Blind-vented electrode
10256003 ยท 2019-04-09
Assignee
Inventors
Cpc classification
International classification
Abstract
A vented electrode that provides a directional stop to prevent energetic particles and secondaries (i.e., secondary electrons, charged particles, photons) generated in the vent channel from reaching into a gap outside of the electrode plate. For example, ventilation is added to at least one electrode, via vented inserts, wherein the vents do not provide a direct line of sight from at least one side of the electrode plate to the other.
Claims
1. A vented electrode, comprising: a plate including a front face and a rear face; the plate additionally including a venting portion and at least one aperture; and the venting portion including a plurality of holes in the front face of the plate and a plurality of holes in the rear face of the plate, wherein no direct line of sight exists between the holes of in the front face and the holes in the back face in at least one direction of: from the front of the plate to the back of the plate or from the back of the plate to the front of the plate; wherein said venting portion is removably connected to said plate.
2. The vented electrode of claim 1, wherein said plate is made from graphite.
3. The vented electrode of claim 1, wherein said plurality of holes in the front face of the plate are offset relative to said plurality of holes in the rear face of the plate, and said venting portion additionally includes a plurality of vertical channels extending through a body of said venting portion, each vertical channel interconnecting connecting a vertical line of holes in the front face of the plate to a vertical line of holes in the back side of the plate without providing a line of sight in at least one direction from the front of the plate to the back of the plate, or from the back of the plate to the front of the plate.
4. The vented electrode of claim 3, wherein said holes are configured as wells extending into a body of said electrode.
5. The vented electrode of claim 1, wherein the vented electrode is a suppression electrode.
6. The vented electrode of claim 1, wherein the vented electrode is a ground electrode.
7. The vented electrode of claim 1, wherein the vented electrode is an extraction electrode.
8. A vented electrode, comprising: a plate including a front face and a rear face; the plate additionally including a venting portion and at least one aperture; and the venting portion including a plurality of holes in the front face of the plate and a plurality of holes in the rear face of the plate, wherein no direct line of sight exists between the holes of in the front face and the holes in the back face in at least one direction of: from the front of the plate to the back of the plate or from the back of the plate to the front of the plate; wherein the venting portion includes at least one blind-venting insert removably fixed to said plate.
9. The vented electrode of claim 8, wherein said at least one blind-venting insert is made from graphite.
10. The vented electrode of claim 8, wherein each hole of said plurality of holes in said front face is connected to one hole of said plurality of holes in said back face by an angled channel.
11. The vented electrode of claim 10, wherein said holes are configured as wells extending into a body of said electrode and said angled channel provides no line of sight in at least one direction from wells in the front of the plate to wells in the back of the plate, or from wells in the back of the plate to wells in the front of the plate.
12. The vented electrode of claim 10, wherein said holes are configured as wells extending into a body of said electrode and said angled channel provides no line of sight from wells in the front of the plate to wells in the back of the plate, and vice versa.
13. A blind-venting insert for an electrode, comprising: a body configured to mate with a slot in a plate carrying an electrode; the body including a plurality of holes in the front face of the plate and a plurality of holes in the rear face of the plate, wherein no direct line of sight exists between the holes of in the front face and the holes in the back face in at least one direction of: from the front of the plate to the back of the plate or from the back of the plate to the front of the plate; wherein said body of the venting portion is configured to be removably connected to the plate.
14. The blind-venting insert of claim 13, wherein the blind-venting insert is made from graphite.
15. The blind-venting insert of claim 13, wherein each hole of said plurality of holes in said front face is connected to one hole of said plurality of holes in said back face by an angled channel.
16. The blind-venting insert of claim 15, wherein said holes are configured as wells extending into a body of said electrode and said angled channel provides no line of sight in at least one direction from wells in the front of the plate to wells in the back of the plate, or from wells in the back of the plate to wells in the front of the plate.
17. The blind-venting insert of claim 15, wherein said holes are configured as wells extending into a body of said electrode and said angled channel provides no line of sight from wells in the front of the plate to wells in the back of the plate, and vice versa.
18. The blind-venting insert of claim 13, wherein said plurality of holes in the front face of the plate are offset relative to said plurality of holes in the rear face of the plate, and said venting portion additionally includes a plurality of vertical channels extending through a body of said venting portion, each vertical channel interconnecting connecting a vertical line of holes in the front face of the plate to a vertical line of holes in the back side of the plate without providing a line of sight in at least one direction from the front of the plate to the back of the plate, or from the back of the plate to the front of the plate.
19. The vented electrode of claim 18, wherein said holes are configured as wells extending into a body of said electrode.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(12) The present invention relates to electrode plates that reduce high voltage glitch rates in accelerators by improving pumping, in particular, by adding blind vent holes in electrode plates. Note that, for purposes of the present application, the terms electrode and grid assembly are used interchangeably, herein. Referring now to
(13) The suppression base plate 120 includes a central slot 130 configured to receive a suppression electrode aperture 140, which is secured thereto using the appropriate fasteners (not shown). In order to promote venting through the suppression grid 110, the base plate 120 additionally includes a plurality of holes or slots 132 that are configured to receive the body of the blind venting inserts 150 (i.e., wherein a flange is mated with a recess in the rear of the plate 120 and secured to the plate 120 via a fastener, not shown). Note that, if desired, blind venting holes could be made directly into the base plate 120; into a single separate piece; and/or into a separate flange, as shown.
(14) Similarly, in the present preferred embodiment, the ground grid 160 includes a ground plate 170, to which a ground electrode aperture 180 is secured using fasteners (not shown) in the central slot 172. As with the suppression base plate 120, the ground plate 170 includes a plurality of slots 174 (two, in the present example) that are configured to receive the blind venting inserts 190, as described above in connection with the blind venting inserts 150.
(15) The blind venting inserts 150, 190 are configured to add ventilation on the suppression and ground grids 110, 160, thereby improving vacuum levels in the surrounding areas. The blind venting inserts 150, 190 are, preferably, made of graphite, as well. Inserts 150 may be identical to inserts 190, or may be different, as desired. Each of the inserts 150, 190 includes a plurality of venting channels 152, 192, respectively, which do not have any line of sight from the source side of the suppression grid to the analysis side of the ground grid and/or vice versa.
(16) Referring now to
(17) In contrast, in the present embodiment illustrated in
(18) Thus, the embodiment illustrated in
(19) Referring now to
(20) Thus, as illustrated more particularly in
(21) Referring now to
(22) For example, in one exemplary embodiment illustrated in
(23) In the present embodiment, one vertical channel 310 is provided for each vertical column (i.e., vertically aligned plurality) of wells 312, 314. For example, in the embodiment illustrated in
(24) As can be seen from the foregoing exemplary description of the preferred embodiments, the present invention provides a vented electrode that eliminates the line of sight through the vent holes, to stop stray energetic charged particles and some photons from going through the suppressor plate from the extraction gap to the ground plate, and/or from the suppression gap to the source plate. The impact of x-rays or energetic through particles can generate ions that would be accelerated into the suppressor plate, which, in turn, can generate electrons that strike the source or ground electrodes.
(25) Although discussed herein in connection with suppression and ground electrodes, the present invention can be applied to other types of electrodes, including accelerator and plasma electrodes, without departing from the scope or spirit of the present invention.
(26) Note that, although both the suppression grid and ground grid have been illustrated in the preferred embodiment as including blind-venting according to the present invention, it should be understood that it is possible only one of the two could include such venting without departing from the scope and spirit of the present invention. Additionally, instead of being incorporated as inserts into the plates, the plates themselves can be vented, as taught herein, and still be within the scope of the present invention.
(27) It should be understood that this principle can be applied in environments in which particular materials may be preferred for process compatibility. In particular, all or parts of the accelerator grids may be made of preferred conducting materials, such as, Tungsten, graphite, Molybdenum, stainless steel and/or other conducting materials, as desired, without departing from the scope or spirit of the present invention.
(28) While a preferred embodiment of the present invention is shown and described herein, it will be understood that the invention may be embodied otherwise than as herein specifically illustrated or described, and that within the embodiments certain changes in the detail and construction, as well as the arrangement of the parts, may be made without departing from the principles of the present invention as defined by the appended claims.