LIGHTWEIGHT VACUUM PUMP WITH OXIDIZED SURFACES
20200080561 ยท 2020-03-12
Assignee
Inventors
Cpc classification
F05C2201/021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/344
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05C2201/903
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C13/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2230/92
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2230/41
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04C29/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C25/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A light weight vacuum pump is made with either or all of the stator, rotors and vanes made of aluminum or aluminum alloy that has been subjected to high energy oxidation, such as plasma electrolytic oxidation (PEO), electrolytic plasma oxidation (EPO) or micro-arc oxidation (MAO), to treat and harden the surface.
Claims
1. A vacuum pump system comprising: a motor; and a vacuum pump operably connected to the motor, the vacuum pump having one or more rotors and one or more stators formed from material selected from the group consisting of aluminum, aluminum alloy or sintered aluminum powder, wherein the one or more rotors and one or more stators are treated with a high energy oxidation process selected from the group consisting of plasma electrolytic oxidation, electrolytic plasma oxidation, micro-arc oxidation or spark discharge anodizing.
2. The vacuum pump system of claim 1 further comprising: a plurality of vanes operably connected to the one or more rotors wherein the plurality of vanes are formed of material selected from the group consisting of aluminum, aluminum alloy or sintered aluminum powder, and wherein the plurality of vanes are treated with a high energy oxidation process selected from the group consisting of plasma electrolytic oxidation, electrolytic plasma oxidation, micro-arc oxidation or spark discharge anodizing.
3. The vacuum pump system of claim 1 further comprising: a plurality of vanes operably connected to the one or more rotors wherein the plurality of vanes are formed of material selected from the group consisting of untreated polymer, carbon or graphite.
4. The vacuum pump system of claim 1 further comprising: an oil pump operatively connected to one of the one or more rotors.
5. The vacuum pump system of claim 1 further comprising: an oil tank configured to submerge the vacuum pump in oil during operation.
6. A vacuum pump comprising: a stator having a cylindrical volute with a cylindrical inner wall, a first end wall and a second end wall; a rotor rotatably disposed within the stator, said rotor having an outer cylindrical surface; a vane coupled to the rotor and translatably disposed relative to the rotor, said vane having a sealing surface at a radial outer edge of said vane; wherein one or more of the stator, rotor or vane comprises a wear surface comprising aluminum, and at least one wear surface has a Vickers hardness in the range of 1000 to 3000 HV.
7. A vacuum pump system comprising: vacuum pump comprising: a stator having a cylindrical volute with a cylindrical inner wall, a first end wall and a second end wall; a rotor rotatably disposed within the stator, said rotor having an outer cylindrical surface; a vane coupled to the rotor and translatably disposed relative to the rotor, said vane having a sealing surface at a radial outer edge of said vane; wherein one or more of the stator, rotor or vane comprises a wear surface comprising aluminum, and at least one wear surface has a Vickers hardness in the range of 1000 to 3000 HV; a motor operably connected to the vacuum pump; wherein the rotor, stator or vane are formed from material selected from the group consisting of aluminum, aluminum alloy or sintered aluminum powder; wherein the rotor, stator and vane are treated with a high energy oxidation process selected from the group consisting of plasma electrolytic oxidation, electrolytic plasma oxidation, micro-arc oxidation or spark discharge anodizing.
8. The vacuum pump of claim 7 further comprising: an oil pump operatively connected to one of the one or more rotors.
9. The vacuum pump of claim 7 further comprising: an oil tank configured to submerge the vacuum pump in oil during operation.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTIONS
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[0021] Optionally, vanes such as first stage vanes 8V and second stage vanes 9V may also be formed of a suitable lightweight metal such as aluminum, aluminum alloy or sintered aluminum powder. Optionally, the vanes can be formed of untreated polymer, carbon, graphite or other suitable material. In this case, the vanes 8V and 9V as well as vane slots 8S and 9S may also be treated with any suitable high energy oxidation process as discussed above.
[0022] The second stage 9 includes the stator or housing 9S, rotor 9R, vanes 9V, seal 24 and cap 9C. The stator 9S and rotor 9R are formed of aluminum, aluminum alloy or sintered aluminum powder. The volute 25 of the second stage is enclosed by first side or end wall wear surface 26, second side or end wall wear surface 27 (visible in
[0023] Optional oil pump 10 includes stator or housing 10S, vanes 10V and cap 10C. Vanes 10V engage a slot 36 in second stage rotor 9R. The wear surfaces of the oil pump volute, sides first and second side surfaces 37 and 38 as well as primary wear surface 40 are treated with any suitable high energy oxidation process such as PEO, EPO or MAO or any other suitable high energy oxidation process.
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[0028] Optionally, the inner generally cylindrical walls of the first and second stage stators, primary wear surfaces 14 and 28 respectively may be provided as separate components such as hardened sleeves to be installed into an untreated lightweight housing. Similarly, the first and second side wear surfaces for the first and second stages, wear surfaces 12, 13, 26 and 27 as well as the first stage rotor bearing surfaces 17 and 18 along with the second stage rotor bearing surface 30 may be provided as separate components such as sleeves and plates that may be installed into an untreated lightweight housing or around an untreated lightweight rotor to achieve the wear resistance and the light weight as described. Any suitable lightweight material may be used for the housing, rotors and or vanes such as aluminum, aluminum alloy, sintered aluminum powder, other light metal such as zinc, magnesium or titanium or metal alloys of these or other light metals or any suitable polymer.
[0029] Alternatively, a lightweight vacuum pump may be made of any suitable powdered metallurgy aluminum alloy and at least the wear and bearing surfaces may be hardened with a suitable high energy oxidation process.
[0030] All the wear and bearing surfaces as well as the vanes and the rotor slots which are described above as treated with a high energy oxidation process should have a hardness of 500-3000 HV as measured by the Vickers hardness test.
[0031] As described above, the pump includes a stator having a cylindrical volute, a rotor rotatably disposed within the stator, and a vane coupled to the rotor and translatably disposed relative to the rotor. The stator has a cylindrical inner wall, a first end wall and a second end wall. The rotor has an outer cylindrical surface which may contact the cylindrical inner surface of the stator during rotation of the rotor. The vane has a sealing surface at a radial outer edge of said vane (the edge that scrapes the inner cylindrical surface of the stator during rotation). One or more of the stator, rotor or vane comprises a wear surface comprising aluminum, and at least one wear surface has a Vickers hardness in the range of 500 to 3000 HV. Each wear surface, or a subset of the wear surfaces, may have a Vickers hardness in the range of 500 to 3000 HV. The wear surfaces, or the entire component, may obtain this hardness through the POE, EPO, or MAO processes mentioned above. The pump, as described above, preferably comprises two stages, but the advantages of processing the wear surfaces with these processes may be obtained in a pump with one stage, or several stages.
[0032] The lightweight vacuum pump may also be made as an air-cooled, O-ring sealed aluminum vacuum pump which may also include an oil management system with a preferential vacuum relief system that allows air instead of the oil from the sump to be drawn back into the evacuated lines attached to the vacuum pump system. The oil management system also includes a primary oil reservoir with an illuminated sump for observation of the oil condition. The oil reservoir also includes a large oil inlet and outlet for rapid and safe oil changes even while the pump is operating.
[0033] The contents of our copending U.S. patent application Hong, Vacuum Pump with an Oil Management System, U.S. patent application Ser. No. 16/048,064 filed Jul. 27, 2018 is hereby expressly incorporated herein by reference in its entirety.
[0034] While the preferred embodiments of the devices and methods have been described in reference to the environment in which they were developed, they are merely illustrative of the principles of the inventions. The elements of the various embodiments may be incorporated into each of the other species to obtain the benefits of those elements in combination with such other species, and the various beneficial features may be employed in embodiments alone or in combination with each other. Other embodiments and configurations may be devised without departing from the spirit of the inventions and the scope of the appended claims.