Conduction Cooled Superconducting Undulator
20220384074 ยท 2022-12-01
Inventors
- Hong Hu (Bothell, WA, US)
- Matthew Kasa (New Lenox, IL, US)
- Ethan Anliker (Oswego, IL, US)
- Yury Ivanyushenkov (Darien, IL, US)
- Yuko Shiroyanagi (Darien, IL, US)
- Ibrahim Kesgin (Naperville, IL, US)
- Quentin B. Hasse (Oswego, IL, US)
Cpc classification
International classification
Abstract
Superconducting undulators (SCUs) require thermal control of large heat loads for proper operation and to provide high radiation output powers. A conduction cooling apparatus for an SCU device includes a beam chamber having a hollow core inside of the beam chamber along a length of the beam chamber. The hollow core allows charged particles to pass through the hollow core of the beam chamber to generate output radiation. A beam chamber holder is physically and thermally coupled to the beam chamber to maintain a position, and control a temperature of, the beam chamber. At least one magnet is configured to provide a magnetic field to the hollow core, and at least one cooling bar is physically and thermally coupled to the magnet. A cooling source is thermally coupled to both the beam chamber holder and the cooling bar to provide cooling capacity to the beam chamber and the magnet.
Claims
1. A conduction cooling apparatus comprising: a beam chamber having a length along a longitudinal axis and a hollow core inside of the beam chamber along the length of the beam chamber, the longitudinal axis being at a center of the hollow core and the beam chamber configured to allow charged particles to pass through the hollow core of the beam chamber along the length of the beam chamber to generate output radiation; a beam chamber holder physically coupled to the beam chamber to maintain the position of the beam chamber, the beam chamber holder being thermally coupled to the beam chamber; one or more magnets physically configured to provide a magnetic field to the hollow core of the beam chamber; one or more cooling bars physically and thermally coupled to the one or more magnets; a magnet suspension beam physically coupled to at least one of the one or more cooling bars, the magnet suspension beam configured to maintain a position of the one or more magnets; and a cooling source thermally coupled to both the beam chamber holder and the one or more cooling bars, the cooling source configured to provide cooling to the beam chamber holder and the one or more cooling bars.
2. A conduction cooling apparatus according to claim 1, further comprising a cryostat vacuum vessel physically coupled to the magnet suspension beam to provide structural support to the magnet suspension beam to maintain the position of the one or more magnets, and wherein the beam chamber, the beam chamber holder, the one or more magnets, and the magnet suspension beam are disposed inside of the cryostat vacuum vessel.
3. A conduction cooling apparatus according to claim 1, wherein the beam chamber holder is further configured as a thermal shield.
4. A conduction cooling apparatus according to claim 1, wherein the cooling source comprises: a plurality of single-stage coldheads thermally coupled to the beam chamber holder; and a plurality of two-stage coldheads with a first stage of each of the plurality of two-stage coldheads thermally coupled to the beam chamber holder and a second stage of each of the plurality of two-stage coldheads thermally coupled to the one or more cooling bars.
5. A conduction cooling apparatus according to claim 1, wherein the beam chamber comprises copper.
6. A conduction cooling apparatus according to claim 1, wherein the beam chamber comprises aluminum.
7. A conduction cooling apparatus according to claim 1, wherein the one or more cooling bars comprise copper.
8. A conduction cooling apparatus according to claim 1, wherein the one or more cooling bars comprise aluminum.
9. A conduction cooling apparatus according to claim 1, wherein the conduction cooling apparatus is configured to cool the beam chamber to less than 40 Kelvin.
10. A conduction cooling apparatus according to claim 1, further comprising a plurality of cooling fins, each cooling fin of the plurality of cooling fins having a first end and a second end, wherein the first end of each cooling fin of the plurality of cooling fins is thermally coupled to the beam chamber, and the second end of each of the cooling fins of the plurality of cooling fins is thermally coupled to the beam chamber holder.
11. A conduction cooling apparatus according to claim 10, further comprising magnet support ribs interlaced between individual fins of the plurality of cooling fins, the magnet support ribs physically coupled to the one or more magnets to maintain a position of the one or more magnets.
12. A conduction cooling apparatus according to claim 1, further comprising a plurality of intra-magnet suspensions physically coupled to the one or more magnets, the intra-magnet suspensions configured to maintain the positions of each of the one or more magnets with respect to the position of each of the other one or more magnets.
13. A conduction cooling apparatus according to claim 12, wherein the intra-magnet suspensions comprise stainless steel.
14. A conduction cooling apparatus according to claim 1, wherein the magnet suspension beam comprises titanium.
15. A conduction cooling apparatus according to claim 1, wherein the length of the beam chamber is greater than four meters.
16. A conduction cooling apparatus according to claim 1, wherein the one or more magnets comprises magnets having lengths of greater than 1.5 meters along the longitudinal axis of the beam chamber.
17. A conduction cooling apparatus according to claim 1, wherein the conductive cooling apparatus is configured to provide a cooling capacity of greater than 400 Watts.
18. A conduction cooling apparatus according to claim 1, wherein the one or more magnets comprises: a first set of four magnets disposed around a first length of the beam chamber along the longitudinal axis; and a second set of four magnets disposed around a second length of the beam chamber along the longitudinal axis.
19. A conduction cooling apparatus comprising: a beam chamber having a hollow core and a length along a longitudinal axis, the beam chamber configured to allow charged particles to pass through the hollow core of the beam chamber along the length of the beam chamber; a beam chamber holder physically coupled to the beam chamber to maintain the position of the beam chamber, the beam chamber holder being thermally coupled to the beam chamber; a first magnet bundle including four magnets, each magnet of the first magnet bundle being physically coupled to another magnet of the first magnet bundle and each magnet of the first magnet bundle disposed around the beam chamber configure to provide a magnetic field to a first length of the hollow core along the longitudinal axis; a second magnet bundle including four magnets, each magnet of the second magnet bundle being physically coupled to another magnet of the second magnet bundle and each magnet of the second magnet bundle disposed around the beam chamber configure to provide a magnetic field to a second length of the hollow core along the longitudinal axis; a first set of four cooling bars, each cooling bar of the first set of four cooling bars thermally coupled to a respective magnet of the first magnet bundle, each of the cooling bars of the first set of four cooling bars further thermally coupled to another cooling bar of the first set of cooling bars; a second set of four cooling bars, each cooling bar of the second set of four cooling bars thermally coupled to a respective magnet of the second magnet bundle, each of the cooling bars of the second set of four cooling bars further thermally coupled to another cooling bar of the second set of four cooling bars; a first magnet suspension beam physically coupled to a cooling bar of the first set of four cooling bars to support the position of the first set of four cooling bars and the first magnet bundle; a second magnet suspension beam physically coupled to a cooling bar of the second set of four cooling bars to support the position of the second set of four cooling bars and the second magnet bundle; a first cooling source thermally coupled to the beam chamber holder and a cooling bar of the first set of four cooling bars, the cooling source configured to provide cooling capacity to the beam chamber holder and the first set of four cooling bars; and a second cooling source thermally coupled to the beam chamber holder and a cooling bar of the second set of four cooling bars, the second cooling source configured to provide cooling capacity to the beam chamber holder and the second set of four cooling bars.
20. A conduction cooling apparatus comprising: a beam chamber having a hollow core and a length along a longitudinal axis, the beam chamber configured to allow charged particles to pass through the hollow core of the beam chamber along the length of the beam chamber; a beam chamber holder physically coupled to the beam chamber to maintain the position of the beam chamber, the beam chamber holder being thermally coupled to the beam chamber; a first magnet section including four magnets, each magnet of the first magnet section disposed around the beam chamber with each magnet of the first magnet section configured to provide a magnetic field to a first length of the hollow core along the longitudinal axis; a second magnet section including four magnets, each magnet of the second magnet section disposed around the beam chamber with each magnet of the second magnet section configured to provide a magnetic field to a second length of the hollow core along the longitudinal axis; a first set of cooling plates, each cooling plate of the first set of cooling plates being thermally coupled to a respective magnet of the first magnet section; a second set of cooling plates, each cooling plate of the second set of cooling plates being thermally coupled to a respective magnet of the second magnet section; a first set of magnet support ribs physically coupled to the first set of cooling plates to maintain a position of each cooling plate of the first set of cooling plates and the first magnet section; a second set of magnet support ribs physically coupled to the second set of cooling plates to maintain a position of each cooling plate of the second set of cooling plates and the second magnet section; a plurality of cooling fins, each cooling fin of the plurality of cooling fins having a first end and a second end, wherein the first end of each cooling fin of the plurality of cooling fins is thermally coupled to the beam chamber, and the second end of each of the cooling fins of the plurality of cooling fins is thermally coupled to the beam chamber holder, and further wherein each cooling fin of the plurality of cooling fins is disposed between adjacent ribs of the first and second sets of magnet support ribs; a first cooling source thermally coupled to the beam chamber holder and a cooling plate of the first set of cooling plates, the first cooling source configured to provide cooling capacity to the beam chamber holder and the first set of cooling plates; and a second cooling source thermally coupled to the beam chamber holder and a cooling plate of the second set of cooling plates, the second cooling source configured to provide cooling capacity to the beam chamber holder and the second set of cooling plates.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION
[0026] Superconducting-magnet based undulators outperform undulators that use permanent magnets or room-temperature electromagnets in terms of peak magnetic field and, therefore, in the energy range and intensity of emitted radiation. To take advantage of the benefits of superconducting undulators (SCUs), cooling systems are required to provide stable temperature control of SCUs at temperatures at or below 4 K. The cooling system disclosed utilizes conductive cooling which removes the requirement for a coolant fluid or cryogen, such as liquid helium, and enables stable thermal control of an SCU at temperatures below 4 K while outputting greater than 1 Watt of radiation. Specifically, as discussed further herein, the disclosed system enables between 1.2 and 1.5 W of radiative output during operation while maintaining stable temperature control at 4 K and below. The described cooling system also reduces the overall operating costs and form factor sizes of SCU radiation systems.
[0027]
[0028] The vacuum vessel 202 and beam chamber holder 230 perform as a thermal radiation shield eliminating the need for any additional thermal shielding as required by other undulator cooling systems. The beam chamber holder 230 insulates the magnet bundles 208a and 208b and beam chamber 205 from any room temperature or external boundary at the vacuum vessel 202. The vacuum vessel 202 is an enclosed structure that contains the beam chamber 205, the first and second magnet bundles 208a and 208b, interconnecting structural supports, and thermal interconnects, discussed further herein. The vacuum vessel 202 also acts as a mount for the coldheads 210 and 212 to physically support the one-stage and two-stage coldheads 210 and 212 in position. One or more turrets may be implemented to mount the one-stage and two-stage coldheads 210 and 212 on the vacuum chamber 202. The one-stage and two-stage coldheads 210 and 212 may be mounted on an external surface 203 of the vacuum vessel 202. Each of the one-stage and two-stage coldheads 210 and 212 has a corresponding one stage or two-stage coldhead cylinder 211 and 213. The two-stage coldhead cylinders 213 have a first stage 212a and a second stage 212b that provide different cooling capacities. The vacuum vessel 202 has ports or entry regions for the one-stage and two-stage coldhead cylinders 211 and 213 to enter the vacuum vessel 202 through the external surface 203, for the one-stage and two-stage coldhead cylinders 211 and 213 to protrude into the vacuum vessel. In embodiments, the vacuum vessel may be fabricated from one or more of titanium, stainless steel, carbon steel, or an aluminum alloy.
[0029] The cooling bars 220 include a series of thermally coupled cooling bars that are thermally coupled to second stages 212b of the two-stage coldheads 212. The cooling bars 220 are also thermally coupled to the first and second magnet bundles 208a and 208b. Therefore, the cooling bars 220 enable thermal control of the first and second magnet bundles 208a and 208b by drawing heat energy from the first and second magnet bundles 208a and 208b to the coldheads 212 through the coldhead cylinders 213. In embodiments the cooling bars 220 may be an oxygen free copper, CU10100, another copper material, an AI1000 material, or another aluminum material. The cooling bars 220 are physically coupled to the vacuum vessel 202 by magnet suspension rods 225. The magnet suspension rods 225 suspend the cooling bars 220 in a fixed position inside of the vacuum vessel 202. In embodiments, the magnet suspension rods 225 may be beams, plates, cylinders, or another structural component to support the position of the cooling bars 220 and magnet bundles 208a and 208b. Further, the cooling bars 220 are physically coupled to the first and second magnet bundles 208a and 208b to provide physical support and to maintain a fixed position of the first and second magnet bundles 208a and 208b within the vacuum chamber 202 and around the beam chamber 205. In embodiments, the magnet suspension rods 225 may be titanium, which has a low thermal conductivity. The low thermal conductivity of the titanium reduces the flow of thermal energy through the magnet suspension rods 225, enabling increased thermal control and cooling capacity of an undulator device. In the illustration of
[0030] Beam chamber suspension rods 235 are physically coupled to the magnet suspension rods 225 and to the beam chamber holder 230 to support and maintain a position of the beam chamber holder 230. The beam chamber holder 230 is further physically coupled to the beam chamber 205 to suspend the beam chamber 205 in a fixed position inside of each of the first and second magnet bundles 208a and 208b. The beam chamber holder 230 is also thermally coupled to the beam chamber 205 to provide cooling capacity to the beam chamber 205. The beam chamber suspension rods 235 may be a low thermally conductive material such as titanium, Kevlar 49, another Kevlar material, G-10, a G-10 material, or another material that exhibits a thermal conductivity of less than 1 W/(m*K) between 40K and 4K. It may be desirable for the beam chamber suspension rods 235 to have a low thermal conductivity to reduce the flow of thermal energy through the beam chamber suspension rods 235 to provide an increased cooling capacity to the undulator device. The beam chamber holder 230 is thermally coupled to the one-stage coldhead cylinders 211. The one-stage coldhead cylinders 211 provide a heat sink to the beam chamber holder 230, and the beam chamber holder 230 provides cooling capacity to the beam chamber 205.
[0031] The conduction cooling apparatus 200 also includes high temperature superconducting (HTS) electrical leads 250a to provide an electrical current to components inside of the vacuum chamber 202. Specifically, the HTS leads 250a provide power to the first and second magnet bundles 208a and 208b to supply electrical current to superconducting wires of the first and second magnet bundles 208a and 208b. Copper leads 250 are configured to provide electrical current to components inside of the vacuum chamber and to balance a conduction heat load and joule heating during operation of the superconducting undulator device.
[0032]
[0033] The beam chamber suspension rods 235 are physically coupled to the magnet suspension rods 225 and to the beam chamber holder 230 to physically support and maintain a position of the beam chamber holder 230. The beam chamber holder 230 has an outer frame 232 and cross bars 233. The cross bars 233 extend from the outer frame 232 and are physically coupled to the beam chamber 205 to suspend the beam chamber 205 in a fixed position inside of the first magnet bundle 208a. In embodiments, multiple cross bars 233 are interleaved in between multiple intra-magnet suspensions 228 and cooling bar couplers 221 in a dimension along the length of the beam chamber 205 (i.e., along the beam axis A illustrated in
[0034] A superconducting arbitrarily polarizing emitter (SCAPE) undulator was constructed and a conductive cooling apparatus was built according to
[0035] The SCAPE undulator and constructed conductive cooling apparatus will be described in reference to
[0036] Other main sources of heat reported in the table of
[0037] The second stages 212b of the two-stage coldhead cylinders 213 provide cooling capacity to the cooling bars 220 and the magnets of the first and second magnet bundles 208a and 208b. The cooling of the first and second magnet bundles 208a and 208bv and the cooling bars 220 are referred to herein as the second cooling stage of the undulator, or the magnet cooling. The second cooling stage provided thermal control and cooling of a heat load at 4K.
[0038]
[0039]
[0040] Magnet suspension rods 225 are coupled to the outer frame 232 of the beam chamber holder 230 at an apex point 225a, and further physically coupled to the cooling bars 220 at endpoints 225b to support and maintain the physically position of the cooling bars 220. The cooling bars 220 are physically and thermally coupled to the magnets 208a.sub.1, through 208a.sub.4 of the first magnet bundle 208a to provide cooling capacity to the magnets 208a.sub.1, through 208a.sub.4 and to maintain a position of the first magnet bundles 208a around the beam chamber 205. The intra-magnet suspensions 228 physically couple adjacent magnets of the first magnet bundle 208a to maintain the rigid structure and relative positions of the magnets 208a.sub.1, through 208a.sub.4 relative to the beam chamber 205. The intra-magnet suspensions 228 may be interleaved with the cross bars 233 of the beam chamber holder 230 along the length of the first beam chamber portion 205a.
[0041]
[0042]
[0043] As shown in
[0044]
[0045]
[0046] The following list of aspects reflects a variety of the embodiments explicitly contemplated by the present disclosure. Those of ordinary skill in the art will readily appreciate that the aspects below are neither limiting of the embodiments disclosed herein, nor exhaustive of all of the embodiments conceivable from the disclosure above, but are instead meant to be exemplary in nature.
[0047] 1. A conduction cooling apparatus comprising: a beam chamber having a length along a longitudinal axis and a hollow core inside of the beam chamber along the length of the beam chamber, the longitudinal axis being at a center of the hollow core and the beam chamber configured to allow charged particles to pass through the hollow core of the beam chamber along the length of the beam chamber to generate output radiation; a beam chamber holder physically coupled to the beam chamber to maintain the position of the beam chamber, the beam chamber holder being thermally coupled to the beam chamber; one or more magnets physically configured to provide a magnetic field to the hollow core of the beam chamber; one or more cooling bars physically and thermally coupled to the one or more magnets; a magnet suspension beam physically coupled to at least one of the one or more cooling bars, the magnet suspension beam configured to maintain a position of the one or more magnets; and a cooling source thermally coupled to both the beam chamber holder and the one or more cooling bars, the cooling source configured to provide cooling to the beam chamber holder and the one or more cooling bars.
[0048] 2. A conduction cooling apparatus according to aspect 1, further comprising a cryostat vacuum vessel physically coupled to the magnet suspension beam to provide structural support to the magnet suspension beam to maintain the position of the one or more magnets, and wherein the beam chamber, the beam chamber holder, the one or more magnets, and the magnet suspension beam are disposed inside of the cryostat vacuum vessel.
[0049] 3. A conduction cooling apparatus according to either aspect 1 or aspect 2, wherein the beam chamber holder is further configured as a thermal shield.
[0050] 4. A conduction cooling apparatus according to any of aspects 1 to 3, wherein the cooling source comprises: a plurality of single-stage coldheads thermally coupled to the beam chamber holder; and a plurality of two-stage coldheads with a first stage of each of the plurality of two-stage coldheads thermally coupled to the beam chamber holder and a second stage of each of the plurality of two-stage coldheads thermally coupled to the one or more cooling bars.
[0051] 5. A conduction cooling apparatus according to any of aspects 1 to 4, wherein the beam chamber comprises copper.
[0052] 6. A conduction cooling apparatus according to any of aspects 1 to 4, wherein the beam chamber comprises aluminum.
[0053] 7. A conduction cooling apparatus according to any of aspects 1 to 6, wherein the one or more cooling bars comprise copper.
[0054] 8. A conduction cooling apparatus according to any of aspects 1 to 6, wherein the one or more cooling bars comprise aluminum.
[0055] 9. A conduction cooling apparatus according to any of aspects 1 to 8, wherein the conduction cooling apparatus is configured to cool the beam chamber to less than 40 Kelvin.
[0056] 10. A conduction cooling apparatus according to any of aspects 1 to 9, further comprising a plurality of cooling fins, each cooling fin of the plurality of cooling fins having a first end and a second end, wherein the first end of each cooling fin of the plurality of cooling fins is thermally coupled to the beam chamber, and the second end of each of the cooling fins of the plurality of cooling fins is thermally coupled to the beam chamber holder.
[0057] 11. A conduction cooling apparatus according to aspect 10, further comprising magnet support ribs interlaced between individual fins of the plurality of cooling fins, the magnet support ribs physically coupled to the one or more magnets to maintain a position of the one or more magnets.
[0058] 12. A conduction cooling apparatus according to any of aspects 1 to 11, further comprising a plurality of intra-magnet suspensions physically coupled to the one or more magnets, the intra-magnet suspensions configured to maintain the positions of each of the one or more magnets with respect to the position of each of the other one or more magnets.
[0059] 13. A conduction cooling apparatus according to claim 12, wherein the intra-magnet suspensions comprise stainless steel.
[0060] 14. A conduction cooling apparatus according to any of aspects 1 to 13, wherein the magnet suspension beam comprises titanium.
[0061] 15. A conduction cooling apparatus according to any of aspects 1 to 14, wherein the length of the beam chamber is greater than four meters.
[0062] 16. A conduction cooling apparatus according to any of aspects 1 to 15, wherein the one or more magnets comprises magnets having lengths of greater than 1.5 meters along the longitudinal axis of the beam chamber.
[0063] 17. A conduction cooling apparatus according to any of aspects 1 to 16, wherein the conductive cooling apparatus is configured to provide a cooling capacity of greater than 400 Watts.
[0064] 18. A conduction cooling apparatus according to any of aspects 1 to 17, wherein the one or more magnets comprises: a first set of four magnets disposed around a first length of the beam chamber along the longitudinal axis; and a second set of four magnets disposed around a second length of the beam chamber along the longitudinal axis.
[0065] 19. A conduction cooling apparatus comprising: a beam chamber having a hollow core and a length along a longitudinal axis, the beam chamber configured to allow charged particles to pass through the hollow core of the beam chamber along the length of the beam chamber; a beam chamber holder physically coupled to the beam chamber to maintain the position of the beam chamber, the beam chamber holder being thermally coupled to the beam chamber; a first magnet bundle including four magnets, each magnet of the first magnet bundle being physically coupled to another magnet of the first magnet bundle and each magnet of the first magnet bundle disposed around the beam chamber configure to provide a magnetic field to a first length of the hollow core along the longitudinal axis; a second magnet bundle including four magnets, each magnet of the second magnet bundle being physically coupled to another magnet of the second magnet bundle and each magnet of the second magnet bundle disposed around the beam chamber configure to provide a magnetic field to a second length of the hollow core along the longitudinal axis; a first set of four cooling bars, each cooling bar of the first set of four cooling bars thermally coupled to a respective magnet of the first magnet bundle, each of the cooling bars of the first set of four cooling bars further thermally coupled to another cooling bar of the first set of cooling bars; a second set of four cooling bars, each cooling bar of the second set of four cooling bars thermally coupled to a respective magnet of the second magnet bundle, each of the cooling bars of the second set of four cooling bars further thermally coupled to another cooling bar of the second set of four cooling bars; a first magnet suspension beam physically coupled to a cooling bar of the first set of four cooling bars to support the position of the first set of four cooling bars and the first magnet bundle; a second magnet suspension beam physically coupled to a cooling bar of the second set of four cooling bars to support the position of the second set of four cooling bars and the second magnet bundle; a first cooling source thermally coupled to the beam chamber holder and a cooling bar of the first set of four cooling bars, the cooling source configured to provide cooling capacity to the beam chamber holder and the first set of four cooling bars; and a second cooling source thermally coupled to the beam chamber holder and a cooling bar of the second set of four cooling bars, the second cooling source configured to provide cooling capacity to the beam chamber holder and the second set of four cooling bars.
[0066] 20. A conduction cooling apparatus comprising: a beam chamber having a hollow core and a length along a longitudinal axis, the beam chamber configured to allow charged particles to pass through the hollow core of the beam chamber along the length of the beam chamber; a beam chamber holder physically coupled to the beam chamber to maintain the position of the beam chamber, the beam chamber holder being thermally coupled to the beam chamber; a first magnet section including four magnets, each magnet of the first magnet section disposed around the beam chamber with each magnet of the first magnet section configured to provide a magnetic field to a first length of the hollow core along the longitudinal axis; a second magnet section including four magnets, each magnet of the second magnet section disposed around the beam chamber with each magnet of the second magnet section configured to provide a magnetic field to a second length of the hollow core along the longitudinal axis; a first set of cooling plates, each cooling plate of the first set of cooling plates being thermally coupled to a respective magnet of the first magnet section; a second set of cooling plates, each cooling plate of the second set of cooling plates being thermally coupled to a respective magnet of the second magnet section; a first set of magnet support ribs physically coupled to the first set of cooling plates to maintain a position of each cooling plate of the first set of cooling plates and the first magnet section; a second set of magnet support ribs physically coupled to the second set of cooling plates to maintain a position of each cooling plate of the second set of cooling plates and the second magnet section; a plurality of cooling fins, each cooling fin of the plurality of cooling fins having a first end and a second end, wherein the first end of each cooling fin of the plurality of cooling fins is thermally coupled to the beam chamber, and the second end of each of the cooling fins of the plurality of cooling fins is thermally coupled to the beam chamber holder, and further wherein each cooling fin of the plurality of cooling fins is disposed between adjacent ribs of the first and second sets of magnet support ribs; a first cooling source thermally coupled to the beam chamber holder and a cooling plate of the first set of cooling plates, the first cooling source configured to provide cooling capacity to the beam chamber holder and the first set of cooling plates; and a second cooling source thermally coupled to the beam chamber holder and a cooling plate of the second set of cooling plates, the second cooling source configured to provide cooling capacity to the beam chamber holder and the second set of cooling plates.