The present invention relates to a scroll fluid machine.
In general, a scroll fluid machine is known, in which a fixed scroll member and an orbiting scroll member each having a spiral wall provided on an end plate mesh with each other so as to perform a revolution orbiting movement and a fluid is compressed or expanded.
As the scroll fluid machine, a so-called stepped scroll compressor which is described in PTL 1 is known. In the stepped scroll compressor, step portions are provided at positions of tooth tip surfaces and tooth bottom surfaces of spiral walls of a fixed scroll and an orbiting scroll in a spiral direction and a height on an outer peripheral side of each wall is higher than a height on an inner peripheral side thereof with each step portion as a boundary. In the stepped scroll compressor, compression (three-dimensional compression) is performed not only in a circumferential direction of the wall but also in a height direction thereof, and thus, compared to a general scroll compressor (two-dimensional compression) which does not have the step portion, an amount of displacement increases, and thus, compressor capacity can increase.
[PTL 1] Japanese Unexamined Patent Application Publication No. 2015-55173
However, in a stepped scroll compressor, there is a problem that fluid leakage in a step portion is large. In addition, there is a problem that stress concentrates on a base portion of the step portion and strength decreases.
Meanwhile, the inventors are studying to provide a continuously inclined portion instead of the step portion provided on a wall and an end plate.
In a tooth bottom against which a tooth tip serving as a tip of the wall abuts, a center in a width direction has a deepest depth. This is because semicircular contour lines are formed with both side portions in the width direction of the tooth bottom as contact points when the tooth bottom which is the inclined portion is processed by a cutting tool such as an end mill having a diameter equivalent to a width of the tooth bottom. In this way, if a deepest central portion is formed on the tooth bottom, compared to a case where the tooth bottom is flat, as a central portion of the tooth bottom is deeper, a tip seal protrudes from a tip seal groove, and a back clearance between a bottom portion of the tip seal groove and a back surface of a tip seal increases. If the back clearance increases, a refrigerant flows from a high-pressure side compression chamber to a low-pressure side compression chamber through the back clearance, and thus, performance decreases.
The present invention is made in consideration of the above-described circumstances, and an object thereof is to provide a scroll fluid machine capable of suppressing an decrease in a performance caused by the back clearance between the bottom portion of the tip seal groove and the tip seal even in a case where the continuously inclined portion is provided in the wall.
In order to achieve the above-described object, a scroll fluid machine of the present invention adopt the following means.
According to an aspect of the present invention, there is provided a scroll fluid machine including: a first scroll member having a first end plate on which a spiral first wall is provided; a second scroll member having a second end plate on which a spiral second wall is provided, the second end plate being disposed to face the first end plate and the second wall meshing with the first wall such that the second scroll member performs a revolution orbiting movement relative to the first scroll member; and an inclined portion in which an inter-facing surface distance between the first end plate and the second end plate facing each other continuously decreases from outer peripheral sides of the first wall and the second wall toward inner peripheral sides thereof, in which at least one of the first wall and the second wall has a wall inclined portion, in which a height of the wall continuously decreases from the outer peripheral side toward the inner peripheral side, to form the inclined portion, at least one of the first end plate and the second end plate has an end plate inclined portion in which a tooth bottom surface facing a tooth tip of the wall inclined portion is inclined according to an inclination of the wall inclined portion, a wall flat portion whose height is not changed is provided on outermost peripheral portions and/or innermost peripheral portions of the first wall and the second wall, an end plate flat portion corresponding to the wall flat portion is provided on the first end plate and the second end plate, a tip seal which comes into contact with the facing end plate to perform sealing for a fluid is provided in a tip seal groove formed in a tooth tip of the wall, the end plate inclined portion is configured such that a central portion is deeper than a side portion in a width direction orthogonal to a spiral direction of the wall, and during an operation, a protrusion amount measured when the tip seal protrudes from the tooth tip of the wall inclined portion in the wall inclined portion and comes into contact with the facing end plate is larger than a protrusion amount measured when the tip seal protrudes from a tooth tip of the wall flat portion in the wall flat portion and comes into contact with the facing end plate.
If the end plate inclined portion is configured such that the central portion is deeper than the side portion in the width direction, the tip of the tip seal protrudes from the tip seal groove by an amount which is deeper than the side portion. Accordingly, compared to a case where the end plate inclined portion is flat, a back clearance between a bottom portion of the tip seal groove and the back surface of the tip seal increases. If the back clearance increases, a refrigerant flows from a high-pressure side compression chamber to a low-pressure side compression chamber through the back clearance, and thus, a fluid loss is generated. Accordingly, during the operation, the protrusion amount of tip seal in the wall inclined portion is made larger than the protrusion amount of tip seal in the wall flat portion. Accordingly, the back clearance of the inclined portion decreases, and the fluid loss can be suppressed as much as possible. The protrusion amount of the tip seal can be adjusted using a depth of the tip seal groove, a thickness of the tip seal, or both. In addition, the protrusion amount is an amount only during the operation, and in a case where a gas pressure is not applied to the back surface of the tip seal when the operation is stopped, the tip seal may sink into the tip seal groove and the protrusion amount may be less than or equal to zero.
In addition, in the scroll fluid machine according to the aspect of the present invention, a thickness of the tip seal in a height direction of the wall is constant in the spiral direction of the wall, and a depth of the tip seal groove is shallower in the wall inclined portion than in the wall flat portion.
In a case where the thickness of the tip seal in the height direction of the wall is constant in the spiral direction of the wall, the depth of the tip seal groove is shallower in the wall inclined portion than in the wall flat portion. Accordingly, it is possible to decrease the back clearance of the tip seal in the inclined portion.
According to another aspect of the present invention, there is provided a scroll fluid machine including: a first scroll member having a first end plate on which a spiral first wall is provided; a second scroll member having a second end plate on which a spiral second wall is provided, the second end plate being disposed to face the first end plate and the second wall meshing with the first wall such that the second scroll member performs a revolution orbiting movement relative to the first scroll member; and an inclined portion in which an inter-facing surface distance between the first end plate and the second end plate facing each other continuously decreases from outer peripheral sides of the first wall and the second wall toward inner peripheral sides thereof, in which at least one of the first wall and the second wall has a wall inclined portion, in which a height of the wall continuously decreases from the outer peripheral side toward the inner peripheral side, to form the inclined portion, at least one of the first end plate and the second end plate has an end plate inclined portion in which a tooth bottom surface facing a tooth tip of the wall inclined portion is inclined according to an inclination of the wall inclined portion, a tip seal which comes into contact with the facing end plate inclined portion to perform sealing for a fluid is provided in a tip seal groove formed on each tooth tip of the first wall and the second wall corresponding to the inclined portion, the end plate inclined portion is configured such that a central portion is deeper than a side portion in a width direction orthogonal to a spiral direction of the wall, and during an operation, a protrusion amount measured when the tip seal protrudes from the tooth tip of the wall inclined portion and comes into contact with the facing end plate is smallest when the wall inclined portion is closest to the adjacent wall inclined portion.
If the end plate inclined portion is configured such that the central portion is deeper than the side portion in the width direction, during the operation, the tip of the tip seal protrudes from the tip seal groove by an amount which is deeper than the side portion. Accordingly, compared to a case where the end plate inclined portion is flat, the back clearance between the bottom portion of the tip seal groove and the back surface of the tip seal increases. If the back clearance increases, a refrigerant flows from a high-pressure side compression chamber to a low-pressure side compression chamber through the back clearance, and thus, a fluid loss is generated. Accordingly, the projection amount of the tip seal is set to be smallest in a case where the wall inclined portion is closest to the adjacent wall inclined portion. Accordingly, the fluid loss can be suppressed as much as possible. The protrusion amount of the tip seal can be adjusted using a depth of the tip seal groove, a thickness of the tip seal, or both.
In addition, in the scroll fluid machine according to the aspect of the present invention, in a case where the wall inclined portion is closest to the adjacent wall inclined portion, a protrusion amount of the tip seal is determined based on such a depth that a tip of the tip seal abuts on a position deeper than the side portion of the end plate inclined portion.
In the case where the wall inclined portions are closest to each other, if the protrusion amount of the tip seal is set based on the depth at which the tip of the tip seal abuts on the position deeper than the side portion of the end plate inclined portion, the back clearance of the inclined portion can be made as small as possible.
An inclination portion back clearance is set to be smaller than a flat portion back clearance, and thus, an increase in a back clearance in an inclined portion is suppressed. Accordingly, it is possible to suppress a decrease in performance. The back clearance is set to be smallest in a case where a wall inclined portion is closest to an adjacent wall inclined portion, and thus, it is possible to suppress a decrease in performance.
Hereinafter, an embodiment according to the present invention will be described with reference to the drawings.
In
Each of the fixed scroll 3 and the orbiting scroll 5 is a metal compression mechanism which is formed of an aluminum alloy or steel, and is accommodated in a housing (not shown). The fixed scroll 3 and the orbiting scroll 5 suck a fluid, which is introduced into the housing, from an outer peripheral side, and discharge the compressed fluid from a discharge port 3c positioned at a center of the fixed scroll 3 to the outside.
The fixed scroll 3 is fixed to the housing, and as shown in
The fixed scroll 3 and the orbiting scroll 5 are assembled to each other such that centers thereof are separated from each other by an orbiting radius ρ, the walls 3b and 5b mesh with each other with phases deviated from each other by 180°, and a slight clearance (tip clearance) in a height direction is provided in the room temperature between tooth tips and tooth bottoms of the walls 3b and 5b of both scrolls. Accordingly, a plurality pairs of compression chambers which are formed to be surrounded by the end plates 3a and 5a and the walls 3b and 5b are symmetrically formed about a scroll center between both scrolls 3 and 5. The orbiting scroll 5 performs a revolution orbiting movement around the fixed scroll 3 by a rotation prevention mechanism such as an Oldham ring (not shown).
As shown in
As shown in
In addition, the meaning of the continuity in the inclined portion in the present embodiment is not limited to a smoothly connected inclination but also includes an inclined portion in which small step portions inevitably generated during processing are connected to each other in a stepwise fashion and the inclined portion is continuously inclined as a whole. However, the inclined portion does not include a large step portion such as a so-called stepped scroll.
Coating is applied to the wall inclined portions 3b1 and 5b1 and/or the end plate inclined portions 3a1 and 5a1. For example, the coating includes manganese phosphate processing, nickel phosphorus plating, or the like.
As shown in
Similarly, in the tooth bottom of the end plate 5a of the orbiting scroll 5, end plate flat portions 5a2 and 5a3 each having a constant height are provided. Each of the end plate flat portions 5a2 and 5a3 is provided over a region of 180° around the center of the orbiting scroll 5. End plate inclined connection portions 5a4 and 5a5 which become curved portions are respectively provided at positions at which the end plate flat portions 5a2 and 5a3 and the end plate inclined portion 5a1 are connected to each other.
As shown by hatching in
φ=tan−1(h/D1) (1)
In this way, the inclination φ of the inclined portion is constant in a circumferential direction in which each of the spiral walls 3b and 5b extends.
As shown in
If both the scrolls 3 and 5 perform the revolution orbiting movement relative to each other, the positions of the tooth tip and the tooth bottom are relatively deviated by an orbiting diameter (orbiting radius ρ×2). In the inclined portion, the tip clearance between the tooth tip and the tooth bottom is changed due to the positional deviation between the tooth tip and the tooth bottom. For example, in
The state shown in
The tooth bottom of the end plate 5a facing the wall 3b has an arc shape in which a central portion in the width direction is formed deeper than both side portions 5d3. The arc shape is a radius R, which will be described later. Accordingly, the cross section of the tooth bottom of the end plate 5a is formed in a shape of a turtle. A horizontal cross section of the tooth bottom of the end plate 5a formed in the shape of a turtle is formed over the entire end plate inclined portion 5a1.
As shown in
Δh=(Tg/2)×tanφ (2)
The shape of the tooth bottom shown in
As shown in
As shown in
[Setting of Protrusion Amount δ]
Next, as shown in
The protrusion amount δ is as follows.
δ=[R2−{De/2−(Tr/2−W/2)}2]1/2−(R−Δh) (3)
A depth of the tip seal groove 3d can be reduced by an amount corresponding to the projection amount δ expressed by the above Expression. Specifically, compared to the tip seal groove 3d of the tooth tip facing the end plate flat portions 5a2 and 5a3 as shown in
The above-described scroll compressor 1 is operated as follows. The orbiting scroll 5 performs the revolution orbiting movement around the fixed scroll 3 by a drive source such as an electric motor (not shown). Accordingly, the fluid is sucked from the outer peripheral sides of the respective scrolls 3 and 5, and the fluid is taken into the compression chambers surrounded by the respective walls 3b and 5b and the respective end plates 3a and 5a. The fluid in the compression chambers is sequentially compressed while being moved from the outer peripheral side toward the inner peripheral side, and finally, the compressed fluid is discharged from a discharge port 3c formed in the fixed scroll 3. When the fluid is compressed, the fluid is compressed in the height directions of the walls 3b and 5b in the inclined portions formed by the end plate inclined portions 3a1 and 5a1 and the wall inclined portions 3b1 and 5b1, and thus, the fluid is three-dimensionally compressed.
According to the present embodiment, the following operational effects are exerted. If each of the end plate inclined portions 3a1 and 5a1 has the shape in which the central part is deeper than the side portion in the width direction, the tip of the tip seal 7 protrudes from the tip seal groove 3d by an amount which is deeper than the side portion (refer to
The projection amount δ of the tip seal 7 is set to be smallest in the case where the wall inclined portions 3b1 and 5b1 are closest to the adjacent wall inclined portions (the state shown in
In the case where the wall inclined portions 3b1 and 5b1 are closest to each other, if the protrusion amount δ of the tip seal 7 is set as in the above Expression (3) based on a depth (refer to
In addition, in the present embodiment, in the present embodiment, the back clearance is adjusted by the depth of the tip seal groove 3d. However, the back clearance may be adjusted by the height Hc (refer to
Moreover, in the present embodiment, although the end plate inclined portions 3a1 and 5a1 and the wall inclined portions 3b1 and 5b1 are provided on both the scrolls 3 and 5. However, they may be provided in any one of the scrolls 3 and 5. Specifically, as shown in
In the present embodiment, the wall flat portions 3b2, 3b3, 5b2, and 5b3 and the end plate flat portions 3a2, 3a3, 5a2, and 5a3 are provided. However, the flat portions on the inner peripheral side and/or the outer peripheral side may be omitted, and the inclined portion may be provided so as to extend to the entire walls 3b and 5b.
In the present embodiment, the scroll compressor is described. However, the present invention can be applied to a scroll expander which is used as an expander.
Number | Date | Country | Kind |
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JP2017-158114 | Aug 2017 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2018/023648 | 6/21/2018 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2019/035276 | 2/21/2019 | WO | A |
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European Communication pursuant to Article 94(3) EPC for European Application No. 18845771.7, dated Aug. 20, 2020. |
International Search Report and Written Opinion of the International Searching Authority for International Application No. PCT/JP2018/023648, dated Sep. 25, 2018, with English translation. |
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Japanese Office Action for Japanese Application No. 2017-158114, dated Feb. 6, 2018, with English translation. |
Number | Date | Country | |
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20200095993 A1 | Mar 2020 | US |