METHOD AND DEVICE FOR REMOVING AND/OR INSTALLING AN ANNULAR COMPONENT
20210324764 · 2021-10-21
Assignee
Inventors
Cpc classification
F05D2230/68
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D25/285
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2250/141
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2230/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A device for removing and/or installing an annular component, which is arranged at a position within a turbine housing, which position is accessible via an access point of the turbine housing. A method for removing and for installing a component of this type by a device of this type.
Claims
1. A device for removing and/or installing an annular component which is arranged within a turbine housing at a position which is accessible via an access point of the turbine housing, comprising: at least two sliding rails which are designed to be introduced through the access point into the interior of the turbine housing and to be mounted in the lower turbine housing region such that they extend in a longitudinal direction and parallel to one another, and a slide which can be introduced through the access point into the interior of the turbine housing, can be placed onto the sliding rails, can be moved to and fro along the latter in the longitudinal direction, and has a base plate and a component receptacle device which, as viewed in the longitudinal direction, is fastened in a front end region of the base plate and is designed in such a way that the component to be removed or to be installed can be received on it and can be fastened to it releasably, the construction at least of the base plate being adapted to the construction of the component receptacle device in such a way that the weight of the component which is received on the component receptacle device is compensated for by way of the weight of the base plate as a counterweight, in such a way that wobbling of the slide on the sliding rails due to the additional weight of the component is prevented.
2. The device as claimed in claim 1, wherein the base plate is of annular segment-shaped configuration.
3. The device as claimed in claim 1, wherein a predefined front region of the base plate can be moved in the longitudinal direction beyond the front end of the sliding rails, and a first sliding face is provided in a predefined region on the underside of the base plate.
4. The device as claimed in claim 3, wherein the first sliding face is configured on a sliding face element which is received in a cutout of the base plate and is moveable up and down relative to the base plate via an actuating device.
5. The device as claimed in claim 4, wherein a second sliding face is provided opposite the first sliding face in the upper region of the component receptacle device, the radius of which second sliding face corresponds to that of the first sliding face.
6. The device as claimed in claim 1, wherein the component receptacle device has an annular carrier element which extends upward starting from the base plate and on which a plurality of component receptacle flanges which project outward in the longitudinal direction are provided in a manner which is distributed circumferentially, which component receptacle flanges define radial outer faces which extend in the circumferential direction and are arranged on a common circular arc, the diameter of which is slightly smaller than the internal diameter of the component.
7. The device as claimed in claim 6, wherein an outwardly pointing end face of the carrier element or an outwardly pointing end face of a component receptacle flange defines a stop face for the component which is received on the component receptacle flanges.
8. The device as claimed in claim 7, wherein the carrier element and/or the component receptacle flanges are/is provided with through holes which extend in the longitudinal direction.
9. The device as claimed in claim 1, wherein a handle is provided on the base plate and/or on the component receptacle device, in order to move the slide manually on the sliding rails in the longitudinal direction.
10. A method for removing an annular component which is arranged within a turbine housing at a position which is accessible via an access point of the turbine housing, with the use of a device as claimed in claim 1, the method comprising: introducing of the sliding rails through the access point of the turbine housing into the interior of the turbine housing; mounting of the sliding rails at predefined positions in the lower turbine housing region in such a way that they extend from a position in the region of the access point in a longitudinal direction and parallel to one another in the direction of the component to be removed; placing of the slide onto the sliding rails in such a way that the component receptacle device points in the direction of the component; moving of the slide on the sliding rails in the direction of the component until the component receptacle device receives the component, it being possible for the component receptacle device to optionally be oriented relative to the component beforehand; fastening of the component to the component receptacle device; moving of the slide on the sliding rails in the direction of the access point; detaching of the component from the component receptacle device; and removing of the component.
11. A method for installing an annular component within a turbine housing at a predefined installation position which is accessible via an access point of the turbine housing, with the use of a device as claimed in claim 1, the method comprising: introducing of the sliding rails through the access point of the turbine housing into the interior of the turbine housing; mounting of the sliding rails at predefined positions in the lower turbine housing region in such a way that they extend from a position in the region of the access point in a longitudinal direction and parallel to one another in the direction of the predefined installation position; placing of the slide onto the sliding rails in such a way that the component receptacle device points in the direction of the predefined installation position; receiving and fastening of the component on/to the component receptacle device; moving of the slide on the sliding rails in the direction of the predefined installation position until the component is arranged at the predefined installation position, it being possible for the component receptacle device to optionally be oriented relative to the installation position beforehand; detaching of the component from the component receptacle device and moving of the slide on the sliding rails as far as into the region of the access point.
12. The device as claimed in claim 3, wherein the first sliding face is circularly annular segment-shaped.
13. The device as claimed in claim 5, wherein the second sliding face is circularly annular segment-shaped.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Further features and advantages of the present invention will become clear on the basis of the following description of one embodiment of a device according to the invention with reference to the drawing, in which:
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION OF INVENTION
[0026] The device 1 serves for removing and/or for installing an annular component 2 which is arranged within a turbine housing 3 at a position which is accessible via an access point 5 of the turbine housing 3. In the present case, the annular component 2 is what is known as an oil box with a sealing ring which is received in an annular housing and seals an annular gap between the turbine housing 3 and a turbine rotor 4, as shown in
[0027] The sliding rails 6 are configured to be introduced through the access point 5 into the interior of the turbine housing 3 and to be mounted in the lower turbine housing region such that they extend in a longitudinal direction L and parallel to one another. The slide 7 is also configured in such a way that it can be introduced through the access point 5 into the interior of the turbine housing 3 and can be placed onto the sliding rails 6 in such a way that it can be moved to and fro along said sliding rails 6 in the longitudinal direction L. The slide 7 comprises a base plate 8 and a component receptacle device 9 which is fastened in a front end region of the base plate 8 as viewed in the longitudinal direction L. In the present case, the base plate 8 is of annular segment-shaped configuration and is therefore adapted to the cylindrical shape of the turbine housing cavity. In the rear end region, the underside of the base plate 8 is provided with stops 10 which bear against the sliding rails 6 and limit the movement of the slide in the circumferential direction. Starting from the stops 10, a sliding face 12 which is likewise circularly annular segment-shaped in the present case is provided on the underside of the base plate 8, which sliding face 12 is configured on a sliding face element 13 which is received in a cutout of the base plate 8. In the case of the embodiment which is shown, the sliding face element 13 can be moved up and down in the direction of the arrow 15 relative to the base plate 8 via an actuating device 14 (not shown in detail), and can therefore be adjusted vertically. The vertical adjustment is brought about by a user by way of actuation of an adjusting unit 16 which is provided in the rear region of the base plate 8, by said adjusting unit 16 being pushed to and fro in the direction of the arrow 17. The movement of the adjusting unit 16 is transmitted to a wedge element 30 which is installed between the base plate 8 and the sliding face element 13 and moves the base plate 8 and the sliding face element 13 toward one another or away from one another. The component receptacle device 9 is fastened in a front end region of the base plate 8 as viewed in the longitudinal direction L. It is designed in such a way that the annular component 2 to be removed or to be installed can be received on it in a way which is flush with the annular gap in the longitudinal direction L, and can be fastened to it releasably. In the present case, the component receptacle device 9 has a carrier element 18 of annular configuration which extends upward starting from the base plate 8. Two component receptacle flanges 19 which project outward in the longitudinal direction L are provided on the carrier element 18 at the top and at the bottom so as to lie circumferentially opposite one another, which component receptacle flanges 19 define radial outer faces 20 which extend in the circumferential direction and are arranged on a common circular arc, the diameter of which is slightly smaller than the internal diameter of the component 2. Instead of two component receptacle flanges 19, it is of course fundamentally possible for more component receptacle flanges 19 to also be arranged such that they are distributed circumferentially on the carrier element 18. The component receptacle flanges 19 are positioned in the region of the inner circumference of the carrier element 18 in such a way that the outwardly pointing end face 21 of the carrier element 18 and/or the end faces 22 of the component receptacle flanges 19 define a stop face for the component 2 which is received on the component receptacle flanges 19. Through holes 23 extend in the longitudinal direction L through the end faces 22 of the component receptacle flanges 19, which through holes 23 serve for receiving fastening screws. The through holes 23 are widened behind the end faces 22, with the result that the fastening screws can be introduced without problems by way of a corresponding tool, such as, for example, by way of a screw driver or the like. A second sliding face 24 which is likewise circularly annular segment-shaped in the present case is provided opposite the first sliding face 12 in the upper region of the component receptacle device 9, the radius of which sliding face 24 corresponds to that of the first sliding face 12. A handle 25 and 26 is provided in each case on the base plate 8 and on the component receptacle device 9, in order to move the slide 7 manually on the sliding rails 6 in the longitudinal direction L.
[0028]
[0029] In the following text, a method for removing an annular component 2 will be described with reference to
[0030] In a first step S1, the sliding rails 6 of the device 1 are introduced through the access point 5 of the turbine housing 3 into the interior of the turbine housing 3. The access point 5 has been provided in the present case by a turbine housing cover (not shown) having been removed.
[0031] The access point 5 can fundamentally also be, however, a manhole which is provided in the upper region of the turbine housing 3.
[0032] In a second step S2, the sliding rails 6 are mounted at predefined positions in the lower turbine housing region in such a way that they extend from a position in the region of the access point 5 in the longitudinal direction L and parallel to one another in the direction of the component 2 to be removed. In the present case, the sliding rails 6 project out of the turbine housing 3 and are supported by way of a supporting construction 27 on the turbine housing 3. Those free ends of the sliding rails 6 which project from the turbine housing 3 are connected to one another via a connecting strut 28, by way of which the required stability is achieved. Stop elements 29 are provided on the connecting strut 8, which stop elements 29 point in the direction of the turbine housing 3 and limit the movement of the slide 7 on the sliding rails 6 on the end side.
[0033] In a further step S3, the slide is placed onto the sliding rails 6 with use of a crane in such a way that the component receptacle device 9 points in the direction of the component 2.
[0034] In the step S4, the slide 7 is then moved on the sliding rails 6 in the direction of the component 2. As soon as the component receptacle device 9 of the slide 7 reaches the turbine housing shoulder 11, the sliding faces 12 and 24 of the slide 7 come into contact with the turbine housing wall in the region of the turbine housing shoulder 11, with the result that the sliding faces 12 and 24 slide on the turbine housing wall. Here, that region of the base plate 8, on which the sliding face 12 is arranged, is moved in the longitudinal direction L beyond the front end of the sliding rails 6. Within the context of this movement, the component receptacle flanges 19 of the component receptacle device 9 are pushed into the internal diameter of the component 2, with the result that the component 2 is received on the component receptacle device 9. Should the component receptacle device 9 and the component 2 not be oriented with respect to one another in an optimum manner, an orientation of the component receptacle device 9 relative to the component 2 can take place beforehand in an intermediate step, by the adjusting unit 16 moving in the direction of the arrow 17 and therefore the sliding face element 13 being moved relative to the base plate 8. In this way, a relative movement also takes place between the component receptacle device 9 and the sliding rails 6 in the upward or in the downward direction, as a result of which a vertical adjustment of the component receptacle device 9 takes place.
[0035] Subsequently, in step S5, the component 2 is fastened to the component receptacle device 9, by fastening screws being inserted through the through holes 23 of the component receptacle device 9 and being screwed to the component, as has already been described above.
[0036] In a further step S6, the slide 7 is moved on the sliding rails 6 in the direction of the access point 5 until the component is positioned in the region of the access point 5, in the present case outside the turbine housing 3, as shown in
[0037] In the following step S7, the component 2 is detached from the component receptacle device 9, and can then be lifted from the slide 7 by way of a crane in a last step S8.
[0038] In order to install a new component 2, according to
[0039] In a step S9, the component 2 is received on the component receptacle device 9 and is fastened to it.
[0040] Subsequently, in step S10, the slide 7 is moved on the sliding rails 6 in the direction of the predefined installation position of the component 2 until the component 2 is arranged at the predefined installation position. Here too, an optional orientation of the component receptacle device 9 relative to the annular gap can take place beforehand if this should be necessary.
[0041] The component 2 on the component receptacle device 9 is then detached in step S11, whereupon the slide is moved back again on the sliding rails 6 in the direction of the access point 5 in the step S12.
[0042] A substantial advantage which is associated with the use of the above-described device 1 during the removing and/or installing of the component 2 consists in that the component 2 can be moved reliably and without great effort in the longitudinal direction L in the interior of the turbine housing 3. This is firstly beneficial to the safety and health of the staff. Secondly, however, a smaller time duration is also required for the removing and/or installing of the component 2, as a result of which downtimes of the turbine can be shortened and costs can be saved.
[0043] It is to be noted at this point that the construction of the device 1 is to be adapted fundamentally to the external conditions which are stipulated by way of the construction of the turbine.
[0044] Although the invention has been illustrated and described in greater detail by way of the exemplary embodiments, the invention is not restricted by way of the disclosed examples, and other variations can be derived herefrom by a person skilled in the art, without departing from the scope of protection of the invention.