Scroll casing and centrifugal compressor
10655637 ยท 2020-05-19
Assignee
Inventors
Cpc classification
F04D29/442
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2250/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/667
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/4206
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D17/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2250/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/441
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D29/44
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D17/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A scroll casing forms a scroll flow passage of a centrifugal compressor, and, provided that, in a cross section of the scroll flow passage, Eo is an outer end of the scroll flow passage in a radial direction of the centrifugal compressor, Ef is a front end of the scroll flow passage in an axial direction of the centrifugal compressor, and Mw is a middle point of a maximum flow-passage width Wmax of the scroll flow passage in the radial direction, a flow passage height H of the scroll flow passage in the axial direction gradually increases from a position of the outer end Eo to a position of the front end Ef with respect to the radial direction, and the scroll flow passage has a recirculation flow suppressing cross section in which the front end Ef is disposed on an inner side, in the radial direction, of the middle point Mw, in a section disposed at least partially in a region closer to a scroll start than a connection position of the scroll start and a scroll end.
Claims
1. A scroll casing which forms a scroll flow passage of a centrifugal compressor, wherein, in a cross section of the scroll flow passage, Eo is an outer end of the scroll flow passage in a radial direction of the centrifugal compressor, Ef is a front end of the scroll flow passage in an axial direction of the centrifugal compressor, Mw is a middle point of a maximum flow-passage width Wmax of the scroll flow passage in the radial direction, Lz is a line passing through a middle point Mw of a maximum flow-passage width Wmax of the scroll flow passage in the radial direction and parallel to the axial direction, Lr is a line passing through a middle point Mh of a maximum flow-passage height Hmax of the scroll flow passage in the axial direction and parallel to the radial direction, and C is an intersection of the line Lz and the line Lr, a flow passage height H of the scroll flow passage in the axial direction gradually increases from a position of the outer end Eo to a position of the front end Ef with respect to the radial direction, the scroll flow passage has a recirculation flow suppressing cross section in which the front end Ef is disposed on an inner side, in the radial direction, of the middle point Mw, in a section disposed at least partially in a region closer to a scroll start than a connection position of the scroll start and a scroll end, and a distance from a rotational axis of the centrifugal compressor to Mh in the radial direction is shorter than a distance from the rotational axis to the intersection C in the radial direction.
2. The scroll casing according to claim 1, wherein a flow passage width W of the scroll flow passage in the radial direction gradually increases from a position of the front end Ef toward a position of the outer end Eo with respect to the axial direction, and wherein, in the recirculation flow suppressing cross section, the outer end Eo is disposed on a back side, in the axial direction, of the middle point Mh.
3. The scroll casing according to claim 1, wherein, at least in a part of a section of the scroll flow passage having the recirculation flow suppressing cross section, the maximum flow-passage width Wmax and a distance r between the front end Ef and the middle point Mw in the radial direction satisfies r0.1Wmax.
4. The scroll casing according to claim 1, wherein, an angular position about a scroll center of the scroll flow passage is zero degree at the connection position and the angular position is at a position closer to the scroll start than the connection position, the recirculation flow suppressing cross section is disposed in at least a part of a section from =zero degree to =120 degrees in the scroll flow passage.
5. The scroll casing according to claim 1, wherein, an angular position about a scroll center of the scroll flow passage is zero degree at the connection position and the angular position is at a position closer to the scroll start than the connection position, the recirculation flow suppressing cross section is disposed from =zero degree to a first angular position 1 in the scroll flow passage.
6. The scroll casing according to claim 5, wherein the first angular position 1 is an angular position of not less than 10 degrees.
7. The scroll casing according to claim 1, wherein the scroll flow passage includes a section having a circular cross-sectional shape at downstream of the first angular position 1.
8. The scroll casing according to claim 1, wherein the recirculation flow suppressing cross section is disposed over an entire region in a circumferential direction of the scroll flow passage.
9. The scroll casing according to claim 1, wherein, in the cross section of the scroll flow passage, the recirculation flow suppressing cross section is divided into four regions by the line Lz and the line Lr, of the four regions, A1 is an area of a region positioned on an outer side in the radial direction and on a back side in the axial direction of an intersection C of the line Lz and the line Lr, A2 is an area of a region positioned on the outer side in the radial direction and on a front side in the axial direction of the intersection, and A3 is an area of a region positioned on an inner side in the radial direction and on a front side in the axial direction of the intersection, the area A1, the area A2, and the area A3 satisfy A1>A2 and A3>A2, in at least a part of a section of the scroll flow passage, the section having the recirculation flow suppressing cross section.
10. The scroll casing according to claim 1, wherein, in the cross section of the scroll flow passage, the recirculation flow suppressing cross section is divided into four regions by the line Lz and the line Lr, a flow-passage wall of a region positioned on an outer side in the radial direction and on a back side in the axial direction of the intersection C of the line Lz and the line Lr, of the four regions, includes an arc portion having a first curvature radius R1, a flow-passage wall of a region positioned on an outer side in the radial direction and on a front side in the axial direction of the intersection C, of the four regions, includes an arc portion having a second curvature radius R2 which is greater than the first curvature radius R1, and a flow-passage wall of a region positioned on an inner side in the radial direction and on a front side in the axial direction of the intersection C, of the four regions, includes an arc portion having a third curvature radius R3 which is smaller than the second curvature radius R2.
11. The scroll casing according to claim 1, wherein, that R is a distance between a centroid of the recirculation flow suppressing cross section and a scroll center of the scroll flow passage, the scroll flow passage includes, in a section disposed at least partially in a region closer to the scroll start than the connection position of the scroll start and the scroll end, a centroid position shift section where the distance R decreases from a downstream side, with respect to a flow direction, toward the connection position, and the section including the recirculation flow suppressing cross section and the centroid position shift section overlap with each other at least partially.
12. The scroll casing according to claim 11, wherein, an angular position about the scroll center of the scroll flow passage is zero degree at the connection position and the angular position at a position closer to the scroll start than the connection positions is , the centroid position shift section is disposed at least partially in a section from =zero degree to =120 degrees in the scroll flow passage.
13. The scroll casing according to claim 11, wherein, A is a flow-passage area of the recirculation flow suppressing cross section, in the centroid position shift section, A/R obtained by dividing the flow-passage cross sectional area A by the distance R increases at a constant gradient from the scroll start to the scroll end of the scroll flow passage.
14. The scroll casing according to claim 1, wherein, an angular position about a scroll center of the scroll flow passage is zero degree at the connection position and the angular position is at a position closer to the spiral start than from the connection position, a centroid position shift section is disposed from =zero degree to the second singular position 2 in the scroll flow passage.
15. The scroll casing according to claim 14, wherein the second angular position 2 is an angular position of not less than 10 degrees.
16. A centrifugal compressor, comprising: an impeller; and the scroll casing according to claim 1, the scroll casing being disposed around the impeller and forming a scroll flow passage into which a fluid flows after passing through the impeller.
17. A scroll casing which forms a scroll flow passage of a centrifugal compressor, wherein, in a cross section of the scroll flow passage, Eo is an outer end of the scroll flow passage in a radial direction of the centrifugal compressor, Ef is a front end of the scroll flow passage in an axial direction of the centrifugal compressor, Mh is a middle point of a maximum flow-passage height Hmax of the scroll flow passage in the axial direction, and Lz is a line passing through a middle point Mw of a maximum flow-passage width Wmax of the scroll flow passage in the radial direction and parallel to the axial direction, Lr is a line passing through a middle point Mh of a maximum flow-passage height Hmax of the scroll flow passage in the axial direction and parallel to the radial direction, Mw is a middle point of a maximum flow-passage width Wmax of the scroll flow passage in the radial direction, and C is an intersection of the line Lz and the line Lr, a flow passage width W of the scroll flow passage in the radial direction gradually increases from a position of the front end Ef to a position of the outer end Eo with respect to the axial direction, the scroll flow passage has a recirculation flow suppressing cross section in which the outer end Eo is disposed on a back side, in the axial direction, of the middle point Mh, in a section disposed at least partially in a region closer to a scroll start than a connection position of the scroll start and a scroll end, and Mw is located on a side opposite to Ef in the axial direction with respect to the intersection C.
18. The scroll casing according to claim 17, wherein, at least in a part of a section of the scroll flow passage having the recirculation flow suppressing cross section, the maximum flow-passage height Hmax and a distance z between the outer end Eo and the middle point Mh in the axial direction satisfies z0.1Hmax.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION
(32) Embodiments of the present invention will now be described in detail with reference to the accompanying drawings. It is intended, however, that unless particularly specified, dimensions, materials, shapes, relative positions and the like of components described in the embodiments shall be interpreted as illustrative only and not intended to limit the scope of the present invention.
(33) For instance, an expression of relative or absolute arrangement such as in a direction, along a direction, parallel, orthogonal, centered, concentric and coaxial shall not be construed as indicating only the arrangement in a strict literal sense, but also includes a state where the arrangement is relatively displaced by a tolerance, or by an angle or a distance whereby it is possible to achieve the same function.
(34) For instance, an expression of an equal state such as same equal and uniform shall not be construed as indicating only the state in which the feature is strictly equal, but also includes a state in which there is a tolerance or a difference that can still achieve the same function.
(35) Further, for instance, an expression of a shape such as a rectangular shape or a cylindrical shape shall not be construed as only the geometrically strict shape, but also includes a shape with unevenness or chamfered corners within the range in which the same effect can be achieved.
(36) On the other hand, an expression such as comprise, include, have, contain and constitute are not intended to be exclusive of other components.
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(38) In the present specification, unless otherwise stated, axial direction refers to the axial direction of the centrifugal compressor 100, that is, the axial direction of the impeller 2, front side in the axial direction refers to the upstream side in the intake direction of the centrifugal compressor 100 with respect to the axial direction, and back side in the axial direction refers to the downstream side in the intake direction of the centrifugal compressor 100 with respect to the axial direction. Furthermore, unless otherwise stated, radial direction refers to the radial direction of the centrifugal compressor 100, that is, the radial direction of the impeller 2. The centrifugal compressor 100 can be applied to a turbocharger for an automobile or a ship, or other industrial centrifugal compressors and blowers, for instance.
(39) As shown in
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(41) In an embodiment, the scroll flow passage 4 may have the recirculation flow suppressing cross section 10A described below, in a section s disposed at least partially in the region closer to the scroll start 4a than the connection position (tongue section) P of the scroll start 4a and the scroll end 4b. The region closer to the scroll start 4a than the connection position P herein refers to the region downstream of the connection point P with respect to the flow direction (see arrow fc in
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(43) As shown in
(44) With the above configuration, in the section s disposed at least partially in the region closer to the scroll start than the connection position P of the scroll start 4a and the scroll end 4b in the scroll flow passage 4, the scroll flow passage 4 has the recirculation flow suppressing cross section 10A, where the front end Ef is disposed on the inner side of the middle point Mw in the radial direction, and thereby it is possible to make the flow-passage wall portion w0 connecting the outer end Eo and the front end Ef more flat, compared to the comparative example (which has a circular cross section 010 where the front end Ef coincides with the middle point Mw over the entire region of the scroll flow passage in the circumferential direction).
(45) Thus, as shown in
(46) Thus, compared to the above comparative example, it is more difficult for the recirculation flow fc to enter the region Di on the radially inner side of the scroll flow passage 4, and thereby it is possible to suppress generation of the recirculation flow fc and to suppress generation of loss that accompanies the recirculation flow fc. Furthermore, since generation of the recirculation flow fc is suppressed, it is possible to reduce the flow passage cross-sectional area of the scroll flow passage 4 required, and to reduce the size of the scroll casing 6.
(47) It is known that the recirculation flow has low energy and tends to accumulate at the center of the cross section of the scroll flow passage 4, and at occurrence of surge that limits the operational limit of the compressor at a low air flow side, a reverse flow occurs from the center part of the scroll cross section where the low energy fluid is accumulated. In this regard, the recirculation flow suppressing cross section 10A is applied to the section s disposed at least partially in the region closer to the scroll start than the connection position P in the scroll flow passage 4, and thereby generation of the recirculation flow is suppressed, which makes it possible to make the energy distribution uniform in the cross section of the scroll flow passage 4 and to bring about improvement of the surge characteristics (achievement of a wider range).
(48) In an embodiment, at least in a part of the section s having the recirculation flow suppressing cross section 10A shown in
(49) Accordingly, it is possible to enhance the effect to make it easier to guide the fluid discharged from the diffuser outlet 8a to the region Di on the radially inner side of the scroll flow passage 4, and to suppress generation of a recirculation flow effectively.
(50) In another embodiment, the scroll flow passage 4 shown in
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(52) In an embodiment, as shown in
(53) With the above configuration, in the section s disposed at least partially in the region closer to the scroll start 4a than the connection position P of the scroll start 4a and the scroll end 4b in the scroll flow passage 4, the scroll flow passage 4 has the recirculation flow suppressing cross section 10B, where the outer end Eo is disposed on the back side of the middle point Mh in the axial direction, and thereby it is possible to make the flow-passage wall portion w0 connecting the outer end Eo and the front end Ef more flat, compared to the comparative example (which has a circular cross section 010 where the front end Ef coincides with the middle point Mw over the entire region of the scroll flow passage in the circumferential direction), as shown in
(54) Thus, as shown in
(55) Thus, similar to the case in which the recirculation flow suppressing cross section 10A is applied to the section s, it is possible to suppress generation of the recirculation flow fc and to suppress generation of loss that accompanies the recirculation flow fc. Furthermore, since generation of the recirculation flow fc is suppressed, it is possible to reduce the flow-passage cross-sectional area of the scroll flow passage 4 required, and to reduce the size of the scroll casing 6. Furthermore, it is possible to achieve the effect to reduce the size of the above described scroll casing and the effect to improve the surge characteristics (achievement of a wider range).
(56) Applying the recirculation flow suppressing cross section 10A shown in
(57) In an embodiment, at least in a part of the section s (see
(58) Accordingly, it is possible to enhance the effect to make it easier to guide the fluid discharged from the diffuser outlet 8a to the region Di on the radially inner side of the scroll flow passage 4, and to suppress generation of a recirculation flow effectively.
(59) In yet another embodiment, the scroll flow passage 4 shown in
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(61) In an embodiment, as shown in
(62) With the above configuration, as shown in
(63) Thus, it is even more difficult for the recirculation flow to enter the region Di on the radially inner side of the scroll flow passage 4, and thereby it is possible to enhance the effect to suppress generation of the recirculation flow and generation of loss that accompanies the recirculation flow. Furthermore, corresponding to the high effect to suppress the recirculation flow, it is possible to enhance the above described effect to reduce the size of the above described scroll casing and to improve the surge characteristics (achievement of a wider range).
(64) In an embodiment, at least in a part of the section s (see
(65) Accordingly, it is possible to enhance the effect to make it easier to guide the fluid discharged from the diffuser outlet 8a to the region Di on the radially inner side of the scroll flow passage 4, and to suppress generation of a recirculation flow effectively.
(66) In some embodiments, as shown in
(67) With the above configuration, it is possible to make the flow-passage wall portion w0 connecting the outer end Eo and the front end Ef more flat, compared to the comparative example (which has a circular cross section 010 that satisfies A1=A2=A3), and to make it easier to guide the fluid fd discharged from the diffuser outlet 8a to the region Di on the radially inner side of the scroll flow passage 4. Accordingly, it is more difficult for the recirculation flow to enter the region Di on the radially inner side of the scroll flow passage 4, and thereby it is possible to suppress generation of the recirculation flow and to suppress generation of loss that accompanies the recirculation flow.
(68) In some embodiments, as shown in
(69) With the above configuration, the arc portion a2 of the flow-passage wall portion w2 belonging to the region D2 is closer to flat than the arc portion a1 and the arc portion a3, compared to the comparative example (which has a circular cross section 010 that satisfies R1=R2=R3), and thus it is possible to make it easier to guide the fluid fd discharged from the diffuser outlet 8a to the region Di on the radially inner side of the scroll flow passage 4, as shown in
(70) In some embodiments, as shown in
(71) Accordingly, by applying the recirculation flow suppressing cross section 10 (10A, 10B, or 10C) to the section closer to the scroll start than the connection position P but still close to the connection position P to some extent in the scroll flow passage 4, it is possible to suppress deviation of the above described flow fd to the region on the radially outer side at the scroll start of the scroll flow passage 4 effectively. Accordingly, it is possible to suppress generation of the recirculation flow effectively.
(72) In some embodiments, in the scroll flow passage 4 shown in
(73) Accordingly, by applying the recirculation flow suppressing cross section 10 (10A, 10B, or 10C) to the section s closer to the scroll start than the connection position P in the scroll flow passage 4, it is possible to suppress deviation of the above described flow fd to the region on the radially outer side at the scroll start of the scroll flow passage 4 effectively. Accordingly, it is possible to suppress generation of the recirculation flow effectively.
(74) In some embodiments, the above first angular position 1 may be an angular position of 10 degrees or more (more preferably, 30 degrees or more).
(75) According to findings of the present inventors, by applying the recirculation flow suppressing cross section 10 (10A, 10B, or 10C) to the section before the fluid discharged from the diffuser outlet 8a swirls at least approximately once about the cross-sectional center of the scroll flow passage 4 in the vicinity of the connection position P (scroll start side) in the scroll flow passage 4, it is possible to effectively suppress deviation of the flow fd from the diffuser outlet to the region Do on the radially outer side at the scroll start 004a of the scroll flow passage 004, which is the technical problem described above with reference to
(76) In some embodiments, as shown in
(77) With the above configuration, compared to the comparative example in which the entire section of the scroll flow passage has a circular cross-sectional shape, it is possible to guide the flow from the diffuser outlet 8a in the scroll flow passage 4 quickly to the above described region Di, where the flow is typically unlikely to enter, by applying the recirculation flow suppressing cross section 10 (10A, 10B, or 10C) to the section s, and to form a smooth swirl flow with the circular cross-sectional shape in the section t separated downstream (toward the scroll start side) from the connection position P to some extent, and thereby it is possible to reduce flow loss inside the scroll flow passage 4 while reducing the amount of recirculation flow. Accordingly, as shown in
(78) In some embodiments, as shown in
(79) In this case, in some embodiments, as shown in
(80) With the above configuration, in the centroid position shift section u in the scroll flow passage 4, the distance R between the centroid I of the cross section and the scroll center O reduces toward the connection position P from the downstream side, and thus it is possible to enhance the above effect (achieved by applying the recirculation flow suppressing cross section 10) to make it easier to guide the flow discharged from the diffuser outlet 8a to the region Di (see
(81) In some embodiments, as shown in
(82) Accordingly, with the centroid position shift section u disposed in the section closer to the scroll start than the connection position P in the scroll flow passage 4 and still close to the connection position P, it is possible to effectively suppress deviation of the flow fd from the diffuser outlet to the region on the radially outer side at the scroll start 4a of the scroll flow passage 4, which is the technical problem described above with reference to
(83) In some embodiments, as shown in
(84) Accordingly, with the section starting from the connection position P and extending toward the scroll start in the scroll flow passage 4 being the centroid position shift section u, it is possible to suppress deviation of the flow to the region on the radially outer side at the scroll start of the scroll flow passage effectively. Accordingly, it is possible to suppress generation of the recirculation flow effectively.
(85) In some embodiments, the second angular position 2 may be an angular position of 10 degrees or greater.
(86) According to findings of the present inventors, by applying the centroid position shift section u so as to cover to some extent the section before the fluid discharged from the diffuser outlet 8a swirls at least approximately once about the cross-sectional center of the scroll flow passage 4 in the vicinity of the connection position P (scroll start side) in the scroll flow passage 4, it is possible to effectively suppress deviation of the flow to the region on the radially outer side at the scroll start 4a of the scroll flow passage 4. While the distance the fluid discharged from the diffuser outlet 8a requires to complete approximately one rotation changes depending on the operational conditions, with the second angular position 2 being an angular position of not less than 10 degrees (more preferably, not less than 30 degrees), it is possible to suppress deviation of the flow to the region on the radially outer side at the scroll start 4a of the scroll flow passage 4 more effectively, and to suppress generation of the recirculation flow more effectively.
(87) In some embodiments, as shown in
(88) With the above configuration, in the centroid position shift section u, the value A/R is constant regardless of the angular position about the scroll center O, and thus it is possible to enhance the above effect to make it easier to guide the fluid discharged from the diffuser outlet 8a to the region Di on the radially inner side of the scroll flow passage 4, while maintaining a constant flow velocity regardless of the angular position . Accordingly, it is possible to suppress generation of the recirculation flow effectively while maintaining a constant flow velocity regardless of the angular position .
(89) Embodiments of the present invention were described in detail above, but the present invention is not limited thereto, and various amendments and modifications may be implemented.
(90) For instance, while the section s having the recirculation flow suppressing cross section 10 (10A, 10B, or 10C) and the section u having the circular cross section 010 disposed downstream of the section s are shown in the embodiment shown in
(91) Similarly with the above configuration, it is possible to suppress deviation of the flow to the region on the radially outer side at the scroll start 4a of the scroll flow passage 4 effectively, and thereby it is possible to suppress generation of the recirculation flow and to suppress generation of loss that accompanies the recirculation flow. Furthermore, since generation of the recirculation flow is suppressed, it is possible to reduce the flow-passage cross-sectional area of the scroll flow passage required, and to reduce the size of the scroll casing. Furthermore, it is possible to improve the surge characteristics (achieve a wider range), similarly.
DESCRIPTION OF REFERENCE NUMERALS
(92) 2 Impeller 4 Scroll flow passage 4a Scroll start 4b Scroll end 6 Scroll casing 8 Diffuser flow passage 8a Diffuser outlet 8a1 Back end 8a2 Front end 10 (10A, 10B, 10C) Recirculation flow suppressing cross section 12 Outlet of scroll flow passage 100 Centrifugal compressor A Flow-path cross sectional area A1, A2, A3 Area C Intersection D1, D2, D3, D4, Di, Do Region Ef Front end Eo Outer end I Centroid Lr, Lz Line Mh, Mw Middle point O Rotational axis P Connection position (tongue section position) R1 First curvature radius R2 Second curvature radius R3 Third curvature radius W Flow passage width Wmax Maximum flow-passage width H Flow passage height Hmax Maximum flow-passage height a1, a2, a3 Arc portion fd Fluid flow from diffuser outlet fc Recirculation flow s, t, u, v Section w0, w1, w2, w31, w32, w4 Flow-passage wall portion