Embodiments of the subject matter disclosed herein relate to turbo-machines, methods for fixing bundles of a turbo-machines, and covers for the openings of barrel casings.
A centrifugal compressor or pump comprise an external pressure barrel casing that accommodates a diaphragm bundle. Typically, the barrel casing defines a cylindrical cavity and the diaphragm bundle has a cylindrical shape. The diaphragm bundle typically comprises at least rotor and stator with their impellers, seals and fluid channels.
The cylindrical cavity, defined by the barrel casing, has an open at one side, typically the circular lateral side. This open allow the insertion of the bundle. The open is closed after insertion of the bundle by mean of a cover, which typically has the form of an end wall structure.
The barrel casing contains stationary and rotatable components. Stationary components are in general rigidly fastened to the barrel casing; whilst rotatable components are generally held up by bearings positioned in the cover.
The barrel casing of a turbo-machine in operation tends to expand radially, due to the rise of temperature and pressure at its inside; whilst the cover tends to shift axially. This can bring to a misalignment of stationary components with respect to rotatable components, affecting the working conditions of the machine. In fact, it is essential that the center axis of the cover is kept at all times in alignment with the central axis of the barrel casing.
Thus the steps for assembling a turbo-machine of this kind are: insert the various portion of the shear ring on the groove 70; insert the bundle 5; mount the casing 20 on the open side of the barrel casing 10; fix the barrel casing 10 to the cover 20 by mean of the shear ring 30, threading the screws emerging from the outer surface of the barrel casing 10. The shear ring 30 is thus partially engaged in the groove 40 and partially engaged in the groove 70, blocking, in this way, the axial movement of the bundle 5 and the cover 20.
In this configuration, the depth of the groove 70 has to be dimensioned to contain completely the cross section of the shear ring 3, in order to perform the insertion of the bundle 5 and the successive fixing. Furthermore, un-engaging screws must be provided (not shown in
Thus, the wall of the barrel casing 10 must have a certain minimum thickness to realize the groove 70 of the proper dimension. This solution increases the overall dimension of the turbo machine, the amount of material required to produce the barrel casing 10 and impacts with dimensional constraints of the turbo-machine.
Therefore there is a need for a system for fixing a cover in a turbo machine barrel casing that is easier to mount and dismount, thus allowing saving on maintenance, and does not require an increase in size at the mouth of the barrel casing.
According to first exemplary embodiments, there is a turbo machine comprising: a barrel casing having a cylindrical internal surface defining an internal containment volume, a bundle having a cylindrical shape, adapted to be accommodated into the internal containment volume, a cylindrical cover connected to the bundle to close the internal containment volume and hold the bundle inside the barrel casing, a split shear ring adapted to fix the barrel casing with the cylindrical cover wherein the external cylindrical surface of the cylindrical cover and the cylindrical internal surface of the barrel casing are provided with a first circumferential groove and a second circumferential groove adapted to accommodate the shear ring and wherein the first grooves is adapted to completely accommodate the cross section of the split shear ring.
According to second exemplary embodiments, there is a method for fixing a bundle of a turbo machine inside a barrel casing.
Specifically, before the insertion of the bundle into the barrel casing, a split shear ring is completely inserted within a first groove machined in the external surface of a cover for an opening of a barrel casing of a turbo machine.
More in general, before insertion of the bundle into the barrel casing, one or more shear action devices are completely inserted within one or more recesses of the bundle; furthermore, after insertion of the bundle into the barrel casing, the one or more shear action devices are partially inserted within the one or more recesses of the bundle and partially inserted within one or more recesses of the barrel casing; the implicit movement of these devices is at least partially in the radial direction; such general principle is applicable for example to covers for openings of a barrel casing of a turbo machine. In an embodiment, the one or more shear action devices are held within the one or more recesses of the bundle by one or more springs. More particularly, the one or more shear action devices are pulled out of the one or more recesses of the bundle by one or more mechanical devices acting on the one or more shear action devices; the movement of these devices is at least partially in the radial direction.
According to third exemplary embodiments, there is system for holding a cover connected to a bundle in a barrel casing of a turbo machine by means of a shear ring that engage partly the first groove and partly the second groove, the first groove machined in the external cylindrical surface of the cover and the second groove machined in the inner surface of the barrel casing wherein the first groove is adapted to accommodate completely the cross section of the shear ring and wherein the shear ring is maneuverable from outside the barrel casing, by mean of screwing means.
The present invention will become more apparent from the following description of exemplary embodiments to be considered in conjunction with accompanying drawings wherein:
The following description of exemplary embodiments refer to the accompanying drawings. The same reference numbers in different drawings identify the same or similar elements. The following detailed description does not limit the invention. Instead, the scope of the invention is defined by the appended claims.
Reference throughout the specification to “one embodiment” or “an embodiment” means that a particular feature, structure, or characteristic described in connection with an embodiment is included in at least one embodiment of the subject matter disclosed. Thus, the appearance of the phrases “in one embodiment” or “in an embodiment” in various places throughout the specification is not necessarily referring to the same embodiment. Further, the particular features, structures or characteristics may be combined in any suitable manner in one or more embodiments.
The fixing between the barrel casing 1 and the cover 2 occurs by mean of a shear ring 3. For this scope, a first groove 6 is provided on the outer surface of the cover 2, to accommodate the cross section of the shear ring 3. In particular, the first groove 6 is adapted to accommodate the whole cross section of the shear ring 3. A second groove 4 is provided on inner surface of the barrel casing 1 to accommodate the cross section of the shear ring 3. In particular, the second groove 4 is adapted to accommodate a part of the whole cross section of the shear ring 3.
The shear ring 3 is adapted to fix barrel casing 1 and the cover 2 and consequently avoid axial movement of the bundle 5. Thus, the ring 3 is subject to shear forces; for this scope the cross section of the shear ring 3 has a rectangular shape; the grooves 6 and 4 have the same (complementary) shape.
The shear ring 3 is movable in a first mounting position (shown in
The clearance between the bundle 5 and barrel casing 1 is very limited and designed in relation with the thermodynamic cycle of the turbo-machine. The outer surface 2a of the cover 2 and the inner surface 1a of the barrel casing 1 are in contact in mounted configuration. Thus to insert the bundle 5 and close the open 15 no part can protrude from the outer surface 2a of the cover 2. In fact, during the mounting phase, the shear ring 3 is completely engaged in the groove 6. The portions 3a and 3b could slip off from their position in the groove 6 during the mounting phase. In particular second portion 3b, at the lower portion of the cover 2, due to gravity force could very easily slip off. To the end, the shear ring is provided with holding means (not show in figure, but visible in
In this position, the operator can move the shear ring 3 in the second mounted position and thus realize the fixing of the barrel casing 1 with the cover 2. The screw 10 allows the movement of the shear ring 3 from the first to the second position. In one embodiment, barrel casing 1 comprises a first through hole from the surface of the outer surface of the barrel casing 1 to the seat defined by the groove 4. In this way, the screw 10 can enter in contact with the ring 3. In particular, the threaded portion of the screw 10 engage with a threaded hole on the ring 3. The screwing action imposed raise the ring 3 outwardly with respect to the axis 50, according to the radial direction R. Thus the ring 3 engages the groove 4. In one embodiment, the thread on the ring 3 and the screw 10 are configured to raise the ring 3 so as that in the mounted configuration it fully engages the groove 6. In another embodiment, the thread on the ring 3 and the screw 10 are configured to raise the ring 3 so that in the mounted configuration it partially engages the groove 6.
In one embodiment, one screw 10 per portion of ring 3 is provided. Furthermore, are provided reference means adapted to put the ring 3 in one predetermined angular position. In the predetermined angular position, the first through hole on the barrel casing 1 collimate with the threaded hole on the ring 3. The operator can thus performs the mounting procedure.
In one embodiment, the same screw 10 is adapted to move the ring 3 to the third demounting position, coinciding with the first mounting position, namely the groove cross section of the ring 3 wholly contained in the first groove 6.
According to this embodiment, a first screwing sense of the screw 10, i.e. the clockwise sense, realize the raising of the ring 3 from the first mounting position to the second mounted position. A second screwing sense of the screw 10, i.e. the counterclockwise sense, realize the lowering of the ring 3 from the second mounted position to the third demounting position (coinciding with the first mounting position).
As shown in
In one embodiment the resilient means comprise an annular spring that surround the ring 3. According to another embodiment, the resilient means comprise a first helical spring 35 on a first groove realized on the surface 31 of the ring 3, and a second helical spring 36 on a second groove realized on the surface 31 of the ring 3. The first groove and the second groove are parallel and accommodate the whole cross section of the spring 35 and 36. Thus, the springs 35 and 36 are flush with the surface 31 of the ring 3. It worth saying that the first helical spring 35 is a unique spring that surround the portions composing the ring 3, as the second helical spring 36 that, in turn, surround the portions composing the ring 3.
The resilient means thus impress a radial force to the ring 3 toward the axis 50. In
In the mounted position the ring 3 is raised as shown in
In case of maintenance of the barrel 5, is necessary dismount the cover 2 and extract it from the containment volume in which is inserted. According to one embodiment, the operator thread the screw in the proper sense. Thus the screw 10 disengage the ring 3. The helical spring 35 and 36, in the expanded position, tend to return in their normal position exercising a radial force on the surface 31 of the ring 3 directed to the central axis 50. The force brings back the ring 3 on the groove 6, in the third demounting position. Thus, according to these embodiments, mustn't provided second different means other than screw 10 to bring the ring 3 in a demounting position to carry out maintenance operations.
Embodiments are also directed to a method for fixing a bundle 5 of a turbo machine 100 inside a barrel casing 1 of the machine, wherein before the insertion of the bundle 5 into the barrel casing 1, the split ring 3 is completely inserted within the first groove 6 machined in the external surface of the cover 2. In one embodiment, after the insertion of the bundle 5 into the barrel casing 1, the portions forming the split shear ring 3 are pull up using the screw 10 inserted into the wall of the barrel casing 1 so that, seen in cross section, the segments forming the split shear ring 3 remain engaged partly the first groove 6 and partly the second groove 4.
System for holding a cover 2 connected to a bundle 5 in a barrel casing 1 of a turbo machine 100 by means of a shear ring 3 that engage partly the first groove 6 and partly the second groove 4, the first groove 6 machined in the external cylindrical surface of the cover 2 and the second groove 4 machined in the inner surface of the barrel casing 1 wherein the first groove 6 is adapted to accommodate completely the cross section of the shear ring 3 and wherein the shear ring 3 is maneuverable from outside the barrel casing 1, by mean of screwing means 10.
This written description uses examples to disclose the invention, including the preferred embodiments, and also to enable any person skilled in the art to practice the invention, including making and using any devices or systems and performing any incorporated methods. The patentable scope of the invention is defined by the claims, and may include other examples that occur to those skilled in the art. Such other examples are intended to be within the scope of the claims if they have structural elements that do not differ from the literal language of the claims, or if they include equivalent structural elements with insubstantial differences from the literal languages of the claims.
Number | Date | Country | Kind |
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CO2013A0053 | Oct 2013 | IT | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2014/072834 | 10/24/2014 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2015/059266 | 4/30/2015 | WO | A |
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Number | Date | Country |
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53104411 | Sep 1978 | JP |
Entry |
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Italian Search Report issued for IT application CO2013A000053 dated Jul. 22, 2014. |
Search Report and Written Opinion issued in connection with corresponding PCT application PCT/EP2014/072834, dated Jan. 1, 2016. |
Examination Report issued in connection with corresponding GC Application No. 2014/28160 dated Sep. 18, 2018. |
Number | Date | Country | |
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20160265555 A1 | Sep 2016 | US |