The present disclosure concerns improvements to bearings and components thereof. Embodiments disclosed herein concern improvements to bearings and components thereof specifically intended for rotatingly supporting impellers of rotodynamic pumps, such as multi-phase pumps.
Rotodynamic pumps are used in a variety of applications for transferring energy to a process fluid by means of one or more rotating impeller.
As known to those skilled in the art, dynamic pumps or rotodynamic pumps are machines wherein a fluid is pressurized by transferring kinetic energy, typically from a rotating element such as an impeller, to the fluid being processed through the pump.
Some pumps are designed for processing a multi-phase fluid, containing a liquid and a gaseous phase. Some pumps include embedded electric motors, which rotate each impeller and which can be adapted to control the rotational speed of each impeller independently of the other impellers of the pump, for instance in order to adapt the rotational speed to the actual gas/liquid ratio in each pump stage. Embodiments of multi-phase pumps with embedded electric motors are disclosed for instance in US2017/0159665.
Pump impellers are supported on a stationary shaft by means of bearings, for example polycrystalline diamond (PCD) bearings, which are provided with bearing pads made of or including synthetic diamond. During use, impellers, as well as other rotary machine components, can generate vibrations. These vibrations are transmitted through the bearings to the stationary structure and may propagate from one impeller to other impellers or other machine parts, and may damage the machine.
PCD bearings are particularly rigid and have a small coefficient of friction. These features are beneficial in many applications. However, stiffness of the bearing results in strong vibration propagations from the rotary components to the stationary components of the machine.
A need therefore exists, for improvements in bearings aimed at solving or alleviating the drawbacks of the bearings of the current art, in particular from the point of view of vibration generation and propagation, having particular regard to stiff bearings, such as PCD bearings.
According to embodiments disclosed herein, a bearing component comprises an external cylindrical member having an outer bearing surface and an inner cavity, and an internal cylindrical member, arranged in the inner cavity of the external cylindrical member and substantially coaxial thereto. The external cylindrical member and the internal cylindrical member form a gap therebetween. A resilient damping feature is arranged in the gap.
The resilient damping feature can include a corrugated laminar member or sheet.
The resilient damping feature reduces the transmission of vibrations from a rotating member, such as an impeller, to a stationery member, such as a supporting shaft of a rotodynamic pump or other rotary machine.
Further features and embodiments of the bearing according to the present disclosure are detailed in the following description and set forth in the appended claims.
A more complete appreciation of the disclosed embodiments of the invention and many of the attendant advantages thereof will be readily obtained as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings, wherein:
A novel and useful bearing structure has been developed, to improve the dynamic behavior of bearings, such as in particular, but not exclusively, PCD bearings and other bearings characterized by high stiffness. The novel bearings include two components, arranged coaxial to one another. One component rotates integrally with a rotary machine part, such as an impeller of a rotodynamic pump. The other component is stationarily housed in the machine housing. The stationary component includes damping features, which prevent or reduce the propagation of vibrations between the rotary machine component and the stationary structure of the machine.
In embodiments disclosed herein, the stationary component of the bearing includes two co-axial substantially cylindrical members, namely an internal one and an external one. The internal and external members form a gap therebetween. In the gap a resilient damping feature is arranged, which is adapted to allow dampened displacements of the external cylindrical member with respect to the internal cylindrical member. Displacements can be in a radial direction and/or in a tangential direction. Displacements can be provoked by vibrations of a rotary machine component, mounted for integral rotation with the external bearing component. The vibrations propagate through bearing pads from the outer component to the inner component and are dampened by the resilient damping feature arranged in the gap formed in the inner component, between the external cylindrical member and the internal cylindrical member thereof. This results in efficient damping of vibrations and reduced propagation of the vibrations generated by the rotary machine component towards the stationary structure of the machine.
The novel bearing structure will now be described in combination with a rotodynamic pump, and specifically with a multi-phase rotodynamic pump. Those skilled in the art will nevertheless appreciate that the bearing structure of the present disclosure can be used with advantage also in other applications, for instance whenever a relatively stiff bearing is used to support a rotary machine part subject to vibrations and damping of the vibrations is desired.
Referring now to
Referring now to
In the exemplary embodiment of
Each impeller 9 is supported on the stationary shaft 5 by means of a respective bearing 31. In the embodiment of
In presently preferred embodiments the bearing 31 is a PCD (Poly-Crystalline Diamond) bearing comprised of radial bearing pads 51A on the rotary outer bearing component 31A and radial bearing pads 51B on the stationary inner component 31B. Each bearing 31 can further include axial bearing pads 53A on the rotary outer bearing component 31A and axial bearing pads 53B on the stationary inner bearing component 31B or on the statoric part 11 of the pump 1.
According to embodiments disclosed herein, the inner bearing component 31B is configured to provide a vibration damping effect, such that vibrations generated by the rotating impeller 9, for instance, are dampened and not propagated, or propagated only in a dampened manner, through the respective bearing 31 towards the stationary structure 11 of the pump 1.
Referring now to
The external cylindrical member 61 and the internal cylindrical member 63 can be coupled to one another by a ferrule 65, see
A cylindrical gap 75 is formed between the external cylindrical member 61 and the internal cylindrical member 63. The cylindrical gap 75 extends in an axial direction, i.e. parallel to the rotation axis A-A. In the cylindrical gap 75 a resilient damping feature is arranged. As used herein, the term “resilient damping feature” can be understood as any mechanical device or combination of devices arranged between the external cylindrical member 61 and the internal cylindrical member 63 and coacting therewith, such that the vibration of one said internal and external cylindrical members 63, 61 is not transmitted to the other of said internal and external cylindrical members 63, 61, or a dampened vibration is transmitted thereto.
A lubricant fluid, preferably a lubricant liquid, such as oil or other preferably high-viscosity fluid can fill the gap 75.
In some embodiments, as shown in
In addition to a radial displacement, the external cylindrical member 61 can also move tangentially with respect to the internal cylindrical member 63, i.e. the two members 61, 63 can rotate with respect to one another by a limited angle. The tangential displacement (arrow f61,
A tangential displacement provoked by vibrations or oscillations induced by the rotary impeller causes flexural deformation of the corrugations 77A of the corrugated tubular sheet 77, which therefore dampens the oscillations.
The damping effect of the resilient damping feature can be improved by high-viscosity lubrication liquid contained in the gap 75 and/or by friction between the resilient damping feature 77 and the surfaces of the external and internal cylindrical members 61, 63 in contact with the corrugations 77A of the resilient damping feature 77.
Referring now to
Referring to
While the invention has been described in terms of various specific embodiments, it will be apparent to those of ordinary skill in the art that many modifications, changes, and omissions are possible without departing form the spirit and scope of the claims. In addition, unless specified otherwise herein, the order or sequence of any process or method steps may be varied or re-sequenced according to alternative embodiments.
Number | Date | Country | Kind |
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102019000000635 | Jan 2019 | IT | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2020/025012 | 1/14/2020 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2020/148090 | 7/23/2020 | WO | A |
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20180087516 | Osama et al. | Mar 2018 | A1 |
20190186245 | Bellmyer | Jun 2019 | A1 |
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19701178 | Jul 1998 | DE |
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Number | Date | Country | |
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20220074422 A1 | Mar 2022 | US |