IP Library Granted Patent US 12,385,652
Granted Patent B2
US 12,385,652 · App. 18/250,242 · Granted Aug 12, 2025

Air treatment system and method of treating air

Inventors: Christopher Patrick Boyle (Christchurch, NZ); Richard Hugh Reynolds (Christchurch, NZ)
Assignee: FABRUM IP HOLDINGS LIMITED
F24F3/04F24F3/14
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Quick Facts
Patent No.
US 12,385,652
App. No.
18/250,242
Granted
Aug 12, 2025
Kind
B2
Abstract

An air treatment system ( 100 ) for treating air of an inhabited space ( 1 ). The air treatment system has an air preparation module ( 3 ) and a cryogenic module ( 5 ). The air preparation module ( 3 ) is configured to receive air extracted from the inhabited space ( 1 ) and is configured to increase the pressure of the extracted air so as to increase the density and decrease the moisture content of the extracted air, thereby converting the extracted air into dry air. The cryogenic module ( 5 ) is coupled to the air preparation module ( 3 ) to receive the dry air and is configured to decrease a temperature of the dry air such that at least part of at least one component of the dry air is separated and removed from the dry air thereby converting the dry air into treated air for delivery into the inhabited space ( 1 ).

Claims (31)

1. An air treatment system for treating air of an inhabited space, the air treatment system comprising:

an air preparation module configured to receive air extracted from the inhabited space and configured to increase the pressure of the extracted air so as to increase the density and decrease the moisture content of the extracted air, thereby converting the extracted air into dry air; and

a cryogenic module coupled to the air preparation module to receive the dry air and configured to decrease a temperature of the dry air such that at least part of at least one component of the dry air is separated and removed from the dry air thereby converting the dry air into treated air for delivery into the inhabited space.

2. The air treatment system of claim 1 , further comprising an air handling module coupled to the air treatment system and configured to extract the air from the inhabited space and deliver it to the air preparation module and/or configured to receive the treated air from the cryogenic module and deliver it into the inhabited space.

3. The air treatment system of claim 2 , wherein the air treatment system is configured such that a volume flow rate of the extracted air received by the air preparation module and/or an amount of increase in the pressure of the extracted air is determined by at least one current property of at least one component of the air within the inhabited space.

4. The air treatment system of claim 1 , wherein the cryogenic module comprises:

at least one heat exchanger through which the dry air and the treated air pass and configured to capture the at least part of at least one component of the dry air to separate and remove the at least part of the at least one component from the dry air; and

at least one cryogenic cooler coupled to the at least one heat exchanger and configured to control the temperature of the at least one heat exchanger.

5. The air treatment system of claim 1 , wherein the air preparation module comprises:

a compression device configured to increase pressure of the extracted air to increase the density of the extracted air;

a moisture collection arrangement configured to capture moisture content from the extracted air during and/or after the increase in pressure and density of the extracted air; and

at least one particle filter configured to capture particulate content from the extracted air after the decrease in moisture content of the extracted air.

6. The air treatment system of claim 1 , further comprising a nitrogen discharge module configured to receive at least part of the dry air to decrease a concentration or partial pressure of a nitrogen component of the dry air prior to receipt of the dry air by the cryogenic module.

7. The air treatment system of claim 6 , wherein a volume flow rate of the at least part of the dry air received by the nitrogen discharge module is determined by a concentration of an oxygen component of the dry air and/or a concentration of an oxygen component of the air within the inhabited space.

8. The air treatment system of claim 1 , further comprising a nitrogen discharge module configured to receive at least part of the treated air to decrease a concentration or partial pressure of a nitrogen component of the treated air prior to delivery of the treated air into the inhabited space.

9. The air treatment system of claim 8 , wherein a volume flow rate of the at least part of the treated air received by the nitrogen discharge module is determined by a concentration of an oxygen component of the treated air and/or a concentration of an oxygen component of the air within the inhabited space.

10. The air treatment system of claim 4 , wherein the cryogenic module is configured such that at least a part of the energy required to decrease the temperature of the dry air as it passes through the at least one heat exchanger is recovered by the passage of the treated air through the at least one heat exchanger.

11. The air treatment system of claim 5 , wherein the air treatment system is configured such that at least a part of the energy required to increase the density of the extracted air is recovered by directing the treated air through an expansion device coupled to the compression device before it is delivered into the inhabited space.

12. The air treatment system of claim 4 , wherein the air treatment system further comprises a purging arrangement configured to remove the at least part of the at least one component of the dry air captured by the at least one heat exchanger from the at least one heat exchanger.

13. The air treatment system of claim 12 , wherein the air treatment system is configured such that, during removal of the at least part of the at least one component of the dry air from the at least one heat exchanger by the purging arrangement, the dry air is directed from the air preparation module for delivery into the inhabited space.

14. The air treatment system of claim 1 , wherein the cryogenic module is configured such that an amount of the decrease in temperature of the dry air is determined by at least one property of the at least one component of the air within the inhabited space.

15. The air treatment system of claim 14 , wherein the at least one property of the at least one component of the air within the inhabited space comprises a condensation temperature and/or a de-sublimation temperature.

16. The air treatment system of claim 3 , wherein the at least one current property of the at least one component of the air within the inhabited space comprises a concentration of the at least one component or a partial pressure of the at least one component, and wherein the at least one component of the air within the inhabited space and the at least one component of the dry air comprises an oxygen component, a carbon dioxide component, a nitrogen component, a sulfur dioxide component, a formaldehyde component, a hydrogen sulfide component, a hydrogen disulfide component or an ozone component.

17. The air treatment system of claim 2 , wherein the air treatment system is configured to increase a concentration or partial pressure of an oxygen component of the treated air prior to delivery of the treated air into the inhabited space.

18. The air treatment system of claim 2 , wherein the air handling module is configured to measure and control a temperature, pressure, density and/or humidity of the treated air prior to delivery of the treated air into the inhabited space.

19. The air treatment system of claim 2 , wherein the air handling module comprises an air conditioning system.

20. A method of treating the air of an inhabited space, the method comprising:

extracting the air from the inhabited space;

increasing the pressure of the extracted air so as to increase the density and decrease the moisture content of the extracted air, thereby converting the extracted air into dry air;

decreasing the temperature of the dry air such that at least part of at least one component of the dry air is separated and removed from the dry air, thereby converting the dry air into treated air; and

delivering the treated air into the inhabited space.

Assignments (6)
CHANGE OF NAME Recorded Sep 18, 2023
From: AFCRYO LIMITED
To: FABRUM IP HOLDINGS LIMITED
Reel/Frame 064933/0312 →
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNEE'S NAME PREVIOUSLY RECORDED AT REEL: 063413 FRAME: 055. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded May 5, 2023
From: FABRUM HOLDINGS LIMITED
To: AFCRYO LIMITED
Reel/Frame 063550/0406 →
CORRECTIVE ASSIGNMENT TO CORRECT THE FIRST ASSIGNOR'S DATE OF EXECUTION PREVIOUSLY RECORDED AT REEL: 063413 FRAME: 0010. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded May 5, 2023
From: BOYLE, CHRISTOPHER PATRICK; REYNOLDS, RICHARD HUGH
To: AFCRYO LIMITED
Reel/Frame 063550/0676 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 24, 2023
From: BOYLE, CHRISTOPHER PATRICK; REYNOLDS, RICHARD HUGH
To: AFCRYO LIMITED
Reel/Frame 063413/0010 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 24, 2023
From: AFCRYO LIMITED
To: FABRUM HOLDINGS LIMITED
Reel/Frame 063413/0026 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 24, 2023
From: FABRUM HOLDINGS LIMITED
To: FABRUM HOLDINGS LIMITED
Reel/Frame 063413/0055 →
Priority Claims (1)
NZ 769400 · Oct 27, 2020 · national
Continuity (1)
Related Publication 20230400197A1 · Dec 14, 2023
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