COUPLING FOR POWER GENERATION SYSTEM
20190368550 ยท 2019-12-05
Inventors
- Rahul Bhardwaj (Columbus, IN, US)
- Dumitru Razvan Stanca (Craiova, RO)
- Daniel Ciochina (Craiova, RO)
- Radu Caplescu (Craiova, RO)
- Popescu Ionut (Craiova, RO)
Cpc classification
F16D3/843
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T29/4973
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
F16D3/76
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B63/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B67/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A coupling is disclosed for connecting rotating components of a generator and a prime mover in a power generation system. The coupling comprises a hub, a coupling flange and an elastomeric component located between the hub and the coupling flange. The elastomeric component is removable radially from the coupling.
Claims
1. A coupling for connecting rotating components of a generator and a prime mover in a power generation system, the coupling comprising: a hub; a coupling flange; and an elastomeric component located between the hub and the coupling flange, wherein the elastomeric component is removable radially from the coupling.
2. A coupling according to claim 1, wherein the hub is arranged to be connected to a generator shaft, and the coupling flange is arranged to be connected to a rotating component of the prime mover.
3. A coupling according to claim 1, wherein the elastomeric component is located inside the coupling flange during operation of the power generation system.
4. A coupling according to claim 1, wherein the elastomeric component comprises castellations which engage with castellations on the coupling flange.
5. A coupling according to claim 1, wherein the coupling flange can be moved axially in order to disengage from the elastomeric component.
6. A coupling according to claim 1, further comprising a locking assembly for holding the coupling together during operation of the power generation system.
7. A coupling according to claim 6, wherein the locking assembly, when disconnected, is movable in an axial direction to reveal the hub.
8. A coupling according to claim 1, wherein the elastomeric component is removably connected to the hub.
9. A coupling according to claim 1, wherein the elastomeric component is disc-shaped.
10. A coupling according to claim 1, comprising two elastomeric components.
11. A coupling according to claim 10, wherein both of the elastomeric components are located between the hub and the coupling flange.
12. A coupling according to claim 10, wherein removal of one of the elastomeric components allows the other elastomeric component to be slid axially along the hub and then removed in a radial direction.
13. A power generation system comprising a prime mover, a generator and a coupling connecting rotating components of the prime mover and the generator, the coupling comprising: a hub connected to a generator shaft; a coupling flange connected to a rotating component of the prime mover; and an elastomeric component located between the hub and the coupling flange, wherein the elastomeric component is removable radially from the power generation system.
14. A power generation system according to claim 13, wherein the prime mover is an engine, and the coupling flange is connected to an engine flywheel.
15. A power generation system according to claim 13, the system further comprising a bed frame, wherein the prime mover and the generator are mounted on the bed frame.
16. A power generation system according to claim 13, wherein the elastomeric component is removable without requiring removal of the generator from the prime mover.
17. A power generation system according to claim 13, the system further comprising an adaptor connecting non-rotating parts of the generator and the prime mover, wherein: the adaptor is arranged to surround the coupling; the adaptor comprises two separable parts; one part of the adaptor is removable to leave an opening while the other part of the adaptor remains in place; and the elastomeric component is removable through the opening.
18. A method of servicing a power generation system comprising a prime mover and a generator, wherein rotating components of the generator and the prime mover are connected with a coupling comprising a hub, a coupling flange and an elastomeric component, the method comprising removing the elastomeric component radially from the coupling.
19. A method according to claim 18, the method further comprising moving the coupling flange axially in order to disengage from the elastomeric component.
20. A method according to claim 18, the power generation system further comprising an adaptor connecting non-rotating parts of the generator and the prime mover, wherein the adaptor surrounds the coupling and the adaptor comprises two separable parts, the method further comprising removing one part of the adaptor to leave an opening while the other part of the adaptor remains in place, and removing the elastomeric component through the opening.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014]
[0015]
[0016]
[0017]
[0018]
DETAILED DESCRIPTION
[0019] Overview
[0020]
[0021] In the embodiment of
[0022] Flexible couplings typically include an elastomeric material. The elastomeric material may degrade over time, particularly when subject to high stresses. As a consequence, the life time of a flexible coupling varies depending on its application. In some cases the flexible coupling may fail before the end of its target life. In this case servicing of the coupling may be required outside of a scheduled overhaul of the generator set.
[0023] In existing generator set designs, the adaptor is formed from a single piece of cast metal. Windows may be provided in the adaptor, to allow an operator to connect the coupling once the generator and engine have been aligned. However this does not allow replacement or servicing of the coupling.
[0024] In order to service the coupling in existing generator set designs, the generator set is first shut down. All harnesses and other connections are disconnected, and the generator with adaptor is pulled back from the engine. Following replacement or servicing of the coupling, it is necessary for all parts to be reconnected, and the generator to be re-aligned with the engine.
[0025] As a consequence, replacement or servicing of the coupling is a complex and time consuming process, typically taking 14 to 15 hours depending on the installation. This results in high shutdown costs, both in terms of the servicing required and the lost generating capacity.
Adaptor Design
[0026] Embodiments of the present invention relate to a new adaptor design and a new flexible coupling which can facilitate servicing without requiring the generator to be moved.
[0027]
[0028] In the arrangement of
[0029] Still referring to
[0030] The adaptor 18 of
[0031]
Flexible Coupling
[0032]
[0033] In the arrangement of
[0034] The hub 50 includes a hub flange 60 with bolt holes 62. Hub bolts 64 pass through the bolt holes 62 and the bolt holes 57, 59 in the sleeves 53, 55, in order to bolt the hub 50 to the elastomeric components 52, 54. When connected, part of the hub 50 passes through the inside of the second elastomeric component 54, while the end of the hub 50 engages with the sleeve 53 in the first elastomeric component 52.
[0035] The outside circumferences of the elastomeric components include castellations 66. The coupling flange 56 is generally cylindrical, and fits around the elastomeric components 52, 54. The inside surface of the coupling flange includes castellations 68, which engage with the castellations 66 on the outside of the elastomeric components 52, 54.
[0036] The coupling flange 56 includes a flange 70 with bolt holes 72. Flange bolts 74 are used to bolt the coupling flange to the engine fly wheel through the bolt holes 72. The external locking assembly 58 comprises bolts 76 which are used to hold the coupling together.
[0037] The coupling shown in
Servicing
[0038] In use the elastomeric components 52, 54 shown in
[0039] Referring to
[0040] Referring to
[0041] Referring to
[0042] Referring to
[0043] Referring to
[0044] Referring to
[0045] Referring to
[0046] Referring to
[0047] Referring to
[0048] The elastomeric components 52, 54 can then be replaced. Steps 1 to 9 are then repeated in reverse, in order to reassemble the coupling with the new elastomeric components.
[0049] Some of the advantages which may be provided by the techniques described above are as follows: [0050] No need to move the generator back when servicing the coupling [0051] Fewer steps for disassembly/assembly [0052] Servicing time reduced by 80% compared to previous techniques [0053] Less facility space required [0054] No need to disassemble other subsystems of the generator set, such as wires from the generator [0055] Lower cost of ownership to the end user.
[0056] In the above, embodiments of the invention have been described by way of example only, and variations in the design are possible. For example, the division between the two parts of the adaptor may be in different places and the two parts are not necessarily equal. It is not necessary for the adaptor to be divided along the whole of its length, and the removable part may extend along only part of the length of the adaptor. If desired, castellations may be provided on the interfaces between the two parts of the adaptor. Furthermore, if desired, the adaptor may comprise three or more parts, the only requirement being that at least one part of the adaptor is separable from the or each other part. Many other variations in detail will be apparent to the skilled person within the scope of the appended claims.
[0057] Although embodiments of the invention have been described with reference to a generator set, the present invention may be used with any type of power generation system where an adaptor is used to connect a prime mover to a generator.