Magnetic undulator shim
11222741 · 2022-01-11
Assignee
Inventors
Cpc classification
H01F7/0278
ELECTRICITY
H05H7/04
ELECTRICITY
International classification
Abstract
A magnetic undulator shim having three interconnected sections arranged one after the other in a direction substantially parallel to the beam axis. The first section is adapted to magnetically engage a magnet having a horizontal surface and configured to extend partially onto the horizontal surface of the magnet. The magnet is adjacent to a pole and the magnet and the pole form a boundary. The second third sections are interconnected to form a shape. The shape corresponds to the boundary. The third section is adapted to magnetically engage a surface of the pole.
Claims
1. A magnetic undulator shim comprising: a) three interconnected sections arranged one after the other in a A direction substantially parallel to a beam axis; b) the first section is adapted to magnetically engage a magnet having a horizontal surface, the first section is configured to extend partially onto the horizontal surface of the magnet, the magnet is adjacent to a pole, the magnet and the pole form a boundary between the magnet and the pole; c) the second section and the third sections are interconnected to form a shape, the shape corresponds to the boundary; and d) the third section is adapted to magnetically engage a surface of the pole.
2. The magnetic undulator shim of claim 1, wherein the shim is a magnetic material.
3. The magnetic undulator shim of claim 1, wherein the shim is made from low carbon steel.
4. The magnetic undulator shim of claim 1, wherein the thickness of the shim is approximately 100-400 microns.
5. The magnetic undulator shim of claim 1, wherein the second section is adapted to magnetically engage the magnet.
6. The magnetic undulator shim of claim 1, wherein the third section is adapted to magnetically engage the magnet.
7. The magnetic undulator shim of claim 1 wherein the shim corrects the magnetic performance of the undulator.
8. The magnetic undulator shim of claim 1 wherein the shim affects a charged particle beam that travels in a path along the beam axis.
9. The magnetic undulator shim of claim 1 used on the upper or lower jaw of the undulator.
10. The magnetic undulator shim of claim 1 wherein a solid upper body is formed by the geometry of the first, second, and third section.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Embodiments of the present invention are illustrated in the accompanying figures where:
(2)
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DETAILED DESCRIPTION OF THE INVENTION
(7) The following detailed description provides illustrations for embodiments of the present invention. Each example is provided by way of explanation of the present invention, not in limitation of the present invention. Those skilled in the art will recognize that other embodiments for carrying out or practicing the present invention are also possible. Therefore, it is intended that the present invention covers such modifications and variations as come within the scope of the appended claims and their equivalents.
(8) Referring to
(9) The choice of the placement of the magnetic undulator shim 100 is defined by where the magnetic field of the undulator needs to be tuned. But, in any embodiment, the magnetic undulator shim 100 is placed across both a magnet and a pole. One magnetic undulator shim 100 can be used as shown in
(10) Returning to
(11) In accordance with the invention, the magnetic undulator shim 100 is made from any material capable of magnetically engaging the magnet 110 and the pole 112a and provide acceptable results of tuning the undulator. The material can be low carbon steel. The magnetic undulator shim 100 is thin enough to fit between the space between the top surface 120a of the pole 112a and the top surface 118 of the magnet 110, as seen in
(12) As shown in
(13) Referring to
(14) In a simulation of the prior art shim and the present invention, it was shown that the prior art shim has a very small torque and if the shim angle mismatches the magnet chamfer, then the prior art shim will flip into the beam path at a minimum undulator gap of 8.5 mm. The simulation showed that the present invention, the magnetic undulator shim 100, has an increased torque by a factor of 10 thereby eliminating the issue of the shim being able to flip into the beam path. The present invention corrects the magnetic performance of the undulator.
(15) The present invention is magnetically stable at even the smallest undulator gap settings, settings for which the prior art shims would be unstable and cause the shim to become displaced, or flip into the particle beam path. When the prior art shims flip into the beam path, the movement of the shim risks damaging the thin wall of the particle beam vacuum chambers. Instead, by using the present invention, the shim is magnetically stable and unable to become dislodged at even the smallest gap settings in an undulator; therefore, glue is unnecessary to keep the magnetic undulator shim 100 in place and from damaging the particle beam vacuum chambers. When the present invention is used within a traditional undulator, a cost-effective traditional undulator design and fabrication can be used. Additionally, when the present invention is used within a traditional undulator, tuning becomes more efficient and cost-effective.
(16) It is to be understood that the above-described arrangements are only illustrative of the application of the principles of the present invention. Numerous modifications and alternative arrangements may be devised by those skilled in the art without departing from the spirit and scope of the present invention and the appended claims are intended to cover such modifications and arrangements.
(17) Any element in a claim that does not explicitly state “means for” performing a specified function, or “step for” performing a specific function, is not to be interpreted as a “means” or “step” clause as specified in 35 U.S.C. § 112, ¶ 6. In particular, the use of “step of” in the claims herein is not intended to invoke the provisions of 35 U.S.C. § 112, ¶ 6.