure of a boiler, a boiler and a boiler module
in accordance with the accompanying claims.
BRIEF DESCRIPTION OF THE DRAWINGS
[0008] Further characteristics and advantages will be more apparent from the description
of a preferred but non-exclusive embodiment of the method, boiler and boiler module,
illustrated by way of non-limiting example in the accompanying drawings, in which:
Figures 1 and 2 show steps of the method for connecting heat exchanging surfaces to
a main structure of the boiler;
Figures 3 and 4 show different examples of boilers;
Figures 5 through 8 show different examples of modules;
Figures 9 and 10 show different examples of reciprocal connection of peripheral heat
exchanging surfaces;
Figures 11 and 12 show different examples of reciprocal connection of internal heat
exchanging surfaces;
Figures 13 through 18 show the steps of the method for assembling a module.
DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS
[0009] In the following the boiler and the modules used to erect the boiler are described
first.
[0010] The boiler 1 (figures 2 and 3) comprises a main structure 2 including a tower 3 and
a top grid 4 above the tower 3. The main structure 2 supports heat exchanging surfaces.
The boiler can be any type of boiler, such as e.g. a tower boiler or a two pass boiler.
[0011] The main structure 2 is connected to and supports modules 5 that define heat exchanging
surfaces. According to the specific design of the boiler, the modules 5 can be a whole
or a section of: an evaporator, a superheater, a reheater, an economizer.
[0012] Each module 5 comprises (figures 5-8) outer hanger supports 6 and peripheral heat
exchanging surfaces 7; preferably each module defines a cross section of the boiler.
[0013] The outer hanger supports 6 can be connected to and support the peripheral heat exchanging
surfaces 7 e.g. via posts (other example are anyhow possible).
[0014] The outer hanger supports 6 can be solid bars or tubular bar, e.g. to allow steam
circulation through them, in order to allow a similar thermal expansion for the outer
hanger supports 6 as for the peripheral heat exchanging surfaces 7 and counteract
differential expansion through the boiler that could cause stress.
[0015] The peripheral heat exchanging surfaces 7 can be defined by tubed walls, e.g. they
can comprise tubes 8 and fins 9 (but the fins 9 are optional).
[0016] The outer hanger supports 6 are directly (i.e. the supports 6 are connected to the
main structure 2) or indirectly (i.e. the supports 6 are connected to another element
that is in turn directly or indirectly connected to the main structure 2) connected
to the main structure 2. Preferably the outer hanger supports 6 are directly or indirectly
connected to the upper part of the main structure 2 and/or top grid 4.
[0017] The peripheral heat exchanging surfaces 7 of each module 5 are connected to the peripheral
heat exchanging surfaces 7 of another module 5.
[0018] In one example (figure 9), the connection of the peripheral heat exchanging surfaces
7a, 7b of different modules 5 can be done by welding each tube 8a of the peripheral
heat exchanging surfaces 7a to another tube 8b of the peripheral heat exchanging surfaces
7b. Reference 11 indicates the welds between the tubes 8a, 8b. Preferably the welds
11 are also provided between the fins 9a, 9b of the peripheral heat exchanging surfaces
7a, 7b.
[0019] In another example (figure 10), the modules 5 can have peripheral heat exchanging
surfaces 7a, 7b, having collectors 12a, 12b connected to a headers 13a, 13b. The header
13a of a module can be connected to the header 13b of the other module in order to
realize the connection. This connection can for example be made with a pipe 14.
[0020] Naturally the connections by directly welding the tubes 8 (and possibly the fins
9) and by connecting together the headers 13a and 13b can be implemented in the same
boiler but at different parts thereof.
[0021] The modules 5 can comprise internal heat exchanging surfaces 15 located within the
peripheral heat exchanging surfaces 7 (figures 5-7). The module preferably defines
a cross section of the boiler.
[0022] The internal heat exchanging surfaces 15 can for example define a superheater or
a reheater or an economizer. In addition, they are preferably defined by coil pipes.
[0023] The modules 5 have inner hanger supports 16 connected to the internal heat exchanging
surfaces 15. The inner hanger supports 16 can be defined by solid posts or by tubes,
in this last case the hanger supports can be part of a superheater or reheater and
are connected to headers.
[0024] The internal heat exchanging surfaces 15 of a module are connected to the internal
heat exchanging surfaces 15 of another module.
[0025] Also this connection can be done in different ways.
[0026] In one example (figure 12) the internal heat exchanging surfaces 15a, 15b (i.e. the
coil pipes defining them) of different modules 5a, 5b are connected together, e.g.
welded. For example an intermediate pipe 16 could be used (but this is not mandatory).
[0027] In another example (figure 11), the internal heat exchanging surfaces 15a, 15b (i.e.
the coil pipes defining them) have headers 17a, 17b and the internal heat exchanging
surfaces 15a, 15b are connected by connecting the header 17a of an internal heat exchanging
surface 15a of a module to the header 17b of the internal heat exchanging surface
15b of the other module. For example an intermediate pipe 16 can be used also in this
case.
[0028] Advantageously the inner hanger supports 16, the internal heat exchanging surfaces
15, the outer hanger supports 6 and the peripheral heat exchanging surfaces 7 are
connected together.
[0029] In the following specific examples of boilers are described more in detail.
EXAMPLE 1 - figure 3
[0030] Figure 3 shows the main structure 2 with a top grid 4 supporting the modules 5a-5e.
The modules 5a-5c have their peripheral heat exchanging surfaces 7 that define sections
of the superheater; the module 5c has its inner heat exchanging surfaces 15 that define
an additional section of the superheater. The modules 5b and 5a have their inner heat
exchanging surfaces 15 that define a reheater. The modules 5d and 5e define an evaporator.
[0031] All modules 5a-5e have outer hanger supports 6 that are connected together; the outer
hanger supports 6 of the module 5a are directly connected to the top grid 4 and the
outer hanger supports 6 of the other modules are connected to the outer hanger supports
6 of overlaying module.
[0032] In addition, the modules 5a-5c also have the inner hanger supports 16 connected together;
the inner hanger supports 16 of the module 5a are connected to the top grid 4 and
the inner hanger supports 16 of the other modules 5b, 5c are connected to the inner
hanger modules 16 of the overlaying module.
[0033] A first duct 20 connects the headers 13e of the module 5e to a water supply; for
example the first duct 20 is connected to a supply pump and a condenser, possibly
via a reservoir.
[0034] The module 5e and 5d are connected by welds 11 provided between the tubes (and fins)
of their peripheral heat exchanging surfaces 7.
[0035] The heaters 13d are connected to the upper headers 13a, the lower headers 13a are
connected to the upper headers 13b; the lower headers 13b are connected to the upper
header 13c; the lower headers 13c are connected to the lower header 17c of the inner
heat exchanging surface of the module 5c; the upper header 17c is connected to the
high pressure turbine.
[0036] The upper headers 17a of the inner heat exchanging surface 15a of the module 5a is
connected to the high pressure turbine outlet, the lower headers 17a is connected
to the upper headers 17b and the lower headers 17b is connected to the low pressure
turbine.
[0037] In this example, the modules 5a-5c have the peripheral heat exchanging surfaces 7
provided with collectors and headers and the inner heat exchanging surfaces 15 provided
with headers; the connection can thus take place by connecting the headers. For example
this connection can be done by providing pipes between the headers.
[0038] The modules 5d and 5e (defining the evaporator) are reciprocally connected by welding
their tubes 8, while the connection with the other modules or water supply occurs
via headers 13d, 13e.
EXAMPLE 2 - figure 4
[0039] In this example the boiler has a similar structure as the boiler of figure 3, but
the modules are connected in a different way, i.e. some connections that in the example
1 are done by collectors and headers are done in this example by directly welding
the tubes 8.
[0040] The modules 5a-5b have their peripheral heat exchanging surfaces 7 whose tubes 8
are directly connected together by welds 11. The inner heat exchanging surfaces are
also in this example provided with headers. The modules 5d and 5e are connected as
described with reference to the example 1.
FURTHER EXAMPLES
[0041] Naturally even if only two example of boilers have been specifically described, the
connections among the modules can be any; e.g.:
the modules 5d and 5e can be connected together by collectors ad headers instead of
directly welding their pipes;
some of the peripheral heat exchanging surfaces 7 of different adjacent modules 5
can have their tube directly welded together while some others can be connected through
collectors and headers;
some of the inner heat exchanging surfaces 15 of different adjacent modules can have
their tubes 8 directly welded together while some others can be connected through
headers.
[0042] In addition it is clear that the specific described configurations for the boilers
are not mandatory and the boiler configuration can be any according to the needs;
e.g. the evaporator can be defined by one or more modules, the superheater can be
defined by one or more modules and/or by peripheral and/or inner heat exchanging surfaces;
the reheater can be defined by one or more modules and/or by peripheral and/or inner
heat exchanging surfaces.
[0043] In the following some specific example of module are described in detail.
EXAMPLE 3 - figures 5 and 6
[0044] Figures 5 and 6 show a module without one peripheral heat exchanging surface 7 (for
clarity); these figures show a module having the peripheral heat exchanging surfaces
7 that are not provided with any collector or header. This module further has inner
heat exchanging surfaces 15 that are provided with headers 17. For example the peripheral
heat exchanging surfaces define a superheater or a section of a superheater and the
inner heat exchanging surfaces can define a superheater or a section of a superheater
or a reheater or a section of a reheater.
EXAMPLE 4 - figure 7
[0045] This module is similar to the module of the example 3; in particular this module
has the peripheral heat exchanging surfaces 7 with collectors 12 and headers 13. The
inner heat exchanging surface 15 has headers 17 as well. For example the peripheral
heat exchanging surfaces define a superheater or a section of a superheater and the
inner heat exchanging surfaces can define a superheater or a section of a superheater
or a reheater or a section of a reheater.
EXAMPLE 5 - figure 8
[0046] This module has the peripheral heat exchanging surfaces 7 without collectors or headers.
No inner heat exchanging surfaces are provided. For example the peripheral heat exchanging
surfaces can define an evaporator or a section of an evaporator (in particular an
intermediate section of an evaporator to be connected to other sections of evaporator
by welding both ends of the tubes 8 of the peripheral heat exchanging surfaces to
the tubes 8 of the peripheral heat exchanging surfaces of other modules).
METHOD
[0047] The present invention also refers to a method for connecting heat exchanging surfaces
to the main structure 2 of a boiler.
[0048] The method comprises
erecting the main structure 2 (figure 1); typically the tower 3 is erected first and
preferably the top grid 4 is not provided on top of it at this stage;
assembling the modules comprising at least outer hanger supports 6 and peripheral
heat exchanging surfaces 7, in addition, preferably the module to be connected to
the top of the main structure 2 can be connected to the top grid 4;
connecting the outer hanger supports 6 to the main structure 2; this is advantageously
done by lifting the modules 5 as indicated by the arrow F, e.g. with strand jacks
29; the strand jacks 29 can be temporary (i.e. in a removable way, such that after
erection they can be removed) connected to the main structure 2 (figure 2), when the
top grid 4 is part of a module 5 (the module to be connected to the top of the main
structure 2), the top grid 4 is lifted via the strand jacks 29 and is then connected
to the main structure 2;
connecting together the peripheral heat exchanging surfaces 7 of adjacent modules
5 (figures 3 or 4).
[0049] Connecting the outer hanger supports 6 to the main structure 2 comprises directly
or indirectly connecting the outer hanger supports 6 to the main structure 2. This
connection can e.g. be a welded connection.
[0050] Connecting together the peripheral heat exchanging surfaces 7 can be done in different
ways.
[0051] In one example connecting together the peripheral heat exchanging surfaces 7 comprises
welding each tube 8 of a peripheral heat exchanging surface 7 of a module 5 to a tube
8 of a peripheral heat exchanging surface 7 of another module 5.
[0052] In another example, modules can have peripheral heat exchanging surfaces 7 having
a collector 12 connected to headers 13; in this case connecting together the peripheral
heat exchanging surfaces 7 comprises connecting the header 13 of a module 5 to the
header 13 of another module 5.
[0053] When the modules 5 further have internal heat exchanging surfaces 15 located within
the peripheral heat exchanging surfaces 7 and inner hanger supports 16 connected to
the internal heat exchanging surface 15, the method further comprises connecting the
internal heat exchanging surface 15 of a module 5 to the internal heat exchanging
surface 15 of another module 5.
[0054] Also this connection can be done in different ways.
[0055] In one example, connecting the internal heat exchanging surface 15 of a module 5
to the internal heat exchanging surface 15 of another module 5 is done by directly
welding the internal heat exchanging surfaces 15 together or via the intermediate
pipe 16.
[0056] In another example, when the modules 5 have internal heat exchanging surfaces 15
having headers 17, connecting the internal heat exchanging surface 15 of a module
to the internal heat exchanging surface 15 of another module comprises connecting
the headers 17 of the internal heat exchanging surface of the module to the header
17 of the internal heat exchanging surfaces the other module.
[0057] Advantageously, the module 5a connected first to the main structure 2 (this module
can comprise the top grid 4, but this is not mandatory) is directly hanged to the
main structure 2 (e.g. via the top grid 4 according to the design), and the other
modules 5b-5e successively connected to the main structure 2 are indirectly connected
to the main structure 2 by connecting them in sequence below the modules already connected
to the main structure 2.
[0058] Preferably, during lifting the strand jacks 29 are connected to the outer hanger
supports 6 and to the peripheral heat exchanging surfaces 7 and to the internal heat
exchanging surfaces 15 (if provided). In case a module (the one to be connected at
the top of the main structure 2) is provided with the top grid 4, and (as preferred)
the outer hanger supports 6, the peripheral heat exchanging surfaces 7 and the internal
heat exchanging surfaces 15 (if provided) are connected to the top grid 4, the strand
jacks 29 can be only connected to the top grid 4. The present invention also refers
to a method to assemble a module.
[0059] This method comprises (figures 13-20)
providing a module assembling table 30 (figure 13),
providing peripheral heat exchanging surface assembling tables 31 (figure 13),
providing the module assembling table with lifting towers 32 (figure 14),
assembling the peripheral heat exchanging surfaces 7 on the peripheral heat exchanging
surface assembling tables 31 (figure 15), possibly the peripheral heat exchanging
surfaces 7 can also be provided with buckstays 33 (i.e. stiffening elements for the
peripheral heat exchanging surfaces 7; figure 16),
lifting the peripheral heat exchanging surfaces 7 in vertical position on the module
assembling table 30 (figure 17),
removing the peripheral heat exchanging surface assembling tables 31 (figure 13),
providing outer hanger supports 6 (figure 18) and, if needed, the collector and headers
and protections for the collector and headers.
[0060] In addition, at least an internal heat exchanging surface 15 can be installed at
least while providing the outer hanger supports 6.
[0061] Naturally the features described may be independently provided from one another.
REFERENCE NUMBERS
[0062]
- 1
- boiler
- 2
- main structure
- 3
- tower
- 4
- top grid
- 5, 5a-5e
- module
- 6
- outer hanger support
- 7, 7a, 7b
- periferal heat exchanging surface
- 8, 8a, 8b
- tubes
- 9, 9a, 9b
- fins
- 11
- weld
- 12, 12a, 12b
- collector
- 13, 13a-13e
- header
- 14
- pipe
- 15, 15a, 15b
- internal heat exchanging surface
- 16
- inner hanger support
- 17, 17a, 17b
- header
- 20
- first duct
- 29
- strand jack
- F
- lifting
1. A method for connecting heat exchanging surfaces to a main structure (2) of a boiler,
the method comprising erecting the main structure (2), characterized by
assembling modules (5) comprising at least outer hanger supports (6) and peripheral
heat exchanging surfaces (7),
connecting the outer hanger supports (6) to the main structure (2),
connecting together the peripheral heat exchanging surfaces (7) of adjacent modules
(5).
2. The method of claim 1, characterized in that
assembling modules (5) further comprising providing a top grid (4) connected to at
least at least outer hanger supports (6) and peripheral heat exchanging surfaces (7),
and
connecting the outer hanger supports (6) to the main structure (2) comprises connecting
the top grid (4) to the top of the main structure (2).
3. The method of claim 1, characterized in that connecting the outer hanger supports (6) to the main structure (2) comprises directly
or indirectly connecting the outer hanger supports (6) to an upper part of the main
structure (2).
4. The method of claim 1, characterized in that connecting together the peripheral heat exchanging surfaces (7) comprises welding
each tube (8) of a peripheral heat exchanging surface (7) of a module (5) to a tube
(8) of a peripheral heat exchanging surface (7) of another module (5).
5. The method of claim 1, characterized in that at least two modules (5) have at least a peripheral heat exchanging surface (7) having
a collector (12) connected to a header (13), wherein
connecting together the peripheral heat exchanging surfaces (7) comprises connecting
the header (13) of a module (5) to the header (13) of another module (5).
6. The method of claim 1, characterized in that at least two modules (5) further comprise
an internal heat exchanging surface (15) located within the peripheral heat exchanging
surfaces (7), inner hanger supports (16) connected to the internal heat exchanging
surface (15),
the method further comprising connecting the internal heat exchanging surface (15)
of a module (5) to the internal heat exchanging surface (15) of another module (5).
7. The method of claim 6, characterized in that the module (5) has an internal heat exchanging surface (15) having a header (17),
and
the other module (5) has an internal heat exchanging surface (15) having at least
a header (17),
wherein connecting the internal heat exchanging surfaces (15) of a module (5) to the
internal heat exchanging surfaces (15) of another module (5) comprises connecting
the header (17) of the internal heat exchanging surface (15) of the module (5) to
the header (17) of the internal heat exchanging surfaces (15) the other module (5).
8. The method of claim 1, characterized in that a module (5) connected first to the main structure (2) is directly hanged to the
main structure (2), and at least a module (5) successively connected to the main structure
(2) is indirectly connected to the main structure (2) by connecting it below the module
(5) already connected to the main structure (2).
9. A method to assemble a module (5), characterized by comprising
providing a module assembling table (30),
providing peripheral heat exchanging surface assembling tables (31),
providing the module assembling table (30) with lifting towers (32),
assembling the peripheral heat exchanging surfaces (7) on the peripheral heat exchanging
surface assembling tables (31),
lifting the peripheral heat exchanging surfaces (7) in vertical position on the module
assembling table (30),
removing the peripheral heat exchanging surface assembling tables (31),
providing outer hanger supports (6).
10. The method of claim 9, characterized by installing at least an internal heat exchanging surface (15) at least while providing
the outer hanger supports (6).
11. A boiler comprising a main structure (2) and modules connected to the main structure,
wherein
each module (5) comprises at least outer hanger supports (6) and peripheral heat exchanging
surfaces (7),
the outer hanger supports (6) are connected to the main structure (2),
the peripheral heat exchanging surfaces (7) of each module (5) are connected to the
peripheral heat exchanging surfaces (7) of another module (5).
12. The boiler of claim 11, characterized in that each tube (8) of the peripheral heat exchanging surfaces (7) of a module (5) is welded
to another tube (8) of the peripheral heat exchanging surfaces (7) of another module
(5).
13. The boiler of claim 11, characterized in that
at least two modules (5) have peripheral heat exchanging surfaces (7) having a collector
(12) connected to a header (13), wherein
a header (13) of a module (5) is connected to the header (13) of the other module
(5).
14. The boiler of claim 11, characterized in that at least two modules (5) comprise
internal heat exchanging surfaces (15) located within the peripheral heat exchanging
surfaces (7),
inner hanger supports (16) connected to the internal heat exchanging surfaces (15),
wherein the internal heat exchanging surfaces (15) of a module (5) are connected to
the internal heat exchanging surfaces (15) of the other module (5).
15. The boiler of claim 14, characterized in that
at least two internal heat exchanging surfaces (15) have headers (17), and
the at least two internal heat exchanging surfaces (15) are connected by connecting
the header (17) of an internal heat exchanging surface (15) of a module (5) to the
header (17) of the internal heat exchanging surface (15) of the other module (5).
16. The boiler of claim 15, characterized by comprising
internal heat exchanging surfaces (15) located within the peripheral heat exchanging
surfaces (7),
inner hanger supports (16) connected to the internal heat exchanging surfaces (15).
17. A boiler module comprising at least outer hanger supports (6) and peripheral heat
exchanging surfaces (7).
18. The boiler module of claim 17, characterized by further comprising
internal heat exchanging surfaces (15) located within the peripheral heat exchanging
surfaces (7),
inner hanger supports (16) connected to the internal heat exchanging surfaces (15).