This patent application claims priority to European Patent Application No. 08425560.3 as filed on Aug. 8, 2008.
The present invention relates to a vacuum pumping system comprising a plurality of sputter ion pumps.
As known, and referring to
Always in accordance with the prior art, sputter ion pumps are equipped with a magnetic circuit comprising a pair of primary magnets 110 located outside housing 30, at opposite axial ends of pumping cells 50, and a ferromagnetic yoke 130. The polarities of magnets 110 are oriented in the same direction, so that a magnetic field parallel to the axes of pumping cells 50 (arrow M) is generated, which allows imparting helical trajectories to the electrons, thereby increasing the lengths of their paths between the cathode and the anode and hence the possibility of collision with the gas molecules and ionisation of said molecules. Ferromagnetic yoke 130 closes the magnetic circuit, by providing a return path for the magnetic field between primary magnets 110 (arrows Y).
In certain applications, a single vacuum pump is not sufficient to attain the desired performance. By way of example, the pumping systems with a plurality of sputter ion pumps are required in applications where vacuum chambers communicating e.g. through an orifice should provide different vacuum degrees. This is for instance the case of the field of high-precision electron microscopes, where toroidal sputter ion pumps are used, which are arranged axially superimposed around the microscope column in order to create different vacuum degrees in respective chambers.
According to the prior art, as shown in
U.S. Pat. No. 5,324,950 discloses a pumping system comprising a pair of sputter ion pumps, each having its own pair of primary magnets. A common magnetic yoke encloses both pumps and includes a pair of external plates and an intermediate separation plate between the two pumps. Yet, also such a solution is not optimal as far as the reduction of the axial size and the overall weight of the pumping system is concerned.
Therefore, it is the main object of the present invention to obviate the above drawbacks of the prior art by providing a vacuum pumping system comprising a plurality of sputter ion pumps, which is as compact and light as possible.
The above and other objects are achieved by the pumping system according to the invention, as claimed in the appended claims.
The pumping system according to the invention is extremely compact and light due to use of a common magnetic circuit comprising a pair of external magnets and intermediate magnets being alternated with the ion pumps.
Advantageously, the provision of the intermediate magnets enables the lines of flux of the magnetic field to remain substantially parallel to the axes of the anode cells, by reducing the tendency of the lines of flux to spread towards the pump outside.
According to a preferred embodiment of the invention, the intermediate magnets are axially movable and therefore they can be moved towards the external magnets or away therefrom, whereby different conditions of magnetic field intensity can be generated and sputter ion pumps with different axial sizes can be accommodated.
Advantageously, in this manner, the pumping speed may be optimised for different pressures.
Further advantages and features of the invention will become more apparent from a detailed description of some preferred embodiments of the invention, given by way of non-limiting examples with reference to the accompanying drawings, in which:
Referring to
In conventional manner, each pump 1′, 1″ comprises an anode formed by substantially cylindrical pumping cells 5′, 5″, and a cathode formed by plates 7′, 7″, e.g. of titanium, located at opposite ends of cells 5′, 5″, both the anode and the cathode being enclosed in a corresponding vacuum housing 3′, 3″. Advantageously, the pumps 1′, 1″ can be separately and independently powered by separate power supply means 9′, 9″.
According to the invention, pumping system PS further comprises a magnetic circuit MC common to both pumps 1′, 1″, the magnetic circuit MC comprising a pair of external magnets 11a, 11b, located at opposite axial ends of pumping system PS and having polarities oriented in the same direction an intermediate magnet 15 interposed between the first ion pump 1′ and the second ion pump 1″ and having polarities oriented in the same direction as the external magnets 11a, 11b. A ferromagnetic yoke 13, internally enclosing the external magnets 11a, 11b and the intermediate magnet 15.
Preferably, external magnets 11a, 11b and intermediate magnet 15 are permanent magnets; in the alternative, they are electromagnets. Since the external magnets 11a, 11b and the intermediate magnet 15 all have polarities oriented in the same direction, they generate a magnetic field parallel to the axes of pumping cells 5′, 5″ of pumps 1′, 1″ (arrows M), whilst ferromagnetic yoke 13 closes common magnetic circuit MC, by providing a return path for the magnetic field between the magnets 11a, 11b, 15 (arrows Y).
In the illustrated example, ferromagnetic yoke 13 is substantially C-shaped, and external magnets 11a, 11b are preferably secured to opposite arms of the C-shaped yoke 13, internally of yoke 13 itself. It is clear that the proposed solution achieves the desired objectives, since it enables obtaining a considerable reduction of both the axial size and the overall weight of pumping system PS.
As it can be clearly seen in
Referring to
As it will be apparent to a person skilled in the art, by axially displacing intermediate magnet 15, it is possible to have different magnetic field intensities in the “pocket” containing the first ion pump 1′ and the “pocket” containing the second ion pump 1″. In this manner, it is possible to have a stronger magnetic field—and hence a higher pumping speed for low pressures (e.g. for ultra-high vacuum degrees)—at the first ion pump 1′, and a lower magnetic field—and a higher pumping speed for high pressures (e.g. for high vacuum degrees)—at the second ion pump 1″, as shown in
The invention is not limited to a pumping system comprising two ion pumps. By way of example,
In this embodiment, magnetic circuit MC′ of pumping system PS′ comprises a pair of external magnets 11a, 11b, located at opposite axial ends of pumping system PS′ and having polarities oriented in the same direction a first intermediate magnet 15a interposed between the first ion pump 1′ and the second ion pump 1″ and a second intermediate magnet 15b interposed between the second ion pump 1″ and the third ion pump 1′″, the intermediate magnets 15a, 15b having polarities oriented in the same direction as the polarities of the external magnets 11a, 11b a ferromagnetic yoke 13′, internally enclosing the external magnets 11a, 11b and said intermediate magnets 15a, 15b.
External magnets 11a, 11b and intermediate magnets 15a, 15b generate a magnetic field oriented parallel to the axes of the pumping cells of pumps 1′, 1″, 1′″ (arrows M), whilst ferromagnetic yoke 13′ closes common magnetic circuit MC′, by providing a return path for the magnetic field between the magnets 11a, 11b, 15a, 15b (arrows Y).
Also in this second embodiment intermediate magnets 15a, 15b can take different axial positions relative to external magnets 11a, 11b and relative to each other, so that they enable accommodating ion pumps 1′, 1″, 1′″ with different heights, each subjected to a magnetic field of different intensity, suitable for the desired pumping speed.
It is clear from the above description that the pumping system can comprise any number of ion pumps, arranged alternated with intermediate magnets. In general terms, the above description has been given by way of non-limiting example and several modifications and variants can fall within the inventive principle upon which the present invention is based.
For instance, as it will be apparent to a person skilled in the art, the intermediate magnets may have the same sizes as, or different sizes from the external magnets depending on the requirements of the specific application. Moreover, always depending on the particular application, the intermediate magnets can be both axially and radially movable.
Number | Date | Country | Kind |
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08425560.3 | Aug 2008 | EP | regional |