IP Library Granted Patent US 7,487,644
Granted Patent B2
US 7,487,644 · App. 11/282,671 · Granted Feb 10, 2009

Cryostat assembly

Assignee: Oxford Instruments Superconductivity Limited
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Quick Facts
Patent No.
US 7,487,644
App. No.
11/282,671
Granted
Feb 10, 2009
Kind
B2
Abstract

A cryostat assembly comprises a liquid coolant containing vessel; a mechanical cooler having at least one cooling stage located above the vessel; and a channel for conveying gaseous coolant from the vessel to the cooling stage where the coolant is condensed in use and then returns through the channel to the vessel. An acoustic wave attenuator is located in the channel for attenuating the passage of acoustic energy originating from the mechanical cooler and propagating through the gaseous coolant, while permitting flow of gaseous coolant to the cooling stage and flow of condensed coolant to the vessel.

Claims (31)

1. A cryostat, comprising:

a liquid coolant containing vessel;

a pulse-tube refrigerator having at least one cooling stage located above the liquid coolant containing vessel;

a channel for conveying gaseous coolant from the liquid coolant containing vessel to the at least one cooling stage where the gaseous coolant is condensed in use and then returns through the channel to the liquid coolant containing vessel; and

an acoustic wave attenuator with a cylindrical body in which are formed a plurality of channels arranged in a regular array, located in the channel for attenuating an acoustic wave originating from the pulse-tube refrigerator and propagating through the gaseous coolant, while permitting a flow of gaseous coolant to pass to the cooling stage and a flow of condensed coolant to pass to the liquid coolant containing vessel.

2. The cryostat according to claim 1 , wherein the acoustic wave attenuator comprises a member having at least one channel with a diameter smaller than wavelength of the acoustic wave propagating in the gaseous coolant.

3. The cryostat according to claim 2 , wherein the diameter of the at least one channel is several orders of magnitude smaller than the wavelength of the acoustic wave propagating in the gaseous coolant.

4. The cryostat according to claim 3 , wherein the diameter is about 5 orders of magnitude smaller than the wavelength of the acoustic wave propagating in the gaseous coolant.

5. The cryostat according to claim 2 , wherein said at least one channel of said acoustic wave attenuator has a diameter of substantially 2.5 mm.

6. The cryostat according to claim 2 , wherein said member provides a plurality of said channels.

7. The cryostat according to claim 6 , wherein said channels are substantially symmetrically arranged about a central axis of said acoustic wave attenuator.

8. The cryostat according to claim 1 , wherein said acoustic wave attenuator is thermally non-conducting.

9. The cryostat according to claim 1 , wherein said acoustic wave attenuator is made from one of PTFE, stainless steel, G-10, foam, plastics, FRP and ceramic.

10. The cryostat according to claim 1 , further comprising an item to be cooled, the item being located in, or thermally connected to, said liquid coolant containing vessel.

11. The cryostat according to claim 10 , wherein said item comprises a superconducting magnet.

12. An analyzing apparatus, comprising:

a cryostat having

a liquid coolant containing vessel;

a pulse-tube refrigerator having at least one cooling stage located above the liquid coolant containing vessel;

a channel for conveying gaseous coolant from the liquid coolant containing vessel to the at least one cooling stage where the gaseous coolant is condensed in use and then returns through the channel to the liquid coolant containing vessel,

an acoustic wave attenuator with a cylindrical body in which are formed a plurality of channels arranged in a regular array, located in the channel dissipates an acoustic energy of an acoustic wave originating from the pulse-tube refrigerator and propagating through the gaseous coolant, while permitting a flow of gaseous coolant to pass to the cooling stage and a flow of condensed coolant to pass to the liquid coolant containing vessel, and

an item to be cooled, the item being located in, or thermally connected to, said liquid coolant containing vessel and including a superconducting magnet; and

a system for analyzing a sample exposed to the magnetic field generated by the superconducting magnet.

13. The analyzing apparatus according to claim 12 , wherein the analyzing apparatus carries out one of NMR, ICR, DNP and MRI.

14. A cryostat, comprising:

a liquid coolant containing vessel;

a pulse-tube refrigerator having at least one cooling stage located above the liquid coolant containing vessel;

a channel for conveying gaseous coolant from the liquid coolant containing vessel to the at least one cooling stage where the gaseous coolant is condensed in use and then returns through the channel to the liquid coolant containing vessel; and

an acoustic wave attenuator located in the channel for attenuating an acoustic wave originating from the pulse-tube refrigerator and propagating through the gaseous coolant, while permitting a flow of gaseous coolant to pass to the cooling stage and a flow of condensed coolant to pass to the liquid coolant containing vessel, wherein the acoustic wave attenuator has a pair of outwardly extending semi-circular flanges at an upper end, in the at least one cooling stage of the pulse-tube refrigerator.

15. The cryostat according to claim 1 , wherein diameters of the plurality of channels in the cylindrical body of the acoustic wave attenuator are substantially equal.

16. The cryostat according to claim 1 , wherein diameters of the plurality of channels in the cylindrical body of the acoustic wave attenuator are optimized to maximize attenuation of the acoustic wave without preventing the flow of gaseous coolant to pass to the cooling stage and the flow of condensed coolant to pass to the liquid coolant containing vessel.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 6, 2025
From: OXFORD INSTRUMENTS NANOTECHNOLOGY TOOLS LIMITED
To: OXFORD NANOSCIENCE LIMITED
Reel/Frame 071949/0794 →
CHANGE OF NAME Recorded Jul 12, 2011
From: OXFORD INSTRUMENTS SUPERCONDUCTIVITY LIMITED
To: OXFORD INSTRUMENTS NANOTECHNOLOGY TOOLS LIMITED
Reel/Frame 026578/0708 →
RECORD TO CORRECT THE ADDRESS OF THE ASSIGNEE ON THE ASSIGNMENT DOCUMENT PREVIOUSLY RECORDED AT REEL 017235, FRAME 0104 Recorded May 16, 2006
From: CARR, PHILIP ALEXANDER; KIRICHEK, OLEG; ATREY, MILIND DIWAKAR
To: OXFORD INSTRUMENTS SUPERCONDUCTIVITY LIMITED
Reel/Frame 017635/0190 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 21, 2005
From: CARR, PHILIP ALEXANDER; KIRICHEK, OLEG; ATREY, MILIND DIWAKAR
To: OXFORD INSTRUMENTS SUPERCONDUCTIVITY LIMITED
Reel/Frame 017235/0104 →
Priority Claims (1)
GB 0428406.3 · Dec 24, 2004 · national
Continuity (1)
Related Publication 20060137363A1 · Jun 29, 2006