The present invention relates to a medium or small capacity air compressor which is used as a power air source or the like for factories, and more particularly to a heat exchanger provided in those air compressors.
A screw-type compressor and a compact turbo compressor are known as a medium or small capacity air compressor whose discharge pressure is approximately 0.7 MPa in gauge pressure and whose output power is in a class from less than 100 kW to several hundreds kW, and are used as a power air source for factories. An example of such an air compressor is disclosed in JP-A-8-105386 or JP-A-2000-120585. In these specifications, a laminated type of heat exchanger or a fin tube type of heat exchanger is used for cooling compressed air generated by the medium or small capacity turbo compressor.
In JP-A-8-105386, a gas cooler for cooling the compressed gas is inserted with a predetermined gap into a cooler shell through which the compressed gas flows while a seal part is formed on an outer circumferential part of the gas cooler for sealing the gap to divide the inside of the cooler shell into a high temperature side and a low temperature side, so that the seal part of the gas cooler has rigidity and sealability. The seal part projects from the outer circumferential part of the gas cooler, and is elastically contacted with an inner wall of the cooler shell. Further, JP-A-2000-120585 discloses a pressure container provided with a pair of rails having a recess part at one end thereof, in which a nest accommodated in the pressure container is provided with a roller to be fitted into the recess part after traveling on the rail, so that reliability and maintenance efficiency of the seal are improved.
The sealing ability is improved by way of each sealing method described in the above prior art, however, it becomes complicated to process the seal part because of its complicated structure. In addition, the assembling is troublesome because the elastic seal becomes resistant when the nest is inserted into a casing. Further, it is also difficult to completely prevent leakage.
In view of disadvantages of the above prior art, an object of the present invention is to prevent the heat exchange efficiency from decreasing due to the leakage between a cooling apparatus nest and a casing, by a simple structure. Another object of the present invention is to provide a high performance heat exchanger capable of cooling high temperature fluid. The present invention achieves at least one of these objects.
In order to achieve the above-described object, according to one aspect of the present invention, there is provided a heat exchanger for an air compressor, comprising a heat exchanger nest having a plurality of low temperature chambers through which low temperature fluid flows and a plurality of high temperature chambers through which high temperature fluid flows, the low temperature chambers and the high temperature chambers being alternately arranged in layers through a partition plate interposed therebetween, wherein a flowing direction of the low temperature fluid in the low temperature chambers and a flowing direction of the high temperature fluid in the high temperature chambers are substantially orthogonal to each other, and the both ends of the layered heat exchanger nest are the low temperature chambers.
According to another aspect of the present invention, there is provided a heat exchanger for an air compressor, comprising a heat exchanger nest formed by alternately arranging a plurality of low temperature chambers through which low temperature fluid flows and a plurality of high temperature chambers through which high temperature fluid flows in layers through a partition plate interposed therebetween, wherein the number of the high temperature chambers is smaller than that of the low temperature chambers by one, and a flowing direction of the low temperature fluid in the low temperature chambers and a flowing direction of the high temperature fluid in the high temperature chambers are substantially orthogonal to each other.
In these respect, features, it is desirable that the low temperature fluid is cooling water and the high temperature fluid is compressed air. Further, the hear exchanger for an air compressor having these features may be provided in a screw compressor.
In the above-described aspects, it is desirable that the heat exchanger further comprises a container for accommodating the heat exchanger nest, in which the container is provided with a container side projecting seal formed on an inner surface of a side thereof, and the heat exchanger nest is also provided with a nest side projecting seal formed on a side thereof, wherein the container side seal and the nest side seal are coupled through a seal member which can be elastically deformed in contact with both seals, so as to form a seal part for partitioning the inside of the container into several portions.
Preferably, the nest side seal may be provided in the vicinity of an outlet of the low temperature fluid; the nest side seal may be provided so as to project from a bottom surface of the heat exchanger nest, so that compressive load is loaded on the seal member due to the mass of the heat exchanger nest; the cross sectional area of the seal member may be larger than those of contacting parts between the seal member and the container side seal, and the seal member and the nest side seal; the seal member may include at least one of ethylene-propylene rubber, acrylic rubber, silicone rubber, and fluoro-rubber, as a principal component; the seal member may be a gas tube seal which is constituted by forming a polymeric material into a tube, and sealing or injecting gas therein; and a clamp may be provided for pressing the heat exchanger nest to the container side seal.
Now, some embodiments of the present invention will be described referring to the drawings. At first, findings based on preliminary tests related to the present invention will be described. In a heat exchanger according to the present invention, there are formed flow passages which are separated by a partition plate and orthogonal to each other, through which two different kinds of working fluids flow respectively. When the working fluids flow through the orthogonal flow passages respectively, the heat is transferred from a high temperature chamber on a high temperature side to a low temperature chamber on a low temperature side through the partition plate. This allows the fluid on the high temperature side to be cooled. The high temperature chamber and the low temperature chamber make a pair, and a plurality of pairs are stacked in multiple layers to form a heat exchanger, referred to as a nest. Examples of such heat exchangers are described in Heat Transfer Engineering Data Book (forth Edition), published by the Japan Society of Mechanical Engineers, p. 261. According to this publication, this type of heat exchanger is classified as a compact heat exchanger. In the compact heat exchanger, since a heat transfer coefficient on the high temperature chamber side is small when using cooling water as a fluid for the low temperature chamber and using compressed air as a fluid for the high temperature chamber, a corrugated fin is employed or a slit referred to as a louver is provided in the corrugated fins to increase heat transfer area and to improve the heat transfer coefficient. In view of this advantage regarding the miniaturization, it is readily thought of to apply the compact heat exchanger to a compressor. However, since the difference between the heat transfer coefficients is large in the heat exchanger for the air compressor as described above, it is not possible to achieve sufficient performance by simply applying the compact heat exchanger to the air compressor. Thus, according to the present invention, there is used a nest in which the number of high temperature chambers is larger than that of low temperature chambers as described below in detail, in consideration of the property of a compact heat exchanger and the economy.
A nest having five lines of high temperature chambers and four lines of low temperature chambers was fabricated so as to make the number of the high temperature chambers larger than that of the low temperature chambers, and then its cooling ability was measured, however, desired cooling ability (heat passing coefficient) can not be obtained. Then, temperature distribution of the fluid in the high temperature chambers (hereinafter, referred to as gas chambers) disposed at both ends, and gas outlet temperature of the gas chambers disposed between the low temperature chambers (hereinafter, referred to as water chambers) at the middle of the nest were measured. The result will be described referring to
The total number of the gas chambers 51 is five, and that of the water chambers 52 is four, so that the gas chambers 51 is disposed at both ends. The heat passing amounts on a water side and a air side are balanced by increasing the heat transfer area on the air side of which the thermal conductivity is lower than that of water. A gas flow direction 58 in
Although not shown, a heat exchanger for an air compressor is formed by enclosing and attaching the nest used in this embodiment to a casing. In this case, a gap formed between the nest and the casing is sealed with seal plates 56, 57 at a part around a nest inlet. By using this heat exchanger, a cooling ability test for high temperature compressed air was performed.
Some embodiments of the present invention based on the above-described findings will be described referring to
The screw compressor according to this embodiment is a two-stage compressor including a low pressure stage (a first stage) compressor and a high pressure stage (a second stage) compressor. Fluid to be treated is air, and a discharge pressure is in order of approximately 0.7 to 1.0 MPa in gauge pressure. This compressor is used as a general industrial factory air source, for example. The configuration of the compressor will be described below in detail. The low pressure stage compressor 2 and the high pressure stage compressor 3 are mounted on a speed-up gears casing 5, and a rotor which is provided in each stage compressor is rotated by a motor 4. Each air passage for first stage suction, first stage discharge, second stage suction, and second stage discharge is formed by dividing the inside of the speed-up gears casing 5 with partition walls. The high temperature air pressurized in each stage compressor passes through respective passages, and cooled in an intercooler and an aftercooler described below. Cooling water is supplied to these coolers through a cooling water piping 21. The cooling water is, at first, guided to a water chamber cover 20, then guided to the nest, thereafter discharged from an outlet piping 22. The screw compressor has an oil pump 15, an oil cooler 16, a suction filter 11, a volume control valve 10, and other accessories.
Another embodiment of the present invention will be described referring to
By putting a seal member 71 on an upper surface of the projection 72 and holding the seal member 71 in a groove 87 formed by the fixing member 88, a space inside of the container 30 is divided to a space through which the high temperature air 48 flows, and a space through which the low temperature air 50 cooled by the heat exchange in the heat exchanger nest 31 flows. In this case, the heat exchanger nest 31 and the seal member 71 are hermetically held by closely contacting an inner wall surface 75 of the fixing member 88 with an outer surface 74 of the seal member 71. The seal member 71 is a sufficient elastically deformable material such as rubber. Additionally, with respect to the shape of the seal member 71, a cutout part is formed on the fixing member 88 side, and the projection side 72 is made to be a taper shape, in consideration of the adherability with the projection 72 and the fixing member 88.
In this embodiment constructed so, heat degradation of the seal member 71 formed from rubber or the like can be reduced because the seal member 71 is placed on the low temperature air 50 side. Since the seal member 71 is placed under the heat exchanger nest 31, the seal member 71 is compressively deformed by the weight of the heat exchanger nest 31, so that the surface pressure can be securely applied to the seal surface.
The seal member 71 is an elastically deformable materiel such as rubber, so that the securely sealing can be performed without generating any gap even if a surface of the projection72 of the container 30 is very uneven like a casting surface. Additionally, the inner wall surface 75 of the fixing member 88 and an outer surface 26 of the seal member 71 are closely contacted, so that the occurrence of gaps, which may occur when the heat exchanger nest 31 is fixed, can be prevented.
Then, thickness h (see
By the way, the inlet air temperature of the heat exchanger such as an intercooler or an aftercooler used in the screw compressor reaches to not less than approximately 200 degrees Celsius, at pressure of approximately 0.1 MPa. The desirable seal materials for using under such a high temperature are ethylene-propylene rubber, acrylic rubber, silicone rubber, fluororubber, and the other material having high heat resistance.
A variation of the embodiment shown in
Another variation of the present invention is shown in
Still further variation of the present invention is shown in
According to the embodiments and variations described above, the heat exchanger nest can be readily removed from the container of the heat exchanger, and the sealing can be securely preformed, so that the reliable and efficient heat exchanger can be obtained. Additionally, cleaning and checking can be performed only by removing the cover, so that the maintenance ability is improved. Further, by decreasing the temperature of the working fluid at the outlet of the heat exchanger, the compressor power is reduced, which can contribute to the energy saving.
As described above in detail, in the compact type heat exchanger according to the present invention, the number of low temperature chambers is larger than that of the high temperature chambers by one chamber (one line), and the low temperature chambers are disposed at both ends, so that the compact heat exchanger having excellent cooling performance can be obtained. Further, the sealing ability inside the heat exchanger can be improved.
Number | Date | Country | Kind |
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2000-337253 | Oct 2000 | JP | national |
This application is a divisional application of U.S. Ser. No. 09/921,926, filed Aug. 6, 2001 now abandoned, the contents of which are incorporated hereby by reference.
Number | Name | Date | Kind |
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3775972 | Perpall | Dec 1973 | A |
3858291 | Perpall | Jan 1975 | A |
3957106 | Whitfield | May 1976 | A |
4367789 | Moranne | Jan 1983 | A |
4473111 | Steeb | Sep 1984 | A |
4596285 | Dinulescu | Jun 1986 | A |
4805695 | Ishikawa et al. | Feb 1989 | A |
5383439 | Bock | Jan 1995 | A |
Number | Date | Country |
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2161604 | Jun 1973 | DE |
8105386 | Apr 1996 | JP |
2000120585 | Apr 2000 | JP |
Number | Date | Country | |
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20050082044 A1 | Apr 2005 | US |
Number | Date | Country | |
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Parent | 09921926 | Aug 2001 | US |
Child | 10920359 | US |