The present disclosure relates to a scroll casing and a centrifugal compressor.
The centrifugal compressor used in a compressor part or the like of a turbocharger for an automobile or a ship imparts kinetic energy to a fluid through rotation of an impeller and discharges the fluid outward in the radial direction, thereby achieving a pressure increase by utilizing the centrifugal force.
Such a centrifugal compressor is provided with various features to meet the need to improve the pressure ratio and the efficiency in a broad operational range.
In typical art, for instance, Patent Document 1 discloses a centrifugal compressor provided with a casing having a scroll flow passage formed to have a spiral shape, wherein the height of the scroll flow passage in the axial direction increases gradually from inside toward outside in the radial direction, and reaches its maximum on the radially outer side of the middle point of the flow passage width with respect to the radial direction.
Patent Document 1: JP4492045B
At the small flow-rate operation point of the centrifugal compressor, the flow inside the scroll flow passage becomes a speed reduction flow from the scroll start to the scroll end of the scroll flow passage, and the pressure at the scroll start is lower than the pressure at the scroll end. Thus, in the scroll flow passage, a recirculation flow fc from the scroll end to the scroll start is generated at the tongue section position P (see
Although Patent Document 1 discloses a technique to improve the characteristics of the swirl flow in the scroll flow passage by forming the scroll flow passage to have a special non-circular shape in cross section, it does not disclose an approach for suppressing a recirculation flow in the vicinity of the tongue section.
The present invention was made in view of the above, and an object of the present invention is to provide a scroll casing capable of improving the compressor performance by reducing the loss that accompanies the recirculation flow, and a centrifugal compressor having the same.
(1) A scroll casing according to at least one embodiment of the present invention is a scroll casing which forms a scroll flow passage of a centrifugal compressor, and provided that, in a cross section of the scroll flow passage, Ei is an inner end of the scroll flow passage in a radial direction of the centrifugal compressor, and Mh is a middle point of a maximum flow-passage height Hmax of the scroll flow passage in the axial direction of the centrifugal compressor, the scroll flow passage has a separation suppressing cross section in which the inner end Ei is disposed on an inner side, in the radial direction, of a diffuser outlet, and the inner end Ei is disposed on a back side, in the axial direction, of the middle point Mh, in a section disposed at least partially in an upstream region of a connection position of a scroll start and a scroll end.
With the above scroll casing (1), it is possible to form the scroll flow passage so that the flow line curvature of the fluid that becomes the recirculation flow gradually (smoothly) changes toward the connection position, compared to the comparative example (where the scroll flow passage has a circular cross-sectional shape over the entire region in the circumferential direction, where the axial directional position of the inner end Ei and the axial directional position of the middle point Mh coincide with each other). Accordingly, it is possible to suppress a rapid change in the flow line curvature of the fluid that becomes the recirculation flow in the vicinity of the connection position, which makes it possible to suppress separation due to the rapid change, and to reduce loss that accompanies recirculation.
(2) In some embodiments, in the scroll casing described in the above (1), provided that an angular position about a scroll center of the scroll flow passage is zero degree at the connection position and the angular position is θ at a position upstream of the connection position, the separation suppressing cross section may be disposed at least in a section from θ=zero degree to a predetermined angular position.
With the above scroll casing (2), the separation suppressing cross section is disposed from the connection position in the scroll flow passage to an upstream predetermined angular position, and thereby it is possible to form the scroll flow passage so that the flow line curvature of the fluid that becomes the recirculation flow changes gradually (smoothly) from the angular position to the connection position. Accordingly, it is possible to suppress a rapid change in the flow line curvature of the fluid that becomes the recirculation flow in the vicinity of the connection position, which makes it possible to suppress separation due to the rapid change, and to reduce loss that accompanies recirculation.
(3) In some embodiments, in the scroll casing described in the above (2), the predetermined angular position may be an angular position of not less than 60 degrees.
With the above scroll casing (3), it is possible to form the scroll flow passage so that the flow line curvature of the fluid that becomes a recirculation flow changes gradually toward the connection position in the section from the connection position to a predetermined angular position of 60 degrees or more. Accordingly, it is possible to suppress a rapid change in the flow line curvature of the recirculation flow in the vicinity of the connection position, which makes it possible to suppress separation due to the rapid change, and to reduce loss that accompanies recirculation.
(4) In some embodiments, in the scroll casing described in any one of the above (1) to (3), the separation suppressing cross section is not disposed in a section upstream of the predetermined angular position.
The cross-sectional shape at the position separated upstream to some extent from the connection position in the scroll flow passage has a small effect on separation generation in the vicinity of the connection position, and thus the separation suppressing cross section may not be necessarily formed in the upstream section of the predetermined angular position separated to some extent from the connection position, as in the above (4). In this case, for the section upstream of the predetermined angular section, the cross-sectional shape may be designed in priority of other purposes. For instance, a circular cross-sectional shape may be applied in order to reduce flow loss in the scroll flow passage.
(5) In some embodiments, in the scroll casing described in the above (4), the predetermined angular position is an angular position of not less than 60 degrees and not more than 150 degrees.
With the above scroll casing (5), the scroll flow passage is formed so that the flow line curvature of the fluid that becomes a recirculation flow changes gradually toward the connection position to the predetermined angular position of not less than 60 degrees and not more than 150 degrees, and for the section upstream of the predetermined angular section, the cross-sectional shape may be designed in priority of other purposes. For instance, a circular cross-sectional shape may be applied in order to reduce flow loss in the scroll flow passage.
(6) In some embodiments, in the scroll casing according to any one of the above (2) to (5), the scroll flow passage includes a section having a circular cross section at a downstream side of the predetermined angular position.
With the above scroll casing (6), with the separation suppressing cross section applied to the section in the vicinity of the connection position for separation suppression and a circular cross sectional shape or the like applied to the section separated to some extent from the connection position, it is possible to reduce flow loss in the scroll flow passage while suppressing separation in the vicinity of the connection position.
(7) In some embodiments, in the scroll casing described in any one of the above (2) to (6), at least in a part of the section of the scroll flow passage from θ=zero degree to the predetermined angular position, the inner end Ei of the separation suppressing cross section may be shifted backward in the axial direction with a distance from an upstream side toward the connection position.
With the above scroll casing (7), it is possible to form the scroll flow passage so that the flow line curvature of the fluid that becomes the recirculation flow gradually (smoothly) changes toward the connection position, compared to the comparative example (where the scroll flow passage has a circular cross-sectional shape over the entire region in the circumferential direction, where the axial directional position of the inner end Ei and the axial directional position of the middle point Mh coincide with each other). Accordingly, it is possible to suppress a rapid change in the flow line curvature of the fluid that becomes the recirculation flow in the vicinity of the connection position, which makes it possible to suppress separation due to the rapid change, and to reduce loss that accompanies recirculation.
(8) In some embodiments, in the scroll casing according to any one of the above (2) to (7), at least in a part of the section of the scroll flow passage from θ=zero degree to the predetermined angular position, a flow-passage wall portion connecting the inner end Ei and the front end Ef of the scroll flow passage with respect to the axial direction has a curved surface portion which protrudes toward a cross-sectional center of the separation suppressing surface.
With the scroll casing (8), in the separation suppressing cross section, it is possible to separate the region through which the main flow passes toward the outlet of the scroll flow passage from the region through which the fluid that becomes the recirculation flow passes to some extent, with the curved surface portion protruding toward the cross-sectional center. Thus, it is possible to guide the main flow to the outlet of the scroll flow passage smoothly and to guide the fluid that becomes the recirculation flow to the connection position smoothly, thereby reducing the pressure loss effectively.
(9) In some embodiments, in the scroll casing described in the above (8), the curved surface portion is formed so as to have a curvature radius which decreases from an upstream side of the scroll flow passage toward the connection position.
With the above scroll casing (9), it is possible to separate the main flow and the recirculation flow gradually (smoothly) from the upstream of the scroll flow passage toward the connection position, and thus it is possible to enhance the effect of the above (8) to guide the main flow to the outlet of the scroll flow passage smoothly and to guide the fluid that becomes the recirculation flow to the connection position smoothly, thereby reducing pressure loss effectively.
(10) In some embodiments, in the scroll casing described in any one of the above (1) to (7), in the cross section of the scroll flow passage, in a case where 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 the middle point Mh and parallel to the radial direction, and the separation suppressing cross section is divided into four regions by the line Lz and the line Lr, a flow-passage wall portion belonging to a region positioned on an outer side in the radial direction and on a front side in the axial direction of an 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 portion belonging to 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 second curvature radius R2 which is greater than the first curvature radius R1, and a flow-passage wall portion belonging to a region positioned on an inner side in the radial direction and on a back 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.
With the above scroll casing (10), when compared to a comparative example (where the scroll flow passage has a circular cross sectional shape over the entire region in the circumferential direction), the curvature radius R2 of the arc portion belonging to the region positioned on the inner side in the radial direction and on the front side in the axial direction of the intersection C, of the four regions, is greater than each of the curvature radius R1 and the curvature radius R2 belonging to other regions, and thus it is easier to position the inner end Ei on the back side in the axial direction without changing the flow passage cross-sectional area. Thus, it is possible to form the scroll flow passage easily so that the flow line curvature of the fluid that becomes a recirculation flow changes gradually (smoothly) toward the connection position. Accordingly, it is possible to suppress a rapid change in the flow line curvature of the fluid that becomes the recirculation flow in the vicinity of the connection position, which makes it possible to suppress separation due to the rapid change, and to reduce loss that accompanies recirculation.
(11) In some embodiments, in the scroll casing described in any one of the above (1) to (10), at least in a part of the section of the scroll flow passage from θ=zero degree to the predetermined angular position, the maximum flow-passage height Hmax and a distance Δz between the inner end Ei of the separation suppressing cross section and the middle point Mh in the axial direction satisfies Δz≥0.1×Hmax.
With the above scroll casing (11), it is possible to effectively suppress separation due to a rapid change in the flow line curvature of the fluid that becomes a recirculation flow in the vicinity of the connection position P.
(12) In some embodiments, in the scroll casing described in any one of the above (2) to (11), the scroll flow passage is formed so that the inner end Ei is shifted forward in the axial direction with a distance from the connection position toward an outlet of the scroll flow passage.
With the above scroll casing (11), It is possible to form the scroll flow passage so that the separation suppressing cross section gradually returns to a circular cross section toward the outlet of the scroll flow passage from the connection position. Accordingly, it is possible to suppress occurrence of separation that accompanies a recirculation flow in the vicinity of the connection position P while reducing flow loss at the downstream side of the connection position.
(13) A centrifugal compressor according to at least one embodiment of the present invention comprises: an impeller; and the scroll casing according to any one of the above (1) to (12), the scroll casing being disposed around the impeller and forming a scroll flow passage into which a fluid flows after passing through the impeller.
With the above centrifugal compressor (13), the scroll casing is the scroll casing described in any one of the above (1) to (12), and thus it is possible to suppress a rapid change in the flow line curvature of the fluid that becomes a recirculation flow in the vicinity of the connection position. Accordingly, it is possible to suppress separation due to the rapid change and to reduce loss that accompanies recirculation, thereby improving the performance (efficiency) of the centrifugal compressor.
According to at least one embodiment of the present invention, provided is a scroll casing capable of improving the compressor performance by reducing the loss that accompanies the recirculation flow, and a centrifugal compressor having the same.
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.
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.
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.
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.
On the other hand, an expression such as “comprise”, “include”, “have”, “contain” and “constitute” are not intended to be exclusive of other components.
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.
As shown in
In an embodiment, the scroll flow passage 4 may have a separation suppressing cross section 10 described below, in a section ‘s’ disposed at least partially in a region upstream of the connection position (tongue section) P of the scroll start 4a and the scroll end 4b.
In an embodiment, as shown in
With the above configuration, as shown in
In an embodiment, in at least a part of the section ‘s’ (see
Accordingly, as shown in
In an illustrative embodiment as shown in
In an embodiment, as shown in
As described above, the separation suppressing cross section 10 is disposed from the connection position P in the scroll flow passage 4 to an upstream predetermined angular position θ1, and thereby it is possible to form the scroll flow passage 4 so that the flow line curvature of the fluid that becomes the recirculation flow changes gradually (smoothly) from the angular position θ1 to the connection position P. Accordingly, it is possible to suppress a rapid change in the flow line curvature of the fluid that becomes the recirculation flow in the vicinity of the connection position P, which makes it possible to suppress separation due to the rapid change, and to reduce loss that accompanies recirculation.
In an embodiment, in the scroll flow passage 4 shown in
Accordingly, with the separation suppressing cross section 10 applied to the section ‘s’ in the vicinity of the connection position P for separation suppression and a circular cross section or the like applied to the section ‘t’ separated to some extent from the connection position P, it is possible to reduce flow loss in the scroll flow passage 4 while suppressing separation in the vicinity of the connection position P.
In
With the above configuration, as shown in
In
Accordingly, as shown in
In an embodiment, at least in a part of the section ‘s’ of the scroll flow passage 4 shown in
In an embodiment, the scroll flow passage 4 shown in
Accordingly, it is possible to suppress occurrence of separation that accompanies recirculation flow in the vicinity of the connection position P while reducing flow loss at a position closer to the outlet 14 than the connection position P.
While the separation suppressing cross section 10 has the curved surface portion 12 protruding toward the cross-sectional center of the scroll flow passage 4 in the embodiment shown in
In this case, as shown in at least one of
Furthermore, in an illustrative embodiment shown in
According to the exemplary embodiment shown in
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.
2 Impeller
4 Scroll flow passage
4
a Scroll start
4
b Scroll end
6 Scroll casing
8 Diffuser flow passage
8
a Diffuser outlet
8
a
1 Front end
8
b
1 Rear end
10 Separation suppressing cross section
12 Curved surface portion
14 Outlet of scroll flow passage
100 Compressor
100 Centrifugal compressor
C Intersection
D1, D2, D3, D4, Dc, Dm Region
Ei Inner end
Ef Front end
Lr, Lz Line
Mh, Mw Middle point
O Scroll center
P Connection position (tongue section position)
R1 First curvature radius
R2 Second curvature radius
R3 Third curvature radius
R4 Fourth curvature radius
Wmax Maximum flow-passage width
Hmax Maximum flow-passage height
a1, a2, a3, a4 Arc portion
fm Main flow
fc Recirculation flow
s, t, u Section
w0, w1, w2, w31, w32, w4 Flow-passage wall portion
Filing Document | Filing Date | Country | Kind |
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PCT/JP2015/080494 | 10/29/2015 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2017/072900 | 5/4/2017 | WO | A |
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Number | Date | Country | |
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20180149170 A1 | May 2018 | US |