The present invention relates to a package type fluid machine, particularly to a package type fluid machine having stabilized cooling performance.
There is known a gas compressor that generates a compressed gas used as a power source of a production line or an air source for a machine tool, a press machine, an air blower, or the like. When the gas compressor is, for example, a scroll compressor, the gas compressor includes a compressor body that includes a scroll orbiting eccentrically, a fixed scroll, and an end plate facing the scrolls to compress a gas in a compression chamber of which the volume is changed by operation, and is configured to discharge the compressed gas from a discharge port to a gas tank via a discharge pipe.
In addition, there is a package type fluid machine that includes a plurality of fluid machine units in a casing to save space.
There is Patent Document 1 as the background art relating to the package type fluid machine. The package type fluid machine of Patent Document 1 includes at least one suction port which communicates with an installation region of a plurality of fluid machine units stacked in stages and through which a gas for cooling flows in; a plurality of exhaust passages that are provided inside a casing and include a first exhaust passage through which the gas that has passed through fluid machines of the plurality of fluid machine units flows, and a second exhaust passage different from the first exhaust passage; and one exhaust port which is provided in the casing to communicate with a downstream end portion of the plurality of exhaust passages to collect and exhaust the gas that has flown through the plurality of exhaust passages. It is stated that with such a configuration, a duct attachable for exhaust can be reduced in size and noise can be reduced.
In Patent Document 1, when all compressor bodies of the fluid machine units operate, the compressor bodies being stacked in a plurality of stages, there is a possibility that the amount of cooling air of a compressor located the farthest from the exhaust port is block by cooling air of other compressors, so that the cooling performance deteriorates and the performance and reliability are affected.
In addition, it is considered a possibility that when for example, one or two compressor bodies operate among compressor bodies used in the same exhaust passage, due to differential pressure between the exhaust passage and the installation region where the compressor bodies are installed, a backflow occurs from a passage of cooling air of a compressor body which is not in operation, to increase the temperature of the installation region.
It is considered that depending on the operating condition of the compressor bodies, the flow direction and the amount of cooling air change and a difference occurs in temperature between the compressor bodies to cause a decrease in performance and a reliability problem.
An object of the present invention is to provide a package type fluid machine capable of stabilizing cooling performance regardless of an operating condition of compressor bodies.
According to an exemplary example, there is provided a package type fluid machine including: a plurality of compressor bodies; a machine compartment in which the plurality of compressor bodies are disposed; an exhaust duct that exhausts a cooling gas from the machine compartment; a plurality of aftercoolers that are disposed inside the exhaust duct to cool a compressed fluid from the compressor bodies; and a shield that is disposed between the aftercoolers to shield a flow of the cooling gas.
According to the present invention, the cooling performance can be stabilized regardless of an operating condition of the compressor bodies.
First, when an embodiment of the present invention is not applied to compressor bodies of a fluid machine unit, the compressor bodies being stacked in a plurality of stages, how cooling air flows depending on an operation state will be described using a comparative example illustrated in
As illustrated in
In addition, as illustrated in
Hereinafter, embodiments of the present invention will be described with reference to the drawings.
In the first embodiment, shielding plates 80 and 81 are installed between the aftercoolers 50, 51, and 52 arranged inside the exhaust duct 2. The cooling air that is a cooling gas which has cooled the compressor body 40 is divided into a flow passing through upper and lower gaps 60 and 61 and a flow passing through the insides of the aftercoolers 50, 51, and 52.
The flow which has passed through the upper gap 60 of the aftercooler 51 installed below flows to a side surface of the aftercooler 50 installed above the shielding plate 80. Accordingly, the cooling air which has passed through the aftercooler 51 below to become warm does not directly hit the aftercooler 50 installed above, so that the cooling performance of the aftercooler 50 above is improved.
In addition, since cooling airs from the compressor bodies 40, 41, and 42 do not directly interfere with each other, the cooling airs are smoothly exhausted, so that the cooling performance of the entire package is improved.
In addition, since cooling air from the lower gap 61 of the aftercooler 50 above also flows along the shielding plate 80, there is no flow colliding with the aftercooler 51 below, so that the cooling performance of the aftercooler 51 below is also improved.
When seen from front, the machine compartment 3 in which the compressor bodies 40, 41, and 42 having a three-stage configuration are installed is provided on a right side inside a casing 1. When seen from front, the exhaust duct 2, which exhausts the cooling air which is a cooling gas cooling the compressor bodies and the aftercoolers, is provided on a left side.
The aftercoolers 50, 51, and 52 having a three-stage configuration are disposed inside the exhaust duct 2. The aftercoolers 50, 51, and 52 are fixed to the vicinity of an opening between the exhaust duct 2 and the machine compartment 3 with a fixing portion such as a metal fitting (not illustrated).
The fixing portion is structured to have a side surface in a horizontal direction of the package type fluid machine and to form the upper and lower gaps 60 and 61. The cooling air which has cooled the compressor bodies flows into the exhaust duct through the opening provided between the machine compartment 3 and the exhaust duct 2. Then, the cooling air flows from the upper and lower gaps 60 and 61 through the exhaust duct 2 as indicated by arrows.
Cooling ducts 220, 221, and 222 are provided on right side surfaces of the compressor bodies 40, 41, and 42, respectively. A cooling fan (not illustrated) provided on a back surface side of the compressor bodies 40, 41, and 42 is driven, so that cooling air passes through the cooling ducts 220, 221, and 222 to be sent to a front surface of the package type fluid machine to cool the compressor bodies 40, 41, and 42.
Each of the compressor bodies 40, 41, and 42 includes two filters 21 that take in air which is a fluid to be compressed. The fluid taken into the compressor bodies 40, 41, and 42 from the filters 21 is compressed in the compressor bodies to be sent to the aftercoolers 50, 51, and 52 through gas pipes to be cooled.
In
In the present embodiment, the compressor body uses a scroll compressor, but may be other compressors such as a reciprocating compressor.
According to the first embodiment, as illustrated in
Further, the cooling air of the compressor body 41 which operates flows out from the lower gap 61, and a flow flowing into an aftercooler 52 side below can be suppressed by the shielding plate 81. Therefore, a backflow of the cooling air from the exhaust duct 2 to a machine compartment 3 side can be reduced. Accordingly, a rise in temperature of the machine compartment 3 can be reduced, so that the performance and reliability are improved.
Even when any one of the plurality of compressor bodies 41, and 42 installed operates, the flow of cooling air can be controlled similarly, and thus the cooling performance can be stabilized regardless of an operating condition of the compressor bodies.
In the present embodiment, the shielding plates 80 and 81 which are flat plates in the first embodiment are replaced with shielding plates 90 and 91 each having a V shape. Since the shielding plate is formed in a V shape, a flow from a side surface side of the aftercoolers 50, 51, and 52 toward the exhaust direction 7 is facilitated, so that the cooling performance is improved and the performance and reliability can be improved.
In the present embodiment, the shielding plates 80 and 81 which are flat plates in the first embodiment are replaced with shielding plates 100 and 101 each having a U shape (including a semicircular shape), so that the same effects as those of the first and second embodiments can be obtained.
The fourth embodiment has a configuration where shielding plates 110 and 111 of the exhaust duct 2 are disposed to be inclined obliquely toward the exhaust direction 7, and are in contact with a side surface on a front surface side and a side surface on a back surface side of the package type fluid machine among side surfaces in a longitudinal direction of the exhaust duct 2.
In the fourth embodiment, the shielding plates 110 and 111 abut against the exhaust duct 2 in a forward and rearward direction, so that the passage of the cooling air which has passed by the side surfaces of the aftercoolers 50, 51, and 52 is narrower than those of the other embodiments. Therefore, the exhaust duct 2 is lengthened in the horizontal direction by a width indicated by reference sign 12 to widen the exhaust duct 2, so that the passage of the cooling air is secured.
Since the exhaust duct 2 is longer in the horizontal direction by the width indicated by reference sign 12 than those of the other embodiments, the flow of the cooling air is separated from the aftercoolers 50, 51, and 52, so that the cooling performance of the aftercooler 50 is improved. In addition, a backflow to the machine compartment 3 can be prevented. For this reason, the cooling efficiency can be increased. Accordingly, the reliability is improved.
Regarding shielding plates of the fifth embodiment, the shielding plates 80 and 81 which are flat plates in the first embodiment are replaced with shielding plates 120 and 121 each having a shape in which the tip of each thereof is bent toward the exhaust direction 7. The present embodiment exhibits an effect that warm cooling air can be released from sides and a tip side of the shielding plates 120 and 121.
In the embodiments, the package type fluid machine including the compressor bodies of three stages in the vertical direction has been described as an example; however, the number of stages is not limited to 3, and a plurality of stages may be provided to make the set area of the package type fluid machine compact.
In addition, the present invention is also applicable to a package type fluid machine including the plurality of compressor bodies and aftercoolers in a plurality of stages in the horizontal direction instead of in the vertical direction. In that case, the package type fluid machine of the embodiment can be installed in a place with restriction in a height direction.
In addition, the present invention is also applicable to a package type fluid machine including the plurality of compressor bodies and aftercoolers in a plurality of stages in the vertical direction and the horizontal direction. In that case, the bulk density of the compressor bodies is increased, so that the cooling performance can be stabilized regardless of an operating condition of the compressor bodies.
Filing Document | Filing Date | Country | Kind |
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PCT/JP2018/033916 | 9/13/2018 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2020/054009 | 3/19/2020 | WO | A |
Number | Name | Date | Kind |
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10227981 | Kanaizumi | Mar 2019 | B2 |
10359044 | Kawano | Jul 2019 | B2 |
11026354 | Ledezma | Jun 2021 | B2 |
20050063844 | Sato | Mar 2005 | A1 |
20140314586 | Kanaizumi | Oct 2014 | A1 |
20160097389 | Yamazaki | Apr 2016 | A1 |
20170218958 | Seaver | Aug 2017 | A1 |
20180030984 | Sato | Feb 2018 | A1 |
Number | Date | Country |
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1 517 043 | Mar 2005 | EP |
55-4503 | Jan 1980 | JP |
2-49458 | Feb 1990 | JP |
4-332196 | Nov 1992 | JP |
9-46076 | Feb 1997 | JP |
11-274749 | Oct 1999 | JP |
2014-51946 | Mar 2014 | JP |
2016-145557 | Aug 2016 | JP |
Entry |
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International Search Report (PCT/ISA/210) issued in PCT Application No. PCT/JP2018/033916 dated Dec. 11, 2018 with English translation (four (4) pages). |
Japanese-language Written Opinion (PCT/ISA/237) issued in PCT Application No. PCT/JP2018/033916 dated Dec. 11, 2018 (four (4) pages). |
English translation of document B2 (Doc No. (JP 4-332196 A) previously filed on Feb. 11, 2021) (seven (7) pages). |
Chinese-language Office Action issued in Chinese Application No. 201880095780.9 dated Mar. 3, 2022 with English translation (14 pages). |
Extended European Search Report issued in European Application No. 18933643.1 dated Feb. 3, 2022 (eight (8) pages). |
Number | Date | Country | |
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20210215147 A1 | Jul 2021 | US |