The present invention relates to a scroll-type fluid machine.
Patent Document 1 discloses a scroll-type fluid machine that introduces cooling air discharged from a cooling fan to the fluid machine through a cooling air passage including a bent portion to perform cooling.
Patent Document 2 discloses a scroll-type fluid machine in which the radius of a bent portion of a cooling air passage is set large to allow cooling air to flow efficiently.
Patent Document 1: JP 2013-185472 A
Patent Document 2: JP 2016-514792 A
In the scroll-type fluid machine, the compression heat of a fluid or the heat generation in a bearing causes a temperature rise in each part of the scroll-type fluid machine. Since the temperature rise in a compression chamber causes a decrease in the efficiency of compression, thus leading to a decrease in performance, and the temperature rise in the bearing causes the deterioration of the component, thus leading to a reduction in reliability, it becomes important to efficiently cool the fluid machine.
In the scroll-type fluid machine disclosed in Patent Document 1, the cooling air passage through which the cooling air discharged from the cooling fan flows to components forming the compression chamber or the vicinity of the bearing includes the bent portion that changes the flow direction of the cooling air from a radial direction of the cooling fan to an axial direction; however, since the cooling air flows on an outer peripheral side of the bent portion because of the centrifugal force, a vortex is generated on an inner peripheral side thereof to prevent the cooling air from flowing efficiently.
The scroll-type fluid machine disclosed in Patent Document 2 has a structure where the radius of the bent portion of the cooling air passage is set large to allow cooling air to flow efficiently. Since the dividing planes of components forming the cooling air passage are a plurality of planes which are disposed diagonally to each other, a mold for producing each component is not formed by one plane and becomes large in a height direction, and thus, there is a problem in cost or productivity.
Accordingly, an object of the present invention is to provide a scroll-type fluid machine that has an improved reliability without a reduction in productivity by adopting a simple shape of a cooling air passage to allow a cooling air to flow efficiently.
The present invention has been made in light of the foregoing background art and problem, and as one example of the present invention, there is provided a scroll-type fluid machine including a fixed scroll that is provided with a lap portion having a spiral shape; an orbiting scroll that is provided with a lap portion having a spiral shape which forms a compression chamber between the lap portion of the fixed scroll and the lap portion; a drive shaft that is connected to the orbiting scroll and rotates to cause the orbiting scroll to orbit; a cooling fan that is provided on a side of the drive shaft, the side being opposite to the orbiting scroll, to generate a cooling air; and a cooling air duct through which the cooling air generated by the cooling fan flows to the fixed scroll and the orbiting scroll, in which in a bent portion where a direction of the cooling air duct is changed from a direction perpendicular to the drive shaft to a direction of the drive shaft, a part of an outer peripheral wall which is distant from the drive shaft is formed by a plane which intersects a plane perpendicular to the drive shaft at an obtuse angle.
According to the present invention, it is possible to provide the scroll-type fluid machine which allows the cooling air to efficiently flow through a cooling air passage to cool the fluid machine without a reduction in productivity and have an improved reliability.
Hereinafter, as an example of a scroll-type fluid machine in examples of the present invention, a scroll-type compressor will be described with reference to the accompanying drawings. Incidentally, in the drawings for describing the examples, the same part names and reference signs will be assigned to the same components, and the repeated descriptions thereof will be omitted.
An eccentric portion (not illustrated) is provided in an end portion of the drive shaft 2, and is rotatably connected to the end portion via the orbiting scroll, the bearing, and the like. A power transmission mechanism such as a pulley 6 is provided on an end surface of the drive shaft 2, the end surface being opposite to the orbiting scroll, and is connected to an electric motor or the like (not illustrated) which is a drive source, so that the drive shaft 2 is rotated to drive an orbiting scroll 4. The orbiting scroll 4 is provided with a rotation preventive mechanism (not illustrated) and is driven to orbit with respect to a fixed scroll 3 by the drive shaft 2 to reduce the compression chamber 5 toward a center thereof, so that gas which is taken in from outside is compressed. Incidentally, the pulley 6 can also be a power transmission mechanism such as a coupling, or a rotor can be also directly attached to the drive shaft to be able to rotate.
In addition, a cooling fan 7 is attached to a side of the drive shaft 2, the side being opposite to the orbiting scroll 4, and rotates as the drive shaft 2 rotates, so that cooling air is generated in a direction which is a radial direction of the cooling fan and is perpendicular to the drive shaft 2. The cooling fan 7 is accommodated in a cooling air duct 8, and cooling air which is suctioned from a suction port 9 provided in a direction (hereinafter, simply referred to as an axial direction) of the cooling air duct 8, the direction being aligned with the drive shaft 2, is pushed into the cooling air duct 8 by the cooling fan 7.
As illustrated in
Here, a side of the bent portion 10 which is close to the drive shaft 2 is referred to as a bent portion inner peripheral wall 10a, and a side of the bent portion 10 which is distant therefrom is referred to as a bent portion outer peripheral wall 10b. When the flow direction of the cooling air is changed in the bent portion 10, a main stream can be formed along the bent portion outer peripheral wall 10b because of the centrifugal force. Accordingly, in this example, since the bent portion outer peripheral wall 10b is formed by a plane that intersects a plane perpendicular to the drive shaft 2 at an angle θ which is an obtuse angle (90° to 180°), the foregoing main stream of the cooling air is prevented from separating from the bent portion inner peripheral wall 10a.
Hereinafter, the flow characteristics of the cooling air in this example will be described in comparison to a structure of the related art illustrated in
As illustrated in
In addition, Patent Document 2 discloses a configuration where the flow in the bent portion and the cooling air passage is improved since a bent portion outer peripheral wall is formed by a curved surface having a radius greater than the thickness of a cooling air duct in the axial direction. However, in this configuration, since the dividing planes of components forming the cooling air duct are a plurality of planes which are disposed diagonally to each other, a mold for producing each component becomes large in a height direction, and the mold cost becomes expensive, and thus, there is a problem in cost or productivity. On the other hand, in this example, since the bent portion outer peripheral wall 10b is formed by a plane that intersects the plane perpendicular to the drive shaft 2 at an obtuse angle (90° to 180°), the foregoing main stream of the cooling air is prevented from separating from the bent portion inner peripheral wall 10a.
In addition, as illustrated in
As illustrated in
As illustrated in
In the examples described above, the scroll-type compressor has been described as an example of the scroll-type fluid machine; however, the present invention is not limited thereto, and as long as a fluid machine aims to improve the cooling efficiency, the present invention is not limited to the scroll-type compressor but also can be applied to, for example, a scroll-type expander.
The examples described above are merely specific examples for carrying out the present invention, and the technical scope of the present invention should not be interpreted in a limited manner by the examples. Namely, the present invention can be carried out in various forms without departing from the technical concept thereof or the main characteristics thereof.
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/JP2018/009124 | 3/9/2018 | WO | 00 |