IP Library Granted Patent US 10,773,239
Granted Patent B2
US 10,773,239 · App. 15/819,554 · Granted Sep 15, 2020

Solid form adsorbent

Inventors: David Victor Flaugher (Beavercreek, OH); Rodney Lee Dobson (Greer, SC); David S. Kress (Algood, TN)
Assignee: FLOW DRY TECHNOLOGY, INC.
B01J20/28026B01D53/0407B01D53/261B01D53/28B01J20/041B01J20/045B01J20/08B01J20/103B01J20/12B01J20/16B01J20/18B01J20/20B01J20/226B01J20/261B01J20/28004B01J20/28047F25B39/00F25B43/003B01D53/02B01D2253/104B01D2253/106B01D2253/108B01D2253/11B01D2253/204B01D2253/342B01D2257/80B01D2258/06B01D2259/4566F25B39/04F25B2339/0441
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Quick Facts
Patent No.
US 10,773,239
App. No.
15/819,554
Granted
Sep 15, 2020
Kind
B2
Abstract

A solid form adsorbent including a plurality of discrete adsorbent particles spatially bound in place by point bonding by a binder. At least about 25% of the external surface area of a majority of the particles is not sealed off by the binder and is available for adsorption.

Claims (21)

1. An adsorbent system comprising:

a plurality of discrete adsorbent particles spatially bound in place by point bonding with a binder to form a adsorbent having an outer surface, wherein at least about 25% of an external surface area of a majority of the particles is not sealed off by the binder and is available for adsorption; and

an air conditioning fluid path through which a refrigerant fluid is configured to flow, and wherein said solid form adsorbent is positioned in said air conditioning fluid path such that said outer surface is configured to be directly exposed to at least a portion of the refrigerant fluid flowing around said solid form adsorbent.

2. The adsorbent system of claim 1 wherein the solid form adsorbent has voids formed therein that provide a volume of at least 10% of said solid form adsorbent.

3. The adsorbent system of claim 2 wherein said adsorbent particles are sintered to the binder, and wherein the solid form adsorbent comprises about 70 wt. % to about 95 wt. % of the adsorbent particles.

4. The adsorbent system of claim 1 wherein at least about 25% of the external surface area of substantially all of the particles is not sealed off by the binder and is available for adsorption.

5. The adsorbent system of claim 1 wherein said adsorbent particles have an average effective diameter of between about 0.1 micron and about 500 microns.

6. The adsorbent system of claim 1 wherein said binder is a polymer.

7. The adsorbent system of claim 1 wherein the binder comprises a thermoplastic homopolymer, a copolymer resin, or a combination thereof, or a polyvinylidene fluoride (PVDF) resin.

8. The adsorbent system of claim 1 wherein said binder comprises about 5 wt. % to about 30 wt. % of the adsorbent.

9. The adsorbent system of claim 1 wherein said solid form adsorbent is in a cylindrical shape and has a length to effective diameter ratio of at least about 4:1.

10. The adsorbent system of claim 1 wherein said adsorbent particles comprise a water-adsorptive material, a molecular sieve material, a zeolite powder, or a combination thereof.

11. The adsorbent system of claim 1 wherein said adsorbent particles comprise a zeolite, a metal-organic framework material, a zeolitic imidazolate framework material, a crystalline metal aluminosilicate having a three dimensional interconnecting network of silica and alumina tetrahedra, a porous glass, an active carbon, a clay, a silicon dioxide, a silica gel, a mesoporous silica, a calcium oxide, a calcium sulfate, an activated alumina, or a combination thereof.

12. The adsorbent system of claim 1 wherein said binder has a lower melting point than the adsorbent particles.

13. The adsorbent system of claim 1 wherein said adsorbent particles and said binder have a weight ratio of about 95:5 to about 75:25.

14. The adsorbent system of claim 1 wherein said air conditioning fluid path is an air conditioning fluid path in a condenser.

15. The adsorbent system of claim 1 wherein said adsorbent includes an axially-extending central opening extending therethrough, through which at least a portion of said refrigerant fluid is configured to flow.

16. The adsorbent system of claim 1 wherein said adsorbent has a uniform cross sectional shape and has an axially-extending central opening extending therethrough, through which a portion of said refrigerant fluid is configured to flow.

17. The adsorbent system of claim 1 wherein said binder is polyamide.

18. The adsorbent system of claim 1 wherein the adsorbent is positioned and arranged such that at least a portion of said refrigerant fluid is able to access the outer surface of the solid form adsorbent in a radial direction.

19. The adsorbent system of claim 1 wherein the system lacks a housing in which the adsorbent is positioned and which directly engages a radially outer surface of the adsorbent, to thereby enable the radially outer surface to be directly exposed to the refrigerant fluid.

Assignments (2)
SECURITY INTEREST Recorded Jan 31, 2020
From: FLOW DRY TECHNOLOGY, INC.
To: GOLDMAN SACHS BANK USA, AS COLLATERAL AGENT
Reel/Frame 051694/0223 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 17, 2018
From: FLAUGHER, DAVID VICTOR; DOBSON, RODNEY LEE; KRESS, DAVID S.
To: FLOW DRY TECHNOLOGY, INC.
Reel/Frame 044637/0704 →
Continuity (2)
Provisional Application 62435164 · Dec 16, 2016
Related Publication 20180169616A1 · Jun 21, 2018