The present invention relates to a suction casing that guides a fluid, which is introduced along a radial direction, so as to flow along an axial direction toward a substantially annular-shaped opening, and also relates to a fluid machine provided therewith.
Priority is claimed on Japanese Patent Application No. 2009-047187, filed on Feb. 27, 2009, the content of which is incorporated herein by reference.
In fluid machines such as compressors for use, for example, in pipelines and large turbo refrigerators, a fluid introduction portion that introduces a fluid is provided with a suction casing for supplying the fluid from the fluid introduction portion to the apparatus main unit entirely in the circumferential direction about the rotation axis. Such a suction casing includes, for example: a suction nozzle that introduces a fluid from an outer circumferential side to an inner circumferential side in the radial direction; and a circular flow passage formed in a doughnut shape in communication with the suction nozzle. The suction casing has a construction that introduces the fluid in the axial direction through the circular flow passage (for example, see Patent Document 1).
In the fluid machine as described above, a fluid is required to be uniformly supplied entirely in the circumferential direction of the suction casing in order to improve performance and suppress vibration. Therefore, a suction casing as shown in
Patent Document 1: Japanese Unexamined Patent Application, First Publication No. 2007-309154
However, even with the suction casing 51 shown in
The present invention has been achieved in view of the aforementioned circumstances, and provides a suction casing and a fluid machine capable of introducing a fluid in the axial direction as one uniform in the circumferential direction while they are made smaller in the axial direction.
To solve the above problem, the present invention proposes the following.
A suction casing according to one aspect of the present invention includes: a suction nozzle that introduces a fluid from an outer circumferential side to an inner circumferential side in a radial direction; and a chamber that includes a substantially doughnut-shaped space in communication with an inside of the suction nozzle on the outer circumferential side and that guides the fluid, introduced from the suction nozzle, to an inlet opening portion opening in an axial direction and disposed in a substantially annular shape, in which the chamber is formed so that a radial width is narrower in a circumferential direction from a joint portion in communication with the suction nozzle to an opposite side across a central axis.
With this construction, the radial width of the chamber including a substantially doughnut-shaped space is formed so as to be narrower in the circumferential direction from the joint portion in communication with the suction nozzle to the opposite side across the central axis. Consequently, the fluid introduced from the suction nozzle is guided so as to be closer to the inlet opening portion in the radial direction as it flows along the circumferential direction from the joint portion side to the opposite side. This can promote the flow into the inlet opening portion on the side opposite to the joint portion. Therefore, it is possible to suppress the concentration of the fluid only on the joint portion side in the chamber. Furthermore, it is possible to cause the fluid to flow to the side opposite to the joint portion while the fluid is prevented from flowing directly into the inlet opening portion without flowing from the joint portion side to the side opposite to the joint portion. This can make the fluid uniform in the circumferential direction. Furthermore, because the shape in which the radial width is narrower along the circumferential direction makes it possible to make the fluid uniform in the circumferential direction, the dimension of the chamber in the axial direction can be made minimum.
The suction casing may further include a plurality of first partitioning blades provided in the chamber in the circumferential direction, which guide the fluid, having flowed in the chamber from the suction nozzle along the circumferential direction, to the inlet opening portion, and each of the first partitioning blades may be disposed so as to extend toward the inlet opening portion along the radial direction on the inner circumferential end side, and is also disposed so as to extend closer to the suction nozzle as extending closer to the outer circumferential end side.
With this construction, the fluid introduced from the suction nozzle into the chamber is guided to the inlet opening portion by the plurality of first partitioning blades that are provided in the circumferential direction and are disposed so as to extend toward the inlet opening portion on the inner circumferential end side along the radial direction. Here, the portions of the first partitioning blades located on the outer circumferential side are disposed so as to extend toward the suction nozzle as they are closer to the outer circumferential end. Thereby, also on the side opposite to the joint portion, it is possible to preferably guide the fluid, which flows from the joint portion side along the circumferential direction, to the inlet opening portion. As a result, it is possible to further promote the flow of the fluid in the circumferential direction from the joint portion side to the opposite side in the chamber, and hence, to make the fluid that is introduced to the inlet opening portion further uniform in the circumferential direction.
The suction casing may further include a second partitioning blade that is provided in the chamber, and that guides the fluid, introduced from the suction nozzle along the radial direction, so as to flow along the circumferential direction.
With this construction, the fluid, which has been introduced from the suction nozzle into the chamber along the radial direction, is guided along the circumferential direction by the second partitioning blade. Therefore, it is possible to further promote the flow of the fluid in the circumferential direction from the joint portion to the opposite side, and hence, to make the fluid that is introduced to the inlet opening portion further uniform in the circumferential direction.
The suction casing may further include a partitioning portion that defines an inside of the chamber in the circumferential direction on a side opposite to the joint portion of the chamber across the central axis.
With this construction, the inside of the chamber is defined in the circumferential direction by the partitioning portion on the side opposite to the joint portion. The fluid, which flows from the joint portion to the opposite side on one side in the circumferential direction, is restricted from passing the side opposite to the joint portion and then further flowing to the other side in the circumferential direction. Therefore, the branched flows of the fluid branched at the joint portion to both sides in the circumferential direction can be prevented from interfering each other. Furthermore, on the side opposite to the joint portion, the branched portions of the fluid are guided to the inlet opening portion. Therefore, it is possible to make the fluid that is introduced to the inlet opening portion further uniform in the circumferential direction.
The suction casing may further include: a casing main unit internally having a substantially doughnut-shaped hollow portion; and a fitting part that is detachably fitted onto an inner circumferential surface of the casing main unit to form a remaining space of the hollow portion as the chamber.
With this construction, at the time of assembly, it is possible to utilize the hollow portion, from which the fitting part is removed, to attach the internal structure for the apparatus main unit with ease. Furthermore, the fitting part is fitted onto the outer circumferential surface of the casing main unit, to thereby make it possible to easily form such a chamber as to have a radial width being narrower in the circumferential direction.
A fluid machine according to one aspect of the present invention includes: the suction casing; a rotary shaft rotatable about an axis of itself; an impeller in which the fluid is guided by the suction casing to an inlet opening portion disposed substantially annularly on one side in an axial direction, the impeller being a substantially disk-like member attached to the rotary shaft.
According to the fluid machine with this construction, provision of the aforementioned suction casing makes it possible to introduce the fluid uniformly in the circumferential direction. This makes it possible to improve the performance and suppress the vibration, and also to make the fluid machine as a whole smaller in the axial direction.
According to the suction casing of the present invention, it is possible to introduce the fluid in the axial direction as one uniform in the circumferential direction while making the suction casing smaller in the axial direction.
Furthermore, according to the fluid machine of the present invention, it is possible to improve the performance and suppress the vibration, and also to make the fluid machine as a whole smaller in the axial direction.
Hereunder is a description of an embodiment according to the present invention with reference to
In the apparatus main unit 1B, the rotary shaft 3 is provided with a plurality of impellers 4A and 4B in an axial direction L. In the casing main unit 2, a plurality of operation chambers 2a is provided in which the impellers 4A and 4B are contained on one-on-one basis. The impellers 4A and 4B have: an outlet opening portion 4a that opens to an outer circumferential side in its radial direction D; and an inlet opening portion 4b that opens to an upstream L1 side in the axial direction L.
Furthermore, in the casing main unit 2, a discharge passage 2b that guides a fluid F discharged from an impeller 4A on the upstream L1 side in the axial direction L to an impeller 4B on a downstream L2 side in the axial direction L is formed between the operation chambers 2a in which the impellers 4A and 4B are contained. The discharge passage 2b is formed annularly about the axis of the rotary shaft 3. In addition, the discharge passage 2b is formed in a substantially U shape in a cross-section of the rotary shaft 3 along the axial direction L, and guides the fluid F discharged from the outlet opening portion 4a of the impeller 4A on the upstream L1 side in the axial direction L to the inlet opening portion 4b of the impeller 4B on the downstream L2 side in the axial direction L. In the discharge passage 2b, return vanes 5 are disposed in a radial manner on the downstream L2 side in the axial direction L.
In the discharge casing 1C, the casing main unit 2 is provided with: a discharge passage 2c into which the fluid F discharged from the outlet opening portion 4a of the impeller 4B on the most downstream L2 side in the axial direction L; an annular scroll 2d in communication with the discharge passage 2c; and a discharge nozzle 6 in communication with the scroll 2d. The fluid F is discharged from the discharge nozzle 6 to the outer circumferential side in the radial direction D.
Next is a detailed description of the suction casing 1A. As shown in
In addition, the chamber 12 includes: a substantially annular introduction portion 13 disposed on the outer circumferential side in the radial direction D; and a substantially annular guide portion 14 that communicates the introduction portion 13 with the inlet opening portion 4b of the impeller 4A. In the cross-section along the axial direction L, the guide portion 14 is curved so as to be closer to the downstream L2 side in the axial direction L from the introduction portion 13 toward the inner circumferential side in the radial direction D, and thereby in communication with the inlet opening portion 4b of the impeller 4A. This makes it possible to cause the fluid F, which has been introduced into the introduction portion 13 through the suction nozzle 11, to circulate in the introduction portion 13 along the circumferential direction C, and also to be introduced into the guide portion 14, then gradually to the inner circumferential side in the radial direction D along the guide portion 14, and finally into the inlet opening portion 4b of the impeller 4A.
Here, as shown in
In the present embodiment, the chamber 12 is formed of: a substantially doughnut-shaped hollow portion 2e formed in the casing main unit 2; and a fitting part 16 that is removably fitted into the hollow portion 2e. The hollow portion 2e has: a first portion 2f that corresponds to the introduction portion 13 of the chamber 12 and is formed in an annular shape; and a second portion 2g that corresponds to the guide portion 14 of the chamber 12. The second portion 2g has an annular shape, and curves so as to extend further toward the inner circumferential side in cross-section along the axial direction L as it extends further to the downstream L2 side in the axial direction L. The fitting part 16 is fitted in a range from the side portions 12b to the lower portion 12c of the chamber 12 on an outer circumferential surface 2h of the hollow portion 2e. The fitting part 16 is formed in a substantially crescent shape so as to be thicker from end portions 16a, which correspond to the side portions 12b, to a central portion 16b, which corresponds to the lower portion 12c. With the change in thickness of the fitting part 16, the radial width Wd2 of the introduction portion 13 is formed so as to be narrower from the side portions 12b to the lower portion 12c in the range from the side portions 12b to the lower portion 12c into which the fitting part 16 is fitted. Furthermore, the fitting part 16 is formed so as to continue into the partitioning portion 15.
At the time of manufacture, the casing main unit 2 may be made dividable along a plane in the hollow portion 2e orthogonal to the axial direction L, and the fitting part 16 may be fitted into the hollow portion 2e along the axial direction L. Alternatively, the casing main unit 2 and the fitting part 16 may be made dividable along the axial direction L, and the divided units of the fitting part 16 may be fitted into the corresponding divided units of the hollow portion 2e.
Furthermore, in the chamber 12, the guide portion 14 is provided with a plurality of first partitioning blades 17 in the circumferential direction C. The first partitioning blades 17 guide the fluid F, which flows through the introduction portion 13 in the circumferential direction C, toward the inlet opening portion 4b. The portions of the first partitioning blades 17 located on an inner circumferential end 17a side are disposed so as to extend toward the inlet opening portion 4b along the radial direction D. On the other hand, the portions of the first partitioning blades 17 located on an outer circumferential end 17b are disposed so as to extend closer to the suction nozzle 11 as they are closer to the outer circumferential end 17b. Therefore, the first partitioning blades 17 are different in shape according to their position in the circumferential direction C. Namely, in the upper portion 12a provided with the suction nozzle 11, the first partitioning blade 17 is formed in a linear shape in the radial direction D from the inner circumferential end 17a to the outer circumferential end 17b. In the side portions 12b and the lower portion 12c, the first partitioning blades 17 are formed in a curved manner so as to extend at first along the radial direction D and then toward the upper portion 12a, from the inner circumferential end 17a to the outer circumferential end 17b. Their curvature is greater from the side portion 12b to the lower portion 12c. In the present embodiment, the first partitioning blades 17 have been described as being provided on the guide portion 14 in the chamber 12. However, the first partitioning blades 17 may have a construction in which the outer circumferential end 17b extends to the introduction portion 13.
In the introduction portion 13 of the chamber 12, the upper portion 12a functioning as a joint portion that is joined to the suction nozzle 11 is provided with second partitioning blades 18 that guide the fluid F, which is introduced from the suction nozzle 11 along the radial direction D, so as to flow along the circumferential direction C. In the present embodiment, three second partitioning blades 18 are provided. The second partitioning blade 18 at the center is disposed in the radial direction D along a center line L11 of the suction nozzle 11, and continues into the first partitioning blade 17 located highest in the upper portion out of the first partitioning blades 17 (namely, the first partitioning blade 17 provided along the center line L11). The second partitioning blades 18 on both ends are disposed so as to be spaced further away from the upper portion 12a to the side portion 12b. The forms of the second partitioning blades 18 are not limited to those of the present embodiment. For example, more of them may be arranged, and they may have their upper ends extended into the inside of the suction nozzle 11.
Next is a description of the operation of the suction casing 1A of this embodiment. As shown in
Here, the radial width Wd of the introduction portion 13 of the chamber 12 is formed so as to be narrower along the circumferential direction C from the upper portion 12a to the lower portion 12c through the side portions 12b.
As a result, the fluid F introduced from the suction nozzle 11 is guided so as to be closer to the inlet opening portion 4b as it flows in the circumferential direction C from the upper portion 12a to the lower portion 12c through the side portions 12b. This can promote the flow of the fluid F into the inlet opening portion 4b of the impeller 4A through the guide portion 14 on the lower portion 12c side opposite to the upper portion 12a side. Therefore, it is possible to suppress the concentration of the fluid F only on the upper portion 12a side in the chamber 12. Furthermore, it is possible to suppress the production of a drift (imbalance of distribution in velocity and pressure) in the circumferential direction C resulting from the fluid F flowing from the upper portion 12a not through the side portions 12b and the lower portion 12c into but directly into the inlet opening portion 4b of the impeller 4A. Namely, in the suction casing 1A of the present invention, the fluid F can be flowed to the lower portion 12c side, making the fluid F uniform in the circumferential direction C. Furthermore, with the shape of the chamber 12 whose radial width Wd is narrower along the circumferential direction C, it is possible to make the fluid F uniform in the circumferential direction C, and hence, to make the dimension of the chamber 12 along the axial direction L minimum. Furthermore, the compressor 1 provided with the aforementioned suction casing 1A can be improved in performance and its vibration can be suppressed by the fluid F supplied to the apparatus main unit 1B being made uniform in the circumferential direction C. In addition, because the dimension of the suction casing 1A along the axial direction L can be made minimum as described above, the compressor 1 as a whole can be made smaller in the axial direction L. Therefore, it is possible to suppress its vibration further by making the span length of the rotary shaft 3 shorter.
In particular, the inside of the chamber 12 is defined in the circumferential direction C by the partitioning portion 15 at the lower portion 12c located on the opposite side of the upper portion 12a through which the fluid F is introduced from the suction nozzle 11. As a result, the fluid F flowing from the upper portion 12a to the lower portion 12c on one side in the circumferential direction C is restricted from passing the lower portion 12c into the other side in the circumferential direction C. Therefore, the branched flows of fluid F branched at the upper portion 12a to both sides in the circumferential direction C are prevented from passing the lower portion 12c to interfere each other. Furthermore, on the lower portion 12c side, each of the branched fluid F is guided to the inlet opening portion 4b of the impeller 4A. This makes it possible to make the fluid F that is introduced to the inlet opening portion 4b further uniform in the circumferential direction C. In the present embodiment, the outer circumferential surface 12d of the chamber 12 is formed in a manner curving toward the inner circumferential side in the radial direction D so as to continue into the partitioning portion 15 at the lower portion 12c. Therefore, it is possible to more smoothly guide the inflow of the fluid F at the lower portion 12c from the introduction portion 13 to the guide portion 14. Therefore, it is possible to make the fluid F that is introduced to the inlet opening portion 4b further uniform in the circumferential direction C.
As described above, the fluid F that has been introduced from the suction nozzle 11 into the chamber 12 along the radial direction D can be guided so as to flow along the circumferential direction C by the second partitioning blades 18. Therefore, it is possible to further promote the flow of the fluid F in the introduction portion 13 from the upper portion 12a side to the lower portion 12c side along the circumferential direction C. In addition, the guide portion 14 is provided with the first partitioning blades 17, which are disposed so as to extend closer to the suction nozzle 11 as they are closer to the outer circumferential end 17b side. As a result, also on the lower portion 12c side, it is possible to preferably guide the fluid F, which flows along the circumferential direction C from the upper portion 12a, to the inlet opening portion 4b of the impeller 4A through the guide portion 14. Therefore, in the chamber 12, it is possible to further promote the flow of the fluid F in the circumferential direction C from the upper portion 12a side to the lower portion 12c side. As described above, in the present embodiment, with the first partitioning blades 17 and the second partitioning blades 18, it is possible to make the fluid F, which is introduced to the inlet opening portion 4b of the impeller 4A, further uniformed in the circumferential direction C.
In the present embodiment, the chamber 12 is formed of: the hollow portion 2e formed in the casing main unit 2: and the fitting part 16 that is removably fitted onto the outer circumferential surface 2h of the hollow portion 2e. Therefore, in assembling the compressor 1, it is possible to utilize, with the fitting part 16 being unfitted, the hollow portion 2e of the casing main unit 2 to mount the internal structure onto the apparatus main unit 1B with ease. On the other hand, with the fitting part 16 being fitted onto the outer circumferential surface of the casing main unit 2, it is possible to easily form such a chamber 12 as to have a radial width Wd being narrower in the circumferential direction C.
While the embodiment of the present invention has been described in detail above with reference to the drawings, the specific structure of this embodiment is not limited to the above description. Design modifications and the like can be included insofar as they do not depart from the scope of the present invention.
In the above embodiment and modifications, the description has been for the case where the radial width of the chamber is set so as to be substantially the same from the upper portion to the side portions and also so as to be narrower from the side portions. However, the construction is not limited to this. For example, the radial width may be gradually narrower from the upper portion. Alternatively, the range in which the radial width is the same may be extended to the side portions and lower, and the radial width may be narrower only in the range on the lower portion side.
According to the suction casing of the present invention, the fluid can be introduced in the axial direction as one uniform in the circumferential direction while the suction casing is made smaller in the axial direction.
Furthermore, according to the fluid machine of the present invention, it is possible not only to improve the performance and suppress the vibration, but also to make the fluid machine as a whole smaller.
Number | Date | Country | Kind |
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2009-047187 | Feb 2009 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2010/000930 | 2/16/2010 | WO | 00 | 8/9/2011 |
Publishing Document | Publishing Date | Country | Kind |
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WO2010/098032 | 9/2/2010 | WO | A |
Number | Name | Date | Kind |
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7559742 | Inoue et al. | Jul 2009 | B2 |
20020192076 | Hansen et al. | Dec 2002 | A1 |
20030099544 | Brekke | May 2003 | A1 |
Number | Date | Country |
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1 593 854 | Nov 2005 | EP |
2000-291593 | Oct 2000 | JP |
2002-327700 | Nov 2002 | JP |
2004-144029 | May 2004 | JP |
2007-309154 | Nov 2007 | JP |
1211419 | Sep 1984 | SU |
1211419 | Feb 1986 | SU |
Entry |
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International Search Report issued May 18, 2010 in International (PCT) Application No. PCT/JP2010/000930. |
Chinese Office Action issued Aug. 8, 2013 in corresponding Chinese Patent Application No. 201080009253.5 with English translation. |
Written Opinion of the International Searching Authority issued May 18, 2010 in International (PCT) Application No. PCT/JP2010/000930 w/English translation. |
Number | Date | Country | |
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20110311356 A1 | Dec 2011 | US |