IP Library Granted Patent US 8,962,520
Granted Patent B2
US 8,962,520 · App. 13/448,919 · Granted Feb 24, 2015

Activated carbon/silica-gel/CaCl

Inventors: Chi Yan Tso (Hong Kong, CN); Christopher Yu Hang Chao (Hong Kong, CN); Gin Nam Sze-To (Hong Kong, CN)
Assignee: The Hong Kong University of Science and Technology
B01J20/046B01J20/20B01J20/28066B01J20/28071B01J20/3234B01J20/3236B01J20/2808B01J20/0237B01J20/28073B01J20/103B01J20/28083B01J20/28085B01J20/0248B01D53/28F25D11/006F25D11/025B01D2253/102B01D2253/106B01D2253/25F25B2600/13F24F3/1411
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Quick Facts
Patent No.
US 8,962,520
App. No.
13/448,919
Granted
Feb 24, 2015
Kind
B2
Abstract

Provided is a composite adsorbent material and a method for preparing the same. The composite adsorbent material comprises a porous host material of activated carbon impregnated with silica-gel and calcium chloride, and is useful for adsorbing high levels of water vapor. The composite adsorbent material is used in low temperature heat driven adsorption cooling and dehumidification systems.

Claims (36)

1. A composite adsorbent material, comprising:

a porous host material of activated carbon impregnated with silica-gel and calcium chloride, the composite adsorbent material providing adsorption in adsorption cooling systems or dehumidification systems, wherein

the composite adsorbent material comprises the activated carbon, as a host material, impregnated with the silica-gel, followed by further impregnating the silica-gel coated host material with the calcium chloride, thereby rendering a structure of the obtained silica activated carbon impregnated with the calcium chloride, the impregnation of the activated carbon with silica-gel increasing performance of adsorption capacity at a lower pressure region and the subsequent impregnation of the host material with the calcium chloride subsequent to impregnation with silica-gel providing increased adsorption capacity toward water vapor, with the impregnating the calcium chloride into the silica-gel helping the calcium chloride to maintain its solid structure which would otherwise result from the calcium chloride forming a solution with water vapor, the subsequent impregnation of the host material with the calcium chloride subsequent to impregnation with silica-gel further increasing the overall performance of adsorption capacity at a wider pressure range.

2. The composite adsorbent material of claim 1 , further comprising a porous host material of activated carbon impregnated with silica-gel and calcium chloride, wherein the porous host material has an average pore size ranging from about 5 Å to about 20 Å in diameter.

3. The composite adsorbent material of claim 1 , further comprising a porous host material of activated carbon impregnated with silica-gel and calcium chloride, wherein the porous host material has about 0.43 cm 3 g −1 of microporosity.

4. The composite adsorbent material of claim 1 , further comprising a porous host material of activated carbon impregnated with silica-gel and calcium chloride, wherein the porous host material has about 0.44 cm 3 g −1 of mesoporosity.

5. The composite adsorbent material of claim 1 , further comprising a porous host material of activated carbon impregnated with silica-gel and calcium chloride, wherein the porous host material has about 0.02 cm 3 g −1 of macroporosity.

6. The composite adsorbent material of claim 1 having a size ranging from about 20 to about 40 mesh in diameter.

7. The composite adsorbent material of claim 1 , wherein the porous host material is in the form of activated carbon granules.

8. The composite adsorbent material of claim 1 , wherein the porous host material has a total pore volume from about 0.4 cm 3 g −1 to about 1.0 cm 3 g −1 .

9. The composite adsorbent material of claim 1 , further comprising a porous host material of activated carbon impregnated with silica-gel and calcium chloride, the composite adsorbent material providing adsorption in adsorption cooling systems or dehumidification systems, wherein the total pore volume is about 0.5 cm 3 g −1 .

10. The composite adsorbent material of claim 1 , wherein the porous host material has a total surface area of from about 1100 m 2 g −1 to about 1200 m 2 g −1 .

11. The composite adsorbent material of claim 10 , wherein the total surface area is about 1120 m 2 g −1 .

12. A composite adsorbent material, comprising:

a porous host material of activated carbon impregnated with silica-gel and calcium chloride,

wherein the composite adsorbent material comprises the activated carbon, as a host material, impregnated with the silica-gel, followed by further impregnating the silica-gel coated host material with the calcium chloride, thereby rendering a structure of the obtained silica activated carbon impregnated with the calcium chloride, the impregnation of the activated carbon with silica-gel increasing performance of adsorption capacity at a lower pressure region and the subsequent impregnation of the host material with the calcium chloride subsequent to impregnation with silica-gel providing increased adsorption capacity toward water vapor, with the impregnating the calcium chloride into the silica-gel helping the calcium chloride to maintain its solid structure which would otherwise result from the calcium chloride forming a solution with water vapor, the subsequent impregnation of the host material with the calcium chloride subsequent to impregnation with silica-gel further increasing the overall performance of adsorption capacity at a wider pressure range,

and wherein the composite adsorbent material has a capability of adsorbing at least about 0.86 gram of water vapor for every gram of said composite adsorbent material at room pressure for using in open dehumidification systems.

13. A composite adsorbent material, comprising:

a porous host material of activated carbon impregnated with silica-gel and calcium chloride,

wherein the composite adsorbent material comprises the activated carbon, as a host material, impregnated with the silica-gel, followed by further impregnating the silica-gel coated host material with the calcium chloride, thereby rendering a structure of the obtained silica activated carbon impregnated with the calcium chloride, the impregnation of the activated carbon with silica-gel increasing performance of adsorption capacity at a lower pressure region and the subsequent impregnation of the host material with the calcium chloride subsequent to impregnation with silica-gel providing increased adsorption capacity toward water vapor, with the impregnating the calcium chloride into the silica-gel helping the calcium chloride to maintain its solid structure which would otherwise result from the calcium chloride forming a solution with water vapor, the subsequent impregnation of the host material with the calcium chloride subsequent to impregnation with silica-gel further increasing the overall performance of adsorption capacity at a wider pressure range,

and wherein the composite adsorbent material has a capability of adsorbing at least about 0.23 gram of water vapor for every gram of said composite adsorbent material under 900 Pa level low pressure condition for using in adsorption cooling closed systems.

14. An adsorption cooling system comprising the composite adsorbent material of claim 1 , wherein the composite adsorbent material has a maximum adsorption rate at a concentration of about 30 wt. % of calcium chloride solutions.

15. An adsorption cooling and dehumidification system comprising the composite adsorbent material of claim 1 , wherein the composite adsorbent material shows an S-shape adsorption isotherm curve.

16. An adsorption cooling system comprising the composite adsorbent material of claim 1 , wherein the composite adsorbent material has an ideal coefficient of performance (COP) of 0.7.

17. An adsorption cooling system comprising the composite adsorbent material of claim 1 , wherein the composite adsorbent material has an average specific cooling power (SCP) of 378 W Kg −1 .

18. An adsorption dehumidification system comprising the composite adsorbent material of claim 1 , comprising about 30 to about 35 wt. % of activated carbon, about 2to about 10 wt. % of silica-gel and about 55 to about 68 wt. % of CaCl 2 .

19. An adsorption cooling system comprising the composite adsorbent material claim 1 , wherein the composite adsorbent comprises about 60 to about 70 wt. % of activated carbon, about 10 to about 15 wt. % of silica-gel and about 15 to about 30 wt. % of CaCl 2 .

20. The composite adsorbent material of claim 1 further comprising a metal impregnated onto the activated carbon.

21. The composite adsorbent material of claim 20 , wherein the metal is copper or aluminum.

22. An adsorption dehumidification system comprising the composite adsorbent material of claim 1 , wherein the composite adsorbent material provides a cooling or temperature/humidity control.

23. A method of preparing the composite adsorbent material of claim 1 comprising: preparing a porous host material of activated carbon and impregnating the porous host material with a sodium silicate solution, followed by a CaCl 2 solution.

24. A method of preparing the composite adsorbent material of claim 1 used for dehumidification systems, comprising: preparing a porous host material of activated carbon, impregnating the porous host material with about 10 wt. % of a sodium silicate solution for about 48 hours, followed by about 46 wt. % of a CaCl 2 solution for about 72 hours.

25. A method of preparing the composite adsorbent material of claim 1 used in adsorption cooling systems, comprising: preparing porous activated carbon and impregnating the porous activated carbon with about 10 wt. % of a sodium silicate solution for about 48 hours, followed by about 30 wt. % of a CaCl 2 solution for about 48 hours.

26. A humidity-controlling system comprising a desiccant wheel dehumidification unit, where water is used as an adsorbate and the composite adsorbent material of claim 1 is used as an adsorbent.

27. A cooling or temperature-controlling system comprising an adsorption unit, where water, methanol and ammonia are used as adsorbates and the composite adsorbent material of claim 1 is used as an adsorbent.

28. An adsorption cooling system comprising the composite adsorbent material of claim 1 .

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 6, 2012
From: TSO, CHI YAN; CHAO, CHRISTOPHER YU HANG; SZE-TO, GIN NAM
To: THE HONG KONG UNIVERSITY OF SCIENCE AND TECHNOLOGY
Reel/Frame 028328/0975 →
Continuity (2)
Provisional Application 61457521 · Apr 18, 2011
Related Publication 20120264600A1 · Oct 18, 2012