GAS TURBINE HAVING A LIFTING MECHANISM
20170313556 · 2017-11-02
Assignee
Inventors
- Andreas Griese (Berlin, DE)
- Dirk Müller (Mülheim a.d.Ruhr, DE)
- Katrin Tritsch (Berlin, DE)
- Heiko Gellenthien (Berlin, DE)
Cpc classification
F01D25/285
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2220/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B66C23/027
PERFORMING OPERATIONS; TRANSPORTING
F05D2230/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B66C23/025
PERFORMING OPERATIONS; TRANSPORTING
International classification
B66C23/18
PERFORMING OPERATIONS; TRANSPORTING
B66C23/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A crane system having a gas turbine that has a manhole on the outer housing thereof, the manhole being designed to open up a maintenance access to hot gas parts of the gas turbine in the open state of the manhole, which is provided with a fastening section; the crane system further has a hoisting mechanism that includes a mating fastening section which is connected to the fastening section of the manhole in such a way that the hoisting mechanism introduces weights that same has to lift into the outer housing of the gas turbine.
Claims
1. A crane system comprising: a gas turbine which has a manhole on its outer housing, said manhole being designed to open up a maintenance access point to hot gas parts of the gas turbine when opened, wherein the manhole has a fastening section, and a lifting mechanism which has a mating fastening section that is connected to the fastening section of the manhole in such a way that the lifting mechanism introduces weight forces to be lifted by said mechanism into the outer housing of the gas turbine.
2. The crane system as claimed in claim 1, wherein the mating fastening section is designed as a mating flange which is screwed to the fastening section designed as a flange.
3. The crane system as claimed in claim 1, wherein the manhole is arranged at a vertex of the outer housing.
4. The crane system as claimed in claim 1, wherein the lifting mechanism is designed as a pillar crane, wherein the mating fastening section is fitted to one end of a pillar of the pillar crane.
5. The crane system as claimed in claim 1, wherein the lifting mechanism has two or at least two boom arms which are of pivotable design.
6. The crane system as claimed in claim 5, wherein at least one of the boom arms is of multi-part design, wherein the individual parts are again pivotable with respect to one another.
7. The crane system as claimed in claim 5, wherein at least one of the boom arms is designed as a telescopic arm.
8. A lifting mechanism, which is designed to be used in a crane system as claimed in claim 1, said lifting mechanism comprising: a mating fastening section which is designed to be connected to a fastening section of a manhole of a gas turbine in such a manner that the lifting mechanism introduces weight forces to be lifted by said mechanism into the fastening section via the mating fastening section.
9. A method for producing a crane system as claimed in claim 1, comprising the following steps: opening a manhole on the outer housing of a gas turbine; fastening a mating fastening section of a lifting mechanism to a fastening section of the manhole.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030] In the drawings:
[0031]
[0032]
[0033]
[0034]
DETAILED DESCRIPTION OF INVENTION
[0035]
[0036] The lifting mechanism 30 itself is designed as a pillar crane, which has a pillar 31 which has the mating fastening section 35 in question at one end, said mating fastening section being connected to the fastening section 25 of the manhole 20. The connection of the two sections 25, 35 is realized by means of a flange connection, since the fastening section 25 is designed as a fastening flange and the mating fastening section 35 is designed as a mating fastening flange. Both flanges are securely connected to one another, for example via suitable threaded bolts.
[0037] The lifting mechanism 30 designed as a pillar crane further has a boom arm 36 which is connected at one end to the pillar 31 via a joint or pivot hinge (not further provided with a reference sign). The boom arm 36, which has a double-T profile or even an MSH profile in cross section (perpendicular to the direction of longitudinal extent), allows a motor 41 which is connected to an input unit 42 on the pillar 31 by a suitable electrical supply line 40, to perform lifting operations. For example, the motor 41 can be moved along the boom arm 36 via suitable running rollers (not provided with further reference signs), wherein, at the same time, a load cable (not shown in more detail) for lifting or supporting loads can be used, for example. By means of suitable handling, it is possible, for example, to move the boom arm 36 to a location, for example above the burner openings shown, such that, following suitable positioning of the motor along the boom arm 36, this arm can be directly positioned above the designated burner opening in an extended state. On account of the pillar structure, there is sufficient space available in the region of the burner openings for the maintenance personnel or a further maintenance device.
[0038]
[0039] The two boom arms 36, 37 are again of multi-part design, wherein the individual parts are again fastened in a pivotable manner with respect to one another. In order to pivot individual parts of a boom arm 36, 37 with respect to one another, joints 38 and 39 are provided in the respective boom arms 36 and 37. The joints 38 and 39 thus define the individual parts (not provided with reference signs) of the respective boom arm 36, 37.
[0040] The adjustment or pivoting of the boom arms 36, 37 can take place manually, with or without auxiliary means. Auxiliary means are, for example, suitable guide cables which are fitted to the boom arms 36, 37.
[0041] In order to further increase the flexibility with regard to the carrying out of maintenance work, the parts of the boom arms 36, 37 provided with the respective motors 41 can be of telescopic design. Likewise, it may also be sufficient for these end parts of the respective boom arms 36, 37 to have, in cross section, a double-T profile or an MSH profile, along which the respective motor 41 can be moved.
[0042] The fastening of the lifting mechanism 30 to the outer housing 11 of the gas turbine 10 is again realized by means of a suitable mating fastening section 35 which is fitted to the fastening section 25 of a manhole 20. In the present case too, the manhole 20 is arranged at a vertex of the outer housing 11 in a comparable manner to the embodiment shown in
[0043]
[0044] It should furthermore be pointed out that the pillar 31 of the lifting mechanism 30 is of height-adjustable design, such that the lifting mechanism 30 can, as a complete unit, also be adjusted in height.
[0045]
[0046] Further embodiments can be gathered from the subclaims.