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USRE33116E - Single-stage oilless screw compressor system - Google Patents

Single-stage oilless screw compressor system
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Publication number
USRE33116E
USRE33116EUS06/905,957US90595786AUSRE33116EUS RE33116 EUSRE33116 EUS RE33116EUS 90595786 AUS90595786 AUS 90595786AUS RE33116 EUSRE33116 EUS RE33116E
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precooler
heat transfer
cooler
transfer tube
screw compressor
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US06/905,957
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Akira Suzuki
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Hitachi Ltd
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Hitachi Ltd
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Abstract

A single-stage oilless screw compressor system includes a single-stage oilless screw compressor of the type which is capable of operation without requiring oil to be fed to a working chamber of the compressor and which has a pressure ratio (discharge pressure/suction pressure) of over 4, preferably in the range between 7 and 8. The system further includes a precooler located in a gas passage on the discharge side of the compressor, a check valve located on the outlet side of the precooler and a cooler located on the outlet side of the check valve, for supplying a clean gas having no oil incorporated therein which has a pressure of above 4 kgf/cm2. The check valve for avoiding the backflow of compressed gas to the compressor is protected from a large amount of heat by the precooler mounted in the gas passage on the discharge side of the compressor, to enable the valve to operate stably and have a prolonged service life while causing the temperature of the compressed gas of high temperature released from the compressor to effectively drop to a level suitable for the use of the compressed gas.

Description

BACKGROUND OF THE INVENTION
This invention relates to a single-stage oilless screw compressor system which is suitable for use as a source of air supply in fields in which a clean gas (air) is required, such as a food industry, a testing and measuring instrument manufacturing industry, a painting and a press for semiconductor manufacturing apparatus.
An oilless screw compressor system is known as a system for producing a clean air or clean gas having no oil incorporated therein. In this known system, for example, disclosed in U.S. Pat. No. 3,367,562, a gas has its pressure raised by two-stage compression, that is, the gas is compressed by means of a low pressure stage compressor to about 3 kgf/cm2 (gauge pressure) and is cooled by an intermediate cooler and then the gas is compressed again by means of a high pressure stage compressor to a predetermined level between 7 and 8 kgf/cm2 (gauge pressure) and is cooled again by an aftercooler.
The system of the prior art for supplying a clean gas is of a two-stage compression type not of a single-stage compression. Even if a single-stage oilless screw compressor is combined with the two-stage compressor system, it would be impossible to eliminate obnoxious effects of high temperature because the temperature of the discharged gas of the single-stage compression oilless screw compressor would exceed 300° C. In a known system, no means has been provided for eliminating defects which would be experienced due to the discharged has having a high temperature.
SUMMARY OF THE INVENTION
An object of this invention is to provide a single-stage oilless screw compressor system capable of supplying, by a single-stage compression, a clean gas of a pressure of over 4 kgf/cm2 (gauge pressure) which has no oil incorporated therein and has a pressure ratio (discharge pressure/suction pressure) of over four.
Another object is to provide a single-stage oilless screw compressor system capable of protecting a valve means for avoiding a backflow of compressed gas to the compressor from high temperature, to thereby stabilize the operation of the valve means and prolong a service life thereof.
Still another object is to provide a single-stage oilless screw compressor system capable of causing the temperature of the compressed gas of high temperature discharged from the compressor to drop to a temperature level suitable for the use of the compressed gas, with excellent effects.
To accomplish the aforesaid objects, the invention provides the outstanding characteristic that the system comprises a single-stage oilless screw compressor, a precooler mounted in a gas passage on the discharge side of the compressor, a check valve mounted on the outlet side of the precooler and a cooler mounted on the outlet side of the check valve.
In this specification the term "single-stage oilless screw compressor" refers to a type of compressor which performs compression in a single stage with a pressure ratio (discharge pressure/suction pressure) of over four or preferably in the range between seven and eight and which performs operation without requiring oil fed to the operation chamber of the compressor.
BRIEF DESCRIPTION OF THE DRAWINGS
FIG. 1 is a systematic view of the single stage oilless screw compressor system of one embodiment of the invention;
FIG. 2 is a sectional view of the precooler, showing its construction in detail; and
FIG. 3 is a sectional view of the compressor, showing its construction in detail.
DESCRIPTION OF THE PREFERRED EMBODIMENT
As shown in FIG. 1, a single-stage oilless screw compressor system according to the invention comprises a drive unit generally designated by the reference numeral 1, such as a motor or an engine, transmission unit generally designated by thereference numeral 2, a single-stage oilless screw compressor generally designated by the reference numeral 3, a precooler generally designated by the reference numeral 4, a check valve generally designated by thereference numeral 5, a cooler generally designated by the reference numeral 6 and release cooler generally designated by thereference numeral 7.
Thetransmission unit 2 comprises adrive pulley 21, afollower pulley 22, V-belts 23, agear box 24, a gear 25 and apinion 26. Thedrive pulley 21 is secured to an output shaft of the drive unit 1, and thefollower pulley 23 is secured to a shaft of the gear 25 meshing with thepinion 26 which is secured to a rotor shaft of the single-stage oilless screw compressor 3. The V-belt 23 is trained over the twopulleys 21 and 22. Thedrive pulley 21 has a diameter which is about twice as large as that of thefollower pulley 22, so as to increase the rotational speed by about twofold. The number of teeth of the gear 25 is about five to six times as great as that of thepinion 26, so as to further increase the rotational speed by about fivefold or sixfold. Thus, as the rotation is transmitted from thepulley 21 to thepinion 26, the rotational speed of the drive unit 1 is increased to ten to twelve times as high as its original value at thepinion 26.
An oil-feeding pump 27 is coupled to the shaft of the gear 25 throughgears 28 and 29, with the oil-feeding pump 27 functioning to draw a lubricant collecting in a bottom portion of thegear box 24 and feed the same to meshing surfaces of thegears 25 and 26 and the bearing of the compressor 3 et al.
As shown in FIG. 3, the compressor 3 comprises acasing 31 formed with asuction port 31A and a discharge port 31B, a pair ofscrew rotors 32M and 32F rotatably supported in thecasing 31,bearings 33A, 33B and 33C, supporting the pair ofscrew rotors 32M and 32F, suction side seal means 34A and discharge side seal means 34B interposed between thecasing 31 and shafts of thescrew rotors 32M and, respectively, synchronizinggears 35M and 35F causing the pair ofscrew rotors 32M and 32F to rotate synchronously, a suction port adjusting valve 36 mounted adjacent thesuction port 31A of thecasing 31, a cylinder 37 and a piston 38 for actuating the suction port adjusting valve 36, and anair release valve 39. The compressor 3 has a pressure ratio (discharge pressure/suction pressure) of seven and is capable of compressing air drawn by suction into the pair ofscrew rotors 32M and 32F to raise its pressure sevenfold.
As further shown in FIG. 1, the precooler 4 is connected to the discharge port 31B of the compressor 3 through aline 43 and comprises ashell 41 formed with aninlet 41A and an outlet 41B for cooling water, and aheat transfer tube 42 located inside theshell 41. While only oneheat transfer tube 42 is illustrated in the drawings, it is possible to, for example, provide two heat transfer tubes. Theheat transfer tube 42 is formed of steel (carbon steel) so as to be able to withstand a high temperature in the range between 300° and 350° C., or above. Thecheck valve 5 is mounted on the outlet side of the precooler 4.
The cooler 6 comprises ashell 60 formed at opposite ends withflanges 60A and 60B, a tube nest 61 located inside theshell 60, awater chamber case 62 and acover 63. The tube nest 61 comprises atube 65 formed of copper which is in the form of an inverted letter U and connected at ends thereof to atube plate 64,fins 66 fitted over thetube 65, and a plurality ofbaffle plates 69 supported in staggered relation by throughbolts 68 connected at ends to thetube plate 64 in such a manner that thebaffle plates 69 are spaced from one another at a predetermined distance byspacers 67. Thecover 63 is connected to theflange 60A of theshell 60 at its top, and thecheck valve 5 is located inside thecover 63. Thetube plate 64 is held between theflange 60B and thewater chamber case 62, and thetube plate 64,flange 60B andwater chamber case 62 are connected by bolts 8 into a unitary structure. Thetube plate 64 cooperates with thewater chamber case 62 to define aninlet water chamber 62A and anoutlet water chamber 62B. Aninlet port 60C and anoutlet port 60D for a compressed gas are respectively formed in thecover 63 and a large diameter portion of theshell 60.
As shown most clearly in FIG. 2,air release cooler 7 comprises a shell and aheat transfer tube 71, with theair release cooler 7 being accommodated in theshell 41 with the precooler 4. Theheat transfer tube 71 is located in theshell 41 and has aninlet 71A connected to the outlet side of theheat transfer tube 42 of the precooler 4 and an outlet 71B connected to thegas release valve 39 through aline 72.
Operation of the embodiment of the invention will now be described.
Actuation of the drive unit 1 provides a drive force which is transmitted to the compressor 3 through thetransmission unit 2 which increases the rotational speed, to drive the pair ofscrew rotors 32M and 32F of the compressor 3 for rotation at high speed (about 50-100 m/sec in peripheral speed). As a result, air under a pressure of 1 kgf/cm2 is drawn by suction from the atmosphere through thesuction port 31A into a working chamber defined by the pair ofscrew rotors 32M and 32F where the air is compressed into compressed air which is discharged through the discharge port 31B. At this time the compressed air is under pressure of 7 kgf/cm2 and has a temperature in the range between 300° and 350° C. The compressed air of high temperature is cooled as it exchanges heat with cooling water in theshell 41 while flowing through theheat transfer tube 42 of the precooler 4, until its temperature reaches the range between 250° and 100° C. at the outlet section of theheat transfer tube 42. The compressed air thus precooled flows through thecheck valve 5 into theshell 60 of the cooler 6 where it flows downwardly in serpentine flow as it is guided by thebaffle plates 69, to be forwarded through theoutlet 60D to a station where it is put to use. Heat exchange takes place between the compressed air flowing downwardly in and through theshell 60 in serpentine flow with the cooling water flowing in and through thetube 65, so that the compressed air has a temperature of about 45° C. at theoutlet 60D.
Meanwhile, as the volume of the air in use decreases, the pressure rises on the discharge side of the compressor 3 to a level above a predetermined level. The rise in pressure is sensed by a manometer, not shown which generates a signal to feed air to a chamber 37A of the cylinder 37 for actuating the piston 38 to move the suction port adjusting valve 36 from a solid line position to a phantom line position, to thereby throttle the volume of air fed inti the compressor 3. Theair release valve 39 is opened by the movement of the piston 38, and the compressed air compressed by the compressor 3 is cooled by the precooler 4 and then it is cooled by the cooling water in theshell 41. Some air flowing through theheat transfer tube 71 of theair release cooler 7 is released through the openedair release valve 39 into the atmosphere or the suction side of the compressor 3.
The invention has been shown and described as being incorporated in the compressor having a suction pressure of 1 kgf/cm2 and a discharge pressure of 7 kgf/cm2. However, this is not restrictive and the invention has application in a system having a discharge pressure of over 4 kgf/cm2.

Claims (15)

What is claimed is:
1. A single-stage oilless screw compressor system comprising:
a drive unit;
transmission means connected to said drive unit for increasing a rotational speed thereof;
a single-stage oilless screw compressor connected to said transmission means and having a pressure discharge pressure to suction ratio of over four, said single-stage oilless screw compressor comprising a casing formed with a suction port and a discharge port, a pair of screw rotors, rotatably located in said casing and meshing with each other, bearing means supporting said pair of screw rotors, seal means interposed between said casing and shafts of said pair of screw rotors, and synchronizing gear means mounted on said pair of screw rotors for bringing about synchronization of their rotations;
a precooler connected to a discharge side of said single-stage oilless screw compressor, said precooler comprising a heat transfer tube allowing compressed gas to flow therein and therethrough and a shell enclosing said heat transfer tube for allowing a cooling medium to flow therein and therethrough;
a cooler connected to an outlet side of said precooler, said cooler comprising a shell for the compressed gas to flow therein and therethrough, and a heat transfer tube located inside said shell and allowing the cooling medium to flow therein and therethrough; and
a check valve located in a compressed gas passage between said precooler and said cooler.
2. A single-stage oilless screw compressor system as claimed in claim 1, further comprising suction port adjusting means located on a suction side of said compressor for adjusting the volume of gas drawn by suction into the compressor, said suction port adjusting means comprising a suction port adjusting valve for throttling the volume of gas drawn by suction into the compressor, and a piston and a cylinder for actuating said suction port adjusting valve.
3. A single-stage oilless screw compressor system as claimed in claim 2, further comprising a gas release valve brought to an open position when the volume of gas introduced into the compressor is throttled and a gas release cooler further cooling the compressed gas fed from said precooler when the gas is released, said gas release cooler comprising a heat transfer tube connected at an inlet to an outlet of said heat transfer tube of the precooler, and the shell of said precooler enclosing said heat transfer tube of said precooler and said gas release cooler, said shell of said precooler having a cooling medium flowing therein and therethrough, and said gas release valve being located at an outlet end of said heat transfer tube of said gas release cooler.
4. A single-stage oilless screw compressor system as claimed in claim 3, wherein said heat transfer tube of said precooler is formed of steel.
5. A single-stage oilless screw compressor system as claimed in claim 3, wherein said gas release valve is connected to said piston of said suction port adjusting means.
6. A single-stage oilless screw compressor system as claimed in claim 4, wherein said cooler comprises the shell of said cooler formed with an inlet port, an outlet port and flanges and allows the compressed gas to flow therein and therethrough, a tube nest comprising a heat transfer tube secured to a tube plate and allowing the cooling medium to flow therein and therethrough, fins fitted to an outer peripheral surface of said heat transfer tube, a plurality of baffle plates arranged in staggered relation to cause a stream of compressed gas to flow in serpentine flow, spacers for keeping said baffle plates at a predetermined spacing interval, through bolts supporting said baffle plates to said tube plate, and a water chamber case secured to one of the flanges of said shell of said cooler through said tube plate, said water chamber case being formed with an inlet port and an outlet port for the cooling medium.
7. A single-stage oilless screw compressor system as claimed in claim 1, wherein said transmission means comprises a drive pulley secured to an output shaft of said drive unit, a gear box, a gear supported in said gear box, a follower pulley connected to said gear, belts trained over said drive pulley and said follower pulley, and a pinion secured to one of said screw rotors of said compressor and meshing with said gear.
8. A single-stage oilless screw compressor system as claimed in claim 7, wherein the acceleration ratio between the pulley and the follower pulley is about two times and the acceleration ratio between the gear and the pinion is five to six times. .Iadd.
9. A single-stage oilless screw compressor system comprising:
a drive unit;
transmission means connected to said drive unit for increasing a rotational speed thereof;
a single-stage oilless screw compressor connected to said transmission means and having a pressure discharge pressure to suction ratio of over four, said single-stage oilless screw compressor comprising a casing formed with a suction port and a discharge port, a pair of screw rotors rotatably located in said casing and meshing with each other, bearing means supporting said pair of screw rotors, seal means interposed between said casing and shafts of said pair of screw rotors, and synchronizing gear means mounted on said pair of screw rotors for bringing about synchronization of their rotations;
a precooler connected to a discharge side of said single-stage oilless screw compressor, said precooler comprising a heat transfer tube and a shell enclosing said heat transfer tube;
a cooler connected to an outlet side of said precooler, said cooler comprising a heat transfer tube and a shell enclosing said heat transfer tube; and
a check valve located in a compressed gas passage between said precooler and cooler..Iaddend. .Iadd.
10. A single-stage oilless screw compressor system as claimed in claim 9, further comprising suction port adjusting means located on a suction side of said compressor for adjusting the volume of gas drawn by suction into the compressor, said suction port adjusting means comprising a suction port adjusting valve for throttling the volume of gas drawn by suction into the compressor, and a piston and a cylinder for actuating said suction port adjusting valve..Iaddend. .Iadd.11. A single-stage oilless screw compressor system as claimed in claim 10, further comprising a gas release valve brought to an open position when the volume of gas introduced into the compressor is throttled and a gas release cooler further cooling the compressed gas fed from said precooler when the gas is released, said gas release cooler comprising a heat transfer tube connected at an inlet to an outlet of said heat transfer tube of said precooler, and the shell of said precooler enclosing said heat transfer tube of said precooler and said gas release cooler, said shell of said precooler having a cooling medium flowing therein and therethrough, and said gas release valve being located at an outlet end of said heat
transfer tube of said gas release cooler..Iaddend. .Iadd.12. A single-stage oilless screw compressor system comprising:
a drive unit;
transmission means connected to said drive unit for increasing a rotational speed thereof, said transmission means comprising a gear and a pinion meshing with said gear;
a single-stage screw compressor connected to said pinion of said transmission means and having a pressure discharge pressure to suction ratio of over four, said single-stage oilless screw compressor comprising a casing formed with a suction port and a discharge port, a pair of screw rotors rotatably located in said casing and meshing with each other, and bearing means supporting said pair of screw rotors;
a precooler connected to a discharge side of said single-stage oilless screw compressor, said precooler comprising a heat transfer tube and a shell enclosing said heat transfer tube;
a cooler connected to an outlet side of said precooler, said cooler comprising a heat transfer tube and a shell enclosing said heat transfer tube; and
a check valve located in a compressed gas passage between said precooler
and cooler..Iaddend. .Iadd.13. A single-stage oilless screw compressor system as claimed in claim 12, further comprising suction port adjusting means located on a suction side of said compressor for adjusting the volume of gas drawn by suction into the compressor, said suction port adjusting means comprising a suction port adjusting valve for throttling the volume of gas drawn by suction into the compressor, and a piston and a cylinder for actuating said suction port adjusting valve..Iaddend. .Iadd.14. A single-stage screw compressor system as claimed in claim 12, further comprising a gas release valve brought to an open position when the volume of gas introduced into the compressor is throttled and a gas release cooler further cooling the compressed gas fed from said precooler when the gas is released, said gas release cooler comprising a heat transfer tube connected at an inlet to an outlet of said heat transfer tube of said precooler, and the shell of said precooler enclosing said heat transfer tube of said precooler and said gas release cooler, said shell of said precooler having a cooling medium flowing therein and therethrough, and said gas release valve being located at an outlet end of
said heat transfer tube of said gas release cooler..Iaddend. .Iadd.15. A single-stage oilless screw compressor system comprising:
a drive unit;
transmission means connected to said drive unit for increasing a rotational speed thereof, said transmission means comprising a gear box, a gear, and a pinion meshing with said gear;
a single-stage oilless screw compressor connected to said pinion of said transmission means and having a pressure discharge pressure to suction ratio of over four, said single-stage oilless screw compressor comprising a casing formed with a suction port and a discharge port, a pair of screw rotors rotatably located in said casing and meshing with each other, bearing means supporting said pair of screw rotors, seal means interposed between said casing and shafts of said pair of screw rotors;
a precooler connected to a discharge side of said single-stage oilless screw compressor;
a cooler connected to an outlet side of said precooler;
a check valve located in a compressed gas passage between said precooler and cooler; and
an oil-feeding pump coupled to a shaft of said gear through additional
gears..Iaddend. .Iadd.16. A single-stage oilless screw compressor system as claimed in claim 15, wherein said cooler comprises a shell having a flange, a heat transfer tube and a cover connected to said flange, wherein said check valve is located inside said cover..Iaddend. .Iadd.17. A single-stage oilless screw compressor system comprising:
a drive unit;
transmission means connected to said drive unit for increasing a rotational speed thereof;
a single-stage oilless screw compressor connected to said transmission means and having a pressure discharge pressure to suction ratio of over four, said single-stage oilless screw compressor comprising a casing formed with a suction port and a discharge port, a pair of screw rotors rotatably located in said casing and meshing with each other, bearing means supporting said pair of screw rotors, seal means interposed between said casing and shafts of said pair of screw rotors, and synchronizing gear means mounted on said pair of screw rotors for bringing about synchronization of their rotations;
a precooler connected to a discharge side of said single-stage oilless screw compressor, said precooler comprising a heat transfer tube and a shell enclosing said heat transfer tube;
a cooler connected to an outlet side of said precooler, said cooler comprising a heat transfer tube and a shell enclosing said heat transfer tube;
a check valve located in a compressed gas passage between said precooler and cooler;
a suction port adjusting valve mounted adjacent said suction port of said casing of said compressor;
an air release valve for releasing the compressed air into the atmosphere;
an air release cooler connected to the outlet side of said precooler and said air release valve; and
pressure detecting means for sensing pressure above a predetermined level in the discharge side of said compressor and generating a signal to close said suction port adjusting valve and simultaneously open said air release
valve..Iaddend. .Iadd.18. A single-stage oilless screw compressor system as claimed in claim 17, wherein said air release cooler includes a heat transfer tube located in the shell of said precooler..Iaddend. .Iadd.19. A single-stage oilless screw compressor system as claimed in claim 17, wherein said air release valve and said suction port adjusting valve include a common valve shaft whereby said air release valve is opened by a closing movement of said suction port adjusting valve..Iaddend.
US06/905,9571983-09-121986-09-11Single-stage oilless screw compressor systemExpired - LifetimeUSRE33116E (en)

Applications Claiming Priority (2)

Application NumberPriority DateFiling DateTitle
JP58166644AJPS6060293A (en)1983-09-121983-09-12Single stage oil-less type rotary compressor
JP58-1666441983-09-12

Related Parent Applications (1)

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US06/563,037ReissueUS4529363A (en)1983-09-121983-12-19Single-stage oilless screw compressor system

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US06/563,037CeasedUS4529363A (en)1983-09-121983-12-19Single-stage oilless screw compressor system
US06/905,957Expired - LifetimeUSRE33116E (en)1983-09-121986-09-11Single-stage oilless screw compressor system

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US06/563,037CeasedUS4529363A (en)1983-09-121983-12-19Single-stage oilless screw compressor system

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US6474950B1 (en)2000-07-132002-11-05Ingersoll-Rand CompanyOil free dry screw compressor including variable speed drive

Families Citing this family (28)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US4662826A (en)*1984-04-201987-05-05Tokico Ltd.Vacuum pump system including serially connected rotary and reciprocating vacuum pumps
JPS60249694A (en)*1984-05-251985-12-10Hitachi Ltd Compressor start-up unloading device
US4636145A (en)*1985-05-281987-01-13Donaldson Thomas WDown-well pump device
CA1279856C (en)*1985-10-091991-02-05Akira SuzukiOilless rotary type compressor system
US4792294A (en)*1986-04-111988-12-20Mowli John CTwo-stage screw auger pumping apparatus
US4929161A (en)*1987-10-281990-05-29Hitachi, Ltd.Air-cooled oil-free rotary-type compressor
JP2619468B2 (en)*1988-04-061997-06-11株式会社日立製作所 Oil-free screw fluid machine
JP2651837B2 (en)*1988-06-091997-09-10北越工業株式会社 Oil-free screw compressor cooling system
US4944657A (en)*1989-03-011990-07-31Mowli John CTwo-stage pumping apparatus with low shear first stage
JP2966575B2 (en)*1991-05-291999-10-25株式会社日立製作所 Oil-free scroll compressor
US5267837A (en)*1992-09-231993-12-07Mowli John CTwo-stage pumping apparatus with non-meshing first stage augers
CA2316822A1 (en)*1997-12-301999-07-15Ateliers Busch S.A.Cooling device
JP4003378B2 (en)*2000-06-302007-11-07株式会社日立プラントテクノロジー Screw compressor
JP2002155879A (en)*2000-11-222002-05-31Hitachi Ltd Oil-free screw compressor
DE10117791A1 (en)*2001-04-102002-10-17Boge KompressorenCompressor system for producing compressed air comprises a compressor stage arranged in a sound-proof compressor chamber (26) within a housing but spatially removed from a drive motor
US7530798B2 (en)*2001-07-252009-05-12Leobersdorfer Maschinenfabrik AgMultistage compressor for compressing gases
BE1015079A4 (en)*2002-08-222004-09-07Atlas Copco Airpower NvCompressor with pressure relief.
BE1016558A3 (en)*2005-03-212007-01-09Atlas Copco Airpower Nv DEVICE FOR COOLING A COMPRESSED GAS.
JP4673136B2 (en)*2005-06-092011-04-20株式会社日立産機システム Screw compressor
JP4709016B2 (en)*2006-01-122011-06-22アネスト岩田株式会社 Complex compressor
CN101270749B (en)*2007-03-232010-05-19宝山钢铁股份有限公司Oil-free helical lobe compressor rotor anti-seizing protection method and device
JP4717048B2 (en)*2007-10-262011-07-06株式会社神戸製鋼所 Screw compressor
CN106050628A (en)*2016-06-012016-10-26淮南市鸿裕工业产品设计有限公司Energy waste and resistance loss control component of oil-free air compressor
EP3604819B1 (en)*2017-03-312022-03-16Hitachi Industrial Equipment Systems Co., Ltd.Gas compressor
BE1026205B1 (en)*2018-04-122019-11-12Atlas Copco Airpower Naamloze Vennootschap Multi-stage compressor and method for setting the speed of the motors
WO2019197913A1 (en)*2018-04-122019-10-17Atlas Copco Airpower, Naamloze VennootschapMulti-stage compressor unit and method for adjusting the rotational speed of the motors
CN109458345A (en)*2018-12-272019-03-12无锡方盛换热器股份有限公司A kind of high temperature modification oilless (oil free) compressor cooling system
CN115013301B (en)*2022-07-052023-06-30杭州久益机械股份有限公司Performance test bench for dry oil-free screw compressor

Citations (2)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US3367652A (en)*1965-08-021968-02-06Anton R. StobbPaper jogger and compressor
US3975123A (en)*1973-09-031976-08-17Svenska Rotor Maskiner AktiebolagShaft seals for a screw compressor

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US3367652A (en)*1965-08-021968-02-06Anton R. StobbPaper jogger and compressor
US3975123A (en)*1973-09-031976-08-17Svenska Rotor Maskiner AktiebolagShaft seals for a screw compressor

Cited By (1)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US6474950B1 (en)2000-07-132002-11-05Ingersoll-Rand CompanyOil free dry screw compressor including variable speed drive

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JPS6060293A (en)1985-04-06
US4529363A (en)1985-07-16
JPH0148398B2 (en)1989-10-19

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