SUPERCONDUCTING MAGNET COOLING SYSTEM
20180120392 ยท 2018-05-03
Inventors
- Evangelos Trifon Laskaris (Schenectady, NY, US)
- William E-Wei Chen (Florence, SC, US)
- Longzhi Jiang (Florence, SC, US)
- Tao Zhang (Niskayuna, NY, US)
- Haixia Xi (Florence, SC, US)
- Jun LI (Shanghai, CN)
Cpc classification
Y02E40/60
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
G01R33/3804
PHYSICS
F25B2400/17
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A superconducting magnet cooling system is disclosed. The superconducting magnet cooling system includes a superconducting magnet; a liquid cryogen vessel for cooling the superconducting magnet; a heat exchanger device in fluid communication with the liquid cryogen vessel; a cryorefrigerator for heat exchange with the heat exchanger device; and a flexible connection device having high thermal conductivity and thermally connecting the cryorefrigerator and the heat exchanger device to provide vibration isolation of the cryorefrigerator from the heat exchange device.
Claims
1. A superconducting magnet cooling system, comprising: a superconducting magnet; a liquid cryogen vessel for cooling the superconducting magnet; a heat exchanger device in fluid communication with the liquid cryogen vessel; a cryorefrigerator for heat exchange with the heat exchanger device; and a flexible connection device having high thermal conductivity and thermally connecting the cryorefrigerator and the heat exchanger device to provide vibration isolation of the cryorefrigerator from the heat exchange device.
2. The superconducting magnet cooling system of claim 1, wherein the flexible connection device is made of braid structure.
3. The superconducting magnet cooling system of claim 2, wherein the flexible connection device comprises copper braids.
4. The superconducting magnet cooling system of claim 1, wherein the cryorefrigerator have two stages at different temperatures and the heat exchanger device is connected to a second stage of the cryorefrigerator with the flexible connection device.
5. The superconducting magnet cooling system of claim 4, wherein the cryorefrigerator comprises a coldhead having first and second stages, a motor for driving the coldhead to operate, and a coldhead sleeve within which the coldhead is positioned and having first and second stages for receiving the corresponding first and second stages of the coldhead, the heat exchanger device being connected to the second stage of the coldhead sleeve of the cryorefrigerator with the flexible connection device.
6. The superconducting magnet cooling system of claim 5, wherein the flexible connection device comprises a first connection member disposed on the second stage of the coldhead sleeve, a second connection member disposed on the heat exchange device and a plurality of wires connected between the first connection member and the second connection member.
7. The superconducting magnet cooling system of claim 6, wherein the first connection member, the second connection member and the plurality of wires are made from copper.
8. The superconducting magnet cooling system of claim 1, wherein the heat exchange device is rigidly connected to the liquid cryogen vessel.
9. The superconducting magnet cooling system of claim 8, wherein the heat exchange device is fluidly communicated to the liquid cryogen vessel with a rigid high pressure piping.
10. The superconducting magnet cooling system of claim 5, further comprising a gas cryogen vessel in fluid communication with the heat exchanger device.
11. The superconducting magnet cooling system of claim 10, wherein the gas cryogen vessel is fluid communicated to the heat exchanger device with a rigid high pressure piping.
12. The superconducting magnet cooling system of claim 10, wherein the liquid cryogen vessel is a liquid helium storage, and the gas cryogen vessel is a helium gas storage.
13. The superconducting magnet cooling system of claim 10, further comprising a vacuum vessel, wherein the superconducting magnet cooling system is located within the vacuum vessel.
14. The superconducting magnet cooling system of claim 10, further comprising a thermal shield in thermal contact with the gas cryogen vessel.
15. The superconducting magnet cooling system of claim 14, wherein the thermal shield is connected to the first stage of the coldhead sleeve of the cryorefrigerator with a flexible connection having high thermal conductivity.
16. The superconducting magnet cooling system of claim 1, wherein the heat exchanger device is a remote recondenser.
17. The superconducting magnet cooling system of claim 1, wherein the superconducting magnet comprises at least one coil support shell and a plurality of superconducting magnet coils supported by the at least one coil support shell, the superconducting magnet cooling system comprising a plurality of cooling tubes thermally coupled to the at least one coil support shell and fluidly coupling with the liquid cryogen vessel.
Description
DRAWINGS
[0007] These and other features, aspects, and advantages of the present disclosure will become better understood when the following detailed description is read with reference to the accompanying drawings in which like characters represent like parts throughout the drawings, wherein:
[0008]
[0009]
[0010]
[0011]
DETAILED DESCRIPTION
[0012] Embodiments of the present disclosure will be described hereinbelow with reference to the accompanying drawings. In the following description, well-known functions or constructions are not described in detail to avoid obscuring the disclosure in unnecessary detail.
[0013] Unless defined otherwise, technical and scientific terms used herein have the same meaning as is commonly understood by one of ordinary skill in the art to which this disclosure belongs. The terms first, second, and the like, as used herein do not denote any order, quantity, or importance, but rather are used to distinguish one element from another. Also, the terms a and an do not denote a limitation of quantity, but rather denote the presence of at least one of the referenced items. The term or is meant to be inclusive and mean either or all of the listed items. The use of including, comprising or having and variations thereof herein are meant to encompass the items listed thereafter and equivalents thereof as well as additional items.
[0014]
[0015] In this embodiment, the liquid cryogen vessel 2 may be for example a liquid helium storage 2 which may be formed from one or more liquid helium reservoirs, and the heat exchanger device 3 may be for example a remote recondenser 3. The fluid communication between the recondenser 3 and the liquid helium storage 2 may be provided via one or more passageways 91.
[0016] With reference to
[0017] Continuing to refer to
[0018] The recondenser 3 draws He gas from the helium gas storage 6 that operates to form a free convection circulation loop to cool the superconducting magnet coils 14 and the coil support shell 12 to a cryogenic temperature, as well as fills the liquid helium storage 2 with liquid He via one or more passageways 91. The liquid He in the liquid helium storage 2 may be used to provide cooling of the superconducting magnet coils 14 during power interruptions or shut down of the cryorefrigerator 4, such as for service (e.g., for 10-12 hours).
[0019] As shown in
[0020] In the superconducting magnet cooling system 100 of the present invention having two stage cooling arrangement, cooling with the thermal shield 7 may provide a first stage of cooling by direct contact with the first stage of the cryorefrigerator 4 at a temperature of about 40-50 K and may also provide pre-cooling for example, at a temperature between about 77 K and 80 K using the LN.sub.2. The second stage of cooling is provided using the He cooling so as to provide an operation temperature of about 4.2 K.
[0021] The superconducting magnet cooling system 100 is located within a vacuum vessel 8. The cryorefrigerator 4 comprises a coldhead (not shown), a motor 42 for driving the coldhead to operate, and a coldhead sleeve 44. The coldhead of the cryorefrigerator 4 may be positioned within the coldhead sleeve 44 without affecting the vacuum within the vacuum vessel 8. The coldhead of the cryorefrigerator 4 is inserted (or received) and secured with the coldhead sleeve 44 using any suitable means, such as one or more flanges and bolts, or other suitable means. Moreover, the motor 42 of the cryorefrigerator 4 is provided outside the vacuum vessel 8.
[0022] Because the reconderser 3 and the cryorefrigerator 4 are thermally connected via the flexible connection device 5, all of the passageways 91, 92, 94 and the vapor return manifold 93 use a rigid high pressure piping so that the superconducting magnet cooling system 100 may be hermetically sealed with high pressure charged helium gas which is cooled directly by the cryorefrigerator 4 from an ambient temperature to a cryogenic temperature.
[0023] Referring to
[0024] The flexible connection device 5 is made of braid structure for providing a flexible connection. In one embodiment, the flexible connection device 5 comprises copper braids.
[0025] In the superconducting magnet cooling system 100 of the present invention, by adopting the flexible connection device 5 having high thermal conductivity, not only a thermal connection between the cryorefrigerator 4 and the recondenser 3 is established, but also vibration isolation of the cryorefrigerator 4 from the recondenser 3 is also provided because of flexibility of the flexible connection device 5. Therefore, the vibration of the cryorefrigerator 4 cannot be transmitted to the superconducting magnet 1. The vibration isolation of the superconducting magnet 1 can be accomplished by the flexible connection device 5 thermally connecting the cryorefrigerator 4 to the recondenser 3.
[0026] Furthermore, because the reconderser 3 and the cryorefrigerator 4 are thermally connected via the flexible connection device 5, this design of the superconducting magnet cooling system 100 enables the use of high pressure piping between the liquid cryogen vessel 2 and superconducting magnet 1 that is inherently rigid and is able to use a hermetically sealed high pressure charged helium gas which is cooled directly by the cryorefrigerator 4 from the ambient temperature to the cryogenic temperature.
[0027] While the disclosure has been illustrated and described in typical embodiments, it is not intended to be limited to the details shown, since various modifications and substitutions can be made without departing in any way from the spirit of the present disclosure. As such, further modifications and equivalents of the disclosure herein disclosed may occur to persons skilled in the art using no more than routine experimentation, and all such modifications and equivalents are believed to be within the spirit and scope of the disclosure as defined by the following claims.