IP Library Granted Patent US 8,024,941
Granted Patent B2
US 8,024,941 · App. 11/925,404 · Granted Sep 27, 2011

Method of operating an adsorption refrigeration system

Assignee: Oxford Instruments Nanotechnology Tools Limited
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Quick Facts
Patent No.
US 8,024,941
App. No.
11/925,404
Granted
Sep 27, 2011
Kind
B2
Abstract

A method is provided of operating an adsorption refrigeration system. The system includes a primary adsorption pump which is arranged in communication with a primary chamber containing coolant, a secondary adsorption pump and a high fluid impedance conduit which places the secondary adsorption pump and primary chamber into communication. The method includes saturating the primary and secondary adsorption pumps with coolant while each pump is at its respective operational temperature. The pumps are then heated above their operational temperatures to desorb the coolant such that the coolant pressure in the primary chamber and the secondary adsorption pump substantially equalizes through the conduit while the primary chamber is cooled. The secondary adsorption pump is then cooled causing coolant gas to be adsorbed and, therefore, a reduction in temperature and pressure of the coolant in the primary chamber is effected. The primary adsorption pump is then cooled to an operational temperature causing adsorption of the coolant and, therefore, a reduction in temperature and pressure of the coolant in the primary chamber.

Claims (16)

1. A method of operating an adsorption refrigeration system, the system comprising a primary adsorption pump which, in use, is arranged in communication with a primary chamber containing coolant, a secondary adsorption pump and, a high fluid impedance conduit being arranged to place the secondary adsorption pump and the primary chamber in fluid communication, the method comprising:

(i) charging the primary and secondary adsorption pumps with coolant while the primary and secondary adsorption pumps are at their respective operational temperatures;

(ii) heating each of the primary and secondary adsorption pumps above their operational temperatures to desorb the coolant such that the coolant pressure in the primary chamber and the secondary adsorption pump substantially equalizes through the high fluid impedance conduit;

(iii) cooling the desorbed coolant in the primary chamber while heating the primary and secondary adsorption pumps;

(iv) cooling the secondary adsorption pump to its operational temperature at which coolant gas is adsorbed by the secondary adsorption pump, thereby causing a first reduction in temperature and pressure of the coolant in the primary chamber; and

(v) cooling the primary adsorption pump to an operational temperature at which coolant is adsorbed by the primary adsorption pump, thereby causing a second reduction in temperature and pressure of the coolant in the primary chamber.

2. A method according to claim 1 , wherein the respective operational temperatures of the primary and secondary pumps are temperatures at which gaseous coolant is substantially adsorbed.

3. A method according to claim 1 , wherein during step (iv) the coolant precipitates as liquid coolant.

4. A method according to claim 1 , wherein the system further comprises an auxiliary reservoir arranged in selective fluid communication with the primary chamber interior and wherein coolant is supplied from the auxiliary reservoir in step (i).

5. A method according to claim 1 , wherein the system further comprises an auxiliary reservoir arranged in selective fluid communication with the primary chamber interior and wherein the coolant in the primary chamber is expanded into the auxiliary reservoir after or during step (iii) so as to further cool the coolant within the primary chamber.

6. A method according to claim 4 , further comprising controlling the temperature of the auxiliary reservoir so as to provide a predetermined coolant pressure within the auxiliary reservoir.

7. A method according to claim 4 , wherein the selective fluid communication between the auxiliary reservoir and the primary chamber is provided by operating a valve.

8. A method according to claim 1 , wherein the coolant is helium-3.

9. A method according to claim 8 , wherein the temperature of the coolant at the end of step (iv) is about 2 Kelvin.

10. A method according to claim 9 , wherein during step (v) the coolant is cooled to 300 milliKelvin or lower.

11. A method according to claim 1 , wherein step (v) comprises a step of cooling the primary adsorption pump from a temperature in excess of the operational temperature to the operational temperature, and a subsequent step of cooling the coolant in the primary chamber at or below the operational temperature at which the substantial adsorption of coolant occurs.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 15, 2025
From: OXFORD INSTRUMENTS NANOTECHNOLOGY TOOLS LIMITED
To: OXFORD NANOSCIENCE LIMITED
Reel/Frame 072474/0283 →
CHANGE OF NAME Recorded Jun 8, 2011
From: OXFORD INSTRUMENTS SUPERCONDUCTIVITY LIMITED
To: OXFORD INSTRUMENTS NANOTECHNOLOGY TOOLS LIMITED
Reel/Frame 026408/0068 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 22, 2008
From: MIKHEEV, VLADIMIR
To: OXFORD INSTRUMENTS SUPERCONDUCTIVITY LIMITED
Reel/Frame 020428/0389 →
Priority Claims (1)
GB 0703988.6 · Mar 1, 2007 · national
Continuity (1)
Related Publication 20080209920A1 · Sep 4, 2008